基于时间挖掘数据的采矿系统可靠性评估

D. Valis, J. Gajewski, K. Hasilová, M. Forbelská, J. Jonak
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引用次数: 0

摘要

机械系统的退化是大多数系统的典型现象。在考虑可靠性、安全性和成本效益时,退化可能会导致严重后果。在所有的技术系统中,直接推进退化是不容易观察到的。为了做到这一点,需要使用相关信息,例如对诊断和操作措施-信号的研究。本文介绍了一种多刀采煤头劣化的研究。有一个数据集包含了标准作业中钻头行为的记录。这些记录包含了典型的操作特征,如锋利和钝刀的力矩和功率。采用随机连续扩散过程对所研究的采煤头刀进行了退化建模。它们是Pearson型、Gauss-Markov型和Levy型过程。预期取得的成果将用于观察1)降解临界值的第一次通过时间,2)剩余使用寿命的预测,以及3)外地操作和维修的合理化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reliability Assessment of Mining System Based on Time Mining Data
The degradation of mechanical systems is a typical phenomenon accompanying most systems. When considering dependability, safety and cost-effectiveness, the degradation may result in serious consequences. Direct advancing degradation in all technical systems is not easy to observe. In order to do so, related information is used, e.g. the study of diagnostic and operation measures-signals. This article presents a study of the deterioration of a mining head with multi-tool knives. There is a dataset containing the records of the drilling head behaviour in standard operation. The records contain typical operation characteristics such as moment and power for both sharp and blunt knives. Degradation modelling of the studied mining head knives is performed with stochastic continuous diffusion processes. They are Pearson type, Gauss-Markov type and Levy type processes. The achieved results are expected to be used for the observation of i) the first passage time of degradation critical value), ii) the prediction of residual useful life, and iii) the rationalization of in field operation and maintenance.
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