• 제목/요약/키워드: Compressed hydrogen gas

검색결과 58건 처리시간 0.028초

고압 천연 가스 인젝터의 분무 특성에 관한 연구 (An Investigation on the Spray Characteristics of a Compressed Natural Gas Injector)

  • 삭다 통차이;강유진;임옥택
    • 한국수소및신에너지학회논문집
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    • 제29권2호
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    • pp.219-225
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    • 2018
  • This study was carried out to investigate the injection characteristics of 800 kPa compressed natural gas compressed natural gas (CNG) injector developed in Korea. The CNG injector with multi-holes, employed in this experiment, was designed to inject CNG in the manifold at high pressure of 800 kPa. The spray macroscopic visualization test was carried out via Schlieren photography to study fuel-air mixing process. The fundamental spray characteristics, such as spray penetration, spray cone angle and spray velocity, were evaluated in the constant volume combustion chamber (CVCC) with varying the constant back pressure in CVCC from 0 to 1.8 bar. For the safety reason, nitrogen ($N_2$) and an acetone tracer were utilized as a surrogate gas fuel instead of CNG. The surrogate gas fuel pressures were controlled at 3, 5.5, and 8 bar, respectively. Injection durations were set at 5 ms throughout the experiment. The simulating events of the low engine speed were arranged at 1,000 rpm. The spray images were recorded by using a high-speed camera with a frame rate of 10,000 f/s at $512{\times}256pixels$. The spray characteristics were analyzed by using the image processing (Matlab). The results showed the significant difference that higher injection pressure had more effect on the spray shape than the lower injection pressure. When the injection pressure was increased, the longer spray penetration occurred. Moreover, the linear relation between speed and time are dependent on the injection pressure as well.

동적 모델링에 의한 수소 충전 시에 걸리는 시간의 산출 (Estimation of Hydrogen Filling Time Using a Dynamic Modeling)

  • 노상균
    • 한국수소및신에너지학회논문집
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    • 제32권3호
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    • pp.189-195
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    • 2021
  • A compressed hydrogen tank is to be repressurized to 40 bar by being connected to a high-pressure line containing hydrogen at 50 bar and 25℃. Hydrogen filling time and the corresponding hydrogen temperature has been estimated when the filling process stopped according to several thermodynamic models. During the process of cooling the hydrogen tank, hydrogen temperature and pressure vs. time estimation was performed using Aspen Dynamics. Filling time, hydrogen temperature after filling hydrogen gas, cooling time and the final tank pressure after tank filling process have been completed according to the thermodynamic models are almost same.

CNG 기관의 수소혼합률 변화에 따른 성능 및 배출가스 특성에 관한 실험적 연구 (An Experimental Study on Performance and Emission Characteristics of Hydrogen Mixtures in a CNG Engine)

  • 김인구;손지환;김정화;김선문;김정수;이성욱
    • 한국수소및신에너지학회논문집
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    • 제27권4호
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    • pp.357-364
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    • 2016
  • Recently, the world faces the environmental problem such as air pollution due to harmful gas discharged from car and abnormal climate due to the green-house gases increased by the discharge of $CO_2$. Compressed Natural Gas (CNG), one of alternative for this problem, is less harmful, compared to the existing fossil fuel, as gaseous fuel, and less carbon in fuel ingredients and carbon dioxide generation rate relatively favorable more than the existing fuel. However, CNG fuel has the weakness of slow flame propagation speed and difficult fast burn. On the other hand, hydrogen does not include carbon in fuel ingredients, and does not discharge harmful gas such as CO and HC. Moreover, it has strength of quick burning velocity and ignition is possible with small ignition energy source and it's has wide Lean Flammability Limit. If using this hydrogen with CNG fuel, the characteristics of output and discharge gas is improved by the mixer's burning velocity improved, and, at the same time, is possible to have stable lean combustion with the reduction of $CO_2$ expected. Therefore, this research tries to identify the characteristics of engine and emission gas when mixing CNG fuel and hydrogen in each portion and burning them in spark igniting engine, and grasp the combustion stability and emission gas characteristics according and use it as the basic data of hydrogen-CNG premixed engine.

