Hybrid drive systems for well stimulation operations

Information

  • Patent Grant
  • 12110773
  • Patent Number
    12,110,773
  • Date Filed
    Tuesday, January 23, 2024
    10 months ago
  • Date Issued
    Tuesday, October 8, 2024
    a month ago
Abstract
In accordance with presently disclosed embodiments, a hybrid drive system that uses multiple sources of mechanical energy to drive a pump is provided. The hybrid drive system may include a first mover for generating first mechanical energy, a pump, a drivetrain for providing first mechanical energy from the first mover to the pump, and a second mover within the drivetrain to generate and provide second mechanical energy to the pump. The multiple sources of mechanical energy may provide flexibility with respect to system design and allow for alternative sources of fuel and energy to be used to drive pumping systems. This may reduce the total diesel fuel consumption necessary to perform a well stimulation operation as well as provide for configurations in which diesel engines may be excluded from the pumping process in favor of alternative energy sources that typically do not have sufficient torque capacity to power a pump.
Description
TECHNICAL FIELD

The present disclosure relates generally to treatment operations for hydrocarbon wells, and more particularly, to hybrid drive systems for well stimulation operations.


BACKGROUND

Hydrocarbons, such as oil and gas, are commonly obtained from subterranean formations that may be located onshore or offshore. The development of subterranean operations and the processes involved in removing hydrocarbons from a subterranean formation are complex. Subterranean operations involve a number of different steps such as, for example, drilling a wellbore at a desired well site, treating and stimulating the wellbore to optimize production of hydrocarbons, and performing the necessary steps to produce and process the hydrocarbons from the subterranean formation.


Treating and stimulating a well bore can include, among other things, delivering various fluids (along with additives, proppants, gels, cement, etc.) to the wellbore under pressure and injecting those fluids into the wellbore. One example treatment and stimulation operation is a hydraulic fracturing operation in which the fluids are highly pressurized via pumping systems to create fractures in the subterranean formation. The pumping systems typically include high-pressure, reciprocating pumps driven through conventional transmissions by diesel engines, which are used due to their ability to provide high torque to the pumps. Over the course of a fracturing operation, however, the diesel engines may consume thousands of gallons of diesel fuel, which is expensive and can be difficult to supply in sufficient quantities in a well site.





BRIEF DESCRIPTION OF THE DRAWINGS

For a more complete understanding of the present disclosure and its features and advantages, reference is now made to the following description, taken in conjunction with the accompanying drawings, in which:



FIG. 1 is a diagram illustrating an example system for treatment operations, according to aspects of the present disclosure;



FIG. 2 is a diagram illustrating another example system for treatment operations, according to aspects of the present disclosure; and



FIG. 3 is a diagram illustrating an example pumping system, according to aspects of the present disclosure.





DETAILED DESCRIPTION

Illustrative embodiments of the present disclosure are described in detail herein. In the interest of clarity, not all features of an actual implementation are described in this specification. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation specific decisions must be made to achieve developers' specific goals, such as compliance with system related and business related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time consuming, but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of the present disclosure. Furthermore, in no way should the following examples be read to limit, or define, the scope of the disclosure.


The terms “couple” or “couples” as used herein are intended to mean either an indirect or a direct connection. Thus, if a first device couples to a second device, that connection may be through a direct connection, or through an indirect mechanical or electrical connection via other devices and connections. The term “fluidically coupled” or “in fluid communication” as used herein is intended to mean that there is either a direct or an indirect fluid flow path between two components.


The present disclosure is directed to a hybrid drive system that uses multiple sources of mechanical energy to drive a pump. The multiple sources of mechanical energy may provide flexibility with respect to system design and allow for alternative sources of fuel and energy to be used to drive on-site pumping systems. This may reduce the total diesel fuel consumption necessary to perform a well stimulation operation as well as provide for configurations in which diesel engines may be entirely excluded from the pumping process in favor of alternative mechanical energy sources, such as spark-ignited natural gas engines, that typically do not have sufficient torque capacity to power a well stimulation pump. Additionally, the use of a second source of mechanical energy may increase the useful life of pumping systems by providing a second system that can account for the reduced output torque that is characteristic of aging engines and motors.



FIG. 1 is a diagram illustrating an example system 100 for treatment operations, according to aspects of the present disclosure. The system 100 includes a fluid management system 110 in fluid communication with a blender system 120. The blender system 120 may in turn be in fluid communication with one or more pump systems 130 through a fluid manifold system 140. The fluid manifold system 140 may provide fluid communication between the pump systems 130 and a wellbore 150. In use, the fluid management system 110 may receive water or another fluid from a fluid source 115 (e.g., a ground water source, a pond, one or more frac tanks), mix one or more fluid additives into the received water or fluid to produce a treatment fluid with a desired fluid characteristic, and provide the produced treatment fluid to the blender system 120. The blender system 120 may receive the produced treatment fluid from the fluid management system 110 and mix the produced treatment fluid with a proppant, such as sand, or another granular material 125 to produce a final treatment fluid that is directed to the fluid manifold 140. The pump systems 130 may then pressurize the final treatment fluid to generate pressurized final treatment fluid that is directed into the wellbore 150, where the pressurized final treatment fluid generates fractures within a formation in fluid communication with the wellbore 150.


An example one of the pump systems 130 may comprise a first mover 130a, a pump 130b, and a drive train 130c. As used herein, a mover may comprise any device that converts energy into mechanical energy to drive a pump. Example movers include, but are not limited to, electric motors, hydrocarbon-driven or steam engines, turbines, etc. The drive train 130c may be removably coupled to the first mover 130a and the pumps 130b through one or more drive shafts (not shown), and may comprise a transmission 130d with one or more gears that transmits mechanical energy from the first mover to the pump 130b. For instance, to the extent the pumps 130b comprise reciprocating pumps, the mechanical energy may comprise torque that drives the pump 130b.


