硬质合金刀片切削508III钢时高温变形行为及疲劳机理研究

Li Liu, Yaonan Cheng, Tong Wang, Yu-Soo Han, Ming Xu
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引用次数: 5

摘要

切削热是影响硬质合金刀片切削性能和使用寿命的主要因素之一。在水室头的铣削过程中,周期性的热载荷和机械载荷会导致圆形硬质合金刀片的失效,从而大大降低其使用寿命和切削效率。本文介绍了金属材料和YT15硬质合金的高温变形实验与分析;通过这些实验,我们可以确定硬质合金在一定温度范围内的热膨胀系数,为硬质合金的热变形计算和切削模拟提供合适的参数。然后,我们进行了水室头部现场铣削实验,从中我们发现圆形刀片的失效通常可归因于磨损和断裂。利用热膨胀系数、刀片材料性能、坯料及切削参数,模拟了圆刀片切削508III钢水室封头的过程。结合仿真结果,评估了切削力、切削热、刀片变形对刀片失效的影响,并对水室头切削时刀片失效机理进行了研究。最终,我们能够分析不同铣削条件对刀片失效的影响。对五种刀片的切削性能进行了测试,以优化刀片的结构和涂层。研究结果可为提高水室水头切削常用刀片的抗失效性能和使用寿命提供依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigations of the high-temperature deformation behaviour and fatigue mechanisms of cemented carbide inserts during cutting 508III steel
Cutting heat is one of the major factors affecting the cutting performance and service life of cemented carbide inserts. During the milling of water-chamber heads, periodic thermal and mechanical loading can lead to failure in round cemented carbide inserts, significantly reducing both their service life and their cutting efficiency. This paper describes high-temperature deformation experiments and analyses of both metallic material and YT15 cemented carbide; by conducting these experiments, we were able to determine the thermal expansion coefficient of the cemented carbide within a certain temperature range, as well as provide suitable parameters for the thermal deformation calculation and cutting simulation of cemented carbide. We then conducted water-chamber head field milling experiments, from which we discovered that failures of the round inserts are generally attributable to wear and fracture. We used the thermal expansion coefficient, material properties of the inserts, and billets and cutting parameters to simulate the process of cutting water-chamber heads (508III steel) with a round insert. In combination with the simulation result, we assessed the influence of cutting force, cutting heat, and insert deformation on insert failure, and we also investigated the insert failure mechanism while cutting water-chamber heads. Ultimately, we were able to analyze the influence of different milling conditions on insert failure. We tested the cutting performances of five types of inserts so as to optimize the insert structure and coating. The results of this research can provide a foundation for improving the anti-failure performance and service life of inserts, which are often used in water-chamber head cutting.
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