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Some Aspects on Geometric and Matrix Work-hardening Characteristics of Sintered Cold Forged Copper Alloy Preforms

机译:烧结冷锻铜合金预成型件的几何和基体加工硬化特性的某些方面

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摘要

Powder metallurgy (P/M) material subjected to plastic deformation results into densification, however the extended deformation would not only enhance the densification also supplements the strain hardening. Unlike fully dense material that would only undergo strain hardening while plastic deformation, the P/M material leads to pore closure as well; this phenomenon complicates the work hardening mechanism. The present study revealed that both strain and density configures strengthening of P/M preform, which respectively termed as matrix and geometric work hardening. An attempt has been made to delineate some aspects of work hardening behaviour with the influence of different aspect ratios of sintered and cold deformed copper alloy preforms. The preforms were initially prepared through conventional P/M route and finally subjected to cold upsetting under dry friction condition. A statistical analysis has also been introduced to study the quantitative impact of strain and density in the presence of aspect ratio on work hardening rate characteristics.
机译:粉末冶金(P / M)材料经过塑性变形后会发生致密化,但是扩展的变形不仅会增强致密化,而且还有助于应变硬化。与仅在塑性变形时仅进行应变硬化的完全致密材料不同,P / M材料也会导致孔闭合。这种现象使工作强化机制复杂化。目前的研究表明,应变和密度都可以增强P / M预制件的强度,分别称为基体和几何加工硬化。已经尝试通过烧结和冷变形铜合金预成型体的不同纵横比的影响来描述加工硬化行为的某些方面。首先通过常规的P / M路线制备预成型坯,最后在干摩擦条件下进行冷up锻。还引入了统计分析来研究在存在长宽比的情况下应变和密度对加工硬化速率特性的定量影响。

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