IP Library Granted Patent US 11,746,698
Granted Patent B2
US 11,746,698 · App. 18/065,838 · Granted Sep 5, 2023

Systems and methods to enhance intake air flow to a gas turbine engine of a hydraulic fracturing unit

Inventors: Tony Yeung (Houston, TX); Ricardo Rodriguez-Ramon (Houston, TX); Joseph Foster (Houston, TX)
Assignee: BJ Energy Solutions, LLC
F02C7/055F01D15/10F02C7/057F04B17/05E21B43/2607
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Quick Facts
Patent No.
US 11,746,698
App. No.
18/065,838
Granted
Sep 5, 2023
Kind
B2
Abstract

Systems and methods to increase intake air flow to a gas turbine engine of a hydraulic fracturing unit when positioned in an enclosure may include providing an intake expansion assembly to enhance intake air flow to the gas turbine engine. The intake expansion assembly may include an intake expansion wall defining a plurality of intake ports positioned to supply intake air to the gas turbine engine. The intake expansion assembly also may include one or more actuators connected to a main housing of the enclosure and the intake expansion assembly. The one or more actuators may be positioned to cause the intake expansion wall to move relative to the main housing between a first position preventing air flow through the plurality of intake ports and a second position providing air flow through the plurality of intake ports to an interior of the enclosure.

Claims (59)

1. A turbine engine enclosure to increase intake air flow to a turbine engine in the enclosure, the enclosure comprising:

a housing with a turbine engine positioned therein;

an intake expansion assembly comprising:

an intake expansion wall including

one or more intake ports, and

one or more actuators connected to the housing and positioned to transition the intake expansion wall between:

a first position in which air flow through the one or more intake ports is prevented, and

a second position in which the intake expansion wall is extended away from the housing relative to the first position, thereby to increase an outer dimension of the enclosure and allow air flow through the one or more intake ports to an interior of the enclosure; and

one or more filters connected to the intake expansion wall to filter air entering the enclosure via the one or more intake ports.

2. The enclosure of claim 1 , further comprising a flexible membrane extending between one or more walls of the housing and the intake expansion wall, the flexible membrane providing a barrier to prevent air from passing between the one or more housing walls and the intake expansion wall when the expansion wall is in the first position and the second position.

3. The enclosure of claim 2 , wherein the intake expansion assembly further comprises a roof including one or more filter slots, each of the one or more filter slots being positioned to receive one or more of the one or more filters.

4. The enclosure of claim 3 , wherein the one or more filters comprises a plurality of first filters, and the enclosure further comprises a plurality of second filters positioned in the intake expansion assembly between the plurality of first filters and an intake of the turbine engine.

5. The enclosure of claim 1 , further comprising an expansion base connected to the intake expansion wall, the expansion base including an expansion base intake port to provide intake flow between the one or more intake ports and an intake of the turbine engine.

6. A turbine engine enclosure comprising:

a housing having a turbine engine positioned therein;

an intake expansion assembly to enhance intake air flow to the turbine engine, the intake expansion assembly comprising:

an intake expansion wall comprising:

a first end,

a second end positioned opposite the first end,

one or more intake ports positioned to supply intake air to the turbine engine when positioned in the enclosure, and

one or more actuators connected to the housing and positioned to cause movement between a first position preventing air flow through the one or more intake ports and a second position providing air flow through the one or more intake ports to an interior of the enclosure adjacent the turbine engine;

one or more filters connected to the intake expansion wall to filter air entering the enclosure via the one or more intake ports;

an expansion base connected to the intake expansion wall, the expansion base including an expansion base intake port to provide intake flow between the one or more intake ports and an intake of the turbine engine when positioned in the enclosure; and

an intake duct connected to the expansion base and to connect to the intake of the turbine engine when positioned in the enclosure, the intake duct being flexible to move between a retracted position to an extended position.

7. The enclosure of claim 6 , further comprising one or more fans connected to the intake expansion assembly to draw air into the enclosure via the one or more intake ports.

8. The enclosure of claim 6 , wherein the first end defines an expansion perimeter of the intake expansion wall and is positioned to fit within a perimeter of the housing.

9. The enclosure of claim 6 , wherein the one or more actuators comprise one or more linear actuators including a first end connected to the housing and a second end connected to the intake expansion assembly and positioned such that activation of the one or more linear actuators causes the intake expansion wall to transition from the first position to the second position.

10. The enclosure of claim 9 , wherein the intake expansion assembly further comprises a roof panel, and wherein the roof panel comprises a perimeter edge extending laterally beyond an outer surface of the intake expansion wall, and the second end of the one or more actuators is connected to the perimeter edge of the roof panel.

11. The enclosure of claim 6 , wherein the one or more actuators comprise one or more rotary actuators including (a) an actuator base connected to one of (i) the housing or (ii) the intake expansion assembly, and (b) a rotary member connected to a linkage, the linkage being connected to one of the housing or the intake expansion assembly, such that activation of the one or more rotary actuators causes the intake expansion wall to transition from the first position to the second position.

12. A turbine engine enclosure to increase intake air flow to a turbine engine in the enclosure, the enclosure comprising:

a housing with a turbine engine positioned therein;

an intake expansion assembly to enhance intake air flow to the turbine engine, the intake expansion assembly comprising:

an intake expansion wall including

one or more intake ports, and

one or more actuators connected to the housing and positioned to transition the intake expansion wall between a first position and a second position;

one or more filters connected to the intake expansion wall of such that the one or more filters are occluded by the housing when the intake expansion wall is in the first position and such that the one or more filters are exposed to filter air entering the enclosure via the one or more intake ports when the intake expansion wall is in the second position; and

a supervisory controller in communication with the one or more actuators and configured to cause the one or more actuators to activate to transition the intake expansion wall between the first position and the second position.

13. The enclosure of claim 12 , further comprising one or more sensors configured to be in communication with the supervisory controller, the one or more sensors also being connected to one or more of the housing or the intake expansion assembly and positioned to generate one or more position signals indicative of a position of the intake expansion assembly relative to the housing.

14. The enclosure of claim 13 , wherein the supervisory controller further is configured to be in communication with a turbine controller configured to initiate operation of the turbine engine, and wherein the supervisory controller still further is configured to:

receive the one or more position signals from the one or more sensors,

determine the position of the intake expansion assembly relative to the housing by use of the position signals, and

based at least in part on the position, prevent initiation of operation of the turbine engine.

15. A turbine engine enclosure comprising:

a housing with a turbine engine positioned therein, the housing including a plurality of housing walls;

an intake expansion assembly to enhance intake air flow to the turbine engine, the intake expansion assembly comprising:

an intake expansion wall including

an intake port, and

an actuator connected to the housing and positioned to transition the intake expansion wall between:

a first position in which air flow through the intake port is prevented, and

a second position in which the intake expansion wall is extended away from the housing relative to the first position, thereby to allow air flow through the intake port to an interior of the enclosure;

a filter connected to the intake expansion wall to filter air entering the enclosure via the intake port such that the filter is extended away from the housing with the intake expansion wall when the intake expansion wall is transitioned to the second position;

a fan connected to the intake expansion assembly to draw air into the enclosure via the intake port; and

a supervisory controller in communication with the fan and configured to activate the fan when the intake expansion wall is in the second position.

16. The enclosure of claim 15 , further comprising cooling coils connected to an interior of the intake expansion assembly and positioned to cool air prior to entering an intake of the turbine engine.

17. The enclosure of claim 15 , further comprising an interior partition connected to an interior of the intake expansion assembly and positioned to provide a first portion of the interior of the intake expansion assembly and a second portion of the interior of the intake expansion assembly.

18. The enclosure of claim 17 ,

wherein the fan is a first fan that is connected to the interior of the intake expansion assembly and is positioned to pull air into the first portion of the interior of the intake expansion assembly, and

the enclosure further comprising a second fan connected to the interior of the intake expansion assembly and positioned to pull air into the second portion of the interior of the intake expansion assembly.

19. The enclosure of claim 1 , wherein the intake expansion assembly further comprises a roof, and the enclosure further comprising one or more seal material segments positioned on an interior side of the roof and positioned to provide a seal between one or more components positioned in an interior of the intake expansion assembly and the interior side of the roof.

Assignments (3)
SECURITY INTEREST Recorded Sep 17, 2024
From: BJ ENERGY SOLUTIONS. LLC
To: ECLIPSE BUSINESS CAPITAL LLC. AS AGENT
Reel/Frame 068970/0125 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2022
From: YEUNG, TONY; RODRIGUEZ-RAMON, RICARDO; FOSTER, JOSEPH
To: BJ SERVICES, LLC
Reel/Frame 062088/0050 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2022
From: BJ SERVICES, LLC
To: BJ ENERGY SOLUTIONS, LLC
Reel/Frame 062088/0304 →
Continuity (7)
Continuation 17663237 · May 13, 2022
Continuation 17590126 · Feb 1, 2022
Continuation 17528988 · Nov 17, 2021
Continuation 17162022 · Jan 29, 2021
Continuation 16946291 · Jun 15, 2020
Provisional Application 62704987 · Jun 5, 2020
Related Publication 20230120930A1 · Apr 20, 2023