Automatic alignment system for measuring optical path of transmittance meter using light beam scanning

2017 ◽  
Vol 46 (10) ◽  
pp. 1017001
Author(s):  
周树道 Zhou Shudao ◽  
马忠良 Ma Zhongliang ◽  
王 敏 Wang Min ◽  
彭舒龄 Peng Shuling
2018 ◽  
Vol 65 (9) ◽  
pp. 1104-1110
Author(s):  
Shudao Zhou ◽  
Zhongliang Ma ◽  
Min Wang ◽  
Shuling Peng

2011 ◽  
Author(s):  
Karl Wilhelmsen ◽  
Abdul A. S. Awwal ◽  
Dan Kalantar ◽  
Richard Leach ◽  
Roger Lowe-Webb ◽  
...  

2009 ◽  
Vol 36 (9) ◽  
pp. 2341-2345
Author(s):  
刘小勤 Liu Xiaoqin ◽  
吴毅 Wu Yi ◽  
胡顺星 Hu Shunxin ◽  
汪建业 Wang Jianye ◽  
翁宁泉 Weng Ningquan

2013 ◽  
Vol 40 (10) ◽  
pp. 1002003 ◽  
Author(s):  
李红 Li Hong ◽  
王东方 Wang Dongfang ◽  
邹伟 Zou Wei ◽  
林强 Lin Qiang ◽  
张艳丽 Zhang Yanli ◽  
...  

2014 ◽  
Vol 3 (4) ◽  
Author(s):  
Hung-Lin Hsieh ◽  
Ju-Yi Lee ◽  
Yu-Che Chung

AbstractA wavelength-modulated heterodyne grating shearing interferometry using a birefringent crystal is proposed for two-dimensional displacement measurement. There is a difference in the optical path lengths of the p- and s- polarizations of the light beam in the birefringent crystal because of the double refraction caused by the birefringence. By passing through the unequal-path-length optical configuration, the wavelength-modulated light beam is converted into a heterodyne light beam having two frequencies. The modulated heterodyne light beam is further combined with grating-shearing interferometry based on the quasi-common-optical-path (QCOP) design concept. According to the working principle and the Jones calculation, the displacement information of a moving grating can be obtained by means of the optical phase variation resulting from the grating. Theoretical analysis shows that the measurement sensitivity of the proposed method is about 0.134°/nm. The experimental results indicate that the resolution is about 10 nm for the centimetric-level measurement range.


1966 ◽  
Vol 5 (6) ◽  
pp. 1088_1 ◽  
Author(s):  
W. Haas ◽  
R. Johannes

2014 ◽  
Vol 625 ◽  
pp. 627-632
Author(s):  
Chi Ying Lin ◽  
Yu Sheng Zeng

Over the past few decades, vision based alignment has been accepted as an important technique to achieve higher economic benefits for precision manufacturing and measurement applications. Also referred to as visual servoing, this technique basically applies the vision feedback information and drives the moving parts to the desired target location using some appropriate control laws. Although recently rapid development of advanced image processing algorithms and hardware have made this alignment process an easier task, some fundamental issues including inevitable system constraints and singularities, still remain as a challenging research topic for further investigation. This paper aims to develop a visual servoing method for automatic alignment system using model predictive control (MPC). The reason for using this optimal control for visual servoing design is because of its capability of handling constraints such as motor and image constraints in precision alignment systems. In particular, a microassembly system for peg and hole alignment application is adopted to illustrate the design process. The goal is to perform visual tracking of two image feature points based on a XYθ motor-stage system. From the viewpoint of MPC, this is an optimization problem that minimizes feature errors under given constraints. Therefore, a dynamic model consisting of camera parameters and motion stage dynamics is first derived to build the prediction model and set up the cost function. At each sample step the control command is obtained by solving a quadratic programming optimization problem. Finally, simulation results with comparison to a conventional image based visual servoing method demonstrate the effectiveness and potential use of this method.


1990 ◽  
Author(s):  
Rao Yun-jiang ◽  
Huang Shang -lian ◽  
Li Ping ◽  
Wen Yu-mei ◽  
Tang Jun

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