• Title/Summary/Keyword: heavy mineral separation

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Mineralogy of Beach Sand in Jaeun Island, Shinangun, Chonranamdo (전라남도 신안군 자은도 해빈사의 광물학적 특성)

  • Chae, Soo-Chun;Jung, Jee-Sung;Jang, Young-Nam;Bae, In-Kook;Shin, Hee-Young
    • Journal of the Mineralogical Society of Korea
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    • v.20 no.4
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    • pp.289-302
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    • 2007
  • Separation process of heavy minerals was performed with sand from Dunjang beach of Jaeundo, Shinangun, Chonnam, and the feasibility study separating heavy minerals was carried out, and their properties were studied. Samples were selected in three parts, which were upper part, middle part and lower part, with depth. Samples of heavy mineral groups separated with the spiral separator were chosen as starting materials, and they were separated with 3 times of table separation. Heavy minerals presenting in this area were ilmenite, zircon, rutile, anatase, monazite, and xenotime. In the results of 3 times of table separation, minor content of quartz, orthoclase, albite and muscovite were existed as gangue minerals. Accordingly, we concluded that additional specific gravity separation was needed. In the results of separation of heavy minerals by hand picking, it was confirmed that heavy minerals had various genesis because of their various roundness and color.

The optimized recover process of heavy minerals from Korean beach-sand

  • Shin, Hee-Young;Jeon, Ho-Soek;Baik, Seung-Woo;Kim, Wan-Tae;Lee, Jae-Chun
    • 한국지구물리탐사학회:학술대회논문집
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    • 2003.11a
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    • pp.648-653
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    • 2003
  • Optimized recovery of heavy minerals from the near shore sands of Korean Yellow Sea was investigated using physical processing technologies such as gravity concentration and magnetic separation. The head samples were subjected to the three stages effective separation; Head sample was first treated by a spiral separator to recover rough heavy mineral concentrates, which are contained minerals like ilmenite, zircon and rare earth minerals. Much higher beneficiation processes were subsequently taken by wilfley table and magnetic separation according to their magnetic field responses. Heavy minerals were effectively recovered by wilfley table and subsequent recleaning of heavy minerals by magnetic separations was conducted. Qualitative and relative-quantitative analyses of their constituent elements were doing using XRD and XRF.

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Mineralogy of Sea Sand Near Ongjingun through the Separation Processes (옹진군 해사의 선별공정에 따른 광물학적 특성)

  • Chae, Soo-Chun;Shin, Hee-Young;Bae, In-Kook;Kwon, Sung-Won;Lee, Chun-Oh;Kim, Jung-Yoon;Jang, Young-Nam
    • Journal of the Mineralogical Society of Korea
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    • v.24 no.1
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    • pp.1-17
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    • 2011
  • Mineralogical study was carried out for heavy minerals in the sea sand near Ongjingun bay, Kyonggi-do separated using the gravity and magnetic separators. Ilmenite, zircon and minor monazite and garnet were valuable minerals with gangue minerals of quartz, K-feldspar, plagioclase, muscovite, hornblende, epidote and chlorite. Quantitative analysis with SIROQUANT program showed that the contents of ilmenite separated with the gravity separation (the shaking table separation), the 1st step magnetic separation (rare earth magnetic separation) and the 2nd step magnetic separation (the Eddy current magnetic separation) were increased into 0.8, 18.3, and 48.7%, respectively. The content of ilmenite, monazite and zircon were recalculated based on the chemical composition of the representative and heavy fraction products of raw sand, the 1 step and 2 step gravity separations, and the 1 step and 2 step magnetic separations. The content increased to 0.23, 0.55, 5.22, 16.17, and 44.99% in ilmenite, 0.11, 0.02, 0.16, 0.51, and 1.19% in monazite. Although the zircon content did not differ over the processes (0.13, 0.12, 0.11, 0.15, and 0.10%), the improved recovery of zircon is expected by applying sieving process because of its high content (27%) in the fine grain size fraction (< 140#) of the 2 step gravity separation.

