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优化双金属层压板的热机械加工

Optimizing Thermomechanical Processing of Bimetallic Laminates.

作者信息

Kocich Radim

机构信息

Faculty of Materials Science and Technology, VŠB-Technical University of Ostrava, 17. Listopadu 2172/15, 70800 Ostrava-Poruba, Czech Republic.

出版信息

Materials (Basel). 2023 Apr 30;16(9):3480. doi: 10.3390/ma16093480.

DOI:10.3390/ma16093480
PMID:37176362
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10180101/
Abstract

Thermomechanical processing combining plastic deformation and heat treatment is a favorable way to enhance the performance and lifetime of bimetallic laminates, especially those consisting of metals, which tend to form intermetallic layers on the interfaces when produced using methods involving increased temperatures. The presented work focuses on optimizing the conditions of thermomechanical treatment for an Al + Cu bimetallic laminate of innovative design involving a shear-strain-based deformation procedure (rotary swaging) and post-process heat treatment in order to acquire microstructures providing advantageous characteristics during the transfer of direct and alternate electric currents. The specific electric resistivity, as well as microhardness, was particularly affected by the structural features, e.g., grain size, the types of grain boundaries, and grain orientations, which were closely related to the applied thermomechanical procedure. The microhardness increased considerably after swaging (up to 116 HV02 for the Cu components), but it decreased after the subsequent heat treatment at 350 °C. Nevertheless, the heat-treated laminates still featured increased mechanical properties. The measured electric characteristics for DC transfer were the most favorable for the heat-treated 15 mm bimetallic laminate featuring the lowest measured specific electric resistivity of 22.70 × 10 Ωm, while the 10 mm bimetallic laminates exhibited advantageous behavior during AC transfer due to a very low power loss coefficient of 1.001.

摘要

将塑性变形与热处理相结合的热机械加工是提高双金属层压板性能和使用寿命的一种有利方法,特别是对于由金属组成的层压板,当使用涉及高温的方法生产时,这些金属往往会在界面上形成金属间层。本文的工作重点是优化一种创新设计的铝铜双金属层压板的热机械处理条件,该层压板采用基于剪切应变的变形工艺(旋转锻造)和后处理热处理,以便获得在直流和交流电流传输过程中具有有利特性的微观结构。比电阻率以及显微硬度特别受结构特征的影响,例如晶粒尺寸、晶界类型和晶粒取向,这些与所应用的热机械工艺密切相关。锻造后显微硬度显著增加(铜部件高达116 HV02),但在随后350℃的热处理后降低。然而,热处理后的层压板仍具有增强的机械性能。对于直流传输,测量的电学特性对于热处理后的15毫米双金属层压板最为有利,其测得的最低比电阻率为22.70×10Ωm,而10毫米双金属层压板在交流传输过程中表现出有利行为,因为其功率损耗系数非常低,为1.001。

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Materials (Basel). 2023 Jan 9;16(2):622. doi: 10.3390/ma16020622.
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Fundamental Improvement of Creep Resistance of New-Generation Nano-Oxide Strengthened Alloys via Hot Rotary Swaging Consolidation.
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Materials (Basel). 2020 Sep 18;13(18):4161. doi: 10.3390/ma13184161.
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