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Artykuły w czasopismach na temat "GAS TURBINE-HRSG-ORC"

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Kindra, Vladimir, Nikolay Rogalev, Sergey Osipov, Olga Zlyvko, and Vladimir Naumov. "Research and Development of Trinary Power Cycles." Inventions 7, no. 3 (2022): 56. http://dx.doi.org/10.3390/inventions7030056.

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The most effective and environmentally safe fossil fuel power production facilities are the combined cycle gas turbine (CCGT) ones. Electric efficiency of advanced facilities is up to 58% in Russia and up to 64% abroad. The further improvement of thermal efficiency by increase of the gas turbine inlet temperature (TIT) is limited by performance of heat resistance alloys that are used for the hot gas path components and the cooling system efficiency. An alternative method for the CCGT efficiency improvement is utilization of low potential heat of the heat recovery steam generator (HRSG) exhaust
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Thakur, Priyanshu, and P. V. Ram Kumar. "Study and First Law Analysis of Gas Turbine-HRSG-ORC Co-generation System with Change in Atmospheric Temperature." International Journal of Advance Research and Innovation 7, no. 2 (2019): 148–54. http://dx.doi.org/10.51976/ijari.721923.

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Gas turbine cogeneration system integrated with heat recovery steam generator and organic Rankine cycle provides an effective measure of waste heat recovery from exhaust gasses of gas turbine. The numerous study conducted to understand the variation in the performance of the integrated system has been done and the variation of performance with parameters such as turbine inlet temperature, compression ratio mass flow rate etc., has been carried out. The present paper investigates the variation in the performance of the system with change in the surrounding temperature. The paper provides the de
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Ahmad, Faizan, Abdul Khaliq, and Mohammad Idrees. "Energetic and Exergetic Analyses of Biomass Derived Syngas for Triple Cycle Power Generation." Distributed Generation & Alternative Energy Journal, October 23, 2017, 26–53. http://dx.doi.org/10.13052/dgaej2156-3306.3242.

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To rise the thermal efficiency of power generation systems andto meet stricter environmental regulations, improved system inte -gration based on renewable energy is a viable option. In this context,a syngas fuelled Brayton/Rankine combined power cycle integratedwith the Organic Rankine Cycle (ORC) is proposed and analysedfrom both energetic and exergetic point of views. A thermo-chemicalmodel was developed to predict the composition of syngas producedafter biomass gasification, and also, a thermodynamic model wasdeveloped, to determine the energetic and exergetic performance ofthe proposed tri
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Rozprawy doktorskie na temat "GAS TURBINE-HRSG-ORC"

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THAKUR, PRIYANSHU. "COMPARATIVE STUDY OF GAS TURBINE-HRSG-ORC AND GAS TURBINE-HRSG-SUPERCRITICAL ORC COGENERATION SYSTEMS THROUGH ENERGY AND EXERGY ANALYSIS." Thesis, 2019. http://dspace.dtu.ac.in:8080/jspui/handle/repository/16770.

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The comparative study between the ORC and supercritical ORC has been under study in recent time and the comparatively enhanced performance of the supercritical ORC has made a good alternative to the subcritical ORC systems. In this work, the relative feasibility of the supercritical ORC over ORC was studied when they are positioned as the bottoming cycle in a cogeneration system. A comparative study was carried out to analyse two cogeneration systems, first consisting of Gas Turbine- HRSG-ORC cycle and second consisting of Gas turbine-HRSG-Supercritical ORC cycle. The comparative
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Streszczenia konferencji na temat "GAS TURBINE-HRSG-ORC"

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Nondy, Joy, and Tapan Kr Gogoi. "Exergy Analysis of a Combined Gas Turbine and Organic Rankine Cycle Based Power and Absorption Cooling Systems." In ASME 2019 Gas Turbine India Conference. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/gtindia2019-2351.

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Abstract In this paper, a combined power and cooling system is thermodynamically analyzed. The system consists of a natural gas-fired gas turbine (GT) plant integrated with a heat recovery steam generator (HRSG), two steam turbines (STs), one organic Rankine cycle (ORC) and two absorption cooling systems (ACSs). With certain given input parameters, the GT plant produces net power of 36.06 MW, the two STs contribute 17.07 MW while from the ORC, 7.18 MW of net power was obtained. From the steam-operated ACS-I, a net 10.36 MW of cooing could be produced. Again, from the GT exhaust operated ACS-II
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Wang, Zhitao, Haoda Lei, Yi-Guang Li, Shuying Li, and Weitian Wang. "Optimization Analysis of Combined Heat and Power Plant of Multistage Gas Turbine for Marine Applications." In ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/gt2018-76025.

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Nowadays, the rising demand for energy and serious environmental pollution become the motive to improve the energy structure, saving energy and optimize energy utilization. Based on a gas turbine, a marine multistage gas turbine combined heat and power (CHP) structure is proposed. The CHP system includes the top gas turbine Brayton cycle, the intermediate water Rankine cycle (WRC) and the bottom organic Rankine cycle (ORC). According to the method of screening organic Rankine cycle refrigerant to select the appropriate organic working fluids, and their physical characteristics are described. B
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