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A TRANSVERSE JET REACTOR FOR ZINC AEROSOL HYDROLYSIS

机译:用于锌气溶胶水解的横向射流反应器

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Performance of a reactor designed for the hydrolysis of Zn in the two-step Zn/ZnO solar thermochemical cycle for hydrogen production is explored. Technically, complete hydrolysis of Zn in the hydrogen production step remains a major barrier to implementation, and much attention has been given to Zn nano-scale reacting aerosols as a solution. The success of this continuous process depends on achieving high particle yields and high conversions in the aerosol. A key challenge is to control the flow field in aerosol reactors to keep the particles entrained in the flow without deposition on the reactor wall. The ability of a new reactor concept based on transverse jet fluid dynamics to control the flow field and rapidly cool the Zn vapor is investigated. In the transverse jet reactor, evaporated Zn entrained in an Ar carrier gas issues vertically into the horizontal tubular reactor through which cooler H_2O and Ar flow. Particles are formed in the presence of steam at ~ 450 K. The trajectory of the jet is controlled via the effective velocity ratio, R, which is the square root of the ratio of the kinetic energy of the jet to that of the cross-flow. A computational fluid dynamics (CFD) model indicates that the trajectory of the jet can be controlled so that the majority of the Zn mass is directed down the center of the reactor, not near the reactor walls for R = 4.25 to R = 4.5. Experimentally, maximum particle yields of 93% of the mass entering the reactor are obtained at R = 4.5.
机译:探讨了用于氢气生产两步Zn / ZnO太阳能热化学循环中Zn水解的反应器的性能。在技​​术上,在氢气生产步骤中完全水解Zn仍然是实施的主要屏障,并且已经给予Zn纳米级使气溶胶作为溶液的重大关注。这种连续过程的成功取决于在气溶胶中实现高颗粒产量和高转化率。关键挑战是控制气溶胶反应器中的流场,以使夹带在流动中的颗粒而无需在反应器壁上沉积。研究了基于横向喷射流体动力学控制流场并快速冷却Zn蒸气的新反应器概念的能力。在横向射流反应器中,蒸发Zn在Ar载气中垂直发出,通过该水平管式反应器,通过该水平管状反应器和冷却器H_2O和AR流动。颗粒在蒸汽在〜450k的存在下形成。通过有效速度比R控制射流的轨迹,这是射流的动能与交叉流量的动能比率的平方根。计算流体动力学(CFD)模型表示可以控制射流的轨迹,使得大部分Zn质量被引导在反应器的中心,而不是r = 4.25至r = 4.5的反应器壁附近。通过实验,在R = 4.5获得进入反应器的质量的93%的最大颗粒产率。

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