WO2020258003A1 - 一种移动发电系统 - Google Patents
一种移动发电系统 Download PDFInfo
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- WO2020258003A1 WO2020258003A1 PCT/CN2019/092666 CN2019092666W WO2020258003A1 WO 2020258003 A1 WO2020258003 A1 WO 2020258003A1 CN 2019092666 W CN2019092666 W CN 2019092666W WO 2020258003 A1 WO2020258003 A1 WO 2020258003A1
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- power generation
- transportation device
- exhaust
- transportation
- air intake
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- 238000010248 power generation Methods 0.000 title claims abstract description 69
- 238000009434 installation Methods 0.000 claims abstract description 18
- 238000002485 combustion reaction Methods 0.000 claims description 12
- 238000003032 molecular docking Methods 0.000 claims description 12
- 238000009423 ventilation Methods 0.000 claims description 10
- 230000005611 electricity Effects 0.000 claims description 5
- 239000007789 gas Substances 0.000 description 36
- 238000010586 diagram Methods 0.000 description 11
- 239000004215 Carbon black (E152) Substances 0.000 description 4
- 239000000446 fuel Substances 0.000 description 4
- 229930195733 hydrocarbon Natural products 0.000 description 4
- 150000002430 hydrocarbons Chemical class 0.000 description 4
- 238000000034 method Methods 0.000 description 4
- VNWKTOKETHGBQD-UHFFFAOYSA-N methane Chemical compound C VNWKTOKETHGBQD-UHFFFAOYSA-N 0.000 description 2
- 239000000126 substance Substances 0.000 description 2
- 230000009286 beneficial effect Effects 0.000 description 1
- 238000006243 chemical reaction Methods 0.000 description 1
- 238000005516 engineering process Methods 0.000 description 1
- 230000007613 environmental effect Effects 0.000 description 1
- 239000003344 environmental pollutant Substances 0.000 description 1
- 238000003912 environmental pollution Methods 0.000 description 1
- 238000005461 lubrication Methods 0.000 description 1
- 238000012423 maintenance Methods 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 239000003345 natural gas Substances 0.000 description 1
- 238000005406 washing Methods 0.000 description 1
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 1
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Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B62—LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
- B62D—MOTOR VEHICLES; TRAILERS
- B62D59/00—Trailers with driven ground wheels or the like
- B62D59/02—Trailers with driven ground wheels or the like driven from external propulsion unit
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02C—GAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
- F02C6/00—Plural gas-turbine plants; Combinations of gas-turbine plants with other apparatus; Adaptations of gas-turbine plants for special use
Definitions
- the invention relates to the field of power generation technology, in particular to a mobile power generation system.
- the electric drive fracturing complete set of equipment will effectively reduce the emission of environmental pollutants, greatly reduce the floor space, reduce noise, and reduce operating and maintenance costs.
- the use of complete sets of electric drive fracturing equipment and the continuous increase in power of electric drive fracturing equipment put forward higher and higher requirements for the power supply at the job site.
- the wellsite cannot realize the power supply of fracturing equipment through the grid.
- the fracturing operation has the characteristics of short operation cycle, and the fracturing equipment needs to be moved between different well sites.
- the components of the power supply system have different assembly methods, different vehicle configurations, and different installation methods.
- the installation time required is as long as one month and as short as half a month.
- the purpose of the present invention overcomes the shortcomings of the prior art and provides a mobile power generation system.
- the power generation device is quickly connected to the independently transported air intake assembly and exhaust pipe through expansion joints to realize the rapid installation and connection of the power generation system on the fracturing operation site.
- the air intake component and the exhaust pipe are separately equipped with two transportation tools, and the adjustability is more flexible when docking. Fix the position of the power generating device, move the position of the air intake component to connect it with the intake chamber of the power generating device, and move the position of the exhaust pipe to connect it to the exhaust collector of the power generating device.
- a mobile power generation system including an air intake transportation device, an exhaust transportation device, and a power generation transportation device;
- Power generation transportation devices including gas turbines, intake chambers, exhaust gas collectors, generators and first transportation vehicles;
- the air intake transportation device includes an air intake component and a second transportation means.
- the air intake component is used to provide combustion air and ventilation air for the combustion engine room;
- the exhaust transportation device includes an exhaust pipe and a third transportation device; the intake transportation device and the exhaust transportation device are connected to the side of the power generation transportation device.
- the power generation transportation device further includes a power unit and a control system, the power unit is used to output electricity from the generator, and the control system includes a gas turbine control unit and a generator control unit.
