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  • ¿µ¹®
    ÇѱÛ
  • mass energy absorption coefficient
    Áú·®¿¡³ÊÁöÈí¼ö°è¼ö
  • mass energy transfer coefficient
    Áú·®¿¡³ÊÁöÀüÀ̰è¼ö
  • nuclear energy
    ÇÙ¿¡³ÊÁö
  • potential energy
    ÀüÀ§¿¡³ÊÁö, À§Ä¡¿¡³ÊÁö
  • radiant energy
    ¹æ»ç¿¡³ÊÁö, º¹»ç¿¡³ÊÁö
  • arm-to-retina circulation time
    ÆÈ¸Á¸·¼øÈ¯½Ã°£
  • atrioventricular conduction time
    ¹æ½ÇÀüµµ½Ã°£
  • acquisition time
    ȹµæ½Ã°£
  • activated coagulation time
    Ȱ¼ºÇ÷¾×ÀÀ°í½Ã°£
  • activated partial thromboplastin time
    Ȱ¼ºÈ­ºÎºÐÆ®·Òº¸ÇÃ¶ó½ºÆ¾½Ã°£
  • bleeding time
    ÃâÇ÷½Ã°£
  • bleeding time test
    ÃâÇ÷½Ã°£°Ë»ç
  • breath holding time
    ¼ûÂü´Â½Ã°£, È£ÈíÁßÁö½Ã°£
  • circulation time
    ¼øÈ¯½Ã°£
  • clot retraction time
    ÇǶ±µÞ´ç±è½Ã°£, Ç÷º´¼öÃà½Ã°£
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  • ¿µ¹®
    ÇѱÛ
  • inspiratory phase time
    µé¼û½Ã°£, Èí±â½Ã°£
  • latent time
    Àẹ½Ã°£
  • maximum phonation time
    ÃÖÀå¹ß¼ºÁö¼Ó½Ã°£
  • mean survival time
    Æò±Õ»ýÁ¸½Ã°£
  • partial thromboplastin time
    ºÎºÐÆ®·Òº¸ÇÃ¶ó½ºÆ¾½Ã°£
  • prothrombin time
    ÇÁ·ÎÆ®·Òºó½Ã°£
  • reaction time
    ¹ÝÀÀ½Ã°£
  • recovery time
    ȸº¹½Ã°£
  • repetition time
    ¹Ýº¹½Ã°£
  • scrub time
    ¼Õ¾Ä´Â½Ã°£
  • survival time
    »ýÁ¸±â°£
  • thrombin time
    Æ®·Òºó½Ã°£
  • transit time
    ÀüÀ̽ð£, Åë°ú½Ã°£
  • voiding time
    ¹è´¢½Ã°£
  • real time ultrasonography
    ½Ç½ÃÃÊÀ½ÆÄÃÔ¿µ¼ú
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  • ¿µ¹®
    ÇѱÛ
  • energy quantum
    ¿¡³ÊÁö¾çÀÚ
  • energy spectrum
    ¿¡³ÊÁö½ºÆåÆ®·³
  • energy fluence rate
    ¿¡³ÊÁöÇ÷ç¾ð½ºÀ², ¿¡³ÊÁö¿µÇâ·ü
  • energy metabolic rate
    ¿¡³ÊÁö´ë»çÀ²
  • free energy
    ÀÚÀ¯¿¡³ÊÁö
  • kinetic energy
    ¿îµ¿¿¡³ÊÁö
  • nuclear energy
    ÇÙ¿¡³ÊÁö
  • potential energy
    À§Ä¡¿¡³ÊÁö, ÀüÀ§¿¡³ÊÁö
  • radiant energy
    ¹æ»ç¿¡³ÊÁö
  • thermal energy
    ¿­¿¡³ÊÁö
  • threshold energy
    ¹®Åο¡³ÊÁö
  • high energy radiation
    °í¿¡³ÊÁö¹æ»ç¼±
  • high linear energy transfer radiation
    °í¼±Çü¿¡³ÊÁöÀüÀ̹æ»ç¼±
  • linear energy transfer radiation
    ¼±»ó¿¡³ÊÁöÀüȯ
  • acquisition time
    ȹµæ½Ã°£
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  • ¿µ¹®
    ÇѱÛ
  • radiant energy
    ¹æ»ç¿¡³ÊÁö
  • radiant energy absorption
    º¹»ç(¹æ»ç)¿¡³ÊÁöÈí¼ö
  • radiation energy
    ¹æ»ç¼±¿¡³ÊÁö
  • radiation,linear energy transfer (let)
    ¼±»ó¿¡³ÊÁöÀüȯ(àÊß¾¡­ï®üµ)
  • AUC : area under the concentration-time curve
    Ç÷Áß(¾à¹°)³óµµ°î¼±ÇϸéÀû.
