EFLA Consulting Engineers, Lynghals 4, 110 Reykjavik, Iceland.
Department of Civil Engineering, School of Engineering, University of Greenwich, Central Avenue, Chatham Maritime, Kent ME4 4TB, UK.
Sensors (Basel). 2021 May 27;21(11):3740. doi: 10.3390/s21113740.
This paper presents the design, development and evaluation of a unique non-contact instrumentation system that can accurately measure the interface displacement between two rigid components in six degrees of freedom. The system was developed to allow measurement of the relative displacements between interfaces within a stacked column of brick-like components, with an accuracy of 0.05 mm and 0.1 degrees. The columns comprised up to 14 components, with each component being a scale model of a graphite brick within an Advanced Gas-cooled Reactor core. A set of 585 of these columns makes up the Multi Layer Array, which was designed to investigate the response of the reactor core to seismic inputs, with excitation levels up to 1 g from 0 to 100 Hz. The nature of the application required a compact and robust design capable of accurately recording fully coupled motion in all six degrees of freedom during dynamic testing. The novel design implemented 12 Hall effect sensors with a calibration procedure based on system identification techniques. The measurement uncertainty was ±0.050 mm for displacement and ±0.052 degrees for rotation, and the system can tolerate loss of data from two sensors with the uncertainly increasing to only 0.061 mm in translation and 0.088 degrees in rotation. The system has been deployed in a research programme that has enabled EDF to present seismic safety cases to the Office for Nuclear Regulation, resulting in life extension approvals for several reactors. The measurement system developed could be readily applied to other situations where the imposed level of stress at the interface causes negligible material strain, and accurate non-contact six-degree-of-freedom interface measurement is required.
本文提出了一种独特的非接触式仪器系统的设计、开发和评估,该系统可以精确测量两个刚性组件之间的六自由度界面位移。该系统的开发旨在允许测量堆叠柱状组件内部接口之间的相对位移,精度为 0.05 毫米和 0.1 度。这些柱状组件最多由 14 个组件组成,每个组件都是先进气冷堆堆芯内石墨砖的比例模型。这样的柱状组件有 585 组,构成了多层阵列,旨在研究反应堆堆芯对地震输入的响应,激励水平从 0 到 100 Hz 可达 1 g。由于应用的性质需要一个紧凑而坚固的设计,能够在动态测试中精确地记录所有六个自由度的完全耦合运动。新颖的设计采用了 12 个霍尔效应传感器,并基于系统识别技术实施了校准程序。测量不确定度为位移±0.050 毫米,旋转±0.052 度,系统可以容忍两个传感器的数据丢失,不确定性仅增加到平移 0.061 毫米和旋转 0.088 度。该系统已部署在一个研究计划中,使 EDF 能够向核监管办公室提交地震安全案例,从而批准了几个反应堆的延寿。开发的测量系统可以很容易地应用于其他情况下,在这些情况下,界面处的应力水平导致材料应变可忽略不计,并且需要精确的非接触六自由度界面测量。