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Uncertainty Evaluation of a Torsional Vibration Reactor Coolant Pump Shaft Crack Monitoring System

机译:扭转振动反应器冷却剂泵轴裂纹监测系统的不确定性评价

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Torsional vibration signature analysis has shown the potential to detect shaft cracks during normal operation in rotating equipment. The method tracks changes in the natural torsional vibration frequencies associated with shaft crack propagation. Prototype systems have been installed on two Reactor Coolant Pumps (RCP) at Tennessee Valley Authority Sequoyah Power Plant Unit 1 nuclear reactor to monitor for possible shaft crack initiation and growth. The implemented torsional vibration sensing system is a combination of specially designed and commercial off-the-shelf components. A series of specialized data processing routines are then applied to produce the torsional vibration signal and enhance its quality. Since shaft crack growth is directly related to natural frequency changes, it is necessary to determine the smallest statistically significant natural frequency shift that can be detected to provide the earliest possible warning. The integrated nature of the prototype hardware/software system along with the inaccessibility to the equipment inside the reactor containment building makes it difficult to separate and evaluate the precision of each component. Hence, a simulation-based evaluation was performed to determine the cumulative effect of the measurement system on the uncertainty in the torsional natural frequency estimation. A single degree of freedom simulation model was developed which matched the modal response of the RCP. The model inputs were adjusted to match the spectral statistical characteristics (amplitude and variance) of the RCP torsional vibration. Two natural frequency identification algorithms (an optimization based SDOF algorithm and a random decrement/Prony algorithm) were subsequently applied to one hundred sets of simulation runs. A statistical analysis was then performed on the natural frequency estimates to establish high probability (99.9%) tolerance limits and the smallest statistically significant frequency change, for a 99.9% probability, which can be detected with the prototype system.
机译:扭转振动特征分析显示出在旋转设备正常操作期间检测轴裂缝的可能性。该方法跟踪与轴裂纹传播相关的自然扭转频率的变化。原型系统已安装在田纳西州谷局的两台电抗器冷却液泵(RCP)上安装在线电粉发电厂1核反应堆,以监测可能的轴裂纹启动和生长。实施的扭转振动传感系统是专门设计和商业现成部件的组合。然后应用一系列专业数据处理例程以产生扭转振动信号并提高其质量。由于轴裂纹增长与固有频率发生变化直接相关,因此必须确定可以检测到的最小统计学显着的自然频移,以提供最早的警告。原型硬件/软件系统的综合性质以及反应堆遏制建筑内部设备的不可接近使得难以分离和评估每个组件的精度。因此,进行了基于模拟的评估,以确定测量系统对扭转自然频率估计的不确定性的累积效果。开发了单一自由度模拟模型,其匹配RCP的模态响应。调整模型输入以匹配RCP扭转振动的光谱统计特性(幅度和方差)。随后将两个自然频率识别算法(基于优化的SDOF算法和随机递减/掌算法)应用于一百组模拟运行。然后对自然频率估计进行统计分析,以建立高概率(99.9%)公差限制和最小的统计学上显着的频率变化,其概率可以用原型系统检测到99.9%。

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