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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.
´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • equation
    ¹æÁ¤½Ä
  • equation of regression
    ȸ±Í¹æÁ¤½Ä
  • Henderson-Hasselbalch equation
    Çî´õ½¼-Çϼ¿¹ßÅ©¹æÁ¤½Ä
  • alveolar
    1. ÇãÆÄ²Ê¸®-, ÆóÆ÷- 2. ÀÌÆ²-, Ä¡Á¶-
  • alveolar abscess
    ÀÌÆ²°í¸§Áý, Ä¡Á¶³ó¾ç
  • alveolar adenoma
    ²Ê¸®»ùÁ¾
  • alveolar arch
    ÀÌÆ²È°, Ä¡Á¶±Ã
  • alveolar artery
    ÀÌÆ²µ¿¸Æ, Ä¡Á¶µ¿¸Æ
  • alveolar atrium
    ÇãÆÄ²Ê¸®¹æ, ÆóÆ÷¹æ
  • alveolar atrophy
    ÀÌÆ²À§Ãà, Ä¡Á¶À§Ãà
  • alveolar base
    ÀÌÆ²¹Ù´Ú, Ä¡Á¶±âÀú
  • alveolar bone
    ÀÌÆ²»À, Ä¡Á¶°ñ
  • alveolar bone graft
    ÀÌÆ²»ÀÀ̽Ä, Ä¡Á¶°ñÀ̽Ä
  • alveolar bud
    ²Ê¸®½Ï
  • alveolar canal
    ÀÌÆ²°ü, Ä¡Á¶°ü
´ëÇÑÀÇÇù Çʼö ÀÇÇпë¾îÁý »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 10 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • equation
    ¹æÁ¤½Ä
  • alveolar bone
    ÀÌÆ²»À
  • alveolar cleft
    ÀÌÆ²Æ´»õ, Ä¡Á¶¿­
  • alveolar duct
    ÆóÆ÷°ü, ÇãÆÄ²Ê¸®°ü
  • alveolar hypoventilation
    ÆóÆ÷Àúȯ±â, ÇãÆÄ²Ê¸®Àúȯ±â
  • alveolar macrophage
    ²Ê¸®Å«Æ÷½Ä¼¼Æ÷, ÆóÆ÷´ë½Ä¼¼Æ÷
  • alveolar ventilation rate
    ÇãÆÄ²Ê¸®È¯±âÀ², ÆóÆ÷ȯ±âºñ
  • alveolar structure
    ²Ê¸®±¸Á¶, ÆóÆ÷±¸Á¶
  • alveolar saccule
    ÆóÆ÷ÁÖ¸Ó´Ï, ÇãÆÄ²Ê¸®ÁÖ¸Ó´Ï
  • alveolar ventilation
    ÆóÆ÷ȯ±â, ÇãÆÄ²Ê¸®È¯±â
¿¾ ´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • allometric equation
    »ó´ë¼ºÀ广Á¤½Ä
  • chord conductance equation
    Æò±ÕÀüµµ¹æÁ¤½Ä
  • constant field equation
    Á¤ÀüÀ广Á¤½Ä
  • diffusion equation
    È®»êµî½Ä
  • equation
    ¹æÁ¤½Ä
  • equation of regression
    ȸ±Í¹æÁ¤½Ä
  • fractionation equation
    ºÐÇÒµî½Ä
  • indefinite equation
    ºÎÁ¤¹æÁ¤½Ä
  • ionic equation
    À̿½Ä
  • linear equation
    ÀÏÂ÷¹æÁ¤½Ä
  • wave equation
    ÆÄµ¿¹æÁ¤½Ä
  • alveolar
    ²Ê¸®-, ÀÌÆ²-, Ä¡Á¶-
  • alveolar base
    ÀÌÆ²¹Ù´Ú, Ä¡Á¶±âÀú
  • alveolar bone
    ÀÌÆ²»À
  • alveolar bud
    ²Ê¸®½Ï
¿¾ ´ëÇÑÀÇÇù 2 ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar equation
    ÆóÆ÷¹æÁ¤½Ä.
¿¾ ´ëÇÑÀÇÇù 2 ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar gas equation
    ÆóÆ÷±âü¹æÁ¤½Ä
  • alveolar gas equation
    ÆóÆ÷°¡½º¹æÁ¤½Ä.
