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Integrated fiber optic sensors for hot spot detection and temperature field reconstruction in satellites

机译:集成光纤传感器,用于卫星中的热点检测和温度场重建

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摘要

Large satellites are often equipped with more than 1000 temperature sensors during the test campaign. Hundreds of them are still used for monitoring during launch and operation in space. This means an additional mass and especially high effort in assembly, integration and verification on a system level. So the use of fiber Bragg grating temperature sensors is investigated as they offer several advantages. They are lightweight, small in size and electromagnetically immune, which fits well in space applications. Their multiplexing capability offers the possibility to build extensive sensor networks including dozens of sensors of different types, such as strain sensors, accelerometers and temperature sensors. The latter allow the detection of hot spots and the reconstruction of temperature fields via proper algorithms, which is shown in this paper. A temperature sensor transducer was developed, which can be integrated into satellite sandwich panels with negligible mechanical influence. Mechanical and thermal vacuum tests were performed to verify the space compatibility of the developed sensor system. Proper reconstruction algorithms were developed to estimate the temperature field and detect thermal hot spots on the panel surface. A representative hardware demonstrator has been built and tested, which shows the capability of using an integrated fiber Bragg grating temperature sensor network for temperature field reconstruction and hot spot detection in satellite structures.
机译:在测试期间,大型卫星通常配备1000多个温度传感器。它们中的数百种仍用于太空发射和操作期间的监视。这意味着在系统级别进行组装,集成和验证需要额外的工作量,尤其是付出大量的努力。因此,研究了光纤布拉格光栅温度传感器的使用,因为它们具有多个优点。它们重量轻,尺寸小且具有电磁抗扰性,非常适合太空应用。它们的多路复用能力提供了建立广泛的传感器网络的可能性,其中包括数十种不同类型的传感器,例如应变传感器,加速度计和温度传感器。后者允许通过适当的算法检测热点并重建温度场,如本文所示。开发了一种温度传感器传感器,可以将其集成到卫星夹心板中,而机械影响可以忽略不计。进行了机械和热真空测试,以验证开发的传感器系统的空间兼容性。开发了适当的重建算法来估计温度场并检测面板表面上的热点。已构建并测试了代表性的硬件演示器,该演示器展示了使用集成的光纤布拉格光栅温度传感器网络进行卫星结构中的温度场重建和热点检测的能力。

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