EXPERIMENTAL VALIDATION OF NUMERICAL PREDICTIONS FOR THE TRANSIENT PERFORMANCE OF A SIMPLE LATENT HEAT STORAGE UNIT (LHSU) UTILIZING PHASE CHANGE MATERIAL (PCM) AND 3-D PRINTING

被引:0
|
作者
Kumar, Navin [1 ]
Banerjee, Debjyoti [1 ]
机构
[1] Texas A&M Univ, College Stn, TX 77843 USA
关键词
THERMAL-ENERGY STORAGE; WATER;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
Experimental validation was performed in this study to verify the efficacy of numerical models for predicting the location of solid-liquid interface in an axi-symmetric configuration during both melting and solidification in a Latent Heat Storage Unit (LHSU). Development of analytical solutions for predicting the location of the solid-liquid interface is often intractable in LHSU due to non-linear temperature distribution in the Phase Change Material (PCM). This is further complicated by the moving boundary problem with free convection within the liquid phase of the PCM. Analytical solutions available in the contemporary literature are based on simplified transient heat conduction models and often fail to reliably predict the charging and discharging time constants for LHSU with complex configurations. This study is designed with the goal of developing more sophisticated numerical models for the estimation of transient thermal performance of an LHSU with a simple configuration involving a shell and tube heat exchanger (HX). The LHSU utilized in this study is realized by integrating various types of Phase Change Materials (PCM) contained in the shell side of a HX. The LHSU is charged or discharged by pumping hot or cold fluids in the tube side of the HX (i.e., by pumping water at a fixed inlet temperature from a commercial chiller apparatus). This study enabled the characterization of the transient response of a LHSU subjected to conduction and forced convection heat transfer. The PCM used in this material was paraffin wax (PURETEMP 29). The HX in the LHSU consisted of a single pass straight tube (1/2 inch copper pipe) mounted within a single shell configuration. The shell was fabricated from plastic material using additive manufacturing (i.e., 3D Printing). The temperature variation during melting and solidification of the PCM were measured at different radial and axial locations within the cylindrical shell that was mounted vertically. Temperature measurements were performed at different mass flowrate ranging from 0.004 Kg/sec to 0.007 Kg/sec for the same fluid temperature. The water bath temperatures were maintained at a constant temperature of 40 degrees C for melting and 15 degrees C for solidification. The experiment results show that the transient response of the LHSU for charging and discharging (i.e., time required for melting and solidification of the PCM) vary significantly. Comparison of the experimental data with analytical results (involving quasi-stationary models for phase change) demonstrate that natural convection is the dominant mode during the melting process, while conduction is the dominant mode during the solidification process.
引用
下载
收藏
页数:8
相关论文
共 40 条
  • [11] Experimental study on the melting behavior of a phase change material in a conical coil latent heat thermal energy storage unit
    Mahdi, Mustafa S.
    Mahood, Hameed B.
    Campbell, Alasdair N.
    Khadom, Anees A.
    APPLIED THERMAL ENGINEERING, 2020, 175
  • [12] Transient behavior analysis of the melting of nanoparticle-enhanced phase change material inside a rectangular latent heat storage unit
    Elbahjaoui, Radouane
    El Qarnia, Hamid
    APPLIED THERMAL ENGINEERING, 2017, 112 : 720 - 738
  • [13] Heat transfer characteristics of thermal energy storage for PCM (phase change material) melting in horizontal tube: Numerical and experimental investigations
    Aadmi, Moussa
    Karkri, Mustapha
    El Hammouti, Mimoun
    ENERGY, 2015, 85 : 339 - 352
  • [14] Numerical study on the effect of the location of the phase change material in a concentric double pipe latent heat thermal energy storage unit
    Mahdi, Mustafa S.
    Mahood, Hameed B.
    Hasan, Ahmed F.
    Khadom, Anees A.
    Campbell, Alasdair N.
    THERMAL SCIENCE AND ENGINEERING PROGRESS, 2019, 11 : 40 - 49
  • [15] Heat transfer performance analysis of phase change material-based latent heat storage unit based on river water source
    Cao, Ziming
    Zhang, Guozhu
    Wang, Zhongtao
    Yin, Mei
    JOURNAL OF ENERGY STORAGE, 2024, 97
  • [16] Numerical Study of a Latent Heat Storage System's Performance as a Function of the Phase Change Material's Thermal Conductivity
    Belinson, Maxim
    Groulx, Dominic
    APPLIED SCIENCES-BASEL, 2024, 14 (08):
  • [17] Experimental Validation of Thermal Performance of a Plate Heat Exchanger (PHX) with Phase Change Materials (PCM) for Thermal Energy Storage (TES)
    Kumar, Navin
    Chavez, Reynaldo, Jr.
    Banerjee, Debjyoti
    PROCEEDINGS OF THE 17TH IEEE INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS (ITHERM 2018), 2018, : 927 - 934
  • [18] Comparison of Numerical and Experimental Assessment of a Latent Heat Energy Storage Module for a High-Temperature Phase-Change Material
    Ramos Archibold, Antonio
    Bhardwaj, Abhinav
    Rahman, Muhammad M.
    Goswami, D. Yogi
    Stefanakos, Elias L.
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2016, 138 (05):
  • [19] Performance and heat transfer characteristics of a latent heat storage unit with finned tubes:: Numerical analysis on freezing and melting processes of n-pentane as a phase-change material
    Yamashita, Y
    Hirata, Y
    Iwata, Y
    Yamazaki, K
    Ito, Y
    KAGAKU KOGAKU RONBUNSHU, 2005, 31 (02) : 151 - 158
  • [20] Performance and heat transfer characteristics of a latent heat storage unit with finned tubes:: Experimental study on storage of LNG cold energy by freezing n-pentane as a phase-change material
    Yamashita, Y
    Hirata, Y
    Iwata, Y
    Yamazaki, K
    Ito, Y
    KAGAKU KOGAKU RONBUNSHU, 2005, 31 (02) : 144 - 150