Morphological Construction of Transmission Error of Precision Reducer Based on BP Neural Network

Zhiyong Yu, Zhaoyao Shi, H. Yue, Lintao Zhang
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Abstract

Transmission error is a key indicator to characterize the performance of precision reducer. The test result of transmission error will be influenced by input speed and load torque. In this study, a morphological construction method of transmission error of precision reducer based on BP neural network was proposed to obtain the morphology of transmission error under different input speeds and load torques. Then the transmission accuracy of precision reducer could be accurately evaluated. With RV-40E reducer as an example, the morphological structure of its transmission error was obtained. The experimental results demonstrate that the model established by the proposed method can reflect the morphology of transmission error.
基于BP神经网络的精密减速器传动误差形态构建
传动误差是衡量精密减速器性能的关键指标。传动误差的测试结果会受到输入转速和负载转矩的影响。提出了一种基于BP神经网络的精密减速器传动误差形态构建方法,得到了不同输入转速和负载转矩下的传动误差形态。从而可以准确地评价精密减速器的传动精度。以RV-40E减速器为例,得到了其传动误差的形态结构。实验结果表明,该方法建立的模型能较好地反映传输误差的形态。
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