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用于状态监测的振动传感器的深入研究。

An In-Depth Study of Vibration Sensors for Condition Monitoring.

作者信息

Hassan Ietezaz Ul, Panduru Krishna, Walsh Joseph

机构信息

IMaR Research Centre, Munster Technological University, V92 CX88 Tralee, Ireland.

出版信息

Sensors (Basel). 2024 Jan 23;24(3):740. doi: 10.3390/s24030740.

Abstract

Heavy machinery allows for the efficient, precise, and safe management of large-scale operations that are beyond the abilities of humans. Heavy machinery breakdowns or failures lead to unexpected downtime, increasing maintenance costs, project delays, and leading to a negative impact on personnel safety. Predictive maintenance is a maintenance strategy that predicts possible breakdowns of equipment using data analysis, pattern recognition, and machine learning. In this paper, vibration-based condition monitoring studies are reviewed with a focus on the devices and methods used for data collection. For measuring vibrations, different accelerometers and their technologies were investigated and evaluated within data collection contexts. The studies collected information from a wide range of sources in the heavy machinery. Throughout our review, we came across some studies using simulations or existing datasets. We concluded in this review that due to the complexity of the situation, we need to use more advanced accelerometers that can measure vibration.

摘要

重型机械可实现对大规模作业的高效、精确且安全的管理,而这些作业超出了人类的能力范围。重型机械故障会导致意外停机,增加维护成本、造成项目延误,并对人员安全产生负面影响。预测性维护是一种通过数据分析、模式识别和机器学习来预测设备可能出现的故障的维护策略。本文回顾了基于振动的状态监测研究,重点关注用于数据收集的设备和方法。在数据收集背景下,对用于测量振动的不同加速度计及其技术进行了研究和评估。这些研究从重型机械的广泛来源收集信息。在我们的综述过程中,我们遇到了一些使用模拟或现有数据集的研究。我们在本综述中得出结论,由于情况复杂,我们需要使用更先进的能够测量振动的加速度计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99e6/10857366/5cf43f40cc2e/sensors-24-00740-g001.jpg

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