DEC-1000和DEC-4000控制器操作说明书
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1DC1010/1020/1030/1040 产品手册1DC1000系列通用控制器中文操作手册2DC1010/1020/1030/1040 PRODUCT MANUAL3DC1010/1020/1030/1040 产品手册34DC1010/1020/1030/1040 PRODUCT MANUAL5DC1010/1020/1030/1040 产品手册 5LCK=0001, 只进入LEVEL1并允许改变SP 值 LCK=0101, 除改变LCK 功能外,其它任何参数不能改变7DC1010/1020/1030/1040 产品手册79DC1010/1020/1030/1040 产品手册9假设SET8.3=1,SP值西安市将被改成PV值显示。
达到期望SP值的时间将被减少。
达到SP值的剩余时间显示在参数‘TMER’中。
在此,倒计数的时间是与PV值相关,而不是程序段。
11DC1010/1020/1030/1040 产品手册1112DC1010/1020/1030/1040 PRODUCT MANUAL13DC1010/1020/1030/1040 产品手册133) 结束功能如果ALD 设定为 17 (* 参看选择表), 此程序将在程序8或程序段16结束。
* 这样,在显示窗口中的 PV 和 END 将闪烁,报警继电器动作。
如果程序少于八个程序段,控制器就没有END 命令。
这样,请将下一程序段的 OUT 设定为0(out=0),程序就将在下一设定程序段结束。
否则控制器将运行8个或16个程序段。
4) 连接功能PTN=1, 进行模式1, 它包含8个程序段 PTN=2, 进行模式2, 它包含8个程序段PTN=0, 连接进行模式1和模式2 ,共有碍6个程序段 (首先设定PTN1和PTN2, 然后设定 PTN=0)5) 其它功能 (*参看 level 4)SET8.1=1 程序重运行 SET8.2=0 无停电处理功能 SET8.2=1 有停电处理功能(如果电源中断, 控制器仍将保持内存记忆功能。
DC1010 - DC1020 - DC1030 - DC1040General Purpose DIGITAL CONTROLLERSPRODUCT SPECIFICATION SHEETDC1010 (1/16 DIN) DC1020 (1/8 DIN)OVERVIEWThe DC1000 family ofmicroprocessor based controllers combine a high degree offunctionality and reliability at a very low price. Available in 4 different formats : 1/16 DIN, 1/8 DIN, 3/16 DIN, 1/4 DIN. These controllers are ideal for regulating temperature in a variety of applications, including : x Dryers.x Semiconductor packaging /testing.x Plastic processing.x Packaging machinery.x Painting and coating.x Climatic chambers.The DC1000 family provides basic control requirements, plus advanced features such as motor position control, phase angle power control and Setpoint programming.FEATURESDC1030 (3/16 DIN)DC1040 (1/4 DIN)Easy to configureTwo different configuration levels provide easy access to parameters. A 4-digit security code prevents unauthorized changes. Parameters can also be hidden to the user to prevent mis-configuration of the unit. Various Control algorithms The DC1000 series of controllers provide several different algorithms: x PID or ON/OFF control.x Heat/Cool algorithms with 2different PID sets.x Motor position control withoutslidewire feedback.x Single phase control, with orwithout zero crossover control. x Three phase control, with orwithout zero crossover control.Dual display and BargraphTwo large 4 digits displays and one 10 LED bargraph display PV, SP andconfiguration parameters. Up to 8 LEDs display the status of the different Outputs (Control, Alarm, …) and also provides indication of the Auto/Manual and Programmer states.Setpoint ProgrammingTwo programs are available, with amaximum of 8 segments. The 2 programs can be linked together to form a single 16 segment program.Extended Alarm capability Three different alarm outputs areavailable per instrument, 17 alarm modes are configurable.CommunicationsRS232 or RS485 ASCII protocol is optionally available. Up to 30 DC1000 Controllers can be connected to a single host computer. The host computer can change the SP, monitor the PV, the output or change the configuration of the unit.Remote Setpoint capability. Manual / Automatic modes. Universal Power supplyOperates on any voltage from85Vac to 265Vac at 50/60Hz. Large operating rangeThese instruments can operate from –20°C to +65°CSPECIFICATIONSThermocouples : K, J, R, S, B, E, N, T, W, PL II, U, L Type of InputRTD : Pt100, JPt100, JPt50PV InputLinear : 4~20mAInput Sampling Time 500 msInput Resolution 14 bit (each)PV/SP Indication 4-digit, 7 segment displayIndicationConstant Value Storage System Non-volatile memory (E2PROM)Indication Accuracy 0.5%FSProportional Band ( P ) 0~200% (On/Off action at P=0)Integral Time ( I ) 0~3600 sec (PD action at I=0)Control ModeDerivative Time ( D ) 0~900 sec (PI action at D=0)Cycle Time 0~150 sec (4~20mA=0, SSR=1, Relay=10)Dead Band Time 0~1000 sec (dead time compensation)Relay Output Electromechanical relayx SPDT contactsx 3A/240VacStatic relay driver output Voltage Pulse, 20VDC/20mAOutputCurrent & Voltage outputs 0~20mA, 4~20mA,0~5V, 0~10V, 1~5V, 2~10VMotor Control Output Servo motor valve control (open loop circuit)Others Phase angle control :9 1M SSR, 3M SSR, 1M SCR, 3M SCRNumber Up to 3 (optional)Modes 17 alarm modes available, hability to ignore the alarmthe first time it occurs :9 Deviation high or low alarms.9 Deviation alarms.9 Band alarm.Alarm9 High or low alarm.9 End of segment alarm.9 Program run indication alarm.9 Timer alarm.Timer One timer is associated with each alarm.Output Signal SP, PVRetransmissionoutput Type of Output 4~20mA, 0~20mA, 0~5V, 0~10V, 1~5V, 2~10VType of Input4~20mA, 0~20mA, 0~5V, 0~10V, 1~5V, 2~10V 2nd Input (Remote SP) Sampling Time 500 ms.Programs Number2 programs of 8 segments each. CommunicationType of CommunicationRS-232 or RS-485. ASCII protocol.Rated Power Supply Voltage & FrequencyAC 85 ~ 265V, 50/60Hz Power Consumption 8VA (110V), 12VA (220V) Ambient Temperature -20°C ~ 65°C (-4°F ~ 149°F) Operating conditionsAmbient Humidity50 ~ 85% RH (non condensing) ApprovalsUL Pending. CE Mark.x PID or ON/OFF control.x Heat/Cool algorithms with 2 different PID sets.x Phase angle controlSingle PhaseThree Phase3I LOADIn phase angle control, power is regulated by changing the point at which the SCR is turned on within each 1/2 period. Single Phase : Output is changed every half-cycle in response to output signals from the Temperature Controller. Three Phase : The outputs are changed every 120° in response to signals from the Temperature Controller. Using this form of control, high-precision temperature control is possible.x Zero-crossover controlSingle Phase1I LOADThree Phase3I LOADThe term Zero-Crossover means that the SCR's are turned on only when the instantaneous value of the sinusoidal wave is zero. Power is then applied for a several continuous half-cycles and then removed for several half-cycles to achieve the desired load power.x Motor position control without slidewire Feedback.MOTOR VALVEMotor position is achieved by using time proportional controlwithout the need for slidewire feedback from the motor shaft. Slidewires wear over a period of time, which can result in poor or intermittent control. This type of control reduces maintenance requirements and removes the need for the controller to be calibrated to the motor feed back potentiometer.DC101050 mm - 1.97 in74.5 mm - 2.97 in13.5 mm 0.53 in6 mm 0.24 in 44 m m - 1.73 i n50 m m - 1.97 i n68 mm - 2.68 in60 m m - 2.36 i n45.5 mm - 1.79 in 45.5 m m - 1.79 i nDC102074.5 mm - 2.97 in13.5 mm 0.53 in6 mm 0.24 in86 mm 3.39 in96 m m - 3.78 i n48 mm - 1.89 in60 mm - 2.36 in91mm 3.58 in45.5mm 1.79 in116 mm 4.57 inDC103074.5 mm - 2.97 in13.5 mm 0.53 in6 mm 0.24 in66 m m - 2.60 i n72 mm - 2.83 in72 m m - 2.83 i n91 mm - 3.58 in69.55 mm 2.74 in91 m m - 3.58 i n69.55 mm 2.74 inContact Details:Industrial Supply Syndicate54, Ezra Street, Kolkata - 700 001, INDIAPhone: 22350923, 22356676 Fax: 91-33-30222923。
WD-4000变频恒压供水电脑控制器使用手册目录系统概述 (2)主要性能指标 (2)安装尺寸和接线端子说明 (3)操作面板指示及参数设定说明 (4)参数列表及参数出厂默认值 (6)恢复系统参数出厂值 (6)系统参数功能详细说明 (9)故障显示代码说明 (16)外部输入信号端子说明 (16)系统当前时间的调整 (16)手动临时开机的调整 (16)外部输出端子与部分变频器端子的连接表 (17)控制器与压力变送器的连接 (18)RS485远程通讯接口 (18)一、系统概述WD-4000系列微电脑变频供水/补水控制器是专为变频恒压供水系统和锅炉及换热系统补水而设计的电脑控制器,可与各种品牌的变频器配套使用。
具有压力控制精度高、压力稳定、第二消防压力(动压)设定、系统超压泄水自动控制、设定参数密码锁定等多项功能。
二、主要性能指标1.可编程设定多种泵工作方式,最多可拖4台泵循环启动;2.可选配的RS485远程通讯接口,标准组态软件支持远程通讯;3.参数调整和设定具有密码锁定及保护功能;4.采用人工智能模糊控制算法,设定参数少,控制精度高,内带看门狗电路,采用数字滤波及多项抗干扰措施,防止软件跑飞;5.可接无源远传压力表、有源电压及电流型压力变送器;6. D/A输出控制频率电压为DC 0-10V, 也可设定为DC 0-5V;7.具有压力传感器零点和满度补偿功能;8.具有定时自动倒泵功能;9.具有第二压力(消防压力)设定和控制功能;10.具有缺水自动检测保护功能和外部输入停机保护功能;11.系统补水控制时,具有超压自动泄水控制功能;12.具有供水附属小泵控制功能,可设定小泵变频或工频模式;13.具有可选的定时自动开、关机控制功能;14.具有小流量水泵睡眠控制功能;15.具有手操器功能,可手动调节输出电压来控制变频器的频率;16.可代替电接点压力表进行上、下限压力控制;17.具有分时分压供水控制功能,最多有六段时间控制;三、安装尺寸和接线端子说明1.控制器外形尺寸: 160mm×80mm×90mm2.控制柜面板开口尺寸151mm×75mm,面板卡入式安装。
CONTENTSPAGE Manual introduction 4 System introduction 4 System components 4 – 13 Codelock programming instructions 15 – 16 Accessories 13 – 14 Installation 14 Cable size guide 17 Testing the system 17 Panel care 17 Accessories connection guide 17 – 18 Single entrance single button audio wiring diagram 19 Single or multiple entrance, multiple button audio wiring diagram20 Single entrance video system wiring diagram 21 Multiple entrance video system wiring diagram 22 Troubleshooting guide 23The information in this manual is intended as an installation and commissioning guide for the vandal resistant 4000 Series door entry systems. This manual should be read carefully before the installation commences. Any damage caused to the equipment due to faulty installations where the information in this manual has not been followed is not the responsibility of Videx Security Ltd.VIDEX run free training courses for engineers who are not familiar with the Videx product range. Technical help is also available on 0191 224 3174 during office hours or via e-mail ***********************.This kit will enable a caller at an entrance point to signal an occupant in the dwelling by pressing a call button which will send an electronic call tone to an audio telephone. A Yellow ‘SPEAK’ LED will indicate the call has been answered and a two way conversation can take place, the occupant can release an electric lock release by pressing a button on the telephone base unit. The output for the lock is a dry contact relay allowing any type of lock can be used with an appropriate PSU. If this system is to be used with a gate, the dry contact output can be used to trigger the gate control board. DDA features such as a ‘SPEAK’ LED, ‘DOOR OPEN’ LED and reassurance tones are standard on this system. The system is available modular and non-modular. The modular system allows a door panel to be assembled from a range of modules including amplifiers, button modules, camera modules and access control modules. The modules are then assembled into the 4000 Series