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Metallic integrated thermal protection structures inspired by the Norway spruce stem: Design, numerical simulation and selective laser melting fabrication

机译:金属集成热保护结构受到挪威云杉杆的启发:设计,数值模拟和选择性激光熔化制造

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摘要

With the development of hypersonic vehicles and reusable launch vehicles, the design of integrated thermal protection (ITP) structures needs to meet the demanding requirement of thermal protection. More complex geometries, such as lattice structures and bio-inspired structures, have been introduced into the design of ITP structures, aiming to enhance the thermal protection performance. Additive manufacturing holds high flexibility in processing and enables more complex designs, which is suitable for the fabrication of complex ITP structures. In this paper, inspired by the structures of Norway spruce stem, a series of ITP structures with different gradient hollow designs was proposed and manufactured by selective laser melting (SLM). The steady-state and transient thermal behavior of those bio-inspired ITP structures were investigated by finite element method (FEM). To verify the accuracy of the FEM simulation results, Ti6Al4V components with different bio-inspired ITP structures were fabricated by SLM and thermal conductivities of those SLM-processed components were experimentally measured. The FEM thermal simulation revealed that the gradient-structure with larger hollow tubes near the top and bottom plates and smaller hollow tubes in the center possessed the lowest bottom surface temperature of 262.8 degrees C, which was 21.4 degrees C lower than the structure with the highest bottom surface temperature. The thermal conductivity measurement revealed that the gradient-structure, with the lowest bottom surface temperature obtained by FEM thermal simulation, had the lowest thermal conductivity of 2.321 W/(m.K), which was about 29% lower than that of the structure possessing the highest thermal conductivity.
机译:随着超音速车辆和可重复使用的发动车辆的开发,集成的热保护(ITP)结构的设计需要满足热保护要求。已经引入了更复杂的几何形状,例如晶格结构和生物启发结构,以ITP结构的设计引入,旨在提高热保护性能。添加剂制造在加工方面具有高柔韧性,并且能够实现更复杂的设计,适用于制造复杂的ITP结构。在本文中,通过挪威云杉杆的结构,通过选择性激光熔化(SLM)提出和制造了一系列具有不同梯度中空设计的ITP结构。通过有限元法(FEM)研究了那些生物启发ITP结构的稳态和瞬态热行为。为了验证有限元模拟结果的准确性,通过SLM制造具有不同生物启发ITP结构的Ti6Al4V组分,并通过SLM和热导体进行实验测量。 FEM热模拟显示,顶部和底板附近的较大中空管的梯度结构和中心的较小的中空管具有262.8℃的最低底表面温度,比最高的结构低21.4摄氏度底表面温度。导热性测量表明,通过有限仿真获得的最低底表面温度的梯度结构具有2.321W /(MK)的最低导热率,比具有最高的结构的最低导热率为约29%导热系数。

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