  • Bloch equation Bloch
    µî½Ä
  • Fick equation
    ÇȹæÁ¤½Ä
  • Goldman constant-field equation
    °ñµå¸¸ Á¤Àü·ù(ïÒï³×µ) ½Ä
  • Goldman-Hogkin-Katz equation
    °ñµå¸¸-È£Ã÷Ų-Ä«Ã÷ ½Ä(ãÕ)
  • Hardy-Weinberg equation
    Çϵð-¿ÍÀιö±× ¹æÁ¤½Ä
  • Henderson Hasselbach equation
    Çî´õ½¼-Çϼ¿¹ÙÇϹæÁ¤½Ä.
  • Henderson-Hasselbalch equation
    Çî´õ½¼-Çϼ¿¹ÙÇÏ ¹æÁ¤½Ä
  • Larmor equation
    ¶ó¸ð (Larmor) µî½Ä(¹æÁ¤½Ä)
  • Michaelis-Menten equation
    ¹ÌÇÏ¿¤¸®½º-¸àÅÙ ½Ä
  • Nernst equation
    ³×¸¥½ºÆ®¹æÁ¤½Ä
  • Rayleigh equation
    ·¹ÀÏ·¹À̵î½Ä
  • fractionation equation
    ºÐÇÒ°ø½Ä
  • indefinite equation
    ºÎÁ¤¹æÁ¤½Ä.
¿¾ ´ëÇÑÀÇÇù 3 ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar equation
    ÆóÆ÷¹æÁ¤½Ä.
¿¾ ´ëÇÑÀÇÇù 3 ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar gas equation
    ÆóÆ÷±âü¹æÁ¤½Ä
  • alveolar gas equation
    ÆóÆ÷°¡½º¹æÁ¤½Ä.
  • allometric equation
    ÀÌ»óÁøÈ­¹æÁ¤½Ä(ì¶ßÈòäûùÛ°ïïãÒ), »ó´ë¼ºÀ广Á¤½Ä.
  • breast penis equation
    À¯¹æÀ½°æ µ¿ÀÏÈ­
  • chord conductance equation
    Æò±Õ Àüµµ ¹æÁ¤½Ä(øÁгîîÓôÛ°ïïãÒ)
  • constant field equation
    Á¤ÀüÀå(ïÎï³íÞ)¹æÁ¤½Ä(Û°ïïãÒ)
  • diffusion equation
    È®»ê µî½Ä
  • equation
    ¹æÁ¤½Ä(ËÑËøËà).
  • equation
    ¹æÁ¤½Ä(Û°ïïãÒ).
  • equation of compatibility
    ¾ç¸³Á¶°Ç(ËâËö̡˧).
  • equation of continuity
    ¿¬¼Ó¹æÁ¤½Ä.
  • equation of motion
    ¿îµ¿¹æÁ¤½Ä.
  • equation of regression
    ȸ±Í½Ä(Ì·Ë´Ëà).
  • equation of state
    »óŹæÁ¤½Ä.
  • exponential equation
    Áö¼ö¹æÁ¤½Ä.
´ëÇÑÇØºÎÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • Alveolar duct
    ²Ê¸®°ü
    [¿¾ ¿ë¾î] ÆóÆ÷°ü
  • Alveolar gland
    ²Ê¸®»ù
    [¿¾ ¿ë¾î] Æ÷»ó¼±
  • Alveolar period
    ²Ê¸®½Ã±â
    [¿¾ ¿ë¾î] ÆóÆ÷±â
  • Alveolar bud
    ²Ê¸®½Ï
    [¿¾ ¿ë¾î] ÆóÆ÷·Ú
  • Alveolar terminal portion
    ²Ê¸®Á¾¸»ºÎÀ§
    [¿¾ ¿ë¾î] Æ÷»óÁ¾¸»ºÎ
  • Alveolar sac
    ²Ê¸®ÁÖ¸Ó´Ï
    [¿¾ ¿ë¾î] ÆóÆ÷³¶
  • Tubulo-alveolar gland
    ´ë·Õ²Ê¸®»ù
    [¿¾ ¿ë¾î] °üÆ÷»ó¼±
  • Posterior superior alveolar branches
    µÚÀ§ÀÌÆ²°¡Áö
    [¿¾ ¿ë¾î] ÈÄ»óÄ¡Á¶Áö
  • Posterior superior alveolar artery
    µÚÀ§ÀÌÆ²µ¿¸Æ
    [¿¾ ¿ë¾î] ÈÄ»óÄ¡Á¶µ¿¸Æ
  • Inferior alveolar artery
    ¾Æ·¡ÀÌÆ²µ¿¸Æ
    [¿¾ ¿ë¾î] ÇÏÄ¡Á¶µ¿¸Æ
  • Inferior alveolar nerve
    ¾Æ·¡ÀÌÆ²½Å°æ
    [¿¾ ¿ë¾î] ÇÏÄ¡Á¶½Å°æ