Separation and Mineralogy of Marine Sand Near Haeju bay, North Korea (북한 해주만 부근 해사의 선별 및 광물학적 특성)

  • Chae, Soo-Chun;Shin, Hee-Young;Bae, In-Kook;Kwon, Sung-Won;Lee, Soo-Jung;Kim, Wan-Tae;Lee, Chun-Oh;Jang, Young-Nam
    • Journal of the Mineralogical Society of Korea
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    • v.22 no.3
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    • pp.217-227
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    • 2009
  • Heavy minerals in the marine sand near Haeju bay, Hwanghae-do, North Korea were separated using the gravity and the magnetic separators. And their mineralogical study was carried out. Ilmenite, magnetite, hematite, zircon and monazite were observed as the valuable minerals, and quartz, orthoclase, muscovite, hornblende and garnet existed as gangue minerals. In the result of quantitative analysis with SIROQUANT program, the contents of the valuable minerals separated with the 2nd gravity separation (the shaking table separation), the 1st magnetic separation (rare earth magnetic separation) and the 2nd magnetic separation (the Eddy current magnetic separation) were increased into 4%, 10% and 76~89% (under the condition of 7000 G and 10000 G in magnetic strength), respectively. The contents of ilmenite, monazite and zircon recalculated from the chemical composition differed from the results of the quantitative analyses by SIROQUANT program, but the entire tendency bears some analogy with it. Under the conditions of 7000 G and 10000 G in 2nd magnetic separation the contents of ilmenites were concentrated with 53% and 66%, respectively. The content of monazite was 1.2% in the magnetic fractions of the 1st magnetic separation. The content of zircon was shown 1.4% under the condition of 10000 G in the 2nd magnetic separation, and was displayed 9% in +50 mesh of non-magnetic fraction of 1st magnetic separation, especially.

Mineral Separation and Sample Preparation Methods Efficient for Subgrain Zircon Analyses (저어콘 아입자분석을 위한 효율적인 광물분리 및 시료준비 방법)

  • 조등룡
    • The Journal of the Petrological Society of Korea
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    • v.13 no.3
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    • pp.126-132
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    • 2004
  • This study provides detailed sample preparation methods for subgrain zircon analyses, and a simple mineral separation technique which overflows light mineral grains out of beaker using the running water from faucet. Excluding separation steps using of the Wilfley table and heavy liquid, this technique is faster and more efficient than conventional one, and remarkably suitable for collecting small amount of zircon for subgrain analyses.

Advanced separation techniques for treatment of soil contaminated with heavy metals (중금속 오염 토양의 고도 선별 정화(복원)기술)

  • Lee, Hyo-Suk;Chae, Yeong-Bae
    • Journal of the Korean Professional Engineers Association
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    • v.41 no.3
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    • pp.24-29
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    • 2008
  • Recently, the serious problems have been occurred due to the contaminated sites with heavy metals are increasing. There are several remediation technologies of the metal contaminated soil such as physical separation, washing with water or acid, biologically, electrically. Pytoremediation, ultrasonic etc. Among these technologies the physical separation can be put in a good option to solve the metal contaminated soil economically and environmental friendly. Because this technology has been already commercially certificated in the mineral processing field for a long time.

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A Study on the Geology and Ore Dressing of Heavy Mineral Placer Deposits along the Boseong River, Jeonranamdo (전남(全南) 보성강(寶城江) 유역(流域)에 분포(分布)하는 중사광상(重砂鑛床)의 지질(地質) 및 선광(選鑛)에 관(關)한 연구(硏究))

  • Choi, Young Cheon
    • Economic and Environmental Geology
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    • v.15 no.3
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    • pp.113-122
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    • 1982
  • The surveyed Boseong river, flows from south to north crossing Boseong gun Mirukg myon, Nodong myon, Yuleo myon, Bocgnae myon, Mundeog myon, and Seungju gun Nam myon, Jeonranam do. The geology of the surveyed area consists of age-unknown composite gneiss and schist, crystaline chlorite gneiss, porphyroblastic gneiss and granite gneiss, and metasediments of Myon Bong formation and Seologri formation. These metamorphic rocks are intruded by cretaceous biotite granite, granodiorite, and quartz diorite. The heavy sands occur in Quarternary alluvium and colluvium. The composition of the river bed is sand 60%, gravel 30%, and clay 10%. The gravel content of the river bed decreases as the increases. The average depth of auger boring is 0.87 m. The average heavy mineral composition of the heavy sand is monazite 6.83%, zircon 4.88%, ilmenite 11.36%, magnetite 8.36% and garnet 4.84%. The best heavy minerals separation procedure would be primary treatment of the sand by humphrey spiral and table, and retreatment of the table concentrate by magnetic separator. The minimum economically feasible capacity of gravity and magnetic separation plant would be 500 ton/hr when only the heavy minerals are recovered but it may be reduced to 100 ton/hr. capacity, if gravels and sands are added to the valuable products.

