全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

An Investigation of the Effects of Thermal Interference between Adjacent Nitinol Spring Actuators in a Tactile Display

DOI: 10.4236/wjet.2023.111010, PP. 136-152

Keywords: Finite Element Analysis (FEA), Shape Memory Alloy (SMA), Nitinol (NiTi) Spring Actuator, Tactile Display, Thermal Interference

Full-Text   Cite this paper   Add to My Lib

Abstract:

Over the years, there has been increased research interest in the application of Nitinol as an actuator, due to its shape memory behaviour, simplicity, high power-to-weight ratio, compactness, and extreme high fatigue resistance to cyclic motion, and noiseless operation. Nitinol has found application in tactile displays which reproduce tactile parameters such as texture and shape, depending on the application. This paper presents the effects of thermal interference between adjacent Nitinol spring actuators in a tactile display. The tactile display is made of a 3 by 3 pin array whose spatial resolution was varied from 4 mm to 6 mm in steps of 1 mm while a current of 1.5 A was used to actuate 8 of the springs, and the centre spring was left unactivated to observe the thermal effects on it due to the heat gradient formed. A Finite Element (FE) model was developed using COMSOL Multiphysics and the results were further verified through experimentation. In both cases, there was visible thermal interference between actuators. The increase in spatial resolution saw a decrease in thermal interference by 12.7%. Using a fan to introduce forced convection, reduced the thermal interference in the simulation by 20% and during experimentation by 11%. The results of this research indicate a spatial resolution of 6 mm reduced the thermal inference to a negligible rate. However, thermal interference could not be eliminated with these two methods.

