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SCL055/30011/A/00/BA/AA/03/001 Schneider servo motor

¥900.00

Brand: ELAU Model:SCL055/30011/A/00/BA/AA/03/001
Package/Specification: 2x19x12.8cm
Minimum Packaging Quantity: 1

Function: Control system accessories Features: Easy installation
Name: Digital Input Module Processing Customization:
No
Origin: USA Packaging: brand new and
widely used
Chemical, papermaking, power
generation, oil and natural gas
Quantity: 1-999
Batch Number SCL055/30011/A/00/BA/AA/03/001

Available for sale in Beijing; Tianjin; Hebei;
Shanxi; Inner Mongolia; Liaoning; Jilin;
Heilongjiang;
Shanghai;Jiangsu; Zhejiang; Anhui; Fujian; Jiangxi; Shandong; Henan;
Hubei; Hunan; Guangdong; Guangxi; Hainan;
Chongqing; Sichuan Guizhou; Yunnan; Xizang
;
Shaanxi Gansu; Qinghai; Ningxia; Xinjiang

Purpose TMR redundant structure

Category:
  • Email:3221366881@qq.com
  • Phone:+86 17750010683
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Description

SCL055/30011/A/00/BA/AA/03/001 Schneider servo motor
SCL055/30011/A/00/BA/AA/03/001 Schneider servo motor
Module Clips Drive controller servo moto

SCL055/30011/A/00/BA/AA/03/001A motor is a device that converts electrical energy into mechanical energy. SCL055/30011/A/00/BA/AA/03/001 It utilizes an energized coil (i.e. stator winding) to generate a rotating

magnetic field and act on the rotor (such as a squirrel cage closed aluminum frame) to form a magneto electric rotational torque. Electric motors are divided into DC

motors and AC motors according to the different power sources used. Most of the motors in the power system are AC motors, SCL055/30011/A/00/BA/AA/03/001 which can be synchronous motors or

asynchronous motors (the stator magnetic field speed of the motor does not maintain synchronous speed with the rotor rotation speed). An electric motor is mainly

composed of a stator and a rotor, SCL055/30011/A/00/BA/AA/03/001 and the direction of the force acting on the energized wire in the magnetic field is related to the direction of the current and the direction

of the magnetic induction line (magnetic field direction). SCL055/30011/A/00/BA/AA/03/001 The working principle of an electric motor is that the magnetic field exerts a force on the current, causing the motor to rotate.

Contact: Mr. Lai 
Wechat:17750010683 
Whats app:+86 17750010683 
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Practical application of ABB industrial information control system 800xA in main shaft hoist control
introduction

The mine hoist is an important transportation equipment for mining enterprises. Its main function is to transport the ore, personnel or equipment that need to be transported to the destination by the lifting container. Therefore, it plays a very important role in the mining production process. Usually the mine hoist control system consists of a driving part and a control part. The working mechanism of the driving part is: the motor unit drives the mechanical hoisting device, and the frequency converter or other types of hoisting control systems drive the motor unit: the working mechanism of the control part is: Each component of the hoist is coordinated and controlled by the Distributed Control System (DCS). In addition to completing basic process control, it can also integrate intelligent instruments, intelligent transmission and motor control, and even production management and safety systems into one operation and engineering environment. middle. Therefore, the mine hoist requires a control system with high performance, high reliability, and high integration.

1ABB800xA system and AC800M controller introduction

1.1ABB800xA system introduction

The 800xA system is an industrial information control system launched by ABB. The core of its architecture is object-oriented (ObjectOriented) technology. Due to the adoption of ABB’s unique Aspect0object concept, enterprise-level information access, object navigation and access can become standardized and simple.

In order to provide a unified information platform for enterprise managers and technical personnel, the 800xA system provides a base platform (BasePlatform), which relatively separates the process control part and production control management and organically combines them together. As shown in Figure 1, the middle part is the basic platform, the upper part is the production control management part, and the lower part is the process control part. The basic platform provides standard interfaces for these two parts for data exchange.

1.2 Introduction to ABBAC800M controller and its programming configuration tools

AC800M controller is ABB’s latest controller series, which includes a series of processors from PM851 to PM865. The AC800M controller itself has a pair of redundant TCP/IP interfaces. It can use the MMs protocol to communicate with other control devices and 800xA operator stations through Ethernet. It can also use the Modbus protocol and Point-Point protocol through 2 serial ports. communication. The programming and configuration tool of AC800M is ControlBuilderM, referred to as CBM. It supports standard ladder diagram, function block language, text description language and assembly language to write control logic.

2. Improve the design and implementation of control system functions

2.1 Implementation of elevator operating speed curve

One of the main tasks of the lifting control system is to control the lifting motor to operate according to the speed-position curve given by the design, so that the lifting container passes through the acceleration section, the uniform speed section and the deceleration section successively, and stops accurately after completing the specified lifting distance. somewhere in the wellbore. In order to realize the function of precise position calculation, the designed elevator control system must be able to perform high-precision position calculation based on the photoelectric encoder connected to the main shaft of the elevator drum. The calculation formula is as follows:

In the formula, s is the actual position value of the elevator: sp is the distance corresponding to two consecutive encoder pulses: AN is the difference between the encoder count value at the reference position and the current position (signed variable): s0 is the reference position value.

The encoder counts are distributed according to the circumference of the drum. After the number of pulses Np generated by the encoder rotation is known, the diameter of the circumference of the centerline of the wire rope wrapped around the drum must be accurately known, so that it can be calculated according to formula (2) The distance sp corresponding to the two encoder pulses:

In the formula, D is the circumferential diameter of the centerline of the wire rope: Np is the number of pulses for one revolution of the known encoder.

But in formula (2), there is a value D that keeps getting smaller as the system runs. This is because the wire rope used in the elevator is wrapped around the drum, and there is a lining between the wire rope and the drum that increases friction. This liner will become thinner and thinner as the system continues to wear and tear, causing the diameter of the circle formed by the center line of the steel wire rope to gradually become smaller. When the pad wears to a certain extent, it will cause a large position calculation error. In order to solve the above problems, the two parking position switches in the shaft are used to correct the drum diameter, because the distance between the two parking positions can be obtained through actual measurement with high accuracy. During the actual operation, record the encoder count values ​​at the two parking positions respectively. According to formula (3), the actual correction value of sp can be calculated:

In the formula, sd is the distance between two parking positions: Abs is the absolute value operation: N is the encoder count value when there are two parking positions.

In this way, the initial sp value is first set according to the given design parameter value, and then the value is corrected according to the actual operating conditions, which can effectively ensure the accuracy of position calculation. At the same time, sp’ can also be substituted into formula (2), and the D value can be obtained in turn, which can be used as a basis for judging whether the liner is seriously worn.

After obtaining the elevator position value, the speed control curve can be calculated according to formula (4):

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800-372-7402 AVS-1700-ACX  Bearing Engineers Advanced Vector Servo Drive
Triconex 3201 CM3201 Triconex  Communication Module
TPPB-02 3HNA023200-00101 ABB  Teaching device LCD screen
GCC960C102 3BHE033067E0102  ABB  Inverter control cabinet logic board
LID43.03 EMG  Relay
IC660EBD025  GE  electronics assembly block
GCC960C103 3BHE033067R0103 ABB  Terminal clamping module
SNAT609TAI 61073779  ABB  Control Board
SNAT603CNT 61007041 ABB   PCB  Board
RK682011-BA RL0B 100   ABB   Standard Unit Module
SNAT602TAC 61001395G1 ABB  PC Board
PMC-2/11/05/000/00/00/01/00/00  SCHNEIDER  SERVO DRIVE
PR6423/000-000  EPRO  Eddy Current Displacement Transducer Sensor
DSAI133A 3BSE018290R1  ABB  Analog Input Board 32 Channels
AS-BDAU-204  Schneider  analog input module
AT686W-1-1-1-1  GE
2422 OUT2422  SES
2411 IND2411
2409 INP2409 SES
2402 GAS2402  SES
369-LO-0-M-F-E-0-0  GE  369 Motor Management Relay
HOI-653A  HP
1769-L35CR  Allen Bradley  CompactLogix ControlNet Processor
369-C100  369-C101  GE
369-A200  GE
SW1-31 ECS1737-3  GE  Switching Power Supply Board
IC660BBD023   GE  24 Volts DC rated I/O block
531X304IBDARG1  GE  PC Board 531X
531X304IBDASG1  GE  BASE DRIVE CARD
531X304IBDAMG1  GE  AC2000 BASE DRIVE CARD
531X303MCPBDG1  GE  AC Power Supply
SDV144-S13  Yokogawa  Input Module
531X303MCPARG1  GE  AC Power Supply board
NFAI143-H00  Yokogawa  Analog Input Module
1771-IXE   Allen-Bradley  Thermocouple / Milivolt Input module
F8651X  HIMA  CPU Module
0-60063-1 60063-1 RELIANCE   REGULATOR BOARD SA3100 AC DRIVE
MVME-147A  MOTOROLA  25MHz, 16MB Single Board Computer
5X00622G01  Westinghouse RTD Input Module
5X00605G01   Westinghouse  Analog Input Module
5X00583G01    Westinghouse  CONTACT INPUT MODULE
5X00501G01   Westinghouse   I/O Interface Controller
5X00481G04  Westinghouse Controller Model
5X00419G01   Westinghouse  CONTACT INPUT MODULE
5X00499G01   Westinghouse  INPUT CONTACT MODULE
5X00357G03    Westinghouse   I/O Interface Controller
5X00301G01 Westinghouse analog input module
5X00300G02  Westinghouse   DCS Control Module
5X00241G02  Westinghouse  Processor Module
5X00241G01  Westinghouse   Processor Module

Company advantage service:
1.Has been engaged in industrial control industry for a long time, with a large number of inventories.
2.Industry leading, price advantage, quality assurance
3.Diversified models and products, and all kinds of rare and discontinued products
4.15 days free replacement for quality problems
All kinds of module card driver controller servo motor servo motor embedded card wires and cables Power module control module is applicable to steel, hydropower, nuclear power, power generation, glass factory, tire factory, rubber, thermal power, paper making, shipping, navigation, etc

ABB — AC 800M controller, Bailey, PM866 controller, IGCT silicon controlled 5SHY 3BHB01 3BHE00 3HNA00 DSQC series
BENTLY — 3500 system/proximitor, front and rear card, sensor, probe, cable 3500/20 3500/61 3500/05-01-02-00-001 3500/40M 176449-01 3500/22M 138607-01
Emerson — modbus card, power panel, controller, power supply, base, power module, switch 1C31,5X00, CE400, A6500-UM, SE3008,1B300,1X00,
EPRO — PR6423 PR6424 PR6425 PR6426 PR9376 PR9268 Data acquisition module, probe, speed sensor, vibration sensor
FOXBORO — FCP270 FCP280 FCM10EF FBM207 P0914TD CP40B FBI10E FBM02 FBM202 FBM207B P0400HE Thermal resistance input/output module, power module, communication module, cable, controller, switch
GE —- IS200/215/220/230/420 DS200/215 IC693/695/697/698 VMICPCI VMIVME 369-HI-R-M-0-0-E 469 module, air switch, I/O module, display, CPU module, power module, converter, CPU board, Ethernet module, integrated protection device, power module, gas turbine card
HIMA — F3 AIO 8/4 01 F3231 F8627X Z7116 F8621A 984862160 F3236 F6217 F7553 DI module, processor module, AI card, pulse encoder
Honeywell — Secure digital output card, program module, analog input card, CPU module, FIM card
MOOG — D136-001-007 Servo valve, controller, module
NI — SCXI-1100 PCI – PXIE – PCIE – SBRIO – CFP-AO-210 USB-6525 Information Acquisition Card, PXI Module, Card
Westinghouse — RTD thermal resistance input module, AI/AO/DI/DO module, power module, control module, base module
Woodward — 9907-164 5466-258 8200-1300 9907-149 9907-838 EASYGEN-3500-5/P2 8440-2145 Regulator, module, controller, governor
YOKOGAWA – Servo module, control cabinet node unit

Main products:
PLC, DCS, CPU module, communication module, input/output module (AI/AO/DI/DO), power module, silicon controlled module, terminal module, PXI module, servo drive, servo motor, industrial display screen, industrial keyboard, controller, encoder, regulator, sensor, I/O board, counting board, optical fiber interface board, acquisition card, gas turbine card, FIM card and other automatic spare parts