A chip formation mechanism taking into account microstructure evolution during the cutting process: Taking compacted graphite iron machining as an example

IF 14 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Machine Tools & Manufacture Pub Date : 2024-03-25 DOI:10.1016/j.ijmachtools.2024.104150
Jiahui Niu , Chuanzhen Huang , Zhenyu Shi , Hanlian Liu , Zhengyi Tang , Rui Su , Zhen Chen , Binghao Li , Zhen Wang , Longhua Xu
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Abstract

Compacted graphite iron (CGI), a prototypical heterogeneous material, potentially demonstrates distinctive cutting deformation behaviours attributed to the random distribution of graphite and performance differences between graphite and the matrix, which have not yet received adequate attention. This study focuses on the influence of the microstructure characteristics of CGI on the formation of serrated chips. The morphology of the serrated chip segments during the orthogonal turning of CGI was observed in detail, the microstructures of the chip roots were characterised and analysed using various techniques, and a finite-element cutting simulation model considering the microstructural characteristics of CGI was developed. Results suggest that the formation of serrated chips in CGI is influenced by periodic and aperiodic brittle fractures, referred to as quasi-periodic brittle fractures, which are controlled by the distribution of graphite in CGI. This results in variations in the morphology and dimensions of the serrated chips in CGI. Plastic deformation is concentrated in a triangular deformation zone (TDZ) near the tool-chip interface, which is broader than the conventional secondary deformation zone. The experimental and simulation results revealed the reasons for the formation of the TDZ and emphasized the critical role of graphite in the formation of serrated chips in CGI. The graphite particles near the tool-chip interface promoted plastic deformation along the interface owing to the principle of minimum energy and restricted deformation perpendicular to the interface due to its structure, leading to the formation of the TDZ. The influence of graphite on material flow and the formation of the TDZ during the formation of serrated chips in CGI is a novel discovery. The microstructure evolution of the pearlite matrix in CGI caused by cutting deformation was analysed. The results demonstrate that the distinctive deformation behaviour of CGI contributes to the fragmentation of the pearlite structure, grain refinement, and increased dislocation density in the TDZ. Finally, the influence of the serrated chip formation mechanism on chip morphology and cutting force in CGI was discussed. These findings offer significant scientific insights and contribute to the fundamental understanding of the chip formation process in CGI.

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考虑到切削过程中微观结构演变的切屑形成机制:以压实石墨铁加工为例
压实石墨铁(CGI)是一种典型的异质材料,由于石墨的随机分布以及石墨与基体之间的性能差异,它可能表现出与众不同的切削变形行为,但这些行为尚未得到足够的重视。本研究的重点是 CGI 的微观结构特征对锯齿状切屑形成的影响。详细观察了 CGI 正交车削过程中锯齿状切屑段的形态,采用多种技术对切屑根部的微观结构进行了表征和分析,并建立了考虑 CGI 微观结构特征的有限元切削模拟模型。结果表明,CGI 中锯齿状切屑的形成受周期性和非周期性脆性断裂(称为准周期性脆性断裂)的影响,这些断裂受 CGI 中石墨分布的控制。这导致 CGI 中锯齿状芯片的形态和尺寸发生变化。塑性变形集中在刀具-切屑界面附近的三角形变形区(TDZ),该变形区比传统的二次变形区更宽。实验和模拟结果揭示了 TDZ 形成的原因,并强调了石墨在 CGI 中锯齿状切屑形成过程中的关键作用。由于最小能量原理,靠近刀具-切屑界面的石墨颗粒促进了沿界面的塑性变形,而由于其结构限制了垂直于界面的变形,从而导致了 TDZ 的形成。在 CGI 中锯齿状切屑形成过程中,石墨对材料流动和 TDZ 形成的影响是一个新发现。研究人员分析了切割变形引起的 CGI 中珠光体基体的微观结构演变。结果表明,CGI 的独特变形行为导致了珠光体结构的破碎、晶粒细化以及 TDZ 中位错密度的增加。最后,讨论了 CGI 中锯齿状切屑形成机制对切屑形态和切削力的影响。这些发现提供了重要的科学见解,有助于从根本上理解 CGI 中的切屑形成过程。
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来源期刊
CiteScore
25.70
自引率
10.00%
发文量
66
审稿时长
18 days
期刊介绍: The International Journal of Machine Tools and Manufacture is dedicated to advancing scientific comprehension of the fundamental mechanics involved in processes and machines utilized in the manufacturing of engineering components. While the primary focus is on metals, the journal also explores applications in composites, ceramics, and other structural or functional materials. The coverage includes a diverse range of topics: - Essential mechanics of processes involving material removal, accretion, and deformation, encompassing solid, semi-solid, or particulate forms. - Significant scientific advancements in existing or new processes and machines. - In-depth characterization of workpiece materials (structure/surfaces) through advanced techniques (e.g., SEM, EDS, TEM, EBSD, AES, Raman spectroscopy) to unveil new phenomenological aspects governing manufacturing processes. - Tool design, utilization, and comprehensive studies of failure mechanisms. - Innovative concepts of machine tools, fixtures, and tool holders supported by modeling and demonstrations relevant to manufacturing processes within the journal's scope. - Novel scientific contributions exploring interactions between the machine tool, control system, software design, and processes. - Studies elucidating specific mechanisms governing niche processes (e.g., ultra-high precision, nano/atomic level manufacturing with either mechanical or non-mechanical "tools"). - Innovative approaches, underpinned by thorough scientific analysis, addressing emerging or breakthrough processes (e.g., bio-inspired manufacturing) and/or applications (e.g., ultra-high precision optics).
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