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LaTeX Math Inline
body(t,x,y,z)

time and space corrdinates ,

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body z
-axis is orientated towards the Earth centre,

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body(x,y)
define transversal plane to the
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body z
-axis

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body\mathbf{r} = (x, \ y, \ z)

position vector at which the flow equations are set

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bodyl (x, \ y, \ z)

measured depth along borehole trajectory

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bodydl^2 = dx^2 + dy^2 + dz^2
starting from tubing head
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bodyl (x = x_0, \ y=y_0, \ z = z_{THP}) = 0

LaTeX Math Inline
bodyq_{mW} = \frac{d m_W}{dt}

speed of water-component mass change in wellbore draining points

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bodyq_{mO} = \frac{d m_O}{dt}

speed of oil-component mass change in wellbore draining points

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bodyq_{mG} = \frac{d m_G}{dt}

speed of gas-component mass change in wellbore draining points

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bodyq_W = \frac{1}{\rho_W^{\LARGE \circ}} \frac{d m_W}{dt} = \frac{d V_{Ww}^{\LARGE \circ}}{dt} = \frac{1}{B_w} q_w

volumetric water-component flow rate in wellbore draining points recalculated to standard surface conditions

LaTeX Math Inline
bodyq_O = \frac{1}{\rho_O^{\LARGE \circ}} \frac{d m_O}{dt} = \frac{d V_{Oo}^{\LARGE \circ}}{dt} + \frac{d V_{Og}^{\LARGE \circ}}{dt} = \frac{1}{B_o} q_o + \frac{R_v}{B_g} q_g

volumetric oil-component flow rate in wellbore draining points recalculated to standard surface conditions

LaTeX Math Inline
bodyq_G = \frac{1}{\rho_G^{\LARGE \circ}} \frac{d m_G}{dt} = \frac{d V_{Gg}^{\LARGE \circ}}{dt} + \frac{d V_{Go}^{\LARGE \circ}}{dt} = \frac{1}{B_g} q_g + \frac{R_s}{B_o} q_o

volumetric gas-component flow rate in wellbore draining points recalculated to standard surface conditions

LaTeX Math Inline
bodyq_w = \frac{d V_w}{dt}

volumetric water-phase flow rate in wellbore draining points

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bodyq_o = \frac{d V_o}{dt}

volumetric oil-phase flow rate in wellbore draining points

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bodyq_g = \frac{d V_g}{dt}

volumetric gas-phase flow rate in wellbore draining points

LaTeX Math Inline
bodyq^S_W =\frac{dV_{Ww}^S}{dt}

total well volumetric water-component flow rate

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bodyq^S_O = \frac{d (V_{Oo}^S + V_{Og}^S )}{dt}

total well volumetric oil-component flow rate

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bodyq^S_G = \frac{d (V_{Gg}^S + V_{Go}^S )}{dt}

total well volumetric gas-component flow rate

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bodyq^S_L = q^S_W + q^S_O

total well volumetric liquid-component flow rate

LaTeX Math Inline
body\vec u_w = \vec u_w (t, \vec r)

water-phase flow speed distribution and dynamics

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body\vec u_o = \vec u_o (t, \vec r)

oil-phase flow speed distribution and dynamics

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body\vec u_g = \vec u_g (t, \vec r)

gas-phase flow speed distribution and dynamics

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body\vec g = (0, \ 0, \ g)

gravitational acceleration vector

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bodyg = 9.81 \ \rm m/s^2

gravitational acceleration constant

LaTeX Math Inline
body\rho_\alpha(P,T)

mass density of

LaTeX Math Inline
body\alpha
-phase fluid

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body\mu_\alpha(P,T)

viscosity of

LaTeX Math Inline
body\alpha
-phase fluid

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body\lambda_t(P,T,s_w, s_o, s_g)

effective thermal conductivity of the rocks with account for multiphase fluid saturation

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body\lambda_r(P,T)

rock matrix thermal conductivity

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body\lambda_\alpha(P,T)

thermal conductivity of

LaTeX Math Inline
body\alpha
-phase fluid

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body\rho_r(P,T)

rock matrix mass density

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body\eta_{s \alpha}(P,T)

differential adiabatic coefficient of

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body\alpha
-phase fluid

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bodyc_{pr}(P,T)

specific isobaric heat capacity of the rock matrix

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bodyc_{p\alpha}(P,T)

specific isobaric heat capacity of

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body\alpha
-phase fluid

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body \epsilon_\alpha (P, T)

differential Joule–Thomson coefficient of

LaTeX Math Inline
body\alpha
-phase fluid

дифференциальный коэффициент Джоуля-Томсона фазы 

LaTeX Math Inline
body\alpha

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