Power supply semi-trailer for electric drive fracturing equipment

Information

  • Patent Grant
  • 11035214
  • Patent Number
    11,035,214
  • Date Filed
    Monday, March 30, 2020
    4 years ago
  • Date Issued
    Tuesday, June 15, 2021
    3 years ago
Abstract
The present invention discloses a power supply semi-trailer for electric drive fracturing equipment, including a combination of a gas turbine engine, a generator and a rectifying unit, the generator outputs a winding configuration and a voltage required for the rectifying units directly to obviate conventional rectifier transformer equipment. The rectifying unit is connected to the inversion unit through a common DC bus, so that the common DC bus can separately drive multiple inversion units, thus decreasing the wirings of power supply lines. A high voltage inversion unit is disposed on a gooseneck of the electric drive semi-trailer to optimize the spatial arrangement of equipment. The entire power supply equipment has a compact structure, occupies a small area, and is simple in wiring.
Description
TECHNICAL FIELD

The present invention relates to the technical field of oil-gas exploitation, and specifically to a power supply semi-trailer for electric drive fracturing equipment.


BACKGROUND

In a configuration mode of a power transmission system used in conventional fracturing equipment on fracturing sites in oil and gas fields all over the world, a diesel engine is connected to a transmission to drive a fracturing plunger pump through a transmission shaft to work. This configuration mode has the following disadvantages: (1) Large volume and heavy weight: When the diesel engine drives the transmission to drive the fracturing plunger pump through the transmission shaft, a large volume is occupied, a heavy weight is involved, the transportation is restricted, and the power density is low. (2). Environmental problems: During operations on a well site, the fracturing equipment driven by the diesel engine would generate engine waste gas pollution and noise pollution. The noise exceeding 105 dBA will severely affect the normal life of nearby residents. (3). Cost inefficiency: The fracturing equipment driven by the diesel engine requires relatively high initial purchase costs and incurs high fuel consumption costs for unit power during operation, and the engine and the transmission also require very high routine maintenance costs. Efforts are made globally to manufacture oil-gas exploitation equipment with “low energy consumption, low noise, and low emission”. Therefore, the foregoing disadvantages of conventional fracturing equipment that uses the diesel engine as the power source impedes the exploitation progress of unconventional oil and gas sources to some extent.


It is a good solution for replacement of conventional diesel engine driven equipment with electric drive equipment. However, high-voltage generators are employed in conventional power supply schemes by generators, i.e., rectifier transformers need to be used to supply power to the rectifying units, while the rectifier transformers are too bulky, expensive, and involve complex wiring. The above features of the rectifier transformers themselves, to some extent, result in the power supply part in the electric drive equipment are bulky, i.e., occupy a large area, expensive, and involve complex wiring, thus greatly limiting the widely use of the electric drive equipment.


Therefore, a power supply semi-trailer for electric drive fracturing equipment is urgently needed that is small in size, low in cost, and simple in wiring.


SUMMARY

To overcome the deficiencies in the prior art, an objective of the present invention is to provide a power supply semi-trailer for electric drive fracturing equipment, including a combination of a gas turbine engine, a generator and a rectifying unit, the generator is connected to the rectifying units directly to obviate conventional rectifier transformer equipment. The rectifying unit is connected to the inversion unit through a common DC bus, so that the common DC bus can separately drive multiple inversion units, thus decreasing the wirings of power supply lines. A high voltage inversion unit is disposed on a gooseneck of the electric drive semi-trailer to optimize the spatial arrangement of equipment. The entire power supply equipment has a compact structure, occupies a small area, and is simple in wiring.


The objective of the present invention is achieved by the following technical measures: a power supply semi-trailer for electric drive fracturing equipment, including a power supply semi-trailer body, one gas turbine engine, one generator, multiple sets of rectifying units and multiple sets of inversion units, wherein the gas turbine engine, the generator and the rectifying units are integrated on the power supply semi-trailer body; one end of the generator is connected to the gas turbine engine, the other end of the generator is connected to the rectifying units, the multiple sets of rectifying units are arranged side by side; the inversion units are disposed on a gooseneck of the electric drive semi-trailer body, and the rectifying units are connected to the inversion units through a common DC bus.


Further, the generator is a double-winding generator.


Further, the generator is connected to the rectifying units directly.


Further, a phase difference of double winding of the generator is 30°, and the winding configuration is type Y-Y or type D-D.


