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Experimental Investigation Of Hydrogen Production Integrated Methanol Steam Reforming With Middle-temperature Solar Thermal Energy

机译:中温太阳热能制氢甲醇蒸汽重整制氢实验研究

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摘要

Developing a hydrogen production method that utilizes solar thermal energy in an effective manner is a great challenge. In this paper we propose a new approach to solar hydrogen production with the integration of methanol steam reforming and middle-temperature solar thermal energy. An experiment on hydrogen production is conducted using a 5-kW solar reactor at 150-300 ℃ under atmosphere pressure. The 5-kW solar receiver/reactor is fabricated and positioned along the focal line of one-tracking parabolic trough concentrator. As a result, the chemical conversion of methanol can reach levels higher than 90%, and the volumetric concentration of hydrogen in the gas products can account for 66-74% above the solar flux of 580 W/m~2. The obtained maximum hydrogen yield per mole of methanol is 2.65-2.90 mol, approaching the theoretical maximum value, and the experimentally obtained thermo chemical efficiency of solar thermal energy converted into chemical energy is in the range of 30-50%, which is competitive with other high-temperature solar thermochemical processes. A kinetic model of solar-driven methanol steam reforming related to solar flux is also derived based on the experimental data. The promising results demonstrate that this solar-driven hydrogen production method can be feasible in practical applications.
机译:开发有效利用太阳能的氢生产方法是一个巨大的挑战。在本文中,我们提出了一种将甲醇蒸汽重整和中温太阳能热能相结合的太阳能氢生产的新方法。在150-300℃的大气压下,使用5kW的太阳能反应堆进行制氢实验。 5千瓦太阳能接收器/反应器的制造和安装沿单轨抛物线槽式聚光器的焦点进行。结果,甲醇的化学转化率可达到90%以上,气体产物中氢气的体积浓度可比580 W / m〜2的太阳通量高66-74%。所获得的每摩尔甲醇最大氢产率为2.65-2.90 mol,接近理论最大值,并且实验获得的将太阳能转换为化学能的热化学效率在30-50%的范围内,与其他高温太阳能热化学工艺。基于实验数据,还推导了与太阳通量有关的太阳驱动甲醇蒸汽重整动力学模型。有希望的结果表明,这种太阳能驱动的制氢方法在实际应用中是可行的。

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