Mobile power generation system

Information

  • Patent Grant
  • 11143000
  • Patent Number
    11,143,000
  • Date Filed
    Wednesday, April 1, 2020
    4 years ago
  • Date Issued
    Tuesday, October 12, 2021
    2 years ago
Abstract
The present invention discloses a mobile power generation system. A power generation apparatus is respectively quickly connected, through expansion joints, to an intake assembly and an exhaust duct which are separately transported, to implement the quick installation and connection of the power generation system at the fracturing operation site. Two conveyances are respectively provided for the intake assembly and the exhaust duct to achieve more flexible adjustment during connection. While the position of the power generation apparatus is fixed, the intake assembly is moved to connect to an intake chamber of the power generation apparatus, and the exhaust duct is moved to connect to an exhaust collector of the power generation apparatus.
Description
TECHNICAL FIELD

The present invention relates to the field of power generation technologies, and specifically to a mobile power generation system.


BACKGROUND

The oil and gas industry generally adopts hydraulic fracturing to promote the production of hydrocarbon wells (for example, oil or gas wells). Conventional fracturing equipment generally has the problems of occupying a large area, causing severe environmental pollution and so on, failing to satisfy the increasingly serious environmental requirements and the requirements on the area occupied by well-site operations.


A complete set of electric drive fracturing equipment will effectively reduce the discharge of environmental pollutants, the occupied area, noise and the operation and maintenance costs. With the use of a complete set of electric drive fracturing equipment and the continuous increase of the power of electric drive fracturing equipment, higher requirements are imposed on power supply at the operation site. At the well-site, the power supply for fracturing equipment generally cannot be realized by using a power grid. Moreover, the fracturing operation has the characteristic of short operation cycle, and fracturing equipment needs to be moved among different well-sites. Generally, because various parts of a power supply system require different assembly, transportation and installation methods, the installation time of the power supply system will be up to half to one month.


Therefore, how to provide a mobile power supply system which can be quickly and conveniently installed at the electric drive fracturing operation site is currently a great challenge for electric drive fracturing operations.


SUMMARY

To overcome the defects of the prior art, an objective of the present invention is to provide a mobile power generation system. A power generation apparatus is respectively quickly connected, through expansion joints, to an intake assembly and an exhaust duct which are separately transported, to implement the quick installation and connection of the power generation system at the fracturing operation site. Two conveyances are respectively provided for the intake assembly and the exhaust duct to achieve more flexible adjustment during connection. While the position of the power generation apparatus is fixed, the intake assembly is moved to connect to an intake chamber of the power generation apparatus, and the exhaust duct is moved to connect to an exhaust collector of the power generation apparatus.


The objective of the present invention is achieved by the following technical measures: A mobile power generation system, including an intake transport apparatus, an exhaust transport apparatus and a power generation transport apparatus;


the power generation transport apparatus includes a gas turbine, an intake chamber, an exhaust collector, a generator and a first conveyance;


the intake transport apparatus includes an intake assembly and a second conveyance, the intake assembly is configured to provide combustion air and gas-turbine-chamber ventilation air;


the exhaust transport apparatus includes an exhaust duct and a third conveyance; the intake transport apparatus and exhaust transport apparatus are connected to one side of the power generation transport apparatus.


Further, the power generation transport apparatus further includes an electric power unit and a control system, the electric power unit is configured to output electric power from the generator, and the control system includes a gas turbine control unit and a generator control unit.


Further, the intake transport apparatus and the exhaust transport apparatus are connected to at least one side of the power generation transport apparatus through expansion joints, respectively.


Further, the intake transport apparatus and the exhaust transport apparatus are disposed on the same side, opposite sides or adjacent sides.


Further, the first conveyance, the second conveyance and the third conveyance are each at least one of a trailer, a truck, a skid or a barge.


Further, the exhaust duct is horizontally disposed on exhaust transport apparatus during transportation.


Further, when in working state, the exhaust duct is hydraulically rotated to a vertical direction of the exhaust transport apparatus.


Further, the power generation transport apparatus further includes an auxiliary system, the auxiliary system is configured to assist in the operation of the power generation transport apparatus.


