Simulation and Experimental Study on Electrochemical Machining for Nickel-Based High-Temperature Alloy Turbine Blades

Electrochemical machining is widely recognized as a high-efficiency, low-cost and high-precision non-traditional machining technology for the manufacturing of turbine blade components. Nevertheless, in the practical electrochemical machining of turbine blades, the uneven spatial distribution of electric field intensity within the inter-electrode machining gap inevitably causes inconsistent anodic dissolution, which significantly deteriorates the final surface quality of machined blades. A set of comparative machining experiments were conducted on Inconel 625 superalloy. The experimental results fully verified that pulsed current machining could effectively improve the surface integrity and surface quality, and the optimal matching electrical parameters were successfully determined through systematic data analysis. The essential improvement mechanism lied in the effective suppression of stray current-induced scattered dissolution under pulsed power supply, which was highly consistent with the numerical simulation conclusions.

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Publication Details

Journal
Metals
Published
2026-09-10
DOI
https://doi.org/10.3390/met16091008
Primary Topic
Advanced Machining and Optimization Techniques
Type
article
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Simulation and Experimental Study on Electrochemical Machining for Nickel-Based High-Temperature Alloy Turbine Blades

Yaowu Zhou, Zhaozhi Wu, Mingzhu Ren, Yang Liu
Metals
Advanced Machining and Optimization Techniques
article

Simulation and Experimental Study on Electrochemical Machining for Nickel-Based High-Temperature Alloy Turbine Blades

Yaowu Zhou, Zhaozhi Wu, Mingzhu Ren, Yang Liu
article en

Abstract

Electrochemical machining is widely recognized as a high-efficiency, low-cost and high-precision non-traditional machining technology for the manufacturing of turbine blade components. Nevertheless, in the practical electrochemical machining of turbine blades, the uneven spatial distribution of electric field intensity within the inter-electrode machining gap inevitably causes inconsistent anodic dissolution, which significantly deteriorates the final surface quality of machined blades. A set of comparative machining experiments were conducted on Inconel 625 superalloy. The experimental results fully verified that pulsed current machining could effectively improve the surface integrity and surface quality, and the optimal matching electrical parameters were successfully determined through systematic data analysis. The essential improvement mechanism lied in the effective suppression of stray current-induced scattered dissolution under pulsed power supply, which was highly consistent with the numerical simulation conclusions.

MetalsVol. 16(9)
Jiangsu University (CN), Suzhou University of Science and Technology (CN), Soochow University (CN), Suzhou Vocational University (CN), Guangdong Polytechnic Normal University (CN), Yancheng Institute of Technology (CN), Huazhong University of Science and Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Machining and Optimization Techniques
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Simulation and Experimental Study on Electrochemical Machining for Nickel-Based High-Temperature Alloy Turbine Blades — Yaowu Zhou, Zhaozhi Wu, et al. · Metals (2026) | TGRS Research Map | TGRS