Further, the power of the generator is at least 10 MVA, and the frequency is 50-60 Hz or 100-120 Hz.


Further, the voltages of the rectifying units ranges from 4000 VDC to 6500 VDC.


Further, each of the inversion units includes two inverters, and the inverters are three-level inverters.


Further, the inversion units disposed on another gooseneck of the semi-trailer are high voltage inversion units.


Compared with the prior art, the beneficial effects of the present invention are as follows:


1. Employing a combination of a gas turbine engine, a generator and rectifying units, the generator is connected to the rectifying units directly to obviate conventional rectifier transformer equipment.


2. The rectifying units are connected to the inversion units through a common DC bus, so that the common DC bus can separately drive multiple inversion units, thus decreasing the wirings of power supply lines.


3. A high voltage inversion unit is disposed on a gooseneck of the electric drive semi-trailer to optimize the spatial arrangement of equipment.


4. The entire power supply equipment has a compact structure, occupies a small area, and is simple in wiring.


5. The output power of the entire power supply equipment is high, providing a forceful guarantee for the high-power electric drive fracturing equipment.


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 structural diagram of a power supply semi-trailer.



FIG. 2 is a schematic structural diagram of an electric drive fracturing equipment.



FIG. 3 is a schematic diagram of electrical connection of a generator in D-D configuration.



FIG. 4 is a schematic diagram of electrical connection of a generator in Y-Y configuration.





Wherein, 1. power supply semi-trailer body, 2. gas turbine engine, 3. generator, 4. rectifying unit, 5. high voltage inversion unit, 6. electric drive fracturing equipment, 7. gooseneck, 8. electric drive semi-trailer body, 9. double-winding generator, 10. three-level inverter, 11. common DC bus, and 12. plunger pump.


DESCRIPTION OF THE EMBODIMENTS

As shown in FIGS. 1 to 2, an embodiment provides a power supply semi-trailer for electric drive fracturing equipment, including a power supply semi-trailer body 1, one gas turbine engine 2, one generator 3, multiple sets of rectifying units 4 and multiple sets of inversion units, wherein the gas turbine engine 2, the generator 3 and the rectifying units 4 are integrated on the power supply semi-trailer body 1; one end of the generator 3 is connected to the gas turbine engine 2, the other end of the generator 3 is connected to the rectifying units 4, the multiple sets of rectifying units 4 are arranged side by side; the inversion units are disposed on a gooseneck of the electric drive semi-trailer body, and the rectifying units 4 are connected to the inversion units through a common DC bus. The generator 3 is a double-winding generator. The generator 3 is connected to the rectifying units 4 directly. The power supply semi-trailer is a power supply semi-trailer matched with the electric drive fracturing equipment, which is provided with a combination of a gas turbine engine 2, a generator 3 and a rectifying unit 4 integrated on a power supply semi-trailer body 1. The generator 3 is connected to the rectifying unit 4 directly. This power supply mode directly obviates the rectifier transformer equipment in conventional power supply, making the volume of the power supply semi-trailer smaller. The rectifying units 4 are connected to the inversion units through a common DC bus, so that the common DC bus can separately drive multiple inversion units, thus decreasing the wirings of power supply lines, and simplifying the circuit connection, the wiring becoming more easier.


The inversion units disposed on a gooseneck of the electric drive semi-trailer body are high voltage inversion units 5. The high voltage inversion units 5 are disposed on a gooseneck of the electric drive semi-trailer body to optimize the spatial arrangement of equipment, so that the entire electric drive fracturing equipment has a compact structure, and occupies a small area.


The phase difference of double winding of the generator 3 is 30°, the winding configuration is type Y-Y or type D-D. The alternating voltage output from the generator 3 ranges from 1600 VAC to 2300 VAC.


The power of the generator 3 is at least 10 MVA, the frequency is 50-60 Hz or 100-120 Hz, and the voltages of the rectifying units 4 are 4000 VDC or above, and further the voltages of the rectifying units ranges from 4000 VDC to 6500 VDC, ensuring that the power supply semi-trailer has a high output power to drive a high-power electric drive fracturing semi-trailer.


