Difference between revisions of "3 Phase IPR"
(→Three-phase Inflow Performance Relationship) |
(→Three-phase Inflow Performance Relationship) |
||
Line 1: | Line 1: | ||
__TOC__ | __TOC__ | ||
==Three-phase Inflow Performance Relationship== | ==Three-phase Inflow Performance Relationship== | ||
− | [[File:3 Phase IPR Curve.png|thumb|right| | + | [[File:3 Phase IPR Curve.png|thumb|right|400px|3 Phase IPR Curve <ref name=KermitBrown1984/>]] |
[[3 Phase IPR]] is a curve on the basis of total barrels of produced fluid, including gas. | [[3 Phase IPR]] is a curve on the basis of total barrels of produced fluid, including gas. |
Revision as of 06:53, 17 April 2019
Contents
Three-phase Inflow Performance Relationship
3 Phase IPR is a curve on the basis of total barrels of produced fluid, including gas.
3 Phase IPR used in Pump Design software for pump sizing.
Math and Physics
Total flow rate equations:
For Pb < Pwf < Pr
For pressures between reservoir pressure and bubble point pressure:
For PwfG < Pwf < Pb
For pressures between the bubble point pressure and the flowing bottom-hole pressures:
where:
For 0 < Pwf < PwfG
where:
And
3 Phase IPR calculation example
Following the example problem #21, page 33 [1]:
Given:
- = 2550 psi
- = 2100 psi
Test data:
- = 2300 psi
- = 500 b/d
Calculate:
Determine the 3 Phase IPR curves for Fw=0, 0.25, 0.5, 0.75, and 1.
Solution:
The problem was run through PQplot software for different values of watercut.
Result 3 Phase IPR curves are shown on Fig.1. Points indicate results obtained by Brown [1].
The PQplot model from this example is available online by the following link: 3 Phase IPR calculation example
Nomenclature
- = calculation variables
- = oil fraction, fraction
- = water fraction, fraction
- = productivity index, stb/d/psia
- = pressure, psia
- = flowing rate, stb/d
Subscripts
- b = at bubble point
- max = maximum
- o = oil
- r = reservoir
- t = total
- wf = well flowing bottomhole pressure
- wfG = well flowing bottomhole pressure at point G