- the air intake transportation device and the exhaust transportation device are connected to at least one side surface of the power generation transportation device through an expansion joint.
- the air intake transportation device is arranged on the same side or opposite side or adjacent side of the exhaust transportation device.
- first means of transportation, the second means of transportation, and the third means of transportation are at least one of a trailer, a truck, a skid or a barge.
- the exhaust pipe is horizontally arranged on the exhaust transportation device in the transportation state.
- the exhaust pipe is hydraulically rotated to the vertical direction of the exhaust transportation device in the working state.
- the power generation transportation device further includes an auxiliary system, which is used to assist the operation of the power generation transportation device.
- the air intake transportation device further includes an air intake hydraulic moving device, which is used to adjust the relative position of the air intake transportation device and the power generation transportation device during installation and docking.
- the exhaust transportation device further includes an exhaust hydraulic movement device, and the exhaust hydraulic movement device is used to adjust the relative position of the exhaust transportation device and the power generation transportation device during installation and docking.
- the present invention has the following beneficial effects: the fracturing operation site is realized through the installation of three independent transportation means of power generation device, exhaust pipe, and air intake assembly, supplemented by the connection of expansion joints between each other. , Quick installation and docking of power generation system.
- the air intake component and the exhaust pipe are separately equipped with two transportation tools, and the adjustability is more flexible when docking. Fix the position of the power generating device, move the position of the air intake component to connect it with the intake chamber of the power generating device, and move the position of the exhaust pipe to connect it to the exhaust collector of the power generating device.
- Figure 1 is a schematic diagram of the transport state of the exhaust transport device.
- Figure 2 is a schematic diagram of the working state of the exhaust transport device.
- Figure 3 is a schematic diagram of the air intake transport device.
- Figure 4 is a schematic diagram of a power generation transportation device.
- Fig. 5 is a schematic diagram of the overall structure (first embodiment) of the mobile power generation system.
- Fig. 6 is a schematic diagram of the overall structure of the mobile power generation system (the second embodiment).
- Fig. 7 is a schematic diagram of the overall structure of the mobile power generation system (the third embodiment).
- Exhaust transportation device 101. Exhaust expansion joint, 102. Exhaust pipe, 200. Air intake transportation device, 201. Gas turbine room ventilation expansion joint, 202. Combustion expansion joint, 203. Intake assembly, 300. Power generation transportation device, 301. Noise reduction room, 302. Gas turbine room, 303. Generator room, 304. Control room, 305. Power unit, 306. Control system, 307. Generator, 308. Exhaust gas collector , 309. Gas turbine, 310. Inlet chamber.
- transportation means refers to any transportation component, and the first means of transportation, the second means of transportation and the third means of transportation are at least one of a trailer, a truck, a skid or a barge.
- a mobile power generation system includes an air intake transportation device 200, an exhaust transportation device 100, and a power generation transportation device 300;
- a power generation transportation device 300 includes a gas turbine 309, an intake chamber 310, an exhaust gas collector 308, a generator 307, and a power unit 305, control system 306 and the first means of transport;
- the air intake transportation device 200 includes an air intake assembly 203 and a second transportation tool.
- the air intake assembly 203 is used to provide combustion-supporting air and ventilation air for the combustion engine room;
- the exhaust transportation device 100 includes an exhaust pipe 102 and a third transportation means; the intake transportation device 200 and the exhaust transportation device 100 are connected to the side of the power generation transportation device 300.
- the mobile power generation system does not require additional auxiliary equipment (such as cranes, etc.), effectively reducing installation time.
- the intake transportation device 200 and the exhaust transportation device 100 are small in size, flexible in transportation, and less difficult to install.
- the intake transportation device 200 and the exhaust transportation device 100 can be installed at the same time, requiring less installation time.
- the system can quickly assemble and generate electricity after site conversion to meet the power requirements of fracturing operations.
- the air intake transportation device 200 and the exhaust transportation device 100 are connected to at least one side surface of the power generation transportation device 300 through an expansion joint. According to the different orientations of the air inlet chamber 310 interface on the power generation transportation device 300, the air inlet transportation device 200 may be arranged on the same side or the opposite side or the adjacent side of the exhaust transportation device 100.
- the exhaust pipe 102 is horizontally arranged on the exhaust transportation device 100 in the transportation state.
- the exhaust pipe 102 is hydraulically rotated to the vertical direction of the exhaust transportation device 100.