As shown in FIG. 2, it is a schematic diagram of connection between the power supply semi-trailer and the high-power electric drive fracturing semi-trailer. The rectifying units 4 on the power supply semi-trailer body 1 are connected to the inversion units disposed on the gooseneck of the electric drive semi-trailer body through a common DC bus. Each of the inversion units has a compartment structure provided with two three-level inverters. Each inverter can drive one electric motor to work independently. Electric motors are used to drive the plunger pump to work, providing a forceful guarantee for the power supply of the high-power electric drive equipment. The lubricating oil radiator is used to cool the lubricating oil in the plunger pump. An electrical control cabinet is used to implement local manipulation of the electric drive fracturing semi-trailer.


It will be appreciated to persons skilled in the art that the present invention is not limited to the foregoing embodiments, which together with the context described in the specification are only used to illustrate the principle of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. All these changes and improvements shall fall within the protection scope of the present invention. The protection scope of the present invention is defined by the appended claims and equivalents thereof.

Claims
  • 1. A power supply semi-trailer for electric drive fracturing equipment, comprising a power supply semi-trailer body, one gas turbine engine, one generator and multiple sets of rectifying units, wherein the gas turbine engine, the generator and the rectifying units are integrated on the power supply semi-trailer body; one end of the generator is connected to the gas turbine engine, the other end of the generator is connected to the rectifying units, the generator is a double-winding generator, wherein the generator is connected to the rectifying units directly.
  • 2. The power supply semi-trailer for electric drive fracturing equipment according to claim 1, wherein the double-winding generator has a phase difference of 30° and a winding configuration of type Y-Y or type D-D.
  • 3. The power supply semi-trailer for electric drive fracturing equipment according to claim 1, wherein the generator has a power of at least 10 MVA, and a frequency of 50-60 Hz or 100-120 Hz.
  • 4. The power supply semi-trailer for electric drive fracturing equipment according to claim 1, wherein the rectifying units have voltages ranging from 4000 VDC to 6500 VDC.
  • 5. The power supply semi-trailer for electric drive fracturing equipment according to claim 1, wherein the multiple sets of rectifying units are arranged side by side.
  • 6. An electric drive fracturing equipment comprising the power supply semi-trailer of claim 2 or 5, further comprising multiple sets of fracturing semi-trailers, each set of the fracturing semi-trailer comprises a fracturing semi-trailer body and one set of inversion unit, and the rectifying units are connected to the inversion units through common dc buses; each set of the inversion unit comprises two inverters, and the inverters are three-level inverters.
  • 7. The electric drive fracturing equipment according to claim 6, wherein the inversion units are high voltage invert units, and the inversion units are arranged on the gooseneck of the fracturing semi-trailer.
  • 8. The electric drive fracturing equipment according to claim 6, wherein the fracturing semi-trailer is further provided with an electric motor and a plunger pump, the inversion units are connected to the electric motor and the electric motor is connected to the plunger pump.
Priority Claims (1)
Number Date Country Kind
201910510411.8 Jun 2019 CN national
US Referenced Citations (125)
Number Name Date Kind
1711979 Weinert May 1929 A
2015745 Derl Oct 1935 A
3035222 Stone May 1962 A
3378755 Elbert Apr 1968 A
