Appl Opt. 2023 Mar 20;62(9):2338-2349. doi: 10.1364/AO.481625.
To improve the detection capability of satellite-based synthetic aperture radar, a large antenna array with a length scale of 100 meters is urgently needed. However, the structural deformation of the large antenna leads to phase errors, which will significantly reduce the antenna gain; hence, real-time and high-precision profile measurements of the antenna are essential for active compensation of the phase and thus improving the antenna gain. Nevertheless, the conditions of antenna in-orbit measurements are rather severe because of limited installation locations of measurement instruments, large areas, and long distance to be measured, and unstable measurement environments. To deal with the issues, we propose a three-dimensional displacement measurement method for the antenna plate based on laser distance measuring and digital image correlation (DIC). The proposed method uses the DIC method to retrieve the in-plane displacement information in combination with a laser range finder to provide depth information. A Scheimpflug camera is used to overcome the limitation of the depth of field of traditional cameras and enable clear imaging of the full field. Moreover, a vibration compensation scheme is proposed to eliminate the measurement error of the target displacement caused by the random vibration (within 0.01°) of the camera support rod. The results of the experiment in a laboratory setting show that the proposed method can effectively eliminate the measurement error caused by camera vibration (50 mm) and reduce the displacement measurement error to within 1 mm with a measurement range of 60 m, which can meet the measurement requirements of next-generation large satellite antennas.
为了提高星载合成孔径雷达的探测能力,迫切需要一个长度为 100 米的大型天线阵。然而,大型天线的结构变形会导致相位误差,这将显著降低天线增益;因此,对天线进行实时、高精度的轮廓测量对于相位的主动补偿以及提高天线增益至关重要。然而,由于测量仪器的安装位置有限、测量面积大、测量距离长以及测量环境不稳定,天线在轨测量的条件相当苛刻。针对这些问题,我们提出了一种基于激光测距和数字图像相关(DIC)的天线板三维位移测量方法。该方法利用 DIC 方法结合激光测距仪获取面内位移信息,提供深度信息。采用 Scheimpflug 相机克服了传统相机景深的限制,实现了全场的清晰成像。此外,还提出了一种振动补偿方案,以消除相机支撑杆随机振动(0.01°以内)引起的目标位移测量误差。在实验室环境下的实验结果表明,该方法可以有效消除相机振动(50mm)引起的测量误差,并将位移测量误差降低到 1mm 以内,测量范围可达 60m,满足下一代大型卫星天线的测量要求。