  • BUT->breakup time of tear film
    ´«¹°¸·ÆÄ±«½Ã°£, ´©¾×¸·ÆÄ±«½Ã°£
  • Conduction time
    Àüµµ½Ã°£
  • MTT=£¾mean tidal time
    Æò±Õ¼øÈ¯½Ã°£.
  • Russells viper venom time
    ·¯¼¿¹ÙÀÌÆÛº£³ð½Ã°£
  • T.G.C (time gain compensation)
    ½Ã°£ (ãÁÊà) °ÔÀÎ º¸»ó (ÜÍßÁ), °Å¸®(±íÀÌ) °ÔÀÎ º¸»ó
  • T.G.C (time gain compensation)
    ½Ã°£ °ÔÀÎ º¸»ó
  • T1 relaxation time
    T1 ÀÌ¿Ï ½Ã°£
  • T2 (spin spin) relaxation time
    T2(½ºÇɽºÇÉ) À̿Ͻð£
  • T2 relaxation time
    T2 ÀÌ¿Ï ½Ã°£
  • TM scan(Time motion)
    ½Ã°£ ¿îµ¿ ¹æ½Ä
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  • ¿µ¹®
    ÇѱÛ
  • conservation of mechanical energy
    ¿ªÇÐ(æ³ùÊ)Àû ¿¡³ÊÁöº¸Á¸(ÜÁðí).
  • critical absorption energy
    ÀÓ°èÈí¼ö¿¡³ÊÁö
  • dual energy
    ÀÌÁß ¿¡³ÊÁö
  • elastic strain energy
    ź¼º º¯Çü ¿¡³ÊÁö.
  • elastic strain energy
    ź¼ºº¯Çü¿¡³ÊÁö.
  • electronic energy level
    ÀüÀÚ¿¡³ÊÁöÁØÀ§(¡­ñÞêÈ).
  • energy
    ¿¡³ÊÁö.
  • energy
    ¿¡³ÊÁöÇÐ(ùÊ)
  • energy absorption
    ¿¡³ÊÁöÈí¼ö
  • energy absorption coefficient
    ¿¡³ÊÁöÈí¼ö°è¼ö
  • energy balance
    ¿¡³ÊÁöÆòÇü.