frames using the brackets and screws supplied.The system comprises of door panels, telephones/videophones and power supplies. Relays will also be used on multiple door video systems but there are no switches required for multiple door audio systems as was the case with the older systems. The door panel may be made up of several parts including modules and a surface or flush frame. These modules are easily assembled into the frames using the brackets and screws supplied with each module. The order in which the modules fit into the frames is down to customer taste but we would suggest keeping the amplifier module as far from the microphone holder as possible to avoid Larsen affect.The vandal resistant door panel will consist of an amplifier, buttons, frame/back box and optional items such as camera and access control features (Codelock, proximity etc). Frame sizes are available for 1, 2, 4, 6 and 9 modules in both surface and flush fitting configurations. Call buttons can be engraved to suite the apartment numbers.Speech volume adjustments are carried out at the door panel using a small trimmer driver. CAMERA (Art.VR4KCMM – Mono & Art.VR4KCMC - Colour)The camera module is available in both mono and colour and can be set for either coax installations or non-coax installations. A tilt adjustment is available on the rear of the Connection FunctionNOTE: ANY 1A 13.8Vdc PSU can be used with this amplifier as an alternative to the 520M.20Vdc 800mA continuous 1A surge PSU and is used to power the videophones and camera on video systems and can also be used as a booster supply or when more than two videophones are required in an apartment. This power supply only has an output when either a 0V is applied to –C or when a voltage is applied to Connection Function5 5Art.3312DIP SWITCH SETTINGSThe Art.3312 (3412 for colour) includes a lock release push button, camera recall button and three dry contact push to make spare push buttons for other services. Coax and non-coax video can be used by setting the relevant dip-switches. An Art.3980 back plate is required with this videophone. CONNECTIONS:-Terminal Signal Function1 +12V Out +12V out to power video splitter2 TV1 Camera recall (● Button)3 TV2 Spare button (●● Button)4 1 +20V power input5 2 Door release command6 3 Transmit speech to door panel7 4 Receive speech from door panel8 5 Speech Ground9 6 Video power ground 107 Local call tone input11 V/V1 Coax centre core or balance video –sync (V1) 12 M/V2 Coax Screen or balanced video +sync (V2)13R Speech common for intercommunicating systems 14C Call tone input 15- Speech ground for intercommunicating systems 16T Common of spare buttons17 1T Spare button 18 2T Spare button 9 + Coax Or 11 coresThe Art.3313 (3413 for colour) includes a lock release push button and two dry contact push to make spare push buttons for other services. An Art.3980 back plate is required with this videophone. CONNECTIONS:- Terminal Signal Function 1 +12V OUT +12V out to power video splitter 2 TV1 Camera recall (● Button)3TV2 Camera recall or switch to terminal 16 (Dip switch dependant) (●● Button) 41 +20V power input 52 Door release command 63 Transmit speech to door panel7 4 Receive speech from door panel 8 6 0V (Ground) 9 5 Not used107 Local call tone input 11 V/V1 Coaxcentre core or non-coax sync- (V1) 12M/V2 Coax Screen or non-coax Sync+ (V2)13 D Switched +12 for door open LED 14C Select input to switch on videophone15 C1 Call tone input 16 T Common of spare buttons ●●, ● and S171T Spare button (S button) 18+12V IN +12V to power videophone privacy DIP SWITCH SETTINGS 8 Way dip switch (Switches 1 – 5) Mute Duration timeTime 1 2 3 4 5 15 Minutes ON OFF OFF OFF OFF 30 Minutes OFF ON OFF OFF OFF 2 Hours OFF OFF ON OFF OFF 4 Hours OFF OFF OFF ON OFF 8 Hours OFF OFF OFF OFF ON 3 Way Dip Switch VIDEO MODE continued Switch 1 2 3 Coax OFF OFF OFF Non-Coax ON ON ON8 Way dip switch (Switch 6) Mute LED Switch 6 Fixed OFF Flashing ON 8 Way dip switch (Switches 7 & 8) °° Button Operation Switch 7 8 Camera recall ON OFF Dry contact OFF ON 4 Way Dip Switch (Switches 1 & 2) S Button Operation Switch 1 2 Camera recall ON OFF Dry contact OFF ON 4 Way Dip Switch (Switches 3 & 4) VIDEO MODE Switch 3 4 Coax ON ON Non-Coax OFF OFF10 + CoaxOr12 coresCABLE SIZE GUIDESuitable cables for this system are CW1308 and YY cable (Other similar cables are also suitable) Care should be taken to avoid excessive voltage drop. Follow the guide lines below.Connections from door panel to telephones/videophones. Connections 50m 100m 200m 300m 400mPower0.35mm² 0. 5mm² 0.75mm² 1.00mm² 1.5mm² All Others0.25mm² 0.35mm² 0.5mm² 0.75mm² 1.0mm² Maximum acceptable resistance for power terminals 5Ω, all others 10ΩConnections for power supply output to door panel and lock release connections. Theseconnections are shown heavily outlined on the wiring diagram.50m 100mConnections0.5mm² 0.75mm² The power supply should be located as close to the door panel as possible for best performance.Maximum acceptable resistance for above cables 3Ω- Check all the connections have been made correctly and dip-switches have been set and then power up the system.- Call the apartments. Check for call to all apartments, speech in both directions and lock release and correct operation of the SPEAK & DOOR OPEN LED’s.- If the volume of speech needs to be adjusted, this can be done by adjusting the presets on the rear of the amplifier at the door panel.The door panel is manufactured from 12 Gauge 304 grade stainless steel. It is important that the facia is cleaned on regular occasions to prevent dirt build up and tarnishing of the metal. A general household metal polish can be used but care should be taken to follow the grain of the metal when polishing and also avoid any polish build up around the call button which may prevent the button from operating correctly.ES/1 Extension Strobe512A Extension sounderAdding the 4800 codelock to a panelSYMPTOM TESTNo speech from the door panel to the telephone.Check terminal 2 on the amplifier for continuity toterminal 2 on the telephone.Check the voltage drops to approx. 1Vdc after the handset is lifted. (If not try another telephone)If all else fails try another amplifier at the door stationNo speech from the telephone to the door panel.Check terminal 1 on the door panel amplifier forcontinuity back to terminal 1 on the telephone.Check the voltage drops to approx. 4Vdc after the handset is lifted. (If not try another telephone)If all else fails try another amplifier at the door stationNo speech in either directionCheck the 315mA fuse in the power supplyCheck for 12Vdc across terminals + & - on the door panel amplifier. This should be there all the time and comes directly from the PSU.Lock will not operate from telephoneCheck terminal 5 on the telephone. This terminal shorts to terminal 3 of the telephone when pressed (Becomes 0V) and sends a 0V to terminal 5 on the VX136 amplifier at the door panel which in turn triggers the relayCheck the relay on the VX136 is energising. Use a continuity meter to check the switching.Nothing happens when call button is pressedCheck the common of the button is connected to Ton the VX136Check continuity from the other side of the call button to terminal 4 on the handsetHum on the speech linesEnsure all intercom cables do not run close to higher voltage cablesTry another amplifier at the door panel.Rolling or poor video pictureCheck camera jumper setting is set correctly Check end of line resistors are fitted on last 316video splitter (Non-coax) or end of line resistors plus termination resistors on any unused outputs of the 894 video splitter (Coax).Check dip-switches are set correctly on videophone On multiple door systems, check that only onecamera is being switched on at a time. (When camera is switched on it will have 20Vdc across +&-Camera recall does not workCheck terminal TV1 (● button) wire for continuity to T of relevant door panel.On multiple door systems, lifting the handset causes feedback or speech from all doors at the same time.Dip switch 4 of the amplifier is switched on. This switch can only be on, for one door systems.Remember to power down after making the change.Northern OfficeVidex Security LtdUnit 4-7 Chillingham Ind. Est. Newcastle Upon TyneNE6 2XXTEL 0870 300 1240FAX 0191 224 5678 Southern Office1 OspreyTrinity ParkTrinity WayLondonE4 8TDFAX 0208 523 5825 TECHNICAL SUPPORT***********************TEL 0191 224 3174FAX 0191 224 4938。
L-4000智能控制器使用说明L4000智能控制器基本参数工作电压:220V外型尺寸:390*235*80 (H*W*D)最大负载:6000W单路负载:可调灯光1500W 开关灯光3000W功能简介L-4000灯光/空调智能控制器是专为KTV设计的一款具备灯光亮度调节、中央空调控制、可编程的智能型灯光/空调控制器。
1、设有6路大功率可调光及4路大功率继电器,满足各种灯光应用的需求2、可直接通过串口与机顶盒或电脑连接3、可直接连接灯光控板,脱离点歌系统及中控盒独立运行4、可对任一模式下的灯光状态进行编程,实现任意灯光搭配5、灯光控制器上可直接按键操作选择灯光模式及调节灯光亮度6、灯光亮度均衡,通过在不同模式下设置不同的亮度,实现场景效果切换,减少了灯光的开关次数,延长灯光使用寿命7、可外接遥控器对灯光进行遥控控制(选配)8、中央空调智能控制,配合点歌系统可实现远程开关空调9、配盒空调墙板通过温度探测,可智能控制风机及阀门的开关,减少能源浪费10、设有2组空调控制11、根据室温与设定温的比对,自动调节风速12、采用串口光电隔离技术,避免设备间的互相干扰灯光控制的设置一、灯光模式对应组的编程先关闭灯光控制器电源,按住设置及确认键不放,打开电源,等待约1秒,灯光控制器显示01并闪烁,表示01组,按△或▽键选择所要编程的组。
1、选择需要编程的组按△或▽键选择需要编程的组,按确认键进入该组编程设置;2、设置该组对各路灯光的控制状态数码管显示J1,对应指示灯指示出该模式下灯光的控制状态,亮表示控制,闪烁表示不控制,不亮表示强制关。
按▽键选择要设置的灯光,J1-JA表示灯光控制器的10路,按设置键进行设置,按确认键进入下一步设置;3、设置组的开关模式显示H1表示固定模式,显示H0表示开关模式(固定模式:例如,当按K歌时1、2、3路亮,再次按K歌时还是1、2、3路亮;开关模式:例如,当按K歌时1、2、3路亮,再次按K歌时1、2、3路灭),按设置键进行选择,按确认键进入下一步设置;4、设置组的亮度继承方式显示L1表示固定亮度,显示L0表示继承亮度(固定亮度,例如:进入K歌模式后,将其亮度由60调到80,第二次进入K歌模式时它的默认亮度还原为60;继承亮度,例如:进入K歌模式后,将其亮度由60调到80,第二次进入K歌模式时它的默认亮度为80)。
