HEAT TRANSFER IN A FORM-STABLE DIRECT-CONTACT LATENT THERMAL ENERGY STORAGE UNIT
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Published:2024
Issue:1
Volume:31
Page:1-30
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ISSN:1065-5131
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Container-title:Journal of Enhanced Heat Transfer
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language:en
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Short-container-title:J Enh Heat Transf
Author:
Mousavi N. S. Susan,Syed M. Tashfeen,Panindre Prabodh,Kumar Sunil
Abstract
This study investigated various aspects of thermal storage concept, including material characterization
and analysis of form-stable, unencapsulated phase-change materials (PCM) that underwent solid-solid phase transition and was in direct contact with the working fluid. The study focused on temperature range between 100-140°C (212-284°F). Mathematical heat transfer models were developed to examine the operating characteristics of the thermal energy storage unit, identify key parameters
influencing storage, and conducted parametric studies. Both single-phase and phase-change working fluids were considered in the models. Experiments were conducted using a packed bed of PCM pellets and a single-phase working fluid (tri-ethylene glycol) to evaluate and demonstrate the
heat storage concept during charging and discharging. The experimental results aligned well with the heat transfer models, validating their accuracy. Parametric studies explored a wide range of parameters not feasible in laboratory experiments, shedding light on charging, discharging, and thermal storage characteristics. These models facilitated the development and implementation of optimization algorithms for packed bed latent heat storage units. The findings indicated that form-stable latent heat
units utilizing commercially available polymers undergoing solid-solid phase transition can serve as long-term stable thermal storage candidates for use with several single-phase working fluids as well as two-phase steam.
Subject
Fluid Flow and Transfer Processes,Mechanical Engineering,Condensed Matter Physics
Reference35 articles.
1. Abe, Y., Takahashi, Y., Sakamoto, R., Kanari, K., Kamimoto, M., and Ozawa, T., Charge and Discharge Characteristics of a Direct Contact Latent Thermal Energy Storage Unit Using Form-Stable High-Density Polyethylene, J. Sol. Energy Eng., vol. 106, no. 4, pp. 465-474, 1984. DOI: 10.1115/1.3267626 2. Beasley, D.E. and Clark, J.A., Transient Response of a Packed Bed for Thermal Energy Storage, Int. J. Heat Mass Transf., vol. 27, no. 9, pp. 1659-1669, 1984. DOI: 10.1016/0017-9310(84)90278-3 3. Benenati, R.F. and Brosilow, C.B., Void Fraction Distribution in Beds of Spheres, AIChE J., vol. 8, no. 3, pp. 359-361, 1962. DOI: 10.1002/aic.690080319 4. Chavan, S., Rudrapati, R., and Manickam, S., A Comprehensive Review on Current Advances of Thermal Energy Storage and Its Applications, Alexandria Eng. J., vol. 61, no. 7, pp. 5455-5463, 2022. DOI: 10.1016/j.aej.2021.11.003 5. Cheng, P. and Hsu, C.T., Fully-Developed, Forced Convective Flow through an Annular Packed-Sphere Bed with Wall Effects, Int. J. Heat Mass Transf., vol. 29, no. 12, pp. 1843-1853, 1986. DOI: 10.1016/0017-9310(86)90003-7
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