- the power generation transportation device 300 further includes an auxiliary system, which is used to assist the operation of the power generation transportation device 300.
- the air intake transportation device 200 further includes an air intake hydraulic moving device, which is used to adjust the relative position of the air intake transportation device 200 and the power generation transportation device 300 during installation and docking.
- the exhaust gas transportation device 100 further includes an exhaust hydraulic movement device, which is used to adjust the relative position of the exhaust gas transportation device 100 and the power generation transportation device 300 during installation and docking.
- FIGS. 1 and 2 are schematic diagrams of the structure of the exhaust transport device.
- An exhaust pipe 102 and an exhaust expansion joint 101 are provided on the third transportation means.
- the exhaust pipe 102 includes an exhaust muffler, an exhaust chimney and an exhaust elbow.
- the exhaust pipe 102 is realized by the exhaust expansion joint 101 Docking with the power generation transportation device 300.
- the exhaust expansion joint 101, the exhaust elbow, the exhaust muffler and the exhaust chimney are connected in sequence.
- the exhaust duct 102 in the transportation state is located in a horizontal position (as shown in FIG. 1), and the exhaust duct 102 in a working state is rotated to a vertical position (as shown in FIG. 2) by hydraulic means.
- FIG 3 is a schematic diagram of the structure of the air intake transport device.
- An air intake assembly 203 and an air intake expansion joint are provided on the second transportation tool.
- the air intake assembly 203 is used to provide combustion air and ventilation air for the combustion engine room.
- the air intake assembly 203 includes an intake filter and an intake muffler.
- a ventilation fan is also integrated in the assembly 203.
- the intake expansion joint includes a combustion-supporting expansion joint 202 and a gas turbine room ventilation expansion joint 201.
- Figure 4 is a schematic diagram of the structure of a power generation transportation device.
- a noise reduction room 301 is installed on the power generation transportation device 300.
- the noise reduction room 301 is mainly divided into three parts: a gas turbine room 302, a generator room 303 and a control room 304.
- the gas turbine chamber 302 is mainly installed with a gas turbine 309.
- the gas turbine 309 converts the chemical energy of the hydrocarbon fuel into mechanical energy, and is used to guide the combustion air intake chamber 310, which is used to collect exhaust gas and lead to the exhaust gas collection of the exhaust pipe 102
- the generator room 303 is mainly installed with a generator 307 that converts the mechanical energy of the gas turbine 309 into electrical energy;
- the control room 304 is mainly installed with a power unit 305 and a control system 306, and the power unit 305 is used to output electricity from the generator 307
- the control system 306 includes a gas turbine control part and a generator control part.
- the power generation transportation device 300 may also include auxiliary systems not shown in FIG. 3, and the auxiliary systems include a lubrication system, a water washing system, a fire fighting system, and a starting system.
- Figures 5 to 7 are schematic diagrams of the overall structure of the mobile power generation system.
- the exhaust gas transportation device 100 is located on one side of the power generation transportation device 300, and the exhaust gas expansion joint 101 is used to connect to the exhaust gas collector 308 of the power generation transportation device 300 to pass the exhaust gas through the exhaust gas collector.
- the air duct 102 is discharged to the atmosphere.
- the air intake transportation device 200 is located on the opposite side of the exhaust transportation device 100, and the air intake transportation device 200 and the power generation transportation device 300 are connected through an air intake expansion joint, specifically, are connected through a combustion-supporting expansion joint 202 and a combustion engine room ventilation expansion joint 201, In this way, combustion-supporting air and gas turbine room ventilation air are provided for the power generation transportation device 300.
- the air intake transportation device 200 is located on the same side of the exhaust transportation device 100.
- the air intake transportation device 200 and the exhaust transportation device 100 are connected at two adjacent sides of the power generation transportation device 300.
- the method of the mobile power generation system includes the following steps:
- the exhaust expansion joint 101 When docking, the exhaust expansion joint 101 can extend toward the exhaust collector 308, and the intake expansion joint can extend toward the intake chamber 310 and the gas turbine chamber 302.
- the exhaust The expansion joint 101 can contract and stay away from the exhaust gas collector 308, and the intake expansion joint can contract and stay away from the intake chamber 310 and the gas turbine chamber 302.
- the intake hydraulic moving device and the exhaust hydraulic moving device have the same structure, including supporting feet, outriggers, vertical hydraulic cylinders and horizontal hydraulic cylinders that can move the transportation tool.
