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Cooling system optimization for a terahertz radiation detector via parametric analysis of the fluid-solid interaction problem

机译:通过对流固耦合问题的参数分析,对太赫兹辐射探测器的冷却系统进行优化

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The present study considers the optimization of a cooling system incorporated in a radiation detector working on the principle of liquid crystal thermography. Its configuration is that of a rectangular channel of small aspect ratio - inside of which cold water flows - that is directly attached to an extremely-thin detection element, made out of a ther-mochromic liquid crystal (TLC) layer fixed to a polyester sheet The analysis places special attention at seeking for the optimal channel height/gap that enables a stable thermal environment for the sensing unit while minimizing its possible deformation. The optimization is carried out by way of a parametric study, based on numerical solutions of a fully-coupled non-dimensional mathematical model describing the fluid-solid mechanical interaction and conjugate heat transfer, for a set of expected operating conditions to establish the relative influence of inlet velocity, heat input and the channel height/gap on the variation in fluid temperature and the solid elastic deformation. It is shown that although quantitatively different, qualitatively the results have similar trends. By defining the corresponding two-objective function, the numerical simulations indicate that, for the set of operating conditions studied, there is a common value for the height/gap of the cooling channel which represents the optimal.
机译:本研究考虑了结合在根据液晶热成像原理工作的辐射探测器中的冷却系统的优化。它的结构是长宽比小的矩形通道(在其中流动有冷水),该矩形通道直接连接到非常薄的检测元件,该元件由固定在聚酯片材上的热致变色液晶(TLC)层制成分析特别关注寻找最佳通道高度/间隙,该通道高度/间隙可为传感单元提供稳定的热环境,同时将其可能的变形降至最低。优化是通过参数研究进行的,其中基于描述流固力学相互作用和共轭传热的全耦合无量纲数学模型的数值解,针对一组预期的运行条件建立了相对影响入口速度,热量输入和通道高度/间隙对流体温度变化和固体弹性变形的影响。结果表明,尽管在数量上有所不同,但定性上结果具有相似的趋势。通过定义相应的两个目标函数,数值模拟表明,对于所研究的一组工作条件,冷却通道的高度/间隙存在一个代表最佳值的公共值。

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