The drive train 130c may further comprise a second mover 130e. As depicted, the second mover 130e is coupled to the transmission 130d between the transmission 130d and the pump 130b. In the embodiment shown, the second mover 130e may receive mechanical energy from the first mover 130a through the transmission 130d and provide the received mechanical energy to the pump 130b augmented by mechanical energy generated by the second mover 130e. It should be appreciated, however, that the orientation of the second mover 130e with respect to the first mover 130a, transmission 130d, and the pump 130b is not limited to the embodiment shown. In other embodiments, the second mover 130e may be positioned between the transmission 130d and the first mover 130a, for instance, or between elements of the transmission 130d itself. In yet other embodiments, the second mover 130e may be incorporated into the transmission 130d as part of a hybrid transmission system through which power from both the first mover 130a and second mover 130e are provided to the pump 130b.


The first mover 130a and second mover 130e may receive energy or fuel in one or more forms from sources at the wellsite. The energy or fuel may comprise, for instance, hydrocarbon-based fuel, electrical energy, hydraulic energy, thermal energy, etc. The sources of energy or fuel may comprise, for instance, on-site fuel tanks, mobile fuel tanks delivered to the site, electrical generators, hydraulic pumping systems, etc. The first mover 130a and second mover 130e may then convert the fuel or energy into mechanical energy that can be used to drive the associated pump 130b.


In the embodiment shown, the first mover 130a may comprise an internal combustion engine such as a diesel or dual fuel (e.g., diesel and natural gas) engine and the second mover 130e may comprise an electric motor. The internal combustion engine 130a may receive a source of fuel from one or more fuel tanks (not shown) that may located within the pumping system 130 and refilled as necessary using a mobile fuel truck driven on site. The electric motor 130e may be electrically coupled to a source of electricity through a cable 130f. Example sources of electricity include, but are not limited to, an on-site electrical generator, a public utility grid, one or more power storage elements, solar cells, wind turbines, other power sources, or one or more combinations of any of the previously listed sources.


As depicted, the source of electricity coupled the second mover 130e comprises a generator 160 located at the well site. The generator may comprise, for instance, a gas-turbine generator or an internal combustion engine that produces electricity to be consumed or stored on site. In the embodiment shown, the generator 160 may receive and utilize natural gas from the wellbore 150 or from another wellbore in the field (i.e., “wellhead gas”) to produce the electricity. As depicted, the system 100 may include gas conditioning systems 170 that may receive the gas from the wellbore 150 or another source and condition the gas for use in the generator 160. Example gas conditioning systems include, but are not limited to, gas separators, gas dehydrators, gas filters, etc. In other embodiments, conditioned natural gas may be transported to the well site for use by the generator.


The system 100 may further include one or more energy storage devices 180 that may receive energy generated by the generator 160 or other on-site energy sources and store in one or more forms for later use. For instance, the storage devices 180 may store the electrical energy from the generator 160 as electrical, chemical, or mechanical energy, or in any other suitable form. Example storage devices 180 include, but are not limited to, capacitor banks, batteries, flywheels, pressure tanks, etc. In certain embodiments, the energy storage devices 180 and generator 160 may be incorporated into a power grid located on site through which at least some of the fluid management system 110, blender system 120, pump systems 130, and gas conditioning systems 170 may receive power.


In use, the first mover 130a and second mover 130e may operate in parallel or in series to drive the pump 130b, with the division of power between the movers being flexible depending on the application. For instance, in a multi-stage well stimulation operation, the formation may be fractured (or otherwise stimulated) in one or more “stages,” with each stage corresponding to a different location within the formation. Each “stage” may be accompanied by an “active” period during which the pumps are engaged and pressurized fluids are being pumped into the wellbore 150 to fracture the formation, and an “inactive” period during which the pumps are not engaged while other ancillary operations are taking place. The transition between the “inactive” and “active” periods may be characterized by a sharp increase in torque requirement.


In an embodiment in which the first mover 130a comprises a diesel engine and the second mover 130e comprises an electric motor, both the diesel engine and electric motor may be engaged to provide the necessary power, with the percentage contribution of each depending on the period in which the system 100 is operating. For instance, during the “inactive” and “active” periods in which the torque requirements are relatively stable, the diesel engine, which operates more efficiently during low or near constant speed operations, may provide a higher percentage (or all) of the torque to the pump than the electric motor. In contrast, during transitions between “inactive” and “active” states, the electric motor may supplant the diesel engine as the primary source of torque to lighten the load on the diesel engine during these transient operations. In both cases, the electric motor reduces the torque required by the diesel engine, which reduces the amount of diesel fuel that must be consumed during the well stimulation operation. It should be noted that power sources could be used during continuous operation or intermittently as needed, including during transmission gear-shift events.


In addition to reducing the amount of diesel fuel needed to perform a well stimulation operation, the use of a first mover and a second mover in a pump system described herein may provide flexibility with respect to the types of movers that may be used. For instance, natural gas engines, i.e., internal combustion engines that use natural gas as their only source of combustion, are typically not used in oil field environments due to their limited torque capacity. By including two movers within the pump system 130, the torque capacity of the natural gas engine may be augmented to allow the use of a natural gas engine within the pump system 130. For instance, in certain embodiments, the first mover 130a may comprise a natural gas engine and the second mover 130e may comprise an electric motor that operates in series or parallel with the natural gas engine to provide the necessary torque to power the pump 130b.


In certain embodiments, the pump systems 130 may be electrically coupled to a controller 190 that directs the operation of the first and second movers of the systems 130. The controller 190 may comprise, for instance, an information handling system that sends one or more control signals to the pump systems 130 to control the speed/torque output of the first and second movers. As used herein an information handling system may comprise any system containing a processor and a memory device coupled to the processor containing a set of instructions that, when executed by the processor, cause the processor to perform certain functions. The control signals may take whatever form is necessary to communicate with the associated mover. For instance, a control signal to an electric motor may comprise an electrical control signal to a variable frequency drive coupled to the electric motor, which may receive the control signal and alter the operation of the electric motor based on the control signal. In certain embodiments, the controller 190 may also be electrically coupled to other elements of the system, including the fluid management system 110, blender system 120, pump systems 130, generator 160, and gas conditioning systems 170 in order to monitor and/or control the operation of the entire system 100. In other embodiments, some or all of the functionality associated with the controller 190 may be located on the individual elements of the system, e.g., each of the pump systems 130 may have individual controllers that direct the operation of the associated first and second movers.


