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Fiber optic temperature sensor gives rise to thermal analysis in complex product design

机译:光纤温度传感器引起了复杂产品设计中的热分析

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Abstract: A computer-adapted fiber-optic temperature sensing system has been developed which aims to study both the theoretical aspect of fiber temperature sensing and the experimental aspect of such system. The system consists of a laser source, a fiber sensing element, an electronic fringes counting device, and an on-line personal computer. The temperature measurement is achieved by the conventional double beam fringe counting method with optical path length changes in the sensing beam due to the fiber expansion. The system can automatically measure the temperature changes in a sensing fiber arm which provides an insight of the heat generation and dissipation of the measured system. Unlike the conventional measuring devices such as thermocouples or solid state temperature sensors, the fiber sensor can easily be wrapped and shaped to fit the surface of the measuring object or even inside a molded plastic parts such as a computer case, which gives much more flexibility and applicability to the analysis of heat generation and dissipation in the operation of these machine parts. The reference beam is being set up on a temperature controlled optical bench to facilitate high sensitivity and high temperature resolution. The measuring beam has a motorized beam selection device for multiple fiber beam measurement. The project has been demonstrated in the laboratory and the system sensitivity and resolution are found to be as high as 0.01 degree Celsius. It is expected the system will find its application in many design studies which require thermal budgeting. !8
机译:摘要:开发了一种计算机自适应的光纤温度传感系统,旨在研究光纤温度传感的理论方面和该系统的实验方面。该系统由激光源,光纤传感元件,电子条纹计数设备和在线个人计算机组成。温度测量是通过常规的双光束条纹计数方法实现的,其中由于光纤的膨胀,传感光束的光程长度发生了变化。该系统可以自动测量传感光纤臂中的温度变化,从而了解被测系统的热量产生和耗散情况。与传统的测量设备(例如热电偶或固态温度传感器)不同,光纤传感器可以轻松地包裹和成形以适合测量对象的表面,甚至可以放在模压塑料部件(例如计算机机箱)内部,从而提供更大的灵活性和灵活性。适用于分析这些机器部件运行中的热量产生和散发。将参考光束设置在温度可控的光具座上,以促进高灵敏度和高温分辨率。测量光束具有用于多个光纤光束测量的电动光束选择装置。该项目已在实验室进行了验证,系统灵敏度和分辨率高达0.01摄氏度。预计该系统将在需要热预算的许多设计研究中找到其应用。 !8

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