CN211266491U - Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device - Google Patents

Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device Download PDF

Info

Publication number
CN211266491U
CN211266491U CN201922233638.0U CN201922233638U CN211266491U CN 211266491 U CN211266491 U CN 211266491U CN 201922233638 U CN201922233638 U CN 201922233638U CN 211266491 U CN211266491 U CN 211266491U
Authority
CN
China
Prior art keywords
electric energy
conversion device
energy conversion
energy storage
frequency modulation
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201922233638.0U
Other languages
Chinese (zh)
Inventor
施敏
王雷
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shanghai Waigaoqiao No3 Power Generation Co ltd
Original Assignee
Shanghai Waigaoqiao No3 Power Generation Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Shanghai Waigaoqiao No3 Power Generation Co ltd filed Critical Shanghai Waigaoqiao No3 Power Generation Co ltd
Priority to CN201922233638.0U priority Critical patent/CN211266491U/en
Application granted granted Critical
Publication of CN211266491U publication Critical patent/CN211266491U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Control Of Eletrric Generators (AREA)

Abstract

The utility model discloses an auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device, which relates to the field of thermal power generation and comprises a small generator, a small steam turbine, a main steam turbine generator set, a main transformer, a small transformer, an electric energy conversion device, a steam inlet adjusting valve, an energy storage device, a bus, a main switch and a device for connecting or disconnecting a control circuit, wherein the small generator is electrically connected with the bus through the device for connecting or disconnecting the control circuit; the bus is electrically connected with a load through a device for controlling the circuit connection or disconnection; the small steam turbine drives the small generator to generate alternating current; the steam inlet regulating valve controls the steam inlet quantity of the small steam turbine; the main transformer is electrically connected with a power frequency power grid through a main switch; the electric energy conversion device is electrically connected with the bus through a small transformer and a device for controlling circuit connection or disconnection. The utility model discloses can improve the regulation degree of depth or performance such as control range of primary control and automatic power generation control, reduce energy loss and improve energy utilization.

