Laser & Optoelectronics Progress, Volume. 53, Issue 5, 50006(2016)

Advances in Robot Force/Torque Tactile Sensing Technology Based on Fiber Bragg Grating

Guo Yongxing1、*, Kong Jianyi1, Xiong Hegen1, Li Gongfa1, and Liu Honghai1,2
Author Affiliations
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  • 2[in Chinese]
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    References(48)

    [1] [1] Ge Yunjian, Zhang Jianjun, Ge Yu, et al.. Ubiquitous sensing and robot perception[J]. Acta Automatica Sinica, 2002, 28(s1): 125-133.

    [2] [2] Ge Yu, Wu Zhongcheng, Ge Yunjian. State of arts and development trends toward application-oriented force/torque sensors[J]. Robot, 2003, 25(2): 188-192.

    [3] [3] Liu Jinguo, Wang Yuechao, Li Bin, et al.. Current research, key performances and future development of search and rescue robot[J]. Chinese Journal of Mechanical Engineering, 2006, 42(12): 1-12.

    [4] [4] Tan Min, Wang Shuo. Research progress on robotics[J]. Acta Automatica Sinica, 2013, 39(7): 963-972.

    [5] [5] Song Guoli, Han Jianda, Zhao Yiwen. Review of orthopedic surgical robot and navigation technology[J]. Chinese Science Bulletin, 2013, 58(s2): 8-19.

    [6] [6] Zhao Xingang, Yang Tangwen, Han Jianda, et al.. A review on the robot-assisted needle puncture technology[J]. Chinese Science Bulletin, 2013, 58(s2): 20-27.

    [7] [7] Guo Song, Yang Mingjie, Tan Jun. A big challenge of surgical robot——haptic feedback[J]. Chinese Journal of Biomedical Engineering, 2014, 32(4): 499-503.

    [10] [10] Chen Haiyun, Gu Zhengtian, Gao Kan. Multi-parameter photochemical sensing technology of long-period fiber grating and wavelength division multiplexing[J]. Chinese J Lasers, 2014, 41(2): 0205003.

    [11] [11] Abushagur A A G, Arsad N, Reaz M I, et al.. Advances in bio-tactile sensors for minimally invasive surgery using the fibre Bragg grating force sensor technique: Asurvey[J]. Sensors, 2014, 14(4): 6633-6665.

    [12] [12] Taffoni F, Formica D, Saccomandi P, et al.. Optical fiber-based MR-compatible sensors for medical applications: An overview[J]. Sensors, 2013, 13(10): 14105-14120.

    [13] [13] Hill K O, Fujii Y, Johnson D C, et al.. Photosensitivity in optical fiber waveguides: Application to reflection filter fabrication[J]. Applied Physics Letters, 1978, 32(10): 647-649.

    [14] [14] Kawasaki B S, Hill K O, Johnson D C, et al.. Narrow-band Bragg reflectors in optical fibers[J]. Optics Letters, 1978, 3(2): 66-68.

    [15] [15] Morey W W, Meltz G, Glenn W H. Fiber optic Bragg grating sensors[C]. SPIE, 1989, 169: 98-107.

    [16] [16] Xiong L, Zhang D S, Li L T, et al.. EFPI-FBG hybrid sensor for simultaneous measurement of high temperature and large strain[J]. Chinese Optics Letters, 2014, 12(12): 120605.

    [17] [17] Li Chuan, Zhang Yimo, Zhao Yonggui, et al.. Fiber grating: Principles, techniques, and sensing applications[M]. Beijing: Science Press, 2005.

    [18] [18] Kersey A D, Davis M A, Patrick H J, et al.. Fiber grating sensors[J]. Journal of Lightwave Technology, 1997, 15(8): 1442-1463.

    [19] [19] Fernandez A, Berghmans F, Brichard B, et al.. Multi-component force sensor based on multiplexed bre Bragg grating strain sensors[J]. Measurement Science and Technology, 2001, 12: 810-813.

    [20] [20] Park Y L, Ryu, Black R J, et al.. Fingertip force control with embedded fiber Bragg grating sensors[C]. 2008 IEEE International Conference on Robotics and Automation, 2008: 3431-3436.

    [21] [21] Park Y L, Ryu S C, Black R J, et al.. Exoskeletal force-sensing end-effectors with embedded optical fiber-Bragg-grating sensors[J]. IEEE Transactions on Robotics, 2009, 25(6): 1319-1331.

    [22] [22] Mueller M S, Hoffmann L, Buck T S, et al.. Realization of a fiber-optic force-torque sensor with six degrees of freedom[C]. SPIE, 2008, 7266: 72660S.

    [23] [23] Mueller M S, Hoffmann L, Buck T S, et al.. Fiber Bragg grating-based force-torque sensor with six degrees of freedom[J]. International Journal of Optomechatronics, 2009, 3(3): 201-214.

    [24] [24] Jiang Qi, Gao Fangfang, Li Yibin, et al.. Design and research of wrist force sensor based on FBG[C]. IEEE International Conference on Information and Automation, 2013: 390-395.

    [25] [25] Gao Fangfang. Research ofmulti-dimensional force sensing technology based on fiber Bragg grating[D]. Jinan: Shandong University, 2014.

    [27] [27] Fu Yili, Li Kun, Pan Bo, et al.. A survey of force sensing and force feedback technology for robot-assisted minimally invasive surgical system[J]. Robot, 2014, 36(1): 117-128.

