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"alveolar equation"¿¡ ´ëÇÑ °Ë»ö °á°úÀÔ´Ï´Ù. °Ë»ö °á°ú º¸´Â µµÁß¿¡ Tab ۸¦ ´©¸£½Ã¸é °Ë»ö âÀÌ ¼±Åõ˴ϴÙ.
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  • ¿µ¹®
    ÇѱÛ
  • alveolar clearance
    ÇãÆÄ²Ê¸®Ã»¼Ò, ÆóÆ÷û¼Ò
  • alveolar cleft
    ÀÌÆ²Æ´»õ, Ä¡Á¶¿­
  • alveolar dead space
    Á×Àº²Ê¸®°ø°£, Á×ÀºÆóÆ÷°ø°£, ÆóÆ÷»ç°­
  • alveolar dilution factor
    ÆóÆ÷Èñ¼®ÀÎÀÚ, ÇãÆÄ²Ê¸®Èñ¼®ÀÎÀÚ
  • alveolar duct
    ÆóÆ÷°ü, ÇãÆÄ²Ê¸®°ü
  • alveolar fiber
    ÀÌÆ²¼¶À¯
  • alveolar fistula
    ÀÌÆ²»û±æ, Ä¡Á¶·ç
  • alveolar foramen
    ÀÌÆ²±¸¸Û
  • alveolar fracture
    ÀÌÆ²°ñÀý, Ä¡Á¶°ñÀý
  • alveolar gas
    ÆóÆ÷°¡½º, ²Ê¸®±âü
  • alveolar gas exchange
    ÆóÆ÷°¡½º±³È¯, ÇãÆÄ²Ê¸®°¡½º±³È¯
  • alveolar gland
    ²Ê¸®»ù, Æ÷»ó¼±
  • alveolar hydatid disease
    ²Ê¸®ÇüÆ÷Ãæº´, ´Ù¹æÆ÷Ãæº´
  • alveolar hyperostosis
    ÀÌÆ²»À°ú´ÙÁõ, Ä¡Á¶°ñ°ú°ñÁõ
  • alveolar hypoventilation
    ÆóÆ÷Àúȯ±â, ÇãÆÄ²Ê¸®Àúȯ±â
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  • ¿µ¹®
    ÇѱÛ
  • alveolar canal
    ÀÌÆ²°ü
  • alveolar clearance
    ÆóÆ÷û¼Ò
  • alveolar cleft
    ÀÌÆ²Æ´»õ, Ä¡Á¶¿­
  • alveolar duct
    ÇãÆÄ²Ê¸®°ü, ÆóÆ÷°ü
  • alveolar fiber
    ÀÌÆ²¼¶À¯
  • alveolar fistula
    ÀÌÆ²»û±æ, Ä¡Á¶·ç
  • alveolar foramen
    ÀÌÆ²±¸¸Û
  • alveolar fracture
    ÀÌÆ²°ñÀý, Ä¡Á¶°ñÀý
  • alveolar gas
    ÆóÆ÷±âü, ²Ê¸®±âü
  • alveolar gland
    ²Ê¸®»ù
  • alveolar hyperostosis
    ÀÌÆ²»À°ú´ÙÁõ, Ä¡Á¶°ñºñ´ëÁõ
  • alveolar hypoventilation
    ÆóÆ÷Àúȯ±â, ÇãÆÄ²Ê¸®Àúȯ±â
  • alveolar hypoxia
    ÆóÆ÷Àú»ê¼ÒÁõ, ²Ê¸®Àú»ê¼ÒÁõ
  • alveolar macrophage
    ²Ê¸®Å«Æ÷½Ä¼¼Æ÷, ÆóÆ÷´ë½Ä¼¼Æ÷
  • alveolar margin
    ÀÌÆ²¸ð¼­¸®
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  • ¿µ¹®
    ÇѱÛ
  • regression equation
    ȸ±Í¹æÁ¤½Ä(Ì·Ë´ ËÑËøËà).
  • EAV=£¾effective alveolar ventilation
    À¯È¿ÆóÆ÷ȯ±â(·®).
