• Title/Summary/Keyword: 프리모 관

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The Low and Static Magnetic Field Effects on the Motion of Biomolecule Sanals Inside the Primo Vascular System (낮은 정자기장 하에서 프리모 시스템 산알의 운동특성 연구)

  • Lee, Sang-Suk;Soh, Kwang-Sup
    • Journal of the Korean Magnetics Society
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    • v.21 no.6
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    • pp.219-224
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    • 2011
  • The motion features of sanals inside of the primo vascular system (PVS), that is so-called the Kyungrak system, are investigated under a low static magnetic field by using the anatomy technology and optical microscope. The sanals with a size of about 1 selected and separated from the primo vessel and node of the real PVS inside of the surface of the internal organs are observed from rabbits' abdominal wall and dipped with PBS liquid inside of petri dish. The sanal's moving velocity along the direction of magnetic field (xdirection) and perpendicular to the direction of magnetic field (y-direction) under the low magnetic field of 0 Oe, 20 Oe, 40 Oe, 60 Oe, and 80 Oe, respectively, is observed below a internal temperature of $38^{\circ}C$. Ten sanals' moving velocities versus magnetic field are shown two differently dominant tendencies with an average velocity of 0.9 pixel/s and a random velocity according to the x-direction and y-direction, respectively. This experimental results imply that the rotating motion of sanal with nuclei DNA composed of many inorganic magnetic materials of Mn and Co is monotonically weakened by the increase of applied magnetic field.

Tube Erosion Rate of Water Wall in a Commercial Circulating Fluidized Bed Combustor (상용 순환 유동층 연소로 수관벽 전열관 마모속도)

  • Kim, Tae-Woo;Choi, Jeong-Hoo;Shun, Do-Won;Son, Jae-Ek;Jung, Bongjin;Kim, Soo-Sup;Kim, Sang-Done
    • Korean Chemical Engineering Research
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    • v.43 no.4
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    • pp.525-530
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    • 2005
  • The erosion rate of water wall tube has been measured and discussed in a commercial circulating fluidized bed combustor (200 ton steam/hr, $4.97{\times}9.90{\times}28.98m\;height$). Tube thickness was measured with ultrasonic method. Severe tube erosion rate was observed in the splash region on all waterwalls including wingwalls. The tube erosion rate increased after an initial decrease as height from the distributor increased. The difference of erosion rate among wing walls was found due to unbalanced distribution of gas and solid flow rates. The erosion rate of the wing wall increased as location of the wing wall became closer to the center of combustor crosssection.