• Title/Summary/Keyword: 액화기

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운반차 전용 활어생명력 유지시스템 개발

  • Sin, Il-Sik;Hong, Yeon-Jeong;Lee, Sang-Gon
    • Proceedings of the Korean Institute of Navigation and Port Research Conference
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    • 2013.10a
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    • pp.154-155
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    • 2013
  • 본 논문에서는 소형이고 활어차용 고순도 산소공급장치를 개발하는 것으로 별도의 충전된 산소통을 구비하지 않고 공기에서 산소를 생산하여 활어차의 활어 저장 수조에 고순도 산소를 공급함으로써 신선한 활어의 상태를 유지하는 시스템이다. 현재는 활어차에 액화산소, 기체산소통을 구비하여 활어 저장 수조에 산소를 공급하는 방식으로 물류비용 및 선도유지와 위생처리 문제 등이 어렵다. 따라서, 본 시스템에서는 활어가 최적의 신선도를 유지할 수 있도록 영구적 산소를 생산하기 위한 운반차 전용 산소발생모듈을 개발하여 활어차 차주의 채산성 개선을 위해 액화대비 저렴한 산소 생산이 가능하도록 하였다.

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Direct liquefaction characteristics of Alaskan subbituminous coal using oil soluble transition metals as catalyst precursors (II) (유용성 전이금속 촉매전구체에 의한 Alaska산 아역청탄의 직접액화반응특성 (II))

  • 윤왕래;이득기;이인철;정구민;이봉희
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1995.05a
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    • pp.141-145
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    • 1995
  • 석탄액화반응의 촉진을 위하여 기존에 사용되어 온 담지촉매는 coking, metal deposition, pore plugging의 문제로 인하여 촉매의 활성을 지속적으로 유지할 수 없으며 고가이기때문에 최근에는 이러한 문제점을 보완할 수 있는 고분산 균일촉매에 관한 연구가 집중적으로 수행되고 있다. 그러나 분산촉매 중에서도 고활성을 나타내는 Mo, Ni, Co 성분은 고가이므로 이를 대체할 수 있는 촉매로서 값이 싼 Fe 성분에 관심이 모아지고 있지만 현재로서는 자체활성이 상대적으로 낮으므로 퍼센트단위의 많은 양을 사용해야하는 문제점을 안고 있다고 할 수 있다.

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Investigation on Efficiency Improvement of the Nitrogen Expander Cycle : Natural Gas Liquefaction Process for LNG-FPSO (LNG-FPSO(Liquefied Natural Gas-Floating Production Storage and Offloading)용 질소 팽창 사이클의 효율 개선에 대한 연구)

  • Baek, Seung-Whan;Jeong, Sang-Kwon;Kim, Sun-Young
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.22 no.7
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    • pp.442-447
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    • 2010
  • FPSO (Floating Production Strorage and Offloading) method for LNG industry is efficient and facile compared to onshore NG (Natural Gas) treatment facility. Five simple natural gas liquefaction cycles for FPSO are presented and simulated in this paper. SMR (Single Mixed Refrigerant) cycle, SNE (Single Nitrogen Expander) cycle, DNE (Double Nitrogen Expander) cycle, PNE (Precooled Nitrogen Expander) cycle, and PDNE (Precooled Double Nitrogen Expander) cycle are compared. Simple analysis results in this paper show that precooling process and adding an expander in the liquefaction cycle is an effective way to increase liquefaction efficiency.

A Study on the Cold Energy for Liquefied Nitrogen Gas and Cascade Refrigeration System (액화질소 초저온과 이원냉동 초저온 냉열의 비교 실험적 연구)

  • Kim, C.S.;Jang, H.S.;Jeong, H.M;Chung, H.S.
    • Journal of Power System Engineering
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    • v.11 no.1
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    • pp.56-62
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    • 2007
  • This paper represents the cold energy for liquefied nitrogen gas and cascade refrigerator. In this study, the vaporizer of liquefied nitrogen gas has the fin coil tube type with the dimension of inside diameter of 10mm and outside diameter of 12mm. Also, the total length of vaporizer is 20,000mm. The main experimental parameters are the mean velocity in duct and the supplied flow-rates of liquefied nitrogen gas. For the cascade refrigeration system, the refrigerants are ethane(R 170) in the high pressure stage and R 22 in the low pressure stage.

