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Non-invasive, energy-autonomous and wireless temperature sensor for the process industy

机译:用于过程工业的无创,能源自给和无线温度传感器

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Temperature sensors for application in the process industry are typically mounted in a thermowell. These tubular fittings penetrate the surface of e.g. a pipe and allow to insert a temperature sensing element into the process medium. Although this invasive sensing is state-of-the-art, thermowells suffer from significant drawbacks: Any pipe penetration is a potential cause for leakage and the thermowell itself is prone to corrosion, abrasion and bending stress. Avoiding the thermowell by measuring temperature on the surface of the process container was so far not considered a widespread alternative to invasive sensing. The temperature of the surface is generally not considered representative for the temperature of the process medium. A surface sensor is strongly exposed to the ambient condition and, furthermore, the calibration of such a surface sensor is challenging. In this paper we demonstrate how to overcome these limitations by an optimized thermo-mechanical design and enhanced model-based sensing. In combination with energy autonomous operation and wireless communication our novel non-invasive sensor offers a remarkable flexibility enabling scenarios discussed within the context of internet of things (IoT).
机译:用于过程工业的温度传感器通常安装在热电偶套管中。这些管状配件穿透例如玻璃的表面。管道,并允许将温度传感元件插入过程介质中。尽管这种侵入式传感技术是最先进的,但热电偶套管仍存在明显的缺陷:任何管道穿透都是导致泄漏的潜在原因,并且热电偶套管本身容易受到腐蚀,磨损和弯曲应力的影响。迄今为止,通过测量过程容器表面的温度来避开热电偶套管尚未被认为是侵入式传感的广泛替代方案。通常不认为表面温度代表过程介质的温度。表面传感器强烈暴露于环境条件下,此外,这种表面传感器的校准具有挑战性。在本文中,我们演示了如何通过优化的热机械设计和增强的基于模型的感测来克服这些限制。与能源自主运行和无线通信相结合,我们新颖的无创传感器提供了卓越的灵活性,可实现在物联网(IoT)上下文中讨论的场景。

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