Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes

Evaluation of cavitation erosion risk, whether through numerical (CFD) or experimental methods, is crucial in many fluid flow design processes. This risk correlates directly with cavitation signals on affected surfaces. The aim of this study is to optimize the placement of piezoelectric sensors to i...

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Main Authors: A. Nasseroleslami, A. Sarreshtehdari, M. S. Seif
Format: Article
Language:English
Published: Isfahan University of Technology 2025-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:https://www.jafmonline.net/article_2578_189624abcd6d45044ead76e8167fa85d.pdf
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author A. Nasseroleslami
A. Sarreshtehdari
M. S. Seif
author_facet A. Nasseroleslami
A. Sarreshtehdari
M. S. Seif
author_sort A. Nasseroleslami
collection DOAJ
description Evaluation of cavitation erosion risk, whether through numerical (CFD) or experimental methods, is crucial in many fluid flow design processes. This risk correlates directly with cavitation signals on affected surfaces. The aim of this study is to optimize the placement of piezoelectric sensors to investigate cavitation-induced erosion on solid surfaces and to enhance the numerical evaluation of their correlation with recorded signals from the sensors. In this study, based on the technical specifications of the K23 tunnel, a convergent-divergent channel has been designed to reduce the pressure in its test section below the vapor pressure, thereby creating the potential for bubble formation on the sample plate. Within this channel, four semi-cylindrical bluff bodies have been utilized as the most effective obstacles to increase cavitation erosion. A quick method for identifying cavitation erosion involves applying a special color to the sample plate. The Film Applicator has been employed as the optimal tool for achieving a uniform color and a thin paint layer on the sample plate. Through CFD modeling, potential cavitation zones are identified under various test conditions to refine the placement of piezoelectric sensors in experimental tests. As a result, piezoelectric sensors are positioned more accurately to measure sound pressure levels. The sound pressure levels obtained using piezoelectric sensors in the time domain, are compared with erosion-induced cavitation zones on the sample test surfaces. The strong agreement between sound pressure levels and observed erosion on the sample plates confirms the accuracy and improvement in the placement of piezoelectric sensors based on CFD modeling.
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publishDate 2025-01-01
publisher Isfahan University of Technology
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spelling doaj-art-5b5c12bea8294cc1aba4b92f8901a8172025-01-05T06:26:53ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452025-01-0118360161610.47176/jafm.2025.7608.30032578Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion ProcessesA. Nasseroleslami0A. Sarreshtehdari1M. S. Seif2Shahrood University of Technology, Shahrood, Semnan, IranShahrood University of Technology, Shahrood, Semnan, IranSharif University of Technology, Tehran, IranEvaluation of cavitation erosion risk, whether through numerical (CFD) or experimental methods, is crucial in many fluid flow design processes. This risk correlates directly with cavitation signals on affected surfaces. The aim of this study is to optimize the placement of piezoelectric sensors to investigate cavitation-induced erosion on solid surfaces and to enhance the numerical evaluation of their correlation with recorded signals from the sensors. In this study, based on the technical specifications of the K23 tunnel, a convergent-divergent channel has been designed to reduce the pressure in its test section below the vapor pressure, thereby creating the potential for bubble formation on the sample plate. Within this channel, four semi-cylindrical bluff bodies have been utilized as the most effective obstacles to increase cavitation erosion. A quick method for identifying cavitation erosion involves applying a special color to the sample plate. The Film Applicator has been employed as the optimal tool for achieving a uniform color and a thin paint layer on the sample plate. Through CFD modeling, potential cavitation zones are identified under various test conditions to refine the placement of piezoelectric sensors in experimental tests. As a result, piezoelectric sensors are positioned more accurately to measure sound pressure levels. The sound pressure levels obtained using piezoelectric sensors in the time domain, are compared with erosion-induced cavitation zones on the sample test surfaces. The strong agreement between sound pressure levels and observed erosion on the sample plates confirms the accuracy and improvement in the placement of piezoelectric sensors based on CFD modeling.https://www.jafmonline.net/article_2578_189624abcd6d45044ead76e8167fa85d.pdfplacement of the piezoelectricerosionsound pressure levelcavitation tunnel k23bluff body
spellingShingle A. Nasseroleslami
A. Sarreshtehdari
M. S. Seif
Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
Journal of Applied Fluid Mechanics
placement of the piezoelectric
erosion
sound pressure level
cavitation tunnel k23
bluff body
title Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
title_full Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
title_fullStr Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
title_full_unstemmed Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
title_short Piezoelectric Sensors Placement Strategy for Accurate Acoustic Data Evaluation in Cavitation-induced Erosion Processes
title_sort piezoelectric sensors placement strategy for accurate acoustic data evaluation in cavitation induced erosion processes
topic placement of the piezoelectric
erosion
sound pressure level
cavitation tunnel k23
bluff body
url https://www.jafmonline.net/article_2578_189624abcd6d45044ead76e8167fa85d.pdf
work_keys_str_mv AT anasseroleslami piezoelectricsensorsplacementstrategyforaccurateacousticdataevaluationincavitationinducederosionprocesses
AT asarreshtehdari piezoelectricsensorsplacementstrategyforaccurateacousticdataevaluationincavitationinducederosionprocesses
AT msseif piezoelectricsensorsplacementstrategyforaccurateacousticdataevaluationincavitationinducederosionprocesses