A Review of the Mechanical Properties of 17-4PH Stainless Steel Produced by Bound Powder Extrusion

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Jaidyn Jones, Ana Vafadar, Reza Hashemi
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Abstract

17-4PH Stainless Steel is a mechanically high-performing alloy that is widely used across chemical and mechanical processing industries. The alloy is conventionally fabricated by cast methods, but emerging additive manufacturing techniques are presently offering an economic, efficient, and environmentally friendly alternative. Bound Powder Extrusion (BPE) is a relatively new additive manufacturing technique that is used to fabricate three-dimensional, free-form components. Investigation into the mechanical properties and behavior of 17-4PH stainless steel fabricated by BPE is vital to understanding whether this technique proposes a competitive substitute to the cast alloy within industry. Published literature has investigated the as-fabricated mechanical properties, microstructure, porosity, and post-processing heat treatment of the BPE alloy, with limited comparison evident among the papers. This paper, therefore, aims to review published findings on the mechanical properties of 17-4PH stainless steel produced by additive manufacturing techniques, with a key focus on BPE. It is important to highlight that this review study focuses on the MetalXTM 3D printer, manufactured by Markforged. This printer is among the widely utilized BPE 3D printers available in the market. The key results, together with the impact of post-heat treatments, were discussed and compared to provide a more comprehensive picture of the patterns that this alloy presents in terms of its microstructure and mechanical properties. This enables the manufacture of components relative to desired material performance, improving overall functionality. A comparison of yield strength, ultimate tensile strength (UTS), Young’s modulus, ductility, and hardness was made relative to microstructure, porosity, and density of published literature for the as-fabricated and post-heat-treated states, identifying areas for further research.
结合粉末挤压法制备17-4PH不锈钢的力学性能研究
17-4PH不锈钢是一种机械高性能合金,广泛应用于化学和机械加工行业。该合金传统上是通过铸造方法制造的,但新兴的增材制造技术目前提供了一种经济、高效、环保的替代方法。结合粉末挤压(BPE)是一种相对较新的增材制造技术,用于制造三维,自由形状的部件。研究BPE制造的17-4PH不锈钢的力学性能和行为对于了解该技术是否能在工业上取代铸造合金具有竞争力至关重要。已发表的文献研究了BPE合金的制备力学性能、微观结构、孔隙率和后处理热处理,但文献之间的比较有限。因此,本文旨在回顾已发表的关于增材制造技术生产的17-4PH不锈钢机械性能的研究结果,重点关注BPE。值得强调的是,本综述研究的重点是Markforged公司生产的MetalXTM 3D打印机。该打印机是市场上广泛使用的BPE 3D打印机之一。讨论和比较了关键结果以及后热处理的影响,从而更全面地了解了该合金在微观组织和力学性能方面呈现的模式。这使得制造部件相对于所需的材料性能,提高整体功能。比较了屈服强度、极限抗拉强度(UTS)、杨氏模量、延展性和硬度与制备状态和热处理后的微观结构、孔隙率和密度的关系,确定了进一步研究的领域。
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
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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