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Articles de revues sur le sujet "Thermal energy storage material"

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Bhagat, Subita, and Pardeep Kumar Verma. "Analyses of a Phase Change Material based Thermal Energy Storage System." Indian Journal of Applied Research 3, no. 2 (2011): 347–49. http://dx.doi.org/10.15373/2249555x/feb2013/118.

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Zhumabek, M. R., and M. S. Tungatarova. "Study of the efficiency of thermal energy storage in various types of short – term thermal energy storages." Bulletin of the National Engineering Academy of the Republic of Kazakhstan 83, no. 1 (2022): 40–49. http://dx.doi.org/10.47533/2020.1606-146x.138.

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Short-term thermal energy storages allow excess heat energy to be stored for a few hours or days. Currently, coal and gas-fired thermal power plants for heating and hot water are inefficient, obsolete and have high heat losses. Therefore, the high consumption of coal and gas, which are the traditional energy sources for heating, has led to severe environmental pollution and serious environmental and health problems. In this article the heat exchange processes of short-term storage of thermal energy using phasetransition material were investigated. Paraffin was considered as a phase-transition
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Kumar, Amit. "2D Material-Enhanced Phase Change Materials." International Journal for Research in Applied Science and Engineering Technology 13, no. 5 (2025): 1946–47. https://doi.org/10.22214/ijraset.2025.70579.

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Phase change materials (PCMs) are promising options for thermal energy storage systems because of their well-known high energy density and consistent thermal output. Nevertheless, the low thermal conductivity and phase transition leakage of conventional PCMs severely restrict their usefulness. A recent successful tactic to get around these issues is the incorporation of two-dimensional (2D) materials into PCMs. The impact of 2D material-enhanced PCMs on energy storage applications is highlighted in this review, which also discusses recent advancements, new trends, and difficulties related to t
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Rahman, Reza Abdu, Nicco Plamonia, Dibyo Setiawan, and Robertus Dhimas Dhewangga Putra. "Development and Thermal Investigation of Modified Octadecanoic Acid as Energy Storage Material." Chemistry & Chemical Technology 18, no. 4 (2024): 615–22. https://doi.org/10.23939/chcht18.04.615.

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Modified octadecanoic acid (MOA) has been developed and studied as a material for energy storage. Temperature transition for MOA is reduced by 1.03°C and 2.56°C. As a result, MOA has a high energy fraction in the liquid zone, about 25% and 33.5%, which effectively increases the charge level of the storage system.
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Subrahmanyam, P. Bala, and Prof Rohit Soni. "The Viability of Thermal Energy Storage and Phase Change Material: A Review." International Journal of Trend in Scientific Research and Development Volume-2, Issue-3 (2018): 2636–41. http://dx.doi.org/10.31142/ijtsrd12776.

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Kanimozhi, B., Amit Arnav, Eluri Vamsi Krishna, and R. Thamarai Kannan. "Review on Phase Change Materials in Thermal Energy Storage System." Applied Mechanics and Materials 766-767 (June 2015): 474–79. http://dx.doi.org/10.4028/www.scientific.net/amm.766-767.474.

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Phase Change Materials (PCM) plays an important role in energy conservation, which is very attractive because of its high storage density with small temperature change. In this paper an attempt made to review number of paper based on Phase Change Materials (PCM) in various field of thermal energy storage systems and its applications. The Phase Change Material is the latent heat storage material. As the source temperature raises the chemical bonds within the PCM breaks and the material changes its phase from one phase to another phase. The material begins to melt when the phase change temperatu
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AL-Ataby, Mohammed Jafer Ali. "Phase Change Materials for Thermal Energy Storage." Journal of Petroleum Research and Studies 3, no. 1 (2021): 69–92. http://dx.doi.org/10.52716/jprs.v3i1.64.

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Salt hydrate phase change materials used for thermal storage in space heating and cooling applications have low material costs, but high packaging costs. A more economic installed storage may be possible with medium priced, high latent heat. Latent heat storage is one of the most efficient ways of storing thermal energy. Unlike the sensible heat storage method, the latent heat storage method provides much higher storage density, with a smaller temperature difference between storing and releasing heat. This paper work on latent heat storage and provides an insight to recent efforts to develop n
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Al-Abdali, Akthem Mohi, and Handri Ammari. "Thermal energy storage using phase-change material in evacuated-tubes solar collector." AIMS Energy 10, no. 3 (2022): 486–505. http://dx.doi.org/10.3934/energy.2022024.

