局部弱化零件的增材制造以获得设计断裂

IF 3.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Manuela Galati, Silvio Defanti
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引用次数: 0

摘要

如今,增材制造(AM)方法已使零件和工艺设计发生了深刻变化,实现了以前不可能实现的材料特性。由于可以在逐层制造部件的过程中自由创造材料,增材制造允许对制造部件的材料特性进行精确的空间控制。在这项工作中,我们提出了一种独创的方法,用于局部控制部件和工艺设计,并通过设计断裂创建有意削弱的区域,从而为实现可调整的机械性能铺平道路。通过对嵌入不同几何形状削弱区域的试样进行拉伸试验,验证了预先设计断裂模式的可行性,并描述了材料行为的变化特征。结果表明,对人工削弱区域进行特别设计可有效预测断裂情况,载荷和应变是主动控制机械行为的先决条件。缺陷与机械响应之间的定量关系可以从以下事实中体现出来:例如,对于平面几何体,当薄弱区域的厚度增加一倍时,最大应力和应变会减小一半。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additive Manufacturing of Locally Weakened Parts to Obtain a Designed Fracture

Today, the additive manufacturing (AM) approach has led to profound changes in part and process design, enabling previously impossible material properties. With the freedom to create the material as components are built layer by layer, AM has permitted precise spatial control of the material properties in manufactured parts. In this work, an original approach is proposed to locally control component and process design and create intentionally weakened regions with designed fracture, which paves the way to tuneable mechanical properties. Tensile tests of specimens with embedded weakened area of various geometries are used to verify the feasibility of a-priori-designed fracture modes and to characterise the variation in material behaviour. The results show that an ad hoc design of the artificially weakened areas is effective for predictable breakage, with load and strain being the precursor for active control of the mechanical behaviour. The attainability of a quantitative relationship between the defect and the mechanical response is exemplified by the fact that, e.g. for a flat geometry, the maximum stress and strain are reduced by half when the thickness of the weak region is doubled.

Graphical abstract

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来源期刊
Metals and Materials International
Metals and Materials International 工程技术-材料科学:综合
CiteScore
7.10
自引率
8.60%
发文量
197
审稿时长
3.7 months
期刊介绍: Metals and Materials International publishes original papers and occasional critical reviews on all aspects of research and technology in materials engineering: physical metallurgy, materials science, and processing of metals and other materials. Emphasis is placed on those aspects of the science of materials that are concerned with the relationships among the processing, structure and properties (mechanical, chemical, electrical, electrochemical, magnetic and optical) of materials. Aspects of processing include the melting, casting, and fabrication with the thermodynamics, kinetics and modeling.
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