闭孔纯铝泡沫和 A356 合金铝泡沫在压缩过程中的机械特性和能量吸收行为

Hayder A. Fadhil, Rafil M. Laftah, Qussay T. Abdulwahab
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摘要

本研究的目的是评估闭孔纯铝泡沫和闭孔 A356 泡沫的机械特性和能量吸收能力。一部分轻质纯铝泡沫样品(17.12、17.77 和 15.27 克)是使用氢化钛(TiH2)作为发泡剂,通过浇铸原材料(99.9% 纯铝)制成的,其每英寸孔隙数(PPI)分别为 7.5、7 和 8;而 A356 泡沫样品(38.24、38.18 和 35.88 克)则是使用相同程序,通过浇铸 A356 合金材料制成的,其每英寸孔隙数(PPI)分别为 11、10 和 12。为了确定最大抗压强度、强度重量比、能量吸收密度、补充能量和能量吸收效率,进行了单轴压缩试验。结果表明,纯泡沫结构在压缩过程中呈韧性粉碎,并显示出层状共晶结构,而 A365 泡沫在压缩过程中呈脆性粉碎,内部有复杂的相分布(多面体和球状形态)。在所有测试样品中,合金泡沫的最大抗压强度和比能量吸收分别提高了近 4 倍和 2 倍。此外,结果表明,随着 PPI 的增加,纯泡沫和合金泡沫的抗压强度都明显下降。合金闭孔泡沫性能的显著提高使这些先进材料成为高强度应用的可行选择。
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Mechanical Characteristic and Energy Absorption Behavior of Closed-Cell Pure and A356 Alloyed Aluminum Foams during Compression
The goal of this study is to evaluate the mechanical characteristics and energy absorption capabilities of both closed-cell pure Aluminum foam and closed-cell A356 foam. A portion of the lightweight pure foam samples (17.12, 17.77 and 15.27 g) is produced through casting of raw material (99.9 % pure aluminum) using Titanium Hydride (TiH2) as a foaming agent, which lead to (7.5, 7 and 8) Pores Per Inches (PPI); and samples of A356 foam (38.24, 38.18 and 35.88 g) is produced through casting of A356 alloyed material with same procedure which lead to (11, 10 and 12) PPI. In order to determine the maximum compressive strength, strength-to-weight ratio, energy absorption density, complementary energy, and energy absorption efficiency, a uniaxial compression test is conducted. The results indicate that compression of pure foam structure smashed in a ductile manner and shows a lamellar eutectic structure while A365 foams under compression are crashed with brittle character with complex phases distribution inside (polyhedral and globular morphologies), A noticeable enhancement is observed in the mechanical characteristics of the A356 foam. The maximum compressive strength and specific energy absorption of alloyed foam are increased by a factor nearly of 4 and 2 respectively for all tested samples. Also, the result shows a significant decreasing in compressive strength with increasing of PPI for both pure and alloyed foam. The notable enhancements in the properties of alloyed closed cell foam render these advanced materials a viable option for high-strength applications.
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