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A signal pre-processing algorithm designed for the needs of hardware implementation of neural classifiers used in condition monitoring

机译:一种信号预处理算法,设计用于状态监测中所用神经分类器的硬件实现需求

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摘要

Gearboxes have a significant influence on the durability and reliability of a power transmission system. Currently, extensive research studies are being carried out to increase the reliability of gearboxes working in the energy industry, especially with a focus on planetary gears in wind turbines and bucket wheel excavators. In this paper, a signal pre-processing algorithm designed for condition monitoring of planetary gears working in non-stationary operation is presented. The algorithm is dedicated for hardware implementation on Field Programmable Gate Arrays (FPGAs). The purpose of the algorithm is to estimate the features of a vibration signal that are related to failures, e.g. misalignment and unbalance. These features can serve as the components of an input vector for a neural classifier. The approach proposed here has several important benefits: it is resistant to small speed fluctuations up to 7%, it can be performed in real-time conditions and its implementation does not require many resources of FPGAs. (C) 2015 Elsevier Ltd. All rights reserved.
机译:变速箱对动力传输系统的耐用性和可靠性有重大影响。当前,正在进行大量研究以提高在能源工业中工作的齿轮箱的可靠性,特别是侧重于风力涡轮机和斗轮挖掘机中的行星齿轮。本文提出了一种信号预处理算法,该算法设计用于非平稳运行的行星齿轮状态监测。该算法专用于在现场可编程门阵列(FPGA)上的硬件实现。该算法的目的是估计与故障有关的振动信号的特征,例如失调和不平衡。这些特征可以用作神经分类器的输入向量的组成部分。这里提出的方法具有几个重要的优点:它可以抵抗高达7%的小速度波动,可以在实时条件下执行,并且其实现不需要大量的FPGA资源。 (C)2015 Elsevier Ltd.保留所有权利。

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