IP Library Granted Patent US 11,773,664
Granted Patent B1
US 11,773,664 · App. 18/204,062 · Granted Oct 3, 2023

Variable frequency drive configuration for electric driven hydraulic fracking system

Inventors: John Fischer (Hempstead, TX); John J. Crosetto (Oak Forest, IL); David Kubricht (Cypress, TX); Richard Cheatham (Houston, TX); Jeffrey Pollack (Joliet, IL); Chad Lawman (Joliet, IL); David Todd (Houston, TX); Tyler Nolen (Houston, TX)
Assignee: National Service Alliance—Houston LLC
E21B21/08E21B4/04E21B7/022E21B43/2605E21B43/2607F04B17/03F04B17/06F04D13/0686H02B1/52H02B5/00H02J13/00036H02K7/18H02P27/04E21B4/02F05B2220/706F05B2240/941
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Quick Facts
Patent No.
US 11,773,664
App. No.
18/204,062
Granted
Oct 3, 2023
Kind
B1
Abstract

An electric driven hydraulic fracking system is disclosed. A pump configuration that includes the single VFD, the single shaft electric motor, and the single hydraulic pump that is mounted on the single pump trailer. A pump configuration includes a single VFD configuration, the single shaft electric motor, and the single shaft hydraulic pump mounted on the single pump trailer. The single VFD configuration converts the electric power at the power generation voltage level distributed from the power distribution trailer to a VFD voltage level and drives the single shaft electric motor to control the operation of the single shaft electric motor and the single hydraulic pump. The VFD voltage level is a voltage level that is required to drive the single shaft electric motor. The VFD configuration also controls operation of the auxiliary systems based on the electric power at the auxiliary voltage level.

Claims (55)

1. An electric driven hydraulic fracking system that pumps a fracking media into a fracking well to execute a fracking operation to extract a fluid from the fracking well, comprising:

a VFD configuration that is configured to:

reduce a level of harmonics in a VFD current waveform included in a VFD voltage signal at a VFD voltage level that propagate back to a power generation system to below a level of total harmonic distortion that satisfies IEEE-519, and

drive an electric motor to control an operation of the electric motor and a hydraulic pump with the level of total harmonic distortion that satisfies IEEE-519 in the VFD current waveform of the electric power at the VFD voltage level.

2. The electric driven hydraulic fracking system of claim 1 , wherein the VFD configuration is further configured to:

mitigate the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level, wherein the VFD voltage signal is converted from an AC voltage signal generated by a power generation system, and

drive the electric motor to control the operation of the electric motor and the hydraulic pump with the mitigated level of harmonics included in the VFD current waveform of the electric power at the VFD voltage level.

3. The electric driven hydraulic fracking system of claim 2 , wherein the VFD configuration is further configured to:

receive electric power generated by the power generation system at a power generation voltage level, wherein an AC voltage signal is associated with the electric power at the power generation voltage level; and

convert the AC voltage signal associated with the electric power at the power generation voltage level to the VFD voltage signal at the VFD voltage level.

4. The electric driven hydraulic fracking system of claim 2 , wherein the VFD configuration is further configured to:

apply a plurality of phase changing sinusoidal signals to the AC voltage signal associated with the electric power at the power generation voltage level; and

mitigate the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level based on the plurality of phase changing sinusoidal signals applied to the AC voltage signal to convert the AC voltage signal to the VFD voltage signal.

5. The electric driven hydraulic fracking system of claim 4 , wherein the VFD configuration is further configured to apply each phase changing sinusoidal signal at a phase shift relative to each other phase changing sinusoidal signal in transitioning the AC voltage signal to the VFD voltage signal to reduce the level of harmonics in the VFD current waveform included in the VFD voltage signal that propagate back to the power generation system to below the level of total harmonic distortion that satisfies IEEE-519.

6. The electric driven hydraulic fracking system of claim 5 , wherein the VFD configuration is further configured to reduce the level of harmonics introduced at a common point of coupling between the VFD configuration and the power generation system to enable the power generation system to provide the electric power at the power generation level and to prevent a disruption to the power generation system.

7. The electric driven hydraulic fracking system of claim 2 , wherein the VFD configuration comprises:

a VFD transformer that is configured to:

apply a phase shift to the plurality of phase changing sinusoidal signals included in the AC sinusoidal signal of the electric power at the power generation voltage level that is generated by the power generation system and received by the VFD configuration, and

convert the electric power at the power generation voltage level to the electric power at the VFD voltage level based on the phase shift of each of the sinusoidal signals included in the AC voltage signal of the electric power at the power generation voltage level to mitigate the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level.

8. A method for an electric driven hydraulic fracking system that pumps a fracking media into a fracking well to execute a fracking operation to extract a fluid from the fracking well, comprising:

reducing a level of harmonics in a VFD current waveform included in a VFD voltage signal at a VFD voltage level that propagate back to a power generation system to below a level of total harmonic distortion that satisfies IEEE-519; and

driving an electric motor to control an operation of the electric motor and a hydraulic pump with the level of total harmonic distortion that satisfies IEEE-519 in the VFD current waveform of the electric power at the VFD voltage level.

9. The method of claim 8 , further comprising:

mitigating the level of harmonics in the VFD current waveform included in a VFD voltage signal at a VFD voltage level, wherein the VFD voltage signal is converted from an AC voltage signal generated by the power generation system; and

driving the electric motor to control the operation of the electric motor and the hydraulic pump with the mitigated level of harmonics included in the VFD current waveform of the electric power at the VFD voltage level.

10. The method of claim 9 , further comprising:

receiving electric power generated by the power generation system at a power generation voltage level, wherein an AC voltage signal is associated with the electric power at the power generation voltage level; and

converting the AC signal associated with the electric power at the power generation voltage level to the VFD voltage signal at the VFD voltage level.

11. The method of claim 9 , wherein the mitigating comprises:

applying a plurality of phase changing sinusoidal signals to the AC voltage signal associated with the electric power at the power generation voltage level; and

mitigating the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level based on the plurality of phase changing sinusoidal signals applied to the AC voltage signal to convert the AC voltage signal to the VFD voltage signal.

12. The method of claim 11 , wherein the converting further comprises:

applying each phase changing sinusoidal signal at a phase shift relative to each other phase changing sinusoidal signal in transitioning the AC voltage signal to the VFD voltage signal to reduce the level of harmonics in the VFD current waveform included in the VFD voltage signal that propagates back to the power generation system to below the level of total harmonic distortion that satisfies IEEE-519.

13. The method of 12 , wherein the converting further comprises:

reducing the level of harmonics introduced at a common point of coupling between the VFD and the power generation system to enable the power generation system to provide the electric power at the power generation voltage level to prevent a disruption to the power generation system.

14. The method of claim 9 , wherein the converting further comprises:

applying by a VFD transformer a phase shift to the plurality of phase changing sinusoidal signals included in the AC sinusoidal signal of the electric power at the power generation voltage level that is provided by the power distribution trailer to the VFD configuration; and

converting the electric power at the power generation voltage level to the electric power at the VFD voltage level based on the phase shift of each of the sinusoidal signals included in the AC voltage signal of the electric power at the power generation voltage level to mitigate the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level.

15. The method of claim 14 , further comprising:

receiving the electric power by the VFD transformer at the power generation voltage level and the electric power at the auxiliary voltage level as distributed by a power distribution trailer; and

pre-charging a plurality of capacitors associated with the VFD configuration to a voltage threshold with the electric power at the auxiliary voltage level to prevent an in-rush current that propagates to the power generation system after the VFD transformer provides the electric power at the power generation voltage level to the VFD configuration before the capacitors are pre-charged to a voltage threshold, wherein the voltage threshold is a percentage of the power generation voltage level that the capacitors are to be pre-charged to prevent the in-rush current after the VFD transformer provides the electric power at the power generation voltage level.

16. An electric driven hydraulic fracking system that pumps a fracking media into a fracking well to execute a fracking operation to extract a fluid from the fracking well, comprises:

a plurality of VFD configurations with each VFD configuration configured to:

reduce a level of harmonics in a VFD current waveform included in a VFD voltage signal at a VFD voltage level that propagate back to a power generation system to below a level of total harmonic distortion that satisfies IEEE-519, and

drive a corresponding electric motor from a plurality of electric motors to control an operation of each corresponding electric motor and a corresponding hydraulic pump from a plurality of hydraulic pumps with level of total harmonic distortion that satisfies IEEE-519 in the VFD current waveform of the electric power at the VFD voltage level.

17. The electric driven hydraulic fracking system of claim 16 , wherein each VFD configuration is further configured to:

mitigate the level of harmonics in the VFD current waveform included in a VFD voltage signal at the VFD voltage level, wherein the VFD voltage signal is converted from an AC voltage signal generated by the power generation system, and

drive the corresponding electric motor from the plurality of electric motors to control the operation of each corresponding electric motor and the corresponding hydraulic pump from the plurality of hydraulic pumps with the mitigated level of harmonics included in the VFD current waveform of the electric power at the VFD voltage level.

18. The electric driven hydraulic fracking system of claim 17 , wherein each VFD configuration is further configured to:

receive electric power generated by the power generation system at the power generation voltage level, wherein an AC voltage signal is associated with the electric power at the power generation voltage level; and

convert the AC voltage signal associated with the electric power at the power generation voltage level to the VFD voltage signal at the VFD voltage level.

19. The electric driven hydraulic fracking system of claim 18 , wherein each VFD configuration is further configured to:

apply a plurality of phase changing sinusoidal signal to the AC voltage signal associated with the electric power at the power generation voltage level; and

mitigate the level of harmonics in the VFD current waveform included in the VFD voltage signal at the VFD voltage level based on the plurality of phase changing sinusoidal signals applied to the AC voltage signal to convert the AC voltage signal to the VFD voltage signal.

20. The electric driven hydraulic fracking system of claim 18 , wherein each VFD configuration is further configured to apply each phase changing sinusoidal signal at a phase shift relative to each other phase changing sinusoidal signal in transitioning each corresponding AC voltage signal to each corresponding VFD voltage signal to reduce the level of harmonics in the VFD current waveform included in each corresponding VFD voltage signal that propagates back to the power generation system to below the level of total harmonic distortion that satisfies IEEE-519.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2023
From: NATIONAL SERVICE ALLIANCE HOUSTON, LLC
To: HALLIBURTON ENERGY SERVICES, INC.
Reel/Frame 065359/0658 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2023
From: FISCHER, JOHN; CROSETTO, JOHN J.; KUBRICHT, DAVID; CHEATHAM, RICHARD; POLLACK, JEFFREY; LAWMAN, CHAD; TODD, DAVID; NOLEN, TYLER
To: NATIONAL SERVICE ALLIANCE - HOUSTON LLC
Reel/Frame 063812/0365 →
Continuity (8)
Continuation 17982701 · Nov 8, 2022
Continuation 17735759 · May 3, 2022
Continuation 17480809 · Sep 21, 2021
Continuation 17226953 · Apr 9, 2021
Continuation 17134860 · Dec 28, 2020
Continuation 16943719 · Jul 30, 2020
Continuation 16790581 · Feb 13, 2020
Provisional Application 62805521 · Feb 14, 2019
Cited By (4)
US 12,385,336 US 12,385,378 US 12,460,524 US 12,503,923