首页> 外文会议>International Congress on Sound and Vibration >COULD AN ARRAY OF MEMS MICROPHONES BE USED TO MONITOR MACHINERY CONDITION OR DIAGNOSE FAILURES?
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COULD AN ARRAY OF MEMS MICROPHONES BE USED TO MONITOR MACHINERY CONDITION OR DIAGNOSE FAILURES?

机译:可以使用MEMS麦克风阵列来监控机械状况或诊断故障?

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During the last decades, vibration analysis has been used to evaluate condition monitoring and fault diagnosis of complex mechanical systems. The problem associated with these analysis methods is that the employed sensors must be in contact with the vibrant surfaces. To avoid this problem, the current trend is the analysis of the noise, or the acoustic signals, which are directly related with the vibrations, to evaluate condition monitoring and/or fault diagnosis of mechanical systems. Both, acoustic and vibration signals, obtained from a system can reveal information related with its operation conditions. Using arrays formed by digital MEMS microphones, which employ acquisition/processing systems based on FPGA, allows creating systems with a high number of sensors paying a reduced cost. This work studies the feasibility of the use of acoustic images, obtained by an array with 64 MEMS microphones (8×8) in a hemianechoic chamber, to detect, characterize and, eventually, identify failure conditions in machinery. The resolution obtained to spatially identify the problem origin in the machine under test. The acoustic images are processed to extract different feature patterns to identify and classify machinery failures.
机译:在过去几十年中,振动分析已被用于评估复杂机械系统的条件监测和故障诊断。与这些分析方法相关的问题是,所采用的传感器必须与充满活力的表面接触。为了避免这个问题,目前的趋势是对噪声的分析,或与振动直接相关的声学信号,以评估机械系统的条件监测和/或故障诊断。从系统获得的声学和振动信号都可以揭示与其操作条件相关的信息。使用由数字MEMS麦克风形成的阵列,该麦克风采用基于FPGA的获取/处理系统,允许创建具有大量传感器的系统支付降低的成本。这项工作研究了使用带有64个MEMS麦克风(8×8)的阵列获得的声学图像的可行性,以检测,表征和最终,识别机械中的失效情况。获得的分辨率在空间上识别被测机器中的问题起源。处理声学图像以提取不同的特征模式以识别和分类机械故障。

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