基于旋转的管壳式潜热存储系统传热强化:从机理到应用

作者

  • 李智 能源工程学院, 浙江大学, 杭州市 310027, 浙江省, 中国
  • 方成栋 能源工程学院, 浙江大学, 杭州市 310027, 浙江省, 中国
  • 伍茜 材料成型集成技术与智造装备浙江省工程研究中心, 浙大城市学院, 杭州市 310015, 浙江省, 中国
  • 姜睿铖 能源工程学院, 浙江大学, 杭州市 310027, 浙江省, 中国
  • 俞小莉 能源工程学院, 浙江大学, 杭州市 310027, 浙江省, 中国
Article ID: 279
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DOI:

https://doi.org/10.18686/cncest279

关键词:

潜热储存; 相变材料; 强化传热; 旋转

摘要

潜热储能(LTES)是缓解能源来源与能源供应之间差异的重要储能技术,在太阳能利用、地热能利用和电力存储等许多领域都有着巨大的应用前景。然而,LTES系统受到大多数相变材料(PCM)导热系数低的困扰,威胁着其大规模商业应用。为了应对这一挑战,LTES系统的传热强化至关重要,并已在世界范围内进行了广泛的研究。对流传热强化技术,包括翅片、纳米颗粒和多种PCM,可以显著提高LTES系统的充放电速率。最近,基于旋转的方法应运而生,为LTES系统的传热强化提供了新的途径,世界各地的研究人员已经取得了许多成果。本研究对三种基于旋转的传热强化方法的机理和应用进行了简要综述,旨在深入了解这些新型传热强化方法并推动其未来的发展和应用。

参考

Li Z, Lu Y, Huang R, et al. Applications and technological challenges for heat recovery, storage and utilisation with latent thermal energy storage. Applied Energy. 2021; 283: 116277. doi: 10.1016/j.apenergy.2020.116277

Zhang Y, Xiao Y, Abuelgasim S, Liu C. A brief review of hydrogen production technologies. Clean Energy Science and Technology. 2024; 2(1): 117. doi: 10.18686/cest.v2i1.117

Jiang R, Zhi X, Qian G, Li Z, Yu X. Design and techno-economic analysis of a thermal battery for residential hot water supply under different charging modes. Journal of Energy Storage. 2024; 94: 112578. doi: 10.1016/j.est.2024.112578

Li Z, Yu X, Wang L, et al. Effects of fluctuating thermal sources on a shell-and-tube latent thermal energy storage during charging process. Energy. 2020; 199: 117400. doi: 10.1016/j.energy.2020.117400

Li Z, Lu Y, Huang R, et al. Parametric study on melting process of a shell-and-tube latent thermal energy storage under fluctuating thermal conditions. Applied Thermal Engineering. 2020; 180: 115898. doi: 10.1016/j.applthermaleng.2020.115898

Zheng J, Su Y, Wang W, et al. Hydrogen-electricity coupling energy storage systems: Models, applications, and deep reinforcement learning algorithms. Clean Energy Science and Technology. 2024; 2(1): 96. doi: 10.18686/cest.v2i1.96

Yu X, Zhang Z, Qian G, et al. Evaluation of PCM thermophysical properties on a compressed air energy storage system integrated with packed-bed latent thermal energy storage. Journal of Energy Storage. 2024; 81: 110519. doi: 10.1016/j.est.2024.110519

Li Z, Zhi X, Wu Z, et al. Role of different energy storage methods in decarbonizing urban distributed energy systems: A case study of thermal and electricity storage. Journal of Energy Storage. 2023; 73: 108931. doi: 10.1016/j.est.2023.108931

Shoeibi S, Jamil F, Parsa SM, et al. Recent advancements in applications of encapsulated phase change materials for solar energy systems: A state of the art review. Journal of Energy Storage. 2024; 94: 112401. doi: 10.1016/j.est.2024.112401

Li Z, Yu X, Wang L, et al. Comparative investigations on dynamic characteristics of basic ORC and cascaded LTES-ORC under transient heat sources. Applied Thermal Engineering. 2022; 207: 118197. doi: 10.1016/j.applthermaleng.2022.118197

Li Z, Wang L, Jiang R, et al. Experimental investigations on dynamic performance of organic Rankine cycle integrated with latent thermal energy storage under transient engine conditions. Energy. 2022; 246: 123413. doi: 10.1016/j.energy.2022.123413

