Ni/Al-Hybrid Foams: An Interface Study by Combination of 3D-Phase Morphology Imaging, Microbeam Fracture Mechanics and in situ Synchrotron Stress Analysis

Jutta Luksch, A. Jung, C. Pauly, R. Derr, Patrick Grünewald, M. Laub, M. Klaus, C. Genzel, C. Motz, F. Mücklich, F. Schaefer
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Abstract

Nickel(Ni)/aluminium(Al) hybrid foams are Al base foams coated with Ni by electrodeposition. Hybrid foams offer an enhanced energy absorption capacity. To ensure a good adhering Ni coating, necessary for a shear resistant interface, the influence of a chemical pre-treatment of the base foam was investigated by a combination of an interface morphology analysis by focused ion beam (FIB) tomography and in situ mechanical testing. The critical energy for interfacial decohesion from microbending fracture tests in the scanning electron microscope (SEM) were contrasted to depth-resolved measurements of the evolving stresses in the Ni coating during three-point bending tests at the energy-dispersive diffraction (EDDI) beamline at the synchrotron BESSY II. Such an assessment of the interface decohesion resistance with respect to the interface morphology provides a strategy for further improvement of the interface morphology.
基于三维相形貌成像、微束断裂力学和原位同步加速器应力分析的Ni/ al杂化泡沫界面研究
镍(Ni)/铝(Al)杂化泡沫是电沉积镀镍的铝基泡沫。混合泡沫提供了增强的能量吸收能力。为了确保抗剪切界面所需的良好粘附Ni涂层,通过聚焦离子束(FIB)层析成像界面形貌分析和原位力学测试相结合,研究了化学预处理对基础泡沫的影响。在同步加速器BESSY II上,利用能量色散衍射(EDDI)光束线对Ni涂层在三点弯曲试验中不断变化的应力进行深度分辨测量,对比了扫描电镜(SEM)微弯曲断裂试验中界面脱黏的临界能量。这种对界面形态的界面脱黏阻力的评估为进一步改善界面形态提供了一种策略。
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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