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<abstract> <p>The use of phase change materials in solar thermal collectors improves their thermal performance significantly. In this paper, a comparative study is conducted systematically between two solar receivers. The first receiver contains paraffin wax, while the other does not. The goal was to find out to which degree paraffin wax can enhance the energy storage and thermal efficiency of evacuated tubes solar collectors. Measurements of water temperature and solar radiation were recorded on a few days during August of 2021. The experimental analysis depended on two stages. Th
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He, Chenhao, Xiangguo Li, Yang Lv, Jianming Dan, Haitian Yan, and Xiangqin Shi. "Preparation and Characterization of Graphite–SiO2 Composites for Thermal Storage Cement-Based Materials." Materials 17, no. 12 (2024): 2880. http://dx.doi.org/10.3390/ma17122880.

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Thermal storage cement-based materials, formed by integrating phase change materials into cementitious materials, exhibit significant potential as energy storage materials. However, poor thermal conductivity severely limits the development and application of these materials. In this study, an amorphous SiO2 shell is encapsulated on a graphite surface to create a novel thermally modified admixture (C@SiO2). This material exhibits excellent thermal conductivity, and the surface-encapsulated amorphous SiO2 enhances its bond with cement. Further, C@SiO2 was added to the thermal storage cement-base
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Murali, G., K. Mayilsamy, and B. Mubarak Ali. "A Review of Latent Heat Thermal Energy Storage Systems." Applied Mechanics and Materials 787 (August 2015): 37–42. http://dx.doi.org/10.4028/www.scientific.net/amm.787.37.

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Thermal Energy Storage (TES) has become extremely important in the recent years since it balances the energy demand and improves the efficiency of the solar systems. It is important that the thermal energy storage systems have the necessary characteristics to improve the performance of the storage. Usage of Phase Change Materials (PCM) for energy storage provides a great benefit but, their low thermal conductivity becomes a major drawback. This can be compensated with the use of phase change material in an appropriate design for successful functioning of the system. This review article summari
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Thèses sur le sujet "Thermal energy storage material"

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Sözen, Zeki Ziya. "Thermal energy storage by agitated capsules of phase change material." Thesis, University of British Columbia, 1985. http://hdl.handle.net/2429/25974.

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Thermal energy storage via the latent heat of suitable phase change materials has the advantages of higher energy storage density and relatively isothermal behaviour compared to sensible heat storage systems. Glauber's salt (Na₂S0₄∙10H₂0) is one of the most extensively studied phase change materials for solar energy systems because of its low price, suitable phase change temperature and high latent heat. However, segregation due to incongruent melting behaviour leading to loss in the heat storage efficiency upon repeated melting-freezing cycling is a serious problem which has severely limited
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Fredi, Giulia. "Multifunctional polymer composites for thermal energy storage and thermal management." Doctoral thesis, Università degli studi di Trento, 2020. http://hdl.handle.net/11572/265328.

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Thermal energy storage (TES) consists in storing heat for a later use, thereby reducing the gap between energy availability and demand. The most diffused materials for TES are the organic solid-liquid phase change materials (PCMs), such as paraffin waxes, which accumulate and release a high amount of latent heat through a solid-liquid phase change, at a nearly constant temperature. To avoid leakage and loss of material, PCMs are either encapsulated in inert shells or shape-stabilized with porous materials or a nanofiller network. Generally, TES systems are only a supplementary component added
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Bugaje, Idris M. "Thermal energy storage in phase change materials." Thesis, University of Newcastle Upon Tyne, 1993. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.335920.

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Oliver, David Elliot. "Phase-change materials for thermal energy storage." Thesis, University of Edinburgh, 2015. http://hdl.handle.net/1842/17910.

