GNSS Research Center, Wuhan University, No.129, Luoyu Rd., Wuhan 430079, Hubei, China.
Sensors (Basel). 2013 Sep 12;13(9):12192-217. doi: 10.3390/s130912192.
The errors of low-cost inertial sensors, especially Micro-Electro Mechanical Systems (MEMS) ones, are highly dependent on environmental conditions such as the temperature. Thus, there is a need for the development of accurate and reliable thermal compensation models to reduce the impact of such thermal drift of the sensors. Since the conventional thermal calibration methods are typically time-consuming and costly, an efficient thermal calibration method to investigate the thermal drift of a full set of gyroscope and accelerometer errors (i.e., biases, scale factor errors and non-orthogonalities) over the entire temperature range in a few hours is proposed. The proposed method uses the idea of the Ramp method, which removes the time-consuming process of stabilizing the sensor temperature, and addresses its inherent problems with several improvements. We change the temperature linearly for a complete cycle and take a balanced strategy by making comprehensive use of the sensor measurements during both heating and cooling processes. Besides, an efficient 8-step rotate-and-static scheme is designed to further improve the calibration accuracy and efficiency. Real calibration tests showed that the proposed method is suitable for low-grade IMUs and for both lab and factory calibration due to its efficiency and sufficient accuracy.
低成本惯性传感器(尤其是微机电系统(MEMS)传感器)的误差高度依赖于环境条件,例如温度。因此,需要开发准确可靠的热补偿模型,以降低传感器的热漂移影响。由于传统的热校准方法通常耗时且昂贵,因此提出了一种高效的热校准方法,可在数小时内研究整个温度范围内陀螺仪和加速度计误差(即偏差、标度因数误差和非正交性)的热漂移。该方法利用斜坡法的思想,省去了传感器温度稳定的耗时过程,并通过几项改进解决了其固有问题。我们将温度线性地改变一个完整的周期,并在加热和冷却过程中综合利用传感器的测量值,采用平衡策略。此外,还设计了一种高效的 8 步旋转-静态方案,以进一步提高校准精度和效率。实际校准测试表明,由于其效率高且足够准确,该方法适用于低等级的惯性测量单元,并且适用于实验室和工厂校准。