Yu X, Li Z, Zhang Z, et al. Energy, exergy, economic performance investigation and multi-objective optimization of reversible heat pump-organic Rankine cycle integrating with thermal energy storage. Case Studies in Thermal Engineering. 2022; 38: 102321. doi: 10.1016/j.csite.2022.102321

Zhao Y, Huang J, Song J, Ding Y. Thermodynamic investigation of a Carnot battery based multi-energy system with cascaded latent thermal (heat and cold) energy stores. Energy. 2024; 296: 131148. doi: 10.1016/j.energy.2024.131148

Yu X, Chang J, Huang R, et al. Sensitivity analysis of thermophysical properties on PCM selection under steady and fluctuating heat sources: A comparative study. Applied Thermal Engineering. 2021; 186: 116527. doi: 10.1016/j.applthermaleng.2020.116527

Wu T, Wu D, Deng Y, et al. Three-dimensional network-based composite phase change materials: Construction, structure, performance and applications. Renewable and Sustainable Energy Reviews. 2024; 199: 114480. doi: 10.1016/j.rser.2024.114480

Jiang R, Yu X, Chang J, et al. Effects evaluation of fin layouts on charging performance of shell-and-tube LTES under fluctuating heat sources. Journal of Energy Storage. 2021; 44: 103428. doi: 10.1016/j.est.2021.103428

Zhang Y, Yang X, Zou S, et al. Enhancing the phase change material based shell-tube thermal energy storage units with unique hybrid fins. International Communications in Heat and Mass Transfer. 2024; 157: 107763. doi: 10.1016/j.icheatmasstransfer.2024.107763

Li Z, Baghaei Oskouei S, Fu G, et al. Enhanced power density during energy charging of a shell-and-tube thermal storage unit: Comparison between the inclusion of metal fins and foams. Journal of Energy Storage. 2022; 55: 105576. doi: 10.1016/j.est.2022.105576

Ji C, Waqas H, Liu D, et al. Melting performance improvement of phase change materials with thermal energy storage unit using nanoparticles. Case Studies in Thermal Engineering. 2024; 61: 104892. doi: 10.1016/j.csite.2024.104892

Shailesh K, Naresh Y, Banerjee J. Heat transfer performance of a novel PCM based heat sink coupled with heat pipe: An experimental study. Applied Thermal Engineering. 2023; 229: 120552. doi: 10.1016/j.applthermaleng.2023.120552

Wang Z, Zhu J, Wang M, Gao Q. Experimental study on heat transfer and storage of a heating system coupled with solar flat heat pipe and phase change material unit. Journal of Energy Storage. 2023; 73: 108971. doi: 10.1016/j.est.2023.108971

Liu J, Liu Z, Nie C. Phase transition enhancement through circumferentially arranging multiple phase change materials in a concentric tube. Journal of Energy Storage. 2021; 40: 102672. doi: 10.1016/j.est.2021.102672

Li M, Li M, Xue X, Li D. Optimization and design criterion of the shell-and-tube thermal energy storage with cascaded PCMs under the constraint of outlet threshold temperature. Renewable Energy. 2022; 181: 1371-1385. doi: 10.1016/j.renene.2021.09.086

Gao Y, Li Y, Chen X. Hygroscopic all-polymer composite for moisture management and evaporative cooling. Clean Energy Science and Technology. 2024; 2(1): 111. doi: 10.18686/cest.v2i1.111

Yang W, Zhang W, Chen J, Zhou J. Mono-functionalized pillar [n]arenes: Syntheses, host–guest properties and applications. Chinese Chemical Letters. 2024; 35(1): 108740. doi: 10.1016/j.cclet.2023.108740

Zhang R, Zhou J. Ultrafast-adsorption-kinetics molecular sieving of propylene from propane. Clean Energy Science and Technology. 2024; 2(2): 126. doi: 10.18686/cest.v2i2.126

Hu Y, Shi L, Zhang Z, et al. Magnetic regulating the phase change process of Fe3O4-paraffin wax nanocomposites in a square cavity. Energy Conversion and Management. 2020; 213: 112829. doi: 10.1016/j.enconman.2020.112829

