Dynamic Analytical and Experimental Study of Wearable Thermoelectric Devices for Thermal Tactile Feedback
Abstract
1. Introduction
2. Dynamic Thermal Conduction Model for WTEDs Featuring Nickel Foam-Reinforced Hydrogel Heat Sink
2.1. Model Formulation
2.2. Analytical Temperature Solutions of the Skin–WTED System
3. Numerical Results and Discussions
3.1. Experimental Validation of the Analytical Model
3.2. Dynamic Thermal Response of the Skin–WTED System
3.3. Application of the Model for Thermal Tactile Feedback
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| Abbreviation | |
| AM | Acrylamide |
| AR | Augmented reality |
| DPL | Dual-phase lag |
| FPCB | Flexible printed circuit board |
| MAE | Mean absolute error |
| MBA | Methylenebisacrylamide |
| PCM | Phase change material |
| PCCM | Phase-change composite material |
| PMMA | Polymethyl methacrylate |
| TED | Thermoelectric device |
| TSLs | Thermosensitive liposomes |
| VR | Virtual reality |
| Subscripts | |
| a | Ambient environment |
| B | Flexible printed circuit board |
| b | Blood |
| c1 | Contact interface between the electrode and graphene paper |
| c2 | Contact interface between the graphene paper and hydrogel heat sink |
| ct | Contact thermal |
| f | Environmental convection |
| gra | Graphene paper |
| Hy | Hydrogel |
| m | Metabolic heat |
| Ni | Nickel foam |
| Ni-hy | Nickel foam–hydrogel composite substrate layer |
| p | Polyacrylamide |
| S | Core body temperature |
| w | Water |
| Symbol | Description |
| A | Cross-sectional area (mm2) |
| c | Specific heat (J/kg/K) |
| H | Height (mm) or microhardness (MPa) |
| h | Convection coefficient (W/m2 K) |
| I | Current (A) |
| K | Thermal conductance (W/K) |
| m | Mass (g) |
| P | Contact pressure (kPa) or perimeter (mm) |
| Q | Heat flux (W) |
| q | Metabolic heat (W/m3) |
| R | Electric resistance (Ω) |
| r | thermal resistance (K/W) |
| T | Temperature (K) |
| t | Time (s) |
| V | Volume (m3) |
| Greek letters | |
| Seebeck coefficient (V/K) | |
| Asperity slope (rad) | |
| Surface roughness (μm) | |
| Heat conductivity (W/mK) | |
| Density (kg/m3) | |
| Electric conductivity (S/m) | |
| Thomson coefficient (V/K) or phase lag coefficients (s) | |
| Transient temperature solutions (K) | |
| Volume fraction (%) | |
| Perfusion rate of biological tissue (mL/mL/s) | |
| Porosity (%) | |
References
- Patel, S.; Rao, Z.; Yang, M.; Yu, C.J. Wearable haptic feedback interfaces for augmenting human touch. Adv. Funct. Mater. 2026, 36, 2417906. [Google Scholar] [CrossRef] [Scilit]
- Lee, D.Y.; Jeong, S.H.; Cohen, A.J.; Vogt, D.M.; Kollosche, M.; Lansberry, G.; Mengüç, Y.; Israr, A.; Clarke, D.R.; Wood, R.J. A wearable textile-embedded dielectric elastomer actuator haptic display. Soft Robot. 2022, 9, 1186–1197. [Google Scholar] [CrossRef] [Scilit]
- Frisoli, A.; Leonardis, D. Wearable haptics for virtual reality and beyond. Nat. Rev. Electr. Eng. 2024, 1, 666–679. [Google Scholar] [CrossRef] [Scilit]
- Zhao, Z.; Chen, Q.; Du, S. Dual-functional flexible pressure sensors enabled by MXene/Fe nanowires conductive networks. Sens. Actuators A Phys. 2025, 394, 116982. [Google Scholar] [CrossRef] [Scilit]