It should be appreciated that only one example configuration is illustrated in FIG. 1 and that other embodiments and configurations are possible, depending on the types of movers and energy or fuel. In certain embodiments, some or all of the pumping systems 130 may include the same configuration, including the same types of first and second movers. The configurations of the individual pumping systems 130 and of the pumping systems generally may depend, for instance, on the available fuel and energy sources at the well site. For example, if a source of natural gas is more readily available than diesel fuel at a particular well site, the pumping systems 130 may be configured to utilize natural gas as a source of fuel/energy for both the first and second movers, which could include the use of a dual fuel or natural gas driven engine as the first mover and an electric motor powered by a natural-gas driven generator as the second mover.


In certain embodiments, excess energy generated by the pumping systems 130 or other elements within the system 100 may be used as an energy source for the first and/or second movers. The excess energy may be used instead of or in addition to any of the energy and fuel sources described above. FIG. 2 is a diagram illustrating another example system 200 for treatment operations in which the excess energy is utilized, according to aspects of the present disclosure. As can be seen, the system 200 comprises similar pumping systems 240 to those described above with respect to FIG. 1. Notably, each of the pumps systems 240 may comprise a first mover 240a, a pump 240b and a drivetrain 240c comprising a transmission 240d and a second mover 240e. The second movers of the pumping systems 240 may comprise electric motors that function similarly to the electric motor described above with respect to FIG. 1.


In the embodiment shown, the second movers of the pumping systems 240 may themselves comprise sources of energy for the system 200. In particular, as can be seen, the second movers of the pumping systems 240 may be coupled to each other and to an energy storage device 280. During inactive periods, or periods with lower torque requirement by the pumps, the first movers of the system 200 may generate excess energy, particularly when the first movers comprise diesel engines that are left idling during “inactive” periods. During those periods, some or all of the second movers may function as generators, receiving the excess energy from the first movers and converting that excess energy into another form of energy for immediate use by other ones of the second movers within the system or for storage within the energy storage device 280. For instance, where the first movers comprise diesel engines and the second movers comprise electric motors, some or all of the electric motors may also function as electric generators used to generate electricity using the excess torque generated by the diesel engines, and that electricity may be consumed by other ones of the electric motors to immediately reduce the fuel consumption of the associated diesel engines and/or stored in the energy storage device 280 for later use.


Similarly, where the first movers comprise diesel engines and the second movers comprise hydraulic motors driven by pressurized hydraulic fluids, some or all of the hydraulic motors may use excess torque generated by the diesel engines to pressurize the hydraulic fluids for use by other ones of the hydraulic motors within the system 200 and/or for storage within the energy storage device 280 in the form of pressurized tank of hydraulic fluid. Other configurations are possible within the scope of this disclosure.


The embodiment show in FIG. 2 could also be used to increase the load on the engines (e.g., first movers) when the system is operating in cold ambient temperatures. The increased load may help to raise the exhaust temperatures of the engines during cold weather. This may enable heat sensitive aftertreatment emission devices to operate more efficiently and reliably, with less clogging of those systems as experienced during light loading of the engine with low exhaust temperatures. The excess motive energy output from the pumping systems 240 during this cold weather operation of the pumps may be converted into another form of energy via the second movers for immediate use by one of the other second movers or for storage in the energy storage device 280 for later use.



FIG. 3 illustrates an example pumping system 300, according to aspects of the present disclosure. The pumping system 300 may be used, for instance, as one or more of the pumping systems described above with reference to FIGS. 1 and 2. As depicted, the system 300 comprises a first mover 302 in the form of a diesel engine coupled to a reciprocating pump 304 through a hybrid transmission system 306 into which a second mover in the form of an electric motor (or electric motor/generator) is integrated. The first mover 302, pump 304, and transmission system 306 are mounted on a trailer 308 coupled to a truck 310. The truck 310 may comprise, for instance, a conventional engine that provides locomotion to the truck 310 and trailer 310 through a hybrid transmission incorporating an electric motor or hydraulic system. The system 300 may further comprise an electrical connection 312, such as a cable, between the hybrid transmission of the truck 310 and the second mover in the pump transmission system 306.


In use, the truck 310 and trailer 308 with the pumping equipment mounted thereon may be driven to a well site at which a fracturing or other treatment operation will take place. In certain embodiments, the truck 310 and trailer 308 may be one of many similar trucks and trailers that are driven to the well site. Once at the site the pump 304 may be fluidically coupled to a wellbore (not shown), such as through a fluid manifold, to provide treatment fluid to the wellbore. The pump 304 may further be fluidically coupled to a source of treatment fluids to be pumped into the wellbore. When connected, the diesel engine may be started to provide a primary source of torque to the pump 304 through the pump transmission system 306. The electric motor in the pump transmission system 306 similar may be engaged to provide a supplemental source of torque to the pump 304. As depicted, the electric motor in the pump transmission system 306 may receive energy directly from the hybrid transmission of the truck 310, such that the truck itself operates as an electrical generator for the pumping operation. In addition to energy from the truck 310 and the electric motor in the pump transmission system 306, the pump may receive electricity from other energy sources on the site, including a dedicated electrical generator on site or other pumping systems located on the site.


Embodiments disclosed herein include:


A. An apparatus including a first mover for generating first mechanical energy, a pump, a drivetrain, and a second mover. The drivetrain provides the first mechanical energy from the first mover to the pump, and the second mover is disposed within the drivetrain to generate and provide second mechanical energy to the pump.


