Gotowa bibliografia na temat „Single medium thermocline”

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Artykuły w czasopismach na temat "Single medium thermocline"

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Lou, Wanruo, Nicolas Baudin, Stéphane Roux, Yilin Fan, and Lingai Luo. "Impact of buoyant jet entrainment on the thermocline behavior in a single-medium thermal energy storage tank." Journal of Energy Storage 71 (November 2023): 108017. http://dx.doi.org/10.1016/j.est.2023.108017.

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Geyer, M., W. Bitterlich, and K. Werner. "The Dual Medium Storage Tank at the IEA/SSPS Project in Almeria (Spain); Part I: Experimental Validation of the Thermodynamic Design Model." Journal of Solar Energy Engineering 109, no. 3 (1987): 192–98. http://dx.doi.org/10.1115/1.3268205.

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Efficient and reliable thermal storage is an important requirement for substituting conventional power systems with solar thermal facilities. Storage will synchronize the intermittent supply of solar radiation with the usually constant demand of technical thermal processes. The distributed collector system of the IEA/SSPS Project in Almeri´a (Spain) uses two different storage systems for the 100 to 295°C temperature range: a single thermocline vessel and a dual medium storage tank (DMST). In the first tank, thermal oil is used as the energy carrier as well as for energy storage; in the dual me
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Mira-Hernández, Carolina, Scott M. Flueckiger, and Suresh V. Garimella. "Comparative Analysis of Single- and Dual-Media Thermocline Tanks for Thermal Energy Storage in Concentrating Solar Power Plants." Journal of Solar Energy Engineering 137, no. 3 (2015). http://dx.doi.org/10.1115/1.4029453.

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A molten-salt thermocline tank is a low-cost option for thermal energy storage (TES) in concentrating solar power (CSP) plants. Typical dual-media thermocline (DMT) tanks contain molten salt and a filler material that provides sensible heat capacity at reduced cost. However, conventional quartzite rock filler introduces the potential for thermomechanical failure by successive thermal ratcheting of the tank wall under cyclical operation. To avoid this potential mode of failure, the tank may be operated as a single-medium thermocline (SMT) tank containing solely molten salt. However, in the abse
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Capocelli, M., G. Caputo, M. De Falco, I. Balog, and V. Piemonte. "Numerical Modeling of a Novel Thermocline Thermal Storage for Concentrated Solar Power." Journal of Solar Energy Engineering 141, no. 5 (2019). http://dx.doi.org/10.1115/1.4043082.

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This paper presents the modeling theory and results of an innovative thermal energy storage (TES) facility, ideated, realized, and tested by ENEA (Italy). This prototype enabled the thermocline storage with molten salts in a novel geometry ideated for small-medium scale decentralized solutions, which includes two vertical channels to force the circulation through two heat exchangers, respectively, and realized for charging and discharging phases (in a single tank). A thermophysical model was built and tested properly for this particular geometry in order to analyze the temperature distribution
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Flueckiger, Scott M., Zhen Yang, and Suresh V. Garimella. "Thermomechanical Simulation of the Solar One Thermocline Storage Tank." Journal of Solar Energy Engineering 134, no. 4 (2012). http://dx.doi.org/10.1115/1.4007665.

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The growing interest in large-scale solar power production has led to a renewed exploration of thermal storage technologies. In a thermocline storage system, heat transfer fluid (HTF) from the collection field is simultaneously stored at both excited and dead thermal states inside a single tank by exploiting buoyancy forces. A granulated porous medium included in the tank provides additional thermal mass for storage and reduces the volume of HTF required. While the thermocline tank offers a low-cost storage option, thermal ratcheting of the tank wall (generated by reorientation of the granular
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Lou, Wanruo, Baoshan Xie, Julien Aubril, Yilin Fan, Lingai Luo, and Arnaud Arrive. "Optimized flow distributor for stabilized thermal stratification in a single-medium thermocline storage tank: A numerical and experimental study." Energy, October 2022, 125709. http://dx.doi.org/10.1016/j.energy.2022.125709.

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Afrin, Samia, Vinod Kumar, Desikan Bharathan, Greg C. Glatzmaier, and Zhiwen Ma. "Computational Analysis of a Pipe Flow Distributor for a Thermocline Based Thermal Energy Storage System." Journal of Solar Energy Engineering 136, no. 2 (2013). http://dx.doi.org/10.1115/1.4024927.