  • energy balance
    ¿¡³ÊÁö±ÕÇü(гû¬)
  • energy calibration
    ¿¡³ÊÁöÃøÁ¤
  • energy dependence
    ¿¡³ÊÁöÀÇÁ¸¼º
  • energy deposition event
    ¿¡³ÊÁöºÎ¿©Çö»ó
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  • ¿µ¹®
    ÇѱÛ
  • resolving time
    "ºÐ¸®½Ã°£, ÇØ»ó½Ã°£"
  • retention time
    ¸Ó¹«¸§ ½Ã°£
  • rotational relaxation time
    ȸÀü À̿Ͻð£(üÞï®ì¬èÐãÁÊà)
  • thermal death time
    ¿­»ç½Ã°£ (æðÞÝãÁÊà)
  • time constant
    ½Ã°£»ó¼ö (ãÁÊàßÈâ¦)
  • time constant of a reaction
    ¹ÝÀÀ ½Ã°£»ó¼ö (ÚãëëãÁÊàßÈâ¦)
  • time factor effect
    ½Ã°£ÀÎÀÚ È¿°ú (ãÁÊàì×í­üùÍý)
  • transient time
    °úµµ±â ½Ã°£(ΦԤѢãÁÊà)
  • turnover time
    Àüȯ½Ã°£(ï®üµãÁÊà)
  • zero time binding DNA
    ¿µ½Ã(çÍãÁ) °áÇÕ(Ì¿ùê) DNA
  • zero time control
    ¿µ½Ã(çÍãÁ) ´ëÁ¶(ÓßðÎ)
  • activation energy
    Ȱ¼ºÈ­(üÀàõûù)¿¡³ÊÁö
  • Arrenius activation energy
    ¾Æ·¹´Ï¿ì½º Ȱ¼º(üÀàõ)¿¡³ÊÁö
  • bond energy
    °áÇÕ(Ì¿ùê)¿¡³ÊÁö
  • energy
    ¿¡³ÊÁö
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  • ¿µ¹®
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  • doubling time
    ¹è°¡½Ã°£
  • echo time [=TE]
    ¿¡Äڽð£
  • elapsed time
    °æ°ú½Ã°£
  • exposure time
    ³ëÃâ½Ã°£, Á¶ ½Ã°£
  • fast time constant circuit
    °í¼Ó½Ã°£°íÁ¤È¸·Î
  • gastric emptying time
    À§¹èÃâ½Ã°£
  • half-life; half-time
    ¹Ý°¨±â
  • intercostal real-time scanning
    ´Á°£ ½Ç½Ã°£½ºÄµ
  • inversion time
    ¿ªÀü½Ã°£
  • longitudinal relaxation time
    Á¾ÃàÀ̿Ͻð£
  • mean survival time
    Æò±Õ»ýÁ¸½Ã°£
  • polymerizing time
    ±»´Â½Ã°£, ÁßÇսð£
  • prothrombin time
    ÇÁ·ÎÆ®·Òºó½Ã°£
  • pulmonary circulation time
    Æó¼øÈ¯½Ã°£
  • real time
    ½Ç½Ã°£, Áï½Ã
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EDC Estimated Day of Confinement; Ãâ»ê(ºÐ¸¸) ¿¹Á¤ÀÏ
CDC calculated date of confinement; cancer diagnosis center; capillary diffusion capacity; cell division...
conf conference; confined; confinement; confusion
EDC emergency decontamination center; end-diastolic count; estimated date of conception; expected date o...
EDOC estimated date of confinement
KMLE ÀÚµ¿ÃßÃâ ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 2
AME Apparent metabolisable energy
BEE Basal Energy Expenditure
CDE Colour Doppler Energy
DEE Daily energy expenditure
DER Defibrillation energy requirements
°æºÏ´ë Ä¡°ú´ëÇÐ ±¸°­³»°ú ±³½Ç »çÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 2
  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • energy quotient
    ¿¡³ÊÁö À²
  • energy source
    ¿¡³ÊÁö ¿ø
  • high energy phosphate bond
    °í¿¡³ÊÁö ÀÎ»ê °áÇÕ
    ÀÎ»ê °áÇÕ ÇüŰ¡ ³ôÀº ¿¡³ÊÁö·Î ÀÌ·ç¾îÁø »óÅÂ. ÀÌ °áÇÕÀº ¾Æ³×³ë½Å »ïÀλê. Æ÷½ºÆ÷Å©·¹¾ÆÆ¾. ´ç ´ë»çÀÇ Áß°£»ê¹° µî¿¡ Á¸ÀçÇÑ´Ù.
  • high energy radiation
    °í¿¡³ÊÁö ¹æ»ç¼±
    ³ôÀº ¿¡³ÊÁöÀÇ ¹æ»ç¼±À» ¹æÃâÇÏ´Â °Í.
