IP Library Granted Patent US 12,297,823
Granted Patent B2
US 12,297,823 · App. 18/418,005 · Granted May 13, 2025

Electrical submersible pump control

Inventors: Albert Hoefel (Sugar Land, TX); Gocha Chochua (Katy, TX); Yves-Marie Clet Robert Subervie (Houston, TX); Jonathan Wun Shiung Chong (Calgary, CA)
Assignee: Sensia LLC
F04B47/00E21B43/128E21B47/008F04B49/065F04B49/20F04D13/10F04D15/0066H02K5/132H02K11/21H02P23/14H02P29/64F04B17/03F04B2203/0201F04B2203/0202F04B2203/0204F04B2203/0205F04B2203/0207F04B2203/0209F04B2205/00H02P2203/09
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,297,823
App. No.
18/418,005
Granted
May 13, 2025
Kind
B2
Abstract

A system, method, and computer-readable medium for determining the flow rate and fluid density in an electrical submersible pump (ESP) and controlling the ESP based on the flow rate and density. In one implementation, an ESP system includes an ESP, drive circuitry, a current sensor, a voltage sensor, and a processor. The ESP includes an electric motor. The drive circuitry is electrically coupled to the ESP and is configured to provide an electrical signal to power the ESP. The current sensor is configured to measure a current of the electrical signal. The voltage sensor is configured to measure a voltage of the electrical signal. The processor is configured to calculate speed of a shaft of the electric motor based on a frequency induced by rotation of the motor detected in the current. The processor is also configured to calculate a density of fluid in the ESP based on the speed.

Claims (66)

1. An electrical submersible pump system for an electrical submersible pump (ESP) comprising an electric motor, the electrical submersible pump system comprising:

drive circuitry configured to be electrically coupled to the ESP and configured to provide an electrical signal to power the ESP;

a current sensor configured to sense current of the electrical signal;

a voltage sensor configured to sense a voltage of the electrical signal; and

a processing circuit configured to:

calculate speed of a shaft of the electric motor based on a frequency induced by rotation of the electric motor detected in the current;

calculate a density of a fluid in the ESP based on the speed;

determine a torque in the ESP based on the current of the electrical signal, a measured voltage of the electrical signal, a resistance of a conductor that electrically couples the ESP to the drive circuitry, and a resistance of a stator of the ESP; and

adjust the speed of the electric motor based on at least one of the speed of the shaft, the density of the fluid, the torque in the ESP, or a flow rate of the fluid in the ESP.

2. The electrical submersible pump system of claim 1 , wherein the processing circuit is configured to:

determine the flow rate of the fluid in the ESP based on the speed.

3. The electrical submersible pump system of claim 1 , wherein the processing circuit is configured to:

determine a value of head based on the speed, wherein the density is further based on the value of head.

4. The electrical submersible pump system of claim 1 , wherein the processing circuit is configured to:

adjust the torque in the ESP based on a viscous drag value of the ESP.

5. The electrical submersible pump system of claim 1 , wherein the processing circuit is configured to:

determine the resistance of the conductor as a function of a temperature of the conductor;

determine the resistance of the stator as a function of a temperature of the electric motor; and

adjust the speed of the electric motor to account for the resistance of the conductor and the resistance of the stator.

6. The electrical submersible pump system of claim 1 , wherein the processing circuit is configured to:

adjust the speed of the electric motor to account for at least one of the resistance of the conductor or the resistance of the stator.

7. The electrical submersible pump system of claim 1 , further comprising:

an intake pressure sensor coupled to the ESP and configured to measure a pressure of the fluid at an intake of the ESP; and

a discharge pressure sensor coupled to the ESP and configured to measure a pressure of the fluid at an outlet of the ESP;

wherein the processing circuit is configured to:

determine a pressure-to-torque ratio in the ESP based on the pressure of the fluid at the intake of the ESP, and the pressure of the fluid at the outlet of the ESP;

determine the flow rate of the fluid in the ESP based on at least the pressure-to-torque ratio, wherein the density of the fluid in the ESP is further based on the flow rate of the fluid in the ESP; and

adjust the speed of the electric motor based on the pressure-to-torque ratio in the ESP.

8. The electrical submersible pump system of claim 7 , wherein the processing circuit is configured to calculate a flow-to-speed ratio based on an efficiency curve for the ESP and the pressure-to-torque ratio, wherein the efficiency curve is recalibrated based on receiving new test data corresponding to subsequent steady state controlled conditions.

9. The electrical submersible pump system of claim 8 , wherein the processing circuit is configured to calculate the flow rate of the fluid in the ESP based on the flow-to-speed ratio.

10. A method for controlling an electrical submersible pump (ESP), comprising:

providing an electrical drive signal to power the ESP;

calculating a speed of a shaft of an electric motor of the ESP based on a frequency induced by rotation of the electric motor detected in a current of the electrical drive signal;

calculating a density of a fluid in the ESP based on the speed;

determining a torque in the ESP based on the current of the electrical drive signal, a voltage of the electrical drive signal, a resistance of a conductor that electrically couples the ESP to drive circuitry, and a resistance of a stator of the ESP; and

adjusting the speed of the electric motor based on at least one of the speed of the shaft, the density of the fluid, the torque in the ESP, or a flow rate of the fluid in the ESP.

11. The method of claim 10 , further comprising determining the flow rate of the fluid in the ESP based on the speed.

12. The method of claim 10 , further comprising determining a value of head based on the speed, wherein the density is further based on the value of head.

13. The method of claim 10 , further comprising:

determining a resistance of the conductor as a function of a temperature of the conductor;

determining a resistance of the stator as a function of a temperature of the electric motor; and

adjust the speed of the electric motor to account for the resistance of the conductor and the resistance of the stator.

14. The method of claim 10 , further comprising:

receiving a first pressure of the fluid at an intake of the ESP;

receiving a second pressure of the fluid at an outlet of the ESP;

determining a pressure-to-torque ratio in the ESP based on the first pressure, the second pressure and the torque in the ESP;

determining the flow rate of the fluid in the ESP based on at least the pressure-to-torque ratio;

determining density of the fluid in the ESP based on at least one of the speed of the shaft or the flow rate of the fluid in the ESP; and

adjusting the speed of the electric motor based on the pressure-to-torque ratio in the ESP.

15. The method of claim 14 , further comprising calculating a flow-to-speed ratio based on an efficiency curve for the ESP and the pressure-to-torque ratio.

16. The method of claim 15 , further comprising calculating the flow rate of the fluid in the ESP based on the flow-to-speed ratio.

17. A non-transitory computer-readable medium encoded with instructions that, when executed by a processor, cause operations comprising:

receiving a measurement of a current of an electrical drive signal powering an electrical submersible pump (ESP);

receiving a measurement of a voltage of the electrical drive signal;

calculating a speed of a shaft of an electric motor of the ESP based on a frequency detected in the current, wherein the frequency is induced in the current by rotation of the electric motor;

calculating:

a density of a fluid in the ESP based on the speed of the shaft,

a flow rate of the fluid in the ESP based on the speed of the shaft, and

a torque in the ESP based on the current, the voltage, a resistance of a conductor of the ESP, and a resistance of a stator of the ESP; and

adjusting the speed of the ESP based on at least one of the speed of the shaft, the density of the fluid, the torque in the ESP, or the flow rate of the fluid in the ESP.

18. The non-transitory computer-readable medium of claim 17 , wherein the instructions, when executed by the processor cause operations comprising:

receiving a measurement of a pressure of the fluid at an intake of the ESP;

receiving a measurement of a pressure of the fluid at an outlet of the ESP; and

calculating a ratio of the pressure across the ESP to the torque.

19. The non-transitory computer-readable medium of claim 18 , wherein the instructions, when executed by the processor, cause operations comprising calculating a flow-to-speed ratio based on an efficiency curve for the ESP and the ratio of the pressure across the ESP to the torque.

20. The non-transitory computer-readable medium of claim 19 , wherein the instructions, when executed by the processor, cause operations comprising calculating the flow rate based on the flow-to-speed ratio.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 14, 2025
From: HOEFEL, ALBERT; CHOCHUA, GOCHA; SUBERVIE, YVES-MARIE CLET ROBERT; CHONG, JONATHAN WUN SHIUNG
To: SCHLUMBERGER TECHNOLOGY CORPORATION
Reel/Frame 070830/0817 →
NUNC PRO TUNC ASSIGNMENT Recorded Apr 14, 2025
From: SCHLUMBERGER TECHNOLOGY CORPORATION
To: SENSIA LLC
Reel/Frame 070830/0950 →
Continuity (3)
Continuation 17292376
Provisional Application 62757523 · Nov 8, 2018
Related Publication 20240159232A1 · May 16, 2024
References Cited (27)
US 10145224B1 · Shenoy et al. · 2018 [cited by applicant]
US 11913444B2 · Hoefel · 2024 [cited by examiner]
US 20040064292A1 · Beck et al. · 2004 [cited by applicant]
US 20080067116A1 · Anderson · 2008 [cited by examiner]
US 20120270325A1 · Sperry et al. · 2012 [cited by applicant]
US 20170022796A1 · Joshi et al. · 2017 [cited by applicant]
US 20170022797A1 · Joshi et al. · 2017 [cited by applicant]
US 20190085682A1 · Etter · 2019 [cited by examiner]
CN 101680793A · 2010 [cited by applicant]
CN 105676633A · 2016 [cited by applicant]
CN 105765476A · 2016 [cited by applicant]
CN 106468167A · 2017 [cited by applicant]
EP 2162981B1 · 2010 [cited by applicant]
WO WO2020097301A1 · 2020 [cited by applicant]
Chinese Office Action on CN Appl. Ser. No. 201980088146.7 dated Dec. 30, 2022 (22 pages). [cited by applicant]
Chinese Office Action with Search Report for CN Appl. Ser. No. 201980088146.7 dated Aug. 30, 2023 (26 pages). [cited by applicant]
EPO Search Report on EP Appl. Ser. No. 19881556.5 dated Jul. 5, 2022 (9 pages). [cited by applicant]
EPO Examination Report for EPO Appl. Ser. No. 19881556.5 dated Oct. 11, 2023 (6 pages). [cited by applicant]
International Preliminary Report on Patentability in PCT Appl. Ser. No. PCT/US2019/060224 dated May 20, 2021 (6 pages). [cited by applicant]
International Search Report and Written Opinion on PCT Appl. Ser. No. PCT/US2019/060224 dated Feb. 28, 2020 (9 pages). [cited by applicant]
Kim, Electric Motor Control ([edition unavailable]). “Chapter 3—Alternating current motors: Synchronous motor and induction motor,” Copyright 2017 Elsevier Inc (pp. 95-152). [cited by applicant]
Kim, Electric motor control: DC, AC, and BLDC motors. Chapter 3 “Alternating current motors: synchronous motor and induction motor” Elsevier, 2017, (pp. 95-152). [cited by applicant]
Lea et al., “Gas well deliquification,” Gulf Professional Publishing, Chapter 12 Electrical submersible pumps, 2019, (pp. 237-308). [cited by applicant]
Morrison et al. “Pump affinity laws modified to include viscosity and gas effects” 46th Turbomachinery and 33rd Pump Symposia, Houston, TX. 2017 (16 pages). [cited by applicant]
SA Office Action on SA Appl. Ser. No. 521422011 dated Dec. 14, 2022 (7 pages). [cited by applicant]
Vodovozov et al. “Control of liquid density to prevent abnormal pumping performance” 7th WSEAS International Conference on Waste Management, Water Pollution, Air Pollution, Indoor Climate WWAI, 2013 (pp. 217-222). [cited by applicant]
Zhu et al. “CFD simulation and experimental study of oil viscosity effect on multi-stage electrical submersible pump (ESP) performance.” Journal of Petroleum Science and Engineering, vol. 146, 2016 (pp. 735-745). [cited by applicant]