Effect of Alloying Type and Lean Sintering Atmosphere on the Performance of PM Components

Q4 Materials Science
M. V. Sundaram, R. Shvab, S. Millot, E. Hryha, L. Nyborg
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引用次数: 0

Abstract

Abstract In order to be cost effective and to meet increasing performance demands, powder metallurgy steel components require continuous improvement in terms of materials and process development. This study demonstrates the feasibility of manufacturing structural components using two different alloys systems, i.e. lean Cr-prealloyed and diffusion bonded water atomised powders with different processing conditions. The components were sintered at two different temperatures, i.e. 1120 and 1250 °C for 30 minutes in three different atmospheres: vacuum, N2- 10%H2 atmosphere as well as lean N2-5%H2-0.5%CO-(0.1-0.4)%CH4 sintering atmosphere. Components after sintering were further processed by either low pressure carburizing, sinterhardening or case hardening. All trials were performed in the industrial furnaces to simulate the actual production of the components. Microstructure, fractography, apparent and micro hardness analyses were performed close to the surface and in the middle of the sample to characterize the degree of sintering (temperature and atmosphere) and the effect of heat treatment. In all cases, components possess mostly martensitic microstructure with a few bainitic regions. The fracture surface shows well developed sinter necks. Inter- and trans-granular ductile and cleavage fracture modes are dominant and their fraction is determined by the alloy and processing route.
合金化类型和贫烧结气氛对PM元件性能的影响
摘要为了节约成本并满足日益增长的性能要求,粉末冶金钢构件需要在材料和工艺开发方面不断改进。本研究证明了使用两种不同合金体系制造结构部件的可行性,即不同加工条件下的贫铬预合金和扩散结合水雾化粉末。在两种不同的温度(即1120和1250°C)下,在三种不同的气氛中烧结部件30分钟:真空、N2-10%H2气氛以及贫N2-5%H2-0.5%CO-(0.1-0.4)%CH4烧结气氛。烧结后的部件通过低压渗碳、烧结硬化或表面硬化进行进一步处理。所有试验都是在工业炉中进行的,以模拟部件的实际生产。在样品表面附近和中间进行了微观结构、断口形貌、表观硬度和显微硬度分析,以表征烧结程度(温度和气氛)和热处理效果。在所有情况下,部件大多具有马氏体微观结构,并有少量贝氏体区域。断口显示烧结颈发育良好。晶粒间和穿晶韧性和解理断裂模式占主导地位,其分数由合金和加工路线决定。
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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来源期刊
Powder Metallurgy Progress
Powder Metallurgy Progress Materials Science-Metals and Alloys
CiteScore
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