首页> 外文期刊>International journal of hydrogen energy >Plasma dry reforming of methane in an atmospheric pressure AC gliding arc discharge: Co-generation of syngas and carbon nanomaterials
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Plasma dry reforming of methane in an atmospheric pressure AC gliding arc discharge: Co-generation of syngas and carbon nanomaterials

机译:常压交流滑动电弧放电中甲烷的等离子体干重整:合成气和碳纳米材料的联产

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摘要

An alternating-current (AC) gliding arc reactor has been developed offering a new route for the co-generation of syngas and value-added carbon nanomaterials by plasma dry reforming of methane. Different carbon nanostructures including spherical carbon nano-particles, multi-wall carbon nanotubes and amorphous carbon have been obtained as byproducts of syngas generation in the plasma system. Optical emission spectra of the discharge demonstrate the formation of different reactive species (Al, CO, CH, C_2, H_2, H_β and O) in the plasma dry reforming reaction. The effect of different operating parameters (feed flow rate, input power and CH_4/CO_2 molar ratio) on the performance of the plasma process has been evaluated in terms of the conversion of feed gas, product selectivity and energy conversion efficiency. It is interesting to note that gliding arc plasma can be used to generate much cleaner gas products of which syngas is the main one. The results also show that the energy efficiency of dry reforming using gliding arc plasma is an order of magnitude higher than that for processing using dielectric barrier or corona discharges. Both of these can be attributed to the higher electron density in the order of 10~(23) m~3 generated in the gliding arc plasma.
机译:已经开发出交流(AC)滑动电弧反应器,为通过甲烷的等离子体干重整联产合成气和增值碳纳米材料提供了一条新途径。作为等离子体系统中合成气产生的副产物,已经获得了包括球形碳纳米颗粒,多壁碳纳米管和无定形碳在内的不同碳纳米结构。放电的光发射光谱表明在等离子体干重整反应中形成了不同的反应性物种(Al,CO,CH,C_2,H_2,H_β和O)。已根据进料气转化率,产物选择性和能量转化效率评估了不同操作参数(进料流速,输入功率和CH_4 / CO_2摩尔比)对等离子工艺性能的影响。有趣的是,滑弧等离子体可用于产生更清洁的气体产品,其中合成气是主要气体。结果还表明,使用滑动电弧等离子体进行干重整的能量效率比使用介电势垒或电晕放电进行处理的能量效率高一个数量级。这两者都可归因于在滑弧等离子体中产生的电子密度较高,约为10〜(23)m〜3。

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