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Cross-Axis Coupling Effects in Single-Axis Nuclear Magnetic Resonance Gyroscopes

机译:单轴核磁共振陀螺仪中的横轴耦合效应

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摘要

Nuclear magnetic resonance gyroscopes (NMRGs) may be operated in an environment with violent vibration that usually contains both linear components and angular components. To analyze the influence of angular vibration on an NMRG, cross-axis coupling effects are studied. The cross-axis rotation rates induce an equivalent magnetic field. Its influence can be described by the Bloch equations. The approximate frequency shift and amplitude of the spin oscillator with an equivalent magnetic field in the cross-axis were obtained, which was validated by numerical simulation. The findings show that the angular vibration component leads to a remarkable error for the NMRG. When the angular vibration frequency is near the Larmor frequency, the oscillation frequency of the spins may be locked to the angular vibration frequency, destroying the NMRG’s ability to measure rotation rates. The cross-axis coupling problem should be considered in the design of an NMRG and corresponding inertial navigation systems.
机译:核磁共振陀螺仪(NMRG)可以在剧烈振动的环境中运行,该振动通常包含线性分量和角度分量。为了分析角振动对NMRG的影响,研究了横轴耦合效应。横轴旋转速度会感应出等效的磁场。它的影响可以通过布洛赫方程来描述。获得了在横轴上具有等效磁场的自旋振荡器的近似频移和幅度,并通过数值模拟对其进行了验证。研究结果表明,角振动分量会导致NMRG出现明显误差。当角振动频率接近拉莫尔频率时,自旋的振荡频率可能会锁定在角振动频率上,从而破坏了NMRG测量转速的能力。在NMRG和相应的惯性导航系统的设计中应考虑横轴耦合问题。

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