    [28] [28] Song H, Kim H, Jeong J, et al.. Development of FBG sensor system for force-feedback in minimally invasive robotic surgery[C]. 2011 IEEE Fifth International Conference on Sensing Technology, 2011: 16-20.

    [29] [29] Song H, Kim K, Lee J. Development of optical fiber Bragg grating force-reflection sensor system of medical application for safe minimally invasive robotic surgery[J]. Review of Scientific Instruments, 2011, 82(7): 074301.

    [30] [30] Haslinger R, Leyendecker P, Seibold U. A fiberoptic force-torque-sensor for minimally invasive robotic surgery[C]. IEEE International Conference on Robotics and Automation, 2013: 4390-4395.

    [31] [31] He X, Balicki M A, Kang J U, et al.. Force sensing micro-forceps with integrated fiber Bragg grating for vitreoretinal surgery[C]. SPIE, 2012, 8218: 82180W.

    [32] [32] Gonenc B, Handa J, Gehlbach P, et al.. Design of 3-DOF force sensing micro-forceps for robot assisted vitreoretinal surgery[C]. 35th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 2013: 5686-5689.

    [33] [33] He X, Handa J, Gehlbach P, et al.. A submillimetric 3-DOF force sensing instrument with integrated fiber Bragg grating for retinal microsurgery[J]. IEEE Transactions on Biomedical Engineering, 2014, 61(2): 522-534.

    [34] [34] Gijbels A, Reynaerts D, Stalmans P, et al.. Design and manufacturing of a 2-DOF force sensing needle for retinal surgery[C]. 4th Joint Workshop on New Technology for Computer/Robot Assisted Surgery, 2014: 12-15.

    [35] [35] Park Y L, Elayaperumal S, Daniel B, et al.. Real-time estimation of 3-D needle shape and deflection for MRI-guided interventions[J]. IEEE/ASME Transactions on Mechatronics, 2010, 15(6): 906-915.

    [36] [36] Elayaperumal S, Bae J H, Christensen D, et al.. MR-compatible biopsy needle with enhanced tip force sensing[C]. IEEE World Haptics Conference (WHC), 2013: 109-114.

    [37] [37] Yang Y J, Cheng M Y, Shih S C, et al.. A 32×32 temperature and tactile sensing array using PI-copper films[J]. The International Journal of Advanced Manufacturing Technology, 2010, 46(9-12): 945-956.

    [38] [38] Heo J S, Lee J J. Development of flexible force sensors using fiber Bragg grating for tactile sensing and its evaluation[C]. SPIE, 2005, 5852: 372-378.

    [39] [39] Heo J S, Chung J H, Lee J J. Application of optical fiber sensor for the tactile sensor system[C]. 1st International Conference on Sensing Technology, 2005: 32-37.

    [40] [40] Heo J S, Lee J J. Temperaturesensor array for tactile sensation using FBG sensors[C]. 5th IEEE Conference on Sensors, 2006: 1464-1467.

    [41] [41] Heo J S, Chung J H, Lee J J. Tactile sensor arrays using fiber Bragg grating sensors[J]. Sensors and Actuators A: Physical, 2006, 126(2): 312-327.

    [42] [42] Heo J S, Han C H, Lee J J. System design and evaluation of the robot tactile sensor using the microbending fiber optic sensors[C]. The 16th IEEE International Conference on Robot and Human interactive Communication, 2007: 14-18.

    [43] [43] Heo J S, Kim J Y, Lee J J. Tactile sensors using the distributed optical fiber sensors[C]. 3rd International Conference on Sensing Technology, 2008: 486-490.

    [44] [44] Cowie B, Allsop T, Williams J, et al.. An optical fiber Bragg grating tactile sensor[C]. SPIE, 2007, 6585: 65850I.

    [45] [45] Cowie B M, Webb D J, Tam B, et al.. Fiber Bragg grating sensors for distributive tactile sensing[J]. Measurement Science and Technology, 2007, 18(1): 138.

    [46] [46] Saccomandi P, Caponero M A, Polimadei A, et al.. An MR-compatible force sensor based on FBG technology for biomedical application[C]. 36th Annual International Conference of the Engineering in Medicine and Biology Society (EMBC), 2014: 5731-5734.

    [47] [47] Saccomandi P, Oddo C M, Zollo L, et al.. Feedforward neural network for force coding of an MRI-compatible tactile sensor array based on fiber Bragg grating[J]. Journal of Sensors, 2015, 2015: 1-9.

    [48] [48] Song Jinxue, Jiang Qi, Huang Yuanyang, et al.. Research on pressure tactile sensing technology based on fiber Bragg grating array[J]. Photonic Sensors, 2015, 5(3): 263-272.

    CLP Journals

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    Guo Yongxing, Kong Jianyi, Xiong Hegen, Li Gongfa, Liu Honghai. Advances in Robot Force/Torque Tactile Sensing Technology Based on Fiber Bragg Grating[J]. Laser & Optoelectronics Progress, 2016, 53(5): 50006

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    Paper Information

    Category: Reviews

    Received: Nov. 13, 2015

    Accepted: --

    Published Online: May. 5, 2016

    The Author Email: Guo Yongxing (yongxing_guo@wust.edu.cn)

    DOI:10.3788/lop201653.050006

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