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Experimental and numerical study of a directly irradiated hybrid solar/combustion spouted bed reactor for continuous steam gasification of biomass

机译:直接辐射混合式太阳能/燃烧喷射床反应器对生物质进行连续蒸汽气化的实验和数值研究

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The concept of hybrid solar gasifiers is proposed to couple autothermal gasification with solar gasification so as to meet the requirement for stable and continuous operation under intermittent or fluctuating solar irradiation. Solar process hybridization through partial oxy-combustion of the feedstock appears to be crucial because thermochemical processes are very sensitive to small solar energy input variations, and require permanent control of thermodynamic conditions to ensure fuel production quality. This work aims to study solar-hybridized steam gasification of biomass in a novel directly-irradiated lab-scale reactor based on the principle of conical jet spouted beds. This concept was first numerically simulated to thoroughly analyze the reactor operation and to provide insights into the temperature distribution, fluid flow dynamics, reactive particle trajectories/conversion, gas species distribution and flame location inside the reactor. A two-phase flow model was developed including discrete phase model for the reactive biomass particles undergoing both combustion and pyro-gasification, and coupled heat and mass transfer. Thereafter, solar-only and mixed solar-combustion experiments were carried out under real concentrated solar flux and the effects of process hybridization on syngas yield and reactor performance were investigated. The results confirmed that O_2 feeding rate is a relevant variable to control the process temperature. Accordingly, a continuous operation of the solar reactor can be ensured with variable solar energy input.
机译:提出了混合式太阳能气化炉的概念,将自热气化与太阳能气化相结合,以满足在间歇或波动的太阳辐射下稳定,连续运行的要求。通过原料的部分氧燃烧进行的太阳能过程杂交似乎至关重要,因为热化学过程对小的太阳能输入变化非常敏感,并且需要永久控制热力学条件以确保燃料生产质量。这项工作旨在研究基于锥形喷射喷头床原理的新型直接辐射实验室规模反应器中生物质的太阳能杂交蒸汽气化。首先对这一概念进行了数值模拟,以彻底分析反应堆的运行情况,并提供有关温度分布,流体流动动力学,反应性粒子轨迹/转化,气体种类分布和反应堆内部火焰位置的见解。建立了两相流模型,其中包括离散相模型,用于燃烧和热气化以及耦合传热和传质的反应性生物质颗粒。此后,在真正的集中太阳光通量下进行了仅太阳能和混合太阳能燃烧实验,并研究了工艺混合对合成气收率和反应器性能的影响。结果证实,O_2的进料速度是控制过程温度的重要变量。因此,利用可变的太阳能输入可以确保太阳能反应器的连续运行。

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