  • MAC-BAR(minimum alveolar concentration-blockade of autonomic response)
    ÀÚÀ²½Å°æ¾ïÁ¦ ÃÖ¼ÒÆóÆ÷³»³óµµ
  • PAO2 => alveolar oxygen pressure
    ÆóÆ÷(øËøà)»ê¼Ò¾Ð
  • VA => alveolar ventilation
    ÆóÆ÷ȯ±â
  • alveolar CO2 tension
    ÆóÆ÷ ÀÌ»êȭź¼Ò ºÐ¾Ð.
  • alveolar O2 pressure gradient
    ÆóÆ÷³» »ê¼Ò ºÐ¾ÐÂ÷.
  • alveolar abscess
    Ä¡Á¶³ó¾ç(¡­ÒÛåË).
  • alveolar abscess
    Ä¡Á¶³ó¾ç(öÍðËÒÛåË)
  • alveolar adenoma
    Æ÷»ó¼±Á¾(øàßÒàÍðþ).
  • alveolar adventitious dentin
    ºÀ¼Ò»ó ¿ì¼º »ó¾ÆÁú(ÜðáµßÒéÏà÷ßÚä³òõ).
  • alveolar anoxia
    ÆóÆ÷¼º ¹«»ê¼Ò(Áõ)(øËøààõÙíß«áÈñø).
  • alveolar arch
    ÀÌÆ²È°
  • alveolar arterial oxygen gradient
    ÆóÆ÷µ¿¸Æ°£ »ê¼ÒºÐ¾ÐÂ÷.
  • alveolar asthma
    ÆóÆ÷¼º õ½Ä(øËøààõô·ãÓ).
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  • ¿µ¹®
    ÇѱÛ
  • fractionation equation
    ºÐÇÒ°ø½Ä
  • indefinite equation
    ºÎÁ¤¹æÁ¤½Ä.
  • ionic equation
    À̿½Ä(¡­ãÒ).
  • linear equation
    ÀÏÂ÷¹æÁ¤½Ä(ìéó­Û°ïïãÒ).
  • normal equation
    Á¤±Ô¹æÁ¤½Ä(ËøË»ËÑËøËà).
  • regression equation
    ȸ±Í¹æÁ¤½Ä(Ì·Ë´ ËÑËøËà).
  • shunt equation
    ¼ÇÆ®¹æÁ¤½Ä.
  • transcendental equation
    ÃÊ¿ù¹æÁ¤½Ä (¡­Û°ïïãÒ).
  • trigonometric equation
    »ï°¢¹æÁ¤½Ä (¡­Û°ïïãÒ).
  • wave equation
    ÆÄµ¿¹æÁ¤½Ä(÷îÔÑÛ°ïïãÒ).
  • alveolar CO2 tension
    ÆóÆ÷ ÀÌ»êȭź¼Ò ºÐ¾Ð.
  • alveolar O2 pressure gradient
    ÆóÆ÷³» »ê¼Ò ºÐ¾ÐÂ÷.
  • alveolar abscess
    Ä¡Á¶³ó¾ç(¡­ÒÛåË).
  • alveolar abscess
    Ä¡Á¶³ó¾ç(öÍðËÒÛåË)
  • alveolar adenoma
    Æ÷»ó¼±Á¾(øàßÒàÍðþ).
