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Effect of Geometrical Modeling on Prediction of Laser-Induced Heat Transfer in Metal Foam

机译:几何模拟对金属泡沫激光诱导热传递预测的影响

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Over the past several decades, aluminum foam has found increasing popularity in industrial applications due to its unique material properties. Unfortunately, to this day aluminum foam can only be affordably manufactured in flat panels, and it becomes necessary to bend the foam to the final shape that is required in engineering applications. Past studies have shown that thin cell walls crack and collapse when conventional mechanical bending methods are used. Laser forming, on the other hand, was shown to be able to bend the material without causing fractures and cell collapse. This study was focused on the thermal aspects of laser forming of closed-cell aluminum foam. An infrared camera was used to measure the transient temperature response of aluminum foam to stationary and moving laser sources. Moreover, three different numerical models were developed to determine how much geometrical accuracy is needed to obtain a good agreement with experimental data. Different levels of geometrical complexity were used, including a simple solid geometry, a Kelvin-cell based geometry, and a highly accurate porous geometry that was based on an X-ray computed tomography (CT) scan. The numerical results were validated with the experimental data, and the performances of the numerical models were compared.
机译:在过去的几十年中,由于其独特的材料特性,铝泡沫在工业应用中发现越来越受欢迎。遗憾的是,到这一天,铝泡沫只能在平板下经济制造,并且必须将泡沫弯曲到工程应用中所需的最终形状。过去的研究表明,使用常规机械弯曲方法时薄的细胞壁裂缝和塌陷。另一方面,激光形成能够弯曲材料而不会引起裂缝和细胞塌陷。该研究专注于闭孔铝泡沫激光形成的热方面。红外相机用于测量铝泡沫的瞬态温度响应,以固定和移动激光源。此外,开发了三种不同的数值模型,以确定与实验数据获得良好协议需要多少几何准确性。使用不同的几何复杂程度,包括简单的实心几何形状,基于Kelvin-Cell基的几何形状,以及基于X射线计算机断层扫描(CT)扫描的高精度多孔几何形状。用实验数据验证了数值结果,比较了数值模型的性能。

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