- the supporting feet are connected to the outriggers, and the vertical hydraulic cylinders are used to realize For the movement of the feet in the vertical direction, the horizontal hydraulic cylinder is used to realize the movement of the feet in the horizontal direction.
- the intake hydraulic moving device and the exhaust hydraulic moving device reduce the positioning accuracy requirements of the second transportation means and the third transportation means, and reduce the installation difficulty and installation time.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
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Abstract
一种移动发电系统,发电装置分别与独立运输的进气组件(203)和排气管道(102)通过伸缩接头快速对接,实现压裂作业现场发电系统的快速安装对接。进气组件(203)和排气管道(102)分设两个运输工具,在对接时,可调整性更灵活。固定发电装置位置,移动进气组件(203)的位置,使之与发电装置进气室对接,移动排气管道(102)的位置,使之与发电装置的排气收集器(308)对接。
Description
本发明涉及发电技术领域,具体涉及一种移动发电系统。
油气工业通常使用水力压裂来促进烃类井(比如油井或气井)的生产。传统压裂设备通常具有占地面积大、环境污染严重等问题,难以满足当前严峻的环境要求及井场作业占地面积要求。
电驱压裂成套设备将有效减少环境污染物的排放,大幅减少占地面积,降低噪声并降低作业和维护成本。成套电驱压裂设备的使用以及电驱压裂设备功率的不断增大,对作业现场的电力供应提出越来越高的要求。通常井场无法通过电网实现压裂设备的供电。而且压裂作业具有作业周期较短的特点,压裂设备需要在不同井场间进行移动。通常情况下,供电系统各部件之间因为组装方式不同,车载构成不同,安装方式不同,所需的安装时间长则1个月,短则半个月。
如何为电驱压裂作业现场提供安装时间短,安装便捷、可移动式的电力供应成为当今电驱压裂作业面临的一大挑战。
发明内容
本发明的目的克服现有技术的不足,提供一种移动发电系统,发电装置分别与独立运输的进气组件和排气管道通过伸缩接头快速对接,实现压裂作业现场发电系统的快速安装对接。进气组件和排气管道分设两个运输工具,在对接时,可调整性更灵活。固定发电装置位置,移动进气组件的位置,使之与发电装置进气室对接,移动排气管道的位置,使之与发电装置的排气收集器对接。
本发明的目的是通过以下技术措施达到的:一种移动发电系统,包括进气运输装置、排气运输装置和发电运输装置;
发电运输装置,包括燃气轮机、进气室、排气收集器、发电机和第一运输工具;
进气运输装置,包括进气组件和第二运输工具,进气组件用于提供助燃空气和燃机室通风空气;
排气运输装置,包括排气管道和第三运输工具;进气运输装置和排气运输装置连接到发电运输装置的侧面。
进一步地,所述发电运输装置还包括电力单元和控制系统,所述电力单元用于将发电机的电对外输出,所述控制系统包括燃机控制单元和发电机控制单元。
进一步地,所述进气运输装置和排气运输装置通过伸缩接头连接到发电运输装置的至少一个侧面。
进一步地,所述进气运输装置设在排气运输装置的同侧或对侧或相邻侧。
进一步地,所述第一运输工具、第二运输工具和第三运输工具为拖车、卡车、滑动垫木或驳船中的至少一种。
进一步地,所述排气管道在运输状态下,水平设在排气运输装置上。
进一步地,所述排气管道在工作状态下,通过液压方式旋转至排气运输装置竖直方向上。
进一步地,所述发电运输装置还包括辅助系统,辅助系统用于辅助发电运输装置的运行。
进一步地,所述进气运输装置还包括进气液压移动装置,在安装对接时, 进气液压移动装置用于调整进气运输装置与发电运输装置的相对位置。
进一步地,所述排气运输装置还包括排气液压移动装置,在安装对接时,排气液压移动装置用于调整排气运输装置与发电运输装置的相对位置。
