Cite

K.F. Beyeler, A. Neild, S. Oberti, D. J. Bell, Y. Sun, J. Dual and B. J. Nelson, Monolithically Fabricated Microgripper with Integrated Force Sensor for Manipulating Microobjects and Biological Cells Aligned in an Ultrasonic Field, J. Microelectromech. Syst., Vol 16 No 1, pp. 7–15, 2007.10.1109/JMEMS.2006.885853 Search in Google Scholar

T. C. Duc, G. K. Lau, J. F. Creemer and P. M. Sarro, ElectrothermalMicrogripper with Large Jaw Displacement and Integrated Force Sensors,J. Microelectromech. Syst., Vol 17 No6, pp. 1546–1555, 2008. Search in Google Scholar

S. Konishi, F. Kawai and P. Cusin, Thin Flexible End-effector using Pneumatic Balloon Actuator, Sens. Actuators A, 89, pp. 28-35, 2001.10.1016/S0924-4247(00)00533-1 Search in Google Scholar

R. Lumia and M. Shahinpoor, IPMC Microgripper Research and Development, J. Phys.: Conf. Ser., 127, 012002, 2008. Search in Google Scholar

R. Pérez, J. Agnus, C. Clévy, A. Hubert, and N. Chaillet, Modeling, Fabrication, and Validation of a High-Performance 2-DoF Piezoactuator for Micromanipulation, IEEE/ASME Trans. Mechatron., 10(2), pp. 161-171, 2005.10.1109/TMECH.2005.844712 Search in Google Scholar

D.H. Kim, B. Kimand H. Kang, Development of a Piezoelectric Polymer-based Sensorized Microgripper for Microassembly and Micromanipulation, Microsystem Technologies, 10, pp. 275–280, 2004.10.1007/s00542-003-0330-y Search in Google Scholar

Z. W. Zhong and C. K. Yeong, Development of a Gripper Using SMA Wire, Sens. Actuators A, 126(2), pp. 375–381, 2006.10.1016/j.sna.2005.10.017 Search in Google Scholar

J. H. Kyung, B. G. Ko, Y. H. Ha, and G. J. Chung, Design of a Microgripper for Micromanipulation of Microcomponents Using SMA Wires and Flexible Hinges, Sens. Actuators A, 141, pp. 144–150, 2008 .10.1016/j.sna.2007.07.013 Search in Google Scholar

J. M. Stevens and G. D. Buckner, Actuation and control strategies for miniature robotic surgical systems, ASME J. Dyn. Syst., Meas. Control, Vol. 127, pp. 537–549. 2010.10.1115/1.2098892 Search in Google Scholar

F. Morra, R. Molfino and F. Cepolina, Miniature gripping device, Proc. Int. Conf. Intell. Manipulation Grasping, pp. 363–368. 2004. Search in Google Scholar

H. Fischer, B. Vogel and A.Welle, Application of shape memory alloy in medical instruments, Minimally Invasive Therapy Allied Technol., Vol. 13, No. 4, pp. 248–253, 2004.10.1080/1364570041001804616754133 Search in Google Scholar

M. Hashimoto, M. Takeda, H. Sagawa, I. Chiba and K. Sat, Shape memory alloy and robotic actuators, J. Robot. Syst., Vol. 2, pp. 325, 1985. Search in Google Scholar

K. Dhanalakshmi, Aditya Avinash, M. Umapathy, M. Marimuthu, Experimental study on vibration control of shape memory alloy actuated flexible beam, International Journal on Smart Sensing and Intelligent Systems, Vol 3,No 2, pp. 156-175, 2010.10.21307/ijssis-2017-387 Search in Google Scholar

Nakshatharan S, Ruth D J S, Dhanalakshmi K, Design based active vibration control of a flexible structure using shape memory alloy wire actuators, IEEE International Conference on Sensing Technology, pp. 476-480, Dec 2012.10.1109/ICSensT.2012.6461725 Search in Google Scholar

Ruth D J S, Nakshatharan S, Dhanalakshmi K, Angular trajectory tracking using antagonistic shape memory alloy actuators, IEEE International Conference on Sensing Technology, pp.748-753, Dec 2012.10.1109/ICSensT.2012.6461778 Search in Google Scholar

M. Moallem and J. Lu, Application of shape memory alloy actuator for flexure control: Theory and experiments, IEEE Trans. Mechatronics, 2005, Vol. 10, No. 5, pp. 495–501.10.1109/TMECH.2005.856220 Search in Google Scholar

N.Ma and G Song, Control of shape memory alloy actuator using pulse width modulation, Smart Mater. Struct., Vol.12, pp. 712–719. 2003.10.1088/0964-1726/12/5/007 Search in Google Scholar

Kevin M. Lynch, Matthew T. Mason, Dynamic manipulation with a one joint robot, IEEE International Conference on Robotics and Automation, Vol 1,pp 359-366,1997. Search in Google Scholar

S. Majima, K. Kodamaand T. Hasegawa, Modelling of shape memory alloy actuator and tracking control system with the model, IEEE Transactions on Control System Technology, Vol 9, pp.54, 2001.10.1109/87.896745 Search in Google Scholar

K. Kwan Ahn and B. Kha Nguyen, Position Control of Shape Memory Alloy Actuators using Self-Tuning Fuzzy PID Controller, J. Control Automation, Vol. 4, pp. 756-762, 2006. Search in Google Scholar

V. A. Tabsizi and M. Moallem, Nonlinear Position Control of Antagonistic Shape Memory Alloy Actuators, Proceedings of American Control Conference, pp 88-93, 2007.10.1109/ACC.2007.4282721 Search in Google Scholar

H. Li, C. Mao and J. Ou, Strain self-sensing property and strain rate dependent constitutive model of austenitic shape memory alloy: Experiment and Theory, Journal of Materials in Civil Engineering,Vol.17, No 6,pp 676-685,2005.10.1061/(ASCE)0899-1561(2005)17:6(676) Search in Google Scholar

Zulfatman and M. F. Rahmat, Application of self-tuning Fuzzy PID Controller on Industrial Hydraulic Actuator using System Identification Approach, International Journal on Smart Sensing and Intelligent Systems, Vol. 2, No. 2,pp 246-261,June 2009.10.21307/ijssis-2017-349Search in Google Scholar

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