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  • ¿µ¹®
    ÇѱÛ
  • Alveolar foramina
    ÀÌÆ²±¸¸Û
    [¿¾ ¿ë¾î] Ä¡Á¶°ø
  • Alveolar process
    ÀÌÆ²µ¹±â
    [¿¾ ¿ë¾î] Ä¡Á¶µ¹±â
  • Alveolar part
    ÀÌÆ²ºÎºÐ
    [¿¾ ¿ë¾î] Ä¡Á¶ºÎ
  • Alveolar bone
    ÀÌÆ²»À
    [¿¾ ¿ë¾î] Ä¡Á¶°ñ
  • Alveolar periosteum
    ÀÌÆ²»À(¹Ù±ù)¸·
    [¿¾ ¿ë¾î] Ä¡Á¶¸·
  • Alveolar yokes
    ÀÌÆ²À¶±â
    [¿¾ ¿ë¾î] Ä¡Á¶À¶±â
  • Alveolar arch
    ÀÌÆ²È°
    [¿¾ ¿ë¾î] Ä¡Á¶±Ã
  • Lactiferous alveolar duct
    Á¥»ù²Ê¸®°ü
    [¿¾ ¿ë¾î] À¯Æ÷»ó°ü
  • Middle superior alveolar branch
    Áß°£À§ÀÌÆ²°¡Áö
    [¿¾ ¿ë¾î] Áß»óÄ¡Á¶Áö
  • Alveolar duct
    ÇãÆÄ²Ê¸®°ü
    [¿¾ ¿ë¾î] ÆóÆ÷°ü
  • Alveolar ducts
    ÇãÆÄ²Ê¸®°ü
    [¿¾ ¿ë¾î] ÆäÆ÷°ü
  • Alveolar atrium
    ÇãÆÄ²Ê¸®¹æ
    [¿¾ ¿ë¾î] ÆóÆ÷¹æ
  • Pulmonary alveolar tree
    ÇãÆÄ²Ê¸®¼ÛÀÌ
    [¿¾ ¿ë¾î] ÆóÆ÷
  • Alveolar saccule
    ÇãÆÄ²Ê¸®ÁÖ¸Ó´Ï
    [¿¾ ¿ë¾î] ÆóÆ÷¼Ò³¶
  • Alveolar saccules
    ÇãÆÄ²Ê¸®ÁÖ¸Ó´Ï
    [¿¾ ¿ë¾î] ÆóÆ÷³¶
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  • ¿µ¹®
    ÇѱÛ
  • kinetic equation
    ¹ÝÀÀ¼Óµµ ¹æÁ¤½Ä(ÚãëëáÜÓøÛ°ïïãÒ)
  • Lamm equation
    ¶÷¹æÁ¤½Ä(Û°ïïãÒ)
  • mass balance equation
    Áú·®±ÕÇü¹æÁ¤½Ä(òõÕáгû¬Û°ïïãÒ)
  • Michaelis-Menten-Briggs-Haldane equation
    ¹ÌŰ¿¤¸®½º-¸àÅÙ-ºê¸®±×-ÇÒÅ×ÀÎ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Michaelis-Menten equation
    ¹ÌŰ¿¤¸®½º-¸àÅÙ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Nernst equation
    ³×¸¥½ºÆ® ¹æÁ¤½Ä(Û°ïïãÒ)
  • phenomenological equation
    Çö»ó ¹æÁ¤½Ä(úÞßÚÛ°ïïãÒ)
  • Simha equation
    ½ÉÇÏ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Staudinger equation
    ½ºÅ¸¿ìµù°Å ¹æÁ¤½Ä(Û°ïïãÒ)
  • Stern-Volmer equation
    ½ºÅÏ- º¼¸Ó ¹æÁ¤½Ä(Û°ïïãÒ)
  • Stokes-Einstein equation
    ½ºÅ彺- ¾ÆÀνºÅ¸ÀÎ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Svedberg equation
    ½ºº£µåº£¸® ¹æÁ¤½Ä(Û°ïïãÒ)
  • van't Hoff equation
    ¹ÝÆ® È£ÇÁ ¹æÁ¤½Ä (Û°ïïãÒ)
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AM Academic Medicine [journal]; actomyosin; acute myelofibrosis; adult male; adult monocyte; aerospace ...
PAM pancreatic acinar mass; penicillin aluminum monostearate; peptidylglycine alpha-amidating monooxygen...
AD   1) Alveolar Duct
  2) Autosomal Dominant
  3) Auris Dextra; Ri...
AS   1) Aortic Stenosis
    ; LV ¿Í Aorta »çÀÌÀÇ ¾Ð·ÂÂ÷
   ...
BAL   1) Brocho-Alveolar Lavage
  2) British Anti-Lewisite
   &...
