• 제목/요약/키워드: biogas purification

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바이오가스 정제 및 고질화 기술 현황 및 전망 (The Present and the Future of Biogas Purification and Upgrading Technologies)

  • 허남효;박재규;김기동;오영삼;조병학
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2011년도 춘계학술대회 초록집
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    • pp.172-172
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    • 2011
  • Anaerobic digestion(AD) has successfully been used for many applications that have conclusively demonstrated its ability to recycle biogenic wastes. AD has been successfully applied in industrial waste water treatment, stabilsation of sewage sludge, landfill management and recycling of biowaste and agricultural wastes as manure, energy crops. During AD, i.e. organic materials are decomposed by anaerobic forming bacteria and fina1ly converted to excellent fertilizer and biogas which is primarily composed of methane(CH4) and carbon dioxide(CO2) with smaller amounts of hydrogen sulfide(H2S) and ammonia(NH3), trace gases such as hydrogen(H2), nitrogen(N2), carbon monoxide(CO), oxygen(O2) and contain dust particles and siloxanes. The production and utilisation of biogas has several environmental advantages such as i)a renewable energy source, ii)reduction the release of methane to the atomsphere, iii)use as a substitute for fossil fuels. In utilisation of biogas, most of biogas produced from small scale plant e.g. farm-scale AD plant are used to provide as energy source for cooking and lighting, in most of the industrialised countries for energy recovery, environmental and safety reasons are used in combined heat and power(CHP) engines or as a supplement to natural. In particular, biogas to use as vehicle fuel or for grid injection there different biogas treatment steps are necessary, it is important to have a high energy content in biogas with biogas purification and upgrading. The energy content of biogas is in direct proportion to the methane content and by removing trace gases and carbon dioxide in the purification and upgrading process the energy content of biogas in increased. The process of purification and upgrading biogas generates new possibilities for its use since it can then replace natural gas, which is used extensively in many countries, However, those technologies add to the costs of biogas production. It is important to have an optimized purification and upgrading process in terms of low energy consumption and high efficiency giving high methane content in the upgraded gas. A number of technologies for purification and upgrading of biogas have been developed to use as a vehicle fuel or grid injection during the passed twenty years, and several technologies exist today and they are continually being improved. The biomethane which is produced from the purification and the upgrading process of biogas has gained increased attention due to rising oil and natural gas prices and increasing targets for renewable fuel quotes in many countries. New plants are continually being built and the number of biomethane plants was around 100 in 2009.

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연료전지에의 적용을 위한 혐기성 소화가스의 정제, 고질화 및 메탄개질 기술 (Process Technologies of Reforming, Upgrading and Purification of Anaerobic Digestion Gas for Fuel Cells)

  • 배민수;이종연;이종규
    • 한국수소및신에너지학회논문집
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    • 제27권2호
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    • pp.135-143
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    • 2016
  • Biogas is a renewable fuel from anaerobic digestion of organic matters such as sewage sludge, manure and food waste. Raw biogas consists mainly of methane, carbon dioxide, hydrogen sulfide, and water. Biogas may also contain other impurities such as siloxanes, halogenated hydrocarbons, aromatic hydrocarbons. Efficient power technologies such as fuel cell demand ultra-low concentration of containments in the biogas feed, imposing stringent requirements on fuel purification technology. Biogas is upgraded from pressure swing adsorption after biogas purification process which consists of water, $H_2S$ and siloxane removal. A polymer electrolyte membrane fuel cell power plant is designed to operate on reformate produced from upgraded biogas by steam reformer.

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

  • 이현진;고상욱;이인동;정인희;고재욱
    • 한국가스학회지
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    • 제23권2호
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    • pp.61-67
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    • 2019
  • 우리나라는 천연가스 수입국으로 2018년 미국이 수출한 물량의 20%를 수입할 정도로 많은 양을 수입하고 있다. 이에 가스 수요를 만족시키며, 기후변화 대응에 효과적으로 대응할 수 있는 바이오가스는 대체제가 될 수 있을 것으로 생각된다. 그러나 바이오가스의 생산량의 20%만이 판매되고 있고, 이 역시 효율이 좋지 못해 활용하기 어려운 실정이다. 본 연구에서는 바이오가스를 도시가스로 공급 할 수 있는 최적의 정제 시스템을 개발을 목적으로 하였다. 시스템 선정을 위한 바이오가스에 대한 분석, 시스템 설계를 위한 사례 발굴, 시나리오 구성, 비용편익 툴을 개발하고 사례 적용하여 최적의 시스템을 개발하고자 하였다.

