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A bubbling fluidized bed solar reactor model of biomass char high temperature steam-only gasification

机译:生物质炭高温仅蒸汽气化的鼓泡流化床太阳能反应器模型

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摘要

A two phase biomass char (biochar) steam gasification model based on the systems kinetics is developed in a bubbling fluidized bed with concentrated solar heat as source of energy. The model calculates the dynamic and steady state profiles, as well as the complex parameters of fluidized beds. This robust model is capable of predicting the temperature and concentration profiles of gases in the bubble, emulsion gas and solid phases. The Rosseland equation is used to calculate the radiative transfer within the bed. Due to the nature of the fluidized bed, the small bed thermal conductivity and bigger void between particles, there is a large temperature gradient throughout the bed, indicating that the system is highly non-isothermal. The set-up of a fluidized bed with solar irradiation in the upper side of the reactor is found to be a less efficient gasifying system in comparison with a packed bed, but could be optimized if the source of heat is changed to the bottom of the reactor. The trends and responses of the model are in good agreement with the experimental trends reported in the literature. Hydrogen is the principal product followed by carbon monoxide, the carbon dioxide production is small and the methane production is negligible.
机译:在鼓泡流化床中建立了基于系统动力学的两相生物质炭(biochar)蒸汽气化模型,该流化床中以集中的太阳能为能源。该模型计算动态和稳态分布以及流化床的复杂参数。这个健壮的模型能够预测气泡,乳化气和固相中气体的温度和浓度分布。 Rosseland方程用于计算床内的辐射传递。由于流化床的性质,较小的床导热率和较大的颗粒之间空隙,整个床中存在较大的温度梯度,这表明系统是高度非等温的。与填充床相比,在反应器上侧设置具有太阳辐射的流化床是效率较低的气化系统,但如果将热源更改为反应器底部,则可以对其进行优化。反应堆。该模型的趋势和响应与文献中报道的实验趋势非常吻合。氢气是主要产品,其次是一氧化碳,二氧化碳的产量很小,甲烷的产量可以忽略不计。

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