Description

Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device
Technical Field
The utility model relates to a thermal power field especially relates to a supplementary frequency modulation device of thermal power plant based on electric energy conversion equipment and energy memory.
Background
On one hand, in order to reduce cost, save energy, reduce emission and actively excavate internal potential, reduce plant power rate and improve the economy of the power plant by thousands of means, a small generator set is built to supply power to plant loads or other equipment, which is an energy-saving technology implemented at present.
The small generator set steam inlet regulating valve has certain throttling loss in operation, and the reasons mainly come from the following points: the design margin of the steam source of the small generator set, the adjustment of the operation mode, the requirement of operation safety consideration or adjustment margin, so that the steam inlet adjusting valve of the small generator set is always in a throttling state.
On the other hand, the grid-connected thermal power plant provides auxiliary services according to relevant regulations, including frequency modulation services such as primary frequency modulation and automatic generation control AGC.
The primary frequency modulation refers to an automatic control process that once the frequency of the power grid deviates from a rated value, a control system of a unit in the power grid automatically controls the increase and decrease of the active power of the unit, limits the change of the frequency of the power grid and enables the frequency of the power grid to be stable. When the frequency of the power grid is increased, the primary frequency modulation function requires the unit to utilize the heat storage of the unit to quickly reduce the load, and otherwise, the unit quickly increases the load. The assessment indexes of the primary frequency modulation generally comprise correct action rate, performance indexes and the like.
The automatic generation control AGC is a service that a generator set tracks a power scheduling instruction within a specified output adjustment range, and adjusts the generated output in real time according to a certain adjustment rate so as to meet the control requirements of the frequency of a power system and the power of a tie line. The evaluation indexes of the AGC generally comprise response time, regulation rate, regulation precision and the like.
The primary frequency modulation and AGC of the thermal power plant act on a thermodynamic system through thermal control, a large response dead zone or an adjustment dead zone exists, the response time is long and can reach dozens of seconds generally, the response speed or the adjustment rate is slow, and the energy conversion and utilization efficiency is relatively low.
Therefore, in order to reduce the throttling loss of the small generator set, further improve the energy-saving effect, simultaneously improve the performance or the evaluation index of the primary frequency modulation and the AGC of the thermal power plant, reduce the energy loss and improve the energy utilization efficiency, the technical personnel in the field are based on the energy-saving technology of the small generator set, the primary frequency modulation and the AGC frequency modulation, and are dedicated to developing a sensitive, quick and efficient auxiliary frequency modulation device of the thermal power plant based on an electric energy conversion and energy storage device.
SUMMERY OF THE UTILITY MODEL
In view of the above-mentioned defect of prior art, the utility model aims to solve the technical problem how to reduce little generating set throttle loss, improve thermal power factory primary control and AGC's performance again simultaneously.
In order to achieve the above object, the utility model provides an auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device, which comprises a small generator, a small steam turbine, a main steam turbine generator set, a main transformer, a small transformer, an electric energy conversion device, a steam inlet regulating valve, an energy storage device, a bus, a main switch and a device for connecting or disconnecting a control circuit, wherein the small generator is electrically connected with the bus through the device for connecting or disconnecting the control circuit; the bus is electrically connected with a load through a device for controlling the circuit connection or disconnection; the small steam turbine drives the small generator to generate alternating current; the steam inlet regulating valve controls the steam inlet quantity of the small steam turbine; the main transformer is electrically connected with a power frequency power grid through a main switch; the electric energy conversion device is electrically connected with the bus through the small transformer and the device for controlling the circuit to be connected or disconnected in sequence; and an energy storage device is arranged on the bus.
Further, the frequency modulation comprises primary frequency modulation and automatic power generation control.
Further, the electric power conversion device controls the flow of electric power between the electric systems of different connection terminals.
Further, the electric energy conversion device may independently control the magnitude of the electric energy to be delivered and the flow direction of the electric energy to be delivered, respectively.
Further, the small generator is a synchronous generator or a non-synchronous generator.
Further, the asynchronous generator comprises an asynchronous generator or a synchronous generator operated in a variable frequency mode.
Further, the synchronous generator operated at variable frequency is driven by a steam turbine.
Further, the electric energy conversion device is composed of two electric energy conversion device sub-devices, wherein when one electric energy conversion device sub-device works in a rectification mode, the other electric energy conversion device sub-device works in an inversion mode.
Further, an energy storage device is configured between the two electric energy conversion device sub-devices, and the energy storage mode includes: chemical energy storage and electromagnetic energy storage.
Further, the chemical storage energy comprises: lead-acid batteries, redox flow batteries, sodium-sulfur batteries, lithium ion batteries; the electromagnetic energy storage includes: superconducting electromagnetic energy storage and super capacitor energy storage.
The technical effects are as follows:
1. the performance of primary frequency modulation, AGC adjusting depth or adjusting range and the like can be improved, the adjusting precision is high, namely the response dead zone or the adjusting dead zone is small, and sensitive response can be made to the received auxiliary frequency modulation instruction.
2. The throttling loss of the small steam turbine can be reduced, the thermal performance of the main steam turbine generator set is improved, and the energy-saving effect and the energy utilization efficiency are improved.
The conception, the specific structure and the technical effects of the present invention will be further described with reference to the accompanying drawings, so as to fully understand the objects, the features and the effects of the present invention.
