• Title/Summary/Keyword: carbon dioxide separation

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Separation characteristics of separation devices using inlet water mixed with exhalation gases without a compressor (날숨이 혼합된 물을 사용한 압축기없는 용존기체 분리기의 분리 특성)

  • Heo, Pil Woo
    • Journal of Advanced Marine Engineering and Technology
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    • v.40 no.9
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    • pp.842-846
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    • 2016
  • It's possible for a human to breathe under water, but the amount of dissolved oxygen in the water is small and a large amount of water is necessary to obtain sufficient dissolved oxygen from water. So, large separation system with large water pumps, having large surface areas, and large battery sources are needed. Exhalation gases are used to solve this problem. Theses gases contain some oxygen, nitrogen, and carbon dioxide; they contain less oxygen and more carbon dioxide compared to air. Therefore, reduction of the amount of carbon dioxide is necessary. If exhalation gases are employed appropriately, the separation device can be made more compact. Inlet water mixed with exhalation gases is supplied into the separation device, and dissolved gases are separated from the mixed water as it passes through the device. The inlet part of a typical separation system with a water delivery pump before the membrane module has more than one atmosphere. Hence, a compressor is used to mix the exhalation gases. In this study, the pressure at the inlet due to the use of a suction pump after the membrane module was less than one atmosphere; hence, compressors were not required. Separation characteristics were studied using a separation device without a compressor. The use of exhalation gases led to an increase in the amount of dissolved gases being separated. As the amount of inlet exhalation gases was increased, the separation of dissolved gases was increased as well.

Pre-Combustion Capture of Carbon Dioxide Using Principles of Gas Hydrate Formation (가스 하이드레이트 형성 원리를 이용한 연소전 탈탄소화 연구)

  • Lee, Hyun-Ju;Lee, Ju-Dong;Kim, Yang-Do
    • Korean Journal of Materials Research
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    • v.18 no.12
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    • pp.650-654
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    • 2008
  • The emission of carbon dioxide from the burning of fossil fuels has been identified as a major contributor to green house emissions and subsequent global warming and climate changes. For these reasons, it is necessary to separate and recover $CO_2$ gas. A new process based on gas hydrate crystallization is proposed for the $CO_2$ separation/recovery of the gas mixture. In this study, gas hydrate from $CO_2/H_2$ gas mixtures was formed in a semi-batch stirred vessel at a constant pressure and temperature. This mixture is of interest to $CO_2$ separation and recovery in Integrated Coal Gasification (IGCC) plants. The impact of tetrahydrofuran (THF) on hydrate formation from the $CO_2/H_2$ was observed. The addition of THF not only reduced the equilibrium formation conditions significantly but also helped ease the formation of hydrates. This study illustrates the concept and provides the basic operations of the separation/recovery of $CO_2$ (pre-combustion capture) from a fuel gas ($CO_2/H_2$) mixture.

Separation of dissolved gases from water using synthesized gases based on exhalation characteristics

  • Heo, Pil Woo;Park, In Sub
    • Journal of Advanced Marine Engineering and Technology
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    • v.38 no.10
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    • pp.1347-1353
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    • 2014
  • It's possible for a human to breathe under water, if dissolved oxygen is effectively used. Fish can stay under water using the gill which extracts dissolved oxygen from water. Water includes small amounts of oxygen, so a human needs larger amounts of water to acquire oxygen enough for underwater breathing. The exhalation gas from a human is another method to get higher amounts of oxygen under water. It mainly composes of oxygen, nitrogen and carbon dioxide. So, if only carbon dioxide is decreased, the exhalation gas has good characteristics for breathing of a human under water. In this paper, composition of the exhalation gas from a human was analyzed using GC. Based on these results, the synthesized gas was prepared and mixed into water which was used for experimental devices to analyze separation characteristics of dissolved gases from water. Experimental devices included a water pump, a hollow fiber membrane module and a vacuum pump. The effects of pressure and water flow on separation characteristics of synthesized gas were investigated. The compositions of gases separated from water using synthesized gas were investigated using GC. These results expect to be applied to the development of underwater breathing technology for a human.

