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泡沫铝夹芯板:孔隙演化机理研究与工程制备优化

Aluminum Foam Sandwich: Pore Evolution Mechanism Investigation and Engineering Preparing Optimization.

作者信息

Sun Xi, Jian Zhiqian, Su Xixi, Huang Peng, Gao Qiang, Feng Zhanhao, Zu Guoyin

机构信息

School of Metallurgy, Northeastern University, Shenyang 110819, China.

School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China.

出版信息

Materials (Basel). 2023 Sep 29;16(19):6479. doi: 10.3390/ma16196479.

Abstract

This paper employs an innovative investigation approach to study pore evolution in Al-Si-Mg-Cu alloy within aluminum foam sandwiches (AFS) by integrating data from heating-expansion ratio curves, in situ observation of synchronous radiation, and microscopic analysis of the matrix's microstructure at different stages. Additionally, the cavity design and plate type control for large-scale AFS production are explored. Findings categorize the precursor heating into three stages: rapid heating, solid-liquid transition, and stable foaming. During solid-liquid transition, the expansion rate experiences a sudden drop, associated with pore nucleation and edge cracking of precursors. Pores nucleate as elongated crack-like structures along the rolling direction, guided by the Mg-enriched regions. In stable foaming, these pores evolve, become spherical, and the matrix rapidly expands. Using square tubes for sealing on the preform cavity sides creates a dense edge zone during rolling, halting crack propagation into the powder core. Adopting edge sealing during foaming mitigates boundary effects, thereby improving AFS panel flatness.

摘要

本文采用一种创新的研究方法,通过整合加热膨胀率曲线数据、同步辐射原位观察以及不同阶段基体微观结构的微观分析,来研究泡沫铝夹心结构(AFS)中Al-Si-Mg-Cu合金的孔隙演变。此外,还探索了大规模AFS生产的型腔设计和板材类型控制。研究结果将前驱体加热分为三个阶段:快速加热、固液转变和稳定发泡。在固液转变过程中,膨胀率突然下降,这与前驱体的孔隙形核和边缘开裂有关。孔隙沿着轧制方向以细长的裂纹状结构形核,由富镁区域引导。在稳定发泡过程中,这些孔隙不断演变,变成球形,基体迅速膨胀。在预制型腔侧面使用方管进行密封,在轧制过程中形成致密的边缘区域,阻止裂纹扩展到粉末芯部。在发泡过程中采用边缘密封可减轻边界效应,从而提高AFS板的平整度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a8c/10573979/39406cc1b738/materials-16-06479-g001.jpg

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