Drawings
Fig. 1 is a schematic diagram of a preferred embodiment of the present invention.
Detailed Description
The technical contents of the preferred embodiments of the present invention will be more clearly understood and appreciated by referring to the drawings attached to the specification. The present invention may be embodied in many different forms of embodiments, and the scope of the invention is not limited to the embodiments described herein.
In the drawings, structurally identical elements are represented by like reference numerals, and structurally or functionally similar elements are represented by like reference numerals throughout the several views.
As shown in fig. 1, the auxiliary frequency modulation device for the thermal power plant based on the electric energy conversion device and the energy storage device comprises a small generator 1, wherein the small generator 1 is electrically connected with a bus B1 through a device 101 for controlling circuit connection or disconnection, the bus B1 is electrically connected with a load 9 through a device 901 for controlling circuit connection or disconnection, a bus B1 is electrically connected with an energy storage device SE1 through a device 102 for controlling circuit connection or disconnection, and a small turbine 2 for driving the small generator 1 to generate alternating current is used for controlling a steam inlet regulating valve 201 of the small turbine 2. The device further comprises a main steam turbine generator set 5 and a main transformer 6, wherein the main transformer 6 is electrically connected with the power frequency power grid 71 through a main switch 701. The device also comprises an electric energy conversion device 3 and an electric energy conversion device 8, wherein the electric energy conversion device 3 is composed of an electric energy conversion device sub-device 31 and an electric energy conversion device sub-device 32, an energy storage device SE2 is electrically connected between the electric energy conversion device sub-device 31 and the electric energy conversion device sub-device 32, the electric energy conversion device 3 is electrically connected with the bus B1 through a small transformer 41 and a device 301 for controlling circuit connection or disconnection, the electric energy conversion device 3 is electrically connected with the main steam turbine generator set 5 through a device 302 for controlling circuit connection or disconnection and a small transformer 42, the electric energy conversion device 8 is electrically connected with the bus B1 through a small transformer 43 and a device 801 for controlling circuit connection or disconnection, the electric energy conversion device 8 is electrically connected with the bus B2 through a small transformer 44 and a device 802 for controlling circuit connection or disconnection, the bus B2 is electrically connected to the power frequency grid 72 via the device 702 for controlling circuit connection or disconnection. The electric energy conversion device 3 and the electric energy conversion device 8 control electric energy to flow between electric systems of different connection ends.
The control method of the embodiment comprises the following steps:
in the first step, the opening degree of the steam inlet adjusting valve 201 is increased, and the transmission power of the electric energy conversion device 8 is adjusted, so that surplus electric energy generated by the small generator set 2 on the bus B1 due to the increase of the opening degree of the steam inlet adjusting valve 201 is supplied to the bus B2 through the electric energy conversion device 8.
And secondly, controlling the electric energy conversion device 3 to assist the main steam turbine generator set 5 to carry out frequency modulation.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation instruction sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy from the device 301 to the small transformer 42, and the electric energy conversion device 3 increases the power transmitted to the small transformer 42;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 increases the power transmitted to the small transformer 42;
when the electric energy conversion device 3 is operated in a state of transmitting electric energy from the small transformer 42 to the device 301 and receives an auxiliary frequency modulation command from the main steam turbine generator set 5 to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 reduces the power transmitted to the device 301, or controls the electric energy conversion device 3 to operate in a state of transmitting electric energy from the device 301 to the small transformer 42, and/or controls the electric energy conversion device 3 to increase the power transmitted to the small transformer 42.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy to the device 301 by the small transformer 42, and the electric energy conversion device 3 increases the power transmitted to the device 301;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42 and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42, or controls the electric energy conversion device 3 to work in a state that the small transformer 42 transmits electric energy to the device 301, and/or increases the power transmitted to the device 301 through the electric energy conversion device 3;
when the electric energy conversion device 3 is in a state of supplying electric energy from the small transformer 42 to the device 301 and receives an auxiliary frequency modulation command from the main turbine generator set 5 to reduce the output power of the main turbine generator set 5, the electric energy conversion device 3 increases the power supplied to the device 301.
Further, in the control method of the second step, the main turbine generator set 5 may be assisted to perform frequency modulation by simultaneously controlling the electric energy conversion device 8.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy from the device 301 to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the electric energy conversion device 8 decreases the power transmitted to the bus B2;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5 is received, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the electric energy conversion device 8 decreases the power transmitted to the bus B2;
when the electric energy conversion device 3 is in a state of transmitting electric energy from the small transformer 42 to the device 301 and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 requiring to increase the output power of the main steam turbine generator set 5 at this time, the electric energy conversion device 3 reduces the power transmitted to the device 301 and the electric energy conversion device 8 reduces the power transmitted to the bus B2, or controls the electric energy conversion device 3 to operate in a state of transmitting electric energy from the device 301 to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and the electric energy conversion device 8 reduces the power transmitted to the bus B2.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy to the device 301 by the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the device 301, and the electric energy conversion device 8 increases the power transmitted to the bus B2;
