Hourly dynamic simulation of solar ejector cooling system using TRNSYS for Jordanian climate

被引:79
|
作者
Tashtoush, Bourhan [1 ]
Alshare, Aiman [2 ]
Al-Rifai, Saja [1 ]
机构
[1] JUST, Dept Mech Engn, Irbid, Jordan
[2] German Jordanian Univ, Mech & Maintenance Engn Dept, Sakhr Al Ahmasi, Jordan
关键词
Solar cooling air-conditioning; Ejector; Evacuated tube solar collectors; Flat plate collector; TRNSYS; EES; VARIABLE GEOMETRY EJECTORS; REFRIGERATION SYSTEM; PERFORMANCE; DESIGN; COLLECTORS; CYCLES; ENERGY; R600A;
D O I
10.1016/j.enconman.2015.05.010
中图分类号
O414.1 [热力学];
学科分类号
摘要
This work describes a simulation program developed on the TRNSYS-EES softwares. This program is used to design the solar collector subsystem components and to evaluate the performance of the solar ejector cooling system with R134a as a refrigerant. In addition dynamic hourly simulation of 7 kW solar ejector cooling system (SECS) constant pressure mixing components, using TRNSYS software is carried out. The performance of solar collector and the overall system performance are investigated and the ejector sub-system is modeled with EES software. The solar collector type, area, storage tank size, and the flow rate through the cycle are optimized. Solar collector type and area are selected based on the maximum energy gain, where the maximum energy gain is a measure of the collector performance. The system performance is computed in the form of desired outlet temperature to run 7 kW cooling cycle. The effect of tilt angle on the solar system performance is investigated and the optimum tilt angle for the best performance of the system is determined. Selection of the best refrigerant to meet the cooling requirement with the maximum COP is studied. In addition, the time fraction of the storage tank outlet temperature for different collector areas, at a mass flow rate of 50 kg/h m(2) is investigated. It is found that evacuated tube type has better performance than the flat plate type, where each collector is anchored at its optimal tilt angle of 28 degrees. Furthermore, the energy required of the 7 kW-cooling-system is adequately met with the selection of an evacuated-tube solar collector system with an area of 60-70 m(2). The solar fraction is in the range of 0.52-0.542 and the corresponding time fraction is 5.04 h/days. Hourly and monthly simulation of SECS, which is supplemented with 2 m(3) storage tank size and operated at a flow rate of 50 kg/h per square meter of collector area is carried out. Under peak solar radiation and highest ambient temperature, the overall system efficiency has a minimum value of 0.32, whereas the COPejec of the ejector cooling cycle for this model is in the range of 0.52-0.547, the solar collector efficiency is between 0.52 and 0.92, and the overall COPo is in the range of 0.32-0.47. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:288 / 299
页数:12
相关论文
共 50 条
  • [11] A Trnsys Simulation Of A Solar-Driven Ejector Air Conditioning System With An Integrated PCM Cold Storage
    Allouche, Yosr
    Varga, Szabolcs
    Bouden, Chiheb
    Oliveira, Armando
    TECHNOLOGIES AND MATERIALS FOR RENEWABLE ENERGY, ENVIRONMENT AND SUSTAINABILITY (TMREES16), 2017, 1814
  • [12] Modelling of a Solar Ejector Cooling System using CPV Collector
    Renno, Carlo
    Di Marino, Olga
    INTERNATIONAL ENERGY JOURNAL, 2024, 24 (03): : 141 - 152
  • [13] Design of a Building-Scale Space Solar Cooling System Using TRNSYS
    Redpath, David
    Paneri, Anshul
    Singh, Harjit
    Ghitas, Ahmed
    Sabry, Mohamed
    SUSTAINABILITY, 2022, 14 (18)
  • [14] Using TRNSYS Simulation to Optimize the Design of a Solar Water Distillation System
    Juarez-Trujillo, Armando
    Martin-Dominguez, Ignacio R.
    Teresa Alarcon-Herrera, M.
    2013 ISES SOLAR WORLD CONGRESS, 2014, 57 : 2441 - +
  • [15] Collector selection for solar ejector cooling system
    Huang, BJ
    Petrenko, VA
    Samofatov, IY
    Shchetinina, NA
    SOLAR ENERGY, 2001, 71 (04) : 269 - 274
  • [16] Design of Solar Powered Ejector Cooling System
    Masaryk, Michal
    Mlynar, Peter
    Strba, Dominik
    38TH MEETING OF DEPARTMENTS OF FLUID MECHANICS AND THERMODYNAMICS, 2019, 2118
  • [17] Thermal simulation of roof surface evaporative cooling system for India using "TRNSYS"
    Purohit, I.
    Kumar, A.
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2006, 27 (04) : 193 - 202
  • [18] TRNSYS simulation for solar-assisted liquid desiccant evaporative cooling
    Reddy, Sneha
    Priya, S. Shanmuga
    Carollo, Andrew J.
    Kumar, S. Harish
    INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2020, 41 (01) : 105 - 111
  • [19] Modified Solar-Assisted Ejector Cooling System
    Huang, Bin-Juine
    Ko, Hua-Wei
    Ton, Wei-Zhe
    Wu, Chen-Chun
    Chang, Hsien-Shun
    Hsu, Hang-Yuen
    Liu, Jen-Hao
    Wu, Jia-Hung
    Yen, Rue-Her
    PROCEEDINGS OF THE ISES EUROSUN 2018 CONFERENCE - 12TH INTERNATIONAL CONFERENCE ON SOLAR ENERGY FOR BUILDINGS AND INDUSTRY, 2018, : 633 - 637
  • [20] A solar ejector cooling system using refrigerant R141b
    Huang, BJ
    Chang, JM
    Petrenko, VA
    Zhuk, KB
    SOLAR ENERGY, 1998, 64 (4-6) : 223 - 226