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1

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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Andrássy, Z., and Z. Szánthó. "Modelling of latent thermal energy storage systems." International Review of Applied Sciences and Engineering 8, no. 1 (2017): 51–56. http://dx.doi.org/10.1556/1848.2017.8.1.8.

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In this paper phase change materials are presented, as effective thermal energy storage due to their great latent heat storing possibility. The main substance used for thermal energy storage purposes is water. Storing the energy with water is not that effective as with phase change materials, because the temperature of water has to change, and it worsen the heat exchange intensity. On the other hand, with phase change materials the temperature of the material does not have to change due to the latent heat storage possibilities. A buffer tank with two pipe coils filled with phase change materia
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N, Pradeep, and Somesh Subramanian S. "Performance Improvement of a Household Refrigerator using Phase Change Material." Journal of Manufacturing Engineering 16, no. 1 (2021): 032–41. http://dx.doi.org/10.37255/jme.v16i1pp032-041.

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Thermal energy storage through phase change material has been used for wide applications in the field of air conditioning and refrigeration. The specific use of this thermal storage has been for energy storage during low demand and release of this energy during peak loads with potential to provide energy savings due to this. The principle of latent heat storage using phase change materials (PCMs) can be incorporated into a thermal storage system suitable for using deep freezers. The evaporator is covered with another box which has storage capacity or passage through phase change material. The
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Fiedler, Thomas, Graeme E. Murch, Timo Bernthaler, and Irina V. Belova. "Numerical Characterization of Anisotropic Heat Sink Composites." Materials Science Forum 654-656 (June 2010): 1500–1503. http://dx.doi.org/10.4028/www.scientific.net/msf.654-656.1500.

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This work addresses the numerical analysis of anisotropic composite structures for thermal energy storage and temperature stabilization. The basic idea of heat sink composites is the combination of metallic matrices for fast energy transfer with phase change materials for thermal energy storage. Anisotropic matrices, such as lotus-type structures, allow for increased control of the thermal energy flow, without the necessity of additional thermal insulation. As an example, thermal energy can be directed towards a surface cooled by convection and excess energy is stored in the phase-change mater
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Yang, Tianyu, William P. King, and Nenad Miljkovic. "Phase change material-based thermal energy storage." Cell Reports Physical Science 2, no. 8 (2021): 100540. http://dx.doi.org/10.1016/j.xcrp.2021.100540.

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Kumar B, Swaraj. "Finite Volume Analysis of Thermal Energy Storage in a Thermochemical Material." INTERANTIONAL JOURNAL OF SCIENTIFIC RESEARCH IN ENGINEERING AND MANAGEMENT 09, no. 03 (2025): 1–9. https://doi.org/10.55041/ijsrem42261.

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Abstract This paper focus on finite volume analysis of thermal energy storage in a thermochemical material (TCM). The storage of energy becomes important as the production of renewable energy increases. The performance of thermal energy storage material is depends on many factors like energy storage density, available energy for storage, nature of the TCM etc. A generalised computer code is developed in FORTRAN and the process of thermal energy storage and the influence of various factors like input heat flux, porosity, relative humidity etc. are analysed. The effect of these factors in the th
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Derii, Volodymyr, and Oleksandr Zgurovets. "Heat energy storages." System Research in Energy 2023, no. 3 (2023): 4–14. http://dx.doi.org/10.15407/srenergy2023.03.004.

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The article provides an analytical review of thermal energy storage. The reasons determining their demand are shown. It has been established that the market of thermal accumulators is developing quite dynamically. According to the forecast of the International Renewable Energy Agency, the global market for thermal accumulators may triple by 2030 from 234 GWh of installed capacity in 2019 to about 800 GWh in 2030. Investments in the development of thermal accumulators are expected to reach 13–28 billion US dollars. Their capacity for power generation can be 491–631 GWh, for heat supply – 143–19
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Guo, Luna, Wei Ji, Zhaozhao Gao, et al. "Study on the selection method of solid cold energy storage medium for liquid air energy storage." IOP Conference Series: Materials Science and Engineering 1240, no. 1 (2022): 012105. http://dx.doi.org/10.1088/1757-899x/1240/1/012105.

