Method and apparatus for measuring characteristics of core-annular flow
View Patent ↗An apparatus and method are disclosed wherein at least one parameter associated with a core-annular flow (CAF) in a pipe is measured by sensing unsteady pressures associated with undulations formed at the interface of a core region and an annular region in the CAF at different axial locations along the pipe. The at least one parameter, which may include a flow velocity of the CAF, Mach number associated with the CAF, and a volumetric flow rate of the CAF, is determined using sensed unsteady pressures. The CAF may be developed from a shear thinning fluid, such as bitumen froth or from a wood pulp fiber suspension. Alternatively, the CAF may be developed from a lubricating fluid, such as water, and a fluid to be transported, such as oil, where the fluid to be transported forms the core region and the lubricating fluid forms the annular region.
1. An apparatus for measuring at least one parameter associated with a core-annular flow in a pipe, the apparatus comprising:
a spatial array of at least two pressure sensors disposed at different axial locations along the pipe, with each of the at least two pressure sensors providing a pressure signal indicative of unsteady pressure within the pipe at a corresponding axial location of the pipe, the unsteady pressure being associated with undulations formed at the interface of a core region and an annular region in the core-annular flow; and
a signal processor configured to process the pressure signals to define a convective ridge in the k-ω plane, and determine the slope of at least a portion of the convective ridge to determine a flow velocity of the core-annular flow.
2. The apparatus of claim 1 , wherein the core-annular flow is developed from a shear thinning fluid.
3. The apparatus of claim 2 , wherein the shear thinning fluid includes bitumen froth.
4. The apparatus of claim 1 , wherein the core-annular flow is developed from a lubricating fluid and a fluid to be transported, the fluid to be transported forming the core region and the lubricating fluid forming the annular region.
5. The apparatus of claim 4 , wherein the lubricating fluid includes water and the fluid to be transported includes oil.
6. The apparatus of claim 1 , wherein the core-annular flow is developed from a wood pulp fiber suspension.
7. The apparatus of claim 1 , wherein the signal processor is further configured to:
determine a cross-sectional area of the pipe; and
determine the volumetric flow rate of the core-annular flow using the cross-sectional area and the flow velocity of the core-annular flow.
8. The apparatus of claim 1 , wherein at least one of the sensors measures strain on the pipe.
9. The apparatus of claim 1 , wherein spatial array of sensors include at least three sensors disposed at different axial locations along the pipe.
10. The apparatus of claim 1 , wherein spatial array of sensors include at least 4–16 sensors disposed at different axial locations along the pipe.
11. The apparatus of claim 10 , wherein the signal processor uses an array processing algorithm to determine the flow velocity.
12. The apparatus of claim 1 , wherein the pressure sensors are clamped on the outer surface of the pipe.
13. A method for measuring at least one parameter associated with a core-annular flow in a pipe, the method comprising:
sensing unsteady pressures associated with undulations formed at the interface of a core region and an annular region in the core-annular flow at different axial locations along the pipe to provide signals indicative of the unsteady pressures; and
processing the signals indicative of the unsteady pressures to define a convective ridge in the k-ω plane, and determining the slope of at least a portion of the convective ridge to determine a flow velocity of the core-annular flow.
14. The method of claim 13 , wherein the core-annular flow is developed from a shear thinning fluid.
15. The method of claim 14 , wherein the shear thinning fluid includes bitumen froth.
16. The method of claim 13 , wherein the core-annular flow is developed from a lubricating fluid and a fluid to be transported, the fluid to be transported forming the core region and the lubricating fluid forming the annular region.
17. The method of claim 16 , wherein the lubricating fluid includes water and the fluid to be transported includes oil.
18. The method of claim 13 , wherein the core-annular flow is developed from a wood pulp fiber suspension.
19. The method of claim 13 , wherein determining the at least one parameter includes:
determining a cross-sectional area of the pipe; and
determining the volumetric flow rate of the core-annular flow using the cross-sectional area and the flow velocity of the core-annular flow.
20. The method of claim 13 , wherein sensing the unsteady pressures includes measuring strain on the pipe.
21. The method of claim 13 , wherein sensing unsteady pressures include measuring unsteady pressures at at least two different axial locations along the pipe.
22. The method of claim 13 , wherein sensing unsteady pressures include measuring unsteady pressures at at least three different axial locations along the pipe.
23. The method of claim 13 , wherein sensing unsteady pressures include measuring unsteady pressures at at least 4 to 16 different axial locations along the pipe.
24. The method of claim 23 , wherein the processing the signals includes using an array processing algorithm to determine the flow velocity.
25. An apparatus for measuring at least one parameter associated with a core-annular flow in a pipe, the apparatus comprising:
a spatial array of at least two pressure sensors disposed at different axial locations along the pipe, with each of the at least two pressure sensors providing a pressure signal indicative of unsteady pressure within the pipe at a corresponding axial location of the pipe, the unsteady pressure being associated with undulations formed at the interface of a core region and an annular region in the core-annular flow; and
a signal processor configured to determine a cross-sectional area of the pipe, and determine the flow velocity of the core-annular flow in response to the pressure signals and the volumetric flow rate of the core-annular flow using cross-sectional area and the flow velocity.
26. The apparatus of claim 25 , wherein at least one of the sensors measures strain on the pipe.
27. The apparatus of claim 25 , wherein spatial array of sensors include at least three sensors disposed at different axial locations along the pipe.
28. The apparatus of claim 25 , wherein spatial array of sensors include at least 4–16 sensors disposed at different axial locations along the pipe.
29. The apparatus of claim 28 , wherein the signal processor uses an array processing algorithm to determine the flow velocity.
30. The apparatus of claim 25 , wherein the pressure sensors are clamped on the outer surface of the pipe.
31. A method for measuring at least one parameter associated with a core-annular flow in a pipe, the method comprising:
sensing unsteady pressures associated with undulations formed at the interface of a core region and an annular region in the core-annular flow at different axial locations along the pipe to provide signals indicative of the unsteady pressures;
determining a cross-sectional area of the pipe;
determining the velocity of the core-annular flow in response to the pressure signals, and
determining the volumetric flow rate of the core-annular flow using the cross-sectional area of the pipe and the flow velocity of the core-annular flow.
32. The method of claim 31 , wherein sensing the unsteady pressures includes measuring strain on the pipe.
33. The method of claim 31 , wherein sensing unsteady pressures include measuring unsteady pressures at at least two different axial locations along the pipe.
34. The method of claim 31 , wherein sensing unsteady pressures include measuring unsteady pressures at at least three different axial locations along the pipe.
35. The method of claim 31 , wherein sensing unsteady pressures include measuring unsteady pressures at at least 4 to 16 different axial locations along the pipe.
36. The method of claim 35 , wherein the processing the signals includes using an array processing algorithm to determine the flow velocity.