WO2017147810A1 - 一种采用多通道燃气发电的新型发电系统 - Google Patents
一种采用多通道燃气发电的新型发电系统 Download PDFInfo
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- WO2017147810A1 WO2017147810A1 PCT/CN2016/075303 CN2016075303W WO2017147810A1 WO 2017147810 A1 WO2017147810 A1 WO 2017147810A1 CN 2016075303 W CN2016075303 W CN 2016075303W WO 2017147810 A1 WO2017147810 A1 WO 2017147810A1
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- 238000010248 power generation Methods 0.000 title claims abstract description 107
- 239000007789 gas Substances 0.000 claims description 109
- 238000001514 detection method Methods 0.000 claims description 14
- 239000000446 fuel Substances 0.000 claims description 10
- 239000002918 waste heat Substances 0.000 claims description 10
- 238000011084 recovery Methods 0.000 claims description 9
- 238000004891 communication Methods 0.000 claims description 8
- 230000005540 biological transmission Effects 0.000 claims description 6
- 230000000712 assembly Effects 0.000 claims description 3
- 238000000429 assembly Methods 0.000 claims description 3
- 230000005611 electricity Effects 0.000 description 6
- 238000002485 combustion reaction Methods 0.000 description 2
- 238000010586 diagram Methods 0.000 description 2
- 238000012544 monitoring process Methods 0.000 description 2
- 239000002699 waste material Substances 0.000 description 2
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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
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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
- F02C6/18—Plural gas-turbine plants; Combinations of gas-turbine plants with other apparatus; Adaptations of gas-turbine plants for special use using the waste heat of gas-turbine plants outside the plants themselves, e.g. gas-turbine power heat plants
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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
- F02C9/00—Controlling gas-turbine plants; Controlling fuel supply in air- breathing jet-propulsion plants
- F02C9/48—Control of fuel supply conjointly with another control of the plant
- F02C9/50—Control of fuel supply conjointly with another control of the plant with control of working fluid flow
Definitions
- the invention relates to a novel power generation system using multi-channel gas power generation.
- gas-fired power generation is used to generate electricity
- heat is generated by combustion of fuel
- gas turbines are driven to drive generators to generate electricity.
- the technical problem to be solved by the present invention is to provide a novel power generation system using multi-channel gas power generation in order to overcome the disadvantages of low power generation efficiency and poor utilization rate in the prior art.
- a novel power generation system using multi-channel gas power generation comprising a central control device and a power generation mechanism electrically connected with the central control device, the power generation mechanism including an intake pipe, and a primary gas power generation mechanism and a secondary gas power generation mechanism connected to the intake pipe, the primary gas power generation mechanism includes two gas turbine power generation units, and the secondary gas power generation mechanism includes a gas turbine power generation unit, the gas turbine
- the power generation unit includes a gas passage and two gas power generation assemblies disposed in the gas passage, one end of the gas passage is connected to the intake duct, and the other end of the gas passage is provided with an exhaust gas exhaust pipe and a waste heat recovery pipe, the first The waste heat recovery pipeline in the gas-fired power generation mechanism is connected to the gas passage in the secondary gas-fired power generation mechanism;
- the gas power generation assembly includes a gas turbine, a fuel inlet, a transmission shaft connected to the gas turbine, and a generator, and the gas turbine is connected to the generator through a transmission shaft, and one side of the gas turbine is provided Provided with a signal acquisition device, the gas power generation component is electrically connected to the central control device;
- the signal acquisition device includes a pressure sensor, a temperature sensor, and a flow sensor.
- the central control device is a computer.
- the central control device is provided with a central control system, a pressure detection module connected to the central control system, a temperature detection module, a flow detection module, a power generation control module, a valve control module, and wireless communication. Module.
- the electromagnetic valve has the characteristics of high precision control, thereby improving the reliability of operation of each mechanism of the system, and the fuel inlet, the exhaust gas discharge pipe and the waste heat recovery pipe are respectively provided with valves, and the valve is a solenoid valve.
- the valve is electrically coupled to the valve control module.
