Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes

Electrical parameters of the power supply are significant factors affecting the accuracy and stability of the electrochemical machining (ECM). However, the electric field, flow velocity and temperature in the machining area are difficult to measure directly under the influence of the power supply. T...

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Main Authors: Zhaolong Li, Bingren Cao, Ye Dai
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/12/8/950
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spelling doaj-cc4472dfd96b446790554453c87a42fa2021-08-26T14:05:06ZengMDPI AGMicromachines2072-666X2021-08-011295095010.3390/mi12080950Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube ElectrodesZhaolong Li0Bingren Cao1Ye Dai2Key Laboratory of Advanced Manufacturing Intelligent Technology of Ministry of Education, Harbin University of Science and Technology, Harbin 150080, ChinaSchool of Mechanical and Power Engineering, Harbin University of Science and Technology, Harbin 150080, ChinaKey Laboratory of Advanced Manufacturing Intelligent Technology of Ministry of Education, Harbin University of Science and Technology, Harbin 150080, ChinaElectrical parameters of the power supply are significant factors affecting the accuracy and stability of the electrochemical machining (ECM). However, the electric field, flow velocity and temperature in the machining area are difficult to measure directly under the influence of the power supply. Therefore, taking the film cooling hole as an example, the multi-physics coupling simulation analysis of the ECM is performed on the basis of Faraday’s law and fluid heat transfer mathematical model. The machining characteristics of the direct current and pulse ECM are compared through simulation. The results show that the pulse ECM improves the distribution of temperature and current density in the machining area. The period has little effect on the temperature, current density and side removal rate. The side removal rate increases with the increase of the duty ratio and lateral gap. Increasing of the duty ratio and decreasing of the lateral gap will increase the temperature and current density. Increasing the inlet pressure accelerates the frequency of renewal of heat and electrolysis products, which can reduce the single side gap. The experience of the ECM holes verifies the results of the simulation. The accuracy and stability of the ECM of holes are enhanced by optimizing the duty ratio, lateral gap and inlet pressure.https://www.mdpi.com/2072-666X/12/8/950electrochemical machiningaccuracystabilityperiodduty ratiolateral gap
collection DOAJ
language English
format Article
sources DOAJ
author Zhaolong Li
Bingren Cao
Ye Dai
spellingShingle Zhaolong Li
Bingren Cao
Ye Dai
Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
Micromachines
electrochemical machining
accuracy
stability
period
duty ratio
lateral gap
author_facet Zhaolong Li
Bingren Cao
Ye Dai
author_sort Zhaolong Li
title Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
title_short Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
title_full Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
title_fullStr Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
title_full_unstemmed Research on Multi-Physics Coupling Simulation for the Pulse Electrochemical Machining of Holes with Tube Electrodes
title_sort research on multi-physics coupling simulation for the pulse electrochemical machining of holes with tube electrodes
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2021-08-01
description Electrical parameters of the power supply are significant factors affecting the accuracy and stability of the electrochemical machining (ECM). However, the electric field, flow velocity and temperature in the machining area are difficult to measure directly under the influence of the power supply. Therefore, taking the film cooling hole as an example, the multi-physics coupling simulation analysis of the ECM is performed on the basis of Faraday’s law and fluid heat transfer mathematical model. The machining characteristics of the direct current and pulse ECM are compared through simulation. The results show that the pulse ECM improves the distribution of temperature and current density in the machining area. The period has little effect on the temperature, current density and side removal rate. The side removal rate increases with the increase of the duty ratio and lateral gap. Increasing of the duty ratio and decreasing of the lateral gap will increase the temperature and current density. Increasing the inlet pressure accelerates the frequency of renewal of heat and electrolysis products, which can reduce the single side gap. The experience of the ECM holes verifies the results of the simulation. The accuracy and stability of the ECM of holes are enhanced by optimizing the duty ratio, lateral gap and inlet pressure.
topic electrochemical machining
accuracy
stability
period
duty ratio
lateral gap
url https://www.mdpi.com/2072-666X/12/8/950
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