Difference between revisions of "6/π stimulated well potential"
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:<math>J_D=\frac{q \mu}{2 \pi k h} \frac{1}{( \bar P - P_{wf})} =\frac{q \mu}{2 \pi k h} \frac{12 k h}{q \mu} \frac{y_e}{x_e} = \frac{6 y_e}{\pi x_e}=\frac{6}{\pi}</math> | :<math>J_D=\frac{q \mu}{2 \pi k h} \frac{1}{( \bar P - P_{wf})} =\frac{q \mu}{2 \pi k h} \frac{12 k h}{q \mu} \frac{y_e}{x_e} = \frac{6 y_e}{\pi x_e}=\frac{6}{\pi}</math> | ||
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==See also== | ==See also== |
Revision as of 10:44, 12 September 2018
Brief
6/π is the maximum possible stimulation potential for pseudo steady state linear flow in a square well spacing.
Math & Physics
Pseudo steady state flow boundary conditions:
From Diffusivity Equation:
( 1 )
From Material Balance:
( 2 )
( 2 ) - > ( 1 ) :
( 3 )
Integrating ( 3 ):
must satisfy boundary condition:
( 4 )
Integrating ( 4 ):
( 5 )
Since average pressure is: :
See also
optiFrac
fracDesign
Production Potential
Nomenclature
= cross-sectional area, cm2
= thickness, m
= permeability, d
= pressure, atm
= initial pressure, atm
= average pressure, atm
= flow rate, cm3/sec
= length, m
= drinage area length, m
= drinage area width, m
Greek symbols
= oil viscosity, cp