• Title/Summary/Keyword: 수소 생산 플랜트

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Pilot plant plan for the waste plasma gasification - hydrogen recovery (폐기물의 플라즈마 가스화 - 고순도 수소회수 파일럿 플랜트 계획)

  • Kim, Young-Suk;Lee, Jin-Ho;Cha, Jae-Joon;Hwang, Soon-Mo;Jeong, Seong-Jae
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.06a
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    • pp.802-805
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    • 2009
  • 생활폐기물을 플라즈마 가스화하고 얻어지는 합성가스로부터 수소를 생산하는 파일럿플랜트 건설 계획을 소개한다. 이 파일럿플랜트는 현재 가동 중인 청송군의 10톤/일급 플라즈마 가스화 시설을 고농도 합성가스를 생산하는 시설로 변경하고 수소전환반응기와 수소 PSA 장치를 부착하여 99.999% 순도의 수소 $200Nm^3/h$을 생산하여 연료전지 발전하는 것으로 계획되어 있다. 이 파일럿플랜트는 $20Nm^3/h$ 급의 폐기물 플라즈마 가스화 - 고순도 수소 생산 기술개발 완료에 이은 상용화 실증 시설이다.

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특집:에너지플랜트 및 핵심기자재 기술 - 가스액화플랜트기술

  • Hong, Yong-Ju;Go, Jun-Seok;Kim, Hyo-Bong;Park, Seong-Je
    • 기계와재료
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    • v.24 no.1
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    • pp.26-35
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    • 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.

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Predicting Initial Construction Costs of Electrolysis Hydrogen Production Plants for Building Sustainable Energy Systems (지속 가능한 에너지 시스템 구축을 위한 전기분해 수소 생산 플랜트 초기 건설비용 예측)

  • SUNGWOOK KANG;JOONHEON KIM;JONGHWA PARK;DAEMYEONG CHO
    • Transactions of the Korean hydrogen and new energy society
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    • v.35 no.3
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    • pp.257-268
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    • 2024
  • Hydrogen serves as a clean energy source with potential applications across various sectors including electricity, transportation, and industry. In terms of policy and economic support, governmental policy backing and economic incentives are poised to accelerate the commercialization and expansion of hydrogen energy technologies. Hydrogen energy is set to become a cornerstone for a sustainable future energy system. Additionally, when constructing hydrogen production plants, economic aspects must be considered. The essence of hydrogen production plants lies in the electrolysis of water, a process that separates water into hydrogen and oxygen using electrical energy. The initial capital expenditure (CAPEX) for hydrogen production plants can vary depending on the electrolysis technology employed. This study aims to provide a comprehensive understanding of hydrogen production technologies as well as to propose a method for predicting the CAPEX of hydrogen production plants.

A Review of Domestic Research Trends of Fischer-Tropsch for the Production of Light Hydrocarbons and Middle Distillates From Syngas (합성가스로부터 경질탄화수소 및 중산유분을 생산하기 위한 Fischer-Tropsch의 국내연구동향)

  • Kim, Jin-Ho;Kim, Hyo-Sik;Kim, Ji-Hyeon;Ryu, Jae-Hong;Kang, Suk-Hwan;Park, Myung-June
    • Korean Chemical Engineering Research
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    • v.57 no.4
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    • pp.565-574
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    • 2019
  • Fischer-Tropsch synthesis process is a typical method for synthesizing hydrocarbons from syngas and is mainly known as iron (Fe) and cobalt (Co) catalysts. Currently, some technologies such as CTL (Coal to Liquid) and GTL (Gas to Liquid) are operated on a commercial scale depending on the products, but the research to produce light hydrocarbons and middle distillates directly has not been commercialized. Therefore, in this study, domestic studies for direct production of light hydrocarbons and middle distillates are summarized and the effect of catalyst preparation, promoter addition, zeolite combination on product selectivity is investigated.

Process Modeling and Economic Analysis of Hydrogen Production System on 500 kg-H2/d-class Green Hydrogen Station using Biogas (바이오가스 이용 500 kg-H2/d급 그린수소충전소의 수소추출시스템 공정모델링 및 경제성 분석)

  • Hong, Gi Hoon;Song, Hyoungwoon
    • Journal of the Korean Institute of Gas
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    • v.25 no.4
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    • pp.19-26
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    • 2021
  • In this paper, we carried out the process modelling and economical analysis of the 500 kg-H2/d-class green hydrogen production system process based on biomethane from the Food Bio Energy Center in Chungju. As a result of economic analysis, the NPV(Net present value) after 15 years of operation is 3.831 billion won, the PI(Profitability index method) is 1.42. It was found that the project of 500 kg-H2/d-class green hydrogen production system has a 20.25% of IRR, which is higher than social discount rate of 4.5% and feasibility is ensured.

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
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    • v.25 no.6
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    • pp.98-105
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    • 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