Deep Learning Approach to Within-Bank Fault Detection and Diagnostics of Fine Motion Control Rod Drives

Ark Ifeanyi, Jamie Coble, Abhinav Saxena
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Abstract

Control rod motion is one of the primary means of regulating the rate of fission in a nuclear reactor core to ensure safe and stable operation. Reactor power distribution and thermal power output can be fine-tuned by adjusting the control rod position. For high-precision control of rod movements, Fine Motion Control Rod Drives (FMCRDs) are often used. The operation of FMCRDs provides a unique opportunity to implement condition monitoring related to the intermittency of motion and the use of control rod banks. This research sets out to detect three types of faults in an electrically driven FMCRD. In addition to detecting faults, this work will attempt to determine both the type of fault and the source of each fault, completing the fault detection and diagnostics (FDD) pipeline on a scarcely researched system. The three types of faults to be investigated are short-circuit faults, ball screw wear faults, and ball screw jam faults. This is a potential advancement to the within-bank FDD of this specific drive system intended for deployment in an advanced nuclear reactor plant. Using encoder-decoder structured convolutional neural networks and autoencoders, the three tested faults were confidently detected and isolated as well as reasonably diagnosed by monitoring the FMCRD servomotor torque.
用于精细运动控制杆驱动器库内故障检测和诊断的深度学习方法
控制棒运动是调节核反应堆堆芯裂变速率以确保安全稳定运行的主要手段之一。反应堆的功率分配和热功率输出可通过调节控制棒的位置进行微调。为实现对控制棒运动的高精度控制,通常会使用微动控制棒驱动器(FMCRD)。FMCRD 的运行为实施与运动间歇性和控制棒组使用相关的状态监测提供了独特的机会。本研究旨在检测电驱动 FMCRD 中的三种故障。除检测故障外,这项工作还将尝试确定故障类型和故障源,从而完成对这一鲜有研究的系统的故障检测和诊断 (FDD) 管道。要研究的三种故障类型是短路故障、滚珠丝杠磨损故障和滚珠丝杠卡死故障。这是对这种用于先进核反应堆厂的特定驱动系统的库内 FDD 的潜在改进。利用编码器-解码器结构的卷积神经网络和自动编码器,通过监测 FMCRD 伺服电机的扭矩,可靠地检测和隔离了三个测试故障,并对其进行了合理诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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