B. A system including a first pump system including a first mover for generating first mechanical energy, a pump, a drivetrain for providing first mechanical energy from the first mover to the pump, and a second mover within the drivetrain to generate and provide second mechanical energy to the pump. The system also includes a fluid manifold providing fluid communication between the pump and a wellbore, and at least one of a fluid management system and a blender unit providing a source of treatment fluids to the pump.


C. A method including generating first mechanical energy with a first mover mechanically coupled to a pump, generating second mechanical energy with a second mover mechanically coupled to the pump, and directing fluid from the pump to a wellbore using the first mechanical energy and the second mechanical energy.


Each of the embodiments A, B, and C may have one or more of the following additional elements in combination: Element 1: wherein the first mover includes one of a diesel engine or a dual fuel engine and the second mover includes at least one of an electric motor and a hydraulic motor. Element 2: wherein the first mover includes a natural gas spark-ignited engine and the second mover includes at least one of an electric motor and a hydraulic motor. Element 3: wherein the drivetrain includes a transmission and the second mover is coupled between the first mover and the transmission or between the transmission and the pump. Element 4: wherein the drivetrain includes a hybrid transmission into which the second mover is integrated. Element 5: wherein the pump includes a hybrid pump into which the second mover is integrated. Element 6: further including a trailer onto which the first mover, pump, drivetrain and second mover are mounted, and a truck coupled to the trailer, wherein the truck includes a diesel engine and a hybrid transmission with an integrated electric generator. Element 7: wherein the second mover is coupled to and receives energy from the integrated electric generator of the hybrid transmission.


Element 8: further including an energy storage device to provide a source of energy to at least one of the first mover and the second mover to generate the respective first and second mechanical energy. Element 9: further including an electrical generator coupled to the energy storage device and at least one of the first mover and the second mover. Element 10: further including a gas conditioning system to receive natural gas from a wellbore and provide conditioned natural gas to the electrical generator from which the electrical generator generates electricity. Element 11: further including a second pump system with an other first mover, an other pump, an other drivetrain, and an other second mover. Element 12: wherein the second mover and the other second mover include electric motors electrically connected to share electrical energy. Element 13: wherein the electric motors are further electrically connected to an energy storage system for providing electricity to at least one of electric motors and storing energy generated by at least one electric generator.


Element 14: further including receiving the first mechanical energy at the pump through a drivetrain coupled between the first mover and the pump. Element 15: wherein generating second mechanical energy with the second mover includes generating second mechanical energy within the drivetrain. Element 16: wherein the first mover includes at least one of a diesel engine, a dual fuel engine, and a spark-ignited natural gas engine. Element 17: wherein the second mover includes at least one of an electric motor and a hydraulic motor. Element 18: wherein generating second mechanical energy with the second mover includes receiving at least one of electricity and pressurized hydraulic fluid from an energy storage device coupled to the second mover.


Although the present disclosure and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the disclosure as defined by the following claims.

Claims
  • 1. An apparatus, comprising: a first mover for generating a first mechanical energy, wherein the first mover comprises an internal combustion engine;a well stimulation pump;a second mover for generating a second mechanical energy, wherein the second mover is powered by electricity produced using natural gas, wherein at least a portion of the natural gas is obtained from a wellbore on-site; anda drivetrain for outputting a combination of the first and second mechanical energies to the well stimulation pump,wherein the combined first and second mechanical energies power the well stimulation pump to pump fluid to the wellbore.
  • 2. The apparatus of claim 1, wherein the first mover comprises a diesel engine or a dual fuel engine.
  • 3. The apparatus of claim 1, wherein the first mover comprises a spark-ignited natural gas engine.
  • 4. The apparatus of claim 1, further comprising: a trailer onto which the first mover, the well stimulation pump, the drivetrain, and the second mover are mounted; anda truck coupled to the trailer, wherein the second mover is coupled to and receives energy from the truck.
  • 5. The apparatus of claim 1, wherein the drivetrain includes a transmission, and wherein the second mover is coupled between the first mover and the transmission.
  • 6. The apparatus of claim 1, wherein the drivetrain includes a transmission, and wherein the second mover is coupled between the transmission and the well stimulation pump.
  • 7. The apparatus of claim 1, wherein the first mover and the second mover operate in parallel to power the well stimulation pump.
  • 8. A system, comprising: a pump system comprising: a first mover for generating a first mechanical energy, wherein the first mover comprises an internal combustion engine;a pump;a second mover for generating a second mechanical energy, wherein the second mover is powered by electricity produced using natural gas, wherein at least a portion of the natural gas is obtained from a wellbore on-site; anda drivetrain for outputting a combination of the first and second mechanical energies to the pump;a fluid manifold for providing fluid communication between the pump and the wellbore; anda blender unit for preparing a treatment fluid, wherein the treatment fluid is provided to the fluid manifold via the pump.
  • 9. The system of claim 8, further comprising an electrical generator coupled to the second mover.
  • 10. The system of claim 9, further comprising a gas conditioning system to produce conditioned natural gas from the natural gas obtained from the wellbore on-site, wherein the conditioned natural gas is used to power the electrical generator to generate electricity.
  • 11. The system of claim 8, wherein the drivetrain includes a transmission, and wherein the second mover is coupled between the first mover and the transmission.
  • 12. The system of claim 8, wherein the drivetrain includes a transmission, and wherein the second mover is coupled between the transmission and the pump.
  • 13. The system of claim 8, wherein the first mover and the second mover operate in parallel to power the pump.
  • 14. The system of claim 8, further comprising: a trailer onto which the first mover, the pump, the drivetrain, and the second mover are mounted; anda truck coupled to the trailer, wherein the second mover is coupled to and receives energy from the truck.
  • 15. A method of performing an operation in a subterranean formation, comprising: having a first mechanical energy from a diesel engine, a spark-ignited natural gas engine, or a dual fuel engine;having a second mechanical energy from an electric motor, wherein the second mechanical energy is converted from electricity produced using natural gas, wherein at least a portion of the natural gas is obtained from a wellbore on-site;combining the first and second mechanical energies;outputting the combined first and second mechanical energies using a drivetrain to power a pump; andpumping a fluid into the subterranean formation using the pump.
  • 16. The method of claim 15, wherein the electric motor is used to provide the second mechanical energy, and wherein a generator is used to power the electric motor.
  • 17. The method of claim 15, wherein the drivetrain includes a transmission, and wherein the electric motor or the hydraulic motor is coupled between the diesel engine, the spark-ignited natural gas engine, or the dual fuel engine and the transmission.
  • 18. The method of claim 15, wherein the drivetrain includes a transmission, and wherein the electric motor or the hydraulic motor is coupled between the transmission and the pump.
  • 19. The method of claim 15, wherein the diesel engine, the spark-ignited natural gas engine, or the dual fuel engine and the electric motor operate in parallel to power the pump.
  • 20. A method of performing an operation in a subterranean formation, comprising: combining a first mechanical energy and a second mechanical energy, wherein the first mechanical energy is from a diesel engine, a spark-ignited natural gas engine, or a dual fuel engine, andwherein the second mechanical energy is from an electric motor, wherein the second mechanical energy is converted from electricity produced using natural gas,wherein at least a portion of the natural gas is obtained from a wellbore on-site;using the combined first and second mechanical energies to power a pump; andpumping a fluid into the subterranean formation using the pump.
  • 21. The method of claim 20, wherein the first mechanical energy is from the spark-ignited natural gas engine, and the second mechanical energy is from the electric motor.
  • 22. The method of claim 21, wherein a generator is used to produce electricity to power the electric motor.
  • 23. The method of claim 22, wherein the generator receives all of the natural gas from the wellbore on-site.
  • 24. The method of claim 22, wherein the natural gas comprises wellhead gas.
  • 25. The method of claim 20, wherein the diesel engine, the spark-ignited natural gas engine, or the dual fuel engine and the electric motor operate in parallel to power the pump.
CROSS REFERENCE TO RELATED APPLICATIONS