소방 실화재 훈련에서 사용하는 압축목재 가연물에서 발생하는 유해물질 특성 (Characteristics of Hazardous Substances Generated from Combustible Compressed Wood Used during Live Fire Training for Firefighters)

  • 이용호;김진희;김의진;최원준;이완형;강성규;이소연;함승헌
    • 한국환경보건학회지
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    • 제46권5호
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    • pp.555-564
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    • 2020
  • Objectives: To identify and investigate through qualitative and quantitative analysis the hazardous substances generated when compressed wood was burned at a live fire-training center. Methods: Four types of compressed wood that are actually used in live fire training were burned in a chamber according to KS F2271. The gaseous material was sampled with a gas detector tube and conventional personal samplers. Results: 1,3-butadiene, benzene, toluene, xylene, formaldehyde, hydrogen chloride, hydrogen cyanide, ammonia, carbon monoxide, and nitric acid were detected. In particular, 1,3-butadiene (497.04-680.44 ppm), benzene (97.79-125.02 ppm), formaldehyde (1.72-13.03 ppm), hydrogen chloride (4.71-15.66 ppm), hydrogen cyanide (3.64-8.57 ppm), and sulfuric acid (3.85-5.01 ppm) exceeded the Korean Occupational Exposure Limit as measured by sampling pump according to the type of compressed wood. Conclusions: We found through the chamber testing that firefighters could be exposed to toxic substances during live fire training. Therefore, firefighter protection is needed and more research is required in the field.

미래 항공기 추진기관의 전망 (The Outlook of Future Aeropropulsion System)

  • 이창호
    • 한국추진공학회지
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    • 제13권3호
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    • pp.58-63
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    • 2009
  • 세계적으로 강화되는 오염물질 배출규제와 유가의 급등은 미래 수송수단의 변화를 가져올 것으로 예상된다. 새로운 대체에너지가 나타나기 까지는 화석연료를 대체할 에너지원으로 수소가 가장 유력하다. 가까운 미래의 항공기는 수소 가스터빈엔진이나 연료전지와 같은 동력장치를 사용할 것으로 과학자들은 예측하고 있다. 향후 연료전지 동력 항공기가 실현되기 위해서는 동력밀도가 높은 연료전지, 고압의 기체 또는 액체상태의 수소연료저장 장치, 그리고 경량의 고효율 전기모터가 개발되어야 한다.

수소-CNG 혼소기관의 공기과잉률 변화에 따른 희박가연한계 및 배출가스 특성에 관한 연구 (An Experimental Study on Lean-burn Limit and Emission Characteristics of Air-fuel Ratio in a CNG Engine)

  • 김인구;손지환;김정화;김정수;이성욱;김선문
    • 한국수소및신에너지학회논문집
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    • 제28권2호
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    • pp.174-180
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    • 2017
  • Recently, the world faces the environmental problem such as air pollution due to harmful gas discharged from car and abnormal climate due to the green-house gases increased by the discharge of $CO_2$. Compressed Natural Gas (CNG), one of alternative for this problem, is less harmful, compared to the existing fossil fuel, as gaseous fuel, and less carbon in fuel ingredients and carbon dioxide generation rate relatively favorable more than the existing fuel. However, CNG fuel has the weakness of slow flame propagation speed and difficult fast burn. On the other hand, hydrogen does not include carbon in fuel ingredients, and does not discharge harmful gas such as CO and HC. Moreover, it has strength of quick burning velocity and ignition is possible with small ignition energy source and it's has wide Lean Flammability Limit. If using this hydrogen with CNG fuel, the characteristics of output and discharge gas is improved by the mixer's burning velocity improved, and, at the same time, is possible to have stable lean combustion with the reduction of $CO_2$ expected. Therefore, this research tries to identify the characteristics of engine and emission gas when mixing CNG fuel and hydrogen in each portion and burning them in spark igniting engine, and grasp the lean combustion limit and emission gas characteristics according and use it as the basic data of hydrogen-CNG premixed engine.

