用于射电天文学低温设备预测性维护的增量聚类技术

Alessandro Cabras, P. Ortu, T. Pisanu, Paolo Maxia, Roberto Caocci
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摘要

在射电天文接收机的冷却系统中,冷头和压缩机的维护对于保持性能稳定至关重要。本项目的重点是监测冷头电机的功率电流,以解决可能危及系统整体功能的潜在机械老化问题。该系统利用霍尔效应传感器、基于微控制器的电子板和人工智能来检测和预测异常情况。该模型采用基于增量聚类的无监督方法运行。由于潜在的故障情况可能是多种多样的,而且在训练过程中往往难以模拟或识别,因此系统最初使用已知的操作类别进行训练。随着时间的推移,系统会通过纳入新数据进行调整和演化,这些数据可以分配到现有类别中,或者在出现新的异常情况时,形成新的类别。这种循序渐进的方法使系统能够随着时间的推移不断提高性能,适应新的异常情况,确保对冷头健康状况进行精确可靠的监控。
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Incremental Clustering for Predictive Maintenance in Cryogenics for Radio Astronomy
In a cooling system for radio astronomy receivers, maintaining cold heads and compressors is essential for consistent performance. This project focuses on monitoring the power currents of the cold head’s motor to address potential mechanical deterioration, which could jeopardize the overall functionality of the system. Using Hall effect sensors, a microcontroller-based electronic board, and artificial intelligence, the system detects and predicts anomalies. The model operates using an unsupervised approach based on incremental clustering. Since potential fault scenarios can be multiple and often challenging to simulate or identify during training, the system is initially trained using known operational categories. Over time, the system adapts and evolves by incorporating new data, which can be assigned to existing categories or, in the case of new anomalies, form new categories. This incremental approach enables the system to enhance its performance over the years, adapting to new anomaly scenarios and ensuring precise and reliable monitoring of the cold head’s health.
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