Hybrid Alumina Composites for Cutting Tool Inserts: Material Design and Development

T. Waqar, S. S. Akhtar, A. Arif, K. Al-Athel
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引用次数: 1

Abstract

A successful approach to the development of reinforced materials for enhanced cutting tool inserts requires the formulation and application of innovative concepts at each step of material design development. In this paper, reinforced ceramic-based cutting tools with enhanced thermal and structural properties are developed for high-speed machining applications using a computational approach. A mean-field homogenization, effective medium approximation and J-integral based fracture toughness evaluation using an in-house code are used for predicting the effective structural and thermal properties for tool inserts as a function of reinforcement type, volume fraction, particle size and interface between matrix and reinforcement. Initially, several potential reinforcements are selected at the material design phase. SiC, TiB2, cBN and TiC were all found to be suitable candidates when reinforced into an alumina matrix as both single and hybrid inclusions for the enhancement of thermal and structural properties. For validation purposes, alumina-cubic boron nitride-silicon carbide composites are developed using Spark Plasma Sintering as hybrid systems, which are in line with the designed range of volume fraction and reinforcement particle size. Structural and thermal properties such as elastic modulus, fracture toughness and thermal conductivity are measured to complement the computational material design model.
刀具刀片用混合氧化铝复合材料:材料设计与开发
为增强切削刀具刀片开发增强材料的成功方法需要在材料设计开发的每个步骤中制定和应用创新概念。本文采用计算方法开发了具有增强热性能和结构性能的增强陶瓷基刀具,用于高速加工应用。采用平均场均匀化、有效介质近似和基于j积分的断裂韧性评估方法(使用内部代码)来预测刀具刀片的有效结构和热性能,并将其作为增强类型、体积分数、粒度和基体与增强之间界面的函数。最初,在材料设计阶段选择几种可能的增强材料。SiC、TiB2、cBN和TiC均可作为单一或杂化夹杂体增强到氧化铝基体中,以增强材料的热性能和结构性能。为了验证其有效性,采用火花等离子烧结技术制备了符合设计体积分数和增强颗粒尺寸范围的铝-立方氮化硼-碳化硅复合材料。测量结构和热性能,如弹性模量、断裂韧性和导热系数,以补充计算材料设计模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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