• 제목/요약/키워드: Hydriding

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Hydriding Chemical Vapor Deposition 방법으로 제조된 MgH2의 수소저장 특성 (Hydrogen Storage Property of MgH2 Synthesized by Hydriding Chemical Vapor Deposition)

  • 박경덕;한정섭;김진호;김병관
    • 한국수소및신에너지학회논문집
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    • 제22권3호
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    • pp.380-385
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    • 2011
  • $MgH_2$ was synthesized by hydriding chemical vapor deposition (HCVD). In this study, we examined the hydrogen storage property of $MgH_2$ synthesized by HCVD. The results of pressure-composition-temperature (PCT) measurement showed that the HCVDed $MgH_2$ reversibly absorbed hydrogen as much as 6 wt%. Each hydrogenation rate was very greater than the conventional alloy methods. The reason was that the particle size made by HCVD was small as approximately 1 ${\mu}m$. The PCT of $MgH_2$ made by HCVD methode was similar to a commercial $MgH_2$. The ${\Delta}H$ and ${\Delta}S$ value are respectively -76.8 $kJ/mol{\cdot}H_2$ and -137.4 $kJ/mol{\cdot}H_2$. Mg made by HCVD methode was activated easily than commercial Mg. Also the initial reaction rate was faster than that of commercial $MgH_2$. 70% of the total storage were stored during 400s.

수소 분위기에서 고 에너지 볼 밀링으로 제조한 80Mg+14Ni+6TaF5합금의 수소와의 반응 속도와 수소 저장 용량 (Reaction Rate with Hydrogen and Hydrogen-storage Capacity of an 80Mg+14Ni+6TaF5 Alloy Prepared by High-energy Ball Milling in Hydrogen)

  • 박혜령;송명엽
    • 한국수소및신에너지학회논문집
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    • 제28권2호
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    • pp.137-143
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    • 2017
  • In the present study, Ni and $TaF_5$ were chosen as additives to enhance the hydriding and dehydriding rates of Mg. A sample with a composition of 80 wt% Mg + 14 wt% Ni + 6 wt% $TaF_5$ (named $80Mg+14Ni+6TaF_5$) was prepared by high-energy ball milling in hydrogen. Its hydriding and dehydriding properties were then examined. At the fourth cycle, the activated sample absorbed 3.88 wt% H for 2.5 min, 4.74 wt% H for 5 min, and 5.75 wt% H for 60 min at 593 K under 12 bar $H_2$. $80Mg+14Ni+6TaF_5$ had an effective hydrogen-storage capacity (the quantity of hydrogen absorbed for 60 min) of about 5.8 wt%. The sample desorbed 1.42 wt% H for 5 min, 3.42 wt% H for 15 min, and 5.09 wt% H for 60 min at 593 K under 1.0 bar $H_2$. Line scanning results by EDS for $80Mg+14Ni+6TaF_5$ before and after cycling showed that the peaks of Ta and F appeared at different positions, indicating that the $TaF_5$ in $80Mg+14Ni+6TaF_5$ was decomposed.

Mg과 Ni의 기계적인 합금화에 의한 수소 저장 합금의 개발 (Development of Hydrogen-Storage Alloy by Mechanical Alloying of Mg and Ni)

