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      • KCI등재

        Ar+H<sub>2</sub> 혼합(混合)가스에 의한 MoO<sub>3</sub>의 MoO<sub>2</sub>로의 환원거동(還元擧動)

        손호상,이향준,박종일,Sohn, Ho-Sang,Yi, Hyang-Jun,Park, Jong-Il 한국자원리싸이클링학회 2011 資源 리싸이클링 Vol.20 No.4

        $MoO_3$ 분말을 723 K ~ 873 K에서 Ar+$H_2$ 혼합기체를 이용히여 수평관상로에서 $MoO_2$로 훤원하였으며, 반용속도를 배가스 중의 상대습도를 측정하여 계산하였다. 반응속도는 수소가스 분압과 반응속도에 따라 현저하게 증가하였다. 환원 반응초기에 $H_2O$의 발생속도가 급격하게 증가하였으며, 시간의 경과에 따라 배가스 중의 $H_2O$ 분압은 급격하게 감소하였다. 이 시기에 환원 반응율은 직선적으로 증가하였다. 환원반응 초기의 $MoO_3$에서 $MoO_2$로의 환원반응의 활성화 에너지는 73.56 kJ/mol로 계산되었다. $MoO_3$ powders were reduced to $MoO_2$ under Ar+$H_2$ gas mixture in a tubular furnace at temperature range 723~873 K. Reaction rate was quantitatively deduced by measuring relative humidity of off gas. Observed reaction rate increased significantly with hydrogen partial pressure and reaction temperature and the rate of $H_2O$ evolution increased drastically during the initial period of reduction. As reduction proceeded, however, $H_2O$ partial pressure decreased noticeably. During the initial period of the reduction, a linear relationship for time dependence of the reduction fraction was observed. The activation energy for the reduction of $MoO_3$ to $MoO_2$was 73.56 kJ/mol during the initial period of reduction.

      • KCI등재

        분말야금을 위한 타이타늄 제련기술 현황

        손호상,Sohn, Ho-Sang 한국분말재료학회 (*구 분말야금학회) 2021 한국분말재료학회지 (KPMI) Vol.28 No.2

        Titanium is the ninth most abundant element in the Earth's crust and is the fourth most abundant structural metal after aluminum, iron, and magnesium. It exhibits a higher specific strength than steel along with an excellent corrosion resistance, highlighting the promising potential of titanium as a structural metal. However, titanium is difficult to extract from its ore and is classified as a rare metal, despite its abundance. Therefore, the production of titanium is exceedingly low compared to that of common metals. Titanium is conventionally produced as a sponge by the Kroll process. For powder metallurgy (PM), hydrogenation-dehydrogenation (HDH) of the titanium sponge or gas atomization of the titanium bulk is required. Therefore, numerous studies have been conducted on smelting, which replaces the Kroll process and produces powder that can be used directly for PM. In this review, the Kroll process and new smelting technologies of titanium for PM, such as metallothermic, electrolytic, and hydrogen reduction of TiCl<sub>4</sub> and TiO<sub>2</sub> are discussed.

      • KCI등재

        알루미늄의 리사이클링 기술

        손호상,Sohn, Ho-Sang 한국자원리싸이클링학회 2019 資源 리싸이클링 Vol.28 No.2

        Aluminum is the most abundant metal and the second most plentiful metallic element in the earth's crust, after silicon. Aluminum is a light, conductive, and corrosion resistant metal with strong affinity for oxygen. However, the primary aluminum production process is highly energy intensive. The recycling of aluminum scrap reduces the energy consumption and environmental burden, comparing to the primary metal production. However, the amount of the recovered metal from scrap is limited because of the difficulties to remove the impurities in the scrap. This work provides an overview of the aluminum production and recycling process, from the preparation of alumina to the scrap upgrading and the melting process.

      • KCI등재

        니켈 제련기술의 현황

        손호상,Sohn, Ho-Sang 한국자원리싸이클링학회 2021 資源 리싸이클링 Vol.30 No.2

        Nickel is widely used due to its excellent toughness, malleability and enhanced corrosion resistance. Therefore, nickel is indispensable in our daily lives, and it is widely used in basic to advanced applications such as stainless steel, super alloys and electronic devices. Recently, nickel has been widely used as the major material in secondary batteries and capacitors. The use of nickel continues to rise and has increased from 800 thousand tonnes per year worldwide in the 1970s to about 2 million tonnes in the 2010s. However, nickel is a representative rare metal and ranks 23rd among the abundant elements in the earth's crust. This study reviews the current status of the nickel smelting processes as well as the trend in production amount and use. Nickel is extracted by a wide variety of smelting methods depending on the type of ore. These smelting methods are essential for the development of new recycling processes that can extract nickel from secondary nickel resources.