Sheikholeslami M. Solidification of NEPCM under the effect of magnetic field in a porous thermal energy storage enclosure using CuO nanoparticles. Journal of Molecular Liquids. 2018; 263: 303-315. doi: 10.1016/j.molliq.2018.04.144

Luo K, Pérez AT, Wu J, et al. Efficient lattice Boltzmann method for electrohydrodynamic solid-liquid phase change. Physical Review E. 2019; 100(1): 013306. doi: 10.1103/PhysRevE.100.013306

Sun Z, Yang P, Luo K, Wu J. Experimental investigation on the melting characteristics of n-octadecane with electric field inside macrocapsule. International Journal of Heat and Mass Transfer. 2021; 173: 121238. doi: 10.1016/j.ijheatmasstransfer.2021.121238

Mahdi AH, Mussa MA. Comprehensive review of optimization of latent thermal energy storage systems using multiple parameters. Journal of Energy Storage. 2024; 86: 111120. doi: 10.1016/j.est.2024.111120

Shank K, Tiari S. A Review on Active Heat Transfer Enhancement Techniques within Latent Heat Thermal Energy Storage Systems. Energies. 2023; 16(10): 4165. doi: 10.3390/en16104165

Rashid FL, Rahbari A, Ibrahem RK, et al. Review of solidification and melting performance of phase change materials in the presence of magnetic field, rotation, tilt angle, and vibration. Journal of Energy Storage. 2023; 67: 107501. doi: 10.1016/j.est.2023.107501

Jiang R, Qian G, Li Z, et al. Progress and challenges of latent thermal energy storage through external field-dependent heat transfer enhancement methods. Energy. 2024; 304: 132101. doi: 10.1016/j.energy.2024.132101

Huang X, Li F, Li Z, et al. An in-depth study on melting performance of latent heat thermal energy storage system under rotation mechanism by fluctuating heat source. Solar Energy Materials and Solar Cells. 2023; 263: 112584. doi: 10.1016/j.solmat.2023.112584

Huang X, Li F, Guo J, et al. Design optimization on solidification performance of a rotating latent heat thermal energy storage system subject to fluctuating heat source. Applied Energy. 2024; 362: 122997. doi: 10.1016/j.apenergy.2024.122997

Huang X, Li F, Li Y, et al. Solar photothermal utilization of coupled latent heat storage: A numerical and optimization study. Solar Energy Materials and Solar Cells. 2024; 271: 112864. doi: 10.1016/j.solmat.2024.112864

Kurnia JC, Sasmito AP, Ping SI. Investigation of Heat Transfer on a Rotating Latent Heat Energy Storage. Energy Procedia. 2017; 105: 4173-4178. doi: 10.1016/j.egypro.2017.03.887

Kurnia JC, Sasmito AP. Numerical investigation of heat transfer performance of a rotating latent heat thermal energy storage. Applied Energy. 2018; 227: 542-554. doi: 10.1016/j.apenergy.2017.08.087

Yu X, Jiang R, Li Z, et al. Synergistic improvement of melting rate and heat storage capacity by a rotation-based method for shell-and-tube latent thermal energy storage. Applied Thermal Engineering. 2023; 219: 119480. doi: 10.1016/j.applthermaleng.2022.119480

Soltani H, Soltani M, Karimi H, Nathwani J. Heat transfer enhancement in latent heat thermal energy storage unit using a combination of fins and rotational mechanisms. International Journal of Heat and Mass Transfer. 2021; 179: 121667. doi: 10.1016/j.ijheatmasstransfer.2021.121667

Huang X, Li F, Li Y, et al. Optimization of melting performance of a heat storage tank under rotation conditions: Based on taguchi design and response surface method. Energy. 2023; 271: 127100. doi: 10.1016/j.energy.2023.127100

Huang X, Li F, Li Y, et al. Investigation and optimization on melting performance of a triplex-tube heat storage tank by rotational mechanism. International Journal of Heat and Mass Transfer. 2023; 205: 123892. doi: 10.1016/j.ijheatmasstransfer.2023.123892

Huang X, Li F, Li Y, et al. Influence of different rotational speeds of inner and outer tubes on phase change heat storage: An optimization study. Applied Thermal Engineering. 2023; 233: 121154. doi: 10.1016/j.applthermaleng.2023.121154