Further, the intake transport apparatus further includes an intake hydraulic shifter unit. During installation and connection, the intake hydraulic shifter unit is configured to adjust relative positions of the intake transport apparatus and the power generation transport apparatus.


Further, the exhaust transport apparatus further includes an exhaust hydraulic shifter unit. During installation and connection, the exhaust hydraulic shifter unit is configured to adjust relative positions of the exhaust transport apparatus and the power generation transport apparatus.


Compared with the prior art, the present invention has the following beneficial effects: Three conveyances are respectively arranged for the power generation apparatus, the exhaust duct, and the intake assembly, and are connected to each other through expansion joints, to implement the quick installation and connection of the power generation system at the fracturing operation site. Two conveyances are respectively provided for the intake assembly and the exhaust duct to achieve more flexible adjustment during connection. While the position of the power generation apparatus is fixed, the intake assembly is moved to connect to the intake chamber of the power generation apparatus, and the exhaust duct is moved to connect to the exhaust collector of the power generation apparatus.


The present invention will be described in detail below with reference to the accompanying drawings and specific implementations.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a schematic diagram of an exhaust transport apparatus in transport state.



FIG. 2 is a schematic diagram of an exhaust transport apparatus in working state.



FIG. 3 is a schematic diagram of an intake transport apparatus.



FIG. 4 is a schematic diagram of a power generation transport apparatus.



FIG. 5 is a schematic diagram of an overall structure of a mobile power generation system (first embodiment).



FIG. 6 is a schematic diagram of an overall structure of a mobile power generation system (second embodiment).



FIG. 7 is a schematic diagram of an overall structure of a mobile power generation system (third embodiment).





Wherein, 100. exhaust transport apparatus, 101. exhaust expansion joint, 102. exhaust duct, 200. intake transport apparatus, 201. gas-turbine-chamber ventilation expansion joint, 202. combustion expansion joint, 203. intake assembly, 300. power generation transport apparatus, 301. noise reduction room, 302. gas turbine chamber, 303. generator chamber, 304. control chamber, 305. electric power unit, 306. control system, 307. generator, 308. exhaust collector, 309. gas turbine, 310. intake chamber.


DESCRIPTION OF THE EMBODIMENTS

As used herein, the term “conveyance” refers to any transportation unit, the first conveyance, the second conveyance and the third conveyance are each at least one of a trailer, a truck, a skid or a barge.


A mobile power generation system includes an intake transport apparatus 200, an exhaust transport apparatus 100 and a power generation transport apparatus 300. The power generation transport apparatus 300 includes a gas turbine 309, an intake chamber 310, an exhaust collector 308, a generator 307, an electric power unit 305, a control system 306 and a first conveyance.


The intake transport apparatus 200 includes an intake assembly 203 and a second conveyance, the intake assembly 203 is configured to provide combustion air and gas-turbine-chamber ventilation air.


The exhaust transport apparatus 100 includes an exhaust duct 102 and a third conveyance. The intake transport apparatus 200 and the exhaust transport apparatus 100 are connected to one side of the power generation transport apparatus 300. Plentiful and inexpensive hydrocarbon fuels (for example, natural gas) at the oil and gas well-site are used as fuels for the gas turbine 309, which transforms chemical energy of hydrocarbon fuels to mechanical energy. Then the generator 307 transforms the mechanical energy into electric energy, thus achieving an efficient, stable, environmentally friendly, mobile supply of electric energy to the electric drive fracturing operation site. The mobile power generation system does not require any additional auxiliary equipment (for example, crane), thereby effectively reducing the installation time. The intake transport apparatus 200 and the exhaust transport apparatus 100 are small in volume and can be transported in multiple ways, and can be easily aligned and mounted. The intake transport apparatus 200 and the exhaust transport apparatus 100 can be mounted at the same time, thereby reducing the installation time. The system can be quickly assembled together to generate electric power after being transferred to another site, thereby satisfying the electric power requirements of fracturing operations.


The intake transport apparatus 200 and the exhaust transport apparatus 100 are connected to at least one side of the power generation transport apparatus 300 through expansion joints, respectively. According to different interface orientations of the intake chamber 310 on the power generation transport apparatus 300, the intake transport apparatus 200 and the exhaust transport apparatus 100 may be disposed on the same side, opposite sides or adjacent sides.


