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基于机载长焦航空相机内部热源的液冷散热方法及验证

Method and Verification of Liquid Cooling Heat Dissipation Based on Internal Heat Source of Airborne Long-Focus Aerial Camera.

作者信息

Yuwen Ziming, Li Xinyang, Yuan Guoqin, Li Haixing, Zhang Jichao, Zhang Mingqiang, Ding Yalin

机构信息

Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Sensors (Basel). 2024 Oct 18;24(20):6714. doi: 10.3390/s24206714.

Abstract

The traditional passive heat dissipation method has low heat dissipation efficiency, which is not suitable for the heat dissipation of the concentrated heat source inside the long-focal aerial camera, resulting in temperature level changes and temperature gradients in the optical system near the heat source, which seriously affect the imaging performance of the aerial camera. To solve this problem, an active heat dissipation method of liquid cooling cycle is proposed in this paper. To improve the solving efficiency and ensure simulation accuracy, a dynamic boundary information transfer method based on grid area weighting is proposed. The thermal simulation results show that the liquid cooling method reduces the heat source temperature by 70.12%, and the boundary temperature transfer error is 0.015%. The accuracy of thermal simulation is verified by thermal test, and the simulation error is less than 6.44%. In addition, the performance of the optical system is further analyzed, and the results show that the MTF of the optical system is increased from 0.077 to 0.194 under the proposed active liquid cooling cycle heat dissipation method.

摘要

传统的被动散热方法散热效率低,不适用于长焦航空相机内部集中热源的散热,导致热源附近光学系统的温度水平变化和温度梯度,严重影响航空相机的成像性能。为解决这一问题,本文提出了一种液体冷却循环的主动散热方法。为提高求解效率并确保模拟精度,提出了一种基于网格面积加权的动态边界信息传递方法。热模拟结果表明,液体冷却方法使热源温度降低了70.12%,边界温度传递误差为0.015%。通过热测试验证了热模拟的准确性,模拟误差小于6.44%。此外,进一步分析了光学系统的性能,结果表明,在所提出的主动液体冷却循环散热方法下,光学系统的调制传递函数(MTF)从0.077提高到了0.194。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f9e/11511532/651eecc6190a/sensors-24-06714-g001.jpg

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