when the electric energy conversion device 3 is in a state of transmitting electric energy from the device 301 to the small transformer 42, and an auxiliary frequency modulation command is sent by the main turbine generator set 5 when the main turbine generator set 5 needs to reduce the output power of the main turbine generator set 5, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42, the electric energy conversion device 8 increases the power transmitted to the bus B2, or the electric energy conversion device 3 is controlled to operate in a state of transmitting electric energy from the small transformer 42 to the device 301, the electric energy conversion device 3 increases the power transmitted to the device 301, and the electric energy conversion device 8 increases the power transmitted to the bus B2;
when the electric energy conversion device 3 is in a state of supplying electric energy to the device 301 through the small transformer 42, and an auxiliary frequency modulation command is received from the main turbine generator set 5 when the main turbine generator set 5 needs to reduce the output power of the main turbine generator set 5, the electric energy conversion device 3 increases the power supplied to the device 301, and the electric energy conversion device 8 increases the power supplied to the bus B2.
Further, with respect to the control method of the second step, the main turbine-generator set 5 may be assisted to perform frequency modulation by simultaneously controlling the energy storage device SE1 to store or release the stored energy.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation instruction sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy from the device 301 to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the energy storage equipment SE1 releases energy;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5 is received, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the energy storage device SE1 releases energy;
when the electric energy conversion device 3 is in a state of transmitting electric energy to the device 301 by the small transformer 42, and an auxiliary frequency modulation command is sent by the main turbine generator set 5 when the output power of the main turbine generator set 5 needs to be increased, the electric energy conversion device 3 reduces the power transmitted to the device 301 and releases energy from the energy storage device SE1, or controls the electric energy conversion device 3 to be in a state of transmitting electric energy to the small transformer 42 by the device 301, and the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and releases energy from the energy storage device SE 1.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy to the device 301 by the small transformer 42, the power transmitted to the device 301 is increased by the electric energy conversion device 3, and the energy is absorbed by the energy storage equipment SE 1;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and at the moment, when an auxiliary frequency modulation command sent by the main steam turbine generator set 5 needing to reduce the output power of the main steam turbine generator set 5 is received, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42 and the energy storage device SE1 absorbs energy, or controls the electric energy conversion device 3 to work in a state that the small transformer 42 transmits electric energy to the device 301, and the electric energy conversion device 3 increases the power transmitted to the device 301 and the energy storage device SE1 absorbs energy;
the electric energy conversion device 3 works in a state that the small transformer 42 transmits electric energy to the device 301, and when an auxiliary frequency modulation command which is sent by the main steam turbine generator set 5 and needs to reduce the output power of the main steam turbine generator set 5 is received, the electric energy conversion device 3 increases the power transmitted to the device 301, and the energy storage device SE1 absorbs energy.
Further, with respect to the control method of the second step, the main turbine-generator set 5 may be assisted to perform frequency modulation by simultaneously controlling the energy storage device SE2 to store or release the stored energy.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation instruction sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy from the device 301 to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the energy storage equipment SE2 releases energy;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5 is received, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, and the energy storage device SE2 releases energy;
when the electric energy conversion device 3 is in a state of transmitting electric energy to the device 301 by the small transformer 42, and an auxiliary frequency modulation command is sent by the main turbine generator set 5 when the output power of the main turbine generator set 5 needs to be increased, the electric energy conversion device 3 reduces the power transmitted to the device 301 and releases energy from the energy storage device SE2, or controls the electric energy conversion device 3 to be in a state of transmitting electric energy to the small transformer 42 by the device 301, and the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and releases energy from the energy storage device SE 2.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy to the device 301 by the small transformer 42, the power transmitted to the device 301 is increased by the electric energy conversion device 3, and the energy is absorbed by the energy storage equipment SE 2;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42 and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42 and the energy storage device SE2 absorbs energy, or controls the electric energy conversion device 3 to work in a state that the small transformer 42 transmits electric energy to the device 301, and the electric energy conversion device 3 increases the power transmitted to the device 301 and the energy storage device SE2 absorbs energy;
when the electric energy conversion device 3 is in a state of transmitting electric energy to the device 301 through the small transformer 42, and an auxiliary frequency modulation command is sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 increases the power transmitted to the device 301, and the energy storage device SE2 absorbs energy.
Further, in the control method of the second step, the opening degree of the steam inlet adjusting valve 201 may be controlled simultaneously to assist the main steam turbine generator set 5 in performing frequency modulation.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation instruction sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 works in a state of transmitting electric energy from the device 301 to the small transformer 42, and the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and increases the opening degree of the steam inlet adjusting valve 201;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the output power of the main steam turbine generator set 5 needs to be increased, the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and increases the opening degree of the steam inlet adjusting valve 201;