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Abstract Liquid air energy storage (LAES) is a promising large-scale energy storage technology. A packed bed cryogenic regenerator was investigated for cold energy storage in the LAES system. As the thermophysical properties of the filling material directly affects the performance of the regenerator, sensitivity analyses of the specific heat capacity and thermal conductivity were carried out. Results show that the thickness of the thermocline in the packed bed can be reduced by increasing the specific heat capacity and decreasing the thermal conductivity. Furthermore, the synergy effect of the
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Uday, Maruti Jad, and Abhijeet P. Shah Dr. "NUMERICAL ANALYSIS ON THERMAL ENERGY STORAGE TANK FILLED WITH PHASE CHANGE MATERIAL." JournalNX - a Multidisciplinary Peer Reviewed Journal RIT PG Con-18 (April 22, 2018): 303–7. https://doi.org/10.5281/zenodo.1413820.

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The use of a thermal energy storage system with phase change materials (PCMs) is an efficient way of energy storage. PCMs are generally used in thermal energy storage systems for heat pumps, solar systems, spacecraft thermal applications etc. The purpose of this study is to identify effect of geometrical changes on the melting process of PCM. Computational fluid dynamic (CFD) is used to analyze phase change process. Thermal energy storage tank consists of a vertical tube in tube geometry where outer tube consist phase change material and inner pipe carrying hot fluid. Paraffin is used as laten
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Shi, Qi Song, and Tai Qi Liu. "Study on Transition Characteristics of Poly(Ethylene Glycol)/ Selected Fatty Acids Phase Change Materials." Materials Science Forum 620-622 (April 2009): 49–52. http://dx.doi.org/10.4028/www.scientific.net/msf.620-622.49.

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In the present study, poly(ethylene glycol)(PEG) with different molecular weights were blended with different fatty acids: capric, lauric or stearic acid as a thermal energy storage material. Latent heat thermal energy storages properties of the blends were evaluated by using the differential scanning calorimetry (DSC). The thermal analysis indicated that it is possible to obtain homogeneous PEG/fatty acid blends by mixing in the melt and subsequent solidification. The PEG-fatty acids blends had greater enthalpy and exhibited good thermal stability and can be used as a new kind of phase change
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Saher, Saliha, Sam Johnston, Ratu Esther-Kelvin, Jennifer M. Pringle, Douglas R. MacFarlane, and Karolina Matuszek. "Trimodal thermal energy storage material for renewable energy applications." Nature 636, no. 8043 (2024): 622–26. https://doi.org/10.1038/s41586-024-08214-1.

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Karampudi, Nitya. "Thermal Energy Storage Technology in solar Energy Utilization: A Review." International Transactions on Electrical Engineering and Computer Science 2, no. 2 (2023): 80–87. http://dx.doi.org/10.62760/iteecs.2.2.2023.52.

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Thermal energy storage (TES) is a promising technique that conserves accumulated thermal energy from heat and cold mediums, making it available for future use. This method allows energy to be stored under various conditions, presenting an attractive solution for harnessing solar radiation efficiently and in large quantities. TES is becoming increasingly important as renewable electricity integration grows and the demand for low-carbon energy rises. Concentrating solar power plants benefit from TES, enabling them to store excess solar energy during peak times and utilize it during periods of lo
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P, Bala Subrahmanyam, and Rohit Soni Prof. "The Viability of Thermal Energy Storage and Phase Change Material A Review." International Journal of Trend in Scientific Research and Development 2, no. 3 (2018): 2636–41. https://doi.org/10.31142/ijtsrd12776.

