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  • ¿µ¹®
    ÇѱÛ
  • kettle flow
    ÄÉÆ²À¯·®
  • laminar flow
    °áÈ帧, ÃþÆÇ·ù
  • maximal expiratory flow
    Ãִ볯¼ûÀ¯·®, ÃÖ´ëÈ£±â·®
  • maximal midexpiratory flow rate
    ÃÖ°íÁß°£³¯¼ûÀ¯¼Ó, ÃÖ°íÁß°£È£±âÀ¯¼Ó
  • maximum expiratory flow rate
    ÃÖ°í³¯¼ûÀ¯¼Ó, ÃÖ°íÈ£±âÀ¯¼Ó
  • maximum flow rate
    1. ÃÖ°íÀ¯¼Ó 2. ÃÖ°íÈ帧¼Óµµ 3. ÃÖ´ëÀ¯·®
  • maximum midexpiratory flow
    ÃÖ´ëÁß°£³¯¼ûÀ¯·®, ÃÖ´ëÁß°£È£±âÀ¯·®
  • pressure flow study
    ¾Ð·Â¿ä·ù°Ë»ç
  • parabolic flow
    Æ÷¹°¼±È帧
  • proton flow
    ¾ç¼ºÀÚÈ帧, ¾ç¼ºÀÚÀ¯µ¿
  • pulmonary flow resistance
    Æó±â·ùÀúÇ×
  • pulsatile flow
    ¹Úµ¿È帧, ¹Úµ¿Ç÷·ù
  • peak expiratory flow
    Ãִ볯¼ûÀ¯·®
  • peak expiratory flow rate
    ÃÖ°í³¯¼ûÀ¯¼Ó, ÃÖ°íÈ£±âÀ¯¼Ó
  • peak flow meter
    ÃÖ´ëÀ¯·®°è, ÃÖ°íÀ¯·®°è
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  • ¿µ¹®
    ÇѱÛ
  • flow resistance
    È帧ÀúÇ×, À¯·®ÀúÇ×
  • flow signal
    È帧½ÅÈ£, À¯µ¿½ÅÈ£
  • flow void
    È帧°ø¹é, À¯µ¿°ø¹é
  • flow compensated pulse sequence
    È帧º¸»óÆÞ½º¿¬¼â
  • flow compensation gradient technique
    È帧º¸»ó±â¿ï±â±â¹ý
  • flow sensitive gradient echo sequence
    È帧¹Î°¨±â¿ï±â¸Þ¾Æ¸®¿¬¼â
  • flow velocity profile
    È帧¼ÓµµºÐÆ÷»ó, À¯¼ÓºÐÆ÷»ó
  • flow void sign
    È帧¼Ò½Ç¡ÈÄ
  • forced expiratory flow
    °­Á¦³¯¼ûÀ¯·®
  • gas flow
    °¡½ºÈ帧, °¡½ºÀ¯·®
  • high intensity proton flow
    °í°­µµ¾çÀÚÈ帧, °í°­µµ¾çÀÚÀ¯µ¿
  • inspiratory triggering flow
    µé¼ûÀ¯¹ß±â·ù
  • kettle flow
    ÄÉÆ²À¯·®
  • laminar flow
    °áÈ帧
  • maximal expiratory flow
    Ãִ볯¼û·®
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  • ¿µ¹®
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  • electron transfer system
    ÀüÀÚÀü´Þ°è(¡­ì¹ÔÑ), ÀüÀÚ¿î¹Ýü(¡­ê¡Úæô÷).
  • electron transparence
    ÀüÀÚÅõ°úµµ(¡­÷âΦöô).
  • electron tube
    ¹æ»ç ÀüÀÚ°ü(ï³í­Î·).
  • electron unit
    ¹æ»ç ÀüÀÚ´ÜÀ§(¡­Ó¤êÈ).