when the electric energy conversion device 3 is in a state of transmitting electric energy from the small transformer 42 to the device 301 and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 requiring to increase the output power of the main steam turbine generator set 5 at this time, the electric energy conversion device 3 reduces the power transmitted to the device 301 and increases the opening degree of the steam inlet adjusting valve 201, or controls the electric energy conversion device 3 to be in a state of transmitting electric energy from the device 301 to the small transformer 42, and the electric energy conversion device 3 increases the power transmitted to the small transformer 42 and increases the opening degree of the steam inlet adjusting valve 201.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation instruction sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 works in a state of transmitting electric energy to the device 301 through the small transformer 42, and the electric energy conversion device 3 increases the power transmitted to the device 301 and reduces the opening degree of the steam inlet adjusting valve 201;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the output power of the main steam turbine generator set 5 needs to be reduced is received, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42 and reduces the opening degree of the steam inlet regulating valve 201, or controls the electric energy conversion device 3 to work in a state that the small transformer 42 transmits electric energy to the device 301, and the electric energy conversion device 3 increases the power transmitted to the device 301 and reduces the opening degree of the steam inlet regulating valve 201;
when the electric energy conversion device 3 is in a state of transmitting electric energy from the small transformer 42 to the device 301 and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to reduce the output power of the main steam turbine generator set 5, the electric energy conversion device 3 increases the power transmitted to the device 301 and reduces the opening degree of the steam inlet regulating valve 201.
Further, according to the control method of the second step, the main turbine generator set 5 can be assisted to perform frequency modulation by simultaneously controlling the electric energy conversion device 8, the energy storage device SE1 and the energy storage device SE 2.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the main steam turbine generator set 5 needs to increase the output power of the main steam turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy from the device 301 to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, the electric energy conversion device 8 reduces the power transmitted to the bus B2, the energy storage equipment SE1 releases energy, and the energy storage equipment SE2 releases energy;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam turbine generator set 5 when the output power of the main steam turbine generator set 5 needs to be increased is received, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, the electric energy conversion device 8 reduces the power transmitted to the bus B2, the energy storage equipment SE1 releases energy, and the energy storage equipment SE2 releases energy;
when the electric energy conversion device 3 works in a state that the small transformer 42 transmits electric energy to the device 301, and at the moment, an auxiliary frequency modulation command is sent by the main steam-turbine generator set 5 when the output power of the main steam-turbine generator set 5 needs to be increased, the electric energy conversion device 3 reduces the power transmitted to the device 301, the electric energy conversion device 8 reduces the power transmitted to the bus B2, the energy storage device SE1 releases energy, and the energy storage device SE2 releases energy, or the electric energy conversion device 3 is controlled to work in a state that the device 301 transmits electric energy to the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the small transformer 42, the electric energy conversion device 8 reduces the power transmitted to the bus B2, the energy storage device SE1 releases energy, and the energy storage device SE2 releases energy.
When the electric energy conversion device 3 works in a standby state and receives an auxiliary frequency modulation command sent by the main steam-turbine generator set 5 when the main steam-turbine generator set 5 needs to reduce the output power of the main steam-turbine generator set 5, the electric energy conversion device 3 is switched to work in a state of transmitting electric energy to the device 301 by the small transformer 42, the electric energy conversion device 3 increases the power transmitted to the device 301, the electric energy conversion device 8 increases the power transmitted to the bus B2, the energy storage equipment SE1 absorbs energy, and the energy storage equipment SE2 absorbs energy;
when the electric energy conversion device 3 works in a state that the device 301 transmits electric energy to the small transformer 42, and an auxiliary frequency modulation command sent by the main steam-turbine generator set 5 when the main steam-turbine generator set 5 needs to reduce the output power of the main steam-turbine generator set 5 is received, the electric energy conversion device 3 reduces the power transmitted to the small transformer 42, the electric energy conversion device 8 increases the power transmitted to the bus B2, the energy storage device SE1 absorbs energy, and the energy storage device SE2 absorbs energy, or the electric energy conversion device 3 is controlled to work in a state that the small transformer 42 transmits electric energy to the device 301, the electric energy conversion device 3 increases the power transmitted to the device 301, the electric energy conversion device 8 increases the power transmitted to the bus B2, the energy storage device SE1 absorbs energy, and the energy storage device SE2 absorbs;
when the electric energy conversion device 3 is in a state that the small transformer 42 supplies electric energy to the device 301, and an auxiliary frequency modulation command is sent by the main turbine generator set 5 when the main turbine generator set 5 needs to reduce the output power of the main turbine generator set 5, the electric energy conversion device 3 increases the power supplied to the device 301, the electric energy conversion device 8 increases the power supplied to the bus B2, the energy storage device SE1 absorbs energy, and the energy storage device SE2 absorbs energy.
In another embodiment, the power conversion device 8 may be configured as the power conversion device 3, and divided into two power conversion device sub-devices, and an energy storage device is configured between the two power conversion device sub-devices to increase the range and sensitivity of the auxiliary frequency modulation.
The foregoing has described in detail preferred embodiments of the present invention. It should be understood that numerous modifications and variations could be devised by those skilled in the art in light of the teachings of this invention without undue experimentation. Therefore, the technical solutions that can be obtained by a person skilled in the art through logic analysis, reasoning or limited experiments based on the prior art according to the concepts of the present invention should be within the scope of protection defined by the claims.

