Design of Compliant Mechanism Based Microgripper with Three Finger Using Topology Optimization
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Design of Compliant Mechanism Based Microgripper with Three Finger Using Topology Optimization

Authors: R. Bharanidaran, B. T. Ramesh

Abstract:

High precision in motion is required to manipulate the micro objects in precision industries for micro assembly, cell manipulation etc. Precision manipulation is achieved based on the appropriate mechanism design of micro devices such as microgrippers. Design of a compliant based mechanism is the better option to achieve a highly precised and controlled motion. This research article highlights the method of designing a compliant based three fingered microgripper suitable for holding asymmetric objects. Topological optimization technique, a systematic method is implemented in this research work to arrive a topologically optimized design of the mechanism needed to perform the required micro motion of the gripper. Optimization technique has a drawback of generating senseless regions such as node to node connectivity and staircase effect at the boundaries. Hence, it is required to have post processing of the design to make it manufacturable. To reduce the effect of post processing stage and to preserve the edges of the image, a cubic spline interpolation technique is introduced in the MATLAB program. Structural performance of the topologically developed mechanism design is tested using finite element method (FEM) software. Further the microgripper structure is examined to find its fatigue life and vibration characteristics.

Keywords: Compliant mechanism, Cubic spline interpolation, FEM, Topology optimization.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1087107

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References:


[1] P.Y. Zhang, G.Y. Wu, Y.L. Hao, Development of microgripper technology, Optics Precision Engineering 3(2000) 292–296
[2] Rabenorosoa K, Haddab Y, Lutz P (2008) In: Ratchev S, Koelemeijer S (Eds.) IFIP International Federation for Information Processing, 260, Micro-Assembly Technologies and Applications. Springer, Boston, 235–242
[3] Ando, D. , Fukuda, T. , Nonoda, Y. , Oota, T. , Micro manipulation based on micro physics-strategy based on attractive force reduction and stress measurement, Intelligent Robots and Systems 95. 'Human Robot Interaction and Cooperative Robots', Proceedings. 1995 IEEE/RSJ International Conference on, Vol.2, 236 - 241
[4] Lobontiu N, Compliant mechanisms design of flexure hinges. CRC, Boca Raton, 2003
[5] L. Saggere and S. Kota, Synthesis of planar, compliant four-bar mechanisms for compliant segment motion generation, Journal of Mechanical Design-Transaction ASME, 123(2001), 535–541
[6] A.Albanesi, V. Fachinotti, M. Pucheta, and A. Cardona., Synthesis of compliant mechanisms for segment-motion generation tasks, Asociaci´on Argentina de Mec´anicaComputacional, 26(2007), 2919- 2930
[7] L. L. Howell, Compliant Mechanisms, John Wiley & Sons, 2001
[8] Martin Philip Bendsoe, Ole Sigmund, Topology Optimization: Theory, Methods and Applications, Springer, 2004
[9] Albanesi, V. Fachinotti, and A. Cardona, Inverse finite element method for large displacement beams, INTernational Journal of Numerical Methods Engineering, 27(2010), 1049-1061
[10] N. Maheshwari, A. Narayana Reddy, Deepak Kumar Sahu and G.K. Ananthasuresh, Miniature Compliant Grippers with ForceSensing,14th National Conference on Machines and Mechanisms (NaCoMM09), NIT, Durgapur, India (2009), 431-439.
[11] Mahdavi · R. Balaji · M. Frecker · E. M. Mockensturm, Topology optimization of 2D continua for minimum compliance using parallel computing, Structural Multidisciplinary Optimization, 32 (2006), 121– 132
[12] C J Shih and C F Lin, A two-stage topological optimum design for monolithic compliant microgripper integrated with flexure hinges, International MEMS Conference 2006, Journal of Physics: Conference Series, 34 (2006), 840–846
[13] Mario Doria, Lionel Birglen, Design of an Underactuated Compliant Gripper for SurgeryUsing Nitinol, Journal of Medical Devices, Vol. 3 (2009) . 011001-011007.
[14] Yasser H. Anis, William L. Cleghorn and James K. Mills, Modal Analysis of Microgrippers used in Assembly of MEMS Devices, Proceedings of the 2005 International Conference on MEMS, NANO and Smart Systems (ICMENS’05), IEEE Computer Society.