Year 2025,
Volume: 10 Issue: 3, 963 - 981, 25.09.2025
Gökberk Karadirek
,
Gamze Taylan
,
Tarık Baykara
,
Hüseyin Utku Helvacı
References
-
[1] Wang J, Azam W. Natural resource scarcity, fossil fuel energy consumption, and total greenhouse gas emissions in top emitting countries. Geoscience Frontiers. 2024; 15: 101757.
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[2] Holechek JL, Geli HME, Sawalhah MN, Valdez R. A global assessment: can renewable energy replace fossil fuels by 2050? Sustainability. 2022; 14: 4792.
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[3] Deshmukh M, Sameeroddin M, Abdul D, Sattar MA. Renewable energy in the 21st century: a review. Materials Today: Proceedings. 2023; 80: 1756–1759.
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[4] Aridi R, Faraj J, Ali S, Lemenand T. A comprehensive review on hybrid heat recovery systems: classifications, applications, pros and cons, and new systems. Renewable and Sustainable Energy Reviews. 2022; 167: 112669.
-
[5] Riffat SB, Ma X. Thermoelectrics: A review of present and potential applications. Applied Thermal Engineering. 2003; 23: 913–935.
-
[6] Meng JH, Gao DY, Liu Y, Zhang K, Lu G. Heat transfer mechanism and structure design of phase change materials to improve thermoelectric device performance. Energy. 2022; 245: 123332.
-
[7] Kandi RP, Sudharmini MM, Suryan A, Nižetić S. State of the art and future prospects for TEG‑PCM systems: A review. Energy for Sustainable Development. 2023; 74: 328–348.
-
[8] Pandey R, Thapa P, Kumar V, Zhu Y, Wang N, Bystrzejewski M, Tiwari SK. Updates in phase change materials for thermoelectric devices: status and challenges. Materialia. 2022; 21: 101357.
-
[9] Liu A, Xie H, Wu Z, Wang Y. Advances and outlook of TE‑PCM system: a review. Carbon Neutrality. 2022; 1: 20.
-
[10] Jaworski M, Bednarczyk M, Czachor M. Experimental investigation of thermoelectric generator (TEG) with PCM module. Applied Thermal Engineering. 2016; 96: 527–533.
-
[11] Tuoi TTK, Van Toan N, Ono T. Theoretical and experimental investigation of a thermoelectric generator (TEG) integrated with a phase change material (PCM) for harvesting energy from ambient temperature changes. Energy Reports. 2020; 6: 2022–2029.
-
[12] Sui X, Huang S, Xu D, Li W, Zhao Z. Experimental investigation of factors affecting two‑stage thermoelectric generator integrated with phase change materials. AIP Advances. 2021; 11: 105119.
-
[13] Elgendi M, Tamimi JAL, Alfalahi A, Alkhoori D, Alshanqiti M, Aladawi A. Wall panels using thermoelectric generators for sustainable cities and communities: a mini‑review. In: IOP Conference Series: Earth and Environmental Science. 2022; 1074: 012003.
-
[14] Byon YS, Jeong JW. Annual energy harvesting performance of a phase change material‑integrated thermoelectric power generation block in building walls. Energy and Buildings. 2020; 228: 110470.
-
[15] Cai Y, Hong BH, Zhuang SQ, An RB, Wu WX, Zhao FY. Numerical analysis of a solar driven thermoelectric generator brick with phase change materials: performance evaluation and parametric investigations. Applied Thermal Engineering. 2022; 214: 118879.
-
[16] Ahmed R, Galal AIA, El‑Sharkawy MR. Waste heat recovery for hybrid electric vehicles using thermoelectric generation system. Journal of Advanced Engineering Trends. 2020; 38(2): (173-184).
-
[17] Barma MC, Riaz M, Saidur R, Long BD. Waste heat recovery by thermoelectric generator from thermal oil heater exhaust. International Journal of Electrical Energy. 2015; 3(4): 235–238.
-
[18] Wang Y, Dai C, Wang S. Theoretical analysis of a thermoelectric generator using exhaust gas of vehicles as heat source. Applied Energy. 2013; 112: 1171–1180.
