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Behavior of alkali minerals in oxyfuel co-combustion of biomass and coal at elevated pressure

查看全文 作  者:Oris [1]CHANSA;Zhong-yang [1]LUO;Wen-nan [2]ZHANG;Chun-jiang [1]YU 高影响力作者 机构地区:[1]The State Key Laboratory of Clean Energy Utilization,Zhejiang University,Hangzhou 310027,China;[2]Department of Chemical Engineering,Mid Sweden University,85170 Sundsvall,Sweden高影响力机构 出  处:《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》索引2021年第22卷第2期,共14页高影响力期刊 基  金:Project supported by the National Science Foundation Cooperation of China and USA(NSFC-NSF)(No.51661125012);Project of the State Key Laboratory of Clean Energy Utilization,Zhejiang University,China。 摘  要:Combustion of biomass or coal is known to yield aerosols and condensed alkali minerals that affect boiler heat transfer performance.In this work,alkali behavior in the pressurized oxyfuel co-combustion of coal and biomass is predicted by thermodynamic and chemical kinetic calculations.Existence of solid minerals is evaluated by X-ray diffraction(XRD)analysis of ashes from pressure thermogravimetric combustion.Results indicate that a rise in pressure affects solid alkali minerals negligibly,but increases their contents in the liquid phase and decreases them in the gas phase,especially below 900℃.Thus,less KCl will condense on the boiler heat transfer surfaces leading to reduced corrosion.Increasing the blend ratio of biomass to coal will raise the content of potassium-based minerals but reduce the sodium-based ones.The alkali-associated slagging in the boiler can be minimized by the synergistic effect of co-combustion of sulphur-rich coal and potassium-rich biomass,forming stable solid K2SO4 at typical fluidized bed combustion temperatures.Kinetics modelling based on reaction mechanisms shows that oxidation of SO2 to SO3 plays a major role in K2SO4 formation but that the contribution of this oxidation decreases with increase in pressure. 关 键 词:Oxyfuel co-combustion Equilibrium calculations Chemical kinetic reactions Mineral’s identifications Thermogravimetric combustion
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