Literatura académica sobre el tema "PISTON EXPANDER"
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Artículos de revistas sobre el tema "PISTON EXPANDER"
Wang, Wei, Yu Ting Wu, Chong Fang Ma y Jian Yu. "Efficiency Analysis on Low Temperature Energy Conversion System Based on Organic Rankine Cycle". Advanced Materials Research 347-353 (octubre de 2011): 498–503. http://dx.doi.org/10.4028/www.scientific.net/amr.347-353.498.
Texto completoPanesar, Angad S. y Marco Bernagozzi. "Two-Phase Expander Approach for Next Generation of Heat Recovery Systems". International Journal of Renewable Energy Development 8, n.º 3 (25 de octubre de 2019): 203–13. http://dx.doi.org/10.14710/ijred.8.3.203-213.
Texto completoWu, Zhong, Hongguang Zhang, Zhongliang Liu, Guohong Tian, Xiaochen Hou y Fubin Yang. "Force and energy analysis of single-piston free-piston expander—linear generator". Energy 251 (julio de 2022): 123926. http://dx.doi.org/10.1016/j.energy.2022.123926.
Texto completoCha, Jeongmin, Jiho Park, Kyungjoong Kim y Sangkwon Jeong. "Free-piston reciprocating cryogenic expander utilizing phase controller". IOP Conference Series: Materials Science and Engineering 171 (febrero de 2017): 012079. http://dx.doi.org/10.1088/1757-899x/171/1/012079.
Texto completoHaiqing, Guan, Ma Yitai y Li Minxia. "Some design features of CO2 swing piston expander". Applied Thermal Engineering 26, n.º 2-3 (febrero de 2006): 237–43. http://dx.doi.org/10.1016/j.applthermaleng.2005.05.011.
Texto completoWu, Zhong, Hongguang Zhang, Zhongliang Liu, Xiaochen Hou, Jian Li, Fubin Yang y Jian Zhang. "Experimental study on the performance of single-piston free-piston expander—linear generator". Energy 221 (abril de 2021): 119724. http://dx.doi.org/10.1016/j.energy.2020.119724.
Texto completoSmorodin, Anatoliy I. y Artur I. Gimadeev. "Optimization of a compressed gaseous CO2 energy recovery dry ice pelletizer". MATEC Web of Conferences 324 (2020): 02008. http://dx.doi.org/10.1051/matecconf/202032402008.
Texto completoPatel, Raj C., Diego C. Bass, Ganza Prince Dukuze, Angelina Andrade y Christopher S. Combs. "Analysis and Development of a Small-Scale Supercritical Carbon Dioxide (sCO2) Brayton Cycle". Energies 15, n.º 10 (13 de mayo de 2022): 3580. http://dx.doi.org/10.3390/en15103580.
Texto completoPreetham, B. S. y L. Weiss. "Investigations of a new free piston expander engine cycle". Energy 106 (julio de 2016): 535–45. http://dx.doi.org/10.1016/j.energy.2016.03.082.
Texto completoBurugupally, Sindhu Preetham y Leland Weiss. "Design and performance of a miniature free piston expander". Energy 170 (marzo de 2019): 611–18. http://dx.doi.org/10.1016/j.energy.2018.12.158.
Texto completoTesis sobre el tema "PISTON EXPANDER"
Kodakoglu, Furkan. "Performance analysis on Free-piston linear expander". UNF Digital Commons, 2017. http://digitalcommons.unf.edu/etd/766.
Texto completoJones, Ryan Edward 1974. "Design and testing of experimental free-piston cryogenic expander". Thesis, Massachusetts Institute of Technology, 1999. http://hdl.handle.net/1721.1/80237.
Texto completoChaudhry, Gunaranjan. "Modelling of a floating piston expander employed in a 10 K cryocooler". Thesis, Massachusetts Institute of Technology, 2005. http://hdl.handle.net/1721.1/33903.
Texto completoIncludes bibliographical references (p. 81).
A single stage of a 3-stage Collins-type cryocooler designed to provide I W of cooling at 10 K was constructed and tested. A single stage of the cryocooler consists of a compressor, a counter-flow heat exchanger, and an expander to expand the working fluid. The work of the expanding cold gas is transmitted up a floating piston and is dissipated by gas flows in and out of a warm volume. Flow through the cold volume is controlled by smart electromagnetic valves. Models were developed to describe the thermodynamic processes that make up the expander cycle. In the first iteration, models were developed to determine the equilibrium states at various points in the cycle by assuming the thermodynamic processes that made up the expander cycle to be quasi-static. These models were used to determine appropriate values of parameters such as the cut-off volume, the recompression volume, and warm end reservoir pressures for expander operation. Experiments were done to determine the efficiency of the floating-piston expander. Tests were also done to determine the characteristics of the heat exchanger and compare them with the design characteristics. Finally, the stage was run as a refrigerator with zero heat-load. It was observed that the quasi-static models did not adequately describe the performance of the expander as most of the processes did not go to equilibrium.
(cont.) Therefore, these models were improved by incorporating the dynamics of the piston motion, the fluid flow through the warm and cold volumes, and the fluid flow through the high-pressure passages of the heat exchanger.
by Gunaranjan Chaudhry.