KMLE ÀÚµ¿ÃßÃâ ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 2
ABL Alveolar bone loss
AE Alveolar echinococcosis
AEC Alveolar epithelial cell
AH Alveolar haemorrhage
AHD Alveolar hydatid disease
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  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • alveolar arterial oxygen gradient
    ÆóÆ÷µ¿¸Æ°£ »ê¼Ò ºÐ¾ÐÂ÷
  • alveolar atrophy
    Ä¡Á¶ À§Ãà
  • alveolar base
    Ä¡Á¶ ±âÀú
  • alveolar bone
    Ä¡Á¶°ñ
    Ä¡±ÙÀÌ À§Ä¡ÇÏ´Â »ó¾Ç°ú ÇϾÇÀÇ °ñ ºÎºÐ.
  • alveolar bone graft
    Ä¡Á¶°ñ À̽Ä, Ä¡Á¶°ñ À̽ļú
  • alveolar border
    Ä¡Á¶ ¿¬
  • alveolar canal
    Ä¡Á¶ °ü
  • alveolar cell carcinoma
    ÆóÆ÷ ¼¼Æ÷ ¾ÏÁ¾
  • alveolar crest
    Ä¡Á¶Á¤
  • alveolar cyst
    Ä¡Á¶ ³¶Æ÷
  • alveolar dilution factor
    ÆóÆ÷ Èñ¼® ÀÎÀÚ
  • alveolar flooding
    ÆóÆ÷ È«¼ö
  • alveolar forcep
    Ä¡Á¶ °âÀÚ
  • alveolar hyperostosis
    Ä¡Á¶°ñ ºñ´ë, Ä¡Á¶°ñ ºñ´ëÁõ
  • alveolar hypoventilation syndrome
    ÆóÆ÷ Àúȯ±â ÁõÈıº
CancerWEB ¿µ¿µ ÀÇÇлçÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 2
Michaelis-Menten equation <chemistry> Equation derived from a simple kinetic model for a single-substrate non-cooperative enzyme-catalyzed reaction that successfully accounts for the hyperbolic adsorption isotherm) relationship between substrate concentration and reaction rate.
V = Vmax x S/(S + Km), where V is the initial velocity of the reaction, Km is the Michaelis constant, Vmax is the maximum rate approached by very high substrate concentrations and S is the initial substrate concentration.
Similar equations can be derived for conditions in which the product is present and for multisubstrate enzymes.
Synonym: Victor-Michaelis-Menten equation.
(12 Jul 2000)
constant field equation An equation derived to predict membrane potentials in terms of the membrane's permeability to ions and their concentrations on either side.
Synonym: constant field equation, Goldman-Hodgkin-Katz equation, GHK equation.
(05 Mar 2000)
Henderson-Hasselbalch equation <chemistry> The Henderson-Hasselbalch equation is the equation:
PH = pK + log ([A-]/[HA])
Where pH is the acidity or alkalinity of the buffer solution, pK is the negative logarithm of the equilibrium constant (Kd) for the ionisation of the acid form (A-) of the compound used to buffer the solution for the reaction HA = H+ +A-, [A-] is the molar concentration of the ionised form of the buffer compound, and [HA] is the molar concentration of the nonionised form of the buffer compound.
(09 Oct 1997)
Hill's equation The equation,y(1-y) = [S]n/Kd, where y is the fractional degree of saturation, [S] is the binding ligand concentration, n is the Hill coefficient, and Kd is the dissociation constant for the ligand. The Hill coefficient is a measure of the cooperativity of the protein; the larger the value, the higher the cooperativity. This coefficient cannot be higher than the number of binding sites. For the oxygen binding curve of haemoglobin, an association constant, Ka, is used and the equation becomes y/(1-y) = Ka[S]n. For human blood, n equals 2.5.
Compare: Hill plot.
(05 Mar 2000)
Hufner's equation <physiology> An equation expressing the relationship between myoglobin dissociation and oxygen partial pressure: ([MBO2]/[Mb]) = (K x pO2).
