• 제목/요약/키워드: Cryogenic gas

검색결과 312건 처리시간 0.028초

Development and performance evaluation of a cryogenic blower for HTS magnets

  • Kwon, Yonghyun;Mun, Jeongmin;Lee, Jaehwan;Seo, Geonghang;Kim, Dongmin;Lee, Changhyeong;Sim, Kideok;Kim, Seokho
    • 한국초전도ㆍ저온공학회논문지
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    • 제22권4호
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    • pp.57-61
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    • 2020
  • Cooling by gas helium circulation can be used for various HTS (high temperature superconductor) magnets operating at 20~40 K, and a cryogenic blower is an essential device for circulating gas helium in the cooling system. The performance of the cryogenic blower is determined by various design parameters such as the impeller diameter, the blade number, the vane angle, the volute cross-sectional area, and the rotating speed. The trailing edge angle and the height of impeller vane are also key design factors in determining the blower performance. This study describes the design, fabrication and performance evaluation of cryogenic blower to produce a flow rate of 30 g/s at 5 bar, 35 K gas helium. The impeller shape is designed using a specific speed/specific diameter diagram and CFD analysis. After the fabrication of the cryogenic blower, a test equipment is also developed using a GM cryocooler. The measured flow rates and the pressure differences are compared with the design values at various rotating speeds and the results show a good agreement. Isentropic efficiency is also evaluated using the measured pressures and temperatures.

극저온 환경에 적용되는 INCONEL 718합금의 Gas Tungsten Arc Welding 기계적 특성 평가 (Mechanical Properties Evaluation of Gas Tungsten Arc Welding for INCONEL 718 alloy apply to Cryogenic Condition)

  • 김기홍;문인상;문일윤;이병호
    • 한국재료학회지
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    • 제19권12호
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    • pp.692-698
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    • 2009
  • Inconel 718 alloy has excellent mechanical properties at room temperature, high temperature and cryogenic conditions. UTS of base metal is about 900MPa at room temperature; this is increased up to 1300MPa after heat treatment & aging-hardening. Mechanical properties of Inconel 718 Alloy were similar to those shown in the the results for tensile test; mechanical properties of Inconel 718 alloy's GTAW were similar to those of base metal's properties at room temperature. Mechanical properties at cryogenic conditions were better than those at room temperature. Heat-treated Inconel 718, non- filler metal GTAW on Inconel 718 and GTAW used filler metal on Inconel 718's UTS was 1400MPa at cryogenic condition. As a result, the excellent mechanical properties of Inconel 718 alloy under cryogenic conditions was proved through tensile tests under cryogenic conditions. In addition, weldability of Inconel 718 alloy under cryogenic conditions was superior to that of its base-metal. In this case, UTS of hybrid joint (IS-G) at -100$^{\circ}C$ was 900MPa. Consequently, UTS of Inconel 718 alloy is estimated to increase from -100$^{\circ}C$ to a specific temperature below -100$^{\circ}C$. Therefore, Inconel 718 alloy is considered a pertinent material for the production of Lox Pipe under cryogenic conditions.

Numerical and experimental studies of cryogenic reciprocating expander without inner piston

  • Park, Sehyeon;Bae, Junhyuk;Kim, Kyoungjoong;Jeong, Sangkwon
    • 한국초전도ㆍ저온공학회논문지
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    • 제20권3호
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    • pp.21-27
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    • 2018
  • It is difficult to fabricate and maintain moving parts of expander at cryogenic temperature. This paper describes numerical analysis and experimental investigation on a cryogenic reciprocating expander without moving piston. An intake valve which takes high-pressure gas, and an exhaust valve which discharges low-pressure gas, are connected to a tube. The inside pressure of the tube is pulsated for work production. This geometric configuration is similar to that of pulse tube refrigerator but without regenerator. An orifice valve and a reservoir are installed to control the phase of the mass flow and the pressure. At the warm end, a heat exchanger rejects the heat which is converted from the produced work of the expanded gas. For the numerical analysis, mass conservation, energy conservation, and local mass function for valves are used as the governing equations. Before performing cryogenic experiments, we carried out the expander test at room temperature and compared the performance results with the numerical results. For cryogenic experiments, the gas is pre-cooled by liquid nitrogen, and then it enters the pulse tube expander. The experiments are controlled by the opening of the orifice valve. Numerical analysis also found the expander conditions that optimize the expander performance by changing the intake pressure and valve timing as well as the opening of the orifice valve. This paper discusses the experimental data and the numerical analysis results to understand the fundamental behavior of such a newly developed non-mechanical expander and elucidate its potential feature for cryogenic application.