- the pressure sensor is electrically connected to the pressure detecting module
- the temperature sensor is electrically connected to the temperature detecting module
- the flow sensor is electrically connected to the flow detecting module.
- the invention has the beneficial effects that the novel power generation system using multi-channel gas power generation can monitor the parameters of the gas passages in real time through various signal acquisition devices, and simultaneously control the switch of the valves, not only can ensure the maximum working efficiency of each gas turbine, Thereby, the power generation efficiency of the system is improved, and the power generation of the secondary gas power generation mechanism can be controlled, and the remaining energy in the system can be utilized, thereby improving the resource utilization rate of the system; not only that, the two combustions in the primary gas power generation mechanism
- the power generation unit absorbs heat from multiple pipes, further ensuring the resource utilization of the system.
- FIG. 1 is a schematic structural view of a novel power generation system using multi-channel gas power generation according to the present invention
- FIG. 2 is a system schematic diagram of a novel power generation system using multi-channel gas power generation according to the present invention
- a novel power generation system using multi-channel gas power generation includes a central control unit 11 and a power generation mechanism electrically connected to the central control unit 11, and the power generation mechanism includes an intake duct 1, and an intake duct.
- a first-stage gas power generation mechanism and a second-stage gas power generation mechanism connected to the gas pipe 1 the first-stage gas power generation mechanism includes two gas turbine power generation units, and the second-stage gas power generation mechanism includes a gas turbine power generation unit, the gas turbine
- the power generating unit includes a gas passage 2 and two gas power generating assemblies disposed in the gas passage 2, one end of the gas passage 2 is in communication with the intake duct 1, and the other end of the gas passage 2 is provided with an exhaust gas exhaust pipe 9 and waste heat a waste pipe 10, wherein the waste heat recovery pipe 10 in the first-stage gas power generation mechanism is connected to the gas passage 2 in the secondary gas power generation mechanism;
- the gas power generation assembly includes a gas turbine 3, a fuel inlet 4, a transmission shaft 7 connected to the gas turbine 3, and a generator 8, which is drivingly connected to the generator 8 via a transmission shaft 7, and one side of the gas turbine 3 is provided a signal collecting device 6, the gas power generating component is electrically connected to the central control device 11;
- the signal acquisition device 6 includes a pressure sensor 12, a temperature sensor 13, and a flow sensor 14.
- the central control unit 11 is a computer.
- the central control device 11 is provided with a central control system 15, a pressure detecting module 16 connected to the central control system 15, a temperature detecting module 17, and a flow rate.
- the detection module 18, the power generation control module 19, the valve control module 20, and the wireless communication module 21 are provided.
- the electromagnetic valve has the characteristics of high precision control, thereby improving the reliability of operation of each mechanism of the system, and the fuel inlet 4, the exhaust gas discharge pipe 9 and the waste heat recovery pipe 10 are each provided with a valve 5, which is electromagnetic valve.
- valve 5 is electrically connected to the valve control module 20.
- the pressure sensor 12 is electrically coupled to a pressure sensing module 16 that is electrically coupled to a temperature sensing module 17 that is electrically coupled to a flow sensing module 18.
- the working principle of the novel power generation system using multi-channel gas power generation is: first, air enters each gas turbine power generation unit in the first-stage gas power generation mechanism through the intake pipe 1, and the gas power generation component generates electricity, and then the remaining energy is
- the gas passage 2 in the primary gas-fired power generation institution enters the gas passage 2 in the secondary gas-fired power generation mechanism, and the remaining energy in the system is again utilized, and the gas-fired power generation component in the secondary gas-fired power generation unit generates electricity, thereby The resource utilization and power generation efficiency of the power generation system are guaranteed.
- the fuel inlet 4 injects fuel to ensure the rotation of the gas turbine 3, and the gas turbine 3 drives the generator 8 through the drive shaft 7 to generate electricity, thereby realizing gas power generation;
- the signal acquisition device 6 in the gas passage 2 monitors the pressure, temperature and flow rate in the gas passage 2 in real time through the pressure sensor 12, the temperature sensor 13 and the flow sensor 14, thereby controlling the switches of the valves 5 to control the gas turbine 3 Maintain maximum efficiency and control whether to start a secondary gas-fired power generation unit to generate electricity.
