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A Novel Micro- and Nano-Scale Positioning Sensor Based on Radio Frequency Resonant Cavities

机译:基于射频谐振腔的新型微纳尺度定位传感器

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In many micro- and nano-scale technological applications high sensitivity displacement sensors are needed, especially in ultraprecision metrology and manufacturing. In this work a new way of sensing displacement based on radio frequency resonant cavities is presented and experimentally demonstrated using a first laboratory prototype. The principle of operation of the new transducer is summarized and tested. Furthermore, an electronic interface that can be used together with the displacement transducer is designed and proved. It has been experimentally demonstrated that very high and linear sensitivity characteristic curves, in the range of some kHzm; are easily obtainable using this kind of transducer when it is combined with a laboratory network analyzer. In order to replace a network analyzer and provide a more affordable, self-contained, compact solution, an electronic interface has been designed, preserving as much as possible the excellent performance of the transducer, and turning it into a true standalone positioning sensor. The results obtained using the transducer together with a first prototype of the electronic interface built with cheap discrete elements show that positioning accuracies in the micrometer range are obtainable using this cost-effective solution. Better accuracies would also be attainable but using more involved and costly electronics interfaces.
机译:在许多微米和纳米级技术应用中,需要高灵敏度位移传感器,尤其是在超精密计量和制造中。在这项工作中,提出了一种基于射频谐振腔的位移检测新方法,并使用第一个实验室原型进行了实验演示。总结并测试了新换能器的工作原理。此外,设计并证明了可以与位移传感器一起使用的电子接口。实验已经证明,在大约kHz / nm的范围内,具有很高的线性灵敏度特性曲线。当将这种传感器与实验室网络分析仪结合使用时,可以轻松获得这些传感器。为了替换网络分析仪并提供更经济,独立的紧凑型解决方案,已设计了一个电子接口,该接口尽可能保留了传感器的出色性能,并将其变成了真正的独立定位传感器。使用换能器以及使用便宜的分立元件构建的电子接口的第一个原型所获得的结果表明,使用这种经济高效的解决方案可以获得在微米范围内的定位精度。也可以达到更好的精度,但是要使用更多的参与和昂贵的电子接口。

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