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Formation of iron oxides from acid mine drainage and magnetic separation of the heavy metals adsorbed iron oxides

  • Kwon, Hee-won;Kim, JeongJin;Ha, Dong-Woo;Kim, Young-Hun
    • Progress in Superconductivity and Cryogenics
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    • v.18 no.1
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    • pp.28-32
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    • 2016
  • There are a few thousand abandoned metal mines in South Korea. The abandoned mines cause several environmental problems including releasing acid mine drainage (AMD), which contain a very high acidity and heavy metal ions such as Fe, Cu, Cd, Pb, and As. Iron oxides can be formed from the AMD by increasing the solution pH and inducing precipitation. Current study focused on the formation of iron oxide in an AMD and used the oxide for adsorption of heavy metals. The heavy metal adsorbed iron oxide was separated with a superconducting magnet. The duration of iron oxide formation affected on the type of mineral and the degree of magnetization. The removal rate of heavy metal by the adsorption process with the formed iron oxide was highly dependent on the type of iron oxide and the solution pH. A high gradient magnetic separation (HGMS) system successfully separated the iron oxide and harmful heavy metals.

Effect of magnetic separation in removal of Cr and Ni from municipal solid waste incineration (MSWI) bottom ash (생활폐기물(生活廢棄物) 소각(燒却) 바닥재의 자력선별(磁力選別)에 따른 크롬과 니켈의 거동(擧動))

  • Ahn, Ji-Whan;Um, Nam-Il;Cho, Kye-Hong;Oh, Myung-Hwan;You, Kwang-Suk;Han, Gi-Chun;Cho, Hee-Chan;Han, Choon;Kim, Byong-Gon
    • Resources Recycling
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    • v.16 no.6
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    • pp.3-9
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    • 2007
  • Although the ferrous material was separated by the magnetic separation before the incineration process, the municipal solid waste incineration bottom ash generated during incinerator in metropolitan area consists of many iron products which account for about $3{\sim}11%$ as well as ceramics and glasses. The formation of $NiFe_2O_4$ and $FeCr_2O_4$ with a $Fe_3O_4-Fe_2O_3$ (similar to pure Fe) on the surface of iron product was found during air-annealing in the incinerator at $1000^{\circ}C$, because Ni and Cr has a chemical attraction about iron is using to coat with Ni and Cr metals for poish or to prevent corrosion. Therefore, Fe-Ni Cr oxide can be formed on durface of the iron product and it can be separated from bottom ash through the magnetic separation. So, in this study, the separation ratio of heavy metals as magnetic separation and mineralogical formation of Fe-ion(heavy metal) in ferrous metals corroded were investigated. As the result, the separation ratio of Ni and Cr based on particle sizes accounted for about $45{\sim}50%$, and Cu and Pb accounted for below 20%. Also, the leaching concentration of Ni and Cr in bottom ash separated by magnetic separation was lower than that in fresh bottom ash.

Magnetic Separation of FCC Equilibrium Catalyst by HGMS

  • Xiang, Fazhu;He, Pingbo;Chen, Jin
    • Proceedings of the IEEK Conference
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    • 2001.10a
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    • pp.770-775
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    • 2001
  • Effects of magnetic field and carrier gas velocity on the magnetic separation of FCC catalyst by a high gradient magnetic separator were studied. The activities of the equilibrium catalyst, the magnetic particles and the nonmagnetic particles were evaluated in a fixed bed microreactor The results showed that heavy metal contaminated catalyst can be selectively separated by means of high gradient magnetic separation at magnetic field 0.5T and carrier gas velocity 0.3m.s$^{-1}$ , and lightly metal contaminated catalyst retained high catalytic activity.

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