분리막을 이용한 바이오가스의 메탄 자원화 (Resourcing of Methane in the Biogas Using Membrane Process)

  • 박영규;양영선
    • 청정기술
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    • 제20권4호
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    • pp.406-414
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    • 2014
  • 바이오가스 내 주요성분은 메탄 45~75%, 이산화탄소 30~50% 그리고 황화수소 0.3% 및 수증기가 함유하고 있다. 바이오가스로부터 이산화탄소와 황화수소를 제거하기 위해 흡수공정과 분리막공정을 이용한 메탄가스 자원화연구가 수행되고 있다. 본 논문에서는 바이오가스성분으로 조제한 조제가스를 이용하여 폴리설폰으로 제조한 분리막을 이용하여 메탄을 95% 까지 분리정제하기 위한 실험을 수행하였다. 분리막에 의하여 이산화탄소와 메탄의 분리를 위해 공급원료와 혼합가스의 투입압력의 효과를 연구하였고 0.3% 황화수소를 처리하기 위한 방법으로 킬레이트화합물을 사용하였다.

말레이시아 팜오일폐수 POME(Palm Oil Mill Effluent)를 이용한 바이오가스 신재생에너지기술 그린정책 동향 (Trends of Green Policies of Biogas Renewable Technology using POME in Malaysia)

  • 박영규
    • 한국폐기물자원순환학회지
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    • 제35권7호
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    • pp.571-586
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    • 2018
  • The Malaysian biogas upgrading technologies and policies were examined. In Malaysia, the regulation of palm oil mill effluent (POME) has been enforced to reduce the biochemical oxygen demand to 20 ppm and the biogas capture in the palm oil mills have been recently enforced for renewable energy. A huge amount of organic waste is produced from POME, and 80 million tons from palm oil trees, every year. Due to the renewable energy trends, the Malaysian government is modifying the use of biogases as fuels in favor of their conversion into compressed natural gas (CNG) and other chemicals; various green policies are being promoted because of many advantages of the organic substances. The Korean policies for biogas are a good model for exporting environmental plants after upgrading the digestion and purification technologies. Therefore, this article introduces the current status of POME and biogas production in Malaysia, it could encourage creating a new market for biomethane.

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

  • 송형운;정희숙;엄성현
    • 공업화학
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    • 제31권1호
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    • pp.1-6
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    • 2020
  • 바이오가스를 이용한 수소 제조는 주요한 에너지 및 환경 관련 이슈들을 동시에 해결할 수 있다는 장점으로 꾸준히 주목받아 왔다. 바이오가스 정제를 통해 얻은 바이오메탄 수증기개질은 천연가스 개질을 대체할 수 있는 좋은 현실적인 대안이다. 하지만, 경제성과 환경 유해성을 모두 고려한다면 바이오가스를 직접 개질반응에 활용하는 바이오가스 수증기 개질 및 건식 개질을 활용한 수소 제조가 보다 효과적이라 평가된다. 본 논문에서는 바이오가스 기반 추출수소 제조 관련 최근의 기술 이슈 및 개발 동향을 소개하며 향후 상업화를 위한 효과적인 적용 방향에 대해서 고찰하고자 한다.

하수슬러지 Biogas의 신재생에너지화 타당성 연구 (A Feasibility Study for Renewable Energy from Sewage Sludge Biogas)

  • 강호;이혜미;조상선;박선욱;정지현
    • 한국물환경학회지
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    • 제26권5호
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    • pp.754-760
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    • 2010
  • This study was carried out not only to evaluate optimal operating condition to increase biogas production, but also to estimate feasibility of renewable energy from anaerobic digester of sewage sludge. Semi- continuous Fed and Mixed Reactors (SCFMRs) were operated in various condition to quantify the reactor variables. The result of SCFMR operation showed that the biogas productivity and total volatile solids (TVS) removal of total solids (TS) 4% reactor at hydraulic retention time (HRT) 20 days with Organic Loading Rate (OLR) of $1.45kg/m^3-d$ were $0.39m^3/m^3-d$ and 26.7%, respectively which was two times higher than that of TS 2.5% reactor. Consequently the daily biogas production of $20,000m^3$ would be possible from the total volume of $52,000m^3$ of anaerobic digesters of the municipal wastewater treatment plant in D city. In feasibility study for the Biogas utilization, combined heat and power system (CHP) and CNG gasification were examined. In case of CHP, the withdrawal period of capital cost for gas-engine (GE) and micro gas-turbine (MGT) were 7.7 years and 9.1 years respectively. biogas utilization as Clean Natural Gas (CNG) shows lower capital cost and higher profit than that of CHP system. CNG gasificaion after biogas purification is likely the best alternative for Biogas utilization which have more economic potential than CHP system. The withdrawal period of capital cost appeared to be 2.3 years.

