Hu M, Bai Y Z, Zhou Z B, Li Z X, Luo J
MOE Key Laboratory of Fundamental Physical Quantities Measurement, School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China.
Rev Sci Instrum. 2014 May;85(5):055001. doi: 10.1063/1.4873334.
The capacitive transducer with differential transformer bridge is widely used in ultra-sensitive space accelerometers due to their simple structure and high resolution. In this paper, the front-end electronics of an inductive-capacitive resonant bridge transducer is analyzed. The analysis result shows that the performance of this transducer depends upon the case that the AC pumping frequency operates at the resonance point of the inductive-capacitive bridge. The effect of possible mismatch between the AC pumping frequency and the actual resonant frequency is discussed, and the theoretical analysis indicates that the output voltage noise of the front-end electronics will deteriorate by a factor of about 3 due to either a 5% variation of the AC pumping frequency or a 10% variation of the tuning capacitance. A pre-scanning method to determine the actual resonant frequency is proposed followed by the adjustment of the operating frequency or the change of the tuning capacitance in order to maintain expected high resolution level. An experiment to verify the mismatching effect and the adjustment method is provided.
具有差动变压器电桥的电容式传感器因其结构简单和分辨率高而被广泛应用于超灵敏空间加速度计中。本文对电感 - 电容谐振电桥传感器的前端电子学进行了分析。分析结果表明,该传感器的性能取决于交流泵浦频率在电感 - 电容电桥谐振点处工作的情况。讨论了交流泵浦频率与实际谐振频率可能存在失配的影响,理论分析表明,由于交流泵浦频率有5%的变化或调谐电容有10%的变化,前端电子学的输出电压噪声将恶化约3倍。提出了一种预扫描方法来确定实际谐振频率,随后调整工作频率或改变调谐电容,以保持预期的高分辨率水平。提供了一个验证失配效应和调整方法的实验。