e-mail:**************For latest product manuals: CN4000 SERIESTemperature ControllersShop online at User’s G ui d e***********************Servicing North America:U.S.A. Omega Engineering, Inc.Headquarters: Toll-Free: 1-800-826-6342 (USA & Canada only)Customer Service: 1-800-622-2378 (USA & Canada only)Engineering Service: 1-800-872-9436 (USA & Canada only)Tel: (203) 359-1660 Fax: (203) 359-7700e-mail:**************For Other Locations Visit /worldwideThe information contained in this document is believed to be correct, but OMEGA accepts no liability for any errors it contains, and reserves the right to alter specifications without notice.CONTENTSMODEL CONFIGURATION (2)SPECIFICATIONS (3)PARAMETER AND SETTING (4)SYMBOL DESCRIPTIONS (7)INSTRUMENT INSTALLATION AND WIRING (8)DISPLAY AND OPERATIONS (9)OPERATION DESCRIPTION (10)MODEL CONFIGURATIONModel DescriptionCN4116 (*)-(**)-(***) 1/16 DIN controllerCN4216 (*)-(**)-(***) 1/16 DIN controller, with 0.0 decimalCN414 (*)-(**)-(***) 1/4 DIN controllerCN424 (*)-(**)-(***) 1/4 DIN controller, with 0.0 decimalCN418V (*)-(**)-(***) 1/8 DIN Vertical controllerCN428V (*)-(**)-(***) 1/8 DIN Vertical controller, with 0.0 decimalCN418H (*)-(**)-(***) 1/8 DIN Horizontal controllerCN428H (*)-(**)-(***) 1/8 DIN Horizontal controller, with 0.0 decimal*Specify controlling output code from Output Options table below**Specify alarm code from Alarm Options table below***Low voltage power supply option (-LV)Controlling Output OptionsOption Type CodeRelay -R1DC SSR driver -DC1Alarming Output OptionsOption Type CodeRelay -R2DC SSR driver -DC2Low voltage power supply optionHz50/60AC/DC,-LV 24VSPECIFICATIONSThermocouple RTD Input TypeK S R E J N PT100Range ℃/ ℉0 to1300 ℃32 to 2372 ℉0 to1700℃32 to 3092 ℉0 to1600℃32 to 2412 ℉0 to1000℃32 to 1832 ℉0 to1200℃32 to 2192 ℉0 to 1300℃32 to 2372 ℉-200 to 800℃-328 to 1472 ℉Accuracy:CN 4116/CN414/CN4180.3%FS ± 1℃/1.8°FCN4216/CN424/CN428 0.3%FS ± 0.1℃/0.18°FTemperature Display ResolutionCN 4116/CN414/CN4181℃/1℉CN4216/CN424/CN4280.1℃/0.1℉ON / OFF ControlControl MethodAI PID Control with Auto Tuning (AT)Relay Output (1A/250VAC)Output TypeVoltage Output for SSR(12V/30mA)Limit High / LowAlarm(Modularization) High deviation/Low deviation100~240VAC (-15%, +10%), or 24VDC Supply Voltage50 to 60HzPower Consumption ≦ 3WOperating EnvironmentsTemperature: -10 to +60℃ / 14 to 140℉Humidity: 0~90RH%Electromagnetic compatibility (EMC) IEC61000-4-4: ± 4KV/5KHz IEC61000-4-5: 4KVPARAMETER AND SETTINGField parameter table (Primary parameters)Code Description Remarks SettingRange DefaultHIAL High limit alarm Alarm on when PV>HIALalarm off when PV<HIAL- AHYS-999~+3000 3000LoAL Low limit alarm Alarm on when PV<LoAL;alarm off when PV>LoAL + AHYS-999~+3000 -999HdAL Deviation highalarmAlarm on when PV-SV>HdAL;alarm off when PV-SV<HdAL - AHYS-999~+3000 3000LdAL Deviation lowalarmAlarm on when PV-SV<LdAL;alarm off when PV-SV>LdAL + AHYS-999~+3000 -999Loc Parameter LockLocAutoTuningSVPrimaryParameterSecondaryParameter0 X1 X X2 X X X3 X X X X808: allow to modify data or execute ATX : not allow to modify data or execute AT0~255 0System parameter table (Secondary parameters)Scb Input Shift Parameter Scb is used to make input shift tocompensate the error produced by sensor or inputsignal itself.PV-after-compensation=PV-before-compensation + Scb.-199~+400FILt PV input filter The value of FILt will determine the ability offiltering noise.When a large value is set, the measurement inputis stabilized but the response speed is slow.Generally, if great interference exists, then youcan increase parameter “FILt” gradually to makemomentary fluctuation of measured value lessthan 2 to 5.When the meter of the instrument is beingexamined at laboratory, “FILt” should be set to 0or 1 to short the response time.0~40 1Fru Selection of powerfrequency andtemperature scale50C: 50Hz, ℃50F: 50Hz, ℉60C: 60Hz, ℃60F: 60Hz, ℉50C, 50F,60C, 60F50CSPL Low limit of SV -999~3000SPH Upper limit of SV -999~3000400SYMBOL DESCRIPTIONS Symbol DescriptionorAL Input specification setting is incorrectOrInput wiring is disconnected/ thermocouple problem OrShort circuitedHIAL High limit alarm LoAL Low limit alarm HdAL Deviation high alarm LdAL Deviation low alarm EErr IC Software error 8888 IC Software errorINSTRUMENT INSTALLATION AND WIRINGWiring graph for instruments with dimension 1/4 DIN; 1/8 DIN Vertical and HorizontalNote: The compensation wires for different kinds of thermocouple are different, and should be directly connect to the terminals. Connecting the common wire between the compensation wire and the t e r m i n a l s w i l l c a u s e m e a s u r e m e n t e r r o r.Wiring graph for 1/16 DIN dimension instruments :DISPLAY AND OPERATIONS①Upper display window, displays PV,parameter code, etc.②Lower display window, displays SV,parameter value, or alarm③Setup key, for accessing parametertable and conforming parametermodification.④Data shift key, and auto tuning.⑤Data decrease key⑥Data increase key⑦LED indicator. MAN, PRG, MIO,COM, OP2, AL2, AU1 and AU2Com indicators is non-applicable.OP1 and AL1 will indicate I/O operation of the corresponding module.Basic display status:When power on, the upper display window of the instrument shows the process value (PV), and the lower window shows the set-point (SV). This status is called basic display status.When the input signal is out of the measurable range (for example, the thermocouple or RTD circuit is break, or input specification sets wrong), the upper display window will alternately display “orAL” and the high limit or the low limit of PV, and the instrument will automatically stop output. If the lower display window alternately display “HIAL”, “LoAL”, “HdAL” or “LdAL”, it means high limit alarm, low limit alarm, deviation high alarm, and deviation low alarm happening.OPERATION DESCRIPTIONz Set Value Setting:In basal display status, if the parameter lock “Loc” isn't locked, we can set setpoint (SV) by pressing 、 or . Press key to decrease the value, key to increase the value, and key to move to the digit expected to modify. Keep pressing or , the speed of decreasing or inscreasingvalue get quick. The range of setpoint is between the parameter SPL and SPH.The default range is 0~400.z Parameter Setting:In basal display status, press and hold for about 2 seconds can accessField Parameter Table. Pressing can go to the next parameter; pressing 、 or can modify a parameter. Press and hold can return tothe preceding parameter. Press (don't release) and then press key simultaneously can escape from the parameter table. The instrument will escape auomatically from the parameter table if no key is pressed within 30 seconds. Setting Loc=808 and then press can access System Parameter Table.●AI artificial intelligence control and auto tuningWhen AI artificial intelligence control method is chosen (CtrL=APId), the PID parameters can be obtained by running auto-tuning. In basal display status,press for 2 seconds, the “At” parameter will appear. Press to changethe value of At from “oFF” to “on”, then press to active the auto-tuning process. During auto tuning, the instrument executes on-off control. After 2-3 times of on-off action, the instrument will obtain the optimal control parametervalue. If you want to escape from auto tuning status, press and hold thekey for about 2 seconds until the "At" parameter appear again. Change “At”from “on” to “oFF”, press to confirm, then the auto tuning process will be cancelled.Note 1: If the setpoint is different, the parameters obtained from auto-tuning are possible different. So you’d better set setpoint to an often-used value ormiddle value first, and then start auto-tuning. For the ovens with goodheat preservation, the setpoint can be set at the highest applicabletemperature. Depending on the system, the auto-tuning time can befrom several seconds to several hours.Note 2: Parameter Ctl (on-off differential, control hysteresis) has influence on the accuracy of auto-tuning. Generally, the smaller the value of Ctl, thehigher the precision of auto tuning. But Ctl parameter value should belarge enough to prevent the instrument from error action around setpointdue to the oscillation of input. Ctl is recommended to be 2.0.Note 3: The instrument has the function of self-learning. It is able to learn the process while working. The control effect at the first run after auto tuningis probably not perfect, but excellent control result will be obtained after aperiod of time because of self-learning.10OMEGA’s policy is to make running changes, not model changes, whenever an improvement is possible. T his affords our customers the latest in technology and engineering.OMEGA is a trademark of OMEGA ENGINEERING, INC.© Copyright 2018 OMEGA ENGINEERING, INC. All rights reserved. T his document may not be copied, photocopied, reproduced, translated, or reduced to any electronic medium or machine-readable form, in whole or in part, without the prior written consent of OMEGA ENGINEERING, INC.FOR WARRANTY RETURNS, please have the following information available BEFORE contacting OMEGA:1. P urchase Order number under which the product was PURCHASED,2. M odel and serial number of the product under warranty, and3. Repair instructions and/or specific problems relative to the product.FOR NON-WARRANTY REPAIRS, consult OMEGA for current repair charges. Have the following information available BEFORE contacting OMEGA:1. Purchase Order number to cover the COST of the repair,2. Model and serial number of the product, and 3. Repair instructions and/or specific problems relative to the product.RETURN REQUESTS/INQUIRIESDirect all warranty and repair requests/inquiries to the OMEGA Customer Service Department. BEFORE RET URNING ANY PRODUCT (S) T O OMEGA, PURCHASER MUST OBT AIN AN AUT HORIZED RET URN (AR) NUMBER FROM OMEGA’S CUST OMER SERVICE DEPART MENT (IN ORDER T O AVOID PROCESSING DELAYS). The assigned AR number should then be marked on the outside of the return package and on any correspondence.T he purchaser is responsible for shipping charges, freight, insurance and proper packaging to preventbreakage in transit.WARRANTY/DISCLAIMEROMEGA ENGINEERING, INC. warrants this unit to be free of defects in materials and