Prognostic analysis based on updated grey model for axial piston pump

Wenliang Hu, Shaoping Wang, Zhaomin He, Sijun Zhao
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引用次数: 6

Abstract

Gradual degradation is the pivotal factor in prognostics analysis while the performance degradation is difficult to get with limit or blurry data. Based on the failure mechanism analysis of axial piston pump, the abrasion resulting from uneven contact between valve plate and cylinder barrel is the crux. With measured value, this paper presents a updated grey model and algorithm flow based on fix dimension updated technique and δ filter, in which the grey model overcomes the influence of uncertainty and disturbance and δ filter improves the quality of original data. Through renewing the information of grey model dynamically, the precision of prognostics increases greatly. Application indicates that the updated grey prediction algorithm could strengthen the scoring of new data and improve the prognostic accuracy with limit data.
基于改进灰色模型的轴向柱塞泵预测分析
逐渐退化是预测分析的关键因素,而在有限或模糊的数据下很难得到性能退化。通过对轴向柱塞泵失效机理的分析,认为配流盘与缸筒接触不均匀造成的磨损是轴向柱塞泵失效的关键。针对实测数据,提出了一种基于定维更新技术和δ滤波的更新灰色模型和算法流程,其中灰色模型克服了不确定性和干扰的影响,δ滤波提高了原始数据的质量。通过对灰色模型信息的动态更新,大大提高了预测的精度。应用表明,改进后的灰色预测算法能增强对新数据的评分,提高有限数据下的预测精度。
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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