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Energy demands vary on daily, weekly and seasonal bases. With rising cost of energy and an increasing demand for renewable energy sources, thermal energy storage TES systems are becoming an interesting option. TES is a key component of any successful thermal system and a good TES should allow minimum thermal energy losses. Thermal energy storage is considered advanced energy technology, and there has been an increasing interest in using this essential technique for the thermal applications such as heating, hot water, air conditioning, and so on. The selection of the TES systems mainly depends
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Zhang, Kaiyan. "Advancements in Phase Change Materials: A Path to Sustainable Energy Solutions in China." Highlights in Science, Engineering and Technology 73 (November 29, 2023): 200–207. http://dx.doi.org/10.54097/hset.v73i.12865.

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With the rapid development of China, the country's demand for energy has significantly increased. According to the "World Energy Outlook 2020," China's annual average growth rate of primary energy consumption is 1.9%, and it is predicted that China's energy consumption will account for over 20% of global energy consumption by 2050. In the energy budget, 90% is allocated to thermal energy conversion, transmission, and storage. Facing an impending energy crisis, enhancing energy production while minimizing energy loss has become a matter of widespread concern. Phase Change Materials (PCMs), also
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Yogi Goswami, D., Sudhakar Neti, Arun Muley, and George Roe. "Canned Heat." Mechanical Engineering 135, no. 06 (2013): 36–41. http://dx.doi.org/10.1115/1.2013-jun-2.

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This article highlights different research efforts to utilize thermal energy and thermal energy storage technologies. At several technical and panel sessions at the November ASME International Mechanical Engineering Congress and Exposition in Houston, there has been much discussion of cutting-edge work in thermal energy storage, including thermal energy storage materials, applications, and systems. Research into thermal energy storage is not limited to the confines of government and academia. Private companies are investigating whether they can incorporate thermal storage into some of their sy
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Rahjoo, Mohammad, Guido Goracci, Juan J. Gaitero, Pavel Martauz, Esther Rojas, and Jorge S. Dolado. "Thermal Energy Storage (TES) Prototype Based on Geopolymer Concrete for High-Temperature Applications." Materials 15, no. 20 (2022): 7086. http://dx.doi.org/10.3390/ma15207086.

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Thermal energy storage (TES) systems are dependent on materials capable of operating at elevated temperatures for their performance and for prevailing as an integral part of industries. High-temperature TES assists in increasing the dispatchability of present power plants as well as increasing the efficiency in heat industry applications. Ordinary Portland cement (OPC)-based concretes are widely used as a sensible TES material in different applications. However, their performance is limited to operation temperatures below 400 °C due to the thermal degradation processes in its structure. In the
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Peng, Guangjian, Guijing Dou, Yahao Hu, Yiheng Sun, and Zhitong Chen. "Phase Change Material (PCM) Microcapsules for Thermal Energy Storage." Advances in Polymer Technology 2020 (January 12, 2020): 1–20. http://dx.doi.org/10.1155/2020/9490873.

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Phase change materials (PCMs) are gaining increasing attention and becoming popular in the thermal energy storage field. Microcapsules enhance thermal and mechanical performance of PCMs used in thermal energy storage by increasing the heat transfer area and preventing the leakage of melting materials. Nowadays, a large number of studies about PCM microcapsules have been published to elaborate their benefits in energy systems. In this paper, a comprehensive review has been carried out on PCM microcapsules for thermal energy storage. Five aspects have been discussed in this review: classificatio
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Kuta, Marta, Dominika Matuszewska, and Tadeusz Michał Wójcik. "Designs of PCM based heat exchangers constructions for thermal energy storage tanks – examples and case study for selected design." E3S Web of Conferences 70 (2018): 01010. http://dx.doi.org/10.1051/e3sconf/20187001010.