-
[19] Huang K, Yan Y, Wang G, Li B. Improving transient performance of thermoelectric generator by integrating phase change material. Energy. 2021; 219: 119648.
-
[20] Asadi M, Mohammadiun M, Bonab MHD, Mohammadiun H, Yousefi E. Efficient waste heat management using hybrid thermoelectric systems with phase change material and porous foam for sustainable energy conversion. Energy. 2025; 322: 135600.
-
[21] Demir ME, Erden HS. Effective energy use and passive cooling in data centers using heat pipes and PCM‑integrated TEG systems. Journal of Energy Storage. 2025; 122: 116625.
-
[22] Kang YK, Lee SJ, Kim S, Nam Y, Jeong JW. Performance analysis of a hybrid energy harvester incorporating a thermoelectric generator and phase‑change material through annual experiments. Renewable Energy. 2025; 242: 122464.
-
[23] Yang H, Li M, Wang Z, Ren F, Yang Y, Ma B, et al. Performance optimization for a novel two‑stage thermoelectric generator with different PCMs embedding modes. Energy. 2023; 281: 128307.
-
[24] Najjar YSH, Kseibi MM. Heat transfer and performance analysis of thermoelectric stoves. Applied Thermal Engineering. 2016; 102: 1045–1058.
-
[25] Punin W, Maneewan S, Punlek C. Heat transfer characteristics of a thermoelectric power generator system for low‑grade waste heat recovery from the sugar industry. Heat and Mass Transfer. 2019; 55: 979–991.
-
[26] Byon YS, Lim H, Kang YK, Yoon SY, Jeong JW. Passive generation from a novel thermoelectric energy harvesting system model integrated with phase change material. In: E3S Web of Conferences. 2019; 111: 03060.
-
[27] Bejan A, Labihi A, Croitoru CV, Catalina T, Chehouani H, Benhamou B. Experimental investigation of the charge/discharge process for an organic PCM macroencapsulated in an aluminium rectangular cavity. In: E3S Web of Conferences. 2018; 32: 01004.
-
[28] Peng H, Guo W, Feng S, Shen Y. A novel thermoelectric energy harvester using gallium as phase change material for spacecraft power application. Applied Energy. 2022; 322: 119548.
-
[29] Zhu W, Tu Y, Deng Y. Multi‑parameter optimization design of thermoelectric harvester based on phase change material for space generation. Applied Energy. 2018; 228: 873–880.
-
[30] Rejeb O, Lamrani B, Lamba R, Kousksou T, Salameh T, Jemni A, Hamid AK, Bettayeb M, Ghenai C. Numerical investigations of concentrated photovoltaic thermal system integrated with thermoelectric power generator and phase change material. Journal of Energy Storage. 2023; 62: 106820.
-
[31] Karthick K, Suresh S, Joy GC, Dhanuskodi R. Experimental investigation of solar reversible power generation in thermoelectric generator (TEG) using thermal energy storage. Energy for Sustainable Development. 2019; 48: 107–114.
-
[32] Acır A, Çinici OK. Experimental investigation of a thermal energy storage unit integrated with thermoelectric generators under solar radiation. Solar Energy. 2023; 265: 112028.