The present application is a Continuation of U.S. patent application Ser. No. 17/738,995, filed May 6, 2022, which is a U.S. Continuation of U.S. patent application Ser. No. 16/321,155 filed Jan. 28, 2019, now U.S. Pat. No. 11,421,673, issued Aug. 23, 2022, which is a U.S. National Stage Application of International Application No. PCT/US2016/050196 filed Sep. 2, 2016, which are incorporated herein by reference in their entirety for all purposes.

US Referenced Citations (238)
Number Name Date Kind
2208568 Benedek Jul 1940 A
2634682 Huber Apr 1953 A
2775204 Batten et al. Dec 1956 A
3291234 Woodburn Dec 1966 A
3381943 Miller May 1968 A
3591147 Anderson et al. Jul 1971 A
3764233 Strickland Oct 1973 A
3773438 Hall et al. Nov 1973 A
3792790 Brubaker Feb 1974 A
3891354 Bosch Jun 1975 A
3893655 Sandiford Jul 1975 A
3931999 McCain Jan 1976 A
3961562 Kersten et al. Jun 1976 A
3985472 Virtue et al. Oct 1976 A
4159623 Mcreynolds Jul 1979 A
4265266 Kierbow et al. May 1981 A
4272224 Kabele Jun 1981 A
4341508 Rambin Jul 1982 A
4470771 Hall et al. Sep 1984 A
4701095 Berryman et al. Oct 1987 A
4730118 Quarles et al. Mar 1988 A
4850750 Cogbill et al. Jul 1989 A
4854714 Davis et al. Aug 1989 A
5127450 Saatkamp Jul 1992 A
5165862 Lindblom Nov 1992 A
5181837 Niemiec Jan 1993 A
5261796 Niemiec et al. Nov 1993 A
5318382 Cahill Jun 1994 A
5320501 Langosch et al. Jun 1994 A
5422550 Mcclanahan et al. Jun 1995 A
5439066 Gipson Aug 1995 A
5452954 Handke et al. Sep 1995 A
5465798 Edlund et al. Nov 1995 A
5606853 Birch et al. Mar 1997 A
5752768 Assh May 1998 A
5775881 Stich Jul 1998 A
5819848 Rasmuson et al. Oct 1998 A
5865247 Paterson et al. Feb 1999 A
5923136 Baerd Jul 1999 A
5941305 Thrasher et al. Aug 1999 A
6002063 Bilak et al. Dec 1999 A
6059539 Nyilas et al. May 2000 A
6167965 Bearden et al. Jan 2001 B1
6321860 Reddoch Nov 2001 B1
6375436 Irie et al. Apr 2002 B1
6414455 Watson Jul 2002 B1
6634173 Linster et al. Oct 2003 B2
6640912 Reddoch Nov 2003 B2
6773238 Sprakel Aug 2004 B1
6952929 Inoue et al. Oct 2005 B2
7124589 Neary Oct 2006 B2
7173399 Sihler et al. Feb 2007 B2
7245033 Wurtele Jul 2007 B2
7353875 Stephenson et al. Apr 2008 B2
7451812 Cooper et al. Nov 2008 B2
7619324 Folken et al. Nov 2009 B2
7640738 Hauser et al. Jan 2010 B1
7690198 Rousseau et al. Apr 2010 B2
7717193 Egilsson et al. May 2010 B2
7836949 Dykstra Nov 2010 B2
7841394 Mcneel et al. Nov 2010 B2
7845413 Allan et al. Dec 2010 B2
7931082 Surjaatmadja Apr 2011 B2
7949483 Discenzo et al. May 2011 B2
8146665 Neal Apr 2012 B2
8282823 Acernese et al. Oct 2012 B2
8339090 Van Spengen Dec 2012 B2
8444312 Hagan et al. May 2013 B2
8456116 Burdick Jun 2013 B2
8503180 Nojima Aug 2013 B2
8506267 Gambier et al. Aug 2013 B2
8523533 Best Sep 2013 B1
8564233 Kidd et al. Oct 2013 B2
8590614 Surjaatmadja et al. Nov 2013 B2
8668465 Wadsley et al. Mar 2014 B2
8789601 Broussard et al. Jul 2014 B2
8794307 Coquilleau et al. Aug 2014 B2
8801407 Simpson Aug 2014 B2
8874393 Nagai et al. Oct 2014 B2
8997904 Cryer et al. Apr 2015 B2
9016383 Allan et al. Apr 2015 B2
9103193 Coli et al. Aug 2015 B2
9121257 Coli et al. Sep 2015 B2
9121402 Marshall et al. Sep 2015 B2
9140110 Coli et al. Sep 2015 B2
9188114 Kuttler et al. Nov 2015 B2
9316216 Cook et al. Apr 2016 B1
9366114 Coli et al. Jun 2016 B2
9395049 Vicknair et al. Jul 2016 B2
9410410 Broussard et al. Aug 2016 B2
9534473 Morris et al. Jan 2017 B2
9579980 Cryer Feb 2017 B2
9611728 Oehring Apr 2017 B2
9650871 Oehring et al. May 2017 B2
9650879 Broussard et al. May 2017 B2
9745840 Oehring et al. Aug 2017 B2
9840901 Oehring et al. Dec 2017 B2
9850422 Lestz et al. Dec 2017 B2
9893500 Oehring et al. Feb 2018 B2
9915129 Newell et al. Mar 2018 B2
9945365 Hernandez et al. Apr 2018 B2
9970278 Broussard et al. May 2018 B2
9995218 Oehring et al. Jun 2018 B2
10020711 Oehring et al. Jul 2018 B2
10036238 Oehring Jul 2018 B2
10119380 Joseph et al. Nov 2018 B2
10119381 Oehring et al. Nov 2018 B2
10232332 Oehring et al. Mar 2019 B2
10254732 Oehring et al. Apr 2019 B2
10337308 Broussard et al. Jul 2019 B2
10662765 Ferguson et al. May 2020 B2