workmanship for a period of 25 months from date of purchase. OMEGA’s WARRANTY adds an additional one (1) month grace period to the normal two (2) year product warranty to cover handling and shipping time. This ensures that OMEGA’s customers receive maximum coverage on each product.If the unit malfunctions, it must be returned to the factory for evaluation. OMEGA’s Customer Service Department will issue an Authorized Return (AR) number immediately upon phone or written request. Upon examination by OMEGA, if the unit is found to be defective, it will be repaired or replaced at no charge. OMEGA’s WARRANT Y does not apply to defects resulting from any action of the purchaser, including but not limited to mishandling, improper interfacing, operation outside of design limits, improper repair, or unauthorized modification. T his WARRANT Y is VOID if the unit shows evidence of having been tampered with or shows evidence of having been damaged as a result of excessive corrosion; or current, heat, moisture or vibration; improper specification; misapplication; misuse or other operating conditions outside of OMEGA’s control. Components in which wear is not warranted, include but are not limited to contact points, fuses, and triacs.OMEGA is pleased to offer suggestions on the use of its various products. However, OMEGA neither assumes responsibility for any omissions or errors nor assumes liability for any damages that result from the use of its products in accordance with information provided by OMEGA, either verbal or written. OMEGA warrants only that the parts manufactured by the company will be as specified and free of defects. OMEGA MAKES NO OTHER WARRANTIES OR REPRESENTATIONS OF ANY KIND WHATSOEVER, EXPRESSED OR IMPLIED, EXCEPT THAT OF TITLE, AND ALL IMPLIED W ARRANTIES INCLUDING ANY W ARRANTY OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE HEREBY DISCLAIMED. LIMITATION OF LIABILITY: The remedies of purchaser set forth herein are exclusive, and the total liability of OMEGA with respect to this order, whether based on contract, warranty, negligence, indemnification, strict liability or otherwise, shall not exceed the purchase price of the component upon which liability is based. In no event shall OMEGA be liable for consequential, incidental or special damages.CONDITIONS: Equipment sold by OMEGA is not intended to be used, nor shall it be used: (1) as a “Basic Component” under 10 CFR 21 (NRC), used in or with any nuclear installation or activity; or (2) in medical applications or used on humans. Should any Product(s) be used in or with any nuclear installation or activity, medical application, used on humans, or misused in any way, OMEGA assumes no responsibility as set forth in our basic WARRANT Y /DISCLAIMER language, and, additionally, purchaser will indemnify OMEGA and hold OMEGA harmless from any liability or damage whatsoever arising out of the use of theProduct(s) in such a manner.Where Do I Find Everything I Need forProcess Measurement and Control?OMEGA…Of Course!Shop online at TEMPERATUREM U Thermocouple, RTD & Thermistor Probes, Connectors,Panels & AssembliesM U Wire: Thermocouple, RTD & ThermistorM U Calibrators & Ice Point ReferencesM U Recorders, Controllers & Process MonitorsM U Infrared PyrometersPRESSURE, STRAIN AND FORCEM U Transducers & Strain GagesM U Load Cells & Pressure GagesM U Displacement TransducersM U Instrumentation & AccessoriesFLOW/LEVELM U Rotameters, Gas Mass Flowmeters & Flow ComputersM U Air Velocity IndicatorsM U Turbine/Paddlewheel SystemsM U Totalizers & Batch ControllerspH/CONDUCTIVITYM U pH Electrodes, Testers & AccessoriesM U Benchtop/Laboratory MetersM U Controllers, Calibrators, Simulators & PumpsM U Industrial pH & Conductivity EquipmentDATA ACQUISITIONM U Communications-Based Acquisition SystemsM U Data Logging SystemsM U Wireless Sensors, Transmitters, & ReceiversM U Signal ConditionersM U Data Acquisition SoftwareHEATERSM U Heating CableM U Cartridge & Strip HeatersM U Immersion & Band HeatersM U Flexible HeatersM U Laboratory HeatersENVIRONMENTALMONITORING AND CONTROLM U Metering & Control InstrumentationM U RefractometersM U Pumps & TubingM U Air, Soil & Water MonitorsM U Industrial Water & Wastewater TreatmentM U pH, Conductivity & Dissolved Oxygen InstrumentsM4545/0418。
DEC-1000和DEC-4000控制器操作说明书讲述DEC1000和4000控制器操作说明书LED 灯显示含义(从左到右顺序)1灯:DEC1000控制器电源供给,绿灯亮(绿色)。
2灯:当按下紧急停机按钮时,红灯亮(红色)。
3灯:当发电机组出口开关合闸和带载时,该灯亮(绿色)。
4灯:当机组出现故障但未到达停机保护值时,控制器先发出预警信号,但机组还会继续运行不会停机,该灯亮(黄色)5灯:当机组出现预警后任未进行检查处理,当预警值到达报警值时,机组立即自动停止运行进行保护,该灯亮(红色)当机组运行时,RPM:显示机组运转的速度(1500转/分);同时显示机组运行时,充电机输出电压值:13.6V(直流)。
显示:控制器运行累计时间:23589小时;显示:发电机组输出电源频率:50Hz;显示:电池电压13.6V显示:柴油量在油箱的百分比值:37%显示:冷却液温度:85℃(水温)显示:机组运行中机油压力:3.2BAR以上为公制单位显示:柴油量在油箱的百分比值:37%显示:冷却液温度:85F(水温)显示:机组运行中机油压力:40-60PSI以上为英制单位显示:L1-L2相电压:404V;显示:L2-L3相电压:403V;显示:L3-L1相电压:401V显示:L1-N线电压233V;显示:L2-N线电压233V;显示:L3-N线电压232V.显示:L1相电流530A显示:L2相电流537A显示:L3线电流548A机侧启动1、将控制器上钥匙开关从左侧向右侧旋转,打开控制器电源,控制指示灯亮及液晶屏出现文字显示,控制器并读取程序;2、控制器绿色灯亮,说明机组无故障,准备就绪;3、按下“START”绿色按钮,机组立即进行预热10秒,10秒后机组立即启动,机组启动成功允许;4、读取机组允许参数:按下“左侧白色按钮”,每按一次,显示一组参数,其中参数包括:发动机转速、水温、机油压力、3相电压及频率、3相电流、电池电压等;5、按下“STOP”按钮,机组立即停止运转。
中文中文D1000车库门电机目 录关于安装和维护的通用安全介绍 P2工具和材料 P2CE认证声明 P3对安装者的警示 P31 外型尺寸 P42 技术参数 P43 辅助电子设备 P44 系统图示 P55 预先检查 P56 安装 P66.1 滑动导轨 P66.2 后部固定器 P66.3 外部释放器(可选) P77 安装 P77.1 滑动导轨 P77.2 门上固定 P87.3 控制器 P97.4 释放自动系统 P97.5 外部释放 P98 E1000控制板 P108.1 技术参数 P108.2 E1000控制板元件列表 P108.3 接口端 P108.4 DS1编程拨动开关 P108.5操作逻辑模式 P109 迎接灯 P1110 接口端 P1111编程 P1211.1 电控板设置 P1211.2 学习 P1211.3 预闪 P1312 无线遥控编码的存储 P1412.1 存储DS无线遥控代码 P1412.2 存储SLH无线遥控代码 P1412.3 存储LC无线遥控代码(仅用于部分市场) P1412.3.1 遥控存储LC无线遥控代码 P1512.4 遥控器删除步骤 P1513 开始 P1514 延长电线 P1515 维护 P1516 维修 P1517 附件 P1617.1 中央支架 P1617.2 用钥匙的释放装置 P1617.3 安全充气边缘CN60E P1617.4 电池组件 P16•关于安装和维护的通用安全介绍 工具和材料重要!挤撞危险。
在你开始安装前仔细地阅读完整的安装手册。
不要作任何本手册未提到的改动。
对于一个安全实用的自动门,需要正确地遵守安装步骤和使用说明。
不正确地安装和使用会引起严重的人员和财产不要将本控制器安装用于所指定的以外的用途。
为了紧固,使用所提供的附件或者,无论如何,紧固系统(螺丝,膨胀螺栓,等等)适合于固定的种类和自动系统的机械紧固件。
检查装配门是否符合EN12604 和EN12605 标准(相关信息可以从门本身的文件中找到)。
Scripting Reference ManualDE-4000 Series Configurable Safety Shutdown and Control System Form DE-4000 SRM 06-20DE-4000 SCRIPTING REFERENCE MANUALOne overarching capability that allows a bridge to gap the standard needs of everyday systems and the customer needs of innovation is scripting. A scripting language, cleverly named Lua, is embedded into the DE-4000 system. It operates as a script mainly meaning that it does not need additional tools to convert the “code” into machine language. It also is looked at and corrected for errors every time the script runs. Therefore it is an “interpreted” language and runs all of the time when you ask it. Lua comes with a background of being robust, fast, and geared towards embedded applications, with a proven track record in the gaming industry. For the DE-4000 system it is small and fits in the memory we have available, holds a lot of power, and keeps it simple for writing in the language.All information regarding the Lua scripting language is located at https:// Using the Lua engine as an embedded tool allows for taking advantage of a full architecture and standard at your fingertips. Within the language there are all ofthe normal attributes to programming such as functions, variables, statements, expressions etc. All of this reference material can be found at https:/// manual/5.3/For getting started and using a guided reference, there are several editions of “Programming in Lua” available. Most recent editions are a paid for product that come in paper back or ebook form. While testing out Lua and becoming familiar, a free first edition is available and covers a lot of learning needs to get comfortable with the language. It can be located at https:///pil/contents.html.A major advantage to using Lua is its inherent ability to allow custom functions. While all normal functions and calls are published, there is the ability to add new functions in the DE-4000 firmware. Once new functions are defined and have calls to their internal properties, they then can be published for the user. This includes functions such as our flexible Modbus table and talking with various terminal boards linked in the system. Below is the start to the list of Altronic based functions. As functionality and features come to life through new ideas, this document will continually get updated with the latest scripts that we make available.GETTING STARTED WITH DE-4000 SCRIPTSBasic Scripting on DE-40001. Begin on Dashboard on DE-4000 system environment2. Choose “Global” from menu on left side of screen3. In the Sub-Menu on the Left side select “Scripts”4. Select one of the page icons under one of the 4 script options to open editor5. Scripting can be entered into the editor.Scripting Windows and examples• Master ScriptThe Master Script section is the Primary scripting environment.Primary scripting functions can be written in this section.Exampl e:local suction = get_channel_val(1,1)local discharge1 = get_channel_val(1,3)diff = discharge1 - suctionset_sVirt(“Difference”,diff)The first line gets the channel value from Terminal board 1 Input 1 and stores it in local variable named suction.The second line gets the channel value from Terminal board 1 Input 3 and stores it in local variable named discharge1.The third line takes the discharge1 pressure and subtracts the suction pressure and stores it in the global variable named diff (NOTE: Any value that you want to access from another scripting section must be stored in a global variable. This is used most in calling values into Modbus registers as explained below).The fourth line copies the value from diff and stores it into the Virtual statuschannel named “Difference” This channel can be displayed on the Dashboard.