• Title/Summary/Keyword: 수소액화

Search Result 159, Processing Time 0.026 seconds

수소액화 및 극저온 저장기술

  • Baek, Jong-Hun;Kim, Seo-Yeong
    • Journal of the KSME
    • /
    • v.53 no.4
    • /
    • pp.38-43
    • /
    • 2013
  • 이 글에서는 수소 연료전지차, 우주개발용 로켓추진체의 연료공급기술로 활용이 예상되는 수소액화 기술 및 영하 253도의 극저온 액체수소의 저장기술에 대해 살펴보고 액화사이클 및 극저온 액화수소 저장용기로의 열침입을 차단하기 위한 다양한 단열기술에 대해 기술한다.

  • PDF

Design and Analysis for Hydrogen Liquefaction Process Using LNG Cold Energy (LNG냉열이용 수소액화 공정해석 및 설계)

  • Yun, Sang-Kook
    • Journal of the Korean Institute of Gas
    • /
    • v.15 no.3
    • /
    • pp.1-5
    • /
    • 2011
  • For the hydrogen liquefaction, the large amount of energy is consumed, because precooling, liquefaction and ortho/para conversion heats should be eliminated. In this paper the basic design and thermal analysis are carried out to reduce the energy consumption by using LNG cold energy for precooling process in hydrogen liquefaction processes. The LNG cold energy utilization for hydrogen precooling enables not only to get energy saving for liquefaction, but to recover the wasted cold energy to sea water at the LNG terminal. The results show that the energy saving rate for liquefaction using LNG cold energy is almost 75% of current industrial hydrogen liquefaction plant. The demand flow-rate of LNG is only 15T/D for 1T/D hydrogen liquefaction.

Design and Performance Test of a Direct Cooling Equipment for Hydrogen Liquefaction (수소액화용 직접냉각장치의 설계 및 성능시험)

  • Baik, Jong-Hoon;Kang, Byung-Ha;Chang, Ho-Myung
    • Transactions of the Korean hydrogen and new energy society
    • /
    • v.7 no.2
    • /
    • pp.121-128
    • /
    • 1996
  • A direct cooling equipment for hydrogen liquefaction has been developed and tested. A direct cooling equipment consists of a liquefaction vessel, a radiation shield, a cryostat and a GM refrigerator. The cool-down and warm-up characteristics of the liquefaction apparatus have been investigated in detail. It is found that the hydrogen starts to be liquefied in the liquefaction vessel after 45 minutes of cool-down. The cool-down and warm-up tests of helium gas are also performed. The cool-down and warm-up characteristics of helium gas are found to be very different from those of hydrogen gas, since helium is not liquefied under the present operating conditions. When the liquefaction vessel is evacuated, natural convection phenomena of charged gas in liquefaction vessel can be removed. It is seen that the cool-down time of liquefaction vessel is substantially increased in vacuum environment.

  • PDF

수소액화 플랜트 기술 개발 현황 및 방향

  • Park, Seong-Je;Choe, Byeong-Il;Do, Gyu-Hyeong;Lee, Jae-Hun
    • Journal of the KSME
    • /
    • v.57 no.2
    • /
    • pp.42-45
    • /
    • 2017
  • 이 글에서는 글로벌 수소산업 주도권 확보를 위해 핵심인프라 기술인 수소액화 플랜트 기술에 대해서 소개하고자 한다.

  • PDF

Establishing the Safety of the Hydrogen Industry Through the Revision of Domestic Liquefied Hydrogen Safety Standards (국내 액화수소 안전기준 제·개정을 통한 수소산업 안전성 확립)

  • Kim, Hyun-Jin;Song, Boe-Hee;Tak, Song-Su;Joe, Hoe-Yeon;Kang, Seung-Kyu
    • Journal of the Korean Institute of Gas
    • /
    • v.25 no.6
    • /
    • pp.98-105
    • /
    • 2021
  • Currently, the government's announcement of the Korean version of the New Deal Comprehensive Plan ('20.7.14), expanding the supply of hydrogen production and charging facilities, and major companies are rapidly building related facilities such as liquefied hydrogen plants and charging stations. However, safety standards for production, storage facilities, transportation, and utilization of liquefied hydrogen value chains in Korea are insufficient, and safety technologies and safety standards over the entire period of liquefied hydrogen are urgently needed. Accordingly, the Korea Gas Safety Corporation is trying to realize a safe hydrogen economy in Korea by enacting safety standards over the entire period, including liquefied hydrogen plants

Effects of ortho-para hydrogen conversion on hydrogen liquefaction performance (Ortho-para 수소변환이 수소액화성능에 미치는 영향)

  • 최항집;강병하;최영돈
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
    • /
    • v.12 no.2
    • /
    • pp.131-139
    • /
    • 2000
  • A direct hydrogen liquefaction equipment has been developed and tested, which consists of a GM refrigerator, a liquefaction vessel, a radiation shield, a cryostat, and an ortho-para converter with catalyst. The effect of ortho-para hydrogen conversion on the performance of hydrogen liquefaction has been investigated. The time needed for the hydrogen liquefaction process with hydrogen pressure charge of 4 atm was delayed to around 75 minutes, and the liquefied mass flow rate of the hydrogen was about 0.0150∼ 0.0205 g/s when the hydrogen was liquefied with the direct hydrogen liquefaction system considering ortho-para conversion. With ortho-para conversion, the liquefied mass flow rate decreased up to 20%. Considering ortho-para conversion, there were up to 30% increase in the work input per unit liquefied mass flow rate. When the ortho-para conversion was considered, FOM decreased to be about 0.031∼0.045.

