1. 西安交通大学能源与动力工程学院,西安,710049
2. 江西卓超科技有限公司,江西,新余,338000
: 2023-10-07。作者简介: 甄华龙(1999—),男,硕士生
蒲亮(通信作者),男,教授,博士生导师。基金项目: 中央高校基本科研业务费资助项目(xzy022020026
网络首发:2024-07-10,
纸质出版:2024
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甄华龙, 张胜棋, 刘运生, 等. 相变储能单元内拓扑翅片优化及其传热特性研究[J]. 西安交通大学学报, 2024,58(7):62-72.
ZHEN Hualong, ZHANG Shengqi, LIU Yunsheng, et al. Research on Optimization and Heat Transfer Characteristics of Topological Fins in Phase Latent Thermal Storage Units[J]. 2024, 58(7): 62-72.
甄华龙, 张胜棋, 刘运生, 等. 相变储能单元内拓扑翅片优化及其传热特性研究[J]. 西安交通大学学报, 2024,58(7):62-72. DOI: 10.7652/xjtuxb202407006.
ZHEN Hualong, ZHANG Shengqi, LIU Yunsheng, et al. Research on Optimization and Heat Transfer Characteristics of Topological Fins in Phase Latent Thermal Storage Units[J]. 2024, 58(7): 62-72. DOI: 10.7652/xjtuxb202407006.
为提升管壳式相变储能单元的蓄放热速率
采用基于变密度法的拓扑优化方法
对二维相变储能单元的翅片进行优化
设计了体积比(翅片体积占设计域体积比)分别为0.1、0.15、0.2的导热拓扑翅片; 同时考虑液体流动
设计了体积占比分别为0.1、0.15、0.2的对流拓扑翅片。基于上述翅片构型
采用数值模拟方法
对比研究了分别使用拓扑翅片和矩形翅片的相变储能单元的蓄放热特性
分析了使用不同体积占比的拓扑翅片的蓄放热过程。研究表明:在蓄热过程中
使用体积占比为0.15的导热拓扑翅片和对流拓扑翅片的相变储能单元蓄热速率较矩形翅片分别提升了11.5%、33.0%
对流拓扑翅片由于考虑了蓄热过程中相变材料的自然对流效应
其性能优于相同体积占比的导热拓扑翅片; 在放热过程中
导热拓扑翅片由于翅片分布较均匀、与相变材料接触区域大
其性能优于相同体积占比的对流拓扑翅片
其中体积占比为0.15的导热拓扑翅片构型综合性能最优。该研究为翅片设计提供了有效支撑
对推动拓扑优化在相变储能单元内的实际应用具有重要价值。
This paper designs the fin configuration of the two-dimensional phase latent thermal storage unit using the topology optimization method based on the variable density method to improve the thermal storage and release rate of the phase latent thermal storage unit. The conductive topological fins with the volume proportion of 0.1
0.15
and 0.2 are devised. In addition
considering the liquid flow
the convective topological fins with the volume proportion of 0.1
0.15
and 0.2 are designed. Subsequently
a comparison is drawn between the thermal storage and release characteristics of the topological fins and the rectangular fins in the phase latent thermal storage unit. using a numerical simulation method. An analysis is conducted on the thermal storage and release processes of topological fins with different volume proportions. The results show that the thermal storage rates of the phase latent thermal storage unit using conductive and convective topological fins with a volume proportion of 0.15 surpass those of rectangular fins by 11.5% and 33.0%
respectively. When considering the same volume proportion
the convective topological fins outperform the conductive topological fins due to the natural convection effect of the phase change material during the thermal storage process. During the thermal release process
under the condition of the same volume proportion
the conductive topological fins exhibit better performance than the convection topological fins because of their uniform distribution and large contact area with the phase change material. The conductive topological fins with a volume proportion of 0.15 demonstrate the best comprehensive performance. This study offers insights into fin design and significantly contributes to advancing the practical application of topology optimization in phase latent thermal storage units.
陈海生, 李泓, 徐玉杰, 等. 2022年中国储能技术研究进展 [J]. 储能科学与技术, 2023, 12(5): 1516-1552.
CHEN Haisheng, LI Hong, XU Yujie, et al. Research progress on energy storage technologies of China in 2022 [J]. Energy Storage Science and Technology, 2023, 12(5): 1516-1552.
马朝, 何雅玲, 袁帆, 等. 高温套管式熔融盐相变蓄热器蓄热性能实验研究 [J]. 西安交通大学学报, 2017, 51(5): 1-8.
MA Zhao, HE Yaling, YUAN Fan, et al. Experimental study on the thermal performance of high-temperature shell-and-tube molten salt phase-change thermal energy storage [J]. Journal of Xi'an Jiaotong University, 2017, 51(5): 1-8.
田扬, 赵明, 胡明禹, 等. 加肋旋转对相变蓄热器蓄热性能的影响及场协同分析 [J]. 太阳能学报, 2021, 42(3): 395-400.
TIAN Yang, ZHAO Ming, HU Mingyu, et al. Effect of ribbed rotation on heat storage performance of phase change thermal storage unit and field synergy analysis [J]. Acta Energiae Solaris Sinica, 2021, 42(3): 395-400.
WOOSZYN J, SZOPA K. A combined heat transfer enhancement technique for shell-and-tube latent heat thermal energy storage [J]. Renewable Energy, 2023, 202: 1342-1356.
ZHU Yuxi, QIU Yan. Comparison of thermal performance between annular fins and longitudinal fins in latent heat storage unit [J]. Journal of Thermal Science, 2023, 32(3): 1227-1238.
