1,680
Views
0
CrossRef citations to date
0
Altmetric
Research Article

A flexible and smart shape memory alloy composite sheet based on efficient and bidirectional thermal management

, , &
Pages 315-329 | Received 18 Mar 2022, Accepted 28 Apr 2022, Published online: 22 May 2022

References

  • Mohd Jani J, Leary M, Subic A, et al. A review of shape memory alloy research, applications and opportunities. Mater Des. 2014;56:1078–1113.
  • Velvaluri P, Soor A, Plucinsky P, et al. Origami-inspired thin-film shape memory alloy devices. Sci Rep. 2021;11:10988.
  • Coral W, Rossi C, Curet OM, et al. Design and assessment of a flexible fish robot actuated by shape memory alloys. Bioinspir Biomim. 2018;13:056009.
  • Laschi C, Cianchetti M, Mazzolai B, et al. Soft robot arm inspired by the octopus. Adv Robot. 2012;26:709–727.
  • Yao T, Wang Y, Zhu B, et al. 4D printing and collaborative design of highly flexible shape memory alloy structures: a case study for a metallic robot prototype. Smart Mater Struct. 2020;30:015018.
  • Lee HT, Seichepine F, Yang GZ. Microtentacle actuators based on shape memory alloy smart soft composite. Adv Funct Mater. 2020;30:2002510.
  • Huang X, Kumar K, Jawed MK, et al. Chasing biomimetic locomotion speeds: creating untethered soft robots with shape memory alloy actuators. Sci Robot. 2018;3:eaau7557.
  • Zhakypov Z, Mori K, Hosoda K, et al. Designing minimal and scalable insect-inspired multi-locomotion millirobots. Nature. 2019;571:381–386.
  • B MN. Medical shape memory alloy applications—the market and its products. Mater Sci Eng A. 2004;378:16–23.
  • Li S, Kim Y-W, Choi M-S, et al. Superelasticity, microstructure and texture characteristics of the rapidly solidified Ti–Zr–Nb–Sn shape memory alloy fibers for biomedical applications. Mater Sci Eng A. 2022;831:142001.
  • Wang W, Ahn S-H. Shape memory alloy-based soft gripper with variable stiffness for compliant and effective grasping. Soft Robot. 2017;4:379–389.
  • Huang X, Kumar K, Jawed MK, et al. Highly dynamic shape memory alloy actuator for fast moving soft robots. Adv Mater Technol. 2019;4:1800540.
  • Oliveira JP, Shen J, Escobar JD, et al. Laser welding of H-phase strengthened Ni-rich NiTi-20Zr high temperature shape memory alloy. Mater Des. 2021;202:109533.
  • Shen J, Zeng Z, Nematollahi M, et al. In-situ synchrotron X-ray diffraction analysis of the elastic behaviour of martensite and H-phase in a NiTiHf high temperature shape memory alloy fabricated by laser powder bed fusion. Addit Manuf Lett. 2021;1:100003.
  • Liang C, Wang Y, Yao T, et al. A shape memory alloy-actuated soft crawling robot based on adaptive differential friction and enhanced antagonistic configuration. J Intell Mater Syst Struct. 2020;31:1920–1934.
  • Mc Caffrey C, Umedachi T, Jiang W, et al. Continuum robotic caterpillar with wirelessly powered shape memory alloy actuators. Soft Robot. 2020;7:700–710.
  • Motzki P, Gorges T, Kappel M, et al. High-speed and high-efficiency shape memory alloy actuation. Smart Mater Struct. 2018;27:075047.
  • Han M-W, Kim M-S, Ahn S-H. Shape memory textile composites with multi-mode actuations for soft morphing skins. Compos Part B Eng. 2020;198:108170.
  • Kim H-I, Han M-W, Song S-H, et al. Soft morphing hand driven by SMA tendon wire. Compos Part B Eng. 2016;105:138–148.
  • Ke WC, Oliveira JP, Cong BQ, et al. Multi-layer deposition mechanism in ultra high-frequency pulsed wire arc additive manufacturing (WAAM) of NiTi shape memory alloys. Addit Manuf. 2022;50:102513.
  • Paik JK, Hawkes E, Wood RJ. A novel low-profile shape memory alloy torsional actuator. Smart Mater Struct. 2010;19:125014.
  • She Y, Li C, Cleary J, et al. Design and fabrication of a soft robotic hand with embedded actuators and sensors. J Mech Robot Trans ASME. 2015;7:021007.