Huang X, Li F, Lu L, et al. Depth optimization of solidification properties of a latent heat energy storage unit under constant rotation mechanism. Energy and Buildings. 2023; 290: 113099. doi: 10.1016/j.enbuild.2023.113099

Huang X, Li F, Xiao T, et al. Investigation and optimization of solidification performance of a triplex-tube latent heat thermal energy storage system by rotational mechanism. Applied Energy. 2023; 331: 120435. doi: 10.1016/j.apenergy.2022.120435

Guo J, Yang B, Li Z, et al. Charging characteristics of finned thermal energy storage tube under variable rotation. Applied Thermal Engineering. 2024; 236: 121887. doi: 10.1016/j.applthermaleng.2023.121887

Ren F, Li Q, Wang P. Investigation and optimization on a Y-shaped fins for phase change heat storage by rotational mechanism. Journal of Energy Storage. 2024; 94: 112436. doi: 10.1016/j.est.2024.112436

Huang X, Hu R, Gao X, et al. Study on melting process of latent heat energy storage system by nano-enhanced phase change material under rotation condition. Applied Thermal Engineering. 2024; 247: 123040. doi: 10.1016/j.applthermaleng.2024.123040

Huang X, Li Z, Xie Y, et al. Phase change heat storage and enhanced heat transfer based on metal foam under unsteady rotation conditions. Energy. 2024; 306: 132501. doi: 10.1016/j.energy.2024.132501

Yang C, Wang X, Xu X, et al. Numerical study of solidification and melting behavior of the thermal energy storage system with non-uniform metal foam and active rotation. Journal of Energy Storage. 2024; 86: 111353. doi: 10.1016/j.est.2024.111353

Yang C, Xu X, Bake M, et al. Numerical investigation and optimization of the melting performance of latent heat thermal energy storage unit strengthened by graded metal foam and mechanical rotation. Renewable Energy. 2024: 120537. doi: 10.1016/j.renene.2024.120537

Yang C, Xu Y, Xu X, et al. Melting performance analysis of finned metal foam thermal energy storage tube under steady rotation. International Journal of Heat and Mass Transfer. 2024; 226: 125458. doi: 10.1016/j.ijheatmasstransfer.2024.125458

Shahsavar A, Yekta A, Arıcı M. Numerical investigation of the effect of eccentricity on the melting performance of a rotating triplex-tube latent heat energy storage system. Journal of Energy Storage. 2024; 98: 113018. doi: 10.1016/j.est.2024.113018

Shahsavar A, Naderi M, Selimefendigil F. Exploring the impact of tube rotation on the melting performance of multi-tube latent heat storage systems: A numerical investigation. Journal of Energy Storage. 2024; 93: 112355. doi: 10.1016/j.est.2024.112355

Yang C, Zheng Z, Cai X, Xu Y. Experimental study on the effect of rotation on melting performance of shell-and-tube latent heat thermal energy storage unit. Applied Thermal Engineering. 2022; 215: 118877. doi: 10.1016/j.applthermaleng.2022.118877

Fathi MI, Mussa MA. The effect of whole system rotation on the thermal performance of a phase change energy storage. Journal of Energy Storage. 2023; 68: 107732. doi: 10.1016/j.est.2023.107732

Yang B, Guo J, Huang X, et al. Evaluation of variable rotation on enhancing thermal performance of phase change heat storage tank. International Journal of Heat and Fluid Flow. 2024; 106: 109328. doi: 10.1016/j.ijheatfluidflow.2024.109328

Mehryan SAM, Raahemifar K, Gargari LS, et al. Latent Heat Phase Change Heat Transfer of a Nanoliquid with Nano–Encapsulated Phase Change Materials in a Wavy-Wall Enclosure with an Active Rotating Cylinder. Sustainability. 2021; 13(5): 2590. doi: 10.3390/su13052590

Solano JP, Martínez DS, Vicente PG, Viedma A. Enhanced thermal-hydraulic performance in tubes of reciprocating scraped surface heat exchangers. Applied Thermal Engineering. 2023; 220: 119667. doi: 10.1016/j.applthermaleng.2022.119667

Nogami H, Aonuma K, Chiba Y. Development of Heat Exchanger with New Mechanism of Scraping Temperature Boundary Layer. ISIJ International. 2010; 50: 1276-1281. doi: 10.2355/isijinternational.50.1276

