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Theoretical and Experimental on the Shupe-like Bias caused by Thermal Stress of Fiber Optic Gyros

机译:光纤陀螺热应力引起的Shupe样偏压的理论和实验

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The fiber optic gyroscope has became to one of the most important sensors in developing due to light in quality, high accuracy, compact in dimension and long life and has played a very important role in both military and civil use. The fiber coil, as one of the most critical components in FOG, is extremely sensitive to changes in temperature. In this paper, at first, by studying the thermal stress of fiber optic gyros, the element model of the fiber coil was built based on the discrete mathematics formulae of Shupe error in FOG. Then based on the temperature distribution model mentioned above, the effects of the Shupe-like bias caused by thermal stress and the shupe bias caused by temperature gradient are simulated. A turn-by-turn quantization bias error model is established. Theoretical analysis and experimental results show the Shupe-like bias caused by thermal stress and the shupe bias caused by temperature gradient had seriously affected the temperature performance of FOG. By optimizing the winding method of fiber coil, the SHUPE error of fiber coils can be reduced. At the same time, Shupe-like bias caused by thermal stress can be reduced too.
机译:由于质量,高精度,尺寸紧凑,尺寸和长寿命紧凑,并且在军事和民用使用中发挥了非常重要的作用,光纤陀螺仪已经成为发展中最重要的传感器之一。光纤线圈是雾中最关键的组件之一,对温度的变化非常敏感。本文首先通过研究光纤陀螺仪的热应力,基于雾中的Shupe误差的离散数学公式构建光纤线圈的元素模型。然后基于上述温度分布模型,模拟了由温度梯度引起的热应力引起的Shupe样偏差的影响。建立逐回转量化偏置误差模型。理论分析和实验结果表明,由热应力和温度梯度引起的Shupe偏压引起的Shupe样偏差严重影响了雾的温度性能。通过优化光纤线圈的绕组方法,可以降低光纤线圈的Shupe误差。同时,也可以减少由热应力引起的Shupe样偏差。

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