  • Anterior superior alveolar branches
    ¾ÕÀ§ÀÌÆ²°¡Áö
    [¿¾ ¿ë¾î] Àü»óÄ¡Á¶Áö
  • Anterior superior alveolar arteries
    ¾ÕÀ§ÀÌÆ²µ¿¸Æ
    [¿¾ ¿ë¾î] Àü»óÄ¡Á¶µ¿¸Æ
  • Superior alveolar nerves
    À§ÀÌÆ²½Å°æ
    [¿¾ ¿ë¾î] »óÄ¡Á¶½Å°æ
  • Alveolar canal
    ÀÌÆ²°ü
    [¿¾ ¿ë¾î] Ä¡Á¶°ü
´ëÇѱâ»ýÃæÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 2 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar hydatid cyst
    ´Ù¹æÆ÷Ãæ
  • alveolar hydatidosis
    ´Ù¹æÆ÷ÃæÁõ
´ëÇÑ»ýÈ­ÇкÐÀÚ»ý¹°ÇÐȸ ¿ë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • Adair equation
    ¾Æµ¥¾î °ø½Ä(ÍëãÒ)
  • Arrenius equation
    ¾Æ·¹´Ï¿ì½º ¹æÁ¤½Ä(Û°ïïãÒ)
  • conservation equation
    º¸Á¸ ¹æÁ¤½Ä(ÜÁðíÛ°ïïãÒ)
  • distribution equation
    ºÐÆ÷ ¹æÁ¤½Ä(ÝÂøÖÛ°ïïãÒ)
  • enzyme conservation equation
    È¿¼Òº¸Á¸ ¹æÁ¤½Ä (ý£áÈÜÁðíÛ°ïïãÒ)
  • equation of state
    »óÅ ¹æÁ¤½Ä (ßÒ÷¾Û°ïïãÒ)
  • Ferguson equation
    ÆÛ°Å½¼ ¹æÁ¤½Ä (Û°ïïãÒ)
  • Gay-Lussac equation
    °³ÀÌ-·ù»ö ¹æÁ¤½Ä(Û°ïïãÒ)
  • Gibbs-Duhem equation
    ±é½º-µÎÇð ¹æÁ¤½Ä(Û°ïïãÒ)
  • Gibbs-Helmholtz equation
    ±é½º-Ç︧ȦÃ÷ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Henderson-Hasselbalch equation
    Çî´õ½¼-Çϼ¿¹ßÅ© ¹æÁ¤½Ä(Û°ïïãÒ)
  • Henri equation
    ¾Ó¸® ¹æÁ¤½Ä(Û°ïïãÒ)
  • Henri-Michaelis-Menten equation
    ¾Ó¸®-¹Ì͏®½º-¸àÅÙ ¹æÁ¤½Ä(Û°ïïãÒ)
  • Hill equation
    Èú ¹æÁ¤½Ä(Û°ïïãÒ)
  • rate equation
    ¼Óµµ ¹æÁ¤½Ä(áÜÓøÛ°ïïãÒ)
KI ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 12 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • Bloch equation
    Bloch µî½Ä
  • diffusion equation
    È®»êµî½Ä
  • Larmor equation
    ¶ó¸ðµî½Ä
  • regression equation
    ȸ±Í¹æÁ¤½Ä
  • alveolar
    Ä¡Á¶ÆóÆ÷¼º, ÆóÆ÷ÀÇ
  • alveolar bone
    Ä¡Á¶°ñ
  • alveolar cancer
    Æ÷»ó¾Ï
  • alveolar cell carcinoma
    ÆóÆ÷¼¼Æ÷¾ÏÁ¾
  • alveolar duct
    ÆóÆ÷°ü
  • alveolar flooding
    ÆóÆ÷È«¼ö
  • alveolar pattern
    ÆóÆ÷¾ç»ó
  • alveolar sac
    ÆóÆ÷³¶
KMLE ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 1
Eq, eq equation; equivalent
GEE generalized estimating equation
SBM Solomon-Bloembergen-Morgan [equation]
VSIE volume surface integral equation [method]
AD accident dispensary; acetate dialysis; active disease; acute dermatomyositis; addict, addiction; ade...