- the new power generation system adopts multi-channel gas power generation: the pressure detecting module 16 is used for collecting and analyzing the detection data of the pressure sensor 12; the temperature detecting module 17 is used for collecting and analyzing the detection data of the temperature sensor 13; Collecting and analyzing the detection data of the flow sensor 14; the power generation control module 19 is for real-time monitoring of the power generation status of the generator 8; valve control The module 20 is used to control the switch of the valve 5; the wireless communication module 21 is used for real-time communication with the server to ensure remote real-time monitoring of the system by the staff.
- the novel power generation system using multi-channel gas power generation monitors the parameters of the gas passage 2 in real time through various signal acquisition devices 6, and simultaneously controls the switch of the valve 5, which not only ensures that each gas turbine 3 remains Maximum working efficiency, thus improving the power generation efficiency of the system, and also controlling the power generation of the secondary gas-fired power generation mechanism, utilizing the remaining energy in the system, thereby improving the resource utilization rate of the system;
- the two gas turbine power generation units absorb multi-channel heat energy, further ensuring the resource utilization of the system.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Control Of Eletrric Generators (AREA)
- Engine Equipment That Uses Special Cycles (AREA)
Abstract
一种采用多通道燃气发电的发电系统,包括中央控制装置(11)、与中央控制装置(11)电连接的发电机构,所述发电机构包括进气管道(1)、与进气管道(1)连通的一级燃气发电机构和二级燃气发电机构,该采用多通道燃气发电的发电系统通过各处信号采集装置(6)对燃气通道(2)各处的参数进行实时监控,同时控制阀门(5)的开关,不仅能够保证各燃气轮机(3)保持最大工作效率,从而提高了系统的发电效率,还能够控制二级燃气发电机构的发电,对系统中剩余的能量进行利用,从而能够提高系统的资源利用率;一级燃气发电机构中的两个燃机发电单元对热能进行多管道吸收,进一步保证了系统的资源利用率。
Description
本发明涉及一种采用多通道燃气发电的新型发电系统。
在现代电力发电厂中,有采用燃气发电的方法进行发电,通过燃料的燃烧产生热能,驱动燃气轮机来带动发电机发电。
