Description
IC755CSW07CDA Horner Electric
высотой 3U, расположенный в раме управления под DSPX.
волоконно – оптический разъем на передней панели и передаются в модуль обнаружения заземления.
ABB: Запасные части для промышленных роботов серии DSQC, Bailey INFI 90, IGCT, например: 5SHY6545L0001 AC1027001R0101 5SXE10 – 0181, 5SHY3545 L0009, 5SHI3545L0010 3BHB013088 R0001 3BHE009681R0101 GVC750BE101, PM866, PM861K01, PM864, PM510V16, PPD512, PPPD113, PP836A, P865A, 877, PPP881, PPPP885, PPSL500000 4 3BHL00390P0104 5SGY35L4510 и т.д.
General Electric: запасные части, такие как модули, карты и приводы. Например: VMVME – 7807, VMVME – 7750, WES532 – 111, UR6UH, SR469 – P5 – HI – A20, IS230SRTDH2A, IS220PPDAH1B, IS215UCVEH2A, IC698CPE010, IS200SRTDH2ACB и т.д.
Система Bently Nevada: 350 / 3300 / 1900, предохранительные зонды и т.д., например: 3500 / 22M, 3500 / 32, 3500 / 15, 3500 / 23500 / 42M, 1900 / 27 и т.д.
Системы Invis Foxboro: Серия I / A, управление последовательностью FBM, трапециевидное логическое управление, обработка отзыва событий, DAC,
обработка входных / выходных сигналов, передача и обработка данных, такие как FCP270 и FCP280, P0904HA, E69F – TI2 – S, FBM230 / P0926GU, FEM100 / P0973CA и т.д.
Invis Triconex: Модуль питания, модуль CPU, модуль связи, модуль ввода – вывода, например 300830937214351B, 3805E, 831235114355X и т.д.
Вудворд: контроллер местоположения SPC, цифровой контроллер PEAK150, например 8521 – 0312 UG – 10D, 9907 – 149, 9907 – 162, 9907 – 164, 9907 – 167, TG – 13 (8516 – 038), 8440 – 1713 / D, 9907 – 018 2301A, 5466 – 258, 8200 – 226 и т.д.
Hima: модули безопасности, такие как F8650E, F8652X, F8627X, F8678X, F3236, F6217, F6214, Z7138, F8651X, F8650X и т.д.
Honeywell: Все платы DCS, модули, процессоры, такие как: CC – MCAR01, CC – PAIH01, CC – PAIH02, CC – PAIH51, CC – PAIX02, CC – PAON01, CC – PCF901, TC – CR014, TC – PD011, CC – PCNT02 и т.д.
Motorola: серии MVME162, MVME167, MVME172, MVME177, такие как MVME5100, MVME5500 – 0163, VME172PA – 652SE, VME162PA – 344SE – 2G и другие.
Xycom: I / O, платы VME и процессоры, такие как XVME – 530, XVME – 674, XVME – 957, XVME – 976 и т.д.
Коул Морган: Сервоприводы и двигатели, такие как S72402 – NANA, S6201 – 550, S20330 – SRS, CB06551 / PRD – B040SSIB – 63 и т. Д.
Bosch / Luxer / Indramat: модуль ввода / вывода, контроллер PLC, приводной модуль, MSK060C – 0600 – NN – S1 – UP1 – NNN, VT2000 – 52 / R900033828, MHD041B – 144 – PG1 – UN и т.д.
In the formula, a is the design acceleration/deceleration value: s is the current actual position value of the
elevator: V2 is the maximum speed of the elevator at this position.
Considering that the lifting system needs to enter the parking track at a low crawling speed when entering the
end of the stroke to avoid equipment damage caused by large mechanical impact, therefore, when there are still
1~5m away from the parking position, the lifting speed is limited to 0.5m/ below s.
Since the instantaneous speed before parking is very low, the position accuracy of the system”s parking can
be relatively improved, which is particularly important when the auxiliary shaft is lifted.
2.2 Design and implementation of security protection functions
Mines have particularly strict requirements on safety and reliability of hoist control systems [5]. While ensuring high
reliability of electrical control equipment, the control system also sets up multiple protections in key links where failures
may occur, and detects the actions and feedback signals of these protection devices in real time.
