IS200VSVOH1BED Mark VI控制系统伺服控制板 IS200VSVOH1B

零件号:IS200VSVOH1BED
制造商:通用电气
制造国:美国
电源电压:标称24伏直流电
LVDT精度:14位分辨率下1%
LVDT输入滤波器:低通滤波器
LVDT共模抑制:共模抑制为1 V,60 dB

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产品详情

详情介绍:IS200VSVOH1BED Mark VI控制系统伺服控制板 IS200VSVOH1B

零件号:IS200VSVOH1BED
制造商:通用电气
制造国:美国
电源电压:标称24伏直流电
LVDT精度:14位分辨率下1%
LVDT输入滤波器:低通滤波器
LVDT共模抑制:共模抑制为1 V,60 dB
磁性感光信号:l产生150 V峰峰值
主动PR拾取信号:产生5至27 V峰峰值
产品类型:伺服控制板
供货情况:有现货
系列:马克六世

功能描述

IS200VSVOH1BED是GE公司开发的伺服控制板。它是Mark VI控制系统的一部分。伺服控制(VSVO)板在精确控制负责驱动系统内蒸汽/燃料阀的四个电动液压伺服阀中发挥着关键作用。这些阀门有助于调节蒸汽或燃料的流量,确保工业过程中的最佳性能和效率。VSVO板协调这些伺服阀的操作,采用复杂的控制算法来保持对阀位置和流体流速的精确控制。

特征

  • 由电路板控制的四个通道通常分配在两个伺服端子板之间,即TSVO或DSVO。这种分布可有效管理伺服阀操作,确保关键应用中的冗余性和可靠性。每个接线板与伺服阀连接,为接线板提供基本的控制信号和反馈机制。
  • 阀位反馈对于保持对伺服阀的精确控制至关重要。线性可变差动变压器(LVDTs)用于测量阀门的精确位置,向VSVO电路板提供实时反馈。这种反馈机制允许控制算法动态调整阀门位置,确保在各种运行条件下的最佳性能。
  • 三根电缆通过前面板上的J5插头和VME机架上的JBOY3乐队/J4连接器连接。这些电缆有助于VSVO板的通信和供电,能够无缝集成到系统架构中。端子板通过JR1连接器提供单工信号,同时还将TMR(三模冗余)信号分配给JR1、JS1和JT1连接器。此外,插头JD1或JD2用作保护模块外部跳闸的接口,允许在严重故障或紧急情况下立即关闭。

装置

  • 关闭VME处理器机架的电源:在继续安装之前,关闭VME处理器机架的电源至关重要。此步骤可确保安全,并防止对主板或系统组件造成任何潜在损坏。遵循制造商关于安全关闭机架的指南,以避免任何不可预见的问题。
  • 滑入板和座椅边缘连接器:小心地将V型板滑入VME处理器机架上的指定插槽。确保主板与插槽导轨正确对齐,以防止任何错位。一旦板被正确定位,用手向内推动顶部和底部的杠杆。此操作有助于将边缘连接器牢固地固定在机架上相应的插槽中。
  • 拧紧前面板顶部和底部的自持螺钉:正确安装主板后,找到前面板顶部和底部的自持螺钉。使用合适的工具牢牢拧紧这些螺钉。确保螺丝充分拧紧,为安装的主板提供牢固的支撑和稳定性。但是,请注意不要将螺钉拧得过紧,以免损坏主板或机架外壳。

探伤

自杀伺服输出的故障检测机制对于保持系统完整性和防止潜在危险至关重要。这些机制旨在检测可能危及伺服系统运行的异常情况。启动自杀伺服输出的两个主要触发器包括:

  • 伺服电流超出限制或无响应:检测到伺服电流超过预定义的限制或未能适当响应会触发自杀伺服输出的启动。伺服电流为伺服系统的性能和操作提供了重要的反馈。当电流偏离预期水平或表现出不稳定行为时,表明伺服机构或相关控制电路存在潜在问题。在这种情况下启动自杀伺服输出有助于降低风险并防止对系统组件的进一步损坏。
  • 调节器反馈信号超出限值:调节器反馈信号中的异常,如偏离预定限值,会触发自杀伺服输出的激活。调节器反馈信号在调节伺服系统的运行、确保精确控制和稳定性方面起着至关重要的作用。该信号中的任何差异或异常都表明反馈回路中存在潜在的故障或干扰。通过响应这种异常启动自杀伺服输出,系统可以迅速解决潜在问题并防止不良后果。

