• Title/Summary/Keyword: 바이오가스

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유기성페자원 바이오가스 활용방안 및 운영 사례

  • Lee, Jun-Sang
    • Bulletin of Korea Environmental Preservation Association
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    • s.419
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    • pp.20-24
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    • 2015
  • 바이오가스는 지구 온난화의 원인인 화석연료를 대체할 수 있는 신재생에너지로 다방면에서 사용될 수 있다. 바이오가스 플랜트가 널리 보급된 유럽에서는 자동차연료, 도시가스, 연료전지, 스팀생산 및 발전등에 이용되고 있다. 우리나라에서도 바이오가스를 활용하기 위한 다양한 방법이 개발되어 시도되고 있으며 주로 발전에 국한되어 활용되던 것이 현재에는 도시가스, 자동차연료, 연료전지, 스팀생산 등에도 이용되고 있다.

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Applications and technical standards for biogas (바이오가스 활용과 품질기준)

  • Kim, Seung-Soo
    • Journal of the Korea Organic Resources Recycling Association
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    • v.18 no.3
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    • pp.38-49
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    • 2010
  • The technology of anaerobic digestion of organic wastes has been researched for the production of biogas in various purposes. Biogas comes from anaerobic digestion and landfill in which that of main components are methane and carbon dioxide containing small amount of hydrogen sulfide and ammonia. Biogas can either be used directly on the site where it is generated after proper upgrading or distributed to external customer via separate pipelines like natural gas. There are four basic ways biogas can be utilized such as production of heat and steam, electricity production, vehicle fuel and production of chemicals. There is no international technical standard for biogas use but some countries have developed national standards and procedures for biogas use. In this paper, technical standards of biogas depending on purpose have reviewed for the several countries.

Numerical Analysis and Demonstration Test on the Performance of a Static Mixer for mixing Biogas and Town Gas for the 5MW Biogas Turbine (5MW 바이오가스 터빈의 바이오가스와 도시가스 혼합용 정적 혼합기의 성능에 관한 수치해석 및 실증 연구)

  • Cha, Hyoseok;Song, Soonho;Park, Jong Yeon;Kim, Young Il;Mun, Sung Young
    • Journal of Energy Engineering
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    • v.24 no.1
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    • pp.51-57
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    • 2015
  • The purpose of this study is to verify the performance of a static mixer for mixing of biogas and town gas by numerical analysis and demonstration test. The reason for designing a static mixer is that there is a need to mix town gas with biogas when there is less production of biogas in biogas sites. Non-uniformity in the outlet section was calculated for investigating the performance of a static mixer. Non-uniformity was based on the mole fraction of methane in a mixture of biogas and town gas. Low non-uniformity means that biogas and town gas are mixed well through this static mixer. Also, pressure drop at the outlet section of a static mixer was calculated. The pressure drop is less than 0.2% in this static mixer. This static mixer is suitable for applying to a 5MW bio-gas turbine through the demonstration test in the field.

An Analysis on the Economic Impacts of the Bio-gas Supply Sector (바이오가스 공급 확대의 경제적 파급효과 분석)

  • Baek, Min-Ji;Kim, Ho-Young;Yoo, Seung-Hoon
    • Journal of Energy Engineering
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    • v.23 no.2
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    • pp.74-82
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    • 2014
  • The government is planning to expand the bio-gas supply as a method for mitigating greenhouse gas emissions to deal with climate change. By means of a policy instrument, the government is considering an introduction of the Renewable Fuel Standard (RFS) whose targets include bio-gas. This paper attempts to look into the economic effects of expanding the bio-gas supply by applying an input-output (I-O) analysis using a 2011 I-O table. The bio-gas supply sector consists of liquefied petroleum gas supply sector and city gas supply sector, based on the tenets of introducing the RFS. The production-inducing effect, value-added creation effect, and employment-inducing effect of the bio-gas sector are analyzed. The supply shortage effect and the price pervasive effect are also investigated. The results show that the production or investment of 1.0 won in the bio-gas supply sector induces the production of 1.0539 won and the value-added of 0.1998 won in the national economy. Moreover, the production or investment of 1.0 billion won, supply shortage of 1.0 won, and a price increase of 10.0% in the bio-gas supply sector touch off the employment of 0.5279 person, 1.6229 won, and an increase in overall price level by 0.0183%, respectively.

Study of the $SO_2$ combustion gases occurring from a livestock waste biogas power system (축산바이오가스발전시스템 가동 시 발생되는 연소 배기가스 중 $SO_2$에 관한 연구)

  • Choi, Jaejoon;Jung, Daehun;Park, Byungsik;Park, Jinsung;Huh, Changsu
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.05a
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    • pp.173.2-173.2
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    • 2011
  • 대체 에너지 자원 중 폐기물의 소화 가스를 이용한 바이오가스 발전은 이산화탄소에 비해 온실효과 영향력에 21배에 해당하는 메탄가스를 연료로 사용하여 환경부하를 저감시키고 에너지를 생산한다. 바이오가스에 포함된 $H_2S$는 연소 후 $SO_2$형태로 발생되는데 $SO_2$는 수분과 반응을 하게 되면 $H_2SO_4$등의 강한 산성을 띄는 물질로 생성되어 배관 및 발전기에 손상을 주고 저온부식현상을 유발하게 하며, 동물이나 인체에 노출되면 기관지 수축현상이 일어나 호흡기에 영향을 주는 질식성을 띄는 가스이다. 축산바이오가스에 포함된 $H_2S$의 함유량과 가스엔진의 연소 시 배출되는 $SO_2$ 배기가스 성분의 관련성을 검증하기 위해 60-65%의 $CH_4$와 30-35%의 $CO_2$ 성분의 바이오가스를 50kW급 발전기에서 사용하였고 연소 후 배출되는 가스 성분을 분석하였다.