  • high-energy phosphate bond
    °í¿¡³ÊÁö ÀÎ»ê °áÇÕ
    ÀÌ °áÇÕÀº ¾Æµ¥³ë½Å »ïÀλê, Æ÷½ºÆ÷Å©·¹¾ÆÆ¾, ´ç´ë»çÀÇ Áß°£»ê¹° µî¿¡ Á¸ÀçÇÑ´Ù.
  • high-energy sulfer bond
    °í¿¡³ÊÁö À¯È² °áÇÕ
    ÀÌ °áÇÕ¿¡¼­ °¡Àå Áß¿äÇÑ °ÍÀº ¾Æ¼¼Æ¿ CoA¿¡ Á¸ÀçÇÏ´Â °ÍÀ¸·Î¼­ Áö¹æ»ê »ýÇÕ¼ºÀÇ ÁÖ¿ä ¿¡³ÊÁö¿øÀÌ µÈ´Ù.
  • lattice energy
    °ÝÀÚ ¿¡³ÊÁö
    »ïÂ÷¿øÀûÀ¸·Î ¹Ýº¹µÇ´Â ¹è¿­ÀÇ °¡Àå ±âº» ´ÜÀ§°¡ ´ÜÀ§Æ÷ÀÌ°í ´ÜÀ§Æ÷ÀÇ ÇÑ ¸éÀÌ °ÝÀÚ »ó¼ö
  • linear energy transfer
    ¼± ¿¡³ÊÁö ºÎ¿©
  • nuclear energy
    ÇÙ ¿¡³ÊÁö
  • potential energy
    À§Ä¡ ¿¡³ÊÁö
  • pulse energy
    ÆÞ½º ¿¡³ÊÁö
  • specific energy of sense
    Ư¼ö °¨°¢ ¿¡³ÊÁö
  • strain energy
    º¯Çü ¿¡³ÊÁö
    ÇÏÁßÀÌ Àç·á¸¦ º¯Çü½ÃŰ´Â ÀÏ.
  • thermal energy
    ¿­ ¿¡³ÊÁö
  • threshold energy
    ¹®ÅÎ ¿¡³ÊÁö, ¿ªÄ¡ ¿¡³ÊÁö
CancerWEB ¿µ¿µ ÀÇÇлçÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 2
radiography, dual-energy scanned projection A method of producing a high-quality scan by digitizing and subtracting the images produced by high- and low-energy X-rays.
(12 Dec 1998)
radiotherapy, high-energy Radiotherapy using high-energy (megavolt or higher) ionizing radiation. Types of radiation include gamma rays, produced by a radioisotope within a teletherapy unit; X-rays, electrons, protons, alpha particles (helium ions) and heavy charged ions, produced by particle acceleration; and neutrons and pi-mesons (pions), produced as secondary particles following bombardment of a target with a primary particle.
(12 Dec 1998)
Parallel Electron Energy Loss Spectroscopy <technique> Electron energy loss spectroscopy analyses the inelastically scattered electrons present in the beam after it has been transmitted through the sample. An electron energy loss spectrum typically consists of a monatomic decreasing background on which are superimposed a number of peaks. Each peak is characteristic of the scattering process that has occurred in the sample. The peaks can be used to obtain information about the chemical composition and electronic structure of the sample. Electron energy loss spectra are acquired typically in a magnetic sector spectrometer located under the camera chamber of the transmission electron microscope. Spatial resolution is typically limited by the minimum probe diameter of the microscope. Electron energy loss spectroscopy tends to be complimentary to EDS in that it can be used to analyse very thin samples of low Z materials.
Acronym: PEELS
(05 Aug 1998)
geothermal energy Energy derived from the natural heat of the Earth contained in hot rocks, hot water, hot brines or steam.
(05 Dec 1998)
mass energy absorption coefficient <physics> The mass energy absorption coefficient, uen/p of a material for uncharged ionising particles is the product of the mass energy transfer coefficient, utr/p and (1 - g) where g is the fraction of the energy of secondary charged particles that is lost to bremsstrahlung in the material.