The exhaust duct 102 is horizontally disposed on the exhaust transport apparatus 100 during transportation.


When in working state, the exhaust duct 102 is hydraulically rotated to a vertical direction of the exhaust transport apparatus 100.


The power generation transport apparatus 300 further includes an auxiliary system. The auxiliary system is configured to assist in the operation of the power generation transport apparatus 300.


The intake transport apparatus 200 further includes an intake hydraulic shifter unit. During installation and connection, the intake hydraulic shifter unit is configured to adjust relative positions of the intake transport apparatus 200 and the power generation transport apparatus 300.


The exhaust transport apparatus 100 further includes an exhaust hydraulic shifter unit. During installation and connection, the exhaust hydraulic shifter unit is configured to adjust relative positions of the exhaust transport apparatus 100 and the power generation transport apparatus 300.



FIG. 1 and FIG. 2 are schematic structural diagrams of the exhaust transport apparatus. The exhaust duct 102 and the exhaust expansion joint 101 are disposed on the third conveyance. The exhaust duct 102 includes an exhaust silencer, an exhaust stack and an exhaust elbow. The exhaust duct 102 is connected to the power generation transport apparatus 300 through the exhaust expansion joint 101. The exhaust expansion joint 101, the exhaust elbow, the exhaust silencer and the exhaust stack are sequentially connected. During transportation, the exhaust duct 102 is located at a horizontal position (as shown in FIG. 1). In working state, the exhaust duct 102 is hydraulically or otherwise rotated to a vertical position (as shown in FIG. 2).



FIG. 3 is a schematic structural diagram of the intake transport apparatus. The intake assembly 203 and the intake expansion joint are disposed on the second conveyance. The intake assembly 203 is configured to provide combustion air and gas-turbine-chamber ventilation air. The intake assembly 203 includes an intake filter and an intake silencer. The intake assembly 203 further includes a ventilation fan. The intake expansion joint includes a combustion expansion joint 202 and a gas-turbine-chamber ventilation expansion joint 201.



FIG. 4 is a schematic structural diagram of the power generation transport apparatus. A noise reduction room 301 is mounted on the power generation transport apparatus 300. The noise reduction room 301 mainly includes three parts: a gas turbine chamber 302, a generator chamber 303 and a control chamber 304. In the gas turbine chamber 302, the gas turbine 309 which transforms chemical energy of hydrocarbon fuels to mechanical energy, the intake chamber 310 configured to guide combustion air, and the exhaust collector 308 configured to collect exhaust gas and guide the exhaust gas to the exhaust duct 102 are mainly mounted. In the generator chamber 303, the generator 307 which transforms the mechanical energy of the gas turbine 309 into electric energy is mainly mounted. In the control chamber 304, the electric power unit 305 and the control system 306 are mainly mounted. The electric power unit 305 is configured to output electric power from the generator 307. The control system 306 includes a gas turbine control unit and a generator control unit. The power generation transport apparatus 300 may further include an auxiliary system not shown in FIG. 3. The auxiliary system includes a lubrication system, a washing system, a fire fighting system, a starting system, and the like.



FIG. 5 to FIG. 7 are schematic structural diagrams of an overall structure of the mobile power generation system. As shown in FIG. 5, in a first embodiment, the exhaust transport apparatus 100 is located on one side of the power generation transport apparatus 300, and is connected to the exhaust collector 308 of the power generation transport apparatus 300 through the exhaust expansion joint 101, so as to discharge the exhaust gas to the atmosphere through the exhaust duct 102. The intake transport apparatus 200 is located opposite to the exhaust transport apparatus 100. The intake transport apparatus 200 is connected to the power generation transport apparatus 300 through the intake expansion joint, to be specific, connected through the combustion expansion joint 202 and the gas-turbine-chamber ventilation expansion joint 201, so as to provide combustion air and gas-turbine-chamber ventilation air for the power generation transport apparatus 300. As shown in FIG. 6, in a second embodiment, the intake transport apparatus 200 is located on the same side as the exhaust transport apparatus 100. As shown in FIG. 7, in a third embodiment, the intake transport apparatus 200 and the exhaust transport apparatus 100 are located at two adjacent sides of the power generation transport apparatus 300.