KMLE ÀÚµ¿ÃßÃâ ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 1
GEE Generalized Estimating Equation
ODE ordinary differential equation
SEM Structural Equation Modeling
PDE partial differential equation
AM Alveolar Macrophages
°æºÏ´ë Ä¡°ú´ëÇÐ ±¸°­³»°ú ±³½Ç »çÀü ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • alveolar equation
    ÆóÆ÷ ¹æÁ¤½Ä
°æºÏ´ë Ä¡°ú´ëÇÐ ±¸°­³»°ú ±³½Ç »çÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • alveolar gas equation
    ÆóÆ÷ ±âü ¹æÁ¤½Ä
  • allometric equation
    ÀÌ»óÁøÈ­ ¹æÁ¤½Ä
  • Bloch equation
    µî½Ä
  • chord conductance equation
    Æò±Õ Àüµµ ¹æÁ¤½Ä
  • constant field equation
    Á¤ÀüÀå ¹æÁ¤½Ä
  • equation of compatibility
    ¾ç¸³ Á¶°Ç
  • equation of motion
    ¿îµ¿ ¹æÁ¤½Ä
  • equation of state
    »óÅ ¹æÁ¤½Ä
  • exponential equation
    Áö¼ö ¹æÁ¤½Ä
  • Henderson-Hasselbalch equation
    Ç½¼-Çϼ¿¹Ù ½Ä
  • acute alveolar injury
    ±Þ¼º ÆóÆ÷ ¼Õ»ó
    ±Þ¼º È£Èí°ï¶õ ÁõÈıºÀÇ ´Ù¸¥ À̸§.
  • adjacent alveolar process
    ÀÎÁ¢ Ä¡Á¶ µ¹±â
  • alveolar
    Ä¡Á¶, ÆóÆ÷¼º, ÆóÆ÷ÀÇ
    Ä¡Á¶¿Í, ÁöÁö °ñ, °ü·Ã °áÇÕÁ¶Á÷À» Æ÷ÇÔÇÏ´Â ¾Ç°ñÀÇ Ä¡Á¶µ¹±â¿¡ ¼ÓÇÏ´Â.
  • alveolar adenoma
    Æ÷»ó ¼±Á¾
  • alveolar angle
    Ä¡Á¶ °¢
CancerWEB ¿µ¿µ ÀÇÇлçÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
alveolar gas equation The equation defining the steady state relation of the alveolar oxygen pressure to the barometric pressure, inspired gas composition, alveolar carbon dioxide pressure, and respiratory exchange ratio; the equation is used in various forms depending upon which simplifying assumptions are acceptable for different applications.
(05 Mar 2000)
arrhenius equation This equation expresses the logarithmic relationship between the rate constant of a reaction and the reciprocal of the temperature (expressed in K).
(09 Oct 1997)
Bohr's equation An equation to calculate the respiratory dead space from the fact that gas expired from the lungs is a mixture of gas from the dead space and gas from the alveoli, i.e., the dead space volume divided by the tidal volume equals the difference between alveolar and mixed expired gas composition, divided by the difference between alveolar and inspired gas composition; gas composition can be expressed in any consistent units of concentration or partial pressure of oxygen or carbon dioxide.
(05 Mar 2000)
boltzmann equation <radiobiology> Fundamental equation in kinetic theory which describes the evolution of the distribution function. (See also Vlasov equation.) The actual equation is given in most texts covering plasma kinetic theory.
(09 Oct 1997)
van't Hoff's equation Equation for osmotic pressure of dilute solutions.
See: van't Hoff's law.
For any reaction, d(ln Keq/d(1/T) equals -dH/R where Keq is the equilibrium constant, T the absolute temperature, R is the universal gas constant, and dH is the change in enthalpy; thus, plotting ln Keq vs. 1/T allows the determination of dH.
(05 Mar 2000)
Gay-Lussac's equation The overall chemical equation for alcoholic fermentation; C6H12O6 = 2CO2 + 2CH3CH2OH.
(05 Mar 2000)
rate equation A mathematical expression for a chemical, radiochemical, or enzyme-catalyzed reaction.
(05 Mar 2000)
Rayleigh equation A ratio of red to green required by each observer to match spectral yellow.
Synonym: Rayleigh test.
(05 Mar 2000)
Gibbs-Helmholtz equation An equation expressing the relationship in a galvanic cell between the chemical energy transformed and the maximal electromotive force obtainable.
(05 Mar 2000)
Victor-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)
Goldman 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)
Goldman-Hodgkin-Katz 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)
grad-shafranov equation <radiobiology> Reduced magnetohydrodynamic-equilibrium equation for an axisymmetric, toroidal plasma. (Similar reduced equations can be derived for the cases of helical symmetry and for the straight cylinder.)
