首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Sorption-enhanced synthetic natural gas (SNG) production from syngas: A novel process combining CO methanation, water-gas shift, and CO2 capture
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Sorption-enhanced synthetic natural gas (SNG) production from syngas: A novel process combining CO methanation, water-gas shift, and CO2 capture

机译:合成气生产增强吸附的合成天然气(SNG):结合CO甲烷化,水煤气变换和CO2捕集的新工艺

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Synthetic natural gas (SNG) production from syngas is under investigation again due to the desire for less dependency from imports and the opportunity for increasing coal utilization and reducing greenhouse gas emission. CO methanation is highly exothermic and substantial heat is liberated which can lead to process thermal imbalance and deactivation of the catalyst. As a result, conversion per pass is limited and substantial syngas recycle is employed in conventional processes. Furthermore, the conversion of syngas to SNG is typically performed at moderate temperatures (275-325 °C) to ensure high CH4 yields since this reaction is thermodynamically limited. In this study, the effectiveness of a novel integrated process for the SNG production from syngas at high temperature (i.e. 600 °C) was investigated. This integrated process consists of combining a CO methanation nickel-based catalyst with a high temperature CO2 capture sorbent in a single reactor. Integration with CO2 separation eliminates the reverse-water-gas shift and the requirement for a separate water-gas shift (WGS) unit. Easing of thermodynamic constraint offers the opportunity of enhancing yield to CH4 at higher operating temperature (500-700 °C) which also favors methanation kinetics and improves the overall process efficiency due to exploitation of reaction heat at higher temperatures. Furthermore, simultaneous CO2 capture eliminates greenhouse gas emission. In this work, sorption-enhanced CO methanation was demonstrated using a mixture of a 68% CaO/32% MgAl2O4 sorbent and a CO methanation catalyst (Ni/Al2O3, Ni/MgAl2O4, or Ni/SiC) utilizing a syngas ratio (H2/CO) of 1, gas-hour-space velocity (GHSV) of 22,000 h~(-1), pressure of 1 bar and a temperature of 600 °C. These conditions resulted in ~90% yield to methane, which was maintained until the sorbent became saturated vvith CO2. By contrast, without the use of sorbent, equilibrium yield to methane is only 22%. Cyclic stability of the methanation catalyst and durability of the sorbent were also studied in the multiple carbonation-decarbonation cycle studies proving the potential of this integrated process in a practical application.
机译:由于希望减少对进口的依赖,并有增加煤炭利用和减少温室气体排放的机会,因此,合成气的合成天然气(SNG)生产再次受到研究。 CO甲烷化高度放热,并且释放出大量热量,这可能导致过程热不平衡和催化剂失活。结果,每次通过的转化率受到限制,并且常规方法中使用了大量的合成气再循环。此外,合成气向SNG的转化通常在中等温度(275-325°C)下进行,以确保高CH4收率,因为该反应在热力学上受到限制。在这项研究中,研究了一种新颖的集成工艺在高温(即600°C)下从合成气生产SNG的有效性。该集成过程包括在单个反应器中结合使用CO甲烷化镍基催化剂和高温CO2捕集吸附剂。与CO2分离相结合,消除了反向水煤气变换,也不需要单独的水煤气变换(WGS)装置。放松热力学约束提供了在较高工作温度(500-700°C)下提高CH4收率的机会,这也有利于甲烷化动力学,并由于在较高温度下利用反应热而提高了整体工艺效率。此外,同时捕获二氧化碳可消除温室气体排放。在这项工作中,使用68%CaO / 32%MgAl2O4吸附剂和CO甲烷化催化剂(Ni / Al2O3,Ni / MgAl2O4或Ni / SiC)的混合物,利用合成气比(H2 / CO)为1,气时空速(GHSV)为22,000 h〜(-1),压力为1 bar,温度为600°C。这些条件导致〜90%的甲烷收率,一直保持到吸附剂在CO2达到饱和为止。相反,在不使用吸附剂的情况下,甲烷的平衡收率仅为22%。在多次碳酸化-脱碳循环研究中,还研究了甲烷化催化剂的循环稳定性和吸附剂的耐久性,证明了该集成方法在实际应用中的潜力。

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