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An automated, low complex end to end resistance measurement system for multi-channel slip-rings

机译:用于多通道滑环的自动化,低复数到最终电阻测量系统

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Contact resistance is the key factor influencing the performance of a slip-ring, which seriously affects the reliability of the signal conduction [1]. End to end resistance of a slip-ring is contact resistance plus interior cable resistances in the slip-ring. This paper describes the electrical model (low and mid frequency) and implementation of automated end to end resistance measurement system for 158-channel slip-ring intended for low speed signal conduction. Automated test is performed by using PXI-based dynamic signal analyzer, LXI-based switching unit, a turntable, two power supplies (one for driving the turntable, the other for applying test current through the contact under test) and test cables. Slip-ring is mounted on a turntable that will turn at its nominal speed during the tests. Loopback cables that make all contacts shorted are connected to the rotating part of the slip-ring. During the tests these cables can rotate together with the rotating part of the slip-ring continuously enabling a fully-isolated structure between rotating and fixed parts. All the other test devices are connected to the fixed side of the slip-ring. This kind of isolated measurement structure enables continuous and unsupervised test scenarios such as automated end-to-end resistance tests and life tests since cable twisting or damages are not problems for this test system anymore. On the other hand, test cable resistances must be measured before or after the tests in the same test environment conditions to be subtracted from the total resistance values measured during the tests to find the aimed end to end resistance values. It is also possible to perform this operation automatically for all channels after only one manual connector replacement operation. Although the end to end resistance values of all channels cannot be measured in one shot due to the multiplexed nature of the proposed test system, using the same measurement devices in the loop will enhance the measurement uncer- ainty compared to the distributed parallel hardware architectures. In addition, performing the measurements in a conditioned test environment will further reduce the variations of the measurements taken from the system at different time instances. Although contact noise results in electrical consequences, the generation nature of it is mechanical. The contact noise can be estimated from an AC signal generated by the change in dynamic contact resistance. In order to estimate the contact noise for the frequency band of interest, fast acquisition of the dynamic contact resistance is performed by the proposed test system. The estimated noise voltage signal is proportional to the change of contact resistance when small currents are applied, namely less than 100 milliamps. For optimal contact noise estimation results, DC test current of 100 milliamps is applied to each contact under test.
机译:接触电阻是影响滑环性能的关键因素,这严重影响了信号传导的可靠性[1]。终止于防滑环的最终电阻是防滑环中的接触电阻加上内部电缆电阻。本文介绍了用于低速信号传导的158通道滑环的电气模型(低和中频)和最终电阻测量系统的实现。通过使用基于PXI的动态信号分析仪,LXI的切换单元,转盘,两个电源(一个用于驱动转盘的动力电源来执行自动化测试(用于通过测试下的接触施加测试电流)和测试电缆。滑环安装在转盘上,在测试期间将以其标称速度转动。使所有触点短路的环回电缆连接到滑环的旋转部分。在测试期间,这些电缆可以与滑动环的旋转部分一起旋转,连续地在旋转和固定部件之间能够完全隔离的结构。所有其他测试设备连接到滑环的固定侧。这种隔离的测量结构使得可连续和无监督的测试场景,如自动端到端电阻测试和寿命测试,因为电缆扭曲或损坏不再是该测试系统的问题。另一方面,必须在与测试期间测量的总电阻值中减去相同的测试环境条件的测试之前或之后测量测试电缆电阻,以找到目标端电阻值。在仅在一个手动连接器替换操作之后,也可以自动对所有通道进行此操作。尽管由于所提出的测试系统的多路复用性质,但是,由于所提出的测试系统的多路复用性质,使用循环中的相同测量设备无法测量所有通道的端部电阻值,但与分布式并行硬件架构相比,使用相同的测量设备将增强测量突起。另外,在经济测试环境中执行测量将进一步降低在不同时间实例中从系统中取出的测量的变化。虽然接触噪声导致电气后果,但它的发电性质是机械的。可以从动态接触电阻变化产生的AC信号估计接触噪声。为了估计感兴趣频带的接触噪声,通过所提出的测试系统执行动态接触电阻的快速采集。当施加小电流时,估计的噪声电压信号与接触电阻的变化成比例,即小于100毫安。为了获得最佳接触噪声估计结果,100毫安的DC测试电流适用于被测的每个接触。

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