Claims (9)

1. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device is characterized by comprising a small generator, a small steam turbine, a main steam turbine generator set, a main transformer, a small transformer, an electric energy conversion device, a steam inlet regulating valve, the energy storage device, a bus, a main switch and a device for controlling circuit connection or disconnection, wherein the small generator is electrically connected with the bus through the device for controlling circuit connection or disconnection; the bus is electrically connected with a load through a device for controlling the circuit connection or disconnection; the small steam turbine drives the small generator to generate alternating current; the steam inlet regulating valve controls the steam inlet quantity of the small steam turbine; the main transformer is electrically connected with a power frequency power grid through a main switch; the electric energy conversion device is electrically connected with the bus through the small transformer and the device for controlling the circuit to be connected or disconnected in sequence; the energy storage device comprises an energy storage device SE1 and an energy storage device SE2, the bus is provided with the energy storage device SE1,
the electric energy conversion device is composed of two electric energy conversion device sub-devices, wherein when one electric energy conversion device sub-device works in a rectification mode, the other electric energy conversion device sub-device works in an inversion mode;
the energy storage device SE2 is arranged between the two electric energy conversion device sub-devices.
2. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device as claimed in claim 1, wherein the frequency modulation comprises primary frequency modulation and automatic power generation control.
3. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device as claimed in claim 1, wherein the electric energy conversion device controls the flow of electric energy between the electric systems of different connection terminals.
4. A thermal power plant auxiliary frequency modulation device based on an electric energy conversion device and an energy storage device according to claim 3, wherein the electric energy conversion device can independently control the magnitude of the electric energy delivered and the flow direction of the electric energy delivered, respectively.
5. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device as claimed in claim 1, wherein the small generator is a synchronous generator or a non-synchronous generator.
6. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device according to claim 5, wherein the asynchronous generator comprises an asynchronous generator or a synchronous generator operated by frequency conversion.
7. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device according to claim 6, characterized in that the synchronous generator operated with variable frequency is driven by a steam turbine.
8. The auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device according to claim 1, wherein the energy storage mode of the energy storage device comprises: chemical energy storage and electromagnetic energy storage.
9. An auxiliary frequency modulation device of a thermal power plant based on an electric energy conversion device and an energy storage device according to claim 8, wherein the chemical energy storage comprises: lead-acid batteries, redox flow batteries, sodium-sulfur batteries, lithium ion batteries; the electromagnetic energy storage includes: superconducting electromagnetic energy storage and super capacitor energy storage.
CN201922233638.0U 2019-12-12 2019-12-12 Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device Active CN211266491U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201922233638.0U CN211266491U (en) 2019-12-12 2019-12-12 Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201922233638.0U CN211266491U (en) 2019-12-12 2019-12-12 Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device

