Thermal Management of the Melting Process in a Latent Heat Triplex Tube Storage System Using Different Configurations of Frustum Tubes

Author:

Tiji Mohammadreza Ebrahimnataj1,Al-Azzawi Waleed Khalid2,Mohammed Hayder I.3,Dulaimi Anmar4,Rashid Farhan Lafta5,Mahdi Jasim M.6,Majdi Hasan Sh.7,Talebizadehsardari Pouyan8ORCID,Ali Hafiz Muhammad910ORCID

Affiliation:

1. Department of Mechanical Engineering, Qom University of Technology, Qom, Iran

2. Department of Medical Instrumentation Engineering Techniques, Al-Farahidi University, Baghdad 10015, Iraq

3. Department of Physics, College of Education, University of Garmian, Kurdistan, Kalar 46021, Iraq

4. College of Engineering, University of Warith Al-Anbiyaa, Karbala 56001, Iraq

5. Petroleum Engineering Department, College of Engineering, University of Kerbala, Karbala 56001, Iraq

6. Department of Energy Engineering, University of Baghdad, Baghdad 10071, Iraq

7. Department of Chemical Engineering and Petroleum Industries, Al-Mustaqbal University College, Babylon 51001, Iraq

8. Centre for Sustainable Energy use in Food Chains, Institute of Energy Futures, Brunel University London, Kingston Lane, Uxbridge, Middlesex UB8 3PH, UK

9. Mechanical Engineering Department, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia

10. Interdisciplinary Research Center for Renewable Energy and Power Systems (IRC-REPS), King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia

Abstract

In this study, the energy charging mechanism is mathematically modeled to determine the impact of design modifications on the thermofluidic behavior of a phase change material (PCM) filled in a triplex tube containment geometry. The surface area of the middle tube, where the PCM is placed, is supported by single or multi-internal frustum tubes in vertical triplex tubes to increase the performance of the heating and cooling of the system. In addition to the ordinary straight triplex tubes, three more scenarios are considered: (1) changing the middle tube to the frustum tube, (2) changing the inner tube to the frustum tube, and (3) changing both the internal and central tubes to the frustum tubes. The impact of adopting the tube designs and gap width were studied. The outcomes reveal that the heat storage rates are increased for all frustum tube systems compared to the straight tube system. According to the results, the case of a gap width of 5 mm is the optimal one among the studied cases in terms of the melting time and the heat storage rate. Employing the frustum tube configuration with a 5-mm gap width would save the melting time by 25.6% and increase the rate of heat storage by 32.8% compared to the base case of straight tubes.

Publisher

Hindawi Limited

Subject

General Materials Science

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