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Steam Gasification Characteristics of a Pine-nut Shell in a Thermobalance and a Fluidized Bed Reactor

机译:热平衡和流化床反应器中松仁壳的蒸汽气化特性

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Pyrolysis kinetics of a pine nut shell in a thermo gravimetric analyzer (TGA) and the combustion and steam gasification kinetics of a pine nut shell's chars in a thermobalance reactor were determined. Also, the steam gasification characteristics of the pine nut shell were determined in a fluidized bed reactor. The maximum pyrolysis reaction rate is obtained at 360℃ from the TGA and DTG studies. The activation energy and the pre-exponential factor of the char were determined from the Arrhenius plot based on the shrinking core model. The effects of the reaction temperature (350℃ -950℃) and the O_2 partial pressure on the combustion kinetics and that of the steam partial pressure (0.4 - 0.8atm) on the gasification kinetics were determined in a thermobalance reactor, In the combustion reaction, the activation energies and the pre-exponential factors are found to be 21.7 kcal mol~(-1) at 61.9 s~(-1)atm~(-1) and 2.36 kcal/mol at 0.0029 s~(-1)atm~(-1) in the reaction control and the pore-diffusion control regimes, respectively. The reaction order is found to be 1.0 with respect to the O_2 partial pressure at 750℃. In the steam gasification reaction, the activation energy and the pre-exponential factor are found to be 16.9 kcal mol~(-1) at 0.0076s~(-1) atm~(-1) and 2.67 kcal mol~(-1) at 0.00036s~(-1)atm~(-1) in the reaction control and the pore-diffusion control regimes, respectively. The reaction order is found to be 0.77 with respect to the H_2O partial pressure at 750℃. The effects of the gas velocity (2U_(mf) - 4U_(mf)), reaction temperature (700℃ - 850℃), steam/carbon ratio (0.56 - 1.12) and O_2/C ratio (0.16 - 0.32) on the gas composition, gas yield, cold gas efficiency and the calorific value of the product gas were determined in a fluidized bed reactor (10 cm-i.d. x 1.6m-high) with the feeding rate of the pine nut shell of 1 - 3 kg hr~(-1). The carbon conversion, calorific value, cold gas efficiency and the total product gas yield increased with an increasing temperature. The hydrogen concentration increases with an increasing reaction temperature and the gas velocity and steam/carbon ratio as well as the hydrogen concentration decreases with an increasing O_2/C ratio in the fluidized bed reactor.
机译:测定了热重分析仪(TGA)中松子壳的热解动力学以及热天平反应器中松子壳的炭的燃烧和蒸汽气化动力学。同样,在流化床反应器中确定了松子壳的蒸汽气化特性。 TGA和DTG研究表明,最大热解反应速率为360℃。炭的活化能和指数前因子是根据收缩核心模型从Arrhenius图确定的。在热平衡反应器中,确定了反应温度(350℃-950℃)和O_2分压对燃烧动力学的影响以及蒸汽分压(0.4-0.8atm)对气化动力学的影响。 ,发现活化能和指数前因子在61.9 s〜(-1)atm〜(-1)时为21.7 kcal mol〜(-1),在0.0029 s〜(-1)atm时为2.36 kcal / mol。 〜(-1)分别在反应控制和孔扩散控制方案中。相对于750℃下的O_2分压,反应阶数为1.0。在蒸汽气化反应中,在0.0076s〜(-1)atm〜(-1)和2.67 kcal mol〜(-1)的条件下,活化能和指数前因子为16.9 kcal mol〜(-1)。在反应控制和孔扩散控制方案中分别为0.00036s〜(-1)atm〜(-1)。相对于750℃的H_2O分压,反应阶数为0.77。气体流速(2U_(mf)-4U_(mf)),反应温度(700℃-850℃),蒸汽/碳比(0.56-1.12)和O_2 / C比(0.16-0.32)对气体的影响在流化床反应器(10 cm-id x 1.6m-高)中以松果壳的进料速率为1-3 kg hr〜来确定组成,气体收率,冷气效率和产物气的热值。 (-1)。碳转化率,热值,冷气效率和总产物气产率随温度的升高而增加。在流化床反应器中,氢气浓度随着反应温度的升高而增加,气体速度和蒸汽/碳比以及氢气浓度随着O_2 / C比的增加而降低。

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