IP Library › Granted Patent US 12,534,981
Granted Patent B2
US 12,534,981 · App. 18/079,679 · Granted Jan 27, 2026

Detecting interference between hydrocarbon wells

Inventors: Somiari Bestman (Dhahran, SA); Rasheed M. Almahdi (Dhahran, SA)
Assignee: Saudi Arabian Oil Company
E21B43/00E21B21/08E21B41/00E21B43/14E21B44/00E21B49/00E21B49/003E21B2200/20
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Quick Facts
Patent No.
US 12,534,981
App. No.
18/079,679
Granted
Jan 27, 2026
Kind
B2
Abstract

Disclosed are methods, systems, and computer-readable medium to perform operations including: obtaining production data about the well; generating a simulated average reservoir pressure at the subsurface region that includes the well; computing a difference between an average reservoir pressure obtained from the production data and the simulated average reservoir pressure; determining, based on the computed difference, a performance deviation with reference to a particular area of the subsurface region that includes the well; comparing the performance deviation to a predetermined threshold value that represents an acceptable tolerance for variance in performance of the well; and triggering, when the performance deviation exceeds the predetermined threshold value, a particular type of automated response comprising an action that addresses the variance in performance of the well.

Claims (61)

1 . A computer-implemented method implemented using a system for managing operations involving a well in a subsurface region, the computer-implemented method comprising:

obtaining production data about the well comprising production rates, flowing wellhead pressure, and flowing wellhead temperature;

generating based on changes in flowing wellhead pressure over time, with each time step having an associated cumulative production a simulated average reservoir pressure at the subsurface region that comprises the well;

computing a difference between an average reservoir pressure obtained from the production data and the simulated average reservoir pressure;

determining, based on the difference, a performance deviation with reference to a particular area of the subsurface region that comprises the well;

comparing the performance deviation to a predetermined threshold value that represents an acceptable tolerance for variance in performance of the well indicative of an interference between the performance of the well and a neighboring well within the subsurface region;

determining that the performance deviation exceeds the predetermined threshold value; and

triggering a particular type of automated response comprising an action that addresses the variance in the performance of the well by controlling downhole gauges to regulate pressures, temperatures, and flow rates within the well to correct the interference between the performance of the well and the neighboring well within the subsurface region.

2 . The computer-implemented method of claim 1 , wherein determining a performance deviation comprises:

determining a magnitude of the variance in performance of the well.

3 . The computer-implemented method of claim 2 , wherein triggering a particular type of automated response comprises:

selecting a particular type of automated response based at least on the magnitude of the variance in performance of the well; and

triggering an action of the particular type of automated response that reduces the magnitude of the variance in performance of the well.

4 . The computer-implemented method of claim 3 , wherein triggering an action of the particular type of automated response comprises:

triggering an action that eliminates the variance in performance of the well and the performance deviation.

5 . The computer-implemented method of claim 4 , wherein the particular type of automated response comprises at least one of:

an action that generates a warning notification; or

an action that generates an alarm signal.

6 . The computer-implemented method of claim 1 , wherein:

the well is a gas or hydrocarbon producing well; and

the simulated average reservoir pressure is based on predictions about a plurality of values for flow rate, pressure, and temperature relating to the gas or hydrocarbon producing well.

7 . The computer-implemented method of claim 6 , wherein the performance deviation comprises flow conditions of the well that are outside the acceptable tolerance for variance in performance of the well.

8 . The computer-implemented method of claim 7 , wherein the particular type of automated response comprises at least one of:

an action that causes, by an autonomous system, intervention at the particular area of the subsurface region that includescomprises the well; or

a total shut-in of the gas producing well.

9 . The computer-implemented method of claim 1 , wherein the interference comprises an intrusion of fluids from the well to the neighboring well in the subsurface region.

10 . A system for managing a well in a subsurface region, the system comprising:

one or more processors configured to perform operations comprising:

obtaining production data about the well comprising production rates, flowing wellhead pressure, and flowing wellhead temperature;

generating based on changes in flowing wellhead pressure over time, with each time step having an associated cumulative production a simulated average reservoir pressure at the subsurface region that comprises the well;

computing a difference between an average reservoir pressure obtained from the production data and the simulated average reservoir pressure;

determining, based on the difference, a performance deviation with reference to a particular area of the subsurface region that comprises the well;

comparing the performance deviation to a predetermined threshold value that represents an acceptable tolerance for variance in performance of the well indicative of an interference between the performance of the well and a neighboring well within the subsurface region; and

triggering, when the performance deviation exceeds the predetermined threshold value, a particular type of automated response comprising an action that addresses the variance in performance of the well by controlling downhole gauges to regulate pressures, temperatures, and flow rates within the well to correct the interference between the performance of the well and the neighboring well within the subsurface region.

11 . The system of claim 10 , wherein determining a performance deviation comprises:

determining a magnitude of the variance in performance of the well.

12 . The system of claim 11 , wherein triggering a particular type of automated response comprises:

selecting a particular type of automated response based at least on the magnitude of the variance in performance of the well; and

triggering an action of the particular type of automated response that reduces the magnitude of the variance in performance of the well.

13 . The system of claim 12 , wherein triggering an action of the particular type of automated response comprises:

triggering an action that eliminates the variance in performance of the well and the performance deviation.

14 . The system of claim 13 , wherein the particular type of automated response comprises at least one of:

an action that generates a warning notification; or

an action that generates an alarm signal.

15 . The system of claim 10 , wherein:

the well is a gas or hydrocarbon producing well; and

the simulated average reservoir pressure is based on predictions about a plurality of values for flow rate, pressure, and temperature relating to the gas or hydrocarbon producing well.

16 . The system of claim 15 , wherein the performance deviation comprises flow conditions of the well that are outside the acceptable tolerance for variance in performance of the well.

17 . The system of claim 16 , wherein the particular type of automated response comprises at least one of:

an action that causes, by an autonomous system, intervention at the particular area of the subsurface region that comprises the well; or

a total shut-in of the gas producing well.

18 . The system of claim 10 , wherein the interference comprises an intrusion of fluids from the well to the neighboring well in the subsurface region.

19 . A non-transitory computer storage medium encoded with instructions that, when executed by one or more computers, cause the one or more computers to perform operations for managing a well in a subsurface region, the operations comprising:

obtaining production data about the well comprising production rates, flowing wellhead pressure, and flowing wellhead temperature;

generating based on changes in flowing wellhead pressure over time, with each time step having an associated cumulative production a simulated average reservoir pressure at the subsurface region that comprises the well;

computing a difference between an average reservoir pressure obtained from the production data and the simulated average reservoir pressure;

determining, based on the difference, a performance deviation with reference to a particular area of the subsurface region that comprises the well;

comparing the performance deviation to a predetermined threshold value that represents an acceptable tolerance for variance in performance of the well indicative of an interference between the performance of the well and a neighboring well within the subsurface region; and

triggering, when the performance deviation exceeds the predetermined threshold value, a particular type of automated response comprising an action that addresses the variance in performance of the well by controlling downhole gauges to regulate pressures, temperatures, and flow rates within the well to correct the interference between the performance of the well and the neighboring well within the subsurface region.

20 . The non-transitory computer storage medium of claim 19 , wherein determining a performance deviation comprises:

determining a magnitude of the variance in performance of the well.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2023
From: BESTMAN, SOMIARI; ALMAHDI, RASHEED M.
To: SAUDI ARABIAN OIL COMPANY
Reel/Frame 062513/0335 →
Continuity (1)
Related Publication 20240191604A1 · Jun 13, 2024
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