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Thermal Insulation Design of the Optical Measurement Device Used in Liquid Oxygen Tank

机译:液氧罐光学测量装置的隔热设计

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Based on the characteristics of low temperature and strong oxidation of liquid oxygen, a new temperature control method is proposed for optical measurement device in liquid oxygen medium. In order to ensure the temperature of the optical system satisfied the design requirements, the polyurethane is used as insulation materials and the heat-insulating is considered for the initial part design to increase the thermal resistance between optical system and the outside environment (passive thermal control). At the same time, the method of heating the optical lens with an electric heating film is adopted for active thermal control. According to the heat transfer theory, we analyze the heat transmission patterns and the heat influencing factors of the optical system. Making the finite element model of the optical measurement device on the ANSYS Workbench software, and simulate the heat transmission for different thickness and heating power. The result shows that the design of the optical measurement device is satisfied when the thickness of the insulating layer is 20mm, and the heating power is 19W.
机译:鉴于液态氧的低温和强氧化特性,提出了一种在液态氧介质中的光学测量装置的温度控制新方法。为了确保光学系统的温度满足设计要求,聚氨酯被用作绝缘材料,并且在初始零件设计中考虑了隔热,以增加光学系统和外部环境之间的热阻(无源热控制)。 )。同时,采用用电加热膜加热光学透镜的方法来进行主动热控制。根据传热理论,分析了光学系统的传热规律和影响因素。在ANSYS Workbench软件上建立光学测量设备的有限元模型,并模拟不同厚度和加热功率下的热传递。结果表明,当绝缘层的厚度为20mm,加热功率为19W时,可以满足光学测量装置的设计要求。

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