3453443 Stoeckly Jul 1969 A
4136432 Melley, Jr. Jan 1979 A
4336485 Stroud Jun 1982 A
4720645 Stroud Jan 1988 A
4904841 English Feb 1990 A
4992669 Parmley Feb 1991 A
5274322 Hayashi Dec 1993 A
5517822 Haws May 1996 A
5614799 Anderson Mar 1997 A
5691590 Kawai Nov 1997 A
5714821 Dittman Feb 1998 A
5821660 Anderson Oct 1998 A
5994802 Shichijyo Nov 1999 A
6121707 Bell Sep 2000 A
6281610 Kliman Aug 2001 B1
6331760 McLane, Jr. Dec 2001 B1
6388869 Fauteux May 2002 B1
6417592 Nakamura Jul 2002 B2
6450133 Bernard Sep 2002 B1
6455974 Fogarty Sep 2002 B1
6552463 Oohashi Apr 2003 B2
6704993 Fogarty Mar 2004 B2
6765304 Baten Jul 2004 B2
6784583 Umeda Aug 2004 B2
6786051 Kristich Sep 2004 B2
6893487 Alger May 2005 B2
6895903 Campion May 2005 B2
7007966 Campion Mar 2006 B2
7016207 Yamanaka Mar 2006 B2
7075206 Chen Jul 2006 B1
7081682 Campion Jul 2006 B2
7112891 Johnson Sep 2006 B2
7122913 Witten Oct 2006 B2
7221061 Alger May 2007 B2
7245032 Willets Jul 2007 B2
7291954 Kashihara Nov 2007 B2
7372174 Jones May 2008 B2
7511385 Jones Mar 2009 B2
7608934 Hunter Oct 2009 B1
7615877 Willets Nov 2009 B2
7619319 Hunter Nov 2009 B1
7635926 Willets Dec 2009 B2
7656052 Jones Feb 2010 B2
7667342 Matsumoto Feb 2010 B2
7692321 Jones Apr 2010 B2
7755209 Jones Jul 2010 B2
7921914 Bruins Apr 2011 B2
8159082 Gemin Apr 2012 B2
8294285 Hunter Oct 2012 B2
8294286 Hunter Oct 2012 B2
8362638 Gemin Jan 2013 B2
8495869 Beissler Jul 2013 B2
8519591 Nishimura Aug 2013 B2
8587136 Williams Nov 2013 B2
8670260 Wang Mar 2014 B2
8773876 Kuboyama Jul 2014 B2
8789601 Broussard Jul 2014 B2
8796899 Imazawa Aug 2014 B2
8811048 Zhang Aug 2014 B2
9103193 Coli Aug 2015 B2
9140110 Coli Sep 2015 B2
9166495 Guan Oct 2015 B2
9209704 Huang Dec 2015 B2
9534473 Morris Jan 2017 B2
9562420 Morris Feb 2017 B2
9577545 Tan Feb 2017 B2
9641112 Harknett May 2017 B2
10184397 Austin Jan 2019 B2
10411635 Takahashi Sep 2019 B2
10523130 Bax Dec 2019 B2
10584671 Tunzini Mar 2020 B2
20030030246 Campion Feb 2003 A1
20030033994 Campion Feb 2003 A1
20030057704 Baten Mar 2003 A1
20030079479 Kristich May 2003 A1
20040081561 Iwanami Apr 2004 A1
20040104577 Alger Jun 2004 A1
20040174723 Yamanaka Sep 2004 A1
20060066105 Johnson Mar 2006 A1
20060066108 Willets Mar 2006 A1
20060080971 Smith Apr 2006 A1
20060208594 Kashihara Sep 2006 A1
20060260331 Andreychuk Nov 2006 A1
20070108771 Jones May 2007 A1
20070121354 Jones May 2007 A1
20070216452 Matsumoto Sep 2007 A1
20090146426 Jones Jun 2009 A1
20090146500 Jones Jun 2009 A1
20090147549 Jones Jun 2009 A1
20090308602 Bruins Dec 2009 A1
20100060076 Gemin Mar 2010 A1
20100084922 Gollentz Apr 2010 A1
20120002454 Kuboyama Jan 2012 A1
20120175947 Gemin Jul 2012 A1
20120248922 Imazawa Oct 2012 A1
20120255734 Coli Oct 2012 A1
20130063070 Zhang Mar 2013 A1
20130182468 Guan Jul 2013 A1
20130229836 Wang Sep 2013 A1
20130234522 Tan Sep 2013 A1
20140096974 Coli Apr 2014 A1
20140138079 Broussard May 2014 A1
20140174717 Broussard Jun 2014 A1
20140210213 Campion Jul 2014 A1
20140312823 Huang Oct 2014 A1
20150027712 Vicknair Jan 2015 A1
20150068754 Coli Mar 2015 A1
20150252661 Glass Sep 2015 A1
20150300145 Coli Oct 2015 A1
20150314255 Coli Nov 2015 A1
20160075387 Fong Mar 2016 A1
20160177675 Morris Jun 2016 A1
20160177678 Morris Jun 2016 A1
20160369609 Morris Dec 2016 A1
20170104389 Morris Apr 2017 A1
20170302135 Cory Oct 2017 A1
20180080376 Austin Mar 2018 A1
20180080377 Austin Mar 2018 A1
20190229643 Bax Jul 2019 A1
20190331080 Tunzini Oct 2019 A1
20200109617 Oehring Apr 2020 A1
Foreign Referenced Citations (4)
Number Date Country
101636901 Jan 2010 CN
102574475 Jul 2012 CN
204386465 Jun 2015 CN
110118127 Aug 2019 CN
Non-Patent Literature Citations (1)
Entry
PCT, International Search Report and Written Opinion of the International Searching Authority in PCT/CN2019/102811, dated Mar. 19, 2020, 10 pages.
Related Publications (1)
Number Date Country
20200392826 A1 Dec 2020 US