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Post-combustion carbon dioxide capture using electrochemically mediated amine regeneration

机译:使用电化学介导的胺再生来燃烧后捕集二氧化碳

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摘要

Electrochemically mediated amine regeneration is a new post-combustion capture technology with the potential to exploit the excellent removal efficiencies of thermal amine scrubbers while reducing parasitic energy losses and capital costs. The improvements result from the use of an electrochemical stripping cycle, In lieu of the traditional thermal swing, to facilitate CO_2 desorption and amine regeneration; metal cations generated at an anode react with the amines, displacing the CO_2, which is then flashed off, and the amines are regenerated by subsequent reduction of the metal cations in a cathode cell. The advantages of such a process include higher CO_2 desorption pressures, smaller absorbers, and lower energy demands. Several example chemistries using different polyamines and copper are presented. Experimental results indicate an open-circuit efficiency of 54% (15 kJ per mole CO_2) is achievable at the tested conditions and models predict that 69% efficiency is possible at higher temperatures and pressures. A bench scale system produced 1.6 mL min~(-1) CO_2 while operating at 0.4 volts and 42% Faradaic efficiency; this corresponds to a work of less than 100 kJ per mole.
机译:电化学介导的胺再生是一种新的燃烧后捕集技术,具有开发热胺洗涤塔优异的去除效率,同时减少寄生能量损失和资本成本的潜力。改进来自使用电化学汽提循环代替传统的热交换,以促进CO_2解吸和胺再生。在阳极产生的金属阳离子与胺反应,置换出CO_2,然后闪蒸出CO_2,然后通过在阴极电池中还原金属阳离子来再生​​胺。这种方法的优点包括较高的CO 2解吸压力,较小的吸收塔和较低的能量需求。介绍了使用不同多胺和铜的几种示例化学方法。实验结果表明,在测试条件下,开路效率为54%(每摩尔CO_2 15 kJ),模型预测,在更高的温度和压力下,开路效率为69%。台式系统在0.4伏和42%的法拉第效率下产生1.6 mL min〜(-1)CO_2。这相当于每摩尔小于100 kJ的功。

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  • 来源
    《Energy & environmental science》 |2013年第8期|2505-2517|共13页
  • 作者单位

    Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave., 66-325, Cambridge, MA, 02139, USA;

    Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave., 66-325, Cambridge, MA, 02139, USA;

    MIT Energy Initiative, Massachusetts Institute of Technology, Cambridge, MA 02139, USA;

    Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave., 66-325, Cambridge, MA, 02139, USA;

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