  • 송명엽
    • 한국수소및신에너지학회논문집
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    • 제7권2호
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    • pp.181-191
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    • 1996
  • 기계적인 합금화는 planetary mill을 사용하여 이루어졌으며, 시료의 조성은 Mg-10wt.%Ni과 Mg-25wt.%Ni이었다. 수소화물 형성 분해 cycling에 의해 혼합물 내에 $Mg_2Ni$상이 형성되었다. Mg-10wt.%Ni, Mg-25wt.%Ni은 583K, $0{\sim}8barH_2$에서 각각 n=7, n=6정도 후 활성화가 완료되었으며, 583K, $8barH_2$에서 10분 동안에 Mg-10wt.%Ni과 Mg-25wt.%Ni 시료에 의해 흡수된 수소의 중량 퍼센트 Ha(10min)은 각각 4.99, 4.52이었다. Mg-10wt.%Ni과 Mg-25wt.%Ni 혼합물은, 다른 Mg의 합금이나 혼합물에 비해 수소화물 형성 속도는 훨씬 높고, 수소화물 분해 속도와 수소 저장 용량은 비교적 높은 우수한 수소 저장 특성을 가진 수소 저장 재료라 판단된다. 기계적인 합금 처리와 수소 화합물 형성 분해 cycling의 효과는 핵 생성 site를 만들어 주고 입자의 크기를 줄이는 것으로 생각된다.

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Y2O3-stabilized ZrO2, Ni, and graphene-added Mg by reactive mechanical grinding processing for hydrogen storage and comparison with Ni and Fe2O3 or MnO-added Mg

  • Song, Myoung Youp;Choi, Eunho;Kwak, Young Jun
    • Journal of Ceramic Processing Research
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    • 제20권6호
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    • pp.609-616
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    • 2019
  • The optimum powder to ball ratio was examined, which is one of the important conditions in reactive mechanical grinding processing. Yttria (Y2O3)-stabilized zirconia (ZrO2) (YSZ), Ni, and graphene were chosen as additives to enhance the hydriding and dehydriding rates of Mg. Samples with a composition of 92.5 wt% Mg + 2.5 wt% YSZ + 2.5 wt% Ni + 2.5 wt% graphene (designated as Mg-2.5YSZ-2.5Ni-2.5graphene) were prepared by grinding in hydrogen atmosphere. Mg-2.5YSZ-2.5Ni-2.5graphene had a high effective hydrogen-storage capacity of almost 7 wt% (6.85 wt%) at 623 K in 12 bar H2 at the second cycle (n = 2). Mg-2.5YSZ-2.5Ni-2.5graphene contained Mg2Ni phase after hydriding-dehydriding cycling. Mg-2.5YSZ-2.5Ni-2.5graphene had a larger quantity of hydrogen absorbed for 60 min, Ha (60 min), than Mg-2.5Ni-2.5graphene and Mg-2.5graphene. The addition of YSZ also increased the initial dehydriding rate and the quantity of hydrogen released for 60 min, Hd (60 min), compared with those of Mg-2.5Ni-2.5graphene. Y2O3-stabilized ZrO2, Ni, and graphene-added Mg had a higher initial hydriding rate and a larger Ha (60 min) than Fe2O3, MnO, or Ni and Fe2O3-added Mg at n = 1.

화학적 합성법에 의한 금속수소화물의 제조 및 수소화 속도론적 연구 (Preparation of Metal Hydrides Using Chemical Synthesis and Hydriding Kinetics)

  • 이윤성;오재완;문성식;남기석
    • 공업화학
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    • 제9권2호
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    • pp.255-260
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    • 1998
  • 금속수소화물 $LaNi_5$$LaNi_{4.5}Al_{0.5}$을 화학적 합성법으로 제조하여, 합성된 금속수소화물의 물성을 다양한 방법으로 확인하였다. $LaNi_5$$LaNi_{4.5}Al_{0.5}$은 2회 정도 수소화/탈수소화 반응을 시키면 활성화되었으며, 압력-농도-온도 곡선을 측정한 결과 각각 6개와 5.5개의 수소원자가 저장되었다. $LaNi_{4.5}Al_{0.5}$의 경우 수소화 반응속도를 초기속도법으로 구한 결과 비반응 수축핵모델이 잘 적용되었으며, 수소화반응의 율속단계는 $LaNi_{4.5}Al_{0.5}$의 표면에서 수소분자의 해리화학흡착임을 알 수 있었다. $LaNi_{4.5}Al_{0.5}$의 수소화반응 활성화에너지는 $9.506kcal/mol-H_2$이었으며, 반응속도식은 273~343K와 $P_o-P_{eq}=0.25{\sim}0.66atm$의 범위에서 아래와 같이 표시되었다. $\frac{dX}{dt}=4.636(P_o-P_{eq})$ exp$\frac{-9506}{RT}$).