  • electron volt
    ÀüÀÚº¼Æ®
  • electron volt =eV
    ¹æ»ç ÀüÀÚº¼Æ®.
  • electron wave
    ÀüÀÚÆÄ
  • electron wave
    ÀüÀÚÆÄ(ï³í­÷î).
  • electron-beam therapy
    ÀüÀÚ¼± Ä¡·á
  • free electron
    ÀÚÀ¯ÀüÀÚ
  • free electron
    ÀÚÀ¯ÀüÀÚ(í»ë¦ï³í­).
  • high electron density
    °íÀüÀڹеµ(ÍÔï³í­ÚËöô).
  • immune electron microscopy
    ¸é¿ªÀüÀÚÇö¹Ì°æ¹ý.
  • immune-electron microscopy
    ¸é¿ªÀüÀÚÇö¹Ì°æ¹ý
  • immunologic electron microscopy
    ¸é¿ªÀüÀÚÇö¹Ì°æ¹ý.
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  • photosynthetic electron transport
    ±¤ÇÕ¼º ÀüÀÚ ¼ö¼Û(ï³í­âÃáê)
  • positive electron
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  • scanning electron microscope
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  • secondary electron
    ÀÌÂ÷ ÀüÀÚ(ì£ó­ï³í­)
  • transmission electron microscope
    Åõ°ú ÀüÀÚ Çö¹Ì°æ(÷âΦï³í­úéÚ°Ìð)
  • tunneling electron microscope
    Åϳڸµ ÀüÀÚÇö¹Ì°æ(ï³í­úéÚ°Ìð)
  • unpaired electron
    ȬÀüÀÚ(ï³í­)
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    ¿øÀÚ°¡(ê«í­Ê¤) ÀüÀÚ (ï³í­)
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EM   1) Erythro-Mycin
  2) Electron Microscopy
TSEB Total Skin Electron Beam
AEM Academic Emergency Medicine [journal]; analytical electron microscopy; ambulatory electrocardiograph...
AES acetone-extracted serum; American Electroencephalographic Society; American Encephalographic Society...
ATEM analytic transmission electron microscopy
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ESCA Electron Spectroscopy for Chemical Analysis
ESEEM Electron Spin Echo Envelope Modulation
ESR Electron Spin Resonance
EC Electron capture
ECD Electron capture dissociation
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  • maximum mid-expiratory flow rate
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  • obstruction to blood flow
    Ç÷·ù Æó¼â
  • parabolic flow
    Æ÷¹°¼±Çü À¯Ã¼ È帧
  • peak expiratory flow
    ÃÖ´ë È£±â À¯·®
  • peak flow rate
    ÃÖ´ë À¯¼Ó, ÃÖ°í À¯¼Ó
  • penile flow index
    À½°æ Ç÷·ù Áö¼ö
  • proton flow
    ¾çÀÚ À¯µ¿
  • proton flow deficit
    ¾çÀÚ À¯µ¿ °áÇÌ
  • pulpal blood flow
    Ä¡¼ö³» Ç÷·ù
  • quantitative flow measurement
    Á¤·®Àû À¯·® ÃøÁ¤
  • renal blood flow
    ½Å Ç÷·ù·®
  • renal plasma flow
    ½Å Ç÷Àå·ù, ½Å Ç÷Àå·ù·®
  • salivary flow rate
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    Àڱؼº ÀÌÇϼ± ºÐºñÀ²
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scanning transmission electron microscopy <procedure> Method of electron microscopy in which image formation depends upon analysis of the pattern of energies of electrons that pass through the specimen. Has comparable resolving power to conventional transmission EM.
(18 Nov 1997)
secondary electron <microscopy> Produced by an incident electron passing near an atom in the specimen, near enough to impart some of its energy to a lower energy electron (usually in the K-shell). This causes a slight energy loss and path change in the incident electron and the ionisation of the electron in the specimen atom. This ionised electron then leaves the atom with a very small kinetic energy (5eV) and is then termed a secondary electron. Each incident electron can produce several secondary electrons.