- Bolanowski, J.S.J.; Gescheider, G.A.; Verrillo, R.T.; Checkosky, C.M. Four channels mediate the mechanical aspects of touch. J. Acoust. Soc. Am. 1988, 84, 1680–1694. [Google Scholar] [CrossRef] [Scilit]
- Oh, J.; Kim, S.; Lee, S.; Jeong, S.; Ko, S.H.; Bae, J. A liquid metal based multimodal sensor and haptic feedback device for thermal and tactile sensation generation in virtual reality. Adv. Funct. Mater. 2021, 31, 2007772. [Google Scholar] [CrossRef] [Scilit]
- Yu, X.; Xie, Z.; Yu, Y.; Lee, J.; Vazquez-Guardado, A.; Luan, H.; Ruban, J.; Ning, X.; Akhtar, A.; Li, D.; et al. Skin-integrated wireless haptic interfaces for virtual and augmented reality. Nature 2019, 575, 473–479. [Google Scholar] [CrossRef] [Scilit]
- Corniani, G.; Saal, H.P. Tactile innervation densities across the whole body. J. Neurophysiol. 2020, 124, 1229–1240. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cogan, S.F. Neural stimulation and recording electrodes. Annu. Rev. Biomed. Eng. 2008, 10, 275–309. [Google Scholar] [CrossRef] [Scilit]
- Strong, R.M.; Troxel, D.E. An electrotactile display. IEEE Trans. Man-Mach. Syst. 2007, 11, 72–79. [Google Scholar] [CrossRef] [Scilit]
- Kim, J.H.; Vázquez-Guardado, A.; Luan, H.; Rogers, J.A. A wirelessly programmable, skin-integrated thermo-haptic stimulator system for virtual reality. Proc. Natl. Acad. Sci. USA 2024, 121, e2404007121. [Google Scholar] [CrossRef] [Scilit]
- Park, M.; Yoo, J.Y.; Yang, T.; Rogers, J.A. Skin-integrated systems for power efficient, programmable thermal sensations across large body areas. Proc. Natl. Acad. Sci. USA 2023, 120, e2217828120. [Google Scholar] [CrossRef] [Scilit]
- Lee, J.; Kim, D.; Sul, H.; Ko, S.H. Thermo-haptic materials and devices for wearable virtual and augmented reality. Adv. Funct. Mater. 2021, 31, 2007376. [Google Scholar] [CrossRef] [Scilit]
- Lee, Y.; Park, J.; Choe, A.; Shin, Y.E.; Kim, J.; Myoung, J.; Lee, S.; Lee, Y.; Kim, Y.-K.; Yi, S.W.; et al. Flexible pyroresistive graphene composites for artificial thermosensation differentiating materials and solvent types. ACS Nano 2022, 16, 1208–1219. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ho, H.N. Material recognition based on thermal cues. Mechanisms and Applications. Temperature 2018, 5, 36–55. [Google Scholar]
- Kim, S.W.; Kim, S.H.; Kim, C.S.; Yi, K.; Kim, J.H.; Cho, B.J.; Cha, Y. Thermal display glove for interacting with virtual reality. Sci. Rep. 2020, 10, 11403. [Google Scholar] [CrossRef] [Scilit]
- Osborn, L.E.; Venkatasubramanian, R.; Himmtann, M.; Moran, C.W.; Pierce, J.M.; Gajendiran, P.; Wormley, J.M.; Ung, R.J.; Nguyen, H.H.; Crego, A.C.G.; et al. Evoking natural thermal perceptions using a thin-film thermoelectric device with high cooling power density and speed. Nat. Biomed. Eng. 2024, 8, 1004–1017. [Google Scholar] [CrossRef] [Scilit]
- Liu, P.; Li, Y.; Xu, Y.; Bao, L.; Wang, L.; Pan, J.; Zhang, Z.; Sun, X.; Peng, H. Stretchable and energy-efficient heating carbon nanotube fiber by designing a hierarchically helical structure. Small 2018, 14, 1702926. [Google Scholar] [CrossRef] [Scilit]
- Guo, H.; Lu, L.; Hatton, F.L.; Xu, L.; Yu, E.; Peijs, T.; Bilotti, E.; Zhang, H.; Liu, Y. Wearable body temperature sensing with autonomous self-regulated Joule heating and passive cooling for healthcare applications. Adv. Funct. Mater. 2025, 35, 2417961. [Google Scholar] [CrossRef] [Scilit]
