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Capture of CO2 from flue gas streams with zeolite 13X by vacuum-pressure swing adsorption

机译:用13X沸石通过真空变压吸附法从烟道气中捕获CO2

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摘要

Vacuum swing adsorption (VSA) capture of CO2 from flue gas streams is a promising technology for greenhouse gas mitigation. In this study we use a detailed, validated numerical model of the CO2VSA process to study the effect of a range of operating and design parameters on the system performance. The adsorbent used is 13X and a feed stream of 12% CO2 and dry air is used to mimic flue gas. Feed pressures of 1.2 bar are used to minimize flue gas compression. A 9-step cycle with two equalisations and a 12-step cycle including product purge were both used to understand the impact of several cycle changes on performance. The ultimate vacuum level used is one of the most important parameters in dictating CO2 purity, recovery and power consumption. For vacuum levels of 4 kPa and lower, CO2 purities of >90% are achievable with a recovery of greater than 70%. Both purity and recovery drop quickly as the vacuum level is raised to 10 kPa. Total power consumption decreases as the vacuum pressure is raised, as expected, but the recovery decreases even quicker leading to a net increase in the specific power. The specific power appears to minimize at a vacuum pressure of approximately 4 kPa for the operating conditions used in our study. In addition to the ultimate vacuum level, vacuum time and feed time are found to impact the results for differing reasons. Longer evacuation times (to the same pressure level) imply lower flow rates and less pressure drop providing improved performance. Longer feed times led to partial breakthrough of the CO2 front and reduced recovery but improved purity. The starting pressure of evacuation (which is not necessarily equal to the feed pressure) was also found to be important since the gas phase was enriched in CO2 prior to removal by vacuum leading to improved CO2 purity. A 12-step cycle including product purge was able to produce high purity CO2 (>95%) with minimal impact on recovery. Finally, it was found that for 13X, the optimal feed temperature was around 67°C to maximize system purity. This is a consequence of the temperature dependence of the working selectivity and working capacity of 13X. In summary, our numerical model indicates that there is considerable scope for improvement and use of the VSA process for CO2 capture from flue gas streams.
机译:烟气中的真空变压吸附(VSA)捕获CO2 是缓解温室气体的一种有前途的技术。在这项研究中,我们使用了一个经过验证的详细的CO2VSA过程数值模型来研究一系列操作和设计参数对系统性能的影响。所用的吸附剂为13X,并使用12%CO2的进料流和干燥空气来模拟烟气。使用1.2 bar的进料压力可最大程度地减少烟道气压缩。一个具有两个均衡的9步循环和一个包含产品清除的12步循环都用于了解多个循环变化对性能的影响。最终真空度是决定CO2纯度,回收率和功耗的最重要参数之一。对于4 kPa以下的真空度,可以实现CO2纯度> 90%,回收率大于70%。随着真空度提高到10 kPa,纯度和回收率均迅速下降。如预期的那样,总功耗会随着真空压力的升高而降低,但恢复速度会更快降低,从而导致比功率的净增加。对于我们研究中使用的操作条件,在大约4 kPa的真空压力下,比功率似乎最小化。除了极限真空度外,由于各种原因,发现真空时间和进料时间也会影响结果。较长的疏散时间(达到相同的压力水平)意味着流速较低,压降较小,从而提高了性能。较长的进料时间导致CO2前沿的部分突破,回收率降低,但纯度提高。还发现抽空的起始压力(不一定等于进料压力)很重要,因为气相在通过真空除去之前先富集了CO2 ,从而提高了CO2 的纯度。包括产品吹扫在内的12个步骤的循环能够产生高纯度的CO2(> 95%),而对回收率的影响最小。最后,发现对于13X,最佳进料温度约为67°C,以使系统纯度最大化。这是工作选择性和工作能力的13X与温度有关的结果。总而言之,我们的数值模型表明,VSA工艺在烟气中捕获CO2 方面有很大的改进和应用范围。

著录项

  • 来源
    《Adsorption》 |2008年第5期|575-582|共8页
  • 作者单位

    Cooperative Research Centre for Greenhouse Gas Technologies Canberra Australia;

    Cooperative Research Centre for Greenhouse Gas Technologies Canberra Australia;

    Cooperative Research Centre for Greenhouse Gas Technologies Canberra Australia;

    Cooperative Research Centre for Greenhouse Gas Technologies Canberra Australia;

    Cooperative Research Centre for Greenhouse Gas Technologies Canberra Australia;

    H2Gen Innovations Inc. 4740 Eisenhower Avenue Alexandria VA 22304 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Vacuum swing adsorption; CO2 capture; Simulation;

    机译:真空摆动吸附;CO2捕集;模拟;

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