Additive manufacturing of a topology-optimised multi-tube energy storage device: Experimental tests and numerical analysis

被引:53
作者
Ge, Ruihuan [1 ]
Humbert, Gabriele [1 ]
Martinez, Rafael [2 ]
Attallah, Moataz M. [2 ]
Sciacovelli, Adriano [1 ]
机构
[1] Univ Birmingham, Sch Chem Engn, Birmingham Ctr Energy Storage BCES, Birmingham, W Midlands, England
[2] Univ Birmingham, Sch Met & Mat, Birmingham, W Midlands, England
基金
英国工程与自然科学研究理事会;
关键词
Additive manufacturing; Topology optimisation; Solidification; Thermal energy storage (TES); Phase change material (PCM); HEAT-TRANSFER ENHANCEMENT; PHASE-CHANGE MATERIALS; SYSTEM; DESIGN; PERFORMANCE; SHELL; TUBE; FINS; UNIT;
D O I
10.1016/j.applthermaleng.2020.115878
中图分类号
O414.1 [热力学];
学科分类号
摘要
Latent heat thermal energy storage (LHTES) systems with phase change materials (PCMs) are commonly used for storing thermal energy due to their high energy storage density and isothermal nature of the process. However, their performance is limited by PCMs low thermal conductivity. To enhance the heat transfer properties, in this study we investigate the performance of a shell-and-tube energy storage device with topology optimised fins. Selective laser melting (SLM) additive manufacturing technology is proposed to fabricate the topology optimised energy storage device for the solidification process. A series of experiments considering different PCMs and heat transfer fluid (HTF) inlet temperatures are conducted. The thermal performance is assessed and compared with that of a conventional square fin design through numerical simulations of phase changes by computational fluid dynamics (CFD). The results show that the complete solidification time is significantly shortened by using the topology optimised fins. This work demonstrates that the combination of topology optimisation method and additive manufacturing technology offers a promising way to improve the heat transfer performances of LHTES systems.
引用
收藏
页数:12
相关论文
共 36 条
  • [1] Geometric and design parameters of fins employed for enhancing thermal energy storage systems: a review
    Abdulateef, Ammar M.
    Mat, Sohif
    Abdulateef, Jasim
    Sopian, Kamaruzzaman
    Al-Abidi, Abduljalil A.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 : 1620 - 1635
  • [2] Large scale three-dimensional topology optimisation of heat sinks cooled by natural convection
    Alexandersen, Joe
    Sigmund, Ole
    Aage, Niels
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 100 : 876 - 891
  • [3] Beck A., 2015, ASME 2015 9 INT C EN
  • [4] Bendsoe M.P., 2009, TOPOLOGY OPTIMIZATIO
  • [5] HEAT-TRANSFER CHARACTERISTICS OF A LATENT-HEAT STORAGE-SYSTEM USING MGCL2.6H2O
    CHOI, JC
    KIM, SD
    [J]. ENERGY, 1992, 17 (12) : 1153 - 1164
  • [6] A review about the engineering design of optimal heat transfer systems using topology optimization
    Dbouk, T.
    [J]. APPLIED THERMAL ENGINEERING, 2017, 112 : 841 - 854
  • [7] Deformation of 3D printed agglomerates: Multiscale experimental tests and DEM simulation
    Ge, Ruihuan
    Ghadiri, Mojtaba
    Bonakdar, Tina
    Zheng, Qijun
    Zhou, Zongyan
    Larson, Ian
    Hapgood, Karen
    [J]. CHEMICAL ENGINEERING SCIENCE, 2020, 217
  • [8] 3D printed agglomerates for granule breakage tests
    Ge, Ruihuan
    Ghadiri, Mojtaba
    Bonakdar, Tina
    Hapgood, Karen
    [J]. POWDER TECHNOLOGY, 2017, 306 : 103 - 112
  • [9] Topology optimization of heat conduction problems using the finite volume method
    Gersborg-Hansen, A
    Bendsoe, MP
    Sigmund, O
    [J]. STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, 2006, 31 (04) : 251 - 259
  • [10] Experimental and numerical evaluation of longitudinally finned latent heat thermal storage systems
    Hosseini, M. J.
    Ranjbar, A. A.
    Rahimi, M.
    Bahrampoury, R.
    [J]. ENERGY AND BUILDINGS, 2015, 99 : 263 - 272