11421673 Coskrey Aug 2022 B2
11808127 Coskrey Nov 2023 B2
20010000996 Grimland et al. May 2001 A1
20030057704 Baten et al. Mar 2003 A1
20030161212 Neal et al. Aug 2003 A1
20030170077 Herd et al. Sep 2003 A1
20040008571 Coody et al. Jan 2004 A1
20050116541 Seiver Jun 2005 A1
20060007775 Dean Jan 2006 A1
20060168955 Longfield et al. Aug 2006 A1
20070078614 Discenzo et al. Apr 2007 A1
20070125543 McNeel et al. Jun 2007 A1
20070125544 Robinson et al. Jun 2007 A1
20070201305 Heilman et al. Aug 2007 A1
20070269317 Clancy Nov 2007 A1
20070277982 Allan et al. Dec 2007 A1
20080017369 Sarada Jan 2008 A1
20080029267 Shampine et al. Feb 2008 A1
20080066911 Luharuka et al. Mar 2008 A1
20080131295 Koehl Jun 2008 A1
20080135238 Cugnet et al. Jun 2008 A1
20080164021 Dykstra Jul 2008 A1
20080165612 Dykstra Jul 2008 A1
20080165613 Dykstra Jul 2008 A1
20080203734 Grimes et al. Aug 2008 A1
20080236818 Dykstra Oct 2008 A1
20080264641 Slabaugh et al. Oct 2008 A1
20080314807 Junghanns et al. Dec 2008 A1
20090068031 Gambier et al. Mar 2009 A1
20090090504 Weightman et al. Apr 2009 A1
20090101410 Egilsson et al. Apr 2009 A1
20090120635 Neal May 2009 A1
20090178387 Schultz et al. Jul 2009 A1
20090260826 Sherwood et al. Oct 2009 A1
20090261599 Alston et al. Oct 2009 A1
20090308602 Bruins et al. Dec 2009 A1
20090312885 Buiel Dec 2009 A1
20100038907 Hunt et al. Feb 2010 A1
20100051272 Loree et al. Mar 2010 A1
20100054959 Rogers et al. Mar 2010 A1
20100068071 Bowden Mar 2010 A1
20100071899 Coquilleau et al. Mar 2010 A1
20100083649 Woodmansee et al. Apr 2010 A1
20100133901 Zhang et al. Jun 2010 A1
20100169030 Parlos Jul 2010 A1
20100231146 Beck et al. Sep 2010 A1
20100263861 Dykstra Oct 2010 A1
20100310384 Stephenson et al. Dec 2010 A1
20100326663 Bobier et al. Dec 2010 A1
20110061855 Case et al. Mar 2011 A1
20110085924 Shampine et al. Apr 2011 A1
20110148209 Williams Jun 2011 A1
20110197988 Van Vliet et al. Aug 2011 A1
20110309055 Rozmarynowski et al. Dec 2011 A1
20120001482 Burdick Jan 2012 A1
20120049625 Hopwood Mar 2012 A1
20120073670 Lymberopoulos Mar 2012 A1
20120085541 Love et al. Apr 2012 A1
20120166096 Stephenson et al. Jun 2012 A1
20120205119 Wentworth et al. Aug 2012 A1
20120223524 Williams Sep 2012 A1
20120255734 Coli et al. Oct 2012 A1
20120292992 Williams Nov 2012 A1
20130032540 Acernese et al. Feb 2013 A1
20130045117 Wishart Feb 2013 A1
20130233542 Shampine et al. Sep 2013 A1
20130271083 Williams Oct 2013 A1
20130276430 Ulrich et al. Oct 2013 A1
20130284422 Irvine Oct 2013 A1
20130305851 Rees et al. Nov 2013 A1
20130306322 Sanborn et al. Nov 2013 A1
20130308414 Lucas Nov 2013 A1
20140008074 Nevison Jan 2014 A1
20140048253 Andreychuk Feb 2014 A1
20140096974 Coli et al. Apr 2014 A1
20140130509 Drnevich et al. May 2014 A1
20140138079 Broussard et al. May 2014 A1
20140147291 Burnette May 2014 A1
20140158345 Jang et al. Jun 2014 A1
20140174717 Broussard et al. Jun 2014 A1
20140219824 Burnette Aug 2014 A1
20140251623 Lestz et al. Sep 2014 A1
20140255214 Burnette Sep 2014 A1
20140261695 Dehring et al. Sep 2014 A1
20140262292 Joseph et al. Sep 2014 A1
20140290768 Randle et al. Oct 2014 A1
20140294599 Wi et al. Oct 2014 A1
20140294603 Best Oct 2014 A1
20140298846 Taras et al. Oct 2014 A1
20150027712 Vicknair et al. Jan 2015 A1
20150078924 Zhang et al. Mar 2015 A1
20150114652 Lestz et al. Apr 2015 A1
20150136043 Shaaban et al. May 2015 A1
20150144336 Hardin et al. May 2015 A1
20150211512 Wiegman et al. Jul 2015 A1
20150252661 Glass Sep 2015 A1
20150275891 Chong Oct 2015 A1
20150300336 Hernandez et al. Oct 2015 A1
20150322761 Hodgson et al. Nov 2015 A1
20150353816 Thrash et al. Dec 2015 A1
20150354322 Vicknair et al. Dec 2015 A1
20160032691 Richter et al. Feb 2016 A1
20160032703 Broussard et al. Feb 2016 A1
20160055737 Boken Feb 2016 A1
20160105022 Oehring et al. Apr 2016 A1
20160177675 Morris et al. Jun 2016 A1
20160177678 Morris et al. Jun 2016 A1
20160194942 Wiegman et al. Jul 2016 A1
20160208592 Oehring Jul 2016 A1
20160221843 Acernese et al. Aug 2016 A1
20160230525 Lestz et al. Aug 2016 A1