在现有技术中,由于热能经过燃气轮机以后还残余大量的动能和热能,而目前电厂只是对其热能进行简单的回收,这样就造成了很大的能源的浪费,从而降低了发电系统的发电效率,无法满足现在人们对于能源的高利用率的要求,大大限制了燃气发电的实用价值。
发明内容
本发明要解决的技术问题是:为了克服现有技术发电效率低且利用率差的不足,提供一种采用多通道燃气发电的新型发电系统。
本发明解决其技术问题所采用的技术方案是:一种采用多通道燃气发电的新型发电系统,包括中央控制装置、与中央控制装置电连接的发电机构,所述发电机构包括进气管道、与进气管道连通的一级燃气发电机构和二级燃气发电机构,所述一级燃气发电机构包括两个燃机发电单元,所述二级燃气发电机构包括一个燃机发电单元,所述燃机发电单元包括燃气通道和两个设置在燃气通道内的燃气发电组件,所述燃气通道的一端与进气管道连通,所述燃气通道的另一端设有废气排出管道和废热回收管道,所述一级燃气发电机构中的废热回收管道与二级燃气发电机构中的燃气通道连通;
所述燃气发电组件包括燃气轮机、燃料入口、与燃气轮机连接的传动轴和发电机,所述燃气轮机通过传动轴与发电机传动连接,所述燃气轮机的一侧设
置有信号采集装置,所述燃气发电组件与中央控制装置电连接;
所述信号采集装置包括压力传感器、温度传感器和流量传感器。
作为优选,所述中央控制装置为计算机。
作为优选,为了提高系统的可靠性,所述中央控制装置中设有中央控制系统、与中央控制系统连接的压力检测模块、温度检测模块、流量检测模块、发电控制模块、阀门控制模块和无线通讯模块。
作为优选,利用电磁阀控制精度高的特点,从而提高了系统各个机构运行的可靠性,所述燃料入口、废气排出管道和废热回收管道均设有阀门,所述阀门为电磁阀。
作为优选,所述阀门与阀门控制模块电连接。
作为优选,所述压力传感器与压力检测模块电连接,所述温度传感器与温度检测模块电连接,所述流量传感器与流量检测模块电连接。
本发明的有益效果是,该采用多通道燃气发电的新型发电系统通过各处信号采集装置对燃气通道各处的参数进行实时监控,同时控制阀门的开关,不仅能够保证各燃气轮机保持最大工作效率,从而提高了系统的发电效率,还能够控制二级燃气发电机构的发电,对系统中剩余的能量进行利用,从而能够提高系统的资源利用率;不仅如此,一级燃气发电机构中的两个燃机发电单元对热能进行多管道吸收,进一步保证了系统的资源利用率。
下面结合附图和实施例对本发明进一步说明。
图1是本发明的采用多通道燃气发电的新型发电系统的结构示意图;
图2是本发明的采用多通道燃气发电的新型发电系统的系统原理图;
图中:1.进气管道,2.燃气通道,3.燃气轮机,4.燃料入口,5.阀门,6.信号
采集装置,7.传动轴,8.发电机,9.废气排出管道,10.废热回收管道,11.中央控制装置,12.压力传感器,13.温度传感器,14.流量传感器,15.中央控制系统,16.压力检测模块,17.温度检测模块,18.流量检测模块,19.发电控制模块,20.阀门控制模块,21.无线通讯模块。
现在结合附图对本发明作进一步详细的说明。这些附图均为简化的示意图,仅以示意方式说明本发明的基本结构,因此其仅显示与本发明有关的构成。
如图1和图2所示,一种采用多通道燃气发电的新型发电系统,包括中央控制装置11、与中央控制装置11电连接的发电机构,所述发电机构包括进气管道1、与进气管道1连通的一级燃气发电机构和二级燃气发电机构,所述一级燃气发电机构包括两个燃机发电单元,所述二级燃气发电机构包括一个燃机发电单元,所述燃机发电单元包括燃气通道2和两个设置在燃气通道2内的燃气发电组件,所述燃气通道2的一端与进气管道1连通,所述燃气通道2的另一端设有废气排出管道9和废热回收管道10,所述一级燃气发电机构中的废热回收管道10与二级燃气发电机构中的燃气通道2连通;
所述燃气发电组件包括燃气轮机3、燃料入口4、与燃气轮机3连接的传动轴7和发电机8,所述燃气轮机3通过传动轴7与发电机8传动连接,所述燃气轮机3的一侧设置有信号采集装置6,所述燃气发电组件与中央控制装置11电连接;
所述信号采集装置6包括压力传感器12、温度传感器13和流量传感器14。
作为优选,所述中央控制装置11为计算机。
作为优选,为了提高系统的可靠性,所述中央控制装置11中设有中央控制系统15、与中央控制系统15连接的压力检测模块16、温度检测模块17、流量
检测模块18、发电控制模块19、阀门控制模块20和无线通讯模块21。
作为优选,利用电磁阀控制精度高的特点,从而提高了系统各个机构运行的可靠性,所述燃料入口4、废气排出管道9和废热回收管道10均设有阀门5,所述阀门5为电磁阀。
