补偿(心理学)
准确度和精密度
机械加工
观测误差
光学
晴空湍流
计量系统
测量不确定度
航程(航空)
激光器
测量原理
声学
激光束
梁(结构)
理论(学习稳定性)
工程类
标准差
计量学
控制理论(社会学)
电子工程
线性
测量仪器
补偿方式
极化(电化学)
湍流
计算机科学
作者
Fei Long,Xing Xia,Bin Zhang,Qibo Feng
出处
期刊:Sensors
[Multidisciplinary Digital Publishing Institute]
日期:2025-11-21
卷期号:25 (23): 7122-7122
摘要
Linear guides are fundamental components of high-end precision equipment, and their geometric errors directly affect the measurement and machining accuracy. To achieve efficient and accurate measurement of geometric motion errors in linear guides, this paper proposes a 6-DOF simultaneous measurement method that integrates heterodyne interferometry, collimation/autocollimation, and polarization principles. To address the degradation of straightness measurement accuracy under long-distance conditions caused by air turbulence, a dual-wavelength laser-based compensation method is developed to suppress turbulence-induced beam deviation. A turbulence compensation model based on a dual-wavelength proportional cancellation principle is established, and its effectiveness is verified through COMSOL (v6.3) simulations and experimental studies. Experimental results show that the proposed approach significantly outperforms the traditional simple moving-average (SMA) filter. It improves straightness measurement stability by more than 56%. Under a 3200 mm measurement range and ordinary laboratory conditions, the repeatabilities (k = 2) of the 6-DOF motion-error measurements are 6.4 μm for positioning error, 6.4 μm and 5.5 μm for straightness errors, 1.7″ and 2.1″ for yaw and pitch errors, and 4.3″ for roll error. The proposed method exhibits high measurement accuracy and robustness, making it suitable for simultaneous 6-DOF motion-error measurement of long linear guides.
科研通智能强力驱动
Strongly Powered by AbleSci AI