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A Study on the Price Evaluation Per 1 Ton of Liquefied Natural Gas According to the Refrigerants Supply Temperature in the Electric Refrigerator (전기식 냉동기에서 냉매의 공급온도에 따른 액화천연가스의 톤당 냉열 가격 산출에 대한 연구)

  • KIM, YONUNGWOO;PARK, ILSOO;CHO, JUNGHO
    • Transactions of the Korean hydrogen and new energy society
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    • v.30 no.5
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    • pp.473-477
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    • 2019
  • In this paper, cold heat price contained in the 1 ton/h of LNG has been evaluated using PRO/II with PROVISION release 10.2 from Aveva company when LNG is used to liquefy several refrigerants instead of using vapor recompression refrigeration cycle. Normal butane, R134a, NH3, R22, propane and propylene refrigerants were selected for the modeling of refrigeration cycle. It was concluded that LNG cold heat price was inversely proportional to the refrigerant supply temperature, even though LNG supply flow rate is not varied according to the refrigerant supply temperature.

Study on the Heat Transfer Numerical Analysis of Supper Low Temperature Liquefied Gas Vaporizer (초저온 액화가스용 기화기의 열전달 수치해석)

  • Lee, Yong-Hun;Ji, Myoung-Kuk;Park, Gi-Tae;Kim, Pil-Hwan;Jeong, Hyo-Min;Chung, Han-Shik
    • Proceedings of the KSME Conference
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    • 2007.05b
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    • pp.2211-2216
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    • 2007
  • Liquefied gas vaporizer means machine to vaporize the liquefied gas as liquid nitrogen($LN_2$), liquefied natural gas(LNG), liquid oxygen($LO_2$) etc. In the air type vaporizer, the frozen dew is also created by temperature drop (below 273 K) on vaporizer surface. This problem increases as the time progresses and humidity increases. In addition, the frozen dew gradually becomes frost deposit consequently, heat transfer through vaporizer decreases because frost deposit form adiabatic sheet. Because of this reason, recent vaporizer system is installed as parallel type, this vaporizer system needs more expensive installation costs and more space. This paper was investigated on the heat transfer characteristics of liquefied gas vaporizer with super low temperature and this paper was carried out the numerical about air heating vaporizer with super low temperature. The numerical analysis on the heat transfer was studied on the effect of geometric parameters of the vaporizer, which are length 1000 mm of 4fin75le type vaporizer. 4fin75le means number of fin is 4 and height of fin is 75 mm.

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Thermal Analysis of Double-tube Triple-flow LNG Vaporization System (이중관 삼중흐름 열교환에 의한 LNG 기화시스템의 열적 해석)

  • 윤상국
    • Journal of Advanced Marine Engineering and Technology
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    • v.27 no.7
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    • pp.839-844
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    • 2003
  • As sea water is being used as only heat source of LNG open rack vaporizer, serious problem has been risen in LNG terminal by the lack of heating energy source for LNG vaporization due to the temperature drop of sea water in winter. In this paper the new double-tube triple-flow(TRIDEX) vaporizer was suggested to solve the problem and the system was thermally analysed. LPG(liquefied petroleum gas) and sea water were introduced as the heat sources for LNG TRIDEX vaporizer. The flow patterns of TRIDEX vaporizer are as follows: LNG flow in the annular space, PG(petroleum gas) flow in the inner tube, and sea water flow in the outside of the double pipe. The overall LNG vaporization system was consisted of TRIDEX vaporizer, LPG vaporizer and PG heater. LPG in TRIDEX was directly dispersed in the sea water desalination unit, so that LPG turns to be gas phase for the reuse in TRIDEX vaporizer. New TRIDEX vaporizer system for LNG evaporation was analysed as much more effective than the present single tube one in the case of colder temperature of sea water in winter.