  • Thabuis A, Thomas S, Martinez T, et al. Designing compliant mechanisms composed of shape memory alloy and actuated by induction heating. Smart Mater Struct. 2021;30:095025.
  • Oliveira JP, Crispim B, Zeng Z, et al. Microstructure and mechanical properties of gas tungsten arc welded Cu-Al-Mn shape memory alloy rods. J Mater Process Technol. 2019;271:93–100.
  • Oliveira JP, Zeng Z, Berveiller S, et al. Laser welding of Cu-Al-Be shape memory alloys: microstructure and mechanical properties. Mater Des. 2018;148:145–152.
  • Oliveira JP, Zeng Z, Omori T, et al. Improvement of damping properties in laser processed superelastic Cu-Al-Mn shape memory alloys. Mater Des. 2016;98:280–284.
  • Mao Z, Xu Z, Wang Q. Shape memory alloy actuator with active cooling device and deflectable winglet application. Smart Mater Struct. 2020;29:105026.
  • Borboni A, Faglia R, Palpacelli M. 2014. Shape memory actuator with slider and slot layout and single fan cooling. 2014 IEEE/ASME 10th International Conference on Mechatronic and Embedded Systems and Applications (MESA). Senigallia, Italy; pp. 1–6.
  • Cheng SS, Kim Y, Desai JP. Modeling and characterization of shape memory alloy springs with water cooling strategy in a neurosurgical robot. J Intell Mater Syst Struct. 2017;28:2167–2183.
  • Du Y, Xu J, Paul B, et al. Flexible thermoelectric materials and devices. Appl Mater Today. 2018;12:366–388.
  • Luo Y, Takagi T, Maruyama S, et al. A shape memory alloy actuator using peltier modules and R-Phase transition. J Intell Mater Syst Struct. 2000;11:503–511.
  • Selden B, Cho K, Asada HH. Segmented shape memory alloy actuators using hysteresis loop control. Smart Mater Struct. 2006;15:642–652.
  • Lantada AD, Morgado PL, Sanz JLM, et al. Intelligent structures based on the improved activation of shape memory polymers using Peltier cells. Smart Mater Struct. 2010;19:055022.
  • Shi X-L, Zou J, Chen Z-G. Advanced thermoelectric design: from materials and structures to devices. Chem Rev. 2020;120:7399–7515.
  • Kim CS, Lee GS, Choi H, et al. Structural design of a flexible thermoelectric power generator for wearable applications. Appl Energy. 2018;214:131–138.
  • Hong S, Gu Y, Seo JK, et al. Wearable thermoelectrics for personalized thermoregulation. Sci Adv. 2019;5:eaaw0536.
  • Dargusch M, Liu W-D, Chen Z-G. Thermoelectric generators: alternative power supply for wearable electrocardiographic systems. Adv Sci. 2020;7:2001362.
  • Bahk J-H, Fang H, Yazawa K, et al. Flexible thermoelectric materials and device optimization for wearable energy harvesting. J Mater Chem C. 2015;3:10362–10374.
  • Kim S, Kim T, Kim CS, et al. two-dimensional thermal haptic module based on a flexible thermoelectric device. Soft Robot. 2020;7:736–742.
  • Kim CS, Oh OK, Choi H, et al. Variable rigidity module with a flexible thermoelectric device for bidirectional temperature control. Soft Robot. 2021;8:662–672.
  • Liu Y, Liu Y, Van Humbeeck J. Two-way shape memory effect developed by martensite deformation in NiTi. Acta Mater. 1998;47:199–209.
  • Min G, Rowe DM. Improved model for calculating the coefficient of performance of a Peltier module. Energy Convers Manag. 2000;41:163–171.
  • Thrasher MA. 1992. Thermal cycling of shape memory alloy wires using semiconductor heat pump modules. First European Conference on Smart Structures and Materials. Glasgow, United Kingdom; p. 39.
  • Bhattacharyya A, Lagoudas DC, Wang Y, et al. On the role of thermoelectric heat transfer in the design of SMA actuators: theoretical modeling and experiment. Smart Mater Struct. 1995;4:252–263.
  • Elghool A, Basrawi F, Ibrahim TK, et al. A review on heat sink for thermo-electric power generation: classifications and parameters affecting performance. Energy Convers Manag. 2017;134:260–277.
  • Liang C, Rogers CA. One-Dimensional Thermomechanical Constitutive Relations for Shape Memory Materials. J Intell Mater Syst Struct. 1997;8:285–302.