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Effects of radiative local heating on metal solidification during selective laser melting for additive manufacturing

机译:辐射局部加热对增材制造中选择性激光熔化过程中金属凝固的影响

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Selective laser melting (SLM) is a promising additive manufacturing technique arising from glassy metal characteristics of treated medium. When creating novel compositions of materials and intricate workpieces, reliable thermal designs should be implemented based on well-understood heat transfer characteristics on matierlas to be used. Herein, we investigate local and overall heat transfer characteristics of SLM processes and investigate the principal parameters related to the magnituge of a radiative heating power and its exposure time. We present how to exert their influence upon local melting and sequential solidification of copper powder bed. The local solid media reach a quasi-equilibrium state in even 1 ms with the incident powers of 50, 100, and 200 W. The anisotropic expansion of the molten pool is governed by a thermally-induced Marangoni flow. As the power is increased, the Marangoni factor increases linearly up to 853.7%. Consequential heat transfer characteristics tell us that unconditional input power should be avoided to prohibit the detrimental effect; the radiative heating power should be confined for thermalization of a target domain and for that preventing the evaporation of a material. These approaches from material science to heat transfer can be used to develop a platform for SLM processes guaranteeing its feasibility and applicability.
机译:选择性激光熔化(SLM)是一种有前途的增材制造技术,其产生于处理过的介质的玻璃态金属特性。在创建新颖的材料和复杂的工件组成时,应基于要使用的材料上公认的传热特性,进行可靠的热设计。在这里,我们研究了SLM工艺的局部和整体传热特性,并研究了与辐射热功率及其暴露时间有关的主要参数。我们介绍了如何对铜粉床的局部熔化和顺序凝固施加影响。局部固体介质甚至在1 ms内就达到了准平衡状态,入射功率分别为50、100和200W。熔池的各向异性膨胀受热引起的Marangoni流控制。随着功率的增加,Marangoni因子线性增加至853.7%。随之而来的传热特性告诉我们,应避免无条件输入功率,以免产生不利影响。辐射加热功率应限制在目标区域的热化和防止材料蒸发的范围内。从材料科学到热传递的这些方法可用于开发SLM工艺的平台,以确保其可行性和适用性。

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