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HIGH TEMPERATURE OXIDATION OF NB-CONTAINING ZR ALLOY CLADDING IN LOCA CONDITIONS

  • Chuto, Toshinori;Nagase, Fumihisa;Fuketa, Toyoshi
    • Nuclear Engineering and Technology
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    • 제41권2호
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    • pp.163-170
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    • 2009
  • In order to evaluate high-temperature oxidation behavior of the advanced alloy cladding under LOCA conditions, isothermal oxidation tests in steam were performed with cladding specimens prepared from high burnup PWR fuel rods that were irradiated up to 79 MWd/kg. Cladding materials were $M5^{(R)}$ and $ZIRLO^{TM}$, which are Nb-containing alloys. Ring-shaped specimens were isothermally oxidized in flowing steam at temperatures from 1173 to 1473 K for the duration between 120 and 4000s. Oxidation rates were evaluated from measured oxide layer thickness and weight gain. A protective effect of the preformed corrosion layer is seen for the shorter time range at the lower temperatures. The influence of pre-hydriding is not significant for the examined range. Alloy composition change generally has small influence on oxidation in the examined temperature range, though $M5^{(R)}$ shows an obviously smaller oxidation constant at 1273 K. Consequently, the oxidation rates of the high burnup $M5^{(R)}$ and $ZIRLO^{TM}$ cladding are comparable or lower than that of unirradiated Zircaloy-4 cladding.

수소흡수-방출 사이클에 의한 Zr0.9Ti0.1Cr0.7Fe1.3 합금의 수소화 반응 특성의 변화 (The Changes of the Hydrogenation Properties of Zr0.9Ti0.1Cr0.7Fe1.3 Alloy Upon the Pressure Induced Hydriding-Dehydriding Cycling)

  • 이존하;이재영
    • 한국수소및신에너지학회논문집
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    • 제2권1호
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    • pp.29-37
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    • 1990
  • The effect of pressure cycling of $Zr_{0.9}Ti_{0.1}Cr_{0.7}Fe_{1.3}$ on the hydrogenation properties was investigated using the P-C-Isotherm curves and hydrogen absorption rate curves in the isotherm condition. The reversible hydrogen absorption capacity was decreased about 45 % after 3300 cycles. In the case of activated sample, the rate controlling steps of hydriding reaction changed from the surface reaction to the hydrogen diffusion process through hydride phase sequentially as reaction proceeded. After 3300 cycles, the sequential change of rate controlling step was same as activated one. However, the hydrogen absorption rate significantly decreased. It is suggested that the degradation of $Zr_{0.9}Ti_{0.1}Cr_{0.7}Fe_{1.3}$ can be interpreted with the formation of $ZrFe_3$ phase at the particle surface.

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Melt-spining 공법에 의한 Mg-33.5%Ni 수소 저장 합금 제조 및 수소저장 특성 (Fabricatin and Hydrogen Storage Property of Mg-33.5%Ni Alloy Powder Prepared by Melt-Spining Process)

  • 홍성현;임창동;배종수;나영상
    • 한국수소및신에너지학회논문집
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    • 제18권4호
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    • pp.399-405
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    • 2007
  • The hyper-eutectic Mg-33.5%Ni alloy was rapidly solidified by melt spinning process. The melt-spun Mg-33.5%Ni has amorphous structure and crystallization occurred above $162^{\circ}C$. The hydriding and dehydriding rates of melt-spun Mg-33.5%Ni increased with cycle and high rate of hydrogen storage occurred at 3rd cycle. The maximum hydrogen amount absorbed in melt-spun Mg-33.5%Ni at $300^{\circ}C$ is about 4.5%.