A method of the mobile power generation system includes the following steps:


1) mounting, on the first conveyance, the gas turbine 309, the intake chamber 310, the exhaust collector 308, the generator 307, the electric power unit 305 and the control system 306;


2) mounting, on the second conveyance, the intake expansion joint and the intake assembly 203 configured to provide combustion air and gas-turbine-chamber ventilation air, and connecting the intake expansion joint to the intake assembly 203;


3) mounting the exhaust duct 102 and the exhaust expansion joint 101 on the third conveyance;


4) moving the first conveyance to a designated position at a user site, and moving the second conveyance and the third conveyance to predetermined positions, then adjusting horizontal and vertical positions of the second conveyance by using the intake hydraulic shifter unit to connect the intake expansion joint to the intake chamber 310 on the first conveyance, and adjusting horizontal and vertical positions of the third conveyance by using the exhaust hydraulic shifter unit to connect the exhaust expansion joint 101 to the exhaust collector 308 on the first conveyance; and


5) rotating the exhaust duct 102 on the third conveyance from the horizontal position to the vertical direction, connecting the exhaust duct 102 to the exhaust expansion joint 101, and discharging exhaust gas to the atmosphere through the exhaust duct 102.


During connection, the exhaust expansion joint 101 can be stretched toward the exhaust collector 308, and the intake expansion joint can be stretched toward the intake chamber 310 and the gas turbine chamber 302. After operation is completed and the system needs to be disassembled at the user site, the exhaust expansion joint 101 can be retracted away from the exhaust collector 308, and the intake expansion joint can be retracted away from the intake chamber 310 and the gas turbine chamber 302.


The intake hydraulic shifter unit and the exhaust hydraulic shifter unit have the same structure including supporting legs, outriggers, a vertical hydraulic cylinder and a horizontal hydraulic cylinder which can implement movement of the conveyance. The supporting legs are connected to the outriggers. The vertical hydraulic cylinder is configured to implement vertical movement of the supporting legs. The horizontal hydraulic cylinder is configured to implement horizontal movement of the supporting legs. The intake hydraulic shifter unit and the exhaust hydraulic shifter unit lower the requirements on the positioning precision of the second conveyance and the third conveyance, thereby lowering the installation difficulty and reducing the installation time.

