He Zhen, Wu Jianjun, Zhang Daixian, Lu Gaofei, Liu Zejun, Zhang Rui
College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China.
Rev Sci Instrum. 2013 May;84(5):055107. doi: 10.1063/1.4804285.
This paper introduces a new direct non-contact electromagnetic calibration technique for high precision measurements of micro-thrust and impulse. A ring-shaped electromagnet with an air gap is used in the calibration. The calibration force is produced by the interaction of a uniform magnetic field with a copper wire current in the air gap. This force depends linearly on this current as well as the steady angular displacement of the torsion arm of the thrust stand. The range of calibration force is very large and the calibration force is easy to generate and insensitive to the arm displacement. The calibration uncertainty for a 150-μN force is 4.17 μN. The more influential factor on the calibration uncertainty is the magnetization of the electromagnet core due to the copper wire current. In the impulse calibration, the exerted impulse is linearly dependent on the maximal angular displacement of the torsion arm. The uncertainty in the impulse calibration is determined by uncertainties in both the force calibration and the pulse time.
本文介绍了一种用于高精度测量微推力和冲量的新型直接非接触式电磁校准技术。在校准过程中使用了带有气隙的环形电磁铁。校准力由均匀磁场与气隙中铜丝电流的相互作用产生。该力与电流以及推力架扭臂的稳定角位移呈线性关系。校准力范围非常大,易于产生且对臂位移不敏感。对于150 μN的力,校准不确定度为4.17 μN。对校准不确定度影响较大的因素是电磁铁铁芯因铜丝电流而产生的磁化。在冲量校准中,施加的冲量与扭臂的最大角位移呈线性相关。冲量校准中的不确定度由力校准和脉冲时间的不确定度共同决定。