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There is a current requirement for technologies that store heat for both domestic and industrial applications. Phase-change materials (PCMs) represent an important class of materials that offer potential for heat storage. Heat-storage systems are required to undergo multiple melt/freeze cycles without any change in melting-crystallisation point and heat output. Salt hydrates are attractive candidates on account of their high energy densities, but there are issues associated with potential crystallisation of lower-hydrates, long-term stability, and reliable nucleation. An extensive review of th
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Abou-Ziyan, H. Z. Z. "Heat and momentum transfer in porous material used for thermal energy storage." Thesis, University of Leeds, 1988. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.233826.

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Quant, Colón Laura Marcela. "Study of a urea-based phase change material for thermal energy storage." Thesis, Pau, 2020. http://www.theses.fr/2020PAUU3010.

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La technologie de stockage de l'énergie thermique par chaleur latente (LHTES) est abordée en travaillant à la fois sur les matériaux à changement de phase MCP utilisés et sur les systèmes de stockage techniquement et économiquement viables pour leur intégration dans les bâtiments. En ce qui concerne le matériau MCP, un mélange eutectique d'urée et de nitrate de sodium a été précédemment identifié comme un bon candidat pour les applications eau chaude sanitaire et chauffage. L'un des principaux objectifs de la thèse de doctorat était la caractérisation de ces aspects pour évaluer l’utilisation
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Lefebvre, Dominique. "Thermal Energy Storage Using Adsorption Processes for Solar and Waste Heat Applications: Material Synthesis, Testing and Modeling." Thesis, Université d'Ottawa / University of Ottawa, 2016. http://hdl.handle.net/10393/34173.

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As the worldwide energy demand continues to increase, scientists and engineers are faced with the increasingly difficult task of meeting these needs. Currently, the major energy sources, consisting of oil, coal, and natural gas, are non-renewable, contribute to climate change, and are rapidly depleting. Renewable technology research has become a major focus to provide energy alternatives which are environmentally-friendly and economically competitive to sustain the future worldwide needs. Thermal energy storage using adsorption is a promising technology which can provide energy for heating and
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Kotze, Johannes Paulus. "Thermal energy storage in metallic phase change materials." Thesis, Stellenbosch : Stellenbosch University, 2014. http://hdl.handle.net/10019.1/96049.

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Thesis (PhD) -- Stellenbosch University, 2014.<br>ENGLISH ABSTRACT: Currently the reduction of the levelised cost of electricity (LCOE) is the main goal of concentrating solar power (CSP) research. Central to a cost reduction strategy proposed by the American Department of Energy is the use of advanced power cycles like supercritical steam Rankine cycles to increase the efficiency of the CSP plant. A supercritical steam cycle requires source temperatures in excess of 620°C, which is above the maximum storage temperature of the current two-tank molten nitrate salt storage, which stores thermal
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Pitié, Frédéric. "High temperature thermal energy storage : encapsulated phase change material particles : determination of thermal and mechanical properties." Thesis, University of Warwick, 2012. http://wrap.warwick.ac.uk/57108/.

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Chiu, Justin NingWei. "Heat Transfer Aspects of Using Phase Change Material in Thermal Energy Storage Applications." Licentiate thesis, KTH, Kraft- och värmeteknologi, 2011. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-34263.

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Innovative methods for providing sustainable heating and cooling through thermal energy storage (TES) have gained increasing attention as heating and cooling demands in the built environment continue to climb. As energy prices continue to soar and systems reach their maximal capacity, there is an urgent need for alternatives to alleviate peak energy use. TES systems allow decoupling of energy production from energy utilization, both in location and in time. It is shown in this thesis that successful implementation of TES in the built environment alleviates peak energy load and reduces network
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Livres sur le sujet "Thermal energy storage material"

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Farid, Mohammed, Amar Auckaili, and Gohar Gholamibozanjani. Thermal Energy Storage with Phase Change Materials. CRC Press, 2021. http://dx.doi.org/10.1201/9780367567699.

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Fleischer, Amy S. Thermal Energy Storage Using Phase Change Materials. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-20922-7.

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Delgado, João M. P. Q., Joana C. Martinho, Ana Vaz Sá, Ana S. Guimarães, and Vitor Abrantes. Thermal Energy Storage with Phase Change Materials. Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-319-97499-6.

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B, Ibrahim Mounir, and United States. National Aeronautics and Space Administration., eds. Analysis of thermal energy storage material with change-of-phase volumetric effects. National Aeronautics and Space Administration, 1990.