S.M.
Hogan, Jake (Jake R. ). "Development of a floating piston expander control algorithm for a Collins-type cryocooler". Thesis, Massachusetts Institute of Technology, 2012. http://hdl.handle.net/1721.1/70459.
Texto completoCataloged from PDF version of thesis.
Includes bibliographical references (p. 96).
The multi-stage Collins-type cryocooler uses a floating piston design for the working fluid expansion in each stage. The piston floats between a cold volume, where the working fluid is expanded, and a warm volume. The piston's motion is controlled by opening and closing valves connecting several reservoirs at various pressures to the warm volume. Ideally, these pressures should be distributed between the high and low system pressure to gain good control of the piston motion. In past prototypes, helium flow through the piston-cylinder gap resulted in a loss of pressure in the reservoirs causing the piston to become immobile. A more complex control algorithm is required to maintain a net zero helium flow through this gap to allow for steady expander operation. A numerical quasi-steady thermodynamic model is developed for the piston cycle. The model determines the steady state pressure distribution of the reservoirs for an ideal expander with no helium flow through the piston-cylinder gap. This pressure distribution is dependent on the total mass of helium in pressure reservoirs as well as the points at which the warm helium intake as well as the cold helium exhaust end. The pressures in the pressure reservoirs show varying levels of dependence on the lengths of the intake and exhaust strokes. The model is extended to include helium flow through the gap and the inertia of the piston. The model is then used to determine how helium can be added to or removed from the reservoirs in the case that there is too much helium flow through the gap. These results are then integrated into a control algorithm that maintains zero net mass flow through the gap in each expander stage.
by Jake Hogan.
S.M.
Dib, Ghady. "Thermodynamic simulation of compressed air energy storage systems". Thesis, Lyon, 2020. http://www.theses.fr/2020LYSEI092.
Texto completoIn the context of developing renewable energies, storing energy improves energy efficiency and promotes the insertion of intermittent renewable energies. It consists of accumulating energy for later use in a place that may be the same or different from the place of production. Converting electrical energy to high-pressure air seems a promising solution in the energy storage field: it is characterized by a high reliability, low environmental impact and a remarkable stored energy density (kWh/m3). Currently, many researchers are focusing on developing small scale of the compressed air energy storage system (CAES) coupled to a building applications based on the work done for multiple large scale CAES systems installed in the world. A global numerical model of trigeneration CAES system coupled to a building model and renewable energy modules was developed in order to analyze the CAES system behavior responding to electrical, hot and cold energy building demand. Different energy scenarios (autonomous and connected to the grid modes), geographical locations and building typologies were proposed and analyzed. The CAES numerical model development is based on solving energy and heat transfer equations for each system component (compressor/expander, heat exchanger, high pressure air reservoir, thermal water storage tank). Adiabatic compressor and expander were firstly selected to investigate the trigeneration advanced adiabatic compressed air energy system (AA-CAES) coupled to the building and to grids with the different scenarios described above. Similar to adiabatic components, quasi-isothermal compressor and expander developed by LightSail Energy and Enairys Powertech were also analyzed by solving the energy and heat transfer equations for each phase of the compression and expansion processes. These analytical models allowed us to have a better understanding of these technologies operations and to have several orders of magnitudes of different physical parameters. I-CAES and AA-CAES were also compared from a financial point of view based on compressed air market analysis. Three different prototypes were studied: Two AA-CAES systems (ideal and virtual (some of which are based on commercial units found in the compressed air market)) and one I-CAES system (based on LightSail Energy CAES prototype)
Tokař, Stanislav. "Mechanismus jednoválcového zážehového motoru s prodlouženou expanzí". Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2009. http://www.nusl.cz/ntk/nusl-228842.
Texto completoGALOPPI, GIOVANNI. "DEVELOPMENT OF A RADIAL PISTON EXPANDER FOR VAPOR COMPRESSION CYCLES". Doctoral thesis, 2017. http://hdl.handle.net/2158/1082547.
Texto completoLibros sobre el tema "PISTON EXPANDER"
Bailey, P. B. A free piston expander for a direct fired Rankine cycle heat pump. [s.l.]: typescript, 1986.
Buscar texto completoRoberts, Joseph Boxley. Firearms Assembly : The NRA Guide to Rifles and Shotguns (Revised and Expanded) (Item #01600) (Revised and Expanded). Natl Rifle Assn, 1993.
Buscar texto completoDerby, Harry. Japanese Military Cartridge Handguns 1893-1945: A Revised and Expanded Edition of Hand Cannons of Imperial Japan. Schiffer Publishing, 2007.
Buscar texto completoDavid Joseph, Attard, Fitzmaurice Malgosia y Ntovas Alexandros XM, eds. The IMLI Treatise On Global Ocean Governance. Oxford University Press, 2018. http://dx.doi.org/10.1093/law/9780198823964.001.0001.
Texto completoPrieto, Hernán. Lecciones de teoría política: la democracia de los atenienses entre la stásis y la diálysis. Universidad Libre Sede Principal, 2020. http://dx.doi.org/10.18041/978-958-5578-29-6.