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Increasing energy consumption in residential and public buildings requires development of new technologies for thermal energy production and storage. One of possibilities for the second listed need is the use of phase change materials (PCMs). This work is focused on solutions in this area and consists of two parts. First one is focused on different designs of thermal energy storage (TES) tanks based on the phase change materials. The second part is the analysis of tests results for TES tank containing shelf and tube heat exchanger and filled with phase change material. Thermal energy storage t
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Haunstetter, Jürgen, Michael Krüger, and Stefan Zunft. "Experimental Studies on Thermal Performance and Thermo-Structural Stability of Steelmaking Slag as Inventory Material for Thermal Energy Storage." Applied Sciences 10, no. 3 (2020): 931. http://dx.doi.org/10.3390/app10030931.

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Thermal energy storage (TES) systems are key components for concentrated solar power plants to improve their dispatchability and for shifting the energy production efficiently to high revenue periods. The commercial state of the art is the molten salt two tank storage technology. However, this TES confronts some issues like freezing and decomposition, which require continued technical attention. Furthermore, the molten salt itself is very expensive compared to other storage materials. A TES option that possesses a high cost reduction potential and the ability to increase the whole power plant
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Awan, Hafiz Taimoor Ahmed, Laveet Kumar, Weng Pin Wong, Rashmi Walvekar, and Mohammad Khalid. "Recent Progress and Challenges in MXene-Based Phase Change Material for Solar and Thermal Energy Applications." Energies 16, no. 4 (2023): 1977. http://dx.doi.org/10.3390/en16041977.

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Energy storage is becoming a critical issue due to the diminishing availability of fossil fuels and the intermittent nature of current renewable energy sources. As a result, thermal management (TM) and thermal energy systems have gained significant attention due to their crucial roles in various industries. Among the different TM materials, MXenes, a member of the transition metal carbide/nitride family, have emerged as a promising material due to their unique 2D nanostructure, changeable surface chemistry, high electrical/thermal conductivity, light absorptivity, and low infrared emissivity.
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Pal, Manisha, and A. K. Chauhan. "Experimental Investigation of Thermal Energy Storage with Phase Changing Material." International Journal of Advance Research and Innovation 7, no. 1 (2019): 86–94. http://dx.doi.org/10.51976/ijari.711913.

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Solar energy is the most prospective source of energy in recent years. Investigation is going on to utilize the solar energy by various academicians and researchers. The main problem in harnessing and using solar energy is its discontinuous nature. Solar energy is not available continuously for 24 hours. So, there is a need to develop a method to store thermal energy during sunshine and utilise this stored energy as per requirement. Some materials available called phase changing materials (PCMs) which can store large amount of thermal energy in the form of latent heat. This energy can be used
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Bayón, Rocío, and Esther Rojas. "Feasibility study of D-mannitol as phase change material for thermal storage." AIMS Energy 5, no. 3 (2017): 404–24. http://dx.doi.org/10.3934/energy.2017.3.404.

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Bałon, Paweł, Bartłomiej Kiełbasa, Łukasz Kowalski, and Robert Smusz. "Thermal Performance of the Thermal Storage Energy with Phase Change Material." Acta Mechanica et Automatica 17, no. 1 (2023): 76–84. http://dx.doi.org/10.2478/ama-2023-0009.

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Abstract Values of energy supply and demand vary within the same timeframe and are not equal. Consequently, to minimise the amount of energy wasted, there is a need to use various types of energy storing systems. Recently, one can observe a trend in which phase change materials (PCM) have gained popularity as materials that can store an excess of heat energy. In this research, the authors analysed paraffin wax (cheese wax)’s capability as a PCM energy storing material for a low temperature energy-storage device. Due to the relatively low thermal conductivity of wax, the authors also analysed o
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Müller, Danny, Christian Knoll, Georg Gravogl, et al. "CuSO4/[Cu(NH3)4]SO4-Composite Thermochemical Energy Storage Materials." Nanomaterials 10, no. 12 (2020): 2485. http://dx.doi.org/10.3390/nano10122485.

