A Self-Calibrating, Erroneous Measurement-Preventing Production Test System for Military Slip Rings

Safa Şengezer, Volkan Özdemir, F. Demir
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引用次数: 1

Abstract

Military Slip Rings have tight test requirements to meet; such as contact noise, dielectric discharge and end-to-end resistance. Especially, the contact noise and end-to-end resistance measurements are in the order of several milliohms. Therefore, the test system must be well-calibrated in order to take precise measurements. During mass production, more than one set of test equipment can be used on different manufacturing lines. Hence, calibration should be able to be done on-line by the test software. Additionally, the test process must take as minimum time as possible in order to meet mass production schedule. Erroneous measurements due to external electromagnetic noise is a serious agent that cause the UUT (unit under test) to fail the test, prolonging the overall testing time. The testing software should detect an erroneous measurement, dispel it and prevent it from failing the test of the UUT. In this paper, we explain the methods used for a self-calibrating, automated, erroneous measurement-preventing test system for the mass production of military slip rings. When testing a slip ring, some of the measurements such as contact noise should be measured while the slip ring is rotating. Therefore, a turntable with servo motor is used for rotation. While the slip ring is rotating, it is not feasible to take measurements from the connectors on the both sides (stator & rotor) since it can cause testing cables to be tangled and eventually jam the turntable, possibly harming the slip ring. Hence, in this setup all the test equipment are connected to the slip ring from one side (stator or rotor), while at the other side all the connectors are short-circuited. These connections add to the end-to-end resistance and contact noise while measuring them. Since the precision of the measurements should be in the order of milliohm, the effect of the connections change not only with the test setup, but also with the slip ring itself. Therefore, testing software initially measures the resistances of connections, updates its' calibration values and then starts the test procedure. The details of the algorithm as well as test results with and without using this method are presented. Another phenomena while taking measurements is the electromagnetic noise that manipulates the test results. Even if the test cables are twisted and shielded, this additional noise is hard to avoid due to the test equipment itself. It causes sudden peaks in the measurements and causes the test of that channel to fail. One way of preventing this is to measure the rms or the standard deviation of the noise instead of its peak-to-peak value. However, it gives excessively optimistic results which may cause some problematic channels to go unnoticed. The method used in this setup prevents the test process to fail due to erroneous measurement, while taking objective measurements. Statistical information about the efficiency of using this method is exhibited.
军用滑环自校正防错生产测试系统
军用滑环有严格的测试要求,以满足;如接触噪声、介电放电和端对端电阻。特别是,接触噪声和端到端电阻测量在几毫欧姆数量级。因此,测试系统必须经过良好的校准,以便进行精确的测量。在批量生产过程中,可在不同的生产线上使用多套测试设备。因此,校准应该能够通过测试软件在线完成。此外,测试过程必须尽可能缩短时间,以满足批量生产计划。外部电磁噪声导致的测量错误是导致被测单元测试失败的严重因素,延长了整体测试时间。测试软件应该检测出错误的测量,排除错误,防止测试失败。本文介绍了一种用于军用滑环批量生产的自校准、自动化、防误差测试系统的方法。在测试滑环时,应在滑环旋转时测量一些测量值,如接触噪声。因此,使用带有伺服电机的转台进行旋转。当滑环旋转时,从两侧的连接器(定子和转子)进行测量是不可可行的,因为它可能导致测试电缆缠结并最终卡住转盘,可能会损坏滑环。因此,在这种设置中,所有测试设备都从一侧(定子或转子)连接到滑环上,而在另一侧,所有连接器都短路。这些连接增加了端到端电阻和测量时的接触噪声。由于测量的精度应在百万欧姆数量级,因此连接的影响不仅随测试设置而变化,而且随滑环本身而变化。因此,测试软件首先测量连接的电阻,更新其校准值,然后开始测试程序。给出了算法的细节以及使用和不使用该方法的测试结果。测量时的另一个现象是操纵测试结果的电磁噪声。即使测试电缆被扭曲和屏蔽,由于测试设备本身的原因,这种额外的噪音也很难避免。它会导致测量中的突然峰值,并导致该通道的测试失败。防止这种情况的一种方法是测量噪声的均方根或标准偏差,而不是其峰对峰值。然而,它给出了过于乐观的结果,这可能会导致一些有问题的渠道被忽视。在此设置中使用的方法可以防止在进行客观测量时由于错误测量而导致测试过程失败。展示了使用这种方法的效率的统计信息。
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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