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The overall efficiency of a concentrating solar power (CSP) plant depends on the effectiveness of thermal energy storage (TES) system (Kearney and Herrmann, 2002, “Assessment of a Molten Salt Heat Transfer Fluid,” ASME). A single tank TES system consists of a thermocline region which produces the temperature gradient between hot and cold storage fluid by density difference (Energy Efficiency and Renewable Energy, http://www.eere.energy.gov/basics/renewable_energy/thermal_storage.html). Preservation of this thermocline region in the tank during charging and discharging cycles depends on the uni
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Rozprawy doktorskie na temat "Single medium thermocline"

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Ferré, Alexis. "Etude CFD et expérimentale d'un stockage thermique de type thermocline." Electronic Thesis or Diss., Pau, 2024. http://www.theses.fr/2024PAUU3023.

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Le stockage d'énergie est essentiel à la transition énergétique car il permet de découpler la production de l'énergie de sa consommation. Le stockage de chaleur thermocline en eau, utilisé dans les réseaux de chaleur à moyenne ou basse température, repose sur la stratification thermique dans une cuve. Les performances de ce type de stockage sont fortement liées à la bonne stratification du fluide qui peut être perturbée par l'injection et le soutirage du liquide, des aspects peu explorés dans la littérature.L'objectif de cette thèse est de modéliser un tel stockage de manière fiable pour analy
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Streszczenia konferencji na temat "Single medium thermocline"

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Afrin, Samia, Jesus D. Ortega, Vinod Kumar, and Desikan Bharathan. "A Computational Analysis: A Honeycomb Flow Distributor With Porous Approximation for a Thermocline Thermal Energy Storage System." In ASME 2013 7th International Conference on Energy Sustainability collocated with the ASME 2013 Heat Transfer Summer Conference and the ASME 2013 11th International Conference on Fuel Cell Science, Engineering and Technology. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/es2013-18342.

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Conversion of direct solar energy, in particular the Concentrated Solar Power (CSP) technologies, has a significant role on conventional energy cost and efficiency. A single tank thermocline Thermal Energy Storage (TES) system is accountable for the overall efficiency of this conversion system. A single tank TES system has a thermocline region that produces the temperature gradient between hot and cold storage fluid by density difference. The overall energy storage capacity depends on sustaining of this region at uniform manner. This paper analyzes how the difference in the percentage of porou
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Flueckiger, Scott, Zhen Yang, and Suresh V. Garimella. "Thermocline Energy Storage in the Solar One Power Plant: An Experimentally Validated Thermomechanical Investigation." In ASME 2011 5th International Conference on Energy Sustainability. ASMEDC, 2011. http://dx.doi.org/10.1115/es2011-54578.

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The growing interest in large-scale solar power production has led to a renewed exploration of thermal storage technologies. In a thermocline storage system, heat transfer fluid (HTF) from the collection field is simultaneously stored at both excited and dead thermal states inside a single tank. A granulated porous medium included in the tank provides thermal mass for storage and reduces the amount of HTF volume required. While the thermocline offers a low-cost storage option, thermal ratcheting of the tank wall (generated by filler material reorientation from continuous thermal cycling) poses
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Afrin, Samia, Eduardo Cordero, Sebastian De La Rosa, et al. "Computational Analysis of a Pipe Flow Distributor for a Thermocline Based Thermal Energy Storage System." In ASME 2012 6th International Conference on Energy Sustainability collocated with the ASME 2012 10th International Conference on Fuel Cell Science, Engineering and Technology. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/es2012-91069.

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The overall efficiency of a Concentrating Solar Power (CSP) plant depends on the effectiveness of Thermal Energy Storage (TES) system [1]. A single tank TES system consists of a thermocline region which produces the temperature gradient between hot and cold storage fluid by density difference [2]. Preservation of this thermocline region in the tank during charging and discharging cycles depends on the uniformity of the velocity profile at any horizontal plane. Our objective is to maximize the uniformity of the velocity distribution using a pipe-network distributor by varying the number of hole
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Mostafavi Tehrani, S. Saeed, Yashar Shoraka, Robert A. Taylor, and Chris Menictas. "Performance Analysis of High Temperature Sensible Heat Thermal Energy Storage Systems for Concentrated Solar Thermal Power Plants." In ASME 2017 Heat Transfer Summer Conference. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/ht2017-5091.

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Due to their relatively high capital and environmental cost of two-tank molten salt thermal storage systems, a significant amount of research has gone into looking for sensible and latent thermal energy storage alternatives suitable for concentrated solar thermal (CST) plants. Despite a large number of developments in the last decade, comparative studies among promising options have been lacking. In particular, only a few comparative studies are available in which thermal energy storage (TES) systems are integrated as an active subcomponent of CST plant. Therefore, this study compares selected
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