首页> 外文会议>Photonic Applications for Aerospace, Transportation, and Harsh Environments; Proceedings of SPIE-The International Society for Optical Engineering; vol.6379 >Stabilization of the Output Signal of Thermopile Sensors in the Thermal Environment of Automotive Applications
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Stabilization of the Output Signal of Thermopile Sensors in the Thermal Environment of Automotive Applications

机译:汽车应用热环境中热电堆传感器输出信号的稳定

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摘要

Thermopile pyrometer modules are the state of the art for contactless temperature measurements in automotive applications. In such an application, the thermopile has to operate precisely in a challenging thermal environment. While the compensation of the steady state ambient temperature is a well known technique when using thermopiles for temperature measurments, transient thermal effects are still an issue. The change of the ambient temperature as well as temperature flow through the sensor can lead to substantial errors due to unwanted thermal gradients within the device. In the thermopile chip they lead to an error signal since the measurement principle is based on quantifying thermal gradients of the chip that result from the detected IR-radiation. Thermal gradients in the cap and between the cap and the thermopile chip will lead to an exchange of heat radiation between the thermopile chip and the cap, which also leads to measurement errors. Different methods were developed that separately or in combination allow for a significant improvement of the accuracy and signal stability. The methods are based on the reduction of thermal gradients within the thermopile chip and the entire sensor device (isothermal, high thermal mass cap), reduction of radiation exchange between the sensor chip and the housing (low emissive inner cap surface) and prediction and software compensation of the error signal.
机译:热电堆高温计模块是汽车应用中非接触式温度测量的最新技术。在这种应用中,热电堆必须在充满挑战的热环境中精确运行。虽然在使用热电堆进行温度测量时,稳态环境温度的补偿是众所周知的技术,但瞬态热效应仍然是一个问题。由于设备内有害的温度梯度,环境温度的变化以及流经传感器的温度会导致重大误差。在热电堆芯片中,它们会导致错误信号,因为测量原理基于量化由检测到的IR辐射导致的芯片热梯度。盖中以及盖与热电堆芯片之间的热梯度将导致热堆芯片与盖之间的热辐射交换,这也导致测量误差。已开发出单独或组合使用的不同方法,可以显着提高准确性和信号稳定性。这些方法基于减少热电堆芯片和整个传感器设备内的热梯度(等温,高热质量帽),减少传感器芯片与外壳之间的辐射交换(低发射内帽表面)以及预测和软件补偿误差信号。

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