Texto completoCapítulos de libros sobre el tema "PISTON EXPANDER"
Jones, R. E. y J. L. Smith. "Design and Testing of Experimental Free-Piston Cryogenic Expander". En Advances in Cryogenic Engineering, 1485–92. Boston, MA: Springer US, 2000. http://dx.doi.org/10.1007/978-1-4615-4215-5_68.
Texto completoDaccord, Rémi, Julien Melis, Antoine Darmedru, Edouard Davin, Antoine Debaise, Brice Mandard, Alexandre Bouillot, Stéphane Watts y Xavier Durand. "Integration of a Piston Expander for Exhaust Heat Recovery in a Long Haul Truck". En Energy and Thermal Management, Air Conditioning, Waste Heat Recovery, 53–62. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-47196-9_5.
Texto completoSubiantoro, Alison y Kim Tiow Ooi. "Expansion Power Recovery in Refrigeration Systems". En Handbook of Research on Advances and Applications in Refrigeration Systems and Technologies, 720–51. IGI Global, 2015. http://dx.doi.org/10.4018/978-1-4666-8398-3.ch019.
Texto completoMckenna, S., G. Mccullough, R. Douglas y S. Glover. "Mathematical modelling of a reciprocating piston expander". En Vehicle Thermal Management Systems Conference Proceedings (VTMS11), 183–92. Elsevier, 2013. http://dx.doi.org/10.1533/9780857094735.4.183.
Texto completoAvery, William H. y Chih Wu. "Closed-Cycle OTEC Systems". En Renewable Energy from the Ocean. Oxford University Press, 1994. http://dx.doi.org/10.1093/oso/9780195071993.003.0011.
Texto completoSchwalbach, Jon R. y Kevin M. Bohacs. "An observational approach to mudstone sequence stratigraphy: The Monterey Formation of California". En Understanding the Monterey Formation and Similar Biosiliceous Units across Space and Time. Geological Society of America, 2022. http://dx.doi.org/10.1130/2022.2556(02).
Texto completoActas de conferencias sobre el tema "PISTON EXPANDER"
Smith, J. L., J. G. Brisson, M. J. Traum, C. Hannon y J. Gerstmann. "Description of a High-Efficiency Floating-Piston Expander for a Miniature Cryocooler". En ASME 2002 International Mechanical Engineering Congress and Exposition. ASMEDC, 2002. http://dx.doi.org/10.1115/imece2002-33402.
Texto completoKornhauser, Alan A. "Dynamics and Thermodynamics of a Free-Piston Expander-Compressor". En ASME 2011 International Mechanical Engineering Congress and Exposition. ASMEDC, 2011. http://dx.doi.org/10.1115/imece2011-63517.
Texto completoChiong, Meng Choung, Srithar Rajoo y Alessandro Romagnoli. "Nozzle Steam Piston Expander for Engine Exhaust Energy Recovery". En The 11th International Conference on Automotive Engineering. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 2015. http://dx.doi.org/10.4271/2015-01-0126.
Texto completoDaccord, Rémi, Antoine Darmedru y Julien Melis. "Oil-Free Axial Piston Expander for Waste Heat Recovery". En SAE 2014 World Congress & Exhibition. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 2014. http://dx.doi.org/10.4271/2014-01-0675.
Texto completoChampagne, C. y L. Weiss. "Investigation of a MEMS-Based Boiler and Free Piston Expander for Energy Harvesting". En ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-86289.
Texto completoChampagne, C. y L. Weiss. "Design and Optimization of Free Piston Expander for Energy Harvesting". En ASME 2013 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/imece2013-64798.
Texto completoSchmitt, Joshua y Jordan Nielson. "Modeling and Testing of a Novel Ultra-Low Temperature sCO2 Opposing Piston Expander". En ASME Turbo Expo 2021: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2021. http://dx.doi.org/10.1115/gt2021-60251.
Texto completoPeng, Baoying, Kai Zhang, Pengjia Wang y Liang Tong. "Research on Constant Load of Double Acting Free Piston Expander-Linear Generator". En 2022 5th International Conference on Energy, Electrical and Power Engineering (CEEPE). IEEE, 2022. http://dx.doi.org/10.1109/ceepe55110.2022.9783277.
Texto completoFiaschi, Daniele, Riccardo Secchi, Giovanni Galoppi, Duccio Tempesti, Giovanni Ferrara, Lorenzo Ferrari y Sotirios Karellas. "Piston Expanders Technology as a Way to Recover Energy From the Expansion of Highly Wet Organic Refrigerants". En ASME 2015 9th International Conference on Energy Sustainability collocated with the ASME 2015 Power Conference, the ASME 2015 13th International Conference on Fuel Cell Science, Engineering and Technology, and the ASME 2015 Nuclear Forum. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/es2015-49427.
Texto completoSaadat, Mohsen, Farzad A. Shirazi y Perry Y. Li. "Nonlinear Controller Design With Bandwidth Consideration for a Novel Compressed Air Energy Storage System". En ASME 2013 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/dscc2013-4069.
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