Claims
  • 1. A mobile power generation system, comprising an intake transport apparatus, an exhaust transport apparatus and a power generation transport apparatus; wherein the power generation transport apparatus comprises a gas turbine, an intake chamber, an exhaust collector, a generator and a first conveyance; the intake transport apparatus comprises an intake assembly and a second conveyance, the intake assembly is configured to provide combustion air and gas-turbine-chamber ventilation air;the exhaust transport apparatus comprises an exhaust duct, an exhaust expansion joint, and a third conveyance; the intake transport apparatus and the exhaust transport apparatus are connected to one side of the power generation transport apparatus, andthe exhaust duct is horizontally disposed on the exhaust transport apparatus during transportation, andthe exhaust duct is hydraulically rotated to a vertical direction of the exhaust transport apparatus when in working state,wherein the intake transport apparatus further comprises an intake hydraulic shifter unit, which is configured to adjust relative positions of the intake transport apparatus and the power generation transport apparatus so as to connect the intake assembly of the intake transport apparatus to the intake chamber of the power generation apparatus in the working state, andthe exhaust transport apparatus further comprises an exhaust hydraulic shifter unit, which is configured to adjust relative positions of the exhaust transport apparatus and the power generation transport apparatus so as to connect the exhaust expansion joint of the exhaust transport apparatus to the exhaust collector of the power generation apparatus in the working state.
  • 2. The mobile power generation system according to claim 1, wherein the power generation transport apparatus further comprises an electric power unit and a control system, the electric power unit is configured to output electric power from the generator, the control system comprises a gas turbine control unit and a generator control unit.
  • 3. The mobile power generation system according to claim 1, wherein the intake transport apparatus and the exhaust transport apparatus are connected to at least one side of the power generation transport apparatus through expansion joints, respectively.
  • 4. The mobile power generation system according to claim 2, wherein the intake transport apparatus and the exhaust transport apparatus are disposed on the same side, opposite sides or adjacent sides.
  • 5. The mobile power generation system according to claim 1, wherein the power generation transport apparatus further comprises an auxiliary system, and the gas turbine, the intake chamber, the exhaust collector, the generator, and the auxiliary system are on the first conveyance.
  • 6. The mobile power generation system according to claim 1, wherein the auxiliary system comprises at least one selected from the group consisting of a lubrication system, a washing system, a fire fighting system, and a starting system.
  • 7. The mobile power generation system according to claim 1, wherein the exhaust duct is hydraulically rotated by a single hydraulic piston to a vertical direction of the exhaust transport apparatus when in working state.
Priority Claims (1)
Number Date Country Kind
201910552761.0 Jun 2019 CN national
US Referenced Citations (65)
Number Name Date Kind
3453443 Stoeckly Jul 1969 A
3536928 Jones, Jr. Oct 1970 A
4136432 Melley, Jr. Jan 1979 A
4992669 Parmley Feb 1991 A
5517822 Haws May 1996 A
6334746 Nguyen Jan 2002 B1
6765304 Baten Jul 2004 B2
6786051 Kristich et al. Sep 2004 B2
7081682 Campion Jul 2006 B2
7608934 Hunter Oct 2009 B1
7619319 Hunter Nov 2009 B1
8221626 Sassow Jul 2012 B2
8294285 Hunter Oct 2012 B2
8294286 Hunter Oct 2012 B2
8465645 Sassow Jun 2013 B2
8495869 Beissler Jul 2013 B2
8587136 Williams Nov 2013 B2
8680728 Errera Mar 2014 B2
9085996 Ponnuraj Jul 2015 B2
9272930 Sassow Mar 2016 B2
9376801 Warren Jun 2016 B1
9376928 Lazzari Jun 2016 B2
9534370 Kokoschka Jan 2017 B2
9534473 Morris Jan 2017 B2
9562420 Morris Feb 2017 B2
9682880 Sassow Jun 2017 B2
10030579 Austin Jul 2018 B2
10060349 Morales Ivarez Aug 2018 B2
10184397 Austin Jan 2019 B2
10337402 Austin Jul 2019 B2
10371012 Davis Aug 2019 B2
10374485 Morris Aug 2019 B2
10384969 Sassow Aug 2019 B2
10458334 Davis Oct 2019 B2
10611655 Sassow Apr 2020 B2
10634029 Czarnecki Apr 2020 B2
10784658 Rochin Machado Sep 2020 B2
20030057704 Baten Mar 2003 A1
20030079479 Kristich May 2003 A1
20040265198 Biswas Dec 2004 A1
20060080971 Smith Apr 2006 A1
20090322096 Errera Dec 2009 A1
20130026765 Errera Jan 2013 A1
20140157778 Ponnuraj Jun 2014 A1
20140285005 Casteel Sep 2014 A1
20150116934 Lazzari Apr 2015 A1
20160102615 Trippold et al. Apr 2016 A1
20160177678 Morris Jun 2016 A1
20170104389 Morris Apr 2017 A1
20180080376 Austin Mar 2018 A1
20180080377 Austin Mar 2018 A1
20180328279 Austin Nov 2018 A1
20190063262 Davis Feb 2019 A1
20190063263 Davis Feb 2019 A1
20190063308 Davis Feb 2019 A1
20190063309 Davis Feb 2019 A1
20190063326 Davis Feb 2019 A1
20190063341 Davis Feb 2019 A1
20190067991 Davis Feb 2019 A1
20190068026 Davis Feb 2019 A1
20190356199 Morris Nov 2019 A1
20200083676 Rochin Machado Mar 2020 A1
20200408144 Feng Dec 2020 A1
20200408147 Zhang Dec 2020 A1
20200408149 Li Dec 2020 A1
Foreign Referenced Citations (3)
Number Date Country
205206965 May 2016 CN
107208557 Sep 2017 CN
2018096233 May 2018 WO
Non-Patent Literature Citations (1)
Entry
PCT, International Search Report and Written Opinion of the International Searching Authority in PCT/CN2019/092666, dated Mar. 23, 2020, 9 pages.
Related Publications (1)
Number Date Country
20200408071 A1 Dec 2020 US