2017
DOI: 10.1177/1687814017711393
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Research on fault diagnosis of mud pump fluid end based on acoustic emission

Abstract: A mud pump is one of the three key components of a drilling site, and its lifetime and reliability are related to safety and cost. The fluid end is the most easily damaged part of the mud pump. To ensure normal operation, the fault modes of the fluid end need to be effectively identified. This study proposes to employ acoustic emission technique to identify the fault modes of mud pump fluid end, including valve disk leakage, spring break, and piston wear. The analysis method of parameters and waveforms of the … Show more

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Cited by 10 publications
(2 citation statements)
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References 47 publications
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“…Nowadays, AE 136 becomes a very accurate and efficient method for fault, leaks and fatigue detection and monitoring techniques in materials 137,138 and structural analysis. 139 That include, concrete, 140,141 plastics, 142144 polymers, 145147 ceramics, 148–150 pipelines, 151153 pressure vessels, 154,155 storage tanks, 156–159 bridges, 160162 aircraft, 163,164 bucket trucks, 165 wood, 166168 fiberglass, 169172 composites, 173–175 welding, 176178 , tubes, 179 aerospace structures 180182 and finally for military applications.…”
Section: General Background Of Ae Analysismentioning
confidence: 99%
“…Nowadays, AE 136 becomes a very accurate and efficient method for fault, leaks and fatigue detection and monitoring techniques in materials 137,138 and structural analysis. 139 That include, concrete, 140,141 plastics, 142144 polymers, 145147 ceramics, 148–150 pipelines, 151153 pressure vessels, 154,155 storage tanks, 156–159 bridges, 160162 aircraft, 163,164 bucket trucks, 165 wood, 166168 fiberglass, 169172 composites, 173–175 welding, 176178 , tubes, 179 aerospace structures 180182 and finally for military applications.…”
Section: General Background Of Ae Analysismentioning
confidence: 99%
“…Depending on the specific application, the fault detection technique may vary, allowing for selecting the most suitable approach. Various options such as vibration analysis [7], sound and acoustic emission analysis [8], current and voltage analysis [9], infrared analysis [10], oil analysis [11], pressure analysis [12] and noise analysis [13] are widely considered. This study employs a data-driven approach with a specific emphasis on vibration analysis, whereby the vibration signals are transformed into spectrogram images.…”
Section: Introductionmentioning
confidence: 99%