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An analytic model employing an elliptical surface area to determine the gaseous thermal conductance of uncooled VOx microbolometers

机译:一种使用椭圆表面积确定未冷却的VOx微辐射热计的气体导热系数的解析模型

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This work presents a detailed overview of the analytic methods for calculating the beam and gaseous thermal conductance components associated with uncooled VOx microbolometers. The conventional method to calculate the gaseous component relies on the assumption that the entire plate is maintained at a uniform temperature, thus the surface area of the plate is used for the calculation. We have observed using an industry leading multiphysics simulator that this assumption is not strictly true for VOx microbolometers as the conduction pattern exhibits an elliptical shape. Based on this, we have developed and propose an analytic method that employs an elliptical surface area scaled appropriately with the device dimensions to obtain an estimate of the average temperature conduction pattern. Prototype devices were manufactured and experimentally characterised. The devices exhibit thermal conduction characteristics comparable to those in literature and industry, and we could achieve 0.5 W/K under vacuum conditions and 15 mu W/K at atmospheric pressure with a TCR of -1%/K. However, both simulated and experimental result sets of the gaseous thermal conductance exhibit large deviations from the conventional analytic method, on average approximately 40%. The proposed method reduces this average error significantly to less than 10% when compared to the simulated results. (C) 2016 Elsevier B.V. All rights reserved.
机译:这项工作详细介绍了用于计算与未冷却的VOx测微辐射计相关的射束和气体导热系数的分析方法。计算气体成分的常规方法依赖于以下假设:整个板保持在均匀的温度下,因此将板的表面积用于计算。我们已经观察到使用行业领先的多物理场模拟器,该假设对于VOx辐射热辐射计而言并非严格正确,因为传导模式呈现椭圆形。基于此,我们开发并提出了一种分析方法,该方法采用根据器件尺寸适当缩放的椭圆形表面积来估算平均温度传导模式。制造原型设备并进行实验表征。该器件的导热特性可与文献和工业中的器件相媲美,在真空条件下可达到0.5 W / K,在大气压力下可达到15μW / K,TCR为-1%/ K。但是,气态热导率的模拟和实验结果集均显示出与常规分析方法的较大偏差,平均偏差约为40%。与模拟结果相比,所提出的方法可将该平均误差显着降低至小于10%。 (C)2016 Elsevier B.V.保留所有权利。

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