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Transitioning From Resistance Devices To Photonic Devices For Temperature Measurements

机译:从电阻装置转换到光子器件,用于温度测量

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For the past century, industrial temperature measurements have relied on resistance measurement of a thin metal wire or filament whose resistance varies with temperature. Though resistance thermometers can routinely measure industrial temperatures with uncertainties of 10 mK, they are sensitive to mechanical shock which causes the sensor resistance to drift over time requiring frequent off-line, expensive, and time consuming calibrations. These fundamental limitations of resistance thermometry have produced considerable interest in developing photonic temperature sensors to leverage advances in frequency metrology and to achieve greater mechanical and environmental stability. We are developing a suite of photonic devices that leverage advances in microwave and C-band light sources to fabricate cost-effective photonic temperature sensors. Our preliminary results indicate that using photonic devices such as the ring resonator we can measure short term temperature fluctuations of 80 μK at room temperature. Photonic sensor technology provides a low cost, lightweight, portable and electromagnetic interference (EMI) resistant solution which can be deployed in a wide variety of settings ranging from controlled laboratory conditions, a noisy factory floor, advanced manufacturing, to the variable environment of a residential setting.
机译:对于过去的世纪,工业温度测量依赖于薄金属线或灯丝的电阻测量,其电阻随温度而变化。尽管电阻温度计可以常规地测量具有10 mk的不确定性的工业温度,但它们对机械冲击敏感,这导致传感器阻力随时间越来越频繁离线,昂贵和耗时的校准。电阻温度的这些基本局限性在开发光子温度传感器方面产生了相当大的兴趣,以利用频率计量的进步,实现更大的机械和环境稳定性。我们正在开发一套光子设备,可利用微波和C波段光源的进步,以制造成本效益的光子温度传感器。我们的初步结果表明,使用诸如环谐振器的光子器件,我们可以在室温下测量80μk的短期温度波动。光子传感器技术提供低成本,轻质,便携式和电磁干扰(EMI)抗性解决方案,可以在各种环境中部署,该设置范围从受控实验室条件,嘈杂的工厂地板,先进的制造,到住宅的可变环境中环境。

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