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Mathematical Model for a Novel Cryogenic Flow Sensor using Fibre Bragg Gratings

机译:新型低温流动传感器的数学模型使用纤维布拉格光栅

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In this work, a mathematical model is presented for a newly developed cryogenic flow meter which is based on fibre Bragg grating (FBG) principle. The principle of operation is to use the viscous drag force induced by a flowing fluid on an optical fibre placed transverse to the flow. An optical fibre will have a 5 mm long grating element inscribed in it and will be placed so that the sensor is at the centre of the pipe. The fibre will act as the bluff body, while the FBG sensor will pick up the bending strain induced in the fibre due to the drag force. The amount of bending strain which can be measured as a shift in Bragg wavelength can be calibrated to provide the mass flow rate. Here a mathematical model is being presented to predict the operation of the sensor and to calculate the sensor characteristics so that the sensor design can be optimised. The sensor exhibits an exponential relationship between sensitivity and mass flow rate. It is also seen that the sensitivity depends greatly on the fluid properties such as density and viscosity.
机译:在这项工作中,提出了一种基于光纤布拉格光栅(FBG)原理的新开发的低温流量计的数学模型。操作原理是使用由流体流体诱导的粘性阻力在横向于流动的光纤上诱导。光纤将具有5mm长光栅元件,刻在其中,并且将放置,使得传感器位于管的中心。纤维将充当诈唬机身,而FBG传感器将拾取由于拖曳力引起的纤维中诱导的弯曲菌株。可以校准可以测量的弯曲应变的量可以校准,以提供质量流量。这里呈现了一种数学模型以预测传感器的操作并计算传感器特性,从而可以优化传感器设计。传感器在灵敏度和质量流量之间表现出指数关系。还可以看出,敏感度大大取决于诸如密度和粘度的流体性质。

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