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Ni-CaO Combined Sorbent-Catalyst Materials usage for Sorption Enhanced Steam Methane Reforming

机译:Ni-CaO混合吸附剂-催化剂材料在吸附增强蒸汽甲烷重整中的用途

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In the aim to develop new low carbon power generation processes, energy efficiency can be improved by associating carbon dioxide capture. Our work concerns SE-SMR (Sorption Enhanced Steam Methane Reforming) looping cycle. It is based on solid particles of CSCMs (Combined Sorbent Catalyst Materials) constituted by CaO — for sorbent function — and a reforming catalyst (metallic state) on the same support. Main reactions are [1]: Methane Steam Reforming (MSR) CH_4(g) + H_2O_(v) → CO_(g) + 3H_(2(g)) □ H_(298K)~0 = 206.2 kJ/mol Water-gas shift (WGS) CO(g) + H_2O(v) □ CO_2(g) + H_(2(g)) □ H_(298K)~0=-41.2 kJ/mol CO_2 sorption CO_2(g) + CaO_(s)□ CaCO_(3(s)) □H_(298K)~0= - 178.2 kJ/mol The last reaction shifts to the right WGS equilibrium by removing gaseous CO_2, so H_2 gas fraction increases. All reactions occur on the same solid particle and the global process in nearly auto-thermal. The hypothesized process works with this sequence: SE-SMR proceeds by CSCM particles (650°C, 1 atm [2]); these are then regenerated by calcination (reverse of CO_2 sorption, 800-900 °C, 1 atm); regenerated particles then return to SEMSR conditions, starting a new cycle; high purity H_2 here produced can be converted in power by fuel cells.
机译:为了开发新的低碳发电过程,可以通过关联二氧化碳捕获来提高能源效率。我们的工作涉及SE-SMR(吸附增强型蒸汽甲烷重整)循环循环。它基于由CaO(用于吸附功能)和在同一载体上的重整催化剂(金属态)构成的CSCM(混合吸附剂材料)的固体颗粒。主要反应为[1]:甲烷蒸汽重整(CHR4(g)+ H_2O_(v)→CO_(g)+ 3H_(2(g))□H_(298K)〜0 = 206.2 kJ / mol水煤气位移(WGS)CO(g)+ H_2O(v)□CO_2(g)+ H_(2(g))□H_(298K)〜0 = -41.2 kJ / mol CO_2吸附CO_2(g)+ CaO_(s) □CaCO_(3(s))□H_(298K)〜0 =-178.2 kJ / mol通过除去气态CO_2,最后反应移至WGS平衡,因此H_2气体分数增加。所有反应几乎都在自动热作用下发生在相同的固体颗粒和整体过程上。假设的过程按以下顺序进行:SE-SMR由CSCM粒子(650°C,1 atm [2])进行;然后通过煅烧(反向的CO_2吸附,800-900°C,1 atm)进行再生;再生的颗粒然后返回SEMSR条件,开始新的循环;此处产生的高纯度H_2可通过燃料电池转化为动力。

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