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Biogas upgrading and Producing the Liquefied Bio-methane by Cryogenic Liquefaction Process (바이오가스 고질화와 초저온액화공정을 통한 액화바이오메탄 생산)

  • Shim, Dongmin;Sung, Hyunje;Park, Seongbum;Kim, Nackjoo;Chang, Homyung;Lee, Jaeyoung;Lee, Youngmin;Lee, Woocheul;Oh, Hwasoo
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.06a
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    • pp.246.1-246.1
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    • 2010
  • 본 연구는 바이오가스의 에너지효율성을 높이기 위한 연구로서 바이오가스 정제공정과 초저온액화공정을 통하여 액화바이오메탄을 생산하는 바이오가스 고질화기술개발 연구이다. 바이오가스 정제공정은 탈황, 제습, 흡착, 압축, $CO_2/CH_4$ 분리공정으로 구성하고, 초저온액화공정은 열교환기, $CO_2$ 제거설비, 질소냉매 공급공정으로 구성하여 혐기성소화조에서 발생하는 바이오가스($CH_4$ 농도: 60~65%, $H_2S$: 1,500~2,500ppm)를 $200Nm^3/hr$의 유량으로 인입시켜 액화바이오메탄을 생산하였다. 연구결과, 탈황공정에서는 가성소다 세정법을 이용하여 1,500~2,500ppm으로 인입되는 $H_2S$를 100ppm 이하로 제거한 후, 흡착법을 이용하여 $H_2S$를 완전히 제거하였다. 바이오가스에 포화된 수분은 냉각제습과 흡착제습공정을 통해 Dew point $-70{\sim}-90^{\circ}C$까지 제거하여 안정적으로 $CO_2/CH_4$ 분리공정에 인입시켰다. $CO_2/CH_4$ 분리공정은 흡착방식을 적용하여 $CH_4$ 순도가 95% 이상인 바이오메탄을 생산하였으며, 이때 메탄 회수율은 약 87%이였다. $CO_2$가 분리된 바이오메탄은 초저온액화공정을 이용하여 액화바이오메탄으로 전환시켰다. 이때 초저온액화공정은 Reverse Brayton cycle로 구성하였으며, 냉매로는 질소를 사용하였다. 액화바이오메탄의 생산은 바이오메탄을 등엔트로피과정인 단열팽창을 통하여 $-155{\sim}-159^{\circ}C$의 초저온으로 냉각되는 질소냉매와 열교환기에서 열교환시켜 이루어졌으며 그 생산량은 $3.46m^3$/day(1bar, $-161^{\circ}C$)이었다.

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Study on maximization and demonstration of biogas production in an anaerobic digester using a microbial agent (미생물제재를 이용한 혐기성소화조 바이오가스 생산 극대화와 실증화에 관한 연구)

  • Bae, Sang-Dae
    • The Journal of the Convergence on Culture Technology
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    • v.4 no.2
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    • pp.179-183
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    • 2018
  • Recently, several studies have been conducted on biogas and organic compost production using food waste in an anaerobic digester. In this study, basic experiments were conducted to produce biogas and compost by fermenting food wastes with microbial agents. First, a microbial agent was developed by combining various microorganisms. Then, the amount of generated biogas was identified through a food waste batch experiment. Further, we could maximize and demonstrate biogas production in an anaerobic digester by examining biogas production and composting in a pilot plant.

Development of Biogas Purification System for City Gas Supply (도시가스 용 바이오 가스 정제 시스템 개발)

  • Lee, Hyunjin;Ko, Sang-Wook;Lee, In-Dong;Jung, In Hee;Ko, Jae-Wook
    • Journal of the Korean Institute of Gas
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    • v.23 no.2
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    • pp.61-67
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    • 2019
  • Korea is natural gas importer which imports a lot quantities which 20% of the volume of US exports in 2018. Biogas which can satisfy gas demand and respond effectively to climate change, will be an alternative. However, only 20% of biogas production is sold, which is also not efficient and difficult to use. The purpose of this study develops an optimal purification system for supplying biogas as city gas. We develope an optimal system by analyzing biogas for system selection, finding cases for system design, developing scenario, and developing a cost - benefit tool.

미활용 바이오가스 에너지 이용

  • 박순철
    • The Magazine of the Society of Air-Conditioning and Refrigerating Engineers of Korea
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    • v.31 no.5
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    • pp.26-30
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    • 2002
  • 하수처리장 슬러지, 음식물, 유기성 폐수 소화가스와 매립지 가스 등 바이오가스의 에너지 활용 방안과 그 온실가스 저감 효과에 대하여 소개하며 특히 가장 일반적이고 손쉬운 방법인 가스엔진 발전 방법에 대하여 분석하였다

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Recent Progress for Hydrogen Production from Biogas and Its Effective Applications (바이오가스 유래 수소 제조 기술 동향 및 효과적인 적용)

  • Song, Hyoungwoon;Jung, Hee Suk;Uhm, Sunghyun
    • Applied Chemistry for Engineering
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    • v.31 no.1
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    • pp.1-6
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    • 2020
  • Hydrogen production from biogas has received consistent attention due to the great potential to solve simultaneously the issues of energy demands and environmental problems. Practically, biomethane produced by purification/upgrading of biogas can be a good alternative to the natural gas which is a main reactant for a steam methane reforming process. Judging from the economic and environmental impacts, however, the steam biogas and dry reforming are considered to be more effective routes for hydrogen production because both processes do not require the carbon dioxide elimination step. Herein, we highlight recent studies of hydrogen production via reforming processes using biogas and effective applications for earlier commercialization.