Separation of EPA and DHA from Fatty Acid of Fish Oil by Urea Adduct Formation Using Supercritical Carbon Dioxide Solvent (초임계 이산화탄소 용매하의 요소부가법에 의한 어유지방산으로부터 EPA와 DHA의 분리)

  • Kim, Jae-Duck;Lim, Jong-Sung;Lee, Youn-Woo
    • Journal of the Korean Applied Science and Technology
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    • v.14 no.2
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    • pp.41-48
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    • 1997
  • Separation of EPA and DHA from fish oil fatty acid ethyl ester (FAFE) by urea adductive crystallization method was carried out in the supercritical carbon dioxide (SC $CO_2$) as a solvent. Our results showed that SC $CO_2$ is a good candidate as a solvent in the urea adductive crystallization to separate FAFE by the number of unsaturated bonds. Compared to the separation process using methanol. SC $CO_2$ yielded better performance in the overall selectivity of EPA and DHA. The effect of process variables on separation of EPA and DHA was discussed in detailed. A hybrid technology of SC $CO_2$ fractionation and urea adductive crystallization with SC $CO_2$ was conformed as a viable process to separate and concentrate EPA and DHA from fish oil.

Characteristics of dissolved gases separated from water mixed with exhalation gases without using a compressor

  • Heo, Pil Woo
    • Journal of Advanced Marine Engineering and Technology
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    • v.40 no.10
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    • pp.916-921
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    • 2016
  • It is possible for humans to breathe underwater using dissolved oxygen. However, unlike fish, humans need large amounts of oxygen to breathe underwater. Water generally contains small amounts of dissolved oxygen. To get enough dissolved oxygen from water, great volumes of it should be supplied into a separation device. If exhalation gases are used, the amounts of water supplied into the membrane can be decreased. However, the characteristics of exhalation gases after passage through the separation device need to be investigated. To reuse the exhalation gases, the concentration of carbon dioxide should be decreased. A compressor is needed to supply the exhalation gases because of the high pressure generated in the membrane inlet. However, compressors require a lot of power and are heavy, so it is not proper to get the portable separation device. A system without the compressor is needed. If the pressure of the position mixed from the exhalation is less than atmosphere, the compressor is not needed. In this thesis, characteristics of the gases which are mixed with exhalation gases and separated from water after passing the membrane are investigated. The compositions of carbon dioxide, oxygen, and nitrogen are measured with the gas chromatography. The effects of water and exhalation gas flow rates on characteristics of gases separated from water after the membrane are showed.

A Study of Separation of γ-linolenic acid with Supercritical Carbon Dioxide (초임계 이산화탄소를 이용한 감마 리놀렌산의 분리에 대한 연구)

  • Cho, In-Ho;Sang, Hie-Sun
    • Journal of the Korean Society of Industry Convergence
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    • v.10 no.2
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    • pp.97-104
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    • 2007
  • In different approaches were extracted from evening primrose seed by supercritical fluids carbon dioxide and for comparison with hexane as solvent. The extracts have been analyzed qualitatively and quantitatively to evaluate yield and selectivity of ${\gamma}$-linolenic acid. The yields extracts with supercritical fluids carbon dioxide were higher than those with hexane. When this process produces commercially, will get a many economic profit.

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Membrane-Based Carbon Dioxide Separation Process for Blue Hydrogen Production (블루수소 생산을 위한 이산화탄소 포집용 2단 분리막 공정 최적화 연구)

  • Jin Woo Park;Joonhyub Lee;Soyeon Heo;Jeong-Gu Yeo;Jaehoon Shim;Jinhyuk Yim;Chungseop Lee;Jin Kuk Kim;Jung Hyun Lee
    • Membrane Journal
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    • v.33 no.6
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    • pp.344-351
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    • 2023
  • The membrane separation process for carbon dioxide capture from hydrogen reformer exhaust gas has been developed. Using a commercial membrane module, a multi-stage process was developed to achieve 90% of carbon dioxide purity and 90% of recovery rate for ternary mixed gas. Even if a membrane module with being well-known properties such as material selectivity and permeability, the process performance of purity and recovery widely varies depending on the stage-cut, the pressure at feed and permeate side. In this study, we verify the limits of capture efficiency at single-stage membrane process under various operating conditions and optimized the two-stage recovery process to simultaneously achieve high purity and recovery rate.