저온 농축법에 의한 극미량 성분 가스분석 (Analysis of Trace Impurities in The Bulk Gases by a Cold Concentration Method)

  • 이택홍;홍소영;정우찬;김영락;서정우;한주탁;박두선;손무룡
    • 한국가스학회:학술대회논문집
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    • 한국가스학회 1997년도 추계학술발표회 논문집
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    • pp.260-265
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    • 1997
  • 가스분석에서의 극미량 성분분석은 반도체산업의 발달과 더불어 매우 중요하다. 이 실험에서는 가스분석에서 범용으로 사용되는 열전도도 검출기를 장착한 가스크로마토그라피와 액체질소트랩을 이용하여 헬륨과 수소중의 일산화탄소와 메탄성분을 분석하였다. 농축법으로 결정된 미지 시료의 농도를 다른 종류의 검출기와 비교분석하였다. 이 방법에 의해서 결정된 농도는 허용된 오차 범위에서 만족할 만한 결과를 보여 주었다.

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헬륨 가압시스템에 대한 온도특성 연구(II) (Study on Temperature Characteristic of Pressurization System Using Helium Gas)

  • 정용갑;조남경;길경섭;김영목
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2005년도 제24회 춘계학술대회논문집
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    • pp.168-175
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    • 2005
  • 액체로켓 추진시스템에서 가압시스템은 발사체 추진제 탱크의 얼리지 공간에 제어된 가스를 공급하는 것이다. 가압시스템에서 고온 가스 열교환기를 적용하는 데는 가압제의 비용적을 증가시켜 전체 발사체 시스템의 중량을 감소시키는 장점이 있다. 가압시스템 성능에 있어서 주목할 만한 개선점은 극저온 시스템에서 얻어질 수 있다. 이러한 경우 가스 공급은 극저온 탱크 내부에 저장되어 진다. 극저온 가압제의 온도 특성은 가압시스템에서 구성 단품을 개발하는데 있어서 매우 중요하다. 본 연구에서는 SINDA/FLUINT를 이용한 수치적 모델링과 PTF(Propellant-feeding Test Facility)에서 수행된 실험에 대하여 해석 및 시험이 수행되었다.

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극저온 LNG 배관냉각 특성에 대한 연구 (A Study on Cryogenic Line Chill Down Characteristics of LNG)

  • 변병창;김경중;정상권;김모세;이상윤;이근태;김동민
    • 한국수소및신에너지학회논문집
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    • 제33권6호
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    • pp.808-818
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    • 2022
  • In this research paper, we investigated the cryogenic line chill down characteristics of liquefied natural gas (LNG). A numerical analysis model was established and verified so that it can calculate the precise cooling characteristics of cryogenic fluid for the stable and safe utilization especially such as LNG and liquid hydrogen. The numerical modeling was programmed by C++ as an one-dimensional homogeneous model. The thermohydraulic cooling process was simulated using mass, momentum, energy conservation equations and appropriate heat transfer correlations. In this process, the relevant heat transfer correlations for nuclear boiling, transition boiling, film boiling, and single-phase heat transfer that can predict the experimental results were implemented. To verify the numerical modeling, several cryogenic line chill down experiments using LNG were conducted at the Korea Institute of Machinery & Materials (KIMM) LNG and Cryogenic Technology Center.