• 제목/요약/키워드: 마그네슘 수소화물

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열전달 특성이 향상된 마그네슘 수소화물을 이용한 수소저장시스템의 전산모사 (Numerical Simulation of Hydrogen Storage System using Magnesium Hydride Enhanced in its Heat Transfer)

  • 김상곤;심재혁;임연호
    • 한국수소및신에너지학회논문집
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    • 제26권5호
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    • pp.469-476
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    • 2015
  • The purpose of this work is to investigate main factors to design a solid-state hydrogen stroage system with magnesium hydride with 10 wt% graphite using numerical simulation tools. The heat transfer characteristic of this material was measured in order to perform the highly reliable simulation for this system. Based on the measured effective thermal conductivity, a transient heat and mass transfer simulation revealed that the total performance of hydrogen storage system is prone to depend on heat and mass transfer behaviors of hydrogen storage medium instead of its inherent kinetic rate for hydrogen adsorption. Furthermore, we demonstrate that the thermodynamic aspect between equlibrium presssure and temperature is one of key factor to design the hydrogen storage system with high performance using magnesium hydride.

MgHx-Sc2O3 복합재료의 수소화 특성 (Hydrogenation Properties on MgHx-Sc2O3 Composites by Mechanical Alloying)

  • 김경일;김용성;홍태환
    • 한국수소및신에너지학회논문집
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    • 제21권2호
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    • pp.81-88
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    • 2010
  • Hydrogen energy applications have recognized clean materials and high energy carrier. Accordingly, Hydrogen energy applies for fuel cell by Mg and Mg-based materials. Mg and Mg-based materials are lightweight and low cost materials with high hydrogen storage capacity. However, commercial applications of the Mg hydride are currently hinder by its high absorption/desorption temperature, and very slow reaction kinetics. Therefore one of the most methods to improve kinetics focused on addition transition metal oxide. Addition to transition metal oxide in $MgH_x$ powder produce $MgH_x$-metal oxide composition by mechanical alloy and it analyze XRD, EDS, TG/DSC, SEM, and PCT. This report considers kinetics by transition metal oxide rate and Hydrogen pressure. In this research, we can see behavior of hydriding/dehydriding profiles by addition catalyst (transition metal oxide). Results of PCI make a excellent showing $MgH_x$-5wt.% Sc2O3 at 623K, $MgH_x$-10wt.% $Sc_2O_3$ at 573K.

수소에너지 개발 현황 및 전망

  • 김종필
    • 기계저널
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    • 제31권9호
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    • pp.780-788
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    • 1991
  • 수소를 에너지매체로 하여 체계적으로 이용하기 위하여 다음과 같은 사항이 예상된다. 첫째, 물에서 수소를 만들이 위하여 어떠한 에너지원을 사용해야 하는 문제이다. 화석연료나 원 자력으로는 깨끗한 에너지시스템이라는 본래의 목적에 어긋난다. 그래서 태양에너지를 이용하는 것이 원칙이라고 생각한다. 둘째, 수소의 수송과 저축의 방법인데, 파이프라인이나 고압봄베와 같은 종래의 방법을 극복하는 혁신적인 금속수소화물법이 중요하다고 생각된다. 철 . 티탄합금, 란탄 . 니켈합금, 마그네슘 . 니켈합금 등은 합금 체적의 100배에 가까운 수소를 흡장할 수 있는 특성을 가지고 있다. 셋째, 수소에너지가 석유에 대체되기 위해서는 에너지를 수소로 변경함으로써 석유로는 불가능 했던 것이 가능해질 수 있는 이용법을 개발하는 일이다. 넷째, 수소를 2차 에너지로 사용함으로써 전력계층과의 협조체제가 확립되어 에너지원, 에너지 매체, 에너지이용의 협조적이며 유기적인 시스템이 가능해질 것으로 생각된다. 전력이 남아돌 때는 물분해로 수소를 만들어 저축하고 전력이 부족할 때는 연료전지를 사용하여 전력으로 바 꾼다.