Experimental performance evaluation of phase change material integrated thermoelectric generator
Year 2025,
Volume: 10 Issue: 3, 963 - 981, 25.09.2025
Gökberk Karadirek
,
Gamze Taylan
,
Tarık Baykara
,
Hüseyin Utku Helvacı
Abstract
Increasing energy demands have created an urgent need to explore alternative energy solutions. Waste heat, commonly lost in energy production, can be effectively utilised through thermoelectric generators (TEGs). These devices generate electricity when a temperature difference is employed across a thermoelectric material. The efficiency of TEGs can be significantly improved by combining them with Phase Change Materials (PCMs). PCMs help maintain a steady temperature gradient over a longer period, leading to better system efficiency and power output. The goal of this study is to experimentally evaluate the thermal and electrical performance of TEGs integrated with PCMs for efficient waste heat recovery at low temperatures. Two paraffin-based PCMs with distinct thermophysical properties were used to assess their performance during charging and discharging cycles. The results showed that the PCM-1-TEG system achieved an average power output of 0.27 W and an efficiency of 1.11 % during charging, while the PCM-2-TEG system produced 0.28 W and an efficiency of 0.8 %. However, both systems experienced a sharp drop in power and efficiency as the stored energy diminished. During the discharge phase, PCM-1 delivered an average power output and efficiency of 0.03 W and 0.3 %, while PCM-2 achieved 0.029 W and 0.31 %. The selected PCMs enabled continued electricity generation for up to 180 minutes after external heat was removed, highlighting their role in stabilizing the thermal gradient and sustaining power output during discharge. Based on the comparative performance of two PCMs, the results suggest that phase change temperature range and latent heat capacity significantly influence thermal buffering and electrical output behavior. Therefore, these properties should be considered when selecting PCMs for real-world waste heat applications.
References
-
[1] Wang J, Azam W. Natural resource scarcity, fossil fuel energy consumption, and total greenhouse gas emissions in top emitting countries. Geoscience Frontiers. 2024; 15: 101757.
-
[2] Holechek JL, Geli HME, Sawalhah MN, Valdez R. A global assessment: can renewable energy replace fossil fuels by 2050? Sustainability. 2022; 14: 4792.
-
[3] Deshmukh M, Sameeroddin M, Abdul D, Sattar MA. Renewable energy in the 21st century: a review. Materials Today: Proceedings. 2023; 80: 1756–1759.
-
[4] Aridi R, Faraj J, Ali S, Lemenand T. A comprehensive review on hybrid heat recovery systems: classifications, applications, pros and cons, and new systems. Renewable and Sustainable Energy Reviews. 2022; 167: 112669.
-
[5] Riffat SB, Ma X. Thermoelectrics: A review of present and potential applications. Applied Thermal Engineering. 2003; 23: 913–935.
-
[6] Meng JH, Gao DY, Liu Y, Zhang K, Lu G. Heat transfer mechanism and structure design of phase change materials to improve thermoelectric device performance. Energy. 2022; 245: 123332.
-
[7] Kandi RP, Sudharmini MM, Suryan A, Nižetić S. State of the art and future prospects for TEG‑PCM systems: A review. Energy for Sustainable Development. 2023; 74: 328–348.
-
[8] Pandey R, Thapa P, Kumar V, Zhu Y, Wang N, Bystrzejewski M, Tiwari SK. Updates in phase change materials for thermoelectric devices: status and challenges. Materialia. 2022; 21: 101357.
-
[9] Liu A, Xie H, Wu Z, Wang Y. Advances and outlook of TE‑PCM system: a review. Carbon Neutrality. 2022; 1: 20.
-
[10] Jaworski M, Bednarczyk M, Czachor M. Experimental investigation of thermoelectric generator (TEG) with PCM module. Applied Thermal Engineering. 2016; 96: 527–533.
-
[11] Tuoi TTK, Van Toan N, Ono T. Theoretical and experimental investigation of a thermoelectric generator (TEG) integrated with a phase change material (PCM) for harvesting energy from ambient temperature changes. Energy Reports. 2020; 6: 2022–2029.
-
[12] Sui X, Huang S, Xu D, Li W, Zhao Z. Experimental investigation of factors affecting two‑stage thermoelectric generator integrated with phase change materials. AIP Advances. 2021; 11: 105119.
-
[13] Elgendi M, Tamimi JAL, Alfalahi A, Alkhoori D, Alshanqiti M, Aladawi A. Wall panels using thermoelectric generators for sustainable cities and communities: a mini‑review. In: IOP Conference Series: Earth and Environmental Science. 2022; 1074: 012003.
-
[14] Byon YS, Jeong JW. Annual energy harvesting performance of a phase change material‑integrated thermoelectric power generation block in building walls. Energy and Buildings. 2020; 228: 110470.