与现有技术相比,本发明的有益效果是:通过发电装置,排气管道,进气组件独立的3个运输工具的设置,辅以彼此之间伸缩接头的连接方式,实现压裂作业现场,发电系统的快速安装对接。进气组件和排气管道分设两个运输工具,在对接时,可调整性更灵活。固定发电装置位置,移动进气组件的位置,使之与发电装置进气室对接,移动排气管道的位置,使之与发电装置的排气收集器对接。
下面结合附图和具体实施方式对本发明作详细说明。
图1是排气运输装置运输状态示意图。
图2是排气运输装置工作状态示意图。
图3是进气运输装置示意图。
图4是发电运输装置示意图。
图5是移动发电系统整体结构(第一种实施例)示意图。
图6是移动发电系统整体结构(第二种实施例)示意图。
图7是移动发电系统整体结构(第三种实施例)示意图。
其中,100.排气运输装置,101.排气伸缩接头,102.排气管道,200.进气运输装置,201.燃机室通风伸缩接头,202.助燃伸缩接头,203.进气组件,300.发电运输装置,301.降噪房,302.燃机室,303.发电机室,304.控制室,305.电力单元,306.控制系统,307.发电机,308.排气收集器,309.燃气轮机, 310.进气室。
本文中所使用的,术语“运输工具”指的是任何运输组件,所述第一运输工具、第二运输工具和第三运输工具为拖车、卡车、滑动垫木或驳船中的至少一种。
一种移动发电系统,包括进气运输装置200、排气运输装置100和发电运输装置300;发电运输装置300,包括燃气轮机309、进气室310、排气收集器308、发电机307、电力单元305,控制系统306和第一运输工具;
进气运输装置200,包括进气组件203和第二运输工具,进气组件203用于提供助燃空气和燃机室通风空气;
排气运输装置100,包括排气管道102和第三运输工具;进气运输装置200和排气运输装置100连接到发电运输装置300的侧面。利用油气井场充足且廉价的烃类燃料(如天然气)为燃气轮机309提供燃料,将烃类燃料的化学能转换为机械能,然后通过发电机307将机械能转化为电能为电驱压裂作业现场供应高效、稳定、环保、可移动的电力。该移动发电系统无需额外辅助设备(如吊车等),有效减少安装时间。进气运输装置200及排气运输装置100体积较小,运输灵活,安装对中难度小,进气运输装置200及排气运输装置100可同时进行安装作业,所需安装时间少。该系统能够实现场地转换后快速的组装并发电,满足压裂作业电力需求。
所述进气运输装置200和排气运输装置100通过伸缩接头连接到发电运输装置300的至少一个侧面。根据发电运输装置300上进气室310接口的不同朝向,所述进气运输装置200可以设在排气运输装置100的同侧或对侧或相邻侧。
所述排气管道102在运输状态下,水平设在排气运输装置100上。
所述排气管道102在工作状态下,通过液压方式旋转至排气运输装置100竖直方向上。
所述发电运输装置300还包括辅助系统,辅助系统用于辅助发电运输装置300的运行。
所述进气运输装置200还包括进气液压移动装置,在安装对接时,进气液压移动装置用于调整进气运输装置200与发电运输装置300的相对位置。
所述排气运输装置100还包括排气液压移动装置,在安装对接时,排气液压移动装置用于调整排气运输装置100与发电运输装置300的相对位置。
图1和图2是排气运输装置的结构示意图。在第三运输工具上设有排气管道102和排气伸缩接头101,其中排气管道102包含排气消音器,排气烟囱和排气弯头,通过排气伸缩接头101实现排气管道102与发电运输装置300的对接。排气伸缩接头101、排气弯头、排气消音器和排气烟囱依次连接。运输状态排气管道102位于水平位置(如图1),工作状态排气管道102通过液压等方式旋转至竖直位置(如图2)。
图3是进气运输装置的结构示意图。在第二运输工具上设进气组件203和进气伸缩接头,进气组件203用于提供助燃空气和燃机室通风空气,进气组件203包括进气过滤器和进气消音器,进气组件203中还集成了通风风扇。进气伸缩接头包括助燃伸缩接头202、燃机室通风伸缩接头201。
图4是发电运输装置的结构示意图。发电运输装置300上安装有降噪房301,降噪房301主要分为3部分:燃机室302、发电机室303和控制室304。其中燃机室302主要安装燃气轮机309,通过燃气轮机309将烃类燃料化学能转换为机 械能,用于导流助燃空气的进气室310,用于收集废气并导入到排气管道102的排气收集器308;发电机室303主要安装有将燃气轮机309的机械能转换为电能的发电机307;控制室304主要安装有电力单元305和控制系统306,电力单元305用于将发电机307的电对外输出,所述控制系统306包括燃机控制部分和发电机控制部分。发电运输装置300还可以包括图3中未展示出的辅助系统,所述辅助系统包括润滑系统、水洗系统、消防系统和启动系统等。
