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Development and Application of a Thin Flat Heat Pipe Design Optimization Tool for Small Satellite Systems

机译:小型卫星系统薄扁平热管设计优化工具的开发与应用

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摘要

With easier access to space and the growing integration of power-dense components, small-scale thermal management solutions are increasingly in demand for small satellite systems. Due to the strict mass and volume requirements commanded by such power-dense small spacecraft, heat pipes with thin and flat architectures provide nearly ideal solutions for the efficient transfer and dissipation of heat. Unlike traditional heat pipes, however, the performance of thin heat pipes is heavily dependent on details of the internal heat pipe structure, including the vapor core geometry and structural mechanical characteristics. In this study, the development and testing of a new computational modeling and optimization tool are presented for the design of thin flat heat pipes. The computational model is described in detail and includes parameters that define properties of the liquid wick, vapor core, and structural case. The model is coupled to a gradient-based optimization procedure that minimizes a multi-objective cost function for a range of operating conditions. The cost function is expressed as the weighted sum of the total temperature drop, the liquid/vapor pressure ratio, the total mass of the heat pipe, and the structural deflection of the heat pipe during operation. The combined computational modeling and optimization tool is then used to design a copper-methanol flat heat pipe for a small satellite mission, where the optimization is performed with respect to both cold and hot orbital conditions. Validation of the optimized heat pipe is performed using computational fluid dynamics (CFD) simulations of the initial and final designs.
机译:随着空间的更容易获得空间和越来越多的电源密集组件,小型热管理解决方案越来越多地对小型卫星系统的需求。由于这种电力密度的小型航天器指挥的严格质量和体积要求,具有薄型和平坦架构的热管提供了高效传递和耗散热量的近乎理想的解决方案。然而,与传统的热管不同,薄热管的性能严重依赖于内部热管结构的细节,包括蒸气芯几何形状和结构性机械特性。在本研究中,提出了一种新的计算建模和优化工具的开发和测试,用于设计薄的扁平热管。详细描述计算模型,并包括限定液体芯,蒸气芯和结构壳体的性质的参数。该模型耦合到基于梯度的优化过程,其在一系列操作条件下最小化多目标成本函数。成本函数表示为总温度降的加权和,液体/蒸气压比,热管的总质量,以及在操作期间的热管的结构偏转。然后使用组合的计算建模和优化工具来设计用于小型卫星任务的铜 - 甲醇扁平热管,在那里对冷热轨道条件进行优化。使用初始和最终设计的计算流体动力学(CFD)模拟来执行优化热管的验证。

著录项

  • 来源
    《Journal of Electronic Packaging》 |2021年第1期|011010.1-011010.10|共10页
  • 作者单位

    Department of Mechanical Engineering University of Colorado Boulder CO 80309;

    Department of Mechanical Engineering University of Colorado Boulder CO 80309;

    Department of Mechanical Engineering University of Colorado Boulder CO 80309;

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  • 原文格式 PDF
  • 正文语种 eng
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