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Optimization Research on Thermal Error Compensation of FOG in Deep Mining Using Uniform Mixed-Data Design Method

机译:均匀混合数据设计方法在深部开采FOG热误差补偿的优化研究

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摘要

Suffered from the unsatisfied time consumption of thermal error compensation, this paper aims to realize a faster and more accurate fibre optic gyroscope (FOG) thermal error compensation plan, so that the deep-hole inclinometer using in mining which is based on FOG will make accurate measurement under external thermal field. Using uniform mixed-data design method, it is learned that the temperature compensation experiments only consumed 1/9 the time required for traditional method within the working condition range of 0 similar to 120 degrees C. Suffice it to say that our method can markedly enhance the efficiency of FOG temperature compensation. To this end, the finite-element method (FEM) was also applied to explore the thermal conductivity and simulate the complex boundary conditions of the FOG. Then, the Shupe error of the FOG was calculated and used to derive the FOG error compensation formula, and the factors and their levels affecting the Shupe error in thermal field were considered in error compensation experiments. After that, the optimal design of FOG thermal error compensation experiments was created by FOG error compensation formula and uniform mixed-data design table, and this plan significantly reduced the number of experiments compared to before. Finally, the design was compared with the full-scale design and orthogonal design to verify its accuracy and efficiency. The comparison shows that the proposed method can markedly enhance the efficiency of FOG error compensation and elevate the measuring accuracy of FOG. This paper innovatively applies the uniform mixed-data design method to the field of FOG measurement, and this research offers new insights into the error compensation optimization of FOG measurement.
机译:由于热误差补偿的时间消耗不尽人意,本文旨在实现一种更快,更准确的光纤陀螺仪(FOG)热误差补偿方案,从而使基于FOG的深孔测斜仪在采矿中的精度更高。在外部热场下进行测量。使用统一的混合数据设计方法,可以了解到温度补偿实验仅在0的类似于120摄氏度的工作条件范围内消耗了传统方法所需时间的1/9。足以说明我们的方法可以显着增强雾化温度补偿的效率。为此,还应用了有限元方法(FEM)来探索热导率并模拟FOG的复杂边界条件。然后,计算了FOG的Shupe误差并将其用于导出FOG误差补偿公式,并在误差补偿实验中考虑了影响热场中Shupe误差的因素及其水平。此后,利用FOG误差补偿公式和统一的混合数据设计表,创建了FOG热误差补偿实验的最优设计,与以前相比,该计划显着减少了实验次数。最后,将该设计与全面设计和正交设计进行比较,以验证其准确性和效率。比较表明,该方法可以显着提高FOG误差补偿的效率,提高FOG的测量精度。本文创新地将统一的混合数据设计方法应用于FOG测量领域,这项研究为FOG测量的误差补偿优化提供了新的见解。

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  • 来源
    《Mathematical Problems in Engineering》 |2019年第7期|4064652.1-4064652.6|共6页
  • 作者单位

    CEA Inst Crustal Dynam Key Lab Crustal Dynam Beijing 100085 Peoples R China|Sichuan Univ Sch Mfg Sci & Engn Chengdu 610065 Sichuan Peoples R China;

    CEA Inst Crustal Dynam Key Lab Crustal Dynam Beijing 100085 Peoples R China;

    Sichuan Univ Sch Mfg Sci & Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ Sch Mfg Sci & Engn Chengdu 610065 Sichuan Peoples R China|Inst Explorat Technol CAGS Chengdu 611730 Sichuan Peoples R China;

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