Fathi MI, Mussa MA. Experimental study on the effect of tube rotation on performance of horizontal shell and tube latent heat energy storage. Journal of Energy Storage. 2021; 39: 102626. doi: 10.1016/j.est.2021.102626

Sadr AN, Shekaramiz M, Zarinfar M, et al. Simulation of mixed-convection of water and nano-encapsulated phase change material inside a square cavity with a rotating hot cylinder. Journal of Energy Storage. 2022; 47: 103606. doi: 10.1016/j.est.2021.103606

Maruoka N, Tsutsumi T, Ito A, et al. Heat release characteristics of a latent heat storage heat exchanger by scraping the solidified phase change material layer. Energy. 2020; 205: 118055. doi: 10.1016/j.energy.2020.118055

Tombrink J, Jockenhöfer H, Bauer D. Experimental investigation of a rotating drum heat exchanger for latent heat storage. Applied Thermal Engineering. 2021; 183: 116221. doi: 10.1016/j.applthermaleng.2020.116221

Tombrink J, Bauer D. Simulation of a rotating drum heat exchanger for latent heat storage using a quasistationary analytical approach and a numerical transient finite difference scheme. Applied Thermal Engineering. 2021; 194: 117029. doi: 10.1016/j.applthermaleng.2021.117029

Tombrink J, Bauer D. Demand-based process steam from renewable energy: Implementation and sizing of a latent heat thermal energy storage system based on the Rotating Drum Heat Exchanger. Applied Energy. 2022; 321: 119325. doi: 10.1016/j.apenergy.2022.119325

Egea A, García A, Pérez-García J, Herrero-Martín R. Parametric study of a scraped surface heat exchanger for latent energy storage for domestic hot water generation. Applied Thermal Engineering. 2024; 248: 123214. doi: 10.1016/j.applthermaleng.2024.123214

Mehta DS, Solanki K, Rathod MK, Banerjee J. Influence of orientation on thermal performance of shell and tube latent heat storage unit. Applied Thermal Engineering. 2019; 157: 113719. doi: 10.1016/j.applthermaleng.2019.113719

Jaberi Khosroshahi A, Hossainpour S. Investigation of storage rotation effect on phase change material charging process in latent heat thermal energy storage system. Journal of Energy Storage. 2021; 36: 102442. doi: 10.1016/j.est.2021.102442

Jaberi Khosroshahi A, Hossainpour S. A numerical investigation on the finned storage rotation effect on the phase change material melting process of latent heat thermal energy storage system. Journal of Energy Storage. 2022; 55: 105461. doi: 10.1016/j.est.2022.105461

Dai H, Zhou S, Niu P, et al. Numerical investigations of the effect of the flip method on charging/discharging performance of a vertical shell-and-tube latent heat thermal energy storage unit. Journal of Energy Storage. 2023; 73: 108976. doi: 10.1016/j.est.2023.108976

Huang X, Li F, Xiao T, et al. Structural optimization of melting process of a latent heat energy storage unit and application of flip mechanism. Energy. 2023; 280: 128164. doi: 10.1016/j.energy.2023.128164

Li F, Huang X, Li Y, et al. Application and analysis of flip mechanism in the melting process of a triplex-tube latent heat energy storage unit. Energy Reports. 2023; 9: 3989-4004. doi: 10.1016/j.egyr.2023.03.037

Modi N, Wang X, Negnevitsky M. Melting and solidification characteristics of a semi-rotational eccentric tube horizontal latent heat thermal energy storage. Applied Thermal Engineering. 2022; 214: 118812. doi: 10.1016/j.applthermaleng.2022.118812

Shahsavar A, Yekta A. Numerical investigation of the effect of simultaneous use of eccentricity and rotation on the entropy generation characteristics in a triplex-tube latent heat storage system. International Communications in Heat and Mass Transfer. 2024; 156: 107648. doi: 10.1016/j.icheatmasstransfer.2024.107648

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已出版

2024-11-26

文章引用

李智, 方成栋, 伍茜, 姜睿铖, & 俞小莉. (2024). 基于旋转的管壳式潜热存储系统传热强化:从机理到应用. 清洁能源科学与技术, 2(4), 279. https://doi.org/10.18686/cncest279

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