20160258267 Payne et al. Sep 2016 A1
20160281484 Lestz et al. Sep 2016 A1
20160290114 Oehring et al. Oct 2016 A1
20160298425 Thrash Oct 2016 A1
20160312108 Lestz et al. Oct 2016 A1
20160319650 Oehring et al. Nov 2016 A1
20160326854 Broussard et al. Nov 2016 A1
20160348479 Oehring et al. Dec 2016 A1
20170016433 Chong et al. Jan 2017 A1
20170021318 Mciver et al. Jan 2017 A1
20170028368 Oehring et al. Feb 2017 A1
20170030177 Oehring et al. Feb 2017 A1
20170107804 Krug et al. Apr 2017 A1
20170114625 Norris et al. Apr 2017 A1
20170226998 Zhang et al. Aug 2017 A1
20180230778 Thrash Aug 2018 A1
Foreign Referenced Citations (19)
Number Date Country
2707269 Dec 2010 CA
2773843 Oct 2012 CA
1877079 Dec 2006 CN
102602322 Jul 2012 CN
202463670 Oct 2012 CN
202544803 Nov 2012 CN
202560199 Nov 2012 CN
19846940 Apr 2000 DE
102005018324 Oct 2006 DE
1927750 Jun 2008 EP
453231 Sep 1936 GB
2001094786 Dec 2001 WO
2004107534 Dec 2004 WO
2007113528 Oct 2007 WO
2010023489 Mar 2010 WO
2013148342 Oct 2013 WO
2014105642 Jul 2014 WO
2014177346 Nov 2014 WO
2015011223 Jan 2015 WO
Non-Patent Literature Citations (49)
Entry
Efficient and environmental solutions commercialized shale gas exploitation in Sichuan Basin, Honghua Group, 35 pages, www.hh-gltd.com.
“Evolution Well Services Advances Fracturing Operations with a Electrically Powered System,” News Provided by Evolution Well Services, Jun. 4, 2012, 1 page.
“Field Gas Becomes Fuel Source for Pumps at Drillsite,” HartEnergy Newsletter, Sep. 17, 2013, 3 pages.
“Game-changing hydraulic fracturing technology, reduces emissions by 99%,” U.S. Well Services, Globe Newswire, Oct. 1, 2014, 2 pages.
“Green Field Energy Services and GE signs natural gas powered equipment agreement,” LNG Processing Technology, Jan. 7, 2013, 9 pages, https://www.hydrocarbons-technology.com/uncategorised/newsgreen-field-energy-services-and-ge-signs-natural-gas-powered-equipment-agreement/.
“Green Field Energy Services Conducts First-Ever Frac Pump Test Powered 100% by Field Gas,” News Provided by Green Field Energy Services, PRNewswire, Jan. 3, 2013, 2 pages.
“Honghua Group and Baker Hughes Collaborate to Explore and Develop China's Unconventional Hydrocarbons Market,” Honghua Group Limited, Dec. 12, 2012, 2 pages.
“Honghua Group Introduces 6,000-hp integrated shale gas system,” Drilling Contractor, May 21, 2012, 3 pages, https://www.drillingcontractor.org/honghua-introduces-6,000-hp-integrated-shale-gas-system.
“Honghua Group Showcases Shale Gas, Offshore and Land Drilling Solutions at the 2013 Offshore Technology Conference,” BusinessWire, May 6, 2013, 2 pages.
“Honghua Group to Launch Integrated Shale Gas Exploitation Solution at OTC 2012,” AP Alert-Energy, May 1, 2012, 4 pages.
“Honghua: Hh Group Showcases Offshore and Land Drilling Technology Along with Shale Gas Solutions at the 2014 Offshore Technology Conference,” May 6, 2014, 4 pages.
“Turbine Frac Units,” WMD Squared, 2012, 5 pages, https:/wmdsquared.com/work/gfes-turbine-frac-units/.
“USA: Green Field Energy, GE Ink Deal on Gas Powered Equipment,” Offshore Energy, Jan. 8, 2013, 4 pages, https://www.offshore-energy.biz/USA-green-field-energy-ge-ink-deal-on-gas-powered-equipment/.
“The Jet Frac Revolution,” Turbine Stimulation Technologies, BIC Magazine, Apr. 2006, 3 pages.
1966 Halliburton Sales and Service Catalog, 3 pages.
Archive of MTT Website, available at https://web.archive.org/web/20090615185330/marineturbine.com/frac.asp, Jun. 15, 2009, 3 pages.
Black Diamond Claim Chart for U.S. Pat. No. 9,410,410, U.S. Well Services, LLC v. TOPS Well Services, LLC et al., Case 3:19-cv-00237, Document 76-11 (S.D. Tex.), Apr. 29, 2020, 31 pages.
Boman, Karen, “Turbine Technology Powers Green Field Multi-Fuel Frack Pump,” Rigzone, Mar. 7, 2013, 9 pages, https://www.rigzone.com/news/oil_gas/a/124883/turbine_technology_powers_green_field_multifuel_frack_ pump/.
Brenner, Noah, “Dual fuel a nimble approach,” Feb. 21, 2013, 1 page.
Examination Report issued in related Canadian Patent Application No. 3,030,829 mailed Oct. 8, 2021, 4 pages.