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Mg2NiHx-CaO 수소 저장 복합물질의 물질 전과정 평가 (Material Life Cycle Assessments on Mg2NiHx-CaO Composites)

  • 황준현;신효원;홍태환
    • 한국수소및신에너지학회논문집
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    • 제33권1호
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    • pp.8-18
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    • 2022
  • With rapid industrialization and population growth, fossil fuel use has increased, which has a significant impact on the environment. Hydrogen does not cause contamination in the energy production process, so it seems to be a solution, but it is essential to find an appropriate storage method due to its low efficiency. In this study, Mg-based alloys capable of ensuring safety and high volume and hydrogen storage density per weight was studied, and Mg2NiHx synthesized with Ni capable of improving hydrogenation kinetics. In addition, in order to improve thermal stability, a hydrogen storage composite material synthesized with CaO was synthesized to analyze the change in hydrogenation reaction. In order to analyze the changes in the metallurgical properties of the materials through the process, XRD, SEM, BET, etc. were conducted, and hydrogenation behavior was confirmed by TGA and hydrogenation kinetics analysis. In addition, in order to evaluate the impact of the process on the environment, the environmental impact was evaluated through "Material Life Cycle Assessments" based on CML 2001 and EI99' methodologies, and compared and analyzed with previous studies. As a result, the synthesis of CaO caused additional power consumption, which had a significant impact on global warming, and further research is required to improve this.

수소화 연소합성법을 이용한 Mg-xNi 금속수소화물의 수소저장특성에 관한 연구 (Hydriding Behavior of an Mg-xNi Alloys Prepared in Hydriding Combustion Synthesis)

  • 김지호;최덕균;황광택;한정섭;김진호
    • 한국수소및신에너지학회논문집
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    • 제21권2호
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    • pp.123-128
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    • 2010
  • Hydriding combustion synthesis (HCS) can produce full hydrides of alloys and in a short time. The conventional process based on ingot metallurgy cannot produce Mg-based alloy easily with the desired composition and the cast product needs a ling activation process for the practical use of hydrogen storage. In this study, the hydriding properties of Mg-xNi (x=5, 13.5, 54.7wt.%) alloys prepared by hydriding combustion synthesis were evaluated. The hydrogen storage capacity and kinetics of HCS Mg-xNi alloys were strongly dependent on the content of Ni. The HCS Mg-13.5wt.%Ni alloy shows the hydriding behavior to reach the maximum capacity within 30 min. and the reversible $H_2$ storage of 5.3wt.% at 623 K.

수소 분위기에서 밀링에 의해 제조한 마그네슘-니켈 합금의 수소화물 형성 및 분해 속도 (Hydriding and Dehydriding Rates of Magnesium-Nickel Alloy Fabricated by Milling under Hydrogen)

  • 송명엽;백성환;박혜령
    • 한국수소및신에너지학회논문집
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    • 제22권6호
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    • pp.787-793
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    • 2011
  • A 76.5wt%Mg - 23.5wt%Ni (Mg-23.5Ni) sample was prepared by reactive mechanical grinding (RMG) and its hydriding and dehydriding properties were then investigated. Activation of the Mg-23.5Ni sample was completed only after two hydriding (under 12 bar $H_2$) - dehydriding (under 1.0 bar $H_2$) cycles at 593K. The reactive mechanical grinding of Mg with Ni is considered to facilitate nucleation and shorten diffusion distances of hydrogen atoms. After hydriding - dehydriding cycling, the Mg-23.5Ni sample contained Mg2Ni phase.

Mg2NiHx-5wt% CaO 복합재료의 수소화 속도 (Hydriding Kinetics on Mg2NiHx-5wt% CaO Composites)

  • 신효원;황준현;김은아;홍태환
    • 한국수소및신에너지학회논문집
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    • 제32권3호
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    • pp.156-162
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    • 2021
  • Mg hydride has a relatively high hydrogen storage amount of 7.6wt%, and inexpensive due to abundant resources, but has high reaction temperature and long reaction time because of treble oxidation reactivity and upper activation energy. Their range of applications could be further extended if their hydrogenation kinetics and degradation behavior could be improved. Therefore, the effect of CaO has improved the hydrogenation kinetics and slowed down the degradation. This study focused on investigating whether to improve the hydrogenation kinetics by synthesizing Mg2NiHx-5wt% CaO composites. The Mg2NiHx-5wt% CaO composites have been synthesized by hydrogen induced mechanical alloying. The synthesized composites were characterized by performing X-ray diffraction, Scanning Electron Microscopy, Brunauer-Emmett-Teller, Thermogravimetric, and Sivert's type automatic pressure-composition-temperature analysis. Hydriding kinetics were performed using an automatic PCT measurement system and evaluated over the temperature range of 423 K, 523 K, and 623 K. As a result of calculating the hydrogen adsorption amount through the hydrogenation kinetics curve, it was calculated as about 0.42wt%, 0.91wt%, and 1.15wt%, the highest at 623 K and the lowest at 423 K.