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The thermochemical energy-storage material couple CuSO4/[Cu(NH3)4]SO4 combines full reversibility, application in a medium temperature interval (<350 °C), and fast liberation of stored heat. During reaction with ammonia, a large change in the sulfate solid-state structure occurs, resulting in a 2.6-fold expansion of the bulk material due to NH3 uptake. In order to limit this volume work, as well as enhance the thermal conductivity of the solid material, several composites of anhydrous CuSO4 with inorganic inert support materials were prepared and characterized with regard to their energy st
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Florence, Awuor Misawo, T. O. Onyango Thomas, and O. Nyamwala Fredrick. "Heat Transfer-Based on Nano-particles for Thermal Energy Storage in Phase Change Material." International Journal of Recent Research in Physics and Chemical Sciences (IJRRPCS) 12, no. 1 (2025): 1–10. https://doi.org/10.5281/zenodo.15223592.

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<strong>Abstract:</strong> This study investigates the enhancement of thermal energy storage performance in phase change materials (PCMs) through the integration of nanoparticles, focusing on nano-enhanced PCMs (NEPCMs). A finite volume numerical model is developed to simulate heat transfer and fluid dynamics during the melting process within a cylindrical enclosure. The governing equations of mass, momentum, and energy are discretized and non-dimensionalized to evaluate the effects of nanoparticle concentration, size, and distribution on heat transfer efficiency and thermodynamic stability. A
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Dubey, Kaushalendra Kumar, and R. K. Mishra. "A Review on Properties of Phase Change Material for Solar Thermal Storage System." International Journal of Advance Research and Innovation 2, no. 2 (2014): 157–66. http://dx.doi.org/10.51976/ijari.221423.

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Thermal energy could have several geneses but storage of solar thermal energy is one of the principal areas of investigation. The various conventional and unconventional materials are investigated for their capability to store thermal energy. These thermal energy storage devices (TESD) are selected on the basis of some essential properties like, thermal, physical, chemical properties and economic aspects. Melting point, heat of fusion, density, heat capacity, thermal conductivity, compatibility with container and cost of production are the chief parameters for selection of phase change materia
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Chichango, Fernando, Luís Cristóvão, Jorge Nhambiu, Fabião Cumbe, and Gil Gabriel Mavanga. "Literature review of potential materials for the construction of an alternative flat-plate solar collector." Research, Society and Development 13, no. 5 (2024): e0513545674. http://dx.doi.org/10.33448/rsd-v13i5.45674.

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Through systematic review method the article presents the potential of existing solar energy in Mozambique for use in water heating with the integration of thermal energy storage systems that are currently being investigated. It emphasizes the need for affordable materials in building solar collectors for Mozambique’s homes, leveraging the country’s solar potential to reduce electricity consumption and environmental impact for sustainable development. It explores current research on thermal energy storage systems for solar water heating and reviews alternative materials for solar collectors ba
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Humphries, Terry D., Kasper T. Møller, William D. A. Rickard, et al. "Dolomite: a low cost thermochemical energy storage material." Journal of Materials Chemistry A 7, no. 3 (2019): 1206–15. http://dx.doi.org/10.1039/c8ta07254j.

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Florence, Awuor Misawo, T. O. Onyango Thomas, and O. Nyamwala Fredrick. "A Control Volume Analysis of Energy Distribution on Nano-Enhanced Phase Change Material." International Journal of Recent Research in Interdisciplinary Sciences (IJRRIS) 12, no. 2 (2025): 1–10. https://doi.org/10.5281/zenodo.15223406.

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<strong>Abstract:</strong> The growing global energy demand has led to research into effective energy storage technologies such as Thermal Energy Storage (TES) and Phase Change Materials (PCMs). This study explores the use of Nano-Enhanced Phase Change Materials (NEPCMs) to enhance thermal conductivity and overall performance. Results show that nanoparticle inclusion significantly improves thermal conductivity and energy distribution, especially at higher temperature differences. Future research should focus on the long-term stability and effects of different nanoparticle types and concentrati
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V. Voronin, Denis, Evgenii Ivanov, Pavel Gushchin, Rawil Fakhrullin, and Vladimir Vinokurov. "Clay Composites for Thermal Energy Storage: A Review." Molecules 25, no. 7 (2020): 1504. http://dx.doi.org/10.3390/molecules25071504.

