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contributor authorGunnar Sundkvist, Sven
contributor authorDahlquist, Adrian
contributor authorJanczewski, Jacek
contributor authorSjأ¶din, Mats
contributor authorBysveen, Marie
contributor authorDitaranto, Mario
contributor authorLangأ¸rgen, أکyvind
contributor authorSeljeskog, Morten
contributor authorSiljan, Martin
date accessioned2017-05-09T01:07:59Z
date available2017-05-09T01:07:59Z
date issued2014
identifier issn1528-8919
identifier othergtp_136_10_101513.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/154818
description abstractA promising candidate for CO2 neutral power production is semiclosed oxyfuel combustion combined cycles (SCOCCC). Two alternative SCOCCCs have been investigated both with recirculation of the working fluid (WF) (CO2 and H2O) but with different H2O content due to different conditions for condensation of water from the working fluid. The alternative with low moisture content in the recirculated working fluid has shown the highest thermodynamic potential and has been selected for further study. The necessity to use recirculated exhaust gas as the working fluid will make the design of the gas turbine quite different from a conventional gas turbine. For a combined cycle using a steam Rankine cycle as a bottoming cycle, it is vital that the temperature of the exhaust gas from the Brayton cycle is wellsuited for steam generation that fits steam turbine live steam conditions. For oxyfuel gas turbines with a combustor outlet temperature of the same magnitude as conventional gas turbines, a much higher pressure ratio is required (close to twice the ratio as for a conventional gas turbine) in order to achieve a turbine outlet temperature suitable for combined cycle. Based on input from the optimized cycle calculations, a conceptual combustion system has been developed, where three different combustor feed streams can be controlled independently: the natural gas fuel, the oxidizer consisting mainly of oxygen plus some impurities, and the recirculated working fluid. This gives more flexibility compared to airbased gas turbines, but also introduces some design challenges. A key issue is how to maintain high combustion efficiency over the entire load range using as little oxidizer as possible and with emissions (NOx, CO, unburnt hydrocarbons (UHC)) within given constraints. Other important challenges are related to combustion stability, heat transfer and cooling, and material integrity, all of which are much affected when going from airbased to oxygenbased gas turbine combustion. Matching with existing airbased burner and combustor designs has been done in order to use as much as possible of what is proven technology today. The selected stabilization concept, heat transfer evaluation, burner, and combustion chamber layout will be described. As a next step, the pilot burner will be tested both at atmospheric and high pressure conditions.
publisherThe American Society of Mechanical Engineers (ASME)
titleConcept for a Combustion System in Oxyfuel Gas Turbine Combined Cycles
typeJournal Paper
journal volume136
journal issue10
journal titleJournal of Engineering for Gas Turbines and Power
identifier doi10.1115/1.4027296
journal fristpage101513
journal lastpage101513
identifier eissn0742-4795
treeJournal of Engineering for Gas Turbines and Power:;2014:;volume( 136 ):;issue: 010
contenttypeFulltext


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