Coal Bed Methane을 사용한 다양한 응용 기술에 대한 고찰 (A Study on Various Application Technologies Using Coal Bed Methane)

  • 조원준;이제설;유혜진;이현찬;주우성;임옥택
    • 한국수소및신에너지학회논문집
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    • 제29권1호
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    • pp.130-137
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    • 2018
  • Now discusses the potential use and applications of coal bed methane (CBM) in various industries. One of the options for gas monetization is gas to power (GTP), sometimes called gas to wire (GTW). Electric power can be an intermediate product, such as in the case of mineral refining in which electricity is used to refine bauxite into aluminum; or it can be an end product that is distributed into a large utility power grid. For stranded gas, away from the regional markets, the integration of the ammonia and urea plants makes commercial sense. These new applications, if established, could lead to a surge in demand for methanol plants.

CNG/HCNG 복합충전소의 안전에 관한 동향분석 (A Trends Analysis on Safety for CNG/HCNG Complex Fueling Station)

  • 이승현;강승규;성종규;이영순
    • 한국가스학회지
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    • 제15권2호
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    • pp.1-8
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    • 2011
  • 본 연구에서는 강화되는 자동차 배기가스 규제를 만족시키기 위하여 압축천연가스자동차보다는 배기가스부분에서 유리하고, 아직 상용화되지 않은 수소연료전지자동차의 대안으로서 수소경제의 본격적인 도입을 위한 과도기적 대안연료로 주목받고 있는 수소와 천연가스를 혼합한 연료인 HCNG 충전소의 안전에 관한 동향 및 기술을 분석하였다. HCNG는 기존의 CNG 인프라의 활용, 점점 강화되는 배기가스 배출기준의 충족, 그리고 다가오는 수소시대를 대비하여 수소시대로 가기위한 기술적, 사회적 가교역할을 한다는 점에서 매우 중요한 기회이자 도전이다. 이를 위해 HCNG 상용화에 필수적으로 요구되는 수소-압축천연가스 혼합연료 사용에 대비한 각종 안전 고려사항 들에 대하여 검토하여 국내 사고 이력을 기초로 하여 사고발생시나리오, 안전거리 추가 필요성, 수소침식, 점화원, 화재감지 등의 안전 고려사항을 제시하였고, HCNG 충전소 기술 및 기준에 관한 최근동향을 분석하여 향후 HCNG 충전소 시범 운영을 위한 안전성평가 등 제도적 기반 구축을 제안하였다.

HCNG용 버너시스템에서 Tail Gas 첨가 시 연소특성 (Combustion Characteristics of HCNG Burner System with Tail Gas Addition)

  • 한정옥;이중성;김형태;김상민;이영철;김용철;홍성호
    • 한국연소학회지
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    • 제20권2호
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    • pp.36-39
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    • 2015
  • The combustion characteristics of metal fiber burner fueled natural gas with tail gas produced from reforming process were analyzed on the point of flame stability and excess air conditions. Also, it was analyzed the effect of energy efficiency improvement due to decrease the fuel input in reforming system by using residue gases. As a results, it was confirmed that tail gas including hydrogen, CO and $CO_2$ could be directly injected without any change of air control system in natural gas burner and also energy efficiency was increased up to 30% maintained stable combustion.

오프그리드용 풍력-연료전지 하이브리드 시스템 개발 (Development of WT-FC Hybrid System for Off-Grid)

  • 최종필;박내춘;김상훈;김병희;남윤수;유능수
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 춘계학술대회
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    • pp.383-386
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    • 2007
  • This paper describes the design and integration of the wind- fuel cell hybrid system. The hybrid system components included a wind turbine, an electrolyzer (for generation of H2), a PEMFC (Proton Exchange Membrane Fuel Cell), storage system and BOP (Balance of Plant) system. The energy input is entirely provided by a wind turbine. A DC-DC converter controls the power input to the electrolyzer, which produces hydrogen and oxygen form water. The hydrogen used the fuel for the PEMFC. The hydrogen is compressed and stored in high pressure tank by hydrogen gas booster system.

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