A Numerical Analysis on a Solar Chimney with an Integrated Latent Heat Thermal Energy Storage

被引:2
|
作者
Buonomo, Bernardo [1 ]
Capasso, Lucia [1 ]
Diana, Alessandra [1 ]
Manca, Oronzio [1 ]
Nardini, Sergio [1 ]
机构
[1] Univ Campania Luigi Vanvitelli, Dip Ingn Ind & Informaz, Real Casa Annunziata, Via Roma 29, I-81031 Aversa Ce, Italy
来源
74TH ATI NATIONAL CONGRESS: ENERGY CONVERSION: RESEARCH, INNOVATION AND DEVELOPMENT FOR INDUSTRY AND TERRITORIES | 2019年 / 2191卷
关键词
PHASE-CHANGE MATERIAL; PERFORMANCE; PCM; VENTILATION; PARAMETERS; SIMULATION; WALLBOARD; PLATE; FOAM;
D O I
10.1063/1.5138762
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Solar chimney is a solar system which is employed in several applications such as ventilation for thermal comfort, passive solar heating and cooling of buildings, solar energy drying, and electric power generation. It employs solar radiation to raise the temperature of the air and the buoyancy of warm air to accelerate the air stream flowing through the system. It is very important to evaluate the thermal and fluid dynamic behaviors to realize a correct design of the solar chimney also for the case with an integrated thermal energy storage system. It includes height, width and depth of cavity, type of glazing, type of absorber, and inclusion of insulation or thermal mass. Besides these system parameters, other factors such as the location, climate, and orientation can also affect its performance. In this paper, a two-dimensional numerical investigation on a prototypal solar chimney system integrated with an absorbing capacity wall in a south facade of a building is presented. The capacity wall is composed of a high absorbing plate and an assigned thickness of phase change material. The chimney consists of a converging channel with one vertical absorbing wall and the glass plate inclined of 2 with respect to the vertical. The chimney is 5.0 m high, with the channel height equal to 4.0 m, whereas the channel gap is at the inlet equal to 0.34 m and at the outlet it is 0.20 m. The thermal energy storage system is 4.0 high. The transient analysis is carried out on a two-dimensional model in airflow and the governing equations are given in terms of k-s turbulence model. The problem is solved by means of the commercial code Ansys-Fluent. The numerical analysis was intended to evaluate the thermal and fluid dynamic behavior of the solar chimney integrated with a latent thermal energy storage system. Results are given in terms of wall temperature distributions, air velocity and temperature fields and transversal profiles. Thermal and fluid dynamics behaviors are evaluated in order to have some indications to improve the energy conversion system.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Numerical study of melting and solidification in a wavy double-pipe latent heat thermal energy storage system
    Shahsavar, Amin
    Ali, Hafiz Muhammad
    Mahani, Roohollah Babaei
    Talebizadehsardari, Pouyan
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 141 (05) : 1785 - 1799
  • [22] Numerical evaluation of the latent heat thermal energy storage performance enhancement by installing longitudinal fins
    Kirincic, Mateo
    Trp, Anica
    Lenic, Kristian
    JOURNAL OF ENERGY STORAGE, 2021, 42
  • [23] A numerical evaluation of a latent heat thermal energy storage system in the presence of various types of nanoparticles
    Abdolahimoghadam, Mohammad
    Rahimi, Masoud
    APPLIED THERMAL ENGINEERING, 2023, 230
  • [24] Numerical investigation of thermal energy storage unit integrated with indirect solar air heater
    Aghabali, Fatemeh
    Farhadi, Mousa
    Darzi, AhmadAli Rabienataj
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2024, 85 (16) : 2620 - 2639
  • [25] EXPERIMENTAL ANALYSIS OF A SOLAR DESALINATION SYSTEM WITH GRAPHENE NANOPLATELET-EMBEDDED LATENT HEAT THERMAL ENERGY STORAGE UNIT
    Sirin, Ceylin
    Selimefendigil, Fatih
    HEAT TRANSFER RESEARCH, 2024, 55 (03) : 1 - 15
  • [26] Numerical analysis and optimization of the charging process on a shell-and-tube latent heat thermal energy storage unit for a solar power plant with direct steam generation
    Deng, Yajun
    Zhu, Zhengyue
    Wang, Wenzhao
    Ye, Qianhao
    Yu, Bo
    Sun, Dongliang
    ENERGY SCIENCE & ENGINEERING, 2023, 11 (01) : 206 - 226
  • [27] Thermal behavior of a translucent superinsulated latent heat energy storage wall in summertime
    Souayfane, Farah
    Biwole, Pascal Henry
    Fardoun, Farouk
    APPLIED ENERGY, 2018, 217 : 390 - 408
  • [28] Energy and economic performance of the heat pump integrated with latent heat thermal energy storage for peak demand shifting
    Jin, Xin
    Zheng, Siqian
    Huang, Gongsheng
    Lai, Alvin C. K.
    APPLIED THERMAL ENGINEERING, 2023, 218
  • [29] Numerical analysis of latent heat thermal energy storage using miniature heat pipes: A potential thermal enhancement for CSP plant development
    Khalifa, Abdulmajed
    Tan, Lippong
    Mahony, David
    Date, Abhijit
    Akbarzadeh, Aliakbar
    APPLIED THERMAL ENGINEERING, 2016, 108 : 93 - 103
  • [30] Configuration optimization of the honeycomb core in the latent heat thermal energy storage of a solar air heater: Experimental and numerical study
    Sadri, Seyyed Alireza
    Parsa, Hasan
    Saffar-Avval, Majid
    Hajmohammadi, Mohammad Reza
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2022, 46 (05) : 5924 - 5954