기계적 합금화법으로 제조한 MgHx-Graphene 복합재료의 수소화 거동 특성 (Evaluation of Hydrogenation Behavior of MgHx-Graphene Composites by Mechanical Alloying)

  • 이수선;이나리;김경일;홍태환
    • 한국수소및신에너지학회논문집
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    • 제22권6호
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    • pp.780-786
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    • 2011
  • Mg hydride had high hydrogen capacity (7.6%), lightweight and low cost materials and it was promising hydrogen storage material at high temperature. However, commercial applications of the Mg hydride are currently hindered by its high absorption/desorption temperature, and very slow reaction kinetics. one of the approaches to improve the kinetic is $MgH_x$ intermixed with carbon. And it shows that carbon and carbon allotropes have a beneficial effect on hydrogen sorption in Mg. The graphene is a kind of carbon allotropes which is easily desorbed reaction at low temperatures because its reaction is exothermic. In this work, the effect of graphene concentration on the kinetics of Mg hydrogen absorption reaction was investigated. The $MgH_x$-Graphene composites has been prepared by hydrogen induced mechanical alloy (HIMA). The synthesized powder was characterized by XRD and simultaneous TG, DSC analysis. The hydrogenation behaviors were evaluated by using a sievert's type automatic PCT apparatus. In this research, results of kinetic profiles exhibit hydrogen absorption rate of $MgH_x$-5wt.% and 10wt.% graphene composite, as 1.25wt.%/ms, 10.33wt.%/ms against 0.88wt.%/ms for $MgH_x$ alone at 473K.

수소저장용 Mg-CaO-10 wt.% MWCNT 복합체의 물질 전과정 평가 (Material Life Cycle Assessment of Mg-CaO-10 wt.% MWCNT Hydrogen Storage Composites)

  • 한정흠;이영환;유제선;홍태환
    • 한국수소및신에너지학회논문집
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    • 제30권3호
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    • pp.220-226
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    • 2019
  • Magnesium hydride has a high hydrogen storage capacity (7.6 wt.%), and is cheap and lightweight, thus advantageous as a hydrogen storage alloy. However, Mg-based hydrides undergo hydrogenation/dehydrogenation at high temperature and pressure due to their thermodynamic stability and high oxidation reactivity. MWCNTs exhibit prominent catalytic effect on the hydrogen storage properties of $MgH_2$, weakening the interaction between Mg and H atoms and reducing the activation energy for nucleation of the metal phase by co-milling Mg with carbon nanotubes. Therefore, it is suggested that combining transition metals with carbon nanotubes as mixed dopants has a significant catalytic effect on the hydrogen storage properties of $MgH_2$. In this study, Material life cycle evaluation was performed to analyze the environmental impact characteristics of Mg-CaO-10 wt.% MWCNTs composites manufacturing process. The software of material life cycle assessment (MLCA) was Gabi 6. Through this, environmental impact assessment was performed for each process.

Mg2NiHx-CaF2 수소 저장 복합체의 물질 전과정 평가 (Material Life Cycle Assessment on Mg2NiHx-CaF2 Composites)

  • 황준현;신효원;홍태환
    • 한국수소및신에너지학회논문집
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    • 제33권2호
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    • pp.148-157
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    • 2022
  • Research on hydrogen storage is active to properly deal with hydrogen, which is considered a next-generation energy medium. In particular, research on metal hydride with excellent safety and energy efficiency has attracted attention, and among them, magnesium-based hydrogen storage alloys have been studied for a long time due to their high storage density, low cost, and abundance. However, Mg-based alloys require high temperature conditions due to strong binding enthalpy, and have many difficulties due to slow hydrogenation kinetics and reduction in hydrogen storage capacity due to oxidation, and various strategies have been proposed for this. This research manufactured Mg2Ni to improve hydrogenation kinetics and synthesize about 5, 10, 20 wt% of CaF2 as a catalyst for controlling oxidation. Mg2NiHx-CaF2 produced by hydrogen induced mechanical alloying analyzed hydrogenation kinetics through an automatic PCT measurement system under conditions of 423 K, 523 K, and 623 K. In addition, material life cycle assessment was conducted through Gabi software and CML 2001 and Eco-Indicator 99' methodology, and the environmental impact characteristics of the manufacturing process of the composites were analyzed. In conclusion, it was found that the effects of resource depletion (ARD) and fossil fuels had a higher burden than other impact categories.