ZHANG Shengqi, PU Liang, XU Lingling, et al. Study on dominant heat transfer mechanism in vertical smooth/finned-tube thermal energy storage during charging process [J]. Applied Thermal Engineering, 2022, 204: 117935.
ZHANG Shengqi, MANCIN S, PU Liang. A review and prospective of fin design to improve heat transfer performance of latent thermal energy storage [J]. Journal of Energy Storage, 2023, 62: 106825.
左孔天, 陈立平, 张云清, 等. 用拓扑优化方法进行热传导散热体的结构优化设计 [J]. 机械工程学报, 2005, 41(4): 13-16, 21.
ZUO Kongtian, CHEN Liping, ZHANG Yunqing, et al. Structural optimal design of heat conductive body with topology optimization method [J]. Chinese Journal of Mechanical Engineering, 2005, 41(4): 13-16, 21.
PIZZOLATO A, SHARMA A, MAUTE K, et al. Topology optimization for heat transfer enhancement in latent heat thermal energy storage [J]. International Journal of Heat and Mass Transfer, 2017, 113: 875-888.
ZHAO Ming, TIAN Yang, HU Mingyu, et al. Topology optimization of fins for energy storage tank with phase change material [J]. Numerical Heat Transfer(Part A): Applications, 2020, 77(3): 284-301.
殷健宝, 邢玉明, 王仕淞, 等. 相变储能拓扑翅片的性能研究 [J/OL]. 北京航空航天大学学报: 1-14[2023-09-22]. https://doi.org/10.13700/j.bh.1001-5965.2022.0803.
YIN Jianbao, XING Yuming, WANG Shisong, et al. Study of the performance of topological fin for phase change energy storage [J/OL]. Journal of Beijing University of Aeronautics and Astronautics: 1-14[2023-09-22]. https://doi.org/ 10.13700/j.bh.1001-5965.2022.0803.
GE Ruihuan, HUMBERT G, MARTINEZ R, et al. Additive manufacturing of a topology-optimised multi-tube energy storage device: experimental tests and numerical analysis [J]. Applied Thermal Engineering, 2020, 180: 115878.
李含灵, 蓝代彦, 张显明, 等. 自然对流散热齿的拓扑优化 [J]. 工程热物理学报, 2022, 43(5): 1357-1361.
LI Hanling, LAN Daiyan, ZHANG Xianming, et al. Topology optimization of the natural convection fin heat sink [J]. Journalof Engineering Thermophysics, 2022, 43(5): 1357-1361.
LI Hanling, LAN Daiyan, ZHANG Xianming, et al. Investigation of the parameter-dependence of topology-optimized heat sinks in natural convection [J]. Heat Transfer Engineering, 2022, 43(11): 922-936.
PIZZOLATO A, SHARMA A, MAUTE K, et al. Design of effective fins for fast PCM melting and solidification in shell-and-tube latent heat thermal energy storage through topology optimization [J]. Applied Energy, 2017, 208: 210-227.
游吟, 赵耀, 赵长颖, 等. 相变储热单元内肋片结构的拓扑优化 [J]. 科学通报, 2019, 64(11): 1191-1199.
YOU Yin, ZHAO Yao, ZHAO Changying, et al. The topology optimization of the fin structure in latent heat storage [J]. Chinese Science Bulletin, 2019, 64(11): 1191-1199.
TIAN Yang, LIU Xianglei, XU Qiao, et al. Bionic topology optimization of fins for rapid latent heat thermal energy storage [J]. Applied Thermal Engineering, 2021, 194: 117104.
ZHOU M, ROZVANY G I N. The COC algorithm: part Ⅱ topological, geometrical and generalized shape optimization [J]. Computer Methods in Applied Mechanics and Engineering, 1991, 89(1/3): 309-336.
SVANBERG K. The method of moving asymptotes: a new method for structural optimization [J]. International Journal for Numerical Methods in Engineering, 1987, 24(2): 359-373.
LAZAROV B S, SIGMUND O. Filters in topology optimization based on Helmholtz-type differential equations [J]. International Journal for Numerical Methods in Engineering, 2011, 86(6): 765-781.
GUEST J K, PRÉVOST J H, BELYTSCHKO T. Achieving minimum length scale in topology optimization using nodal design variables and projection functions [J]. International Journal for Numerical Methods in Engineering, 2004, 61(2): 238-254.
WANG Fengwen, LAZAROV B S, SIGMUND O. On projection methods, convergence and robust formulations in topology optimization [J]. Structural and Multidisciplinary Optimization, 2011, 43(6): 767-784.
BRENT A D, VOLLER V R, REID K J. Enthalpy-porosity technique for modeling convection-diffusion phase change: application to the melting of a pure metal [J]. Numerical Heat Transfer, 1988, 13(3): 297-318.
ANSYS Inc. Ansys fluent theory guide [EB/OL]. [2023-09-30]. https://vdocument.in/ansys-fluent-theory-guide-568848c30618c.html?page=1.
沈永亮, 张朋威, 刘淑丽. 肋片和多孔介质强化梯级相变储热系统性能的对比研究 [J]. 化工学报, 2022, 73(10): 4366-4376.
SHEN Yongliang, ZHANG Pengwei, LIU Shuli. Comparative study on the performance of cascaded latent heat storage system enhanced by fins and porous media [J]. CIESC Journal, 2022, 73(10): 4366-4376.[26] 韩涛, 马彦花, 方嘉宾, 等. 管壳式太阳能相变储热器传热特性的数值研究 [J]. 太阳能学报, 2023, 44(3): 525-532.
HAN Tao, MA Yanhua, FANG Jiabin, et al. Numerical simulation study of heat transfer characteristics on solar tube-and-shell phase change heat storage unit [J]. Acta Energiae Solaris Sinica, 2023, 44(3): 525-532.
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