- Sun, Z.; Zhu, M.; Shan, X.; Lee, C. Augmented tactile-perception and haptic-feedback rings as human-machine interfaces aiming for immersive interactions. Nat. Commun. 2022, 13, 5224. [Google Scholar] [CrossRef] [Scilit]
- Hong, S.; Lee, H.; Lee, J.; Kwon, J.; Han, S.; Suh, Y.D.; Cho, H.; Shin, J.; Yeo, J.; Ko, S.H. Highly stretchable and transparent metal nanowire heater for wearable electronics applications. Adv. Mater. 2015, 27, 4744–4751. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Basiri, M.; Ebadi, S.V.; Semnani, D. High-performance MXene/polyaniline-coated cotton fabrics: Advanced Joule heating wearable heaters with strain sensing capability. Sens. Actuators A Phys. 2025, 389, 116523. [Google Scholar] [CrossRef] [Scilit]
- Wu, G.; Zhang, Q.; Tan, X.; Fu, Y.; Guo, Z.; Zhang, Z.; Sun, Q.; Liu, Y.; Shi, H.; Li, J.; et al. Bi2Te3-based thermoelectric modules for efficient and reliable low-grade heat recovery. Adv. Mater. 2024, 36, 2400285. [Google Scholar] [CrossRef] [Scilit]
- Dong, G.; Feng, J.; Qiu, G. Oriented Bi2Te3-based films enabled high performance planar thermoelectric cooling device for hot spot elimination. Nat. Commun. 2024, 15, 9695. [Google Scholar] [CrossRef] [Scilit]
- He, B.; Chen, W.; Tan, X.; Lu, S.; Zhang, J.; Li, X. Investigation of natural convection characteristics in the molding chamber of a 3-D printer cooled by thermoelectric cooling modules. Int. J. Mech. Sci. 2022, 224, 107315. [Google Scholar] [CrossRef] [Scilit]
- Rowe, D.M. CRC Handbook of Thermoelectrics; CRC Press: Boca Raton, FL, USA, 2018. [Google Scholar]
- He, M.; Liu, H.; Shao, L.; Li, B.; Wu, Y. Does back cooling improve human thermal comfort in warm environments? A device for heat conduction by the semiconductor Peltier effect. Build. Simul. 2024, 17, 1253–1271. [Google Scholar] [CrossRef] [Scilit]
- Wakayama, Y.; Zhou, H.; Matoba, F.; Yamada, T. Universal measurement protocol and cell designs for liquid-based active cooling by the electrochemical Peltier effect. Adv. Energy Mater. 2025, 15, 2405181. [Google Scholar] [CrossRef] [Scilit]
- Kimura, Y.; Utsumi, K.; Tohmyoh, H. Experimental relationship between the Seebeck and Peltier effects in thermoelectric modules based on Fe and Al metals. Appl. Therm. Eng. 2024, 255, 124009. [Google Scholar] [CrossRef] [Scilit]
- Maeda, T.; Kurahashi, T. Thermodule: Wearable and modular thermal feedback system based on a wireless platform. In Proceedings of the 10th Augmented Human International Conference, Munich, Germany, 18–21 March 2019; Gellersen, H., Olwal, A., Eds.; ACM: New York, NY, USA, 2019; pp. 1–8. [Google Scholar]
- Khan, S.; Kim, J.; Acharya, S.; Kim, W. Review on the operation of wearable sensors through body heat harvesting based on thermoelectric devices. Appl. Phys. Lett. 2021, 118, 200501. [Google Scholar] [CrossRef] [Scilit]
- Tang, X.; Qi, C.; Sun, Q. Recent progress of biosensors based on thermoelectric effects for monitoring physical activity and environment monitoring. Soft Sci. 2025, 5, 11. [Google Scholar] [CrossRef] [Scilit]
- Lee, S.; Jang, S.; Cha, Y. Soft wearable thermo+ touch haptic interface for virtual reality. iScience 2024, 27, 111303. [Google Scholar] [CrossRef] [Scilit]