  • PDF

Development of Standards for the Use of Liquefied Hydrogen for Ship Using Risk Assessment Techniques (위험성 평가기법을 활용한 선박용 액화수소 사용시설 기준개발)

  • Young-taeg, Hur;Hye-Soo, Han;Gyoung-min, Noh;Hee-soo, Chung;Chung-keun, Chae
    • Journal of the Korean Institute of Gas
    • /
    • v.26 no.6
    • /
    • pp.52-58
    • /
    • 2022
  • According to the government's roadmap for revitalizing the hydrogen economy, various industries carry out projects using liquefied hydrogen as an energy source. However, safety standards necessary for operational demonstration projects are not prepared in Korea, thus, it is necessary to prepare safety standards as soon as possible. Therefore, in order to secure the safety of liquefied hydrogen instrumentation and handling facilities, it is necessary to prepare safety standards that comprehensively consider the risk of liquefied hydrogen. This study aims to prioritize safety standard items using ETA, FMEA, and AHP, which are risk assessment techniques, to present the feasibility of selecting safety standard items.

Search and Rescue and Disaster Response Using 5G-Based Liquid Hydrogen Drone (5G 기반 액화 수소 드론(UAV)을 이용한 수색 구조 및 재난 대응)

  • Oh, Se-Jin;Min, Jae-Hong;Hong, Sung-An
    • Proceedings of the Korean Society of Disaster Information Conference
    • /
    • 2022.10a
    • /
    • pp.369-370
    • /
    • 2022
  • 4차 산업혁명이 도래함에 따라서 군사용으로 개발된 드론이 광범위하게 다양한 분야에 활용되어 가고 있다. 드론의 활용으로 이전에 사람이 접근하기 어려웠던 지역이나 현장을 원격탐사 및 데이터 취득이 가능하게 되면서, 도시문제 해결과 재난에 대응할 수 있다. 하지만 기존 드론의 동력원으로 사용하는 리튬폴리머(Li-Po)는 짧은 비행시간 때문에, 재난 현장의 드론 투입에 한계가 있다. 이러한 문제점을 보완하기 위하여 기존 드론 대비 4배 이상 향상된 비행시간을 통해 장기체공이 가능한 액화 수소 드론의 도입이 필요한 것으로 보인다. 늘어난 비행시간과 비가시 장거리 비행 능력을 통해 높은 효율을 낼 수 있는 액화 수소 드론의 활용으로 효과적인 재난 대응 활동에 대한 연구가 필요하다.

  • PDF

Technical Analysis and Future Development of Liquefied Hydrogen Carriers (액화수소 산적 운반선의 기술성 분석 및 향후 개발 과제)

  • Lee, Hyunyong;Kang, Hokeun;Roh, Gilltae;Jung, Inchul
    • Journal of the Korean Society of Marine Environment & Safety
    • /
    • v.28 no.2
    • /
    • pp.361-369
    • /
    • 2022
  • Countries worldwide are shifting to a hydrogen economy to respond to stringent environmental regulations, and the transport of hydrogen between countries is expected to increase in the mid- to long-term. Hydrogen is traded between countries in different forms, such as ammonia, liquid hydrogen, and LOHC (Liquid Organic Hydrogen Carrier), on account of the renewable energy resources in exporting countries, the type of hydrogen use in importing countries, and the technological maturity; however, it is not traded only in a singular form. As marine transportation of ammonia and LOHC is a relatively mature technology compared to that of liquid hydrogen, in this article, we analyzed the technical feasibility of liquid hydrogen carriers while identifying detailed technologies required for their future development and securing possible designs through various technical alternatives.

특집:에너지플랜트 및 핵심기자재 기술 - 가스액화플랜트기술

  • Hong, Yong-Ju;Go, Jun-Seok;Kim, Hyo-Bong;Park, Seong-Je
    • 기계와재료
    • /
    • v.24 no.1
    • /
    • pp.26-35
    • /
    • 2012
  • 가스액화플랜트는 질소, 산소, 헬륨 등 고순도의 가스를 효율적으로 저장 및 운송을 위해 가스를 액체로 변환하는 플랜트로, 대표적인 플랜트로는 질소, 산소, 아르곤 등의 가스를 생산하는 공기분리플랜트, 헬륨액화플랜트, 수소액화플랜트, 천연가스액화플랜트 등이 있다. 질소, 산소, 수소 등의 가스는 산업의 전반적인 분야에서 널리 사용되고 있으며, 국내의 경우 철강, 반도체, 디스플레이제조산업 등 가스 다소비 분야의 비약적인 발전에 따라 급격하게 수요가 증가하고 있는 상황이다. 대용량의 가스액화플랜트는 원료로부터 불순물을 제거하고, 팽창 또는 열교환 과정을 통해 가스를 액체로 변환하는 극저온기술로 주로 구성되며, 이와 같은 과정은 압축기, 열교환기, 증류탑, 팽창터빈, 콜드박스 등의 구성요소에 의해 구현된다. 따라서 가스액화플랜트에서 효율적인 극저온의 생성 및 유지는 플랜트의 경제성 제고를 위해 핵심적인 요소이다.

  • PDF