作为优选,所述阀门5与阀门控制模块20电连接。
作为优选,所述压力传感器12与压力检测模块16电连接,所述温度传感器13与温度检测模块17电连接,所述流量传感器14与流量检测模块18电连接。
该采用多通道燃气发电的新型发电系统的工作原理是:首先空气通过进气管道1进入到一级燃气发电机构中的各燃机发电单元,燃气发电组件就会进行发电,随后剩余的能量就会通过一级燃气发电机构中的燃气通道2进入到二级燃气发电机构中的燃气通道2,再次对系统中剩余的能量进行利用,通过二级燃气发电机构中的燃气发电组件进行发电,从而保证了发电系统的资源利用率和发电效率。其中燃气发电组件中,空气到达相应的燃气轮机3时,则燃料入口4就会注入燃料,保证燃气轮机3的转动,同时燃气轮机3通过驱动轴7带动发电机8进行发电,从而实现了燃气发电;同时燃气通道2中的信号采集装置6,通过压力传感器12、温度传感器13和流量传感器14对燃气通道2内的压力、温度和流量进行实时监测,从而控制各处阀门5的开关,来控制燃气轮机3保持最大工作效率和控制是否启动二级燃气发电机构进行发电。
该采用多通道燃气发电的新型发电系统中:压力检测模块16用于对压力传感器12的检测数据进行采集分析;温度检测模块17用于温度传感器13的检测数据进行采集分析;流量检测模块18用于对流量传感器14的检测数据进行采集分析;发电控制模块19用于对发电机8的发电状况进行实时监控;阀门控制
模块20用于控制阀门5的开关;无线通讯模块21用于与服务器进行实时通讯,保证工作人员对系统进行远程实时监控。
与现有技术相比,该采用多通道燃气发电的新型发电系统通过各处信号采集装置6对燃气通道2各处的参数进行实时监控,同时控制阀门5的开关,不仅能够保证各燃气轮机3保持最大工作效率,从而提高了系统的发电效率,还能够控制二级燃气发电机构的发电,对系统中剩余的能量进行利用,从而能够提高系统的资源利用率;不仅如此,一级燃气发电机构中的两个燃机发电单元对热能进行多管道吸收,进一步保证了系统的资源利用率。
以上述依据本发明的理想实施例为启示,通过上述的说明内容,相关工作人员完全可以在不偏离本项发明技术思想的范围内,进行多样的变更以及修改。本项发明的技术性范围并不局限于说明书上的内容,必须要根据权利要求范围来确定其技术性范围。
Claims (6)
- 一种采用多通道燃气发电的新型发电系统,其特征在于,包括中央控制装置(11)、与中央控制装置(11)电连接的发电机构,所述发电机构包括进气管道(1)、与进气管道(1)连通的一级燃气发电机构和二级燃气发电机构,所述一级燃气发电机构包括两个燃机发电单元,所述二级燃气发电机构包括一个燃机发电单元,所述燃机发电单元包括燃气通道(2)和两个设置在燃气通道(2)内的燃气发电组件,所述燃气通道(2)的一端与进气管道(1)连通,所述燃气通道(2)的另一端设有废气排出管道(9)和废热回收管道(10),所述一级燃气发电机构中的废热回收管道(10)与二级燃气发电机构中的燃气通道(2)连通;所述燃气发电组件包括燃气轮机(3)、燃料入口(4)、与燃气轮机(3)连接的传动轴(7)和发电机(8),所述燃气轮机(3)通过传动轴(7)与发电机(8)传动连接,所述燃气轮机(3)的一侧设置有信号采集装置(6),所述燃气发电组件与中央控制装置(11)电连接;所述信号采集装置(6)包括压力传感器(12)、温度传感器(13)和流量传感器(14)。
- 如权利要求1所述的采用多通道燃气发电的新型发电系统,其特征在于,所述中央控制装置(11)为计算机。
- 如权利要求1所述的采用多通道燃气发电的新型发电系统,其特征在于,所述中央控制装置(11)中设有中央控制系统(15)、与中央控制系统(15)连接的压力检测模块(16)、温度检测模块(17)、流量检测模块(18)、发电控制模块(19)、阀门控制模块(20)和无线通讯模块(21)。
- 如权利要求1所述的采用多通道燃气发电的新型发电系统,其特征在于,所述燃料入口(4)、废气排出管道(9)和废热回收管道(10)均设有阀门(5), 所述阀门(5)为电磁阀。
- 如权利要求3-4所述的采用多通道燃气发电的新型发电系统,其特征在于,所述阀门(5)与阀门控制模块(20)电连接。
- 如权利要求3所述的采用多通道燃气发电的新型发电系统,其特征在于,所述压力传感器(12)与压力检测模块(16)电连接,所述温度传感器(13)与温度检测模块(17)电连接,所述流量传感器(14)与流量检测模块(18)电连接。
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