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Ali, Hafiz Muhammad. Phase Change Materials for Thermal Energy Management and Storage. CRC Press, 2024. http://dx.doi.org/10.1201/9781003331957.

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Frazzica, Andrea, and Luisa F. Cabeza, eds. Recent Advancements in Materials and Systems for Thermal Energy Storage. Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-319-96640-3.

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National Renewable Energy Laboratory (U.S.) and SolarPACES (Conference) (2011 : Granada, Spain), eds. High temperature phase change materials for thermal energy storage applications: Preprint. National Renewable Energy Laboratory, 2011.

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Mounir, Ibrahim, and United States. National Aeronautics and Space Administration., eds. Experimental and computational investigations of phase change thermal energy storage canisters. National Aeronautics and Space Administration, 1996.

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E, Coles-Hamilton Carolyn, Juhasz Albert J, and United States. National Aeronautics and Space Administration., eds. Selection of high temperature thermal energy storage materials for advanced solar dynamic space power systems. National Aeronautics and Space Administration, 1987.

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Glatzmaier, Greg C. Summary report for Concentrating Solar Power Thermal Storage Workshop: New concepts and materials for thermal energy storage and heat-transfer fluids, May 20, 2011. National Renewable Energy Laboratory, 2011.

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Chapitres de livres sur le sujet "Thermal energy storage material"

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Ali, Hafiz Muhammad, Furqan Jamil, and Hamza Babar. "Energy Storage Materials in Thermal Storage Applications." In Thermal Energy Storage. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-1131-5_5.

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Ali, Hafiz Muhammad, Furqan Jamil, and Hamza Babar. "Advanced Thermal Energy Storage Materials." In Thermal Energy Storage. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-1131-5_3.

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Ge, Zhiwei, Zhu Jiang, Lin Cong, Boyang Zou, and Yulong Ding. "Chapter 4. Latent Heat Storage Materials." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00055.

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Cabeza, Luisa F. "Chapter 3. Sensible Thermal Energy Storage Materials." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00042.

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Ali, Hafiz Muhammad, Furqan Jamil, and Hamza Babar. "Thermophysical Properties of Advanced Energy Storage Materials." In Thermal Energy Storage. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-1131-5_4.

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Navarro, M. E., A. Palacios Trujillo, Z. Jiang, Y. Jin, Y. Zhang, and Y. Ding. "Chapter 7. Manufacture of Thermal Energy Storage Materials." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00121.

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Nie, Binjian, Jiaxu Liu, Ning He, et al. "Chapter 5. Sorption-based Thermochemical Energy Storage Materials." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00091.

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Kim, Seon Tae, Hiroki Takasu, and Yukitaka Kato. "Chapter 6. Reversible Reaction-based Thermochemical Energy Storage Materials." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00107.

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Chen, Qicheng, Argyrios Anagnostopoulos, and Geng Qiao. "Chapter 8. Modeling of Thermal Energy Storage at Materials Scale." In Thermal Energy Storage. Royal Society of Chemistry, 2021. http://dx.doi.org/10.1039/9781788019842-00191.

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Maksum, Yelaman, Lin Cong, Boyang Zou, et al. "Phase Change Material-Based Thermal Energy Storage for Cold Chain Applications – From Materials to Systems." In Solid–Liquid Thermal Energy Storage. CRC Press, 2022. http://dx.doi.org/10.1201/9781003213260-15.

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Actes de conférences sur le sujet "Thermal energy storage material"

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Paul, Shiladitya, Deepak Sharma, and Elie Ghanatos. "Materials Selection for MgCl2.6H2O-based PCM Thermal Energy Storage System." In CONFERENCE 2025. AMPP, 2025. https://doi.org/10.5006/c2025-00217.

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This paper presents the work carried out in ‘SEHRENE’ (Horizon Europe Project) to select suitable materials of construction for MgCl2.6H2O-based PCM (phase change material) thermal energy storage system. Commonly used construction materials, such as carbon steels, often have corrosion rates that limit their use in industrial PCMs. Metals that form passivating oxide films, such as Al, may give lower corrosion rates if fluxing of the oxide does not occur in the molten PCM. There have been suggestions to use Al alloy construction materials in PCM-based thermal energy storage (TES) systems where b
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Oliveira, Miguel Castro, Sofia Bezerra, Bruno Pereira, et al. "Innovative Methodology and Decision Support Tool for Thermal Energy Storage Material Selection." In 2025 21st International Conference on the European Energy Market (EEM). IEEE, 2025. https://doi.org/10.1109/eem64765.2025.11050233.