• Control ScriptThe Control Script section is used to override the default controlstrategy found on the Global/Control page. A copy of the defaultcontrol script (found in attached appendix) can be copied into thissection and then modified to change the control functionality as wellas add additional control loops beyond the default 2.• Modbus ScriptThe Modbus Script section is used to move data into and out ofModbus registersdefaultModbus()set_modbus(300,diff)The first line pulls in the factory set Modbus mappingThe second line moves the value from the global variable named diff into the 40300 Modbus RegisterCUSTOM FUNCTIONS FOR SCRIPTINGcreate_param(“index”,default,”category”,”description”)Create a user configurable parameterParameter is stored as “index”Default value (if not changed by user) is defaultParameters will be grouped on the global/params page by categoryDescription is text to describe the parameter to the usere:Examplcreate_param(“numengcyl”,8,”engine params”,”num. of engine cylinders”) Related function(s): get_param()get_channel_label(terminal,channel)Return the label for the input channel defined by terminal, channele:Exampl-- Read channel label for terminal 1, channel 7local chanLabel = get_channel_label(1,7)get_channel_long_label(terminal,channel)Return the channel label, but leave off the short label if definedNote: A channel can be assigned a short label in the DE-4000 channel configuration page. The short label is defined at the end of the channel label and is enclosed in parentheses.For a suction pressure channel you would define the channel label as: Suction Pressure (SP)In this case the channel short label is SPThis function will return the long label defined above as Suction PressureExample:-- Read channel long label for terminal 1, channel 7local shortLabel = get_channel_short_label(1,7)-- Returns “Suction Pressure”get_channel_short_label(terminal,channel)Return the short label for a channel if defined, otherwise return the channel hashNote: A channel can be assigned a short label in the DE-4000 channel configuration page.The short label is defined at the end of the channel label and is enclosed in parentheses.For a suction pressure channel you would define the channel label as: Suction Pressure (SP)In this case the channel short label is SPIf the channel short label is not defined the channel hash will be returned. For example, the channel hashfor Terminal 1, Input channel 12 is T1:IN12e:Exampl-- Read channel short label for terminal 1, channel 7local shortLabel = get_channel_short_label(1,7)-- Returns “SP”get_channel_val(terminal,channel)Returns current value of analog input channel on terminal module terminalReturn value type is numericExample: (reads value of Suction Pressure from terminal module #1, IN5)local sp = get_channel_val(1,5)get_gbl(“index”,default)Return global config setting stored under index or return default if not definedNote: get_gbl is used to retrieve global CONFIGURATION settings that are typically set when the system is configured and do not change as the system is running.If you want to set and retrieve global STATUS variables use the get_sGbl() and set_sGbl() functions. If you want to create and read virtual channels use the set_sVirt() and get_sVirt() functions.Example: (get the number of terminal boards installed in the system)local nt = get_gbl(“NumTerm”,1)get_modbus(register)Return the value stored in a 40000 block Modbus registerNote: This function returns values from the 40000 block of registers. In other words, passing the value of 250 into this function will return the value stored at Modbus register 40250Example:local regVal = get_modbus(250)set_sVirt(“Reg40250”,regVal) --create virtual channel with--value from register 40250Related function(s): set_modbus()get_param(“index”)Return either the default value or the user configured value of the parameter indexExample: (get the configured parameter for number of engine cylinders)get_param(“NumEngCyl”)Related function(s): create_param()get_rpm(channel)Reads the RPM input channel in units of revolutions per minuteNote: valid channel numbers are 1 – 10 (2 channels each per 5 possible Terminal Modules)Each Terminal Module has 2 RPM inputs (RPM1 and RPM2)Terminal Module #1 RPM channels are 1,2Terminal Module #2 RPM channels are 3,4Terminal Module #3 RPM channels are 5,6Terminal Module #4 RPM channels are 7,8Terminal Module #5 RPM channels are 9,10Example: (read RPM1 channel on Terminal Module #1and RPM2 channel on Terminal Module #3)local engineRPM = get_rpm(1)local turbuRPM = get_rpm(6)get_sGbl(“index”,{default})If “index” is defined in the global status table, returns the value associated with “index”If “index” is not defined and optional {default} is provided then returns {default}Note: It is recommended to always provide a default value when using this functionExample: (get the previously stored value “calculatedPressure”, return 0 if not found)local cp = get_sGbl(“calculatedPressure”,0)Related function(s): set_sGbl()get_state()Return the current engine state (possible values are currently 0 - 10)Example:local engineState = get_state()if engineState > 7 thenset_timer(“WarmupTimer”,1000)endget_sVirt(“index”,default)Returns the value of virtual channel index or returns default if the virtual channel does not existExample: (get the value of the virtual channel ElapsedTime and set value of status global “timeExceeded” if ElapsedTime is greater then status global “timeLimit”)local tl = get_sGbl(“timeLimit”)local et = get_sVirt(“ElapsedTime”,0)if et > tl thenset_sGbl(“timeExceeded”,true)elseset_sGbl(“timeExceeded”,false)endRelated function(s): set_sVirt()get_time()Return the Unix “epoch” time (defined as number of seconds elapsed since Jan 1, 1970)Note: you can measure elapsed time by storing a get_time() value at one event and later reading the current get_time() and then subtract the first time from the second timeExample: (store current time if first time through, otherwise calculate elapsed time)local startTime = get_sGbl(“startTime”,0)if startTime ==0thenlocal currentTime = get_time()startTime = currentTimeset_sGbl(“startTime”,currentTime)endlocal et = get_time()- startTimeset_sVirt(“ElapsedTime”,et)get_timer(“index”)Returns 1 or 2 valuesFirst return value (boolean) is true if timer is active(counting down) or false if timer is expired or false if time has not been set Second return value is number of seconds remaining or -1 if timer is not active or -1 if timer has not been setExample: (if timer is expired, then set global status “timedOut” to true)if not get_timer(“myTimer”)thenset_sGbl(“timedOut”,true)elseset_sGbl(“timedOut”,false)ende: (set virtual channel to show number of remaining seconds)Exampllocal active,remaining = get_timer(“myTimer”)if not active thenset_sVirt(“timeRemaining”,”Expired”)elseset_sGbl(“timeRemaining”,remaining)endRelated function(s): set_timer()RandomVariable(length)Create a string composed of random alpha/numeric text. The length of the returned string is passed in as length e:Exampl-- get a random string 10 characters longlocal randomText = RandomVariable(10)-- returns a random string such as “AIqbFfzQ68”set_modbus(register,value)Set a value into a 40000 block Modbus registerNote: This function sets values into the 40000 block of registers. In other words, passing the register parameter of 250 into this function will set the value stored at Modbus register 40250Example:-- Read channel value at Terminal 1, channel 5 and write-- to Modbus register 40250local chanVal = get_channel_val(1,5)set_modbus(250,chanVal)Related function(s): get_modbus()set_sGbl(“index”,value)Store value in the global status table under “index”Value can be a number or a string but if storing a boolean, use tostring()Example: (store boolean value “minPressureExceeded”)local mpe =falselocal sp = get_channel_val(1,5)if sp >15thenmpe =trueendset_sGbl(“minPressureExceeded”,tostring(mpe))Related function(s): get_sGbl()set_sVirt(“index”,value)Sets a virtual status channel with channel name indexNote: once you create a virtual channel, you can add that channel to the dashboard using the channel name index Example: (calculate differential between suction and discharge pressure and assign to virtual channel)local sp = get_channel_val(1,5) --suction pressurelocal dp = get_channel_val(1,6)--discharge pressurelocal diffPress = dp - spset_sVirt(“SuctDischDiff”,diffPress)Related function(s): get_sVirt()set_timer(“index”,secs)Activate timer “index” and set countdown time to secsExample: (create timer “myTimer” and start countdown time at 300 seconds)set_timer(“myTimer”,300)Related function(s): get_timer()APPENDIX:DEFAULT CONTROL LOOP SCRIPT:local rampRate1=get_gbl(“rampRate1”,0.8)local rampRate2=get_gbl(“rampRate2”,0.8)local dischTerm=tonumber_def(get_gbl(“spDischTerm”,0),0)local dischChan=tonumber_def(get_gbl(“spDischChan”,0),0)local suctTerm=tonumber_def(get_gbl(“spSuctTerm”,0),0)local suctChan=tonumber_def(get_gbl(“spSuctChan”,0),0)local suctMin=tonumber_def(get_gbl(“suctMin”,0),0)local recycleMin=tonumber_def(get_gbl(“recycleMin”,0),0)local recycleMax=tonumber_def(get_gbl(“recycleMax”,0),0)local suctSp=tonumber_def(get_gbl(“suctSp”,0),0)local dischMax=tonumber_def(get_gbl(“dischMax”,0),0)local dischSp=tonumber_def(get_gbl(“dischSp”,0),0)local outputTerm=tonumber_def(get_gbl(“outputTerm”,0),0)local outputChan = tonumber_def(get_gbl(“outputChan”,0),0)local recycleTerm = tonumber_def(get_gbl(“outputTerm2”,0),0)local recycleChan=tonumber_def(get_gbl(“outputChan2”,0),0)local speedRevAct = tonumber_def(get_gbl(“speedRevAct”,0),0)local recycleRevAct = tonumber_def(get_gbl(“recycleRevAct”,0),0) local outputLow = tonumber_def(get_gbl(“outputLow”,0),0)local outputLow2 = tonumber_def(get_gbl(“outputLow2”,0),0)local outputHigh = tonumber_def(get_gbl(“outputHigh”,0),0)local outputHigh2 = tonumber_def(get_gbl(“outputHigh2”,0),0)local spSuctType = get_gbl(“spSuctType”,”linear”)local spDischType = get_gbl(“spDischType”,”linear”)local suctPIDPFactor = tonumber_def(get_gbl(“suctPIDPFactor”,0),0) local suctPIDIFactor = tonumber_def(get_gbl(“suctPIDIFactor”,0),0) local suctPIDDFactor = tonumber_def(get_gbl(“suctPIDDFactor”,0),0) local dischPIDPFactor = tonumber_def(get_gbl(“dischPIDPFactor”,0),0) local dischPIDIFactor=tonumber_def(get_gbl(“dischPIDIFactor”,0),0) local dischPIDDFactor=tonumber_def(get_gbl(“dischPIDDFactor”,0),0) local recycleCtrl=falselocal recycleSuctionRev=falselocal recycleDischargeRev=falseif recycleChan>0 and recycleTerm>0thenrecycleCtrl=trueend--if recycleCtrl and spSuctType == “linear” and outputLow2 > suctSp then -- recycleSuctionRev = true--end--if recycleCtrl and spDischType == “linear” and recycleMax < dischSp then -- recycleDischargeRev = true--end--print(“disch: “..tostring(disch)..” suct:”..tostring(suct))--local suct = 500local dischPct=100local suctPct=100local dischOutput=0local suctOutput = 0local rSuctOutput = 0local rDischOutput = 0local minLoad = 0local maxLoad = 100local minRecycle = 0local maxRecycle = 100local speedTarget=get_sGbl(“speedTarget”,0)local recycleTarget=get_sGbl(“recycleTarget”,0)function map_range(rangeLow,rangeHigh,input)if input<=rangeLow and input<=rangeHigh thenreturn0endif input>=rangeLow and input>=rangeHigh thenreturn100endlocal rangeDiff=math.abs(rangeLow-rangeHigh)local min = math.min(rangeLow,rangeHigh)local retval=math.abs(input-min) /rangeDiff*100 if retval>100then retval=100endif retval<0then retval=0endreturn retvalendlocal suct= falselocal suctVal=0if tonumber_def(get_gbl(“spSuctEn”,0),0)==1thenif suctTerm>0and suctChan>0thensuctVal=get_channel_val(suctTerm,suctChan)suct=trueendendif suct thenif spSuctType ==“linear”thenlocal suctDiff = suctSp - suctMinif suctDiff == 0 then suctDiff = 1 endif suctVal < suctSp thenlocal suctErr = suctSp - suctValsuctPct = suctErr / suctDiffif suctPct > 1 then suctPct = 1 endif suctPct < 0 then suctPct = 0 endsuctOutput =(1 - suctPct)* 100elsesuctOutput = 100endelseset_gbl(“PIDsuctEnable”,1)set_gbl(“PIDsuctPFactor”,suctPIDPFactor)set_gbl(“PIDsuctIFactor”,suctPIDIFactor)set_gbl(“PIDsuctDFactor”,suctPIDDFactor)set_gbl(“PIDsuctSp”,suctSp)set_gbl(“PIDsuctDeadband”,0.2)local suctPidOutput = doPid(“suct”,suctVal)suctOutput = suctPidOutputendelsesuctOutput = 100endlocal disch =falselocal dischVal = 0if tonumber_def(get_gbl(“spDischEn”,0),0) == 1 thenif dischTerm > 0 and dischChan > 0 thendischVal = get_channel_val(dischTerm,dischChan) disch =trueendendif disch thenif spDischType ==“linear”thenlocal dischDiff = dischMax - dischSpif dischDiff == 0 then dischDiff = 1 endif dischVal > dischSp thenlocal dischErr = dischVal - dischSpdischPct = dischErr / dischDiffif dischPct > 1 then dischPct = 1 endif dischPct < 0 then dischPct = 0 enddischOutput =(1 - dischPct)* 100elsedischOutput = 100endelseset_gbl(“PIDdischEnable”,1)set_gbl(“PIDdischPFactor”,dischPIDPFactor)set_gbl(“PIDdischIFactor”,dischPIDIFactor)set_gbl(“PIDdischDFactor”,dischPIDDFactor)set_gbl(“PIDdischSp”,dischSp)set_gbl(“PIDdischRevAct”,1)set_gbl(“PIDdischDeadband”,0.2)local dischPidOutput = doPid(“disch”,dischVal)dischOutput = dischPidOutputendelsedischOutput = 100end--print(“suctOutput dischOutput: “..math.floor(suctOutput)..” “..math. floor(dischOutput))local minOutput = 100local winning = 0if suctOutput < minOutput thenminOutput = suctOutputwinning = 1endif dischOutput < minOutput thenminOutput = dischOutputwinning = 2endif suctOutput == dischOutput thenwinning = 0endif winning == 0 thenset_gbl(“PIDsuctMax”,100)set_gbl(“PIDdischMax”,100)endif winning == 1 thenset_gbl(“PIDdischMax”,math.min(suctOutput + 2,100))set_gbl(“integraldisch”,0)set_gbl(“lastErrdisch”,0)set_gbl(“outputSumdisch”,0)set_gbl(“PIDsuctMax”,100)endif winning == 2 thenset_gbl(“PIDsuctMax”,math.min(dischOutput + 2,100))set_gbl(“integralsuct”,0)set_gbl(“lastErrsuct”,0)set_gbl(“outputSumsuct”,0)set_gbl(“PIDdischMax”,100)endlocal recycleMinOutput = minOutputlocal manOutput = 0--******************************************************************** local manMode = 0local manTerm = tonumber_def(get_gbl(“manTerm”,0),0)local manChan = tonumber_def(get_gbl(“manChan”,0),0)if manTerm > 0 and manChan > 0 thenlocal manInput = get_channel_val(manTerm,manChan)if manInput > 0.5 thenmanMode = 0set_sVirt(“SpeedControl”,”Auto”)elsemanMode = 1set_sVirt(“SpeedControl”,”Manual”)endelseif get_sVirt(“SpeedControl”,”Auto”) == “Auto”thenmanMode = 0elsemanMode = 1endend--[[local idleSpeed = get_gbl(“idleSpeed”,0)local lowSpeed = get_gbl(“lowSpeed”,0)local highSpeed = get_gbl(“highSpeed”,0)local speedPct = 0if st> highSpeed then st= highSpeed endif st< lowSpeed then st = lowSpeed endif get_state() ~= 8 then--st= idleSpeedendset_sVirt(“SpeedTarget”,st)speedPct =(st - lowSpeed) /(highSpeed - lowSpeed) * 100if speedPct < 0 then speedPct = 0 endif speedPct > 100 then speedPct = 100 endst = speedPctif idleSpeed < lowSpeed thenlocal speedRpm = speedPct / 100 * (highSpeed - lowSpeed) + lowSpeed st = (speedRpm - idleSpeed) / (highSpeed - idleSpeed) * 100 --st =(st - idleSpeed) / (highSpeed - idleSpeed) * 100end]]----if manMode == 1 and get_state() == 8 thenlocal manSpeed = get_sVirt(“ManualSpeed”,0)local idleSpeed = get_gbl(“idleSpeed”,0)local lowSpeed = get_gbl(“lowSpeed”,0)local highSpeed = get_gbl(“highSpeed”,0)local maxSpeed = get_gbl(“maxSpeed”,0)local diff = highSpeed - lowSpeedif diff < 0 then diff = 0 endlocal maxDiff = maxSpeed - idleSpeedif maxDiff < 0 then maxDiff = 0 endif get_sVirt(“speedBump”,0) ~= 0 thenlocal si= get_gbl(“SpeedIncrement”,0)local sip = get_param(“SpeedIncrement”,0)if sip ~= 0 then si = sip endmanSpeed = manSpeed +(si * get_sVirt(“speedBump”,0)) set_sVirt(“speedBump”,0)endif get_sVirt(“AutoManBump”,0) > 0 thenset_sVirt(“SpeedControl”,”Auto”)set_sVirt(“AutoManBump”,0)endif get_sVirt(“AutoManBump”,0) < 0 thenset_sVirt(“SpeedControl”,”Manual”)set_sVirt(“AutoManBump”,0)endif manMode == 1 thenlocal manSpeedTerm = tonumber_def(get_gbl(“manSpeedTerm”,0),0)local manSpeedChan = tonumber_def(get_gbl(“manSpeedChan”,0),0)if manSpeedTerm > 0 and manSpeedChan > 0 then--*** USE SPEED PCT TO SET SPEEDlocal speedInput = tonumber(get_channel_val(manSpeedTerm,manSpeedChan)) local speedPct =(speedInput / 5) * 100if speedPct > 100kl then speedPct = 100 endif speedPct < 0 then speedPct = 0 endmanOutput = speedPctmanSpeed =math.floor((speedPct / 100) * diff + lowSpeed + 0.5) else-- Use ManualSpeed to set speedmanOutput = ((manSpeed - lowSpeed) / diff) * 100.0if manOutput < 0 then manOutput = 0 endif manOutput > 100 then manOutput = 100 endendminOutput = manOutputelse--speedTarget =local stRpm =(speedTarget/100) * maxDiff + idleSpeedif stRpm < lowSpeed then stRpm = lowSpeed endif stRpm > highSpeed then stRpm = highSpeed endmanSpeed =math.floor(stRpm)end--speedTarget = get_sGbl(“speedTarget”,0)if manSpeed < lowSpeed thenmanSpeed = lowSpeedendif manSpeed > highSpeed thenmanSpeed = highSpeedendset_sVirt(“ManualSpeed”,manSpeed)--******************************************************************** local output1 = 0local output2 = 0if spSuctType ==“pid”or spDischType ==“pid”then--Map minOutput to output1output1 = map_range(outputLow,outputHigh,minOutput)set_sVirt(“out1”,output1)--Map minOutput to ourput2output2 = map_range(outputLow2,outputHigh2,recycleMinOutput)set_sVirt(“out2”,output2)local hasRPM = idleSpeed > 0 and lowSpeed > 0 and highSpeed > 0 and max-Speed > 0if outputTerm and outputChan thenif hasRPM thenlocal speedRpm = output1 / 100 *(highSpeed - lowSpeed) + lowSpeed--set_ao_val(outputTerm,outputChan,(speedRpm - idleSpeed) / (maxSpeed - idleSpeed) * 100)speedTarget = (speedRpm - idleSpeed) / (maxSpeed - idleSpeed) * 100 else--set_ao_val(outputTerm,outputChan,output1)speedTarget = output1endendif recycleTerm and recycleChan thenset_ao_val(recycleTerm,recycleChan,output2)endif get_state()== 9 thenspeedTarget = get_sGbl(“speedTarget”,0)if speedTarget > 0 then speedTarget = speedTarget - rampRate1 end if speedTarget < 0 then speedTarget = 0 endendif get_state()< 8 then speedTarget = 0 endset_sGbl(“speedTarget”,speedTarget)--set_sGbl(“a”..outputChan,speedTarget)set_ao_val(outputTerm,outputChan,speedTarget)--set_ao_val(outputChan,speedTarget)--print(suctOutput..” “..dischOutput..” “..speedTarget)set_sVirt(“spTarget”,speedTarget)--set_speed_val(1,speedTarget)if hasRPM thenlocal sRpm =(speedTarget/100)* maxDiff + idleSpeedset_sVirt(“Speed Target”,math.floor(sRpm + 0.5))endelse-- Remember that minOutput is 0 - 100 pct of lowSpeed <-> highSpeed -- We need to convert this to 0 - 100 pct of idleSpeed <-> maxSpeed local suctPct = map_range(outputLow,outputHigh,minOutput)local speedRpm = suctPct / 100 *(highSpeed - lowSpeed) + lowSpeed minOutput =(speedRpm - idleSpeed) /(maxSpeed - idleSpeed) * 100if minOutput <= speedTarget thenspeedTarget = speedTarget - rampRate1if speedTarget < minOutput then speedTarget = minOutput endelsespeedTarget = speedTarget + rampRate1if speedTarget > minOutput then speedTarget = minOutput endif speedTarget > maxLoad then speedTarget = maxLoad end endif speedTarget > maxLoad then speedTarget = maxLoad endif speedTarget < minLoad then speedTarget = minLoad endif recycleCtrl thenlocal recyclePct = map_range(outputLow2,outputHigh2,recycleMinOutput) --if recycleRevAct == 1 then recyclePct = 100 - recyclePct endif recyclePct <= recycleTarget thenrecycleTarget = recycleTarget - rampRate2if recycleTarget < recyclePct then recycleTarget = recyclePct endelserecycleTarget = recycleTarget + rampRate2if recycleTarget > recyclePct then recycleTarget = recyclePct endendif recycleTarget > maxRecycle then recycleTarget = maxRecycle endif recycleTarget < minRecycle then recycleTarget = minRecycle endlocal recycleOutput = recycleTargetif get_state() < 8 thenrecycleTarget = 0endif recycleRevAct == 1 thenrecycleOutput = 100 - recycleOutputend--set_sGbl(“a”..recycleChan,recycleOutput)set_ao_val(recycleTerm,recycleChan,recycleOutput)set_sGbl(“recycleTarget”,recycleTarget)set_sVirt(“recycleTarget”,recycleTarget)endif get_state() == 9 thenspeedTarget = get_sGbl(“speedTarget”,0)if speedTarget > 0 then speedTarget = speedTarget - rampRate1 end if speedTarget < 0 then speedTarget = 0 endendif get_state() < 8 then speedTarget = 0 endset_sGbl(“speedTarget”,speedTarget)--set_sGbl(“a”..outputChan,speedTarget)set_ao_val(outputTerm,outputChan,speedTarget)--set_ao_val(outputChan,speedTarget)--print(suctOutput..” “..dischOutput..” “..speedTarget)set_sVirt(“spTarget”,speedTarget)--set_speed_val(1,speedTarget)local sRpm =(speedTarget/100) * maxDiff + idleSpeedset_sVirt(“Speed Target”,math.floor(sRpm + 0.5))end。
