包含自然对流和设计依赖热源的晶格传热结构的热力拓扑优化

Tong Wu, Joel C. Najmon, A. Tovar
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引用次数: 1

摘要

晶格传热(LHT)结构提供优越的结构支撑,同时通过其高表面体积比提高传热系数。利用当前的增材制造(AM)技术,高度复杂结构的轻型制造成为可能。在本研究中,通过实施热机械拓扑优化方法,进一步完善了LHT的设计理念。利用设计依赖的热源,该方法可以在不降低其热性能的情况下,在机械和热机械载荷下产生更刚性的轻型轻体结构;相对于由具有相同质量分数的均匀轻热制成的设计。给出了两个数值例子来说明如何使用所提出的方法来设计轻型路面截面。结果表明,在不降低热工性能的情况下,与质量分数相同的均匀轻质轻质材料相比,其力学性能可提高50%以上。该方法不需要流体力学模型,因此计算效率高,特别适用于概念设计阶段。通过利用增材制造技术,最终优化的晶格成为可能。
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Thermomechanical Topology Optimization of Lattice Heat Transfer Structure Including Natural Convection and Design Dependent Heat Source
Lattice Heat Transfer (LHT) structures provide superior structural support while improving the heat transfer coefficient through their high surface-to-volume ratios. By using current Additive Manufacturing (AM) technologies, LHT with highly complex structures is possible. In this study, the design concept of LHT is further improved by implementing a thermomechanical topology optimization method. With utilization of design-dependent heat source, the method can be applied to generate stiffer LHT structures under mechanical and thermomechanical loads, without decreasing their thermal performance; relative to a design made of a uniform LHT having the same mass fraction. Two numerical examples are presented to illustrate how to use the proposed approach to design LHT sections. The results show that the mechanical performance can be improved more than 50% compared to a uniform LHT with the same mass fraction, without decreasing the thermal performance. The method does not require a fluid mechanics model, thus it is computational effective and particularly suitable for the conceptual design stage. The resulting optimized lattice is made possible by utilizing additive manufacturing technologies.
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