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首页> 外文期刊>Journal of Failure Analysis and Prevention >An Adaptive Remaining Life Prediction for Rolling Element Bearings
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An Adaptive Remaining Life Prediction for Rolling Element Bearings

机译:滚动轴承的自适应剩余寿命预测

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In order to select the effective health index and build reasonably the prediction model for prognostics, a new approach is proposed. The generative topographic mapping-based negative likelihood probability is used as the health index, and K-means clustering algorithm is employed for state division. The adaptive prediction model based on Markov model and least mean square algorithm is built by the historical data and the online monitoring data. According to the given threshold, the remaining life can be captured. Based on experimental verification, the results indicate that the selected health index is able to effectively reflect the condition of rolling bearings and the proposed model shows high prediction accuracy in comparison to the common one.
机译:为了选择有效的健康指标并合理地建立预后预测模型,提出了一种新的方法。基于生成的地形图的负似然概率被用作健康指标,而K均值聚类算法被用于状态划分。基于历史数据和在线监测数据,建立了基于马尔可夫模型和最小均方算法的自适应预测模型。根据给定的阈值,可以捕获剩余寿命。通过实验验证,结果表明所选择的健康指标能够有效地反映滚动轴承的状况,与常规模型相比,该模型具有较高的预测精度。

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