ICS-1000离子色谱系统操作手册戴安中国有限公司技术服务中心2003.4目录1. 简介﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒ 22.仪器介绍﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒ 63. 操作﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒224. 故障指南﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒275. 维修﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒34 附录A 技术指标﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒48 附录B 安装﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒51 附录C 常见问题﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒﹒611. 简介1.1离子色谱ICS-1000离子色谱系统可以进行抑制型或非抑制型电导检测,它由淋洗液、高压泵、进样阀、保护柱/分离柱、抑制器、电导池和数据处理系统组成。
首先分析已知组成和浓度的标准样品溶液,由数据处理系统生成校正曲线,再分析经过必要前处理的样品溶液,数据处理系统将其结果与先前生成的校正曲线进行比较,完成定性/定量的计算,得到样品结果。
图1. 离子分析流程图①淋洗液ICS-1000可以进行等浓度淋洗。
②进样阀液体样品由自动进样器或人工注入定量管后切换位置,由淋洗液推入分析柱。
③分离ICS-1000采用离子交换的分离方式,根据离子半径和价态的不同通过分离柱分离。
④抑制淋洗液和样品离子从分离柱进入抑制器,淋洗液的电导被抑制,背景噪音降低。
⑤检测电导池检测样品离子的电导率。
⑥数据分析电导池将检测信号传输至数据收集系统,根据离子的保留时间、峰高/峰面积等参数进行定性/定量计算,得出最终结果。
1.2 仪器概述ICS-1000包括泵、进样阀、柱加热器和电导检测器等,根据检测需要采用不同类型的保护柱、分离柱和抑制器,还可以选择柱加热器。
Chromeleon(6.50 SP2)是基于Windows 2000/XP操作平台的色谱数据处理系统,具备强大的数据采集和处理功能。
1.3 说明第一章《简介》介绍了操作书册的使用和安全注意事项。
第二章《特性》介绍了ICS-1000的操作特性、系统组成和Chromeleon的用户界面。
Controle AnalytiqueK4000操作手册杭州川达仪器成套工程有限公司地址:杭州上塘路登云路口紫荆家园31-1-301电话:0086-571-88261597 传真:0086-571-88261508 E-mail:instrumax@ 邮编:310015目 录1 关于本手册 (1)2 忠告 (2)2.1 当心 (2)2.2 谨防触电 (2)2.3 谨防爆炸 (2)2.4 气体的性质 (2)2.5 安全规范 (2)2.6 高压气瓶的搬运和储存 (3)3 承诺和服务 (4)4 技术指标 (5)5 系统描述 (6)5.1 简介 (6)5.2 K4000系统结构概述 (6)5.3 分析部分硬件描述 (11)5.4 电路 (13)6 安装和启动 (16)6.1 供电电源 (16)6.3 载气附件选择 (16)6.4 仪表的安装 (16)6.5 仪表的启动 (17)6.6 减压阀的吹洗 (17)7 控制界面描述 (20)7.1 数字/字符控制 (20)7.2 二元开关控制 (20)7.3 滑动控制 (20)7.4 软键控制 (21)7.5 选择目录控制 (21)7.6 光标控制 (22)7.7 画面 (22)8 菜单介绍 (23)8.1 实时谱图菜单 (24)8.2 分析谱图菜单 (26)8.3 系统诊断菜单 (27)8.4 系统校验菜单 (33)8.5 阀时序菜单 (35)8.7 I/O组态菜单 (39)8.8 系统组态菜单 (39)8.9 密码菜单 (45)9 仪表的维护 (48)9.1 冷阱的更换步骤 (48)9.2 除水器的更换步骤 (48)9.3 自动切换阀的更换步骤 (48)9.4 调整时序的步骤 (48)9.5 电离池的清洗 (49)9.6 定期检查 (49)1 关于本手册该仪表采用“即插即用”的思路设计,使用简单,简单易懂.操作仪表时不需要了解电路,软件和物理细节等方面的情况,这正是我们所希望的.我们知道您希望仪表能尽可能快的投入使用,为此请花时间来认真阅读本手册.每一章都假设您已阅读并理解了前面的章节,且对使用者来说都有重要的内容.仪表非常容易安装和使用并免维修.操作仪表时不需特别的技术知识.我们希望您喜欢K4000系列分析仪.为了不断的进步和提高,我们非常感激您提供有建设性的意见,不管是正面的还是负面的.Controle Analytique Inc.公司相信该手册上所述的信息是准确的.本文经过仔细的校对.若有错误,C.A.公司不对原先版本的持有者声明,公司保留修改和制作下一版本的权利.若读者发现错误,请与 C.A.公司联系,若因为本文或其包含的信息的缘故造成的损坏,公司将负全部责任.没有本公司的同意,任何人不准用任何形式复制或生产用户手册或产品的任何部分.同样,本手册也受法律保护,只能用于怎样操作仪表.除此之外,任何形式的使用须得到本公司的同意.感谢你购买本公司的产品2 忠告2.1 当心不合适的仪表安装,操作和维护会造成仪表的损坏,制造商对此不负责任.2.2 谨防触电只有机箱安全关闭,才能进行操作.修理仪表时有高压电暴露在外,若接触到会使人触电致死或重伤.为了保证仪表的安全和正常运转,交流电源需接有地线.维修前报警继电器和数字输出继电器的供电电源需断开.随意更改和替换部件将会影响产品的安全.只能使用厂家许可的部件.2.3 谨防爆炸仪表中除了可通入用户手册允许的气体外,不能通入其它气体.仪表不能在危险区域使用.氧/氢的安全若仪表用于分析以氧为主成份的样品,所有继电器须能在氧环境下使用;不能使用含油脂或碳氢化合物的密封剂.若仪表用于分析以氢为主成份的样品,必须加吹洗.若仪表用于分析以氢和氧为主成份的样品,不仅需吹洗,使用环境还要有强对流,防止泄漏的爆炸气体聚积.还要装一个样品气切断阀,断电时将样品气切断.并结合当地对此的要求.若仪表用于分析以氢和氧为主成份的样品时,取样预处理系统的设计,集成和使用必须慎重考虑.它们对正确的安装,操作和维护仪表及相关部分必须是可靠的,请参照CGA出版物和当地的要求.2.4 气体的危险氩气和稀有气体(氦,氖,氪,氙)是单原子且化学性质不活泼,无色,无味,无刺激性,无腐蚀.但它们会令人窒息,因此它们放置处一定要通风.氮气是双原子,无色,无刺激性,无腐蚀;也会令人窒息,因此其放置处一定要通风.2.5 安全规范为避免触电,请别移动机箱或打开后盖.用户不要对机器内部进行修理,修理应由专家进行.为避免起火或触电,仪表要防雨和防潮.贴有闪电符号的部件表面有电,不要触摸它,否则有触电危险.1. 第一次使用设备前务必要阅读操作手册中的安全说明和操作说明.手册应放置好,以备将来使用.2. 安全警告:留意设备及手册上的安全警告,按照其要求操作.3. 水和水蒸气:不要在水边使用,如浴室,水盆,下水道,洗衣机,游泳池附近或是潮湿的地下室内.4. 通风:无论设备放在那里,都需通风.不要置于床上,沙发,地毯或类似易堵住散热孔的物体上.要确保通风以免过热.5. 热效应:不要把设备置于热源附近,如电热器、暖气、炉等.6. 电源:电源必须是机器上或操作手册上指定的电源.7. 电源插座:注意电线,防止践踏,任何东西不得靠近电线,尤其要注意插头、插座以及供电处附近区域.8. 清洁:清洁设备应遵从制造商的建议.9. 设备不用:若一段时间不使用该设备,请把插头从插座上拔下.10. 杂物:确保机箱内没有液体或其它杂物.11. 修理:机器的修理必须由专业人员进行,除了操作手册上允许的维护外,不要擅自行动.修理前要咨询专家.2.6 高压气瓶的搬运和储存本仪表通常用于检验高压气瓶中的气体含量,气瓶的错误操作会使人致死或重伤,或造成财产损失.搬运气瓶需要格外的细心.参见高压气瓶搬运和储存的注意事项,下面一些注意事项摘自COMPRESSED GAS ASSOCIATION’S HANDBOOK(压缩气体协会手册).1.绝不能摔气瓶或使它们互相剧烈碰撞.2.气瓶可以存放在户外,但在这种条件下,必须避开恶劣天气.地面不能潮湿,以防生锈.3.气瓶未固定时一定要加安全帽.4.要避免拖、滚、滑气瓶,即使是一小段距离也不行,需要移动时,应使用合适的手推车.5.不要更改阀或气瓶的安全装置.6.不要把满的和空的气瓶放在一起,当空的气瓶接在增压系统中时,将发生严重的倒吸现象.7.气瓶温度不得超过1250F(520C),压缩气瓶的任何部分不得接近火焰.8.不得把气瓶接在电路上.电焊时小心电弧溅向气瓶.3 承诺及服务本公司承诺:从产品安装日起12个月内或发货日起18个月内,仪表在正常使用和和维护条件下出现的质量问题(不包括易耗品),公司免费维修.易耗品、除水器、O型圈等在正常使用条件下出现质量问题,公司免费维修90天,日期从发货日算起.更换、维修的产品和部件以及剩余部分,此承诺同样有效,有效期90天.当出现问题的产品,部件及消耗品可更新,修理或更换时,用户不应提出异议.非产品制造质量引起的直接或间接损失,本公司概不负责.服务条例1. 如果在保修期间产品出现问题,公司将免费进行维修.超过保修期,顾客需支付劳务和材料费用.2. 在保修期内,顾客退回产品进行维修而发现并无质量问题,顾客需支付最低的维修费用.3. 更换部件,原始部件及分析仪的模块号和序列号需提供.若原始部件不送回,C.A公司将不会寄出更换的部件.仪表返修1. 要返修仪表,用户需得到一个返修号.2. 提供订单号或其它可接受的资料.3. 遇到的故障连同客户的姓名、地址、电话及返修号列成清单,一并寄回.4. 寄回仪表要用原始或同样的包装,否则包修自动失效.5. 每一个气体进出口用封头密封,否则包修自动失效.6. 在包装箱外面注明返修号.7. 使用C.A公司同意的运输方式,空运时货物应直达,不接受中途转运.受其它条件的限制,也可申请海运.商标:本公司采用CONTROL ANALYTIK®商标.所有权顾客应认可Controle Analytique公司对Controle Analytique的软件、操作系统、硬件及其它商品的所有权.未经Controle Analytique公司的书面允许不得对产品进行变换、更改、损坏、改造、复制等.4 技术指标参照仪表后盖上的系统结构和操作参数。
依尔通变频器操作说明一、控制面板功能简介1,显示屏幕2,LED指示灯通过以上各个指示灯,我们可以了解变频器工作的不同运行状态,见下表。
3,控制键控制键用于直接给出运行、停止和复位命令。
默认情况下,远程控制设置这些键是无效的。
通过在菜单Run/Stop Ctrl [213]和Reset [214]中选择面板激活这些键。
4,本地/远程切换按键5,功能键操作相应的功能键,我们可以对变频器的全部参数进行设置,具体功能见下表.二、变频器参数菜单设置方法变频器上电以后,显示屏幕将显示菜单【100】,默认设置状态下,将显示实际转速和转矩。
在某级菜单中按ENTER键进入下级子菜单,按ESC键返回到上级菜单;按PREVIOUS键和NEXT键进入同级别菜单。
需要改变菜单的参数值,按+键或-键,参数代码开始闪烁,此时一直按住+键或-键参数值就连续改变,到需要设定的数值时松开按键,然后按ENTER键确认改变。
还要另一种设置参数值的方式,在参数代码开始闪烁的时候,按NEXT或PREVIOUS 键可以移动光标至参数值处或数字的某个数位。
再按+键或-键改变参数值,按ENTER键保存该参数。
以下以具体的例子来说明参数值设置的操作步骤,该例子是将加速时间即参数【331】从2秒改成4秒,详见下图。
三、变频器运行的准备工作1,检查提升系统上下极限位置开关是否正确连接,当极限位置开关动作时,变频器应断开电源。
2,检查提升电机电源线接线,线径足够,连接牢固。
3,检查提升斗位置信号开关,安装位置是否合理,间距是否合适,小车经过时,信号能否正确感应。
信号线连接是否正确,注意不能相互混淆,从下至上依次是下停车位、下减速位、上减速位、上停车位。
4,刹车系统(即制动器)接线应单独分开,检查其能否正常制动和释放,不能正确动作的应查明原因予以解决,这是小车正常运行的根本保证。
5,查提升电机铭牌,记下额定电压、额定电流、额定转速、额定频率、电机额定功率等基本参数值,这些数据在参数设置时将会被应用到。
K-4000CK使用说明书一、K-4000CK系统特点:1、32级—65536级灰度控制,软件Gamma校正处理。
2、支持各种点、线、面光源,支持各种规则,异形处理。
3、控制器4个端口输出,每个端口最大可带1024灯。
4、播放内容存放在SD卡中,SD卡内最多可存放32个效果文件,SD卡容量支持128MB-32GB。
5、控制器可单台使用,也可多台级联使用,级联采用光电隔离方式:抗干扰、稳定性更好,两台之间的级联距离可达150米,需使用0.5个平方的纯铜电源线。
6、控制器带载芯片可以在软件上锁定带载的IC,也可以在软件上不锁定,通过调节控制器的芯片按键来选着带载IC,此方案更灵活、方便。
7、控制器自带测试效果分别为:1.红绿蓝白黑跳变;2. 红绿蓝白黑渐变;3红绿蓝白推移。
备注:控制器带载灯具512个点速度可以达到30帧/秒,768个点速度可以达到25帧/秒,1024个点速度可以达到22帧/秒(以上参数以1903协议类 IC数据为例,不同IC会存在差异)二、支持芯片:(上位机软件选着K-8000-RGB)00:UCS1903,1909,1912,2903,2904,2909,2912;TM1803,1804,1809,1812;SM16703,16709,16712;WS2811,WS2812,WS2813,WS2815,WS2818;INK1003;LX3203,1603,1103;GS8205,8206;SK6812(最大带灯1024*8=8192像素点)01:SM16716,16726(最大带灯1024*4=4096像素点)02:P9813(最大带灯1024*4=4096像素点)03:LPD6803(最大带灯1024*4=4096像素点)04:LX1003,1203(最大带灯1024*4=4096像素点)05:WS2801(最大带灯1024*4=4096像素点)06:LPD1886(最最大带灯1024*4=4096像素点)07:TM1913(最大带灯1024*4=4096像素点)08:TM1914(最大带灯1024*4=4096像素点)09:P9883,P9823(最大带灯1024*4=4096像素点)10:DMX(最大带灯512*4=2048像素点,建议带载≤320*4=1280像素点)11:DMX 500K(最大带灯512*4=2048像素点,建议带载≤320*4=1280像素点)12:DMX 250K-CZF (最大带灯512*4=2048像素点,建议带载≤320*4=1280像素点)13:DMX 250K-CZF (最大带灯512*4=2048像素点,建议带载≤320*4=1280像素点)备注:带载DMX 信号的灯具,只支持一根信号线的DMX,不支持A(DAT+)、B(DAT-)信号线三、外观图片:四、 丝印含义:按键含义:DC 5V DC5V 电源输入 直流5V 和12-24V 任选一路供电即可,5V 采用DC 插头供电,12-24V 采用接线端子GND 电源负极 DC12-24V 直流供电12-24V 电源灯POWER 电源指示灯 状态灯Status 状态指示灯 级联灯 sync 级联指示灯 SD 卡/SD CARDSD 卡插槽信号输出(TTL/245信号):速度等级对应帧频: 速度等级 帧频/秒速度等级帧频/秒1 4帧 9 14帧2 5帧 10 16帧3 6帧 11 18帧4 7帧 12 20帧5 8帧 13 23帧6 9帧 14 25帧7 10帧 15 27帧 812帧1630帧五、接线方式按键 含义芯片CHIP 选择芯片型号模式MODE 切换文件 速度SPEED+ 速度加快 同时按下SPEED+和SPEED-,则进入文件循环播放模式 速度SPEED-速度减慢GND GND(负极) DAT 数据 CLK时钟注:1.当控制器多台级联时从第二台控制器开始数码屏显示2 2 2 ,同时级联灯:亮、灭、亮、灭、频闪,所有级联控制器的播放速度由第一台控制;2.控制器多台级联时,第一台的输出端口OUT1对应布灯图C1P1,OUT2对应布灯图C1P2,OUT3对应布灯图C1P3,OUT4对应布灯图C1P4;第二台的输出端口OUT1对应布灯图C2P1, 第二台的输出端口OUT2对应布灯图C2P2,依次类推六、具体参数:储存卡:类型:SD卡容量:128MB—32GB格式:FAT或FAT32格式储存文件:*.led物理参数:工作温度:-30℃—85℃工作电源:直流5V或者直流12-24V输入功耗:5W重量:0.85Kg尺寸:七、注意事项:1、将文件拷贝到SD卡之前,必须先对SD卡格式化,注意是每次拷贝之前都要格式化。
TYPICAL APPLICATIONS Process MonitoringStrain Gauge Measurement Flow Measurement Alarm Monitoring Batch Controlling Speed measurementD I S P L AY S – When used as a Temperature Processor or frequency indicator, 5 digit resolution is provided. The Totaliser has 12 digit resolution displayed in two 6 digit displays. Display update rate is 3.3 Hz.PROGRAMMING –All parameters can be entered by pressing combinations of the three sealed front panel keypads through a series of menus which are displayed on the 6 digit display in helpful mnemonics or via the optional communications port. Lack of keypad use returns the instrument to the run mode. The keys are used individually to review set points and clear latched alarms.COMMUNICATIONS –RS485 communications are optional and by using an RS485/232 converter unit, up to 99 DM4000s may be connected to a host computer to allow access to all configuration and process variable information. Although 99DM4000s can be interfaced on the network RS485 requires additional buffering for more than 32 units.FRONT PANEL –The front panel membrane is sealed to IP65and protects the user replaceable legends and identifying tags.FILTER –The input has a programmable digital filter which can be used to smooth out noisy signals.SELF TESTING –Background self testing is continuous and an internal watchdog monitors the correct operation of the internal microprocessor.The DM4000 is a highly accurate digital process indicator, available in three versions:DM4000U accepts common industrial sensors.DM4000C accepts various types of pulse input to provide RATE and TOTALISE functions.DM4000A is a dedicated Flow Computer accepting analogue inputs and providing RATE and TOTALISE functions.A wide