Energy efficient refrigeration system using latent heat storage, PCM

被引:0
|
作者
Harun-Or-Rashid, Mohammad [1 ]
Hasan, Md Tawfique [2 ]
Alam, Towfiq Bin [2 ]
Hossain, Safayet [2 ]
机构
[1] Associate Professor, Department of Mechanical and Production Engineering, Ahsanullah University of Science and Technology, Dhaka,1208, Bangladesh
[2] Graduate student, Department of Mechanical and Production Engineering, Ahsanullah University of Science and Technology, Dhaka,1208, Bangladesh
来源
关键词
Energy utilization;
D O I
10.1016/j.ijft.2024.100717
中图分类号
学科分类号
摘要
This study examines the performance enhancement offered by a phase change material (PCM) connected to the evaporator and condenser of a household refrigerator that utilizes R134a as the refrigerant. The features of the refrigerant and its properties determine how quickly a refrigerator releases and stores heat. The use of PCM accelerates heat transfer, leading to an improvement in the Coefficient of Performance (COP). This experimental study demonstrates how the COP of a typical refrigeration system can be significantly improved. In the present study, the PCM is utilized in a manually constructed enclosure that encloses the evaporator and condenser of a refrigerator. The purpose of the PCM is to decrease the condenser temperature, resulting in a substantial reduction of power consumption. The heat is transmitted from the refrigerator cabinet to the evaporator through PCM by conduction. Therefore, the rate of heat transfer from the evaporator to the refrigerant increases noticeably, which enhances the COP of the refrigeration system. From the experiment, it was found that COP increased by 12.7% and compressor off time increased about 1.5 times. © 2024 The Author(s)
引用
收藏
相关论文
共 50 条
  • [1] Latent heat storage for refrigeration
    Ahrens, W.
    Gutberlet, H.
    [J]. 1996, (32):
  • [2] Analysis of heat transfer in latent heat thermal energy storage using a flexible PCM container
    Park, Jinsoo
    Shin, Dong Ho
    Shin, Youhwan
    Karng, Sarng Woo
    [J]. HEAT AND MASS TRANSFER, 2019, 55 (06) : 1571 - 1581
  • [3] Analysis of heat transfer in latent heat thermal energy storage using a flexible PCM container
    Jinsoo Park
    Dong Ho Shin
    Youhwan Shin
    Sarng Woo Karng
    [J]. Heat and Mass Transfer, 2019, 55 : 1571 - 1581
  • [4] Development of a Latent Heat Thermal Energy Storage Material-Based Refrigeration System
    Oni, Taiwo O.
    Awopetu, Jacob B.
    Adeleye, Samson A.
    Uguru-Okorie, Daniel C.
    Adeyanju, Anthony A.
    Olukayode, Niyi E.
    [J]. INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2021, 39 (02) : 469 - 476
  • [5] Experimental investigation of low-temperature latent heat thermal energy storage system using PCM and NEPCM
    John, M. R. Wilson
    Mamidi, Thrinadh
    Subendran, Satishkumar
    Subramanian, L. R. Ganapathy
    [J]. 2ND INTERNATIONAL CONFERENCE ON ADVANCES IN MECHANICAL ENGINEERING (ICAME 2018), 2018, 402
  • [6] An analysis of a packed bed latent heat thermal energy storage system using PCM capsules: Numerical investigation
    Regin, A. Felix
    Solanki, S. C.
    Saini, J. S.
    [J]. RENEWABLE ENERGY, 2009, 34 (07) : 1765 - 1773
  • [7] STUDY ON LATENT HEAT THERMAL ENERGY STORAGE USING AQUEOUS SOLUTION AS PCM.
    Hayashi, Yujiro
    Kunimine, Kanji
    Yamaguchi, Kunihiko
    [J]. Nippon Kikai Gakkai Ronbunshu, B Hen/Transactions of the Japan Society of Mechanical Engineers, Part B, 1988, 54 (498): : 452 - 458
  • [8] Heat transfer enhancement and performance study on latent heat thermal energy storage system using different configurations of spherical PCM balls
    Surya, A.
    Prakash, R.
    Nallusamy, N.
    [J]. JOURNAL OF ENERGY STORAGE, 2023, 72
  • [9] Latent heat thermal energy storage solution for CSPs: Integration of PCM heat exchangers
    Reddy, Lomada Karunakar
    Biswal, Pratibha
    Pujari, Arun Kumar
    [J]. JOURNAL OF ENERGY STORAGE, 2023, 73
  • [10] Maximization of performance of a PCM latent heat storage system with innovative fins
    Sciacovelli, A.
    Gagliardi, F.
    Verda, V.
    [J]. APPLIED ENERGY, 2015, 137 : 707 - 715