图5到图7是移动发电系统整体结构示意图。如图5所示,第一种实施例,排气运输装置100位于发电运输装置300的一个侧面,并使用排气伸缩接头101连接到发电运输装置300的排气收集器308,将废气通过排气管道102排放至大气。进气运输装置200位于排气运输装置100的对立侧面,进气运输装置200与发电运输装置300通过进气伸缩接头连接,具体的,通过助燃伸缩接头202、燃机室通风伸缩接头201连接,从而为发电运输装置300提供助燃空气和燃机室通风空气。如图6所示,第二种实施例,进气运输装置200位于排气运输装置100的同一侧面。如图7所示,第三种实施例,进气运输装置200与排气运输装置100在发电运输装置300的相邻两侧连接。
该移动发电系统的方法,包括以下步骤:
1)将燃气轮机309、进气室310、排气收集器308、发电机307、电力单元305,控制系统306安装到第一运输工具上;
2)将用于提供助燃空气和燃机室通风空气的进气组件203和进气伸缩接头安装在第二运输工具上,进气伸缩接头与进气组件203连接;
3)将排气管道102和排气伸缩接头101安装到第三运输工具上;
4)将第一运输工具移动至用户现场的指定位置,移动第二运输工具和第三 运输工具至预定位置后,使用进气液压移动装置调节第二运输工具的水平、竖直位置,使进气伸缩接头与第一运输工具上的进气室310对接,使用排气液压移动装置调节第三运输工具的水平、竖直位置,使排气伸缩接头101与第一运输工具上的排气收集器308对接;
5)将第三运输工具上的排气管道102由水平位置旋转至竖直方向,排气管道102和排气伸缩接头101连接,将废气通过排气管道102排放至大气。
在对接时,排气伸缩接头101能够朝着排气收集器308伸展,进气伸缩接头能朝着进气室310和燃机室302伸展,当完成工作,需要拆离用户现场时,排气伸缩接头101能收缩并远离排气收集器308,进气伸缩接头能收缩并远离进气室310和燃机室302。
进气液压移动装置和排气液压移动装置结构相同,包括能够实现运输工具移动的支脚、外伸架、竖直液压缸和水平液压缸,支脚与外伸架连接,竖直液压缸用于实现支脚在竖直方向的移动,水平液压缸用于实现支脚在水平方向的移动。进气液压移动装置和排气液压移动装置降低了第二运输工具和第三运输工具的定位精度要求,减少了安装难度及安装时间。
Claims (10)
- 一种移动发电系统,包括进气运输装置、排气运输装置和发电运输装置;其特征在于:发电运输装置,包括燃气轮机、进气室、排气收集器、发电机和第一运输工具;进气运输装置,包括进气组件和第二运输工具,进气组件用于提供助燃空气和燃机室通风空气;排气运输装置,包括排气管道和第三运输工具;进气运输装置和排气运输装置连接到发电运输装置的侧面。
- 根据权利要求1所述的用于提供移动电力的系统,其特征在于:所述发电运输装置还包括电力单元和控制系统,所述电力单元用于将发电机的电对外输出,所述控制系统包括燃机控制单元和发电机控制单元.
- 根据权利要求1所述的移动发电系统,其特征在于:所述进气运输装置和排气运输装置通过伸缩接头连接到发电运输装置的至少一个侧面。
- 根据权利要求2所述的移动发电系统,其特征在于:所述进气运输装置设在排气运输装置的同侧或对侧或相邻侧。
- 根据权利要求1所述的移动发电系统,其特征在于:所述第一运输工具、第二运输工具和第三运输工具为拖车、卡车、滑动垫木或驳船中的至少一种。
- 根据权利要求1所述的移动发电系统,其特征在于:所述排气管道在运输状态下,水平设在排气运输装置上。
- 根据权利要求1所述的移动发电系统,其特征在于:所述排气管道在工作状态下,通过液压方式旋转至排气运输装置竖直方向上。
- 根据权利要求1所述的移动发电系统,其特征在于:所述发电运输装置还包括辅助系统,辅助系统用于辅助发电运输装置的运行。
- 根据权利要求1所述的移动发电系统,其特征在于:所述进气运输装置还包括进气液压移动装置,在安装对接时,进气液压移动装置用于调整进气运输装置与发电运输装置的相对位置。
- 根据权利要求1所述的移动发电系统,其特征在于:所述排气运输装置还包括排气液压移动装置,在安装对接时,排气液压移动装置用于调整排气运输装置与发电运输装置的相对位置。
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