Analytic and numerical studies of these equations are important in exploring potential plasma configurations. The lowest order force balance in the plasma is simply that the Lorentz force must be balanced by the pressure force. This balance, combined with Maxwell's equations, determines the equilibrium configuration of the magnetic field.
When the toroidal configuration is axisymmetric, and the equilibrium plasma flow is zero, the magnetic field may be written in terms of a stream function \psi that satisfies the Grad-Shafranov equation \Delta\psi = - \mu_0 R^2 p'(\psi) - FF'(\psi). Here p is the plasma pressure and f = R B_\phi. (R is the radial distance from the axis of the machine).
In an axisymmetric torus, in the absence of equilibrium plasma fluid flows, the magnetic field may be written in terms of a scalar potential. When the plasma is in equilibrium (forces balance and the plasma is stationary), this scalar potential obeys a non-linear elliptic equation known as the Grad-Shafranov equation.
(09 Oct 1997)
chemical equation A representation of a chemical reaction in which chemical symbols represent reactants on the left side and products on the right side.
(09 Oct 1997)
personal equation A slight error in judgment, perceptual response, or action peculiar to the individual and so constant that it is usually possible to allow for it in accepting the person's statements or conclusions, thus arriving at approximate exactness; observed in persons whose work involves readings of events in time, such as navigators and air traffic controllers.
(05 Mar 2000)
ÇÑ¿µ/¿µÇÑ »çÀü À¯»ç °Ë»ö °á°ú : 13 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • alveolar
    ÆóÆ÷ÀÇ;Ä¡Á¶ÀÇ;Ä¡Á¶À½
  • equation
    Æò±Õ; ¹æÁ¤½Ä; ¹ÝÀÀ½Ä
  • Diophantine equation
    µð¿ÀÆÇÅõ½º ¹æÁ¤½Ä(ºÎÁ¤¹æÁ¤½ÄÀÇ ÇØ¹ýÀ» ¿¬±¸ÇÑ ±×¸®½º ¼öÇÐÀÚÀÇ À̸§¿¡¼­)
  • Einstein equation
    (¹°)¾ÆÀν´Å¸ÀÎ ¹æÁ¤½Ä(Áú·®°ú ¿¡³ÊÁö¿ÍÀÇ ¹æÁ¤½Ä)
  • characteristic equation
    Ư¼º ¹æÁ¤½Ä
  • cubic equation
    3Â÷ ¹æÁ¤½Ä
  • differential equation
    (¼ö)¹ÌºÐ¹æÁ¤½Ä
  • equation
    °°°ÔÇÔ;±ÕºÐ¹ý;¹æÁ¤½Ä
  • identical equation
    Ç×µî½Ä
  • massenergy equation
    Áú·® ¿¡³ÊÁö ¹æÁ¤½Ä (A,EinsteinÀÌ Á¤½ÄÈ­ÇÑ E=mc2ÀÇ °ø½Ä)
  • masswnergy equation
    Áú·®°ú ¿¡³ÊÁö¿ÍÀÇ Ç×µî½Ä
  • personal equation
    °³ÀÎÂ÷
  • simple equation
    ÀÏÂ÷ ¹æÁ¤½Ä
ÀÌ ¾Æ·¡ ºÎÅÍ´Â °á°ú°¡ ¾ø½À´Ï´Ù.
KMLE ¾àǰ/ÀǾàǰ ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • Á¦Ç°¸í
    ¼ººÐ/ÇÔ·®
    ±¸ºÐ/º¸Çè±Þ¿©
KMLE ¾àǰ/ÀǾàǰ À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • Á¦Ç°¸í
    ¼ººÐ/ÇÔ·®
    ±¸ºÐ/º¸Çè±Þ¿©
¾Ë±â½¬¿î ÀÇÇпë¾îÇ®ÀÌÁý, ¼­¿ïÀÇ´ë ±³¼ö ÁöÁ¦±Ù, °í·ÁÀÇÇÐ ÃâÆÇ ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
¾Ë±â½¬¿î ÀÇÇпë¾îÇ®ÀÌÁý, ¼­¿ïÀÇ´ë ±³¼ö ÁöÁ¦±Ù, °í·ÁÀÇÇÐ ÃâÆÇ À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑÀÇÇù Çʼö ÀÇÇпë¾îÁý »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
¿¾ ´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑÇØºÎÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇѽŰæ¿Ü°úÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
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