range of options are available enabling the DM4000 to be used in a variety of applications. Two output slots are provided, each of which can accept either a single or dual alarm relay output, an isolated (4 to 20) mA output card or a bridge excitation card. A dedicated slot is also provided which can accept an RS485 serial digital communications card.The sensor type and range are user configurable, either from the front panel or via the optional serial communications port.All ranges are fully calibrated which means the user can change quickly and easily from one sensor type to another. The analogue outputs can be any part of the incoming range allowing the DM4000 to be used as a 'Smart' sensor transmitter.The IP65 sealed front panel protects the DM4000 against environmental conditions such as water and dust. When used with optional gasket.Reduced stock holding due to the versatility of the DM4000 combined with it's exceptional accuracy and stability and 5year warranty, provides for a 'low cost of ownership'.DM4000 SERIESINTRODUCTIONUNIVERSAL INPUTRATE AND TOTALISE FUNCTIONS FLOW COMPUTER OPTION 4 ALARM OPTIONSERIAL COMMUNICATIONS IP65 SEALED FRONT PANEL 2 YEAR WARRANTYGENERAL FEATURESOUTPUTSTwo output slots are provided which can accept a variety of output option cards.1, 2, 3 or 4 alarm relays/pulse outputs(4 to 20) mA isolated analog re-transmission Programmable excitation voltageALARMSALARM status is indicated by individual LED displays for each channel.All alarms can be: High, Low or Deviation and have programmable hysteresis. They can be set to fail safe high or low and can be latching or non-latching. The analogue output can be any part of the input range.In the DM4000A and C versions the relay output can be programmed to give a 100 ms output at decade intervals from the TOTAL display.OPTIONS SPECIFICATIONS @ 20 °C OPTION 01SINGLE RELAY OUTPUT CARD RelaySingle programmable alarm relay.Normally open and normally closed output available.Rating7 A @ 240 VAC or 30 VDC Breakdown Isolation 500 V with respect to inputs*OPTION 02DUAL RELAY OUTPUT CARDRelayTwo independently programmable alarms sharing the same common Rating7 A @ 240 VAC or 30 VDC Breakdown Isolation 500 V with respect to inputs*OPTION 03CURRENT OUTPUTThe output can be driven by either an internal or external power source Accuracy < 0.1 % FSResolution < 0.01 % FS (>10 % of the input range)PowerInternal supply will drive into 700 ΩExternal loop voltage (10 to 30) VDC Breakdown Isolation 500 V with respect to inputs*Response < 100 ms for 63 % change OutputMinimum 0 mA Maximum 22 mAOPTION 04BRIDGE EXCITATION (STRAIN GAUGE) This provides either a programmable (2 to 20) V output or a fixed 24 V stable output Range (2 to 24) VDC Accuracy< 0.1 % FSBreakdown Isolation 500 V with respect to inputs*Stability < 0.056 %/°COutput 50 mA maximum (less current consumed by other output slot)Ripple< 0.05 % FS @ 50 mA*NOTE:Isolation is supplied between inputs, outputs and communication slots but not between two analogue output slots.ENVIRONMENTAL SPECIFICATION Ambient temp.range (0 to 50) °C Relative Humidity (5 to 95) % RH non-condensing Breakdown Isolation Inputs fully isolated 500 V Power Supply 120 VAC (50 to 60) Hz240 VAC (50 to 60) Hz 24 VAC (50 to 60) Hz fully isolated to 1.5 KVUNIVERSALThe DM4000U is a universal digital indicator which can be configured from the front panel to take all common industrial sensors without the need to change option boards or move jumpers. There are two output slots which can accept any of the optional output boards. *NOTES:A/D conversion rate is 10 per second.1.Accuracy includes linearisation and cold junction tracking errors for a (10 to 40)°C ambient temperature for thermocouple inputs.2.Resolutions shown are theoretical maximums, however, resolution is programmable as is the position of thedecimal point for engineering ranges. A/D resolution is 1 part in 25 000 (approximately 15 Bit plus sign).USER LINEARISATIONA user defined linearisation table is provided for non-linear functions. In addition, the user can select a square root,power 3/2or power 5/2function. All displays are in engineering units. This feature is only available for voltage and current inputs.FIELD TRANSMITTER SUPPLYAn internal 19 V supply to power two wire (4 to 20)mA field transmitters is standard. A programmable excitation supply for transducers is available as an option.SPECIFICATIONS @ 20 °CSensor Voltage ±Accuracy Resolution Nominal Range °CK T/C 1°C 0.1 °C -270 to 1200J T/C 1 °C 0.1 °C -210 to 760T T/C 1 °C 0.1 °C -270 to 400R T/C 2 °C 0.5 °C 0 to 1750S T/C 2 °C 0.5 °C 0 to 1750E T/C 1 °C 0.5 °C 0 to 650F T/C 1 °C 0.5 °C 0 to 600N T/C 1 °C 0.5 °C 0 to 1300BT/C3 °C0.1 °C 1000 to 1800Cold Junction 0.5 °C0.1 °C 0 to 50Pt100 0.1 °C ± 0.1 % rdg0.02 °C-200 to 800VOLTAGE 10 V0.02 % FS 0.004 %± 10 V (1 to 5) V 0.04 % FS 0.008 %(1 to 5) V 1 V 0.02 % FS 0.004 %± 1 V 100 mV 0.02 % FS 0.004 % ± 0.1 VCURRENT (4 to 20) mA 0.1 % FS 0.004 % (4 to 20) mA (0 to 20) mA 0.1 % FS 0.004 %(0 to 20) mA (0 to 10) mA0.2 % FS 0.008 %(0 to 10) mADM4000 SMART INDICATOR DM4000 OPTION U SPECIFICATIONS @ 20 °C。
DEC1000和4000控制器操作说明书LED 灯显示含义(从左到右顺序)1灯:DEC1000控制器电源供给,绿灯亮(绿色)。
2灯:当按下紧急停机按钮时,红灯亮(红色)。
3灯:当发电机组出口开关合闸和带载时,该灯亮(绿色)。
4灯:当机组出现故障但未到达停机保护值时,控制器先发出预警信号,但机组还会继续运行不会停机,该灯亮(黄色)5灯:当机组出现预警后任未进行检查处理,当预警值到达报警值时,机组立即自动停止运行进行保护,该灯亮(红色)当机组运行时,RPM:显示机组运转的速度(1500转/分);同时显示机组运行时,充电机输出电压值:13.6V(直流)。
显示:控制器运行累计时间:23589小时;显示:发电机组输出电源频率:50Hz;显示:电池电压13.6V显示:柴油量在油箱的百分比值:37%显示:冷却液温度:85℃(水温)显示:机组运行中机油压力:3.2BAR以上为公制单位显示:柴油量在油箱的百分比值:37%显示:冷却液温度:85F(水温)显示:机组运行中机油压力:40-60PSI以上为英制单位显示:L1-L2相电压:404V;显示:L2-L3相电压:403V;显示:L3-L1相电压:401V显示:L1-N线电压233V;显示:L2-N线电压233V;显示:L3-N线电压232V.显示:L1相电流530A显示:L2相电流537A显示:L3线电流548A机侧启动1、将控制器上钥匙开关从左侧向右侧旋转,打开控制器电源,控制指示灯亮及液晶屏出现文字显示,控制器并读取程序;2、控制器绿色灯亮,说明机组无故障,准备就绪;3、按下“START”绿色按钮,机组立即进行预热10秒,10秒后机组立即启动,机组启动成功允许;4、读取机组允许参数:按下“左侧白色按钮”,每按一次,显示一组参数,其中参数包括:发动机转速、水温、机油压力、3相电压及频率、3相电流、电池电压等;5、按下“STOP”按钮,机组立即停止运转。
第一章启动前检查一、检查润滑系统1. 机油油位是否足够?将油尺抽出用布擦净后插回再抽出检查,正常油位应在接近“FULL”位置。
2、机油品质是否良好?3、机油品牌是否合乎要求?机组采用CF-4I 级,SAE15W-40级机油(推荐品牌:Mobil \埃索、马石油)。
4、机组有无机油泄漏?二、检查燃油系统1. 油箱油位是否足够?(可通过DEC1000/4000控制器显示观察油位%值)油箱应经常保持满油位位置,以供长时间运转。
2. 柴油箱有无沉淀及水?3. 柴油箱有无渗漏现象?三、检查冷却系统1. 水箱有无渗漏?2. 冷却水位是否足够?水箱水位应维持至加水口以下约3/4”至1-1/2”左右,并添加适当的防锈剂和防冻液以避免水道生锈、冰冻。
3. 冷却水是否清洁?冷却水应加注蒸馏水。
四、检查进气系统1、空气滤清器是否干燥,清洁,有无破损?空气滤清器必须保持清洁及正确的安装,以防止未经过滤的空气直接进入发动机内。
五、检查排气系统1. 排气口有无堵塞?2. 消音器,管道安装是否牢固,并处良好状态?3. 防雨盖状况是否良好,管道内有无积水?六、检查电瓶(注:在连接电瓶前应置发电机主开关于“ON转到OFF”位)1. 电瓶电压应为12V(1只电瓶)或24V(2-4只电瓶)。
2. 电瓶线接头是否牢固,有无氧化物?3. 电瓶线接法是否正确? (负极接地)4. 电解液比重是否在正常范围? (1.265,27℃)5. 电解液是否足够?七、检查机组周围环境1. 机组工作区是否干净,有无可能损伤机组的异物?检查机房内是否有物体阻碍空气流通,并检查机组四周是否有散落零件及工具或杂物,以防止其被吸入水箱散热网内,而造成水箱破裂漏水。
十、检查紧急停机开关按下“红色”紧急停机开关,观察机组是否立即停止运行?十一、抄写建档抄写机组所附标牌上注明的机组型号,序号;发动机型号,序号作建档使用。
第二章启动一、机侧启动1、将控制器上钥匙开关从左侧向右侧旋转,打开控制器电源,控制指示灯亮及液晶屏出现文字显示,控制器并读取程序;2、控制器绿色灯亮,说明机组无故障,准备就绪;3、按下“START”绿色按钮,机组立即进行预热10秒,10秒后机组立即启动,机组启动成功允许;4、读取机组允许参数:按下“左侧白色按钮”,每按一次,显示一组参数,其中参数包括:发动机转速、水温、机油压力、3相电压及频率、3相电流、电池电压等;5、按下“STOP”按钮,机组立即停止运转。
二、自动(遥控)启动如机组采取自动模式启动:必须将市电停电后的无源开关量信号接如控制器;该自动控制原理为:闭合机组启动并长期运行;断开机组立即停止。
第三章启动后检查(让机组运行于至正常温度)一、发动机检查●发动机转速是否稳定? (1500-1550rpm)●发动机运转是否平稳?●发动机运转是否有杂音?●机油、燃油、冷却水有无泄漏?●排烟是否正常?●涡轮增压器运转有无杂音?●各连接口是否漏气?●风扇运行是否平稳?●充电机运转是否正常?⏹注:当出现上述任一种情况,均应停机检查。
二、控制器仪表检查并记录作建档使用1. 机油压力应为45-75psi。
2. 冷却液温度应为162-180°F (72-86℃)3. 充电电压应为13-14V(12V起动系统)25-28V(24V起动系统)。
4. 输出电压应为220/380V。
5. 输出频率应为50Hz或52.5Hz(注:当出现上述任一种情况异常,均应停机检查。
)三、带负载运行机组,作同样项目检查。
第四章停机一、手动停机卸除负载,让发电机空载运行至少5分钟(用于冷却)后,按下“STOP”,机组自然停机。
二、自然停机如果发动机是利用远程自动进行停机,则机组会自行运行5分钟,让机组冷却后停机。
三、紧急停机1. 按下紧急停机开关,机组会立即切断油路和气路,使机组立刻停机。
此时,仪表板上“EMERGENCY STOP”和““红”灯会亮。
第五章控制器面板功能介绍一、保险丝控制器显示面板无灯及液晶显示,检查钥匙开关和面板保险丝。
二、警示灯当面板上“黄色”灯亮、机组将继续运行,但不停机;当面板上“红“灯亮,启动前红灯亮,机组将无法启动;当机组运行中“红色”灯亮机组将立即停止运行。
1. 发动机温度高预警(黄)(PREALARM HIGH ENGINE TEMPERATURE)如发动机冷却液温度达到198°F(92℃)时,灯亮;但不停机。
2. 机油压力低预警(黄)(PREALARM LOW OIL PRESSURE)如发动机油压低于23-27psi,灯亮;但不停机。
3. 水温低(黄)(LOW WATER TEMPERATURE)如发动机冷却液温度太低(低于13-18℃),灯亮。
4. 燃油油位低(红)(LOW FUEL)如果油箱内油位,接近空位,灯亮。
5. 发动机温度高(红)(HIGH ENGINE TEMPERATURE)如果发动机冷却液温度达到停机温度时,灯亮。
当发动机温度大于225°F(107℃)且持续5秒后,发动机停车。
6. 机油压力低(红)(LOW OIL PRESSURE)如果机组油压不足且达到应停机油压时,灯亮。
在故障发生后(对柴油机而言,此时油压为11.5-18.5psi (79-128kpa)持续5秒,停机。
7. 紧急停机(红)(EMERGENCY STOP)实施紧急停车时(现场或遥控),灯亮且发动机停车。
8. 超速(红)(OVER SPEED)若机组超速(频率超过70Hz),则机组停机,灯亮。
9. 辅助故障(红)(AUXILIARY FAULT)当其闪烁或持续亮时以表示故障发生。
辅助灯闪烁时:☐设备运转时(除了启动后十秒内)控制器感应到无AC电压输出,该灯会马上闪烁。
当感应有AC电压输出后,闪烁停止且灯灭。
且不需手动复位。
☐当发电机主开关在”RUN”或”AUTO”位置时,重接电瓶或其电压太低后又再升高,该灯会闪烁。
此现象一般是由于电瓶电压不足或电瓶容量不够所引起。
要消除这种情况,须置主开关于OFF/RESET位置。
辅助灯持续发光时:☐当发动机机油温度过高,冷却液面过低,或辅助延时停机持续5秒钟后,该灯即亮,且发动机停车。
运转解除后的30秒之内情况不会发生。
☐若加装的过电压保护装置感应到输出电压过高,辅助灯亮且发动机立刻停车。
☐若用户自己加装的被测设备的传感器动作,该灯亮且发动机立即停机。
10. 电瓶充电器故障(红)(BATTERY CHARGER FAULT)若电瓶充电器不正常工作,灯亮。
11. 电瓶电压低(红)(LOW BATTERY VOLTAGE)若电瓶或充电电压低于标准,灯亮。
若在机组不运转时,由于电瓶或充电器的不工作而导致低电压发生,灯也会亮。
12. 过起动(红)(OVERCRANK)若发动机在连续启动45秒后,或75秒间隔启动后,发动机仍无法启动,灯亮且启动停止。
☐若启动马达或发动机不转动(转子锁定)超过15秒,启动停止且灯亮。
☐若速度感应器超过一秒感测不到讯号,超次启动灯闪烁。
控制器具有自动重新启动功能。
若发动机速度低于13Hz(390rpm),发电机组会试图使其重新启动。
如果未将发动机转速掉落原因予以排除,会导致超次启动灯亮且停机。
13. 辅助故障预警(黄)(AUXILIARY PREALARM)若用户加装的被测设备的传感线路被触发,灯亮。
第六章故障停机一、发电机在下列情况下会自动停机1. 超速:机组运转超过70Hz(2100rpm)。
2. 超次启动:机组连续启动45秒或循环启动(启动15秒,停15秒,连续3次) 75秒仍无法启动时。
3. 低油压:启动后超过5秒机油压力在11.5-18.5psi,机组自动停机。
但第一次启动30秒内保护功能不动作。
4. 高水温:当发动机温度达到225°F(107℃)时,机组自动停机。
但第一次启动30秒内保护功能不动作。
5. 低水位:当感测低水位5秒后机组自动停机。
但第一次启动30秒保护功能不动作。
6. 过电压:超过额定电压15%约2秒,机组停机。
辅助故障灯亮。
第七章故障检修发动机故障的检修1. 启动困难1.1. 发动机无法转动A、电瓶电压太低B、启动马达不良C、发动机内部锁死D、控制器故障E、启动马达接头松脱F、启动马达开关不良G、直流电源保险丝熔毁1.2 启动速度太低A、机油粘度不正确B、启动马达接头松脱C、电瓶电压太低D、启动马达不良1.3 低压缩压力A、进排气阀漏气B、缸盖垫片漏气C、鼓风机不工作D、活塞环磨损或断裂E、排气门间隙调整不当1.4 无燃油或燃油不足A、柴油油管内存有空气B、缸盖垫片漏气C、柴油回油温度太高(应低于D、活塞环磨损或断裂55℃)F、柴油耗尽E、柴油泵或燃油喷射系统机件故障1.5 进排气管阻塞2. 发动机工作不正常2.1 运转不顺或经常熄火A、冷却水温太低B、燃油不足C、喷油嘴不良D、低压缩压力E、调速机不稳定2.2 动力不足A、发动机调整不当或齿轮正时B、燃油不足不当C、进气量不足D、回油温度太低E、环境温度太高3. 排烟分析 (应于水温在正常工作温度范围内时作检查,至少160°F (71℃))3.1 黑或灰色烟A、燃油燃烧不完全B、燃油过多或分配不均C、燃油级别不正确3.2 蓝烟A、机油进入缸内燃烧3.3 白烟A、发动机有一缸未着火4. 发动机发动后自动停机4.1 高水温、低油压、超速、水箱水位不足等警报动作让发动机自动停机。