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A Pilot-Scale Demonstration of Mobile Direct Air Capture Using Metal-Organic Frameworks

机译:半工业规模示范移动直接空气捕获使用有机框架

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摘要

It is increasingly apparent that negative emissions technologies, such as direct air capture (DAC), are required as part of the technology mix for limiting global atmospheric temperature increase. For all DAC technologies, the requisite energy for regeneration of the separation media strongly influences the overall cost of the process and therefore directly influences their likely implementation. Herein, the results of a pilot-scale demonstration of a new metal organic framework (MOF) based technology, Airthena, incorporated within a mobile unit for distributed deployment, are reported. Careful preparation of a MOF nanocomposite results in a CO2-selective sorbent with fine-tuned kinetic and thermodynamic properties. An optimum regeneration temperature of 80 degrees C is achieved, along with strong repellence of water vapor during the adsorption process. Taken together, this demonstrator has delivered one of the lowest regeneration energy consumptions, 1.6 kWh kg-CO2-1 with output purity of 70-80%. This equates to an operational cost of $35-$350 ton-CO(2)(-1)depending on the source of regeneration energy. Over the duration of the pilot-scale testing, the demonstrator captures a total of 8 kg of CO2 over 2680 cycles.
机译:越来越明显的是,负面的直接排放的技术,如空气捕获(DAC),需要的一部分技术限制全球大气混合温度增加。必要的的再生能源媒体强烈影响整体分离这个过程,因此直接成本可能影响他们的实现。的半工业规模示范的结果新的金属有机框架(MOF)的基础技术、Airthena合并在一个移动单元分布式部署,报道。纳米复合材料导致CO2-selective吸附剂与精确的动力学和热力学属性。达到80摄氏度,还有强劲在吸附排斥性的水蒸气的过程。再生能量最低的国家之一消耗,1.6千瓦时kg-CO2-1纯度与输出70 - 80%。35 - 350美元ton-CO(2)(1)取决于的来源再生能源。半工业规模测试,演示了共有8公斤的二氧化碳超过2680周期。

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