바이오가스 적용 캐비티 매트릭스 연소기 CFD 수치연산 (CFD Numerical Calcultion for a Cavity Matrix Combustor Applying Biogas)

  • 전영남;안준
    • 한국수소및신에너지학회논문집
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    • 제33권5호
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    • pp.598-606
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    • 2022
  • With the advancement of industry, the use of various sustainable energy sources and solutions to problems affecting the environment are being actively requested. From this point of view, it is intended to directly burn unused biogas to use it as energy and to solve environmental problems such as greenhouse gases. In this study, a new type of cavity matrix combustor capable of low-emission complete combustion without complex facilities such as separation or purification of biogas produced in small and medium-sized facilities was proposed, and CFD numerical calculation was performed to understand the performance characteristics of this combustor. The cavity matrix combustor consists of a burner with a rectangular porous microwave receptor at the center inside a 3D cavity that maintains a rectangular parallelepiped shape composed of a porous plate that can store heat in the combustor chamber. As a result of numerical calculation, the biogas supplied to the inlet of the combustor is converted to CO and H2, which are intermediate products, on the surface of the 3D matrix porous burner. And then the optimal combustion process was achieved through complete combustion into CO2 and H2O due to increased combustibility by receiving heat energy from the microwave heating receptor.

50 Nm3/h급 바이오가스 직접 이용 수소 생산 공정 최적화 (Optimization of Hydrogen Production Process using 50 Nm3/h Biogas)

  • 홍기훈;이동규;김형래;황상연;송형운;안성준;황성원
    • 한국가스학회지
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    • 제28권1호
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    • pp.44-52
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    • 2024
  • 본 연구에서는 유기성 폐기물로부터 생산되는 바이오가스를 이산화탄소 제거 없이 직접 이용하여 바이오가스 전처리 및 정제 공정 비용을 절감하여 수소를 생산하는 공정의 모델을 구축하고 열교환망 최적화를 통해 공정비용 최소화, 수소 생산량 및 최종 배가스 온도 최대화를 목표로 공정 모사를 진행하였다. 공정 최적화 결과 열교환기 개수 제한조건을 충족하면서 최종 배가스 온도를 최대화하는 공정모델이 가장 효율적임을 확인하였다. 본 연구의 결과는 바이오가스 직접 이용 수소 생산 공정의 상용개념설계에 활용되어 바이오가스의 청정수소 에너지 전환기술 확대에 기여 가능할 것으로 판단된다.

Low Calorific Gasturbine 매립지 적용 및 유리온실 운용기술 설계 (Design for Landfill Gas Appliation by Low Calorific Gas Turbine and Green House Optimization Technology)

  • 허광범;박정극;이정빈;임상규
    • 신재생에너지
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    • 제6권2호
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    • pp.27-32
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    • 2010
  • Low Calorific Gas Turbine (LCGT) has been developed as a next generation power system using landfill gas (LFG) and biogas made from various organic wastes, food Waste, waste water and Livestock biogas. Low calorific fuel purification by pretreatment system and carbon dioxide fixation by green house system are very important design target for the optimum applications of LCGT. Main troubles of Low Calorific Gas Turbine system was derived from the impurities such as hydro sulfide, siloxane, water contained in biogas. Even if the quality of the bio fuel is not better than natural gas, LCGT may take low quality gas fuel and environmental friendly power system. The mechanical characterisitics of LCGT system is a high energy efficiency (>70%), wide range of output power (30 kW - 30 MW class) and very clean emission from power system (low NOx). A green house has been designed for four different carbon dioxide concentration from ambient air to 2000 ppm by utilizing the exhaust gas and hot water from LCGT system. LCGT is expected to contribute achieving the target of Renewable Portfolio Standards (RPS).