Publications (1)

Publication Number Publication Date
CN211266491U true CN211266491U (en) 2020-08-14

Family

ID=71958542

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201922233638.0U Active CN211266491U (en) 2019-12-12 2019-12-12 Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device

Country Status (1)

Country Link
CN (1) CN211266491U (en)

Similar Documents

Publication Publication Date Title
CN110932293B (en) Auxiliary frequency modulation device of thermal power plant based on energy storage device and control method
US6494042B2 (en) Method of and apparatus for producing uninterruptible power
US5929538A (en) Multimode power processor
CN107516905B (en) Multi-element coupling energy storage system
CN107769258B (en) Power supply system of independent micro-grid and control method thereof
CN103001247A (en) Off-network-type microgrid black-start method
CN101902146A (en) Current type control method of three-phase inverter in distributed generation system
CN103595096A (en) DC/DC conversion and control system used for standby power system of proton exchange membrane fuel cell
CN218415828U (en) Black start system of wind-solar-fire storage combined operation system
CN211266492U (en) Auxiliary frequency modulation device of thermal power plant based on energy storage device
Korada et al. Dynamic energy management in DC microgrid using composite energy storage system
Rezkallah et al. Coordinated control strategy for hybrid off-grid system based on variable speed diesel generator
CN211296204U (en) Thermal power plant frequency modulation auxiliary device based on double electric energy converters
CN110932292A (en) Thermal power plant auxiliary frequency modulation device based on electric energy conversion device and energy storage device and control method
CN110970926A (en) Auxiliary frequency modulation device based on energy-saving technology for thermal power plant and control method thereof
CN211266491U (en) Auxiliary frequency modulation device of thermal power plant based on electric energy conversion device and energy storage device
CN112448470A (en) Quick response power plant security system integrating comprehensive energy utilization
CN211266494U (en) Auxiliary frequency modulation device based on energy-saving technology of thermal power plant
Xu et al. Energy management and control strategy for DC micro-grid in data center
CN108825369B (en) Distributed energy supply equipment and cold-heat-electricity decoupling method and device
CN214798886U (en) System for supplementary frequency modulation of thermal power plant
CN113852318B (en) New energy power generation direct-drive system
CN203813454U (en) DC/DC conversion and control system for standby power system of proton exchange membrane fuel cell
CN211018290U (en) Coupling energy supply system for gas triple supply and wind-solar storage complementary power generation
CN110943482A (en) Thermal power plant frequency modulation auxiliary device based on double electric energy converters and control method

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant