IP Library Granted Patent US 11,578,578
Granted Patent B2
US 11,578,578 · App. 16/927,880 · Granted Feb 14, 2023

Automated system for monitoring and controlling water transfer during hydraulic fracturing

Inventors: Greggory L. Hardin (Coleman, TX); Jeffrey Scott Russo (Charleston, WV)
Assignee: Select Energy Services, LLC
E21B43/2607E21B21/106E21B43/26E21B44/00G05D9/12
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Quick Facts
Patent No.
US 11,578,578
App. No.
16/927,880
Granted
Feb 14, 2023
Kind
B2
Abstract

An exemplary automated system and method are provided for monitoring and controlling the transfer of water to water tanks or containers during a water transfer process. In one embodiment, the automated system includes a first manifold, a plurality of controllable valves, a plurality of level indicators, a pump, controller(s), storage device, and display. In one implementation, the controller is configured to control the opening/closing of the plurality of controllable valves based, at least in part, on the water levels of the frac water tanks. The controller(s) may include one or more control modes. In other implementations, the system may include a second manifold (or additional manifolds) and the capability to blend water from two or more sources, such as from an impaired water source, using either a single or multiple-manifold configuration. In other implementations, an assembly is provided, such as a skid or trailer mounted assembly, for use in a mobile automated system.

Claims (63)

1. An automated system for monitoring and controlling a transfer of water from a first water source to one or more of a plurality of water storage containers, the automated system comprising:

a first manifold having at least one input and a plurality of output openings, the first manifold configured to receive water provided at least partially from the first water source through the at least one input, and to supply water to two or more of the plurality of output openings for use in the transfer of water;

a plurality of controllable valves that have a valve and a valve opening position, wherein two or more of the plurality of controllable valves in fluid communication between an input to one of the plurality of water storage containers and with one or more of the plurality of output openings of the first manifold;

a first pump configured to receive water from the first water source, and to pump water through a discharge of the first pump;

a water treatment system positioned between the discharge of the first pump and the at least one input of the first manifold with the plurality of output openings, wherein the water treatment system is configured to receive and treat at least a portion of the water pumped through the discharge of the first pump and to provide such water to at least one input of the first manifold with the plurality of output openings;

one or more controllers configured to control the opening and closing of two or more of plurality of controllable valves to a desired opening position so that water from the first water source in the first manifold may be provided to one or more of the plurality of water storage containers through two or more of the plurality of output openings of the first manifold;

one or more displays that receive and display information that includes a water level of one or more of the plurality of water storage containers, and one or more of the valve opening positions of one or more of the plurality of controllable valves; and

a storage device configured to receive and store information that includes one or more of the following selected from the group consisting of:

the water level of one or more of the plurality of water storage containers,

a water volume of one or more of the plurality of water storage containers, and

the valve opening position of one or more of the plurality of controllable valves.

2. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the water level of one or more of the plurality of water storage containers is provided by one or more of a plurality of level indicators, wherein one or more of the plurality of level indicators is configured to one of the plurality of water storage containers to determine the water level at such one of the plurality of water storage containers.

3. The automated system of claim 2 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the automated system further comprising:

a plurality of water level displays, wherein one or more of the plurality of water level displays is configured to receive and display the water level of one of the plurality of water storage containers as determined by a corresponding one of the plurality of level indicators that is configured relative to one of the plurality of water storage containers to determine the water level at such one of the plurality of water storage containers.

4. The automated system of claim 2 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein one or more of the plurality of level indicators is configured relative to one of the plurality of water storage containers to determine the water volume present at such one of the plurality of water storage containers that is based at least in part on the corresponding water level at such one of the plurality of water storage containers.

5. The automated system of claim 2 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the automated system further comprising:

a plurality of cameras operable to generate video that can be viewed remotely, the cameras positioned to view one or more selected from the group consisting of:

one or more of the plurality of controllable valves,

one or more of the plurality of level indicators, and

one or more of the water storage containers, and

the first pump.

6. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the automated system further comprising:

a second pump configured to be remotely operated, to receive water from the first water source, and to pump water through a discharge of the second pump, wherein at least a portion of the water pumped through the discharge of the second pump is received at the at least one input of the first manifold with the plurality of output openings, and wherein the one or more controllers is further operable to control an operation of the second pump to allow water to be pumped to the at least one input of the first manifold.

7. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the transfer of water is provided in support of a hydraulic fracturing process.

8. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the water volume and the water level of one or more of the plurality of water storage containers are related based on the geometric shape of one or more of the plurality of water storage containers.

9. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the water level is provided as the water volume.

10. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the one or more controllers configured to control the opening and closing of two or more of plurality of controllable valves to a desired opening position so that water from the first water source in the first manifold may be provided to one or more of the plurality of water storage containers through two or more of the plurality of output openings of the first manifold is based at least partially on the water level of the plurality of water storage.

11. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the one or more displays operable to receive and display information includes the water level of one or more of the plurality of water storage containers as determined at least partially by one or more of a plurality of level indicators.

12. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the one or more controllers is further operable to control an operation of the first pump to allow water to be pumped to the at least one input of the first manifold.

13. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the automated system further comprising:

a second pump configured to be remotely operated, to receive water from a second water source, and to pump water through a discharge of the second pump, wherein at least a portion of the water pumped through the discharge of the second pump is received at the at least one input of the first manifold with the plurality of output openings, and wherein the one or more controllers is further operable to control an operation of the second pump to allow water to be pumped to the at least one input of the first manifold.

14. The automated system of claim 13 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the first water source includes water, from one or more selected from the group consisting of impaired water, frac flowback water, and production water, and the second water source includes water, from one or more selected from the group consisting of impaired water, frac flowback water, and production water.

15. The automated system of claim 13 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein the plurality of controllable valves are manually controlled and are manually set to a desired valve opening position.

16. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the water treatment system comprising:

an injection port adjacent an opening in the first manifold and wherein a substance may be injected into the system during the transfer of water, and wherein the substance injected in the injection port includes one or more selected from the group consisting of chlorine dioxide, an anti-corrosive agent, an anti-freeze, an alcohol, a fluid with a freezing point lower than the freezing point of water, a pH controlling agent, and a decontamination agent.

17. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the water treatment system comprising:

an injection port positioned before the at least one input of the first manifold, and wherein a substance may be injected into the system during the transfer of water, and wherein the substance injected in the injection port includes one or more selected from the group consisting of chlorine dioxide, an anti-corrosive agent, an anti-freeze, an alcohol, a fluid with a freezing point lower than the freezing point of water, a pH controlling agent, and a decontamination agent.

18. The automated system of claim 1 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, the automated system further comprising:

a second manifold configured to receive water from a second water source through at least one input, and to supply water from the second water source to a plurality of output openings of the second manifold;

a second plurality of controllable valves, wherein one or more of the second plurality of controllable valves is configured to be in fluid communication between an input to one of the plurality of water storage containers and with one of the plurality of output openings of the second manifold;

a second pump configured to be remotely operated, to receive water from the second water source, and to pump water through a discharge to the input of the second manifold with the plurality of output openings of the second manifold; and

wherein the one or more controllers are further configured to at least partially control the operation of the second pump to allow water from the second water source to be pumped into the second manifold, and wherein the one or more controllers are in communication with the second plurality of controllable valves and configured to control the opening and closing of one or more of the second plurality of controllable valves to a desired opening position so that water from the second water source in the second manifold may be provided to the plurality of water storage containers through the plurality of output openings of the second manifold.

19. An automated system implemented in a mobile container for monitoring and controlling the transfer of water from a first water source and water from a second water source to a plurality of frac water storage containers for use during a hydraulic fracturing process, the automated system comprising:

a first manifold configured to receive water from the first water source through at least one input, and to supply water to a plurality of output openings for use in the hydraulic fracturing process;

a plurality of controllable valves, wherein one or more of the plurality of controllable valves is configured to be in fluid communication between an input to one of the plurality of frac water storage containers and with one of the plurality of output openings of the first manifold;

a second manifold operable to receive water from the second water source through at least one input, and to supply water from the second water source to a plurality of output openings of the second manifold;

a second plurality of controllable valves, wherein one or more of the second plurality of controllable valves is configured to be in fluid communication between an input to one of the plurality of frac water storage containers and with one of the plurality of output openings of the second manifold;

