The invention relates to an emergency control method and system based on source-load-storage regulation and cutback, and belongs to the technical field of emergency frequency regulation of power distribution networks.
The frequency characteristics of the power system play an important role in safe and steady operation of the power distribution network. Power generation devices and electrical devices in the power system are designed and manufactured according to rated frequency, and will exhibit their best performance only when operating in the vicinity of the rated frequency. Large fluctuations of the system frequency will compromise the power quality, thus affecting the production process of different departments. When the output of power generators declines due to a drastic decrease of the system frequency, a frequency collapse will be caused. For a long time, generator tripping or load cutback is used to maintain the frequency of the power distribution network within a rated range during actual operation of the power grid. However, pure generator tripping or load cutback is effective in case of small disturbance and will not work anymore in case of long-term load disturbance. So, a novel emergency frequency regulation method is urgently needed.
The objective of the invention is to overcome the defects of the prior art by providing an emergency control method based on source-load-storage regulation and cutback, which can reasonably regulate the output power compensation of a source-load-storage power distribution network, maintain a balance between power supply and demand in cooperation with generator tripping and load cutback, and keep the output power compensation and output frequency of each power generating source within a permissible range. To fulfill the above objective, the invention is implemented through the following technical solution.
In a first aspect, the invention provides an emergency control method based on source-load-storage regulation and cutback, comprising:
In conjunction with the first aspect, further, the power generating sources in the power distribution network comprise micro-grids, photovoltaic power stations and wind power stations, and the power distribution network further comprises energy-storage power stations.
In conjunction with the first aspect, further, response modes of the method comprise active response and passive response, the active response means that the power distribution network actively responds to a frequency fall under large disturbance in an island mode or a weakly-connected mode, and the passive response means that the power distribution network passively responds to an emergency control instruction issued by a major network in a grid-connected mode.
In conjunction with the first aspect, further, in the active response mode of a source-grid-load-storage networked cloud decision control system, an actively calculated power gap required for stable operation of the system under an island condition is used as the power regulating quantity ΔPregulating quantity; and in the passive response mode of the source-grid-load-storage networked cloud decision control system, a power gap required for stable operation of the major network and issued by the major