First of all, monitoring the operating status of the elevator is the top priority in the safety protection
function of the elevator control system. In the control system, the operating speed and position of the
motor are monitored at all times, and the current position and speed values are compared with the system”s
designed speed and position curve. Once it is found that the
actual operating speed of the hoist exceeds the designed speed value, immediately Issue an emergency
stop command and strictly ensure that the lifting speed is within the safe monitoring range during the entire
lifting process. At the same time, position detection switches are
arranged at several locations in the wellbore, and these position detection switches correspond to specific
position values and corresponding speed values. When the elevator passes these switches, if it is found through
encoder detection that the actual speed value and position deviate from the values corresponding to the position
detection switch, the control system will also judge that it is in a fault state
and immediately implement an emergency stop.
In order to determine whether the encoder connected to the main shaft of the elevator drum is normal,
two other encoders are installed on the elevator. In this way, the position and speed detection values
of the three encoders are always compared. Once it is found that the deviation between the detection
value of one encoder and the detection value of the other two encoders exceeds the allowable range,
the control system will immediately consider it to have entered a fault state and implement an emergency stop. Protective action.
3 Conclusion
The efficient and safe operation of main well equipment is an important guarantee for its function.
In the application of mine hoist, the 800xA system designed speed curve, self-correction, various
self-diagnosis and protection functions according to the specific process characteristics of the main
shaft mine hoist, which has achieved good results in practical applications.
DS3800NHVD1C1B printed circuit board
DS3800NHVD1D1 printed circuit board
DS3800NHVD1E1B printed circuit board
DS3800NHVD1E1E printed circuit board
UFC760BE142 3BHE004573R0142 ABB Controller master unit
UFC760BE42 3BHE004573R0042 ABB System spare parts
UFC760BE43 3BHE004573R0043 System spare parts
DS3800NHVE printed circuit board
UFC911B106 3BHE037864R0106 System board card
UFC911B108 ABB Control module card key
UFC911B110 ABB Input control panel
UFC921A101 3BHE024855R0101 Interface module
UFD203A101 3BHE019361R0101 ABB Industrial Ethernet
UNITROL 1010 PLC control system
UNITROL 1020 ABB Input output module
UNITROL1000 Z.V3 3BHE014557R0003 ABB Numerical control module
UNS0007A-P V1 ABB DCS controller module
UNS0119A-P,V101 ABB Digital input submodule
UNS0874A ABB Control I/O module
UNS0887A-P 3BHE008128R0001 Analog input module
UNS2880b-P,V2 3BHE014967R0002 Analog output circuit board
UNS2881B-P V1 ABB Robot network communication card
UNS2882A 3BHE003855R0001 Connecting terminal unit
UNS2980c-ZV4 ABB Robot axis calculation board
UNS4881b,V4 3BHE009949R0004 ABB Analog output circuit board
UNS3670A-Z V2 HIEE205011R0002 Servo servo module
C3K122-24P ENTERASYS Controller module
C3K122-24 ENTERASYS Control of signal
C3G124-48 ENTERASYS Processor module
C3G124-24 ENTERASYS Processor module
ENTERASYS C3G124-24P Network interface module
08G20G4-48P 800-Series Layer 2 switch
08G20G4-48 800-Series Layer 2 switch
08G20G4-24P 800-Series Layer 2 switch
08G20G2-08P 800-Series Layer 2 switch
ENTERASYS 08H20G4-48 800-Series Layer 2 switch
08G20G2-08 800-Series Layer 2 switch ENTERASYS
08H20G4-48P 800-Series 10/100 Switches ENTERASYS
08H20G4-24P ENTERASYS switch
08H20G4-24 ENTERASYS 24 port 10/100 800-Series Layer 2 switch
B5K125-48 and B5K125-48P2 ENTERASYS gateway
B5K125-24 and B5K125-24P2 ENTERASYS Switch
B5G124-24 and B5G124-24P2 Ethernet Switch
ENTERASYS B5G124-24 Ethernet Switch
I3H252-8TX-2FX ENTERASYS High-end Secure Networks
I3H252-8FXM ENTERASYS
I3H252-6TX-MEM ENTERASYS Ethernet
ENTERASYS I3H252-4FX-MEM Ethernet L2 Switch
switch I3H252-4FXM ENTERASYS
I3H252-12TX ENTERASYS Ethernet switch
Switch A2H254-16 ENTERASYS
A2H124-24FX Switch ENTERASYS
ENTERASYS A2H124-48P Switch Ports
A2H124-48 Switch Ports ENTERASYS
A2H124-24P ENTERASYS Switch Ports
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