(16 Dec 1997)
Gibbs energy of activation The Gibbs energy that must be added to that already possessed by a molecule or molecules in order to initiate a reaction.
(05 Mar 2000)
gibbs free energy The total amount of energy which is either used up or released during a chemical reaction. Gibbs free energy (delta G) = (delta H) - t (delta s): where (delta H) is the change in enthalpy, calculated by adding up the amount of energy released or used up to break or form chemical bonds during the reaction, t is the temperature at which the reaction took place, and (delta S) is the change in entropy, or amount of disorder, that occurs in the molecules involved during the reaction.
(09 Oct 1997)
renewable energy resource <ecology> An energy resource replenished continuously or that is replaced after use through natural means. Sustainable energy.
Renewable energy resources include bioenergy, solar energy, wind energy, geothermal power, and hydropower.
(25 Jun 1999)
resonance energy transfer <technique> Transfer of energy from one fluorochrome to another. The emission wavelength of the fluorochrome excited by the incident light must approximately match the excitation wavelength of the second fluorochrome.
If light at the second emission wavelength is detected, it implies that the two fluorochromes were physically within a few nanometres. Used as a technique to probe protein or cell interactions.
(25 Jun 1999)
chemical energy Energy liberated or absorbed by a chemical reaction, e.g., oxidation of carbon, or absorbed in the formation of a chemical compound.
(05 Mar 2000)
conservation of energy The principle that the total amount of energy in a closed system remains always the same, none being lost or created in any chemical or physical process or in the conversion of one kind of energy into another, within that system.
(05 Mar 2000)
conservation of energy resources Planned management, use, and preservation of energy resources.
(12 Dec 1998)
potential energy <chemistry> Energy due to position, it is stored energy which can be used to do work.
(09 Jan 1998)
primary energy <radiobiology> Energy before conversion. For instance, the United States uses about 30,000 megajoules of electricity per capita per year, but electricity is generally obtained by converting other forms of energy (primarily chemical/heat) at an efficiency of around 30%, so the U.S. Consumes 90,000 megajoules of primary energy per capita for electrical use. (Total U.S. Primary energy consumption is 300,000 megajoules per capita.)
(09 Oct 1997)
Helmholtz energy Energy equivalent to the internal energy minus the entropy contribution (TS).
(05 Mar 2000)
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  • ¿µ¹®
    ÇѱÛ
  • energy bush
    (¿¬·á,Àü·ÂÀÌ µÇ´Â)¿¡³ÊÁö¸²
  • energy crisis
    ¿¡³ÊÁö À§±â
  • energy flow
    (»ýŰèÀÇ)¿¡³ÊÁö È帧
  • energy industry
    ¿¡³ÊÁö »ê¾÷(¼®Åº,¼®À¯,Àü±â,°¡½º »ê¾÷ µî)
  • energy park
    (¹Ì)¿¡³ÊÁö ´ÜÁö;¿¡³ÊÁö ÀÚ¿ø °øµ¿ ÀÌ¿ëÁö
  • free energy
    ÀÚÀ¯ ¿¡³ÊÁö
  • kinetic energy
    ¿îµ¿ ¿¡³ÊÁö 
  • mass energy
    Áú·® ¿¡³ÊÁö
  • nuclear energy
    ÇÙ ¿¡³ÊÁö !
  • rest energy
    Á¤Áö¿¡³ÊÁö
  • solar energy
    ÅÂ¾ç ¿¡³ÊÁö !
  • all the time
    ±×µ¿¾È Á×,(¹Ì)¾ðÁ¦³ª
  • any time
    ¾ðÁ¦µçÁö
  • at a time
    Çѹø¿¡,µ¿½Ã¿¡
  • at any time
    ¾ðÁ¦¶óµµ
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    ±¸ºÐ/º¸Çè±Þ¿©
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