Structure Analysis on Thermal Deformation of Super Low Temperature Liquefied Gas One-module Vaporizer (초저온 액화가스 단일 모듈 기화기의 열변형 구조해석)

  • Park, G.T.;Lee, Y.H.;Shim, K.J.;Jeong, H.M.;Chung, H.S.
    • Journal of Power System Engineering
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    • v.11 no.3
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    • pp.22-28
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    • 2007
  • Liquefied gas vaporizer is a machine to vaporize liquefied gas such as liquid nitrogen($LN_{2}$), liquefied natural gas(LNG), liquid oxygen($LO_{2}$) etc. For the air type vaporizer, the frozen dew is created by temperature drop (below 273 K) on vaporizer surface. The layer of ice make a contractions on vaporizer. The structure analysis on the heat transfer was studied to see the effect of geometric parameters of the vaporizer, which are length 1000 mm of various type vaporizer. Structure analysis result such as temperature variation, thermal stress and thermal strain have high efficiency of heat emission as increase of thermal conductivity. As the result, Frist, With-fin model shows high temperature distribution better than without-fin on the temperature analysis. Second, Without-fin model shows double contractions better then with-fin model under the super low temperature load on the thermal strain analysis. Third, Vaporizer fin can be apply not only heat exchange but also a stiffener of structure. Finally, we confirm that All model vaporizer can be stand for sudden load change because of compressive yield stress shows within 280 MPa on thermal stress analysis.

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Trend and Subject in Welding Technique of LNG Aboceground Storage Tank (지상식 LNG 탱크의 용접기술 현황과 향후 동향)

  • Kouzuki, Haruya;Ogawa, Tsuneshi
    • Journal of Welding and Joining
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    • v.13 no.3
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    • pp.18-33
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    • 1995
  • 천연가스는 지구상에서 비교적 광범위하게 생산되며 구미 등에서는 대부분 pipe line으로 소비지까지 운송하여 사용하고 있지만 일본 등에서는 액화 천연가스 (LNG)로 저장, 수송하여 사용하고 있다. LNG 저장탱크는 생산측의 액화기지와 사용측 의 수입기지에 설치되며 지금까지 약 240기가 건설되어 있다. 종래 탱크 1기의 용량 은 대부분 6 - 8만m$^{3}$ 규모였지만, 토지의 유효이용 등으로 대형화되고 있으며, 또 지상식에서는 PC(Prestressed Concrete)의 방파제를 외부탱크에 근접시켜 외부탱크 와 일체화시킨 PC LNG 탱크가 개발.설계되었다. 일본에서는 이미 이 방식으로 세계 최대규모인 14만m$^{3}$ 탱크가 건조되어 가동 중이다. LNG의 주성분은 메탄이고 비등점은 -161.5.deg.C로 극저온이다. 이러한 저온에서도 취화되지 않고 사용할 수 있는 재료는 9%Ni강, Al 합금, 스테인레스강 및 Invar 등이 있지만, 탱크의 대형화에 따라 가공성, 용접성 및 경제성을 고려하여 요즈음은 9%Ni강이 주로 사용되고 있다. 한편 9%Ni강용 용접재료는 고Ni계 합금 및 모재와 동일한 성분계의 공금계가 있지만 지금까지 고 Ni계 합급이 주로 사용되고 있다. 본 내용에서는 9%Ni강을 사용한 지상식 평지원통형 LNG 탱크를 예로 들어 탱크의 개요 및 용접재료, 용접시공 등을 포함한 용접기술에 대해서 개괄적으로 설명하고자 한다.

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Evaluation of structural integrity of the HP vaporizer and pipes of LNG fuel gas supply system (LNG 연료 선박용 FGSS의 고압 기화기와 출입구 배관에 대한 구조 건전성 평가)

  • Kim, Chang-Soo;Yoon, Joo-Hwan;Lee, Chang-Joon;Ha, Man-Young;Cho, Jong-Rae
    • Journal of Advanced Marine Engineering and Technology
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    • v.40 no.9
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    • pp.780-785
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    • 2016
  • Heavy oil used as ship propulsion has a serious issue regarding exhaust emission of global warming. Recently, among large-scale merchant ships are using LNG as green ships so called ech-ships. In this study, an vaporizer and pipes under cryogenic and high pressure load were considered to evaluate structural integrity according to codes. Structural analysis of the vaporizer and pipes was performed using the commercial code, ANSYS. Integrity evaluation of the vaporizer based on von Mises stress was performed in accordance with allowable stress specified in ASME Boiler & Pressure Vesssel Section VIII Division 2. To assess structural integrity of the pipes, stress components were combined and compared with ASME B31.3. The calculated stresses for all load cases are lower than allowable stresses, therefore the structural integrity of equipments are verified.