Separation of Protein and Fatty Acids from Tuna Viscera Using Supercritical Carbon Dioxide

  • Kang Kil-Yoon;Ahn Dong-Hyun;Jung Sun-Mi;Kim Dong-Hun;Chun Byung-Soo
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.10 no.4
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    • pp.315-321
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    • 2005
  • Supercritical carbon dioxide extraction was investigated as a method for removing lipids and bad flavor from tuna viscera. To find the optimum conditions, different experimental variables, such as pressure, temperature, flow rate of solvent and sample size, were evaluated for the effective removal of lipids and the undesirable smell. Ethanol was used as the entrainer, with a $3\%$ by vol $CO_2$ flow rate. By increasing the pressure at constant temperature, the efficiency of the lipid removal was improved and the protein was concentrated without denaturalization. The main fatty acids extracted from the tuna viscera were palmitic acid (16:0), heptadecanoic acid (17:1), oleic acid (18:1) and docosahexaenoic acid (22:6). The major amino acids in the tuna viscera treated by supercritical carbon dioxide were glutamic acid, leucine and lysine, and the free amino acids were L-proline, taurine and L-$\alpha$-aminoadipic acid.

Optimum process conditions for supercritical fluid and co-solvents process for the etching, rinsing and drying of MEMS-wafers (초임계 유체와 공용매를 이용한 미세전자기계시스템 웨이퍼의 식각, 세정을 위한 최적공정조건)

  • Noh, Seong Rae;You, Seong-sik
    • Journal of the Semiconductor & Display Technology
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    • v.16 no.3
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    • pp.41-46
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    • 2017
  • This study aims to select suitable co-solvents and to obtain optimal process conditions in order to improve process efficiency and productivity through experimental results obtained under various experimental conditions for the etching and rinsing process using liquid carbon dioxide and supercritical carbon dioxide. Acetone was confirmed to be effective through basic experiments and used as the etching solution for MEMS-wafer etching in this study. In the case of using liquid carbon dioxide as the solvent and acetone as the etching solution, these two components were not mixed well and showed a phase separation. Liquid carbon dioxide in the lower layer interfered with contact between acetone and Mems-wafer during etching, and the results after rinsing and drying were not good. Based on the results obtained under various experimental conditions, the optimum process for treating MEMS-wafer using supercritical CO2 as the solvent, acetone as the etching solution, and methanol as the rinsing solution was set up, and MEMS-wafer without stiction can be obtained by continuous etching, rinsing and drying process. In addition, the amount of the etching solution (acetone) and the cleaning liquid (methanol) compared to the initial experimental values can be greatly reduced through optimization of process conditions.

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Carbon dioxide absorption characteristics according to amine mixtures with different order (급수가 다른 아민 혼합에 따른 이산화탄소 흡수 특성)

  • Choi, Soo-Hyun;You, Jong-Kyun;Park, Ki-Tae;Baek, Il-Hyun;Park, So-Jin
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.14 no.9
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    • pp.4635-4642
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    • 2013
  • The advanced absorbent that used amine mixture with different order were developed to separate carbon dioxide emitted from fossil fuel power plant. The carbon dioxide absorption capacity for mixtures with different amine(primary, secondary and tertiary) were investigated according to $CO_2$ partial pressure. The carbon dioxide absorption capacity at the same pressure is ordered as 3DMA1P 30wt%>3DMA1P 27wt%+MEA 3wt%>3DMA1P 27wt%+DEA 3wt%. The result indicates that mixing tertiary amine with primary amine yields more efficient carbon dioxide absorbent than mixing tertiary with secondary amine does. Finally, the predicted semi-empirical gas-liquid equilibrium model fitted with experimental results.