- Yadav, P.; Dhariwal, N.; Sanger, A.; Kang, S.B.; Kumar, V. A review unveiling recent advances in the flexible-wearable futuristic thermoelectric device. Nano Energy 2025, 135, 110696. [Google Scholar] [CrossRef] [Scilit]
- Lee, Y.G.; Kim, J.; Kang, M.S.; Baek, S.H.; Kim, S.K.; Lee, S.M. Design and experimental investigation of thermoelectric generators for wearable applications. Adv. Mater. Technol. 2017, 2, 1600292. [Google Scholar] [CrossRef] [Scilit]
- Wijethunge, D.; Kim, D.; Kim, W. Simplified human thermoregulatory model for designing wearable thermoelectric devices. J. Phys. D Appl. Phys. 2018, 51, 055401. [Google Scholar] [CrossRef] [Scilit]
- Zhang, A.; Li, G.; Wang, B.; Wang, J. A theoretical model for wearable thermoelectric generators considering the effect of human skin. J. Electron. Mater. 2021, 50, 1514–1526. [Google Scholar] [CrossRef] [Scilit]
- Zhang, A.; Pang, D.; Wang, B.; Wang, J. Dynamic responses of wearable thermoelectric generators used for skin waste heat harvesting. Energy 2023, 262, 125621. [Google Scholar] [CrossRef] [Scilit]
- Enescu, D. Heat transfer mechanisms and contributions of wearable thermoelectrics to personal thermal management. Energies 2024, 17, 285. [Google Scholar] [CrossRef] [Scilit]
- Lee, D.; Park, H.; Park, G.; Kim, J.; Kim, H.; Cho, H.; Han, S.; Kim, W. Liquid-metal-electrode-based compact, flexible, and high-power thermoelectric device. Energy 2019, 188, 116019. [Google Scholar] [CrossRef] [Scilit]
- Gabardi, M.; Leonardis, D.; Solazzi, M.; Frisoli, A. Development of a miniaturized thermal module designed for integration in a wearable haptic device. In IEEE Haptics Symposium (HAPTICS), San Francisco, CA, USA, 25–28 March 2018; Kim, S., Choi, J., Eds.; Springer: Berlin/Heidelberg, Germany, 2018; pp. 100–105. [Google Scholar]
- Xia, Z.; Cao, W.; Sun, X.; Ding, Q.; Zhu, Z.; Zhou, W.; Yan, S.; Hou, Y.; Wang, Z. Performance study of wearable thermoelectric cooler with phase-change composite heat sink. Materials 2025, 18, 1576. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lan, Y.; Lu, J.; Li, J.; Wang, S. Effects of temperature-dependent thermal properties and the side leg heat dissipation on the performance of the thermoelectric generator. Energy 2022, 243, 123035. [Google Scholar] [CrossRef] [Scilit]
- Bjørk, R.; Christensen, D.V.; Eriksen, D.; Pryds, N. Analysis of the internal heat losses in a thermoelectric generator. Int. J. Therm. Sci. 2014, 85, 12–20. [Google Scholar] [CrossRef] [Scilit]
- Pang, D.; Zhang, A.; Wen, Z.; Wang, B.; Wang, J. Energy conversion efficiency of thermoelectric power generators with cylindrical legs. J. Energy Resour. Technol. 2022, 144, 032104. [Google Scholar] [CrossRef] [Scilit]
- Sun, D.; Shen, L.; Chen, H.; Jiang, B.; Jie, D.; Liu, H.; Yao, Y.; Tang, J. Modeling and analysis of the influence of Thomson effect on micro-thermoelectric coolers considering interfacial and size effects. Energy 2020, 196, 117116. [Google Scholar] [CrossRef] [Scilit]
- Nielsch, K.; He, R. Cooler breakthrough using the Thomson effect. Nat. Mater. 2025, 24, 8–9. [Google Scholar] [CrossRef] [Scilit]
- Huang, M.; Yen, R.; Wang, A. The influence of the Thomson effect on the performance of a thermoelectric cooler. Int. J. Heat Mass Transf. 2005, 48, 413–418. [Google Scholar] [CrossRef] [Scilit]
- Manikandan, S.; Kaushik, S.C. The influence of Thomson effect in the performance optimization of a two stage thermoelectric generator. Energy 2016, 100, 227–237. [Google Scholar] [CrossRef] [Scilit]
- Du, C.; Wen, C. Experimental investigation and numerical analysis for one-stage thermoelectric cooler considering Thomson effect. Int. J. Heat Mass Transf. 2011, 54, 4875–4884. [Google Scholar] [CrossRef] [Scilit]
- Zhang, A.; Pang, D.; Wang, B.; Lin, G.; Lou, J. Theoretical model for micro-thermoelectric coolers: Influence of coupled interfacial and Thomson effects on cooling performance. Appl. Therm. Eng. 2025, 258, 124750. [Google Scholar] [CrossRef] [Scilit]
- Pennes, H.H. Analysis of tissue and arterial blood temperatures in the resting human forearm. J. Appl. Physiol. 1998, 85, 5–34. [Google Scholar] [CrossRef] [Scilit]
- Chen, M.M.; Holmes, K.R. Microvascular contributions in tissue heat transfer. Ann. N. Y. Acad. Sci. 1980, 335, 137–150. [Google Scholar] [CrossRef] [Scilit]
- Antaki, P.J. New interpretation of non-Fourier heat conduction in processed meat. J. Heat Transf. 2005, 127, 189–193. [Google Scholar] [CrossRef] [Scilit]
- Tzou, D.Y. A unified field approach for heat conduction from macro-to micro-scales. J. Heat Transf. 1995, 117, 8–16. [Google Scholar] [CrossRef] [Scilit]
- Ma, J.; Yang, X.; Liu, S.; Sun, Y.; Yang, J. Exact solution of thermal response in a three-dimensional living bio-tissue subjected to a scanning laser beam. Int. J. Heat Mass Transf. 2018, 124, 1107–1116. [Google Scholar] [CrossRef] [Scilit]
- Ma, J.; Yang, X.; Sun, Y.; Yang, J. Theoretical investigation on the thermo-mechanical responses of the human skin during thermal therapy. Int. J. Mech. Sci. 2019, 161, 105041. [Google Scholar] [CrossRef] [Scilit]
- Namakshenas, P.; Mojra, A. Efficient drug delivery to hypoxic tumors using thermosensitive liposomes with encapsulated anti-cancer drug under high intensity pulsed ultrasound. Int. J. Mech. Sci. 2023, 237, 107818. [Google Scholar] [CrossRef] [Scilit]
- Zhu, H.; Zhang, A.; Pang, D.; Li, G.; Lou, J.; Huang, W. Dynamic energy conversion performance of wearable annular thermoelectric generators for harvesting human body heat. J. Electron. Mater. 2024, 53, 4094–4110. [Google Scholar] [CrossRef] [Scilit]
- Chen, W.; Shi, X.; Zou, J.; Chen, Z. Thermoelectric coolers: Progress, challenges, and opportunities. Small Methods 2022, 6, 2101235. [Google Scholar] [CrossRef] [Scilit]
- Ding, Q.; Sun, X.; Zhu, Z.; Yan, S.; Xia, Z.; Hou, Y.; Wang, Z. Long-lasting heat dissipation of flexible heat sinks for wearable thermoelectric devices. ACS Appl. Mater. Interfaces 2024, 16, 31228–31236. [Google Scholar] [CrossRef] [Scilit]
- Hyland, M.; Hunter, H.; Liu, J.; Veety, E.; Vashaee, D. Wearable thermoelectric generators for human body heat harvesting. Appl. Energy 2016, 182, 518–524. [Google Scholar] [CrossRef] [Scilit]
- Babaelahi, M.; Jafari, H. New optimum design for cooling system in thermoelectric thermal devices. Extrem. Mech. Lett. 2019, 27, 1–7. [Google Scholar] [CrossRef] [Scilit]
- Manikandan, S.; Selvam, C.; Pavan Sai Praful, P.; Lamba, R.; Kaushik, S.C.; Zhao, D.; Yang, R. A novel technique to enhance thermal performance of a thermoelectric cooler using phase-change materials. J. Therm. Anal. Calorim. 2020, 140, 1003–1014. [Google Scholar] [CrossRef] [Scilit]
- Yan, K.; Zhang, W.; Feng, X.; Zhao, W.; Wu, L.; Deng, Y. A high heat dissipation strategy based on a multi-scale porous hydrogel and heat sink exhibiting cooling capacity comparable to that of forced air convection but with zero energy consumption. Mater. Adv. 2024, 5, 3051–3057. [Google Scholar] [CrossRef] [Scilit]
- Yang, X.; Wang, P.; Tang, X.; Wang, Z.; Ye, J.; Duan, W.; Yue, Y.; Ci, T.; Liu, Y.; Ju, Y. Dual-modal hydrogels with synergistically enhanced mechanical-thermoelectric performance for intelligent wearable sensing and automotive temperature feedback systems. Nano Energy 2025, 139, 111057. [Google Scholar] [CrossRef] [Scilit]
- Zamengo, M.; Morikawa, J. Evaluation of cooling ability for a novel heat sink made of polyvinyl alcohol hydrogel. Int. J. Heat Mass Transf. 2019, 143, 118523. [Google Scholar] [CrossRef] [Scilit]
- Park, H.; Kim, D.; Eom, Y.; Wijethunge, D.; Hwang, J.; Kim, H.; Kim, W. Mat-like flexible thermoelectric system based on rigid inorganic bulk materials. J. Phys. D Appl. Phys. 2017, 50, 494006. [Google Scholar] [CrossRef] [Scilit]
- Pu, S.; Su, J.; Li, L.; Wang, H.; Chen, C.; Hu, X. Bioinspired sweating with temperature sensitive hydrogel to passively dissipate heat from high-end wearable electronics. Energy Convers. Manag. 2019, 180, 747–756. [Google Scholar] [CrossRef] [Scilit]
- Wang, H.; Wang, W.; Li, G.; Waktole, D.A.; Zuo, Z.; Jia, B.; Feng, H.; Wang, M.; Shao, S. High-performance flexible thermoelectric generator with hydrogel-copper foam cooling for self-powered wearable electronics. Case Stud. Therm. Eng. 2025, 74, 106835. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Y.; Gao, J.; Zhu, S.; Li, J.; Lai, H.; Peng, Y.; Miao, L. Wearable thermoelectric cooler based on a two-layer hydrogel/nickel foam heatsink with two-axis flexibility. ACS Appl. Mater. Interfaces 2022, 14, 15317–15323. [Google Scholar] [CrossRef] [Scilit]
- Yin, Y.; Li, M.; Li, Y.; Song, J. Skin pain sensation of epidermal electronic device/skin system considering non-Fourier heat conduction. J. Mech. Phys. Solids 2020, 138, 103927. [Google Scholar] [CrossRef] [Scilit]
- Pang, D.; Zhang, A.; Wang, B.; Li, G. Theoretical analysis of the thermoelectric generator considering surface to surrounding heat convection and contact resistance. J. Electron. Mater. 2019, 48, 211–219. [Google Scholar] [CrossRef] [Scilit]
- de Monte, F. Transient heat conduction in one-dimensional composite slab. A ‘natural’ analytic approach. Int. J. Heat Mass Transf. 2000, 43, 3607–3619. [Google Scholar] [CrossRef] [Scilit]
- Saggin, B.; Tarabini, M.; Lanfranchi, G. A device for the skin–contact thermal resistance measurement. IEEE Trans. Instrum. Meas. 2011, 61, 489–495. [Google Scholar] [CrossRef] [Scilit]
- Davies, B.; Martin, B. Numerical inversion of the Laplace transform: A survey and comparison of methods. J. Comput. Phys. 1979, 33, 1–32. [Google Scholar] [CrossRef] [Scilit]
- Kuhlman, K.L. Review of inverse Laplace transform algorithms for Laplace-space numerical approaches. Numer. Algorithms 2013, 63, 339–355. [Google Scholar] [CrossRef] [Scilit]
- Li, Y.; Shi, Y.; Luo, D. Impacts of distributed thermal and electric contact resistance on performance and geometric optimization of thermoelectric generators. Appl. Therm. Eng. 2024, 246, 122873. [Google Scholar] [CrossRef] [Scilit]
- Pawel, R.E.; Stansbury, E.E. The specific heat of copper, nickel and copper-nickel alloys. J. Phys. Chem. Solids 1965, 26, 607–613. [Google Scholar] [CrossRef] [Scilit]
- Hirata, Y.; Kato, Y.; Andoh, N.; Fujiwara, N.; Ito, R. Measurements of thermophysical properties of polyacrylamide gel used for electrophoresis. J. Chem. Eng. Jpn. 1993, 26, 143–147. [Google Scholar] [CrossRef] [Scilit]
- Ho, H.N.; Jones, L.A. Modeling the thermal responses of the skin surface during hand-object interactions. J. Biomech. Eng. 2008, 130, 021005. [Google Scholar] [CrossRef] [Scilit]
- MacRae, B.A.; Annaheim, S.; Spengler, C.M.; Rossi, R.M. Skin temperature measurement using contact thermometry: A systematic review of setup variables and their effects on measured values. Front. Physiol. 2018, 9, 29. [Google Scholar] [CrossRef] [Scilit]
- Liu, Y.; Cai, Z.; Pang, D.; Lou, J.; Li, G.; Wang, B.; Huang, W.M.; Zhang, A. Two-stage wearable thermoelectric devices integrated with nickel foam-enhanced hydrogel heat sinks for artificial thermal tactile feedback. Case Stud. Therm. Eng. 2026, 79, 107803. [Google Scholar] [CrossRef] [Scilit]









| Description | FPCB | Cu | |
|---|---|---|---|
| Height (mm) | 0.13 | 2.4 | 0.2 |
| Density (kg/m3) | 2255 | 7700 | - |
| Specific heat (J/kg/K) | 2684 | 200 | - |
| Thermal conductivity (W/mK) | 4 | 1.6 | 400 |
| Seebeck coefficient (μV/K) | - | 200 | - |
| Thomson coefficient (μV/K) | - | 80 | - |
| Electrical conductivity (105 S/m) | - | 1.1 | - |
| Heat convective coefficient (W/m2 K) | - | 10 | - |
| Description | Nickel Foam | Hydrogel | Hydrogel Heat Sink |
|---|---|---|---|
| Height (mm) | 2 | 5 | 7 |
| Density (kg/m3) | 350 | 1070 | 1100 |
| Specific heat (J/kg/K) | 440 | 3768 | 3752 |
| Thermal conductivity (W/mK) | 90 | 0.535 | 0.866 |
| Description | Values |
|---|---|
| Thickness(mm) | 2.5 |
| Density (kg/) | 971 |
| Specific heat (J/kg/K) | 2700 |
| Metabolic heat generation rate (W/) | 368.1 |
| Thermal conductivity (W/mK) | 0.244 |
| Phase lag parameter of heat flux (s) | 6.83 |
| Phase lag parameter of temperature gradient (s) | 17.04 |
| Surface roughness (μm) | 21.69 |
| Surface asperity slope (rad) | 0.3 |
| Microhardness (MPa) | 0.1225 |
| Contact pressure (kPa) | 1.6 |
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Cai, Z.; Zhang, A. Dynamic Analytical and Experimental Study of Wearable Thermoelectric Devices for Thermal Tactile Feedback. Micromachines 2026, 17, 694. https://doi.org/10.3390/mi17060694
Cai Z, Zhang A. Dynamic Analytical and Experimental Study of Wearable Thermoelectric Devices for Thermal Tactile Feedback. Micromachines. 2026; 17(6):694. https://doi.org/10.3390/mi17060694
Chicago/Turabian StyleCai, Zhijia, and Aibing Zhang. 2026. "Dynamic Analytical and Experimental Study of Wearable Thermoelectric Devices for Thermal Tactile Feedback" Micromachines 17, no. 6: 694. https://doi.org/10.3390/mi17060694
APA StyleCai, Z., & Zhang, A. (2026). Dynamic Analytical and Experimental Study of Wearable Thermoelectric Devices for Thermal Tactile Feedback. Micromachines, 17(6), 694. https://doi.org/10.3390/mi17060694

