| ¿µ¹® | nuclear medicine | ÇÑ±Û | ÇÙÀÇÇÐ |
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| ¼³¸í | ¹æ»ç¼ºÀ» ¶ì´Â ÇÙ¹°ÁúÀ» ÀÌ¿ëÇÏ¿© ÀÇÇп¡ ÀÀ¿ëÇÏ´Â Çй®. ´ë°³ ÀÎü¿¡ Å« ÇØ°¡ ¾ø´Â ¹æ»ç¼±¹°ÁúÀ» »ç¿ëÇϸç, ¹Ý°¨±â°¡ ª¾Æ »ç¿ëÈÄ¿¡µµ Å« ÇØ°¡ ¾ø´Ù. ÀÌ·± ÇÙÀÇÇÐÀû ¹°ÁúÀ» ÀÌ¿ëÇÑ ÇÙÀÇÇÐÀû Áø´ÜÀÇ °¡Àå Å« ÀåÁ¡Àº »ýü³»¿¡¼ ÀϾ´Â ±× ±â°üÀÇ ½ÇÁ¦ÀûÀÎ ±â´ÉÀ» ¾Ë¾Æº¼ ¼ö ÀÖ´Ù´Â µ¥ ÀÖ´Ù. ÈçÈ÷ Á¢ÇÏ´Â X-¼±À» ÀÌ¿ëÇÑ Áø´Ü¹æ¹ýÀº ´ÜÁö ±× ¼ø°£¸¸ÀÇ ¿µ»óÀ» Á¢ÇÏ¿© ½ÇÁ¦·Î º¸ÀÌ´Â ºÎÀ§°¡ ¾ó¸¶³ª ±â´ÉÀ» ¼öÇàÇÏ´ÂÁö ¾Ë ¼ö ¾ø´Â ´ÜÁ¡ÀÌ ÀÖÀ¸³ª, ÇÙÀÇÇп¡¼´Â ½ÇÁ¦ÀûÀÎ ±â´ÉÀÇ Á¤µµ¿¡ µû¶ó ¿µ»óÀÌ ³ª¿À°Ô µÇ¹Ç·Î ±â´ÉÆÇº°¿¡ ¾ÆÁÖ À¯¸®ÇÏ´Ù. ÇÏÁö¸¸, Á¤È®ÇÑ ÆÇº°·ÂÀÌ ÀÖ´Â ¿µ»óÀ» ¾ò±â¿¡´Â ºÎÁ·ÇÏ´Ù. ¶ÇÇÑ ÇÙÀÇÇÐÀº Áø´Ü¿ÜÀÇ Ä¡·á¿¡µµ »ç¿ëµÇ´Âµ¥, ¿¹¸¦ µé¾î °©»ó»ùÁ¾¾çÀÇ °æ¿ì ¿©·¯ °÷¿¡ ÀÌ¹Ì ÀüÀ̰¡ µÇ¾î ÀÖÀ» °æ¿ì ¹æ»ç¼±ÇÙÁ¾À» ÀÌ¿ëÇÏ¿© ´Ù¸¥ °÷¿¡ Å« ºÎÀÛ¿ë¾øÀÌ Ä¡·á°¡ °¡´ÉÇÏ´Ù. |
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| ¿µ¹® | nuclear magnetic resonance(NMR) | ÇÑ±Û | ÇÙÀÚ±â°ø¸í |
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| ¼³¸í | ´Ù¸¥ ¸»·Î MRI=Magnetic Resonance Imaging ÀÚ±â°ø¸í¿µ»óÀ̶ó°íµµ ÇÑ´Ù. ÀÎüÀÇ Àå±â³ª, º´ÀûÀÎ ¸ð¾ç, Á¾¾çÀÇ À§Ä¡, ¸²ÇÁÀýÀÇ ºñ´ë µî¿¡ ´ëÇÑ Áø´ÜÀ» ³»¸®±â À§ÇØ ½ÃÇàÇÏ´Â ¹æ»ç¼±ÇÐÀûÀÎ °Ë»ç¹æ¹ýÀÌ´Ù. ÇöÀç ¸¹ÀÌ ¾²À̰í ÀÖ´Â ÄÄÇ»ÅÍ´ÜÃþÃÔ¿µ(CT=computerized tomography)°ú´Â ´Ù¸¥ ¹æ¹ýÀ¸·Î ½ÃÇàÇϸç, ±× ÇØ»óµµ°¡ ÄÄÇ»ÅÍ´ÜÃþÃÔ¿µº¸´Ù´Â ¶Ù¾î³ª ºñ·Ï °í°¡À̱ä ÇÏÁö¸¸, ¸¹ÀÌ ¾²À̰í ÀÖ´Ù. ¶ÇÇÑ ÀÎü¿¡ ¹«ÇØÇϰí, ¿©·¯ °¡Áö ¸é(plane)¿¡¼ »ç¶÷À» ´ÜÃþ½ÃÄÑ º¼ ¼ö ÀÖ´Ù. ´ÜÁ¡Àº ½ÉÀå¹Úµ¿±â¸¦ ¼³Ä¡ÇÑ »ç¶÷À̳ª, ÁÖÀ§¿¡ ÀÚÀåÀ» ¶ì´Â ¹°Ã¼¸¦ ¸ö¿¡ Áö´Ï°í ÀÖ´Â ÁßȯÀÚ µî¿¡¼´Â ÀÌ¿ëÇÒ ¼ö ¾ø°í, º¹ºÎÀå±â¿¡ ´ëÇÑ Áø´Ü¿¡´Â ÄÄÇ»ÅÍ´ÜÃþÃÔ¿µº¸´Ù ¶³¾îÁö´Â °ÍÀ¸·Î µÇ¾î ÀÖ´Ù. |
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| NM | near-miss; neomycin; neuromedin; neuromuscular; neutrophil migration; nictitating membrane; nitrogen... |
|---|---|
| DEA | Dual Energy Absorptiometry |
| PEM | Protein-Energy Malnutrition = PCM; Protein Calorie Malnutrition |
| RMR | Resting Metabolic Rate = Resting Energy Expenditure |
| ADE | acute disseminated encephalitis; adverse drug event; antibody-dependent enhancement; apparent digest... |
| nuclear VV | nuclear volume |
|---|---|
| 24 -EE | 24 h energy expenditure |
| 24hEE | 24 h energy expenditure |
| AEE | Activity energy expenditure |
| AEC | Adenylate energy charge |
| nuclear energy | Energy released by nuclear fission or nuclear fusion. (12 Dec 1998) |
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| nuclear binding energy | <physics> The difference between the total energy (= mc^2) of the bound nucleus, and the energies of the individual constituent particles (= sum of masses c^2). The nuclear binding energy per nucleon is a maximum for iron. Fusion releases energy because light nuclei are less tightly bound than medium-weight nuclei, and thus energy is liberated when they become more tightly bound after fusing. Fission releases energy for the same reason - heavy nuclei are also less tightly bound than medium-weight nuclei, and energy is liberated when heavy nuclei split into lighter nuclei. (09 Oct 1997) |
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| activation energy | <chemistry> The amount of energy (expressed in joules) that is needed to convert all the molecules in one mole of a reacting substance from a ground state to the transition state. (06 May 1997) |