      • KCI등재

        타이타늄의 리사이클링 기술 현황

        손호상 한국자원리싸이클링학회 2021 資源 리싸이클링 Vol.30 No.1

        Titanium is the fourth most abundant structural metal, after aluminum, iron, and magnesium. However, it is classified as a ‘rare metals’, because it is difficult to smelt. In particular, the primary titanium production process is highly energy-intensive. Recycling titanium scraps to produce ingots can reduce energy consumption and CO2 emissions by approximately 95 %. However, the amount of metal recycled from scrap remains limited of the difficulty in removing impurities such as iron and oxygen from the scrap. Generally, high-grade titanium and its alloy scraps are recycled by dilution with a virgin titanium sponge during the remelting process. Low-grade titanium scrap is recycled to ferrotitanium (cascade recycling). This paper provides an overview of titanium production and recycling processes. 타이타늄은 구조용 금속 중 알루미늄, 철, 마그네슘에 이어서 네 번째로 풍부한 금속이지만, 금속으로의 제련이 어려워 희소금속으로분류되고 있다. 특히 타이타늄의 제련공정은 에너지 다소비형 공정이다. 타이타늄 스크랩으로 잉곳을 제조하면 에너지 소비량과 CO2 발생량을 약 95 %까지 절감할 수 있다. 그러나 스크랩 중의 철분과 산소 등의 불순물을 제거하기 어려워 리사이클링 되는 양은 한정되어 있다. 일반적으로 고품위 타이타늄 스크랩은 순타이타늄 스펀지의 재용해 공정에 투입하여 희석하고, 저품위 스크랩은 페로타이타늄 제조용 원료로 사용되고 있다. 본 논문에서는 이러한 타이타늄의 리사이클링 기술을 이해하기 위해 타아타늄의 제련기술과 리사이클링 기술에 대하여 고찰하였다.

      • KCI등재

        마그네슘의 제련 및 리사이클링 기술 현황

        손호상 한국자원리싸이클링학회 2020 資源 리싸이클링 Vol.29 No.5

        마그네슘은 구조용 금속 중 알루미늄과 철에 이어 세 번째로 풍부한 금속이다. 또 마그네슘은 범용 금속 중 가장 가벼운 금속으로, 밀도가 알루미늄보다 33 %, 철보다 77 % 낮다. 마그네슘 1차 지금을 생산하기 위해서는 다량의 에너지를 소비하지만, 마그네슘 스크랩을리사이클링하면 1차 지금 생산과 비교하여 에너지 및 환경부하를 저감할 수 있다. 그러나 마그네슘 스크랩 중의 불순물 제거가 곤란하여재생되는 양은 한정되어 있다. 본 논문에서는 마그네슘의 1차 지금 생산 및 리사이클링 공정에 대하여 고찰하였다. Magnesium is the third most abundant structural metal after aluminum and iron. Magnesium is the lightest metal in the common metals. It has a density 33 % less than aluminum and 77% lower than steel. However, the primary magnesium production process is highly energy intensive. The recycling of magnesium scrap reduces the energy consumption and environmental burden, comparing to the primary metal production. However, the amount of recovered metal from scrap is limited because of the difficulties to remove the impurities in the scrap. This work provides an overview of the magnesium production and recycling process.

      • KCI등재

        동스크랩의 리사이클링

        손호상,Sohn, Ho-Sang 한국자원리싸이클링학회 2019 資源 리싸이클링 Vol.28 No.3

        Copper is one of the first metals utilized by humankind about 11,500 years ago. But copper is not plentiful metallic element in the earth's crust. Copper has a high thermal and electric conductivity and is relatively corrosion resistant. In principle copper is virtually 100 % recyclable as an element without loss of quality. The recycling of copper scrap reduces the energy consumption and environmental burden, comparing to the primary metal production. Currently, approximately 30% of the global copper supply provides by recycling. Copper scrap is smelted in primary and secondary smelter. Type of furnace and process steps depend on the quality and grade of scrap. Depending on copper content of the secondary raw material, refining is required, which is usually done through electrorefining. This work provides an overview of the primary copper production and recycling process.

      • KCI등재

        코발트의 제련과 리사이클링

        손호상 한국분말재료학회 2022 한국분말재료학회지 (KPMI) Vol.29 No.3

        Cobalt is a vital metal in the modern society because of its applications in lithium-ion batteries, super alloys, hard metals, and catalysts. Further, cobalt is a representative rare metal and is the 30th most abundant element in the Earth’s crust. This study reviews the current status of cobalt extraction and recycling processes, along with the trends in its production amount and use. Although cobalt occurs in a wide range of minerals, such as oxides and sulfides of copper and nickel ores, the amounts of cobalt in the minerals are too low to be extracted economically. The Democratic Republic of Congo (DRC) leads cobalt mining, and accounts for 68.9 % of the global cobalt reserves (142,000 tons in 2020). Cobalt is mainly extracted from copper–cobalt and nickel–cobalt concentrates and is occasionally extracted directly from the ore itself by hydro-, pyro-, and electro-metallurgical processes. These smelting methods are essential for developing new recycling processes to extract cobalt from secondary resources. Cobalt is mainly recycled from lithium-ion batteries, spent catalysts, and cobalt alloys. The recycling methods for cobalt also depend on the type of secondary cobalt resource. Major recycling methods from secondary resources are applied in pyro- and hydrometallurgical processes.

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