Examiner's Letter issued in related Canadian application No. 3,030,829, dated Feb. 10, 2020, 5 pages.
Excerpts from Equipment Data Report, Halliburton Energy Services, Duncan, OK, Mar. 23, 2012, 2 pages.
Excerpts from manual related to Halliburton Stim Star vessel, admitted as prior art, 7 pages.
Excerpts from Project Comprehensive Study Report, Sep. 2011, 2 pages.
Excerpts related to E-Powered Grizzly and E-Drive HT-400 pumps, Halliburton, admitted as prior art, 6 pages.
Hausfeld, et al., “TM2500+ Power for Hydraulic Fracturing,” 20th Symposium of the Industrial Application of Gas Turbines Committee (13-IAGT-203), Banff, Alberta, Canada, Oct. 2013, 9 pages.
HHF-1600 Mud Pump, HongHua America, Inc., 5 pages, www.hh-america.com.
Honghua Group Limited, 2013 Annual Report, 192 pages.
Honghua Group Ltd. Manual, Jun. 2014, 42 pages, www.hh-gltd.com.
International Search Report and Written Opinion issued in PCT/GB2011/000678 mailed Oct. 12, 2012, 11 pages.
International Search Report and Written Opinion issued in related PCT Application No. PCT/US2016/050196 mailed May 26, 2017, 15 pages.
International Search Report in PCT/GB2010/001717 mailed May 10, 2011, 4 pages.
Invalidity Chart, Mud Pump and Associated Materials HHUS Sold to Nabors, U.S. Well Services, LLC v. TOPS Well Services, LLC et al., Case 3:19-cv-00237, D.I. 76-13 (S.D. Tex.), Apr. 29, 2020, 135 pages.
Johnson, Luke, Honghua unveils natgas-powered drill system, May 3, 2012, 1 page.
Johnson, Luke, “Honghua unveils natgas-powered drill system,” EPaper—Upstream Online, May 3, 2012, 2 pages.
Kever, Jeannie, OTC attendance zips past 100,000, Houston Chronicle, May 9, 2013, 8 pages, https://www.houstonchronicle.com/business/energy/conferences/article/OTC-attendance-zips-past-100-000-4504296.php.
New Simulation Vessel Service Proposal, Halliburton, Sep. 8, 2010, 7 pages.
Owen, Charlotte, “Chinese company launches new fracking rigs,” Oil & Gas Technology, May 2, 2012, 2 pages, www.oilandgastechnology.net/upstream-news/chinese-company-launches-new-fracking-rigs.
Rig Equipment, HongHua America, LLC, 2011, 1 page, http://web.archive.org/web/20110205080538/http://www.hh-america.com:80/webfront/rig-equipment/.
Scott, Katherine, “Honghua developing new-generation shale-drilling rig, plans testing of frac pump,” Drilling Contractor, May 23, 2013, 3 pages, https://www.drillingcontractor.org/honghua-developing-new-generation-shale-drilling-rig-plans-testing-of-frac-pump-23278.
Shauk, Zain, “Military copters recycled for fracking,” SFGate, Jun. 1, 2013, 13 pages, https://www.sfgate.com/business/article/military-copters-recycled-for-fracking-4568836.php.
Shauk, Zain, “Redeployment: Battlefield engines take an oil field mission,” Houston Chronicle, May 30, 2013, 10 pages, https://www.houstonchronicle.com/business/energy/article/Redeployment-Battlefield-engines-take-on-oil-4563553.php.
Spencer, Malia, “Green Field Energy Services lands in Monessen,” Pittsburgh Business Times, Aug. 7, 2013, 7 pages, https://www.bizjournals.com/pittsburgh/blog/energy/2013/08/green-field-energy-services-lands-in-html.
Spencer, Malia, “Marcellus gas used to power come frack jobs,” Pittsburgh Business Times, Jul. 2013, 9 pages, https://www.bizjournals.com/pittsburgh/blog/energy/2013/07/marcellus-gas-used-to-power-frack-some.html.
Stim Bar (Brasil) General Arrangement Drawing, Halliburton Energy Services, Inc., Dec. 6, 2013, 1 page.
United States Securities and Exchange Commission, Form S-4 for Green Field Energy Services, Inc., Hub City Tools, Inc. filed May 11, 2012, 206 pages, https://www.sec.gov.archives/edgar/data/1542387/000119312512228720/d349756ds5.htm.
Examiner's report in CA application 3,030,829 mailed Feb. 24, 2023, 4 pages.
E-Powered Grizzly and E-Drive HT-400 Pumps, Halliburton, available at least as of 2011, 6 pages.
Halliburton Stim Star vessel, Halliburton, available at least as of 2003, 7 pages.
Related Publications (1)
Number Date Country
20240159134 A1 May 2024 US
Continuations (2)
Number Date Country
Parent 17738995 May 2022 US
Child 18420556 US
Parent 16321155 US
Child 17738995 US