(05 Aug 1998)
secondary electron imaging <microscopy> Production of secondary electrons is very topography related. Due to their low energy, 5eV, only secondaries that are very near the surface (less than 10nm) can exit the sample and be examined. Any changes in topography in the sample that are larger than this sampling depth will change the yield of secondaries due to collection efficiencies. Collection of these electrons is aided by using a collector in conjunction with the secondary electron detector. The collector is a grid or mesh with a +100V potential applied to it which is placed in front of the detector, attracting the negatively charged secondary electrons to it which then pass through the grid-holes and into the detector to be counted. When a Secondary Electrons collide with the solid-state saemiconductor detector an electron-hole pairs are created which are then counted. This quantity is translated into a pixel intensity and displayed on the CRT, forming the image.
(05 Aug 1998)
Selected Area Electron Diffraction <technique> In this diffraction mode an aperture is used to define the area from which a diffraction pattern is to be recorded from a thin sample. This aperture is typically located in an image plane below the sample.
Selected Area Electron Diffraction patterns are simple spot patterns and are of use in phase determination (lattice spacing measurement) and defect analysis (sample orientation).
Acronym: SAED
(05 Aug 1998)
immune electron microscopy Electron microscopy of biological specimens to which specific antibody has been bound.
(05 Mar 2000)
internal conversion electron An electron, similar to an Auger electron, released from one of the electron orbits of the atom upon activation by a gamma-ray from that atom's nucleus; the electron has kinetic energy equal to the net energy transition of the disintegration.
(05 Mar 2000)
electron <chemistry, physics> A stable atomic particle that has a negative charge, the flow ofelectrons through a substance constitutes electricity.
(19 Jan 1998)
electron acceptor <chemistry> A molecule or compound that gets electrons during an oxidation-reduction reaction.
(19 Jan 1998)
electron beam <microscopy> A stream of electrons in an electron optical system.
(05 Aug 1998)
electron capture <radiobiology> Nuclear decay process whereby a proton in the nucleus absorbs an orbiting electron and converts to a neutron.
(09 Oct 1997)
electron carrier <chemistry> A protein which can either accept or donate electrons in oxidation-reduction reactions.
(19 Jan 1998)
Electron Channeling Pattern <microscopy> A pattern formed by the periodic backscattering of electrons by the specimen lattice in a transmission electron microscope. Allows determination of crystal structure and lattice parameters in crystals greater than 10 micrometres diameter.
Acronym: ECP
(05 Aug 1998)
electron cyclotron discharge cleaning Using relatively low power microwaves (at the electron cyclotron frequency) to create a weakly ionised, essentially unconfined hydrogen plasma in the vacuum chamber.
The ions react with impurities on the walls of the tokamak and help remove them from the chamber. For instance, Alcator C-mod typically applies electron cyclotron discharge cleaning for a few days prior to beginning a campaign, and a few hours before each day's run.
(09 Oct 1997)
electron cyclotron emission <physics, radiobiology> As electrons gyrate around in a magnetic field (see also larmor radius or cyclotron radius), they radiate radio-frequency electromagnetic waves. This is known as electron cyclotron emission, and can be measured to help diagnose a plasma.
(09 Oct 1997)
electron cyclotron heating <physics, radiobiology> Radiofrequency heating scheme that works by injecting electromagnetic wave energy at the electron cyclotron gyration frequency.
The electric field of the electromagnetic wave at this frequency looks to a gyrating electron like a static electric field, and thus causes large acceleration of the electron (larger than if the frequency were off the cyclotron frequency and thus, to the electron, appearing to change direction as a function of time).
The accelerated electron gains energy, which is then shared with other particles through collisions, resulting in heating. Higher harmonics (multiples) of the cyclotron frequency can also be used in principle.
(09 Oct 1997)
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