References

[1]  Jairakrean, S. and Chanthasopeephan, T. (2009) Position Control of SMA Actuator for 3D Tactile Display. IEEE International Conference on Rehabilitation Robotics, ICORR, Kyoto, 23-26 June 2009, 234-239.
https://doi.org/10.1109/ICORR.2009.5209555
[2]  Xu, J., Kimura, Y., Tsuji, K., Abe, K., Shimizu, T., Hasegawa, H. and Mineta, T. (2020) Fabrication and Characterization of SMA Film Actuator Array with Bias Spring for High-Power MEMS Tactile Display. Microelectronic Engineering, 227, 111-307.
https://doi.org/10.1016/j.mee.2020.111307
[3]  Alsayed, Y.M., Abouelsoud, A.A. and Elbab, A.M.R.F. (2020) Adaptive PI-Based Fuzzy Logic Auto-Tuning Controller Design and Implementation for Tactile Shape Display Device. 2019 6th International Conference on Advanced Control Circuits and Systems (ACCS) & 2019 5th International Conference on New Paradigms in Electronics & Information Technology (PEIT), Hurgada, 17-20 November 2019, 32-37.
https://doi.org/10.1109/ACCS-PEIT48329.2019.9062838
[4]  Yanatori, H., Mineta, T., Takeuchi, S. and Abe, K. (2016) A Shape Memory Alloy Thick Film Actuator Array for Narrow Pitched Planar Tactile Display Device. 2016 IEEE 11th Annual International Conference on Nano/Micro Engineered and Molecular Systems, Sendai, 17-20 April 2016, 251-254.
https://doi.org/10.1109/NEMS.2016.7758244
[5]  Chouvardas, V.G., Miliou, A.N. and Hatalis, M.K. (2008) Tactile Displays: Overview and Recent Advances. Displays, 29, 185-194.
https://doi.org/10.1016/j.displa.2007.07.003
[6]  Wu, X., Kim, S.H., Zhu, H., Ji, C.H. and Allen, M.G. (2012) A Refreshable Braille Cell Based on Pneumatic Microbubble Actuators. Journal of Microelectromechanical Systems, 21, 908-916.
https://doi.org/10.1109/JMEMS.2012.2190043
[7]  Velazquez, R., Pissaloux, E., Szewczyk, J. and Hafez, M. (2005) Miniature Shape Memory Alloy Actuator for Tactile Binary Information Display. IEEE International Conference on Robotics and Automation, Barcelona, 18-22 April 2005, 1344-1349.
https://doi.org/10.1109/ROBOT.2005.1570302
[8]  Leonardis, D., Claudio, L. and Frisoli, A. (2018) A Survey on Innovative Refreshable Braille Display Technologies. In: Di Bucchianico, G. and Kercher, P., eds., AHFE 2017: Advances in Design for Inclusion, Springer, Cham.
https://doi.org/10.1007/978-3-319-60597-5_46
[9]  Wright, C. and Bilgen, O. (2018) System Identification of a Low-Order Heat Transfer Model for Shape Memory Alloy Wires. Journal of Intelligent Material Systems and Structures, 29, 2122-2136.
https://doi.org/10.1177/1045389X17754260
[10]  Heidari, B., Kadkhodaei, M., Barati, M. and Karimzadeh, F. (2016) Fabrication and Modeling of Shape Memory Alloy Springs. Smart Materials and Structures, 25, Article ID: 125003.
https://doi.org/10.1088/0964-1726/25/12/125003
[11]  Emiliavaca, A., de Araújo, C., Souto, C. and Ries, A. (2019) Characterization of Shape Memory Alloy Micro-Springs for Application in Morphing Wings. Smart Materials and Structures, 28, Article ID: 015010.
https://doi.org/10.1088/1361-665X/aaeb80
[12]  Zhang, D., Zhao, X., Han, J., Li, X. and Zhang, B. (2019) Active Modeling and Control for Shape Memory Alloy Actuators. IEEE Access, 7, 162549-162558.
https://doi.org/10.1109/ACCESS.2019.2936256
[13]  Mansour, N.A., Fath El-Bab, A. and Abdellatif, M. (2014) Design Procedure and Simulation of a Novel Multi-Modal Tactile Display Device for Biomedical Applications. Journal of Sensor Technology, 4, 7-17.
https://doi.org/10.4236/jst.2014.41002
[14]  Garcia-Hernandez, N., Tsagarakis, N.G. and Caldwell, D.G. (2011) Feeling through Tactile Displays: A Study on the Effect of the Array Density and Size on the Discrimination of Tactile Patterns. IEEE Transactions on Haptics, 4, 100-110.
https://doi.org/10.1109/TOH.2010.59
[15]  Huang, W. (2002) On the Selection of Shape Memory Alloys for Actuators. Materials and Design, 23, 11-19.
https://doi.org/10.1016/S0261-3069(01)00039-5
[16]  Fath El-Bab, A.M., Eltaib, M.E., Sallam, M.M. and Tabata, O. (2007) Tactile Sensor for Compliance Detection. Sensors and Materials, 19, 165-177.
[17]  Mansour, N.A., Fath El-Bab, A.M., Assal, S.F. and Tabata, O. (2015) Design, Characterization and Control of SMA Springs-Based Multi-Modal Tactile Display Device for Biomedical Applications. Mechatronics, 31, 255-263.
https://doi.org/10.1016/j.mechatronics.2015.08.004
[18]  Awan, A.U., Park, J., Kim, H.J., Ryu, J. and Cho, M. (2016) Adaptive Control of a Shape Memory Alloy Actuator Using Neural-Network Feedforward and RISE Feedback. International Journal of Precision Engineering and Manufacturing, 17, 409-418.
https://doi.org/10.1007/s12541-016-0051-7
[19]  Fischer, H., Trapp, R., Schüle, L. and Hoffmann, B. (1997) Actuator Array for Use in Minimally Invasive Surgery. Journal de Physique IV, 7, C5-609-C5-614.
[20]  Velazquez, R., Pissaloux, E.E. and Wiertlewski, M. (2006) A Compact Tactile Display for the Blind with Shape Memory Alloys. IEEE International Conference on Robotics and Automation, Orlando, FL, 15-19 May 2006, 3905-3910.
https://doi.org/10.1109/ROBOT.2006.1642300
[21]  Mansour, N.A., Fath El-Bab, A.M.R. and Abdellatif, M. (2012) Design of a Novel Multi-Modal Tactile Display Device for Biomedical Applications. 2012 First International Conference on Innovative Engineering Systems, Alexandria, 7-9 December 2012, 183-188.
https://doi.org/10.1109/ICIES.2012.6530836
[22]  Mohd Jani, J., Leary, M., Subic, A. and Gibson, M.A. (2014) A Review of Shape Memory Alloy Research, Applications and Opportunities. Materials and Design, 56, pp. 1078-1113.
https://doi.org/10.1016/j.matdes.2013.11.084
[23]  Jayender, J., Patel, R.V., Nikumb, S. and Ostojic, M. (2005) Modelling and Gain Scheduled Control of Shape Memory Alloy Actuators. Proceedings of the 2005 IEEE Conference on Control Applications, Toronto, 28-31 August 2005, 767-772.
[24]  Eisakhani, A., Ma, W., Gao, J., Culham, J.R. and Gorbet, R. (2011) Natural Convection Heat Transfer Modelling of Shape Memory Alloy Wire. International Workshop Smart Materials, Structures & NDT in Aerospace Conference, Montreal, 2-4 November 2011.
[25]  Degeratu, S., Rotaru, P., Rizescu, S. and Bizdoaca, N.G. (2013) Thermal Study of a Shape Memory Alloy (SMA) Spring Actuator Designed to Insure the Motion of a Barrier Structure. Journal of Thermal Analysis and Calorimetry, 111, 1255-1262.
https://doi.org/10.1007/s10973-012-2369-4
[26]  Dynalloy Industries (2013) Technical Characteristics of Flexinol Actuator Wires. F1140 Rev J Datasheet.
https://dynalloy.com/tech_sheets.php
[27]  Kellogg’s Research Labs (2020) Nitinol in Plain Language.
[28]  Kumar, P.K. and Lagoudas, D.C. (2008) Introduction to Shape Memory Alloys. In: Lagoudas, D.C., Ed., Shape Memory Alloys, Vol. 1, Springer, Boston, MA, 1-51.
https://doi.org/10.1007/978-0-387-47685-8_1
[29]  Pissaloux, E.E. and Velazquez, R. (2012) Modelling and Temperature Control of Shape Memory Alloys with Fast Electrical Heating. International Journal of Mechanics and Control, 13, 3-10.
[30]  Tong, J., Mao, O. and Goldreich, D. (2013) Two-Point Orientation Discrimination versus the Traditional Two-Point Test for Tactile Spatial Acuity Assessment. Frontiers in Human Neuroscience, 7, Article 579.
https://doi.org/10.3389/fnhum.2013.00579

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133