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The development of novel materials and approaches for effective energy consumption and the employment of renewable energy sources is one of the current trends in modern material science. With this respect, the number of researches is focused on the effective harvesting and storage of solar energy for various applications. Phase change materials (PCMs) are known to be able to store thermal energy of the sunlight due to adsorption and release of latent heat through reversible phase transitions. Therefore, PCMs are promising as functional additives to construction materials and paints for advance
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Hamdan, M. A., and F. A. Elwerr. "Thermal energy storage using a phase change material." Solar Energy 56, no. 2 (1996): 183–89. http://dx.doi.org/10.1016/0038-092x(95)00090-e.

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Sadek, Olfat M., and Wafaa K. Mekhamer. "Ca-montmorillonite clay as thermal energy storage material." Thermochimica Acta 363, no. 1-2 (2000): 47–54. http://dx.doi.org/10.1016/s0040-6031(00)00598-0.

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Sadek, Olfat M., and Waffa K. Mekhemer. "Na-montmorillonite clay as thermal energy storage material." Thermochimica Acta 370, no. 1-2 (2001): 57–63. http://dx.doi.org/10.1016/s0040-6031(00)00769-3.

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Ren, Xue Tan, Ling Ke Zeng, Ping An Liu, and Hui Wang. "Thermal Energy Storage System of Sulfate / Fiber Matrix Composite." Key Engineering Materials 368-372 (February 2008): 1077–79. http://dx.doi.org/10.4028/www.scientific.net/kem.368-372.1077.

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The K2SO4-Na2SO4 system was studied by differential scanning calorimetry (DSC) with the aim of developing a new phase-change thermal energy storage material. The temperature range of phase change is from 800°C to 1069°C according to the phase diagram. A new shape-stabilized phase-change material made of molten salts impregnated by capillary forces in a porous-fiber matrix was presented. These materials were characterized by X-ray diffraction analysis and differential scanning calorimetry analysis. The results indicated that the compound included 70~80% of molten salts, meanwhile the heat stora
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Shi, Qi Song, and Kui Long Liu. "Preparation and Performance of Myristic Acid/Silicon Dioxide Composites as Thermal Energy Storage Materials." Advanced Materials Research 602-604 (December 2012): 1086–89. http://dx.doi.org/10.4028/www.scientific.net/amr.602-604.1086.

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The myristic acid/silicon dioxide composite materials were prepared by sol-gel methods. The myristic acid was used as the phase change material for thermal energy storage, with the SiO2 acting as the supporting material. The structural analysis of these form-stable myristic acid /SiO2 composite phase change materials was carried out using Fourier transformation infrared spectroscope (FT-IR).The microstructure of the form-stable composite phase change materials was observed by a scanning electronic microscope (SEM). The thermal properties was investigated by a differential scanning calorimeter
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Ahmed, Raghad, Vandana C P, G. Vijendar Reddy, Rajeev Sobti, Shilpi Chauhan, and Arun Pratap Srivastava. "Analysis of efficient building for energy conversion and storage using phase change material." E3S Web of Conferences 507 (2024): 01076. http://dx.doi.org/10.1051/e3sconf/202450701076.

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Building energy efficiency is now a top priority because of the major negative effects that may happen on the society, the economy, and the environment. In various parts of the world, several researchers have worked on ways of achieving methods that can use phasechange materials as thermal storage. This is because these technologies have the potential to greatly reduce energy consumption when combined with solar power. PCMs store thermal energy in ways quite different than ordinary construction materials. These materials make use of latent heat rather than sensible heat. Therefore, phase-chang
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Damseh, Rebhi. "Low-Cost High Energy Density Material for Solar Thermal Heat Storage." issue 2 3, no. 2 (2020): 46–56. http://dx.doi.org/10.48103/jjeci362020.