(05 Mar 2000)
Nernst equation <physics> A basic equation of biophysics that describes the relationship between the equilibrium potential difference across a semipermeable membrane and the equilibrium distribution of the ionic permeant species.
It is described by: E = (RT/zF).ln[C1/C2
Where E is the potential on side 2 relative to side 1 in volts), R is the gas constant (8.314 J Kexp 1 molexp 1), T is the absolute temperature, z is the charge on the permeant ion, f is the Faraday constant (96500 C molexp 1) and C1 and C2 are the concentrations (more correctly activities) of the ions on sides 1 and 2 of the membrane.
It can be seen that this equation is a solution of the more general equation of electrochemical potential, for the special case of equilibrium. The equation described the voltage generated by ion selective electrodes, like the laboratory pH electrode and approximates the behaviour of the resting plasma membrane (see resting potential).
(13 Nov 1997)
Nernst's equation The equation relating the equilibrium potential of electrodes to ion concentrations; the equation relating the electrical potential and concentration gradient of an ion across a permeable membrane at equilibrium: E = [RT / nF
Origin: Ln (C1/C 2)], where E = potential, R = absolute gas constant, T = absolute temperature, n = valence, F = the Faraday, ln = the natural logarithm, and C1 and C2 are the ion concentrations on the two sides; in nonideal solutions, concentration should be replaced by activity.
See: Nernst's theory, activity.
(05 Mar 2000)
Svedberg equation See: sedimentation constant.
(05 Mar 2000)
difference equation <epidemiology> The mathematical formulation corresponding to a discrete time model.
(05 Dec 1998)
differential equation <epidemiology> The mathematical formulation corresponding to a continuous model; an equation involving derivatives.
(05 Dec 1998)
Einthoven's equation In the electrocardiogram the potential of any wave or complex in lead II is equal to the sum of the potentials of leads I and III.
Synonym: Einthoven's equation.
(05 Mar 2000)
equation 1. A making equal; equal division; equality; equilibrium. "Again the golden day resumed its right, And ruled in just equation with the night." (Rowe)
2. <mathematics> An expression of the condition of equality between two algebraic quantities or sets of quantities, the sign = being placed between them; as, a binomial equation; a quadratic equation; an algebraic equation; a transcendental equation; an exponential equation; a logarithmic equation; a differential equation, etc.
3. <astronomy> A quantity to be applied in computing the mean place or other element of a celestial body; that is, any one of the several quantities to be added to, or taken from, its position as calculated on the hypothesis of a mean uniform motion, in order to find its true position as resulting from its actual and unequal motion.
4. Equation box, or Equational box, a system of differential gearing used in spinning machines for regulating the twist of the yarn. It resembles gearing used in equation clocks for showing apparent time.
5. <astronomy> Equation of the center, the difference between the place of a planet as supposed to move uniformly in a circle, and its place as moving in an ellipse.
Origin: L. Aequatio an equalizing: cf. F. Equation equation. See Equate.
Source: Websters Dictionary
(01 Mar 1998)
Fokker-Planck equation <radiobiology> An equation that describes the time rate of change of a particle's velocity as a result of small-angle collisional deflections. Applicable when the cumulative effect of many small-angle collisions is greater than the effect of rarer large-angle deflections.
(09 Oct 1997)
Lineweaver-Burk equation A rearrangement of the Michaelis-Menten equation, 1/v = 1/Vmax + (Km/Vmax)(1/[S]).
Compare: double-reciprocal plot.
(05 Mar 2000)
adenocarcinoma, bronchiolo-alveolar A carcinoma thought to be derived from epithelium of terminal bronchioles, in which the neoplastic tissue extends along the alveolar walls and grows in small masses within the alveoli. Involvement may be uniformly diffuse and massive, or nodular, or lobular. The neoplastic cells are cuboidal or columnar and form papillary structures. Mucin may be demonstrated in some of the cells and in the material in the alveoli, which also includes denuded cells. Metastases in regional lymph nodes, and in even more distant sites, are known to occur, but are infrequent.
(12 Dec 1998)
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