Spark eroding machining performance, surface textures and optimization strategies for ceramic composites: a review

IF 4.4 3区 工程技术 Q1 ENGINEERING, CIVIL
L. Selvarajan, K. Venkataramanan, K. P. Srinivasa Perumal, C. Arun, Y. Justin Raj, V. Sivakumar, M. Babu, S. Kannan, D. Katherasan, N. Kasthuri
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Abstract

In recent years, notable advancements have been achieved in the field of material science, particularly in metallurgy and ceramic materials. Electrical discharge machining (EDM) has become an indispensable non-conventional machining process, especially suited for intricate shaping of tough materials like ceramics and composites. This comprehensive review delves into the core mechanisms of EDM, focusing on the interplay of thermal energy and electrical discharges. The influence of dielectric fluids and cutting-edge electrode materials is highlighted for their significant role in enhancing machining performance and material removal efficiency. Various EDM techniques, including dry EDM, powder-mixed EDM, micro-EDM, and wire EDM, are explored with a particular focus on their effects on precision, surface quality, and overall material integrity. In particular, the machining of advanced ceramic composites, such as Si3N4–TiN and MoSi2–SiC, is emphasized, where optimizing process parameters becomes crucial to overcoming machining challenges. Key aspects like surface roughness, the formation of recast layers, and alterations in microstructure are scrutinized for their impact on the durability and properties of the final product. The review also sheds light on advanced optimization strategies, including Artificial Neural Networks (ANN), fuzzy Multi-Objective Optimization (MO), genetic algorithms, and hybrid methods like Particle Swarm Optimization (PSO) and Teaching–Learning-Based Optimization (TLBO). These tools are essential for boosting EDM performance, especially in applications demanding high precision. The paper ends with some observations about the expanding use of EDM in biomedical applications, especially in the manufacturing of implants and other medical devices.

Abstract Image

陶瓷复合材料火花腐蚀加工性能、表面织构及优化策略综述
近年来,材料科学领域取得了显著的进展,特别是在冶金和陶瓷材料领域。电火花加工(EDM)已成为一种不可缺少的非常规加工工艺,尤其适用于陶瓷和复合材料等坚硬材料的复杂成型。本文对电火花加工的核心机制进行了全面的探讨,重点讨论了热能和放电的相互作用。由于介质流体和尖端电极材料对提高加工性能和材料去除效率的重要作用,突出了它们的影响。各种电火花加工技术,包括干式电火花加工,粉末混合电火花加工,微细电火花加工和线材电火花加工,探索特别侧重于它们对精度,表面质量和整体材料完整性的影响。特别强调了Si3N4-TiN和MoSi2-SiC等先进陶瓷复合材料的加工,其中优化工艺参数对于克服加工挑战至关重要。表面粗糙度、重铸层的形成和微观结构的变化等关键方面都要仔细检查,以确定它们对最终产品的耐久性和性能的影响。综述还揭示了先进的优化策略,包括人工神经网络(ANN),模糊多目标优化(MO),遗传算法,以及混合方法,如粒子群优化(PSO)和基于教学的优化(TLBO)。这些工具对于提高EDM性能至关重要,特别是在要求高精度的应用中。文章最后对电火花加工在生物医学领域的应用,特别是在植入物和其他医疗器械的制造方面的应用进行了一些观察。
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来源期刊
Archives of Civil and Mechanical Engineering
Archives of Civil and Mechanical Engineering 工程技术-材料科学:综合
CiteScore
6.80
自引率
9.10%
发文量
201
审稿时长
4 months
期刊介绍: Archives of Civil and Mechanical Engineering (ACME) publishes both theoretical and experimental original research articles which explore or exploit new ideas and techniques in three main areas: structural engineering, mechanics of materials and materials science. The aim of the journal is to advance science related to structural engineering focusing on structures, machines and mechanical systems. The journal also promotes advancement in the area of mechanics of materials, by publishing most recent findings in elasticity, plasticity, rheology, fatigue and fracture mechanics. The third area the journal is concentrating on is materials science, with emphasis on metals, composites, etc., their structures and properties as well as methods of evaluation. In addition to research papers, the Editorial Board welcomes state-of-the-art reviews on specialized topics. All such articles have to be sent to the Editor-in-Chief before submission for pre-submission review process. Only articles approved by the Editor-in-Chief in pre-submission process can be submitted to the journal for further processing. Approval in pre-submission stage doesn''t guarantee acceptance for publication as all papers are subject to a regular referee procedure.
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