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Removal of CO2 from the terrestrial atmosphere to curtail global warming: From methodology to laboratory prototype.

机译:从陆地大气中去除二氧化碳以减少全球变暖:从方法到实验室原型。

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摘要

This research has focused on the initial phase of required investigations in pursuit of a global scale methodology for reduction of CO 2 in terrestrial air for the purpose of curtailment of global warming. This methodology was initially presented by Agee, Orton, and Rogers (2013), and has provided the basis for pursuing this thesis research.;The first objective of the research project was to design and build a laboratory prototype system, capable of depleting CO2 from terrestrial air at 1 bar of pressure through LN2 refrigeration. Design considerations included a 26.5L cylindrical Pyrex glass sequestration chamber, a container to hold a reservoir of LN2 and an interface between the two to allow for cooling and instrumentation ports for measurements inside the sequestration chamber. Further, consideration was given to the need for appropriate insulating material to enclose the assembled apparatus to help achieve efficient cooling and the threshold depositional temperature of 135 K. The Amy Facility in the Department of Chemistry provided critical expertise to machine the apparatus to specifications, especially the stainless steel interface plate. Research into available insulating materials resulted in the adaption of TRYMER RTM 2500 Polyisocyanurate, effective down to 90 K.;The above described DAC prototype designed for CO2 sequestration accomplished two of the initial research objectives investigated: 1) conduct refrigeration experiments to achieve CO2 terrestrial deposition temperature of 135 K (uniformly) and 2) deplete CO2 from the chamber air at 1 bar of pressure, documented by appropriate measurements. It took approximately 5.5 hours for the chamber to be completely uniform in temperature of 135 K (and below) through the use of LN2 poured into the container sitting on an aluminum interface on top of the sequestration Pyrex chamber. As expected, Rayleigh-Taylor instability (more dense fluid over less dense fluid) was observed through the duration of the experiments, which helped to achieve approximate uniform temperature within the sequestration chamber. The lowest temperature achieved in any experiment was 125 K. Using ambient laboratory air to fill the chamber naturally, CO2 depletion was observed to be 90% with residual CO2 contained in air that was pulled through the leaks into the sequestration chamber. CO2 values were taken from 440-500 ppmv down to 30-50 ppmv, in the series of experiments executed.;An appropriate new consideration for the sequestration process is to determine how the CO2 is being deposited within the chamber, i.e. on the base of the aluminum plate (and possibly the side walls of the chamber) in the form of frost, or as a CO2 cloud of suspended dry ice particles through deposition of CO2 gas onto Ice Nuclei (IN), or by a combination of both processes. Although this was an early envisioned research goal, such was not pursued in this M.S. thesis research. Further, CO2 snow would only be expected if large amounts of CO2 gas were sequestered, producing a precipitating cloud.
机译:这项研究集中在必需研究的初始阶段,以寻求一种全球规模的方法来减少陆地空气中的CO 2,以减少全球变暖。该方法最初由Agee,Orton和Rogers(2013)提出,并为进行本论文研究提供了基础。该研究项目的首要目标是设计和构建能够从中消耗CO2的实验室原型系统。通过LN2制冷以1 bar的压力运行的陆地空气。设计方面的考虑因素包括一个26.5L的圆柱形Pyrex玻璃隔离室,一个用于容纳LN2储罐的容器以及两者之间的接口,以允许在隔离室内进行测量的冷却端口和仪器端口。此外,考虑到需要合适的绝缘材料来封闭组装好的设备,以帮助实现有效的冷却和135 K的阈值沉积温度。化学部的Amy设施提供了关键的专业知识,可按照规定对设备进行加工,特别是不锈钢接口板。对可用绝缘材料的研究导致TRYMER RTM 2500聚异氰脲酸酯的适应性降低至90 K .;上述用于CO2隔离的DAC原型设计完成了两个初步研究目标:1)进行制冷实验以实现CO2地面沉积135 K(均匀)的温度和2)在1 bar的压力下消耗了箱内空气中的CO2,已通过适当的测量证明。通过将LN2倒入位于隔离Pyrex腔室顶部的铝界面上的容器中,使腔室在135 K(及以下)温度下完全均匀需要大约5.5小时。如预期的那样,在整个实验过程中观察到了瑞利-泰勒不稳定性(密度较高的流体比密度较小的流体),这有助于在隔离室内实现近似均匀的温度。在任何实验中达到的最低温度为125K。使用实验室环境空气自然填充反应室时,观察到CO2消耗为90%,残留在空气中的残留CO2通过泄漏被拉入隔离室。在执行的一系列实验中,将CO2值从440-500 ppmv降低到30-50 ppmv。;螯合过程的一个适当的新考虑因素是确定如何在腔室内(即在容器的基础上)沉积CO2。铝板(可能是冰霜的形式)(可能是腔室的侧壁),或者是通过将二氧化碳气体沉积到冰核(IN)上或通过两种方法的结合而形成的悬浮干冰颗粒的二氧化碳云。尽管这是一个较早设想的研究目标,但在本硕士论文研究。此外,只有隔离大量的CO2气体并产生沉淀的云,才可以预期会有CO2雪。

著录项

  • 作者

    Orton, Andrea E.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Atmospheric sciences.
  • 学位 M.S.
  • 年度 2015
  • 页码 69 p.
  • 总页数 69
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:57

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