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Ristic, Alenka, Stefan K. Henninger, Slavko Kaucic, and Natasa Zabukovec Logar. "Novel Adsorption Material for Thermal Energy Storage." In EuroSun 2010. International Solar Energy Society, 2010. http://dx.doi.org/10.18086/eurosun.2010.16.27.

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Amberkar, Tejashree, and Prakash Mahanwar. "Phase Change Material Nanocomposites for Thermal Energy Storage Applications." In The 3rd International Online-Conference on Nanomaterials. MDPI, 2022. http://dx.doi.org/10.3390/materproc2022009008.

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Patil, Rupali, A. D. Desai, and H. U. Tiwari. "Enhancement of thermal energy storage using phase changing material." In 9TH NATIONAL CONFERENCE ON RECENT DEVELOPMENTS IN MECHANICAL ENGINEERING [RDME 2021]. AIP Publishing, 2022. http://dx.doi.org/10.1063/5.0081111.

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Liu, Wenqiang, Bo Feng, and Geoff X. Wang. "Applicability of New Calcium based Material for Thermal Energy Storage." In Power and Energy Systems. ACTAPRESS, 2013. http://dx.doi.org/10.2316/p.2013.800-074.

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Su, Che-Fu, Xinrui Xiang, Hamed Esmaeilzadeh, et al. "A New Composite Phase Change Material for Thermal Energy Storage." In ASME 2019 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/imece2019-10457.

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Abstract Enhancing the thermal conductivity of phase change materials (PCMs) is attracting attention for renewable energy applications such as solar, geothermal and wind energy. The use of energy storage can significantly improve the efficiency of renewable energy systems due to their intermittent nature. Latent heat thermal energy storage is a particularly attractive technique due to its high capacity can store energy at near constant temperature corresponding to the phase transition temperature of the PCMs. The present work aims to overcome this undesirable property of low thermal conductivi
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Singh, Ajit, and Reza Baghaei Lakeh. "Thermal Energy Storage Conceptual Design Using Reclaimed Minerals As Heat Storage Material." In ASME 2024 18th International Conference on Energy Sustainability collocated with the ASME 2024 Heat Transfer Summer Conference and the ASME 2024 Fluids Engineering Division Summer Meeting. American Society of Mechanical Engineers, 2024. http://dx.doi.org/10.1115/es2024-131375.

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Abstract Thermal energy storage (TES) plays a crucial role in energy sustainability, enabling the efficient storage and utilization of thermal energy from various sources. In this paper, we propose a novel TES system that utilizes reclaimed minerals as the heat storage medium. The system comprises a tightly packed bed of processed minerals enclosing a circular pathway for heat transfer fluid (HTF). To achieve optimal performance, we develop a computational method and algorithm to estimate the required pipe length for efficient charge and discharge cycles. The analysis encompasses various facto
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Zhao, Weihuan, Ying Zheng, Joseph C. Sabol, et al. "Thermal Energy Storage Using Zinc as Encapsulated Phase Change Material." In ASME 2011 International Mechanical Engineering Congress and Exposition. ASMEDC, 2011. http://dx.doi.org/10.1115/imece2011-63988.

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Concentrating solar power is inherently intermittent and thus thermal energy storage is an essential component of a successful baseload solar power plant. Phase change materials (PCM) have the potential to decrease the cost of thermal energy storage systems for these plants since the latent heat contribution can be significant. The present work deals with certain aspects of using zinc as PCM for storing solar energy at high temperatures from 300°C to 500°C. The objective is the storage of hundreds of mega-watt-hours equivalent of solar energy in systems using zinc as encapsulated phase change
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Bharathan, Desikan, and Greg C. Glatzmaier. "Progress in Thermal Energy Storage Modeling." In ASME 2009 3rd International Conference on Energy Sustainability collocated with the Heat Transfer and InterPACK09 Conferences. ASMEDC, 2009. http://dx.doi.org/10.1115/es2009-90119.

