Sheng Xuan, Wang Xizhe, Chen Wenying, Shu Yang, Zhang Kai
Institute of Systems Engineering, China Academy of Engineering Physics, Mianyang 621999, China.
Sensors (Basel). 2025 Aug 16;25(16):5096. doi: 10.3390/s25165096.
The dynamic behavior of quartz flexure accelerometers remains a subject of ongoing investigation, particularly in areas such as theoretical modeling, standardization, calibration methodology, and performance evaluation. To address the limitation of conventional static calibration models in accurately representing accelerometer responses under dynamic acceleration excitation, a dynamic calibration model is proposed. A mathematical model is first developed based on the physical mechanism of the accelerometer, characterizing its intrinsic dynamic response. Simulation-based analysis demonstrates that the proposed dynamic model offers significantly improved accuracy compared to traditional static approaches. Furthermore, a dynamic calibration method leveraging a dual-axis precision centrifuge is designed and validated. The results confirm that the proposed approach enables the precise calibration of quartz flexure accelerometers in accordance with the dynamic model. The calibration of the dynamic parameter yields a relative standard deviation of -0.048%.
石英挠性加速度计的动态特性仍是一个正在研究的课题,特别是在理论建模、标准化、校准方法和性能评估等领域。为了解决传统静态校准模型在动态加速度激励下准确表示加速度计响应方面的局限性,提出了一种动态校准模型。首先基于加速度计的物理机制建立了一个数学模型,表征其固有动态响应。基于仿真的分析表明,与传统的静态方法相比,所提出的动态模型具有显著提高的精度。此外,还设计并验证了一种利用双轴精密离心机的动态校准方法。结果证实,所提出的方法能够根据动态模型对石英挠性加速度计进行精确校准。动态参数的校准产生了-0.048%的相对标准偏差。