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Temperature sensor with microstructure fiber based ruby fluorescence lifetime

机译:具有基于微结构纤维的红宝石荧光寿命的温度传感器

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Hollow core bandgap microstructure fiber was used to make a probe of temperature sensor based ruby fluorescence lifetime. Fiber-optic temperature sensors using a fluorescent lifetime of ruby crystal are regarded as useful thermometer due to its wide dynamic range, intrinsic immunity to electromagnetic interference, small size, and calibration-free measurement. It often be used under extraordinary conditions. In these thermometer, a ruby crystal as sensor head is connected mechanically with the silica fibers or the sapphire fibers, or grown from the melt droplet on the end of the sapphire fibers. In this paper, microstructure fiber was used to make a temperature sensor probe based fluorescent lifetime. To avoid the redistribution of the photoluminescence, a small size ruby crystal with Cr~(3+) concentration of 0.35at.% was made as a rod (with diameter 60 micron and 2 millimeter long) and was inserted to the air-core of the microstructure fiber at one end. The ruby rod was fastened in the hole by optical adhesive. The ruby crystal cylinder was plated with silver on its surface except the top side. The silver plating can hold the fluorescent light in the crystal and fiber to enhance the intensity of the week fluorescence signal, prevent stray light coming into the probe. Compared with the conventional optic-fiber temperature sensor, the microstructure fiber sensor based ruby fluorescence lifetime sensor has more advantages: such as larger dynamic range, higher precision and resolution, smaller size, and so wider applying region.
机译:中空的带隙微结构纤维用于制造基于温度传感器的红宝石荧光寿命探针。使用红宝石晶体的荧光寿命的光纤温度传感器因其动态范围宽,对电磁干扰的固有抗扰性,小尺寸和免校准测量而被认为是有用的温度计。它通常在特殊条件下使用。在这些温度计中,作为传感器头的红宝石晶体与二氧化硅纤维或蓝宝石纤维机械连接,或从蓝宝石纤维末端的熔滴生长。在本文中,微结构纤维被用于制造基于荧光寿命的温度传感器探针。为避免光致发光的重新分布,将Cr〜(3+)浓度为0.35at。%的小尺寸红宝石晶体制成棒状(直径60微米,长2毫米),并插入到一端的微结构纤维。红宝石棒通过光学粘合剂固定在孔中。红宝石水晶圆柱体除顶面外均在其表面镀银。镀银可以在晶体和光纤中保持荧光,以增强周荧光信号的强度,防止杂散光进入探头。与传统的光纤温度传感器相比,基于微结构光纤传感器的红宝石荧光寿命传感器具有更大的优势:动态范围更大,精度和分辨率更高,尺寸更小,应用范围更广。

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