Efficient framework for the simulation of translational and rotational laser speckle displacement in optical sensor assemblies

被引:5
作者
Csencsics, Ernst [1 ]
Wolf, Tobias [1 ]
Schitter, Georg [1 ]
机构
[1] Tech Univ Wien, Automat & Control Inst, Vienna, Austria
关键词
laser speckle; speckle simulation; triangulation sensor; displacement measurement; surface tracking; in-process measurement; design tool; DECORRELATION; PLATFORM; TRACKING; TOOL;
D O I
10.1117/1.OE.61.6.061410
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The optimization and uncertainty analysis of laser-based optical sensors in the design phase is a challenging task due to the presence of stochastic laser speckle effects. We present an accurate, efficient, and versatile simulation framework for the design of optical sensor assemblies, capable of handling objective as well as subjective speckle effects. The framework integrates the stochastic nature of laser speckle with the deterministic properties of ray-tracing simulations, enabling the simulation of sensitivities to translational as well as rotational target motion and reliable performance estimation, even for more complex optical assemblies. To validate the simulation results for translation and rotation, they are compared against the experimental data of four speckle-based optical sensor assemblies as well as against analytical relations for speckle pattern motion. The accuracy of the developed framework is demonstrated by simulation errors for correlation peak shift of the speckle pattern of less than 2 mu m rms and 2.4 mu m rms for translation and rotation, respectively. For the center of gravity shift as additional simulation output for an integrated laser sensor for sensing translations in all three degrees of freedom, a simulation error of 2.6 mu m rms was obtained, which also lies well below the resolution of the designed optical sensor assemblies. (C) 2022 Society of Photo-Optical Instrumentation Engineers (SPIE)
引用
收藏
页数:14
相关论文
共 27 条
[1]   Wave-optics simulation of dynamic speckle: II. In an image plane [J].
Burrell, Derek J. ;
Spencer, Mark F. ;
Van Zandt, Noah R. ;
Driggers, Ronald G. .
APPLIED OPTICS, 2021, 60 (25) :G77-G90
[2]   Workpiece positioning sensor (wPOS): A three-degree-of-freedom relative end-effector positioning sensor for robotic manufacturing [J].
Charrett, Thomas O. H. ;
Kissinger, Thomas ;
Tatam, Ralph P. .
12TH CIRP CONFERENCE ON INTELLIGENT COMPUTATION IN MANUFACTURING ENGINEERING, 2019, 79 :620-625
[3]   A non-contact laser speckle sensor for the measurement of robotic tool speed [J].
Charrett, Thomas O. H. ;
Bandari, Yashwanth K. ;
Michel, Florent ;
Ding, Jialuo ;
Williams, Stewart W. ;
Tatam, Ralph P. .
ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2018, 53 :187-196
[4]   Robot machining: recent development and future research issues [J].
Chen, Yonghua ;
Dong, Fenghua .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2013, 66 (9-12) :1489-1497
[5]   Speckle Simulation Tool for the Design of Laser-based Displacement Sensors [J].
Csencsics, Ernst ;
Wolf, Tobias ;
Schitter, Georg .
OPTICAL MEASUREMENT SYSTEMS FOR INDUSTRIAL INSPECTION XII, 2021, 11782
[6]   Integrated compensation-based laser sensor system for in-plane and out-of-plane target tracking [J].
Csencsics, Ernst .
APPLIED OPTICS, 2020, 59 (20) :6138-6147
[7]   LASER TRIANGULATION - FUNDAMENTAL UNCERTAINTY IN DISTANCE MEASUREMENT [J].
DORSCH, RG ;
HAUSLER, G ;
HERRMANN, JM .
APPLIED OPTICS, 1994, 33 (07) :1306-1314
[8]   Algorithms for simulation of speckle (laser and otherwise) [J].
Duncan, Donald D. ;
Kirkpatrick, Sean J. .
COMPLEX DYNAMICS AND FLUCTUATIONS IN BIOMEDICAL PHOTONICS V, 2008, 6855
[9]   The copula: a tool for simulating speckle dynamics [J].
Duncan, Donald D. ;
Kirkpatrick, Sean J. .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2008, 25 (01) :231-237
[10]   Simulation of dynamic speckle sequences and its application to the analysis of transient processes [J].
Federico, A ;
Kaufmann, GH ;
Galizzi, GE ;
Rabal, H ;
Trivi, M ;
Arizaga, R .
OPTICS COMMUNICATIONS, 2006, 260 (02) :493-499