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Economic analyses for concentrated solar power (CSP) systems indicate that the cost of electricity can be reduced through the use a molten-salt thermal energy storage system (TES). Use of a thermocline in the tanks to keep cold and hot fluids separate in the tank has been proposed to further reduce the cost for TES to about $30/kWh thermal. This paper studies the details for molten-salt storage where the tank is filled with nominally 1-inch-size quartzite rocks and 1/4-inch sand particles. These filler materials are envisioned to occupy 75% of the tank’s volume. Experiments at Sandia National
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Rapports d'organisations sur le sujet "Thermal energy storage material"

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Singh, D., W. Yu, and D. France. Integrated Heat Exchanger-Phase Change Material Thermal Energy Storage System. Office of Scientific and Technical Information (OSTI), 2021. http://dx.doi.org/10.2172/1814238.

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Stamatiou, Anastasia, Rebecca( Ravotti, Andreas König-Haagen, Christoph Rathgeber, Maike Johnson, and Annelies Vandersickel. Definition of boundary conditions for industrial applications and industrial Peak Shaving. IEA SHC Task 58, 2018. http://dx.doi.org/10.18777/ieashc-task58-2024-0002.

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The aim of this project is to find materials and possibilities that allow thermal storage at temperatures in the range of 8 to 15 ° C (PCM8-15) and 50 ° C (PCM50) in addition to today's ice storage. Ice storage for storing latent heat for cooling purposes are now operated with water. For new applications in the field of air conditioning and heating, a higher temperature level is exergetically much cheaper. Based on the PCM with the phase transition temperature of 50 ° C, the storage density can be achieved in the useful hot water storage. This reduces the storage space of the thermal energy st
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Douglas C. Hittle. PHASE CHANGE MATERIALS IN FLOOR TILES FOR THERMAL ENERGY STORAGE. Office of Scientific and Technical Information (OSTI), 2002. http://dx.doi.org/10.2172/820428.

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Mathur, Anoop. Using Encapsulated Phase Change Material in Thermal Energy Storage for Baseload Concentrating Solar Power (EPCM-TES). Office of Scientific and Technical Information (OSTI), 2013. http://dx.doi.org/10.2172/1184415.

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Yu, Wenhua, and Dileep Singh. Prototype Testing of Encapsulated Phase Change Material Thermal Energy Storage (EPCM-TES) for Concentrated Solar Power. Office of Scientific and Technical Information (OSTI), 2019. http://dx.doi.org/10.2172/1512771.

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Montoya, Miguel A., Daniela Betancourt-Jiminez, Mohammad Notani, et al. Environmentally Tuning Asphalt Pavements Using Phase Change Materials. Purdue University, 2022. http://dx.doi.org/10.5703/1288284317369.

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Environmental conditions are considered an important factor influencing asphalt pavement performance. The addition of modifiers, both to the asphalt binder and the asphalt mixture, has attracted considerable attention in potentially alleviating environmentally induced pavement performance issues. Although many solutions have been developed, and some deployed, many asphalt pavements continue to prematurely fail due to environmental loading. The research reported herein investigates the synthetization and characterization of biobased Phase Change Materials (PCMs) and inclusion of Microencapsulat
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Spanner, G. E., and G. L. Wilfert. Potential industrial applications for composite phase-change materials as thermal energy storage media. Office of Scientific and Technical Information (OSTI), 1989. http://dx.doi.org/10.2172/5861369.

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Gomez, J. C. High-Temperature Phase Change Materials (PCM) Candidates for Thermal Energy Storage (TES) Applications. Office of Scientific and Technical Information (OSTI), 2011. http://dx.doi.org/10.2172/1024524.

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Glatzmaier, G. Summary Report for Concentrating Solar Power Thermal Storage Workshop: New Concepts and Materials for Thermal Energy Storage and Heat-Transfer Fluids, May 20, 2011. Office of Scientific and Technical Information (OSTI), 2011. http://dx.doi.org/10.2172/1022291.

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Hopkins, Patrick. Final Scientific/Technical Report: Bio-Based Phase Change Materials (PCMs) for Thermal Energy Storage. Office of Scientific and Technical Information (OSTI), 2023. http://dx.doi.org/10.2172/1963849.

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