one or more controllers configured to at least partially control the operation of at least a first pump to allow water from the first water source to be pumped into the first manifold, and wherein the one or more controllers are in communication with the plurality of controllable valves and are configured to control the opening and closing of one or more of the plurality of controllable valves to a desired opening position so that water from the first water source in the first manifold may be provided to one or more of the plurality of frac water storage containers through the plurality of output openings of the first manifold based at least partially on a water level of the plurality of frac water storage containers, wherein the one or more controllers are further configured to at least partially control the operation of a second pump to allow water from the second water source to be pumped into the second manifold, and wherein the one or more controllers are in communication with the second plurality of controllable valves and are configured to control the opening and closing of one or more of the second plurality of controllable valves to a desired opening position so that water from the second water source in the second manifold may be provided one or more of the plurality of frac water storage containers through the plurality of output openings of the second manifold based at least partially on the water level of the plurality of frac water storage containers;

a water treatment system positioned between a discharge of the first pump and the at least one input of the first manifold, wherein the water treatment system is configured to receive and treat at least a portion of the water pumped through the discharge of the first pump and to provide such water to at least one input of the first manifold;

one or more displays operable to receive and display information that includes the water level of one or more of the plurality of frac water storage containers, the valve opening positions of one or more of the plurality of controllable valves and one or more of the second plurality of controllable valves, the flow of water into the first manifold, the flow of water into the second manifold, and operating information of the first pump and the second pump; and

a storage device configured to receive and store information that includes two or more selected from the group consisting of the water level of one or more of the plurality of frac water storage containers, a water volume of one or more of the plurality of frac water storage containers, the valve opening positions of one or more of the plurality of controllable valves and one or more of the second plurality of controllable valves, operating information of the first pump, operating information of the second pump, and the flow of water into the first manifold and the second manifold.

20. An automated system for monitoring and controlling a transfer of water from a first water source to one or more of a plurality of water storage containers, the automated system comprising:

a first manifold having at least one input and a plurality of output openings, the first manifold configured to receive water provided at least partially from the first water source through the at least one input, and to supply water to two or more of the plurality of output openings for use in the transfer of water;

a plurality of controllable valves that have a valve and a valve opening position, wherein two or more of the plurality of controllable valves in fluid communication between an input to one of the plurality of water storage containers and with one or more of the plurality of output openings of the first manifold;

a first pump configured to receive water from the first water source, and to pump water through a discharge of the first pump;

a water treatment system comprising an injection port, the injection port positioned adjacent or within the first manifold, the water treatment system configured to treat at least a portion of the water pumped through the discharge of the first pump that is provided to at least one input of the first manifold with the plurality of output openings;

one or more controllers configured to control the opening and closing of two or more of plurality of controllable valves to a desired opening position so that water from the first water source in the first manifold may be provided to one or more of the plurality of water storage containers through two or more of the plurality of output openings of the first manifold;

one or more displays that receive and display information that includes a water level of one or more of the plurality of water storage containers, and one or more of the valve opening positions of one or more of the plurality of controllable valves; and

a storage device configured to receive and store information that includes one or more of the following selected from the group consisting of:

the water level of one or more of the plurality of water storage containers,

a water volume of one or more of the plurality of water storage containers, and

the valve opening position of one or more of the plurality of controllable valves.

21. The automated system of claim 20 for monitoring and controlling the transfer of water from the first water source to one or more of the plurality of water storage containers, wherein a substance may be injected into the injection port of the water treatment system during the transfer of water, the substance injected in the injection port includes one or more selected from the group consisting of chlorine dioxide, an anti-corrosive agent, an anti-freeze, an alcohol, a fluid with a freezing point lower than the freezing point of water, a pH controlling agent, and a decontamination agent.

Assignments (4)
PATENT SECURITY AGREEMENT Recorded Jan 29, 2025
From: SELECT WATER SOLUTIONS, LLC; SELECT AGUA LIBRE MIDSTREAM, LLC; SELECT CHEMISTRY, LLC
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 070048/0356 →
CHANGE OF NAME Recorded Apr 11, 2024
From: SELECT ENERGY SERVICES, LLC
To: SELECT WATER SOLUTIONS, LLC
Reel/Frame 067095/0138 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 22, 2022
From: HARDIN, GREGGORY LYNN; RUSSO, JEFFREY SCOTT
To: DATA AUTOMATED WATER SYSTEMS, LLC
Reel/Frame 062188/0370 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 22, 2022
From: JVH AND ASSOCIATES, LLC; DATA AUTOMATED WATER SYSTEM, LLC
To: SELECT ENERGY SERVICES, LLC
Reel/Frame 062188/0447 →
Continuity (4)
Continuation 15973442 · May 7, 2018
Continuation 14556096 · Nov 28, 2014
Provisional Application 61910037 · Nov 28, 2013
Related Publication 20200378230A1 · Dec 3, 2020