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A low-cost and enhanced thermal properties composite material for sensible heat storage in solar thermal energy storage applications is introduced. The proposed material is produced primarily for small scale solar thermal applications. However, it can be utilized for large scale solar thermal plants. The material has the advantages of high thermal conductivity and large energy storage density. The introduced material is composed of a mixture of cement and cast-iron particles. To obtain an optimal mixture, different samples of the material are prepared with different ratios of the cement-iron w
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Li, Hui Xing, Hong Yu Ding, Guo Hui Feng, and Xiao Xu Cai. "Analysis of Phase Change Energy Storage Material Selected Based on Rural Kang Body." Applied Mechanics and Materials 521 (February 2014): 699–702. http://dx.doi.org/10.4028/www.scientific.net/amm.521.699.

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Improving rural living thermal environment and rural residential energy-saving effect has becomes a hot society issue. As to two main problems of rural kang which are poor regenerative performance and surface temperature uneven,combined with the characteristics of phase change energy storage technologies,phase change energy storage technology was used in kang body. Grasping the properties and characteristics of different types of energy storage materials,according to the requirement of the human body comfort temperature of the kang surface,selecting phase transition temperature of the phase ch
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Zou, Weihua, Cong Li, Delin Sun, and Naike Zou. "A Simpler Fabrication for Thermal Energy Storage Wood." Forests 14, no. 6 (2023): 1190. http://dx.doi.org/10.3390/f14061190.

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Using thermal energy storage wood with phase change materials (PCM) as a building material can save thermal energy during heat-induced phase transition, and can reduce the energy consumption of indoor heating. In our work, three thermal energy storage poplars (TESPs: TESP-1, TESP-2 and TESP-3) were prepared by directly infiltrating three PCMs (fatty alcohol/acid materials: lauryl alcohol, decanoic acid and myristic acid myristyl ester), respectively, into the longitudinal-cutting plantation poplar woods and by directly encapsulating the PCMs in the poplar-based materials with SiO2 films. The p
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Singer, Matthias, Michael Fischlschweiger, and Tim Zeiner. "Investigation of the Heat Storage Capacity and Storage Dynamics of a Novel Polymeric Macro-Encapsulated Core-Shell Particle Using a Paraffinic Core." Energies 16, no. 2 (2023): 957. http://dx.doi.org/10.3390/en16020957.

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Thermal energy storages represent important devices for the decarbonisation of heat; hence, enabling a circular economy. Hereby, important tasks are the optimisation of thermal losses and providing a tuneable storage capacity, as well as tuneable storage dynamics for thermal energy storage modules which are composed of either sensible or phase change-based heat storage materials. The thermal storage capacity and the storage dynamics behaviour are crucial for fulfilling certain application requirements. In this work, a novel macro-encapsulated and spherical heat storage core-shell structure is
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Wiryanta, I. Kadek Ervan Hadi, Tjokorda Gde Tirta Nindhia, Wayan Nata Septiadi, and I. Made Joni. "The Role of Aluminium Nitride as Reinforcement Material for Phase Change Materials (PCMS)." LOGIC : Jurnal Rancang Bangun dan Teknologi 25, no. 1 (2024): 61–71. https://doi.org/10.31940/logic.v25i1.61-71.

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The improvement of thermal energy storage and management has become a significant focus in various industrial applications, including EV battery thermal management, solar energy storage, and high-power electronics. Phase Change Materials (PCM) are widely used for thermal energy storage due to their capacity to absorb and release latent heat. However, organic-based PCMs like paraffin have limited heat conductivity (~0.2 W/mK), limiting their efficiency. This research investigates the potential of Aluminum Nitride (AlN) as a reinforcing material to improve the thermal conductivity and stability
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