Scholay

学术搜索 · AI 审稿 · LaTeX 协作

Milling of disc cutter replacing traditional grinding mechanism in machining of nickel-based superalloy honeycomb composites under ice-freezing condition

作者:Haihang Wang, Chenguang Wang, Pengjie Gao, H S Li, Guoqiang Guo, Qinglong An, Weiwei Ming, Ming Chen, Qi Wang, Zhen Yin · 发表于:Journal of Materials Research and Technology · 年份:2025 · DOI:10.1016/j.jmrt.2025.10.181 · 被引用次数:3 · 研究领域:Advanced machining processes and optimization、Additive Manufacturing Materials and Processes、Advanced ceramic materials synthesis

The nickel-based superalloy honeycomb composite (NBSHC) is widely applied in aerospace and defense due to its low density, high-temperature resistance, and excellent specific strength. Although grinding is the conventional method for machining NBSHC, its efficiency and quality are limited. Therefore, disc-cutter milling is proposed as an alternative, offering higher efficiency and reduced defects. The micro and macro simulations of NBSHC milling and grinding were established to reveal the intricate mechanisms involved in material removal process. Combining the experiments and simulations, the cutting force, temperature, plastic deformation and defect behavior were comprehensively analyzed to explain the mechanism of milling of disc cutter replacing grinding. The findings revealed that during NBSHC milling with a disc cutter, the cutting forces were minimized, resulting in lower temperatures and thus reducing the region of deformation and thermal softening effects. The material removal occurred through cutting, with a shear surface forming the contact zone, where stress, energy and plastic strain were concentrated. This concentration facilitated easier material removal and chip formation. Hence, the influence area of plastic deformation was extremely small, only concentrated at the top of the honeycomb wall and the tiny burr. These reasons minimized the occurrence of severe defects during NBSHC milling with a disc cutter. While ensuring that the machining quality meets practic...