| binding energy | <chemistry, radiobiology> The binding energy of a nucleus is the minimum energy required to dissociate it into its component neutrons and protons. Neutron or proton binding energies are those required to remove a neutron or proton, respectively, from a nucleus. Electron binding energy is that required to remove an electron from an atom or a molecule. (16 Dec 1997) |
| bioelectric energy sources | Implantable devices which convert biological energy (chemical energy of the metabolism of continuously regenerating body fluids or mechanical energy of periodic movements) to electrical energy. The sources include biogalvanic cells, biofuel cells, and ionic concentration cells. (12 Dec 1998) |
| biomass energy | See Bioenergy. (05 Dec 1998) |
| bond dissociation energy | This is the energy needed to break the bonds between two linked atoms. (09 Oct 1997) |
| bond energy | The energy needed to break a molecular bond. (09 Oct 1997) |
| radiant energy | Energy contained in light rays or any other form of radiation. (05 Mar 2000) |
| 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) |
Synonyms : Energy, Atomic, Energy, Nuclear
| nuclear energy |
atomic energy: the energy released by a nuclear reaction
Ãâó: wordnet.princeton.edu/perl/webwn
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| nuclear energy |
Nuclear power currently involves converting the nuclear energy of fissable uranium into thermal energy by fission, from thermal to kinetic energy by means of a steam turbine and finally to electron energy by a generator. Nuclear reactors currently use nuclear power to provide about 17% of the world's electricity and 7% of global energy. ...
Ãâó: en.wikipedia.org/wiki/Nuclear_Energy
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| nuclear energy |
Nuclear energy is energy released from the nucleus of an atom by the conversion of its mass to energy consistent with Albert Einstien's formula E=mc?in which E = Energy, m = Mass and c = the Constant Speed of Light. Nuclear energy is released by one of three nuclear reactions:*Fission, the breaking of the binding forces of an atom's nucleus.*Fusion, the fusing together of atomic particles.*Decay, which is the natural and much slower form of Fission. ...
Ãâó: en.wikipedia.org/wiki/Nuclear_energy
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| nuclear energy |
The heat energy produced by the process of nuclear reaction (fission or fusion) within a nuclear reactor or by radioactive decay.
Ãâó: www.epa.gov/narel/radnet/glossary.html
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| nuclear energy |
Heat energy produced by the process of nuclear fission within a nuclear reactor. The coolant that removes heat from the reactor core is normally used to boil water. The resultant steam drives turbines that rotate electrical generators.
Ãâó: www.pbs.org/wgbh/pages/frontline/shows/reaction/et...
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| nuclear energy | the energy released by a nuclear reaction |
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