IP Library Granted Patent US 12,422,285
Granted Patent B2
US 12,422,285 · App. 17/686,143 · Granted Sep 23, 2025

Multiphase vortex flowmeter system

Inventors: Matthew Thomas Halker (Parker, CO); Paul S. Brennan (Grand Junction, CO); William Robert Myers (Englewood, CO); Joseph Michael Rzewnicki (Denver, CO); Mina Lee Weldon (Denver, CO); Kenneth Alan Barnett (Castle Rock, CO)
Assignee: Halker Smart Solutions LLC
G01F1/3259G01F1/74
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Quick Facts
Patent No.
US 12,422,285
App. No.
17/686,143
Granted
Sep 23, 2025
Kind
B2
Abstract

A multiphase vortex flowmeter system determines the gas-to-liquid ratio (GLR) and flow rates from a well producing multiphase gas, oil and water by detecting the frequency and amplitude of vortices shed in a vortex flowmeter. In particular, the phase of the flow can be identified by detecting the change in the frequency of the vortices with respect to time, and the amplitude of the vortices. Based on the phase, the flow rates of liquid and gas can be calculated. As a feedback technique, these calculated values can be “tuned” by comparison with actual GLR and flow rates recorded for the well by a test separator.

Claims (30)

1. A method for measuring the flow of co-mingled gas and liquid produced from a well, said method comprising:

providing a vortex flowmeter measuring fluid velocity and having a flow passageway for co-mingled gas and liquid containing a bluff body inducing turbulent vortices in the fluid flow through the passageway;

detecting the frequency of the vortices;

detecting the amplitude of the vortices; and

determining the phase of the fluid flow by the following steps:

(a) if the amplitude of the vortices is less than a first predetermined value and the frequency of the vortices is greater than a second predetermined value, the fluid is gas phase;

(b) if the amplitude of the vortices is greater than a first predetermined value and the frequency of the vortices is less than a second predetermined value, the fluid is liquid phase; and

(c) if the frequency of the vortices varies widely over time, the fluid is multiphase;

if the fluid phase is liquid or gas, calculating the flow based on the fluid velocity measured by the vortex flowmeter; and

if the fluid is multiphase, calculating the liquid and fluid flows based on the frequency and amplitude of the vortices to determine the proportion of liquid-to-gas in the flow, and the fluid velocity measured by the vortex flowmeter.

2. The method of claim 1 further comprising calibrating the calculated flows of liquid and gas in the flow against actual production from the well.

3. The method of claim 1 further comprising:

providing a water cut meter to determine the proportion of water in the flow produced by the well; and

calculating the flow of oil produced by the well by reducing the calculated liquid flow by the proportion of water in the flow.

4. The method of claim 1 wherein changes in the frequency of the vortices are calculated by an average of the derivative of the frequency with respect to time over a predetermined period of time.

5. A method for measuring the flow of co-mingled gas and liquid produced from a well, said method comprising:

providing a vortex flowmeter measuring fluid velocity and having a flow passageway for co-mingled gas and liquid containing a bluff body inducing turbulent vortices in the fluid flow through the passageway;

detecting the frequency of the vortices;

detecting the amplitude of the vortices; and

determining the phase of the fluid flow by the following steps:

(a) if the absolute value of the change in the frequency of the vortices with respect to time is greater than a first predetermined value, the fluid is multiphase;

(b) if the absolute value of the change in the frequency of the vortices with respect to time is less than the first predetermined value and the amplitude of the vortices is greater than a second predetermined value, the fluid is liquid phase; and

(c) if the absolute value of the change in the frequency of the vortices with respect to time is less than the first predetermined value and the amplitude of the vortices is less than the second predetermined value, the fluid is gas phase;

if the fluid phase is liquid or gas, calculating the flow based on the fluid velocity measured by the vortex flowmeter; and

if the fluid is multiphase, calculating the liquid and fluid flows based on the frequency and amplitude of the vortices to determine the proportion of liquid-to-gas in the flow, and the fluid velocity measured by the vortex flowmeter.

6. The method of claim 5 further comprising calibrating the calculated flows of liquid and gas in the flow against actual production from the well.

7. The method of claim 5 further comprising:

providing a water cut meter to determine the proportion of water in the flow produced by the well; and

calculating the flow of oil produced by the well by reducing the calculated liquid flow by the proportion of water in the flow.

8. The method of claim 5 wherein the absolute value of the change in the frequency of the vortices with respect to time is calculated by an average of the derivative of the frequency with respect to time over a predetermined period of time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2022
From: HALKER, MATTHEW THOMAS; BRENNAN, PAUL S.; MYERS, WILLIAM ROBERT; RZEWNICKI, JOSEPH MICHAEL; WELDON, MINA LEE; BARNETT, KENNETH ALAN
To: HALKER SMART SOLUTIONS LLC
Reel/Frame 059254/0686 →
Continuity (2)
Provisional Application 63155877 · Mar 3, 2021
Related Publication 20220283003A1 · Sep 8, 2022
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