-
[15] Cai Y, Hong BH, Zhuang SQ, An RB, Wu WX, Zhao FY. Numerical analysis of a solar driven thermoelectric generator brick with phase change materials: performance evaluation and parametric investigations. Applied Thermal Engineering. 2022; 214: 118879.
-
[16] Ahmed R, Galal AIA, El‑Sharkawy MR. Waste heat recovery for hybrid electric vehicles using thermoelectric generation system. Journal of Advanced Engineering Trends. 2020; 38(2): (173-184).
-
[17] Barma MC, Riaz M, Saidur R, Long BD. Waste heat recovery by thermoelectric generator from thermal oil heater exhaust. International Journal of Electrical Energy. 2015; 3(4): 235–238.
-
[18] Wang Y, Dai C, Wang S. Theoretical analysis of a thermoelectric generator using exhaust gas of vehicles as heat source. Applied Energy. 2013; 112: 1171–1180.
-
[19] Huang K, Yan Y, Wang G, Li B. Improving transient performance of thermoelectric generator by integrating phase change material. Energy. 2021; 219: 119648.
-
[20] Asadi M, Mohammadiun M, Bonab MHD, Mohammadiun H, Yousefi E. Efficient waste heat management using hybrid thermoelectric systems with phase change material and porous foam for sustainable energy conversion. Energy. 2025; 322: 135600.
-
[21] Demir ME, Erden HS. Effective energy use and passive cooling in data centers using heat pipes and PCM‑integrated TEG systems. Journal of Energy Storage. 2025; 122: 116625.
-
[22] Kang YK, Lee SJ, Kim S, Nam Y, Jeong JW. Performance analysis of a hybrid energy harvester incorporating a thermoelectric generator and phase‑change material through annual experiments. Renewable Energy. 2025; 242: 122464.
-
[23] Yang H, Li M, Wang Z, Ren F, Yang Y, Ma B, et al. Performance optimization for a novel two‑stage thermoelectric generator with different PCMs embedding modes. Energy. 2023; 281: 128307.
-
[24] Najjar YSH, Kseibi MM. Heat transfer and performance analysis of thermoelectric stoves. Applied Thermal Engineering. 2016; 102: 1045–1058.
-
[25] Punin W, Maneewan S, Punlek C. Heat transfer characteristics of a thermoelectric power generator system for low‑grade waste heat recovery from the sugar industry. Heat and Mass Transfer. 2019; 55: 979–991.
-
[26] Byon YS, Lim H, Kang YK, Yoon SY, Jeong JW. Passive generation from a novel thermoelectric energy harvesting system model integrated with phase change material. In: E3S Web of Conferences. 2019; 111: 03060.
-
[27] Bejan A, Labihi A, Croitoru CV, Catalina T, Chehouani H, Benhamou B. Experimental investigation of the charge/discharge process for an organic PCM macroencapsulated in an aluminium rectangular cavity. In: E3S Web of Conferences. 2018; 32: 01004.
-
[28] Peng H, Guo W, Feng S, Shen Y. A novel thermoelectric energy harvester using gallium as phase change material for spacecraft power application. Applied Energy. 2022; 322: 119548.
-
[29] Zhu W, Tu Y, Deng Y. Multi‑parameter optimization design of thermoelectric harvester based on phase change material for space generation. Applied Energy. 2018; 228: 873–880.
-
[30] Rejeb O, Lamrani B, Lamba R, Kousksou T, Salameh T, Jemni A, Hamid AK, Bettayeb M, Ghenai C. Numerical investigations of concentrated photovoltaic thermal system integrated with thermoelectric power generator and phase change material. Journal of Energy Storage. 2023; 62: 106820.
-
[31] Karthick K, Suresh S, Joy GC, Dhanuskodi R. Experimental investigation of solar reversible power generation in thermoelectric generator (TEG) using thermal energy storage. Energy for Sustainable Development. 2019; 48: 107–114.
-
[32] Acır A, Çinici OK. Experimental investigation of a thermal energy storage unit integrated with thermoelectric generators under solar radiation. Solar Energy. 2023; 265: 112028.