IS200VSVOH1B

Part No.: IS200VSVOH1BED
Manufacturer: General Electric
Country of Manufacture: United States of America (USA)
Power supply voltage: Nominal 24 V dc
LVDT accuracy: 1 percent with 14-bit resolution
LVDT input filter: Low pass filter
LVDT common mode rejection: CMR is 1 V, 60 dB
Magnetic PR pickup signa:l Generates 150 V p-p
Active PR Pickup Signal: Generates 5 to 27 V p-p
Product Type: Servo Control Board
Availability: In Stock
Series: Mark VI

Functional Description

IS200VSVOH1BED is a servo control board developed by GE. It is a part of Mark VI control system. The Servo Control (VSVO) board plays a pivotal role in the precise control of four electro-hydraulic servo valves responsible for actuating the steam/fuel valves within the system. These valves are instrumental in regulating the flow of steam or fuel, ensuring optimal performance and efficiency in industrial processes. The VSVO board orchestrates the operation of these servo valves, employing sophisticated control algorithms to maintain precise control over valve positioning and fluid flow rates.

Features

  • The four channels controlled by the board are typically allocated between two servo terminal boards, namely TSVO or DSVO. This distribution allows for efficient management of servo valve operations, ensuring redundancy and reliability in critical applications. Each terminal board interfaces with the servo valves, providing essential control signals and feedback mechanisms to the board.
  • Valve position feedback is crucial for maintaining accurate control over the servo valves. Linear variable differential transformers (LVDTs) are employed to measure the precise position of the valves, providing real-time feedback to the VSVO board. This feedback mechanism allows the control algorithms to adjust valve positions dynamically, ensuring optimal performance under varying operating conditions.
  • Three cables connect via the J5 plug on the front panel and the J3/J4 connectors on the VME rack. These cables facilitate communication and power supply to the VSVO board, enabling seamless integration into the system architecture. The terminal board provides simplex signals through the JR1 connector, while also distributing TMR (Triple Modular Redundancy) signals to the JR1, JS1, and JT1 connectors. Additionally, plugs JD1 or JD2 serve as interfaces for external trips from the protection module, allowing for immediate shutdown in case of critical faults or emergencies.

Installation

  • Power Down the VME Processor Rack: Before proceeding with the installation, it is crucial to power down the VME processor rack. This step ensures safety and prevents any potential damage to the board or the system components. Follow the manufacturer’s guidelines for safely shutting down the rack to avoid any unforeseen issues.
  • Slide in the Board and Seat Edge Connectors: Carefully slide the V-type board into the designated slot on the VME processor rack. Ensure that the board aligns properly with the slot guides to prevent any misalignment. Once the board is positioned correctly, use your hands to push the top and bottom levers inward. This action helps to seat the edge connectors securely into their corresponding slots on the rack.
  • Tighten Captive Screws at the Top and Bottom of the Front Panel: With the board properly seated, locate the captive screws located at the top and bottom of the front panel. Use a suitable tool to tighten these screws securely. Ensure that the screws are tightened adequately to provide firm support and stability to the installed board. However, exercise caution not to overtighten the screws to avoid damaging the board or the rack enclosure.

Fault detection

Fault detection mechanisms for suicide servo outputs are crucial for maintaining system integrity and preventing potential hazards. These mechanisms are designed to detect anomalous conditions that may compromise the operation of the servo system. Two primary triggers for initiating suicide servo outputs include:

  • Servo Current Out of Limits or Not Responding: Detection of servo currents exceeding predefined limits or failing to respond appropriately triggers the initiation of suicide servo outputs. Servo currents provide vital feedback on the performance and operation of the servo system. When currents deviate from expected levels or exhibit erratic behavior, it indicates potential issues with the servo mechanisms or associated control circuits. Initiating suicide servo outputs in such scenarios helps mitigate risks and prevent further damage to the system components.
  • Regulator Feedback Signal Out of Limits: Anomalies in the regulator feedback signal, such as deviations from predefined limits, trigger the activation of suicide servo outputs. The regulator feedback signal plays a crucial role in regulating the operation of the servo system, ensuring precise control and stability. Any discrepancies or abnormalities in this signal indicate potential malfunctions or disturbances in the feedback loop. By initiating suicide servo outputs in response to such anomalies, the system can promptly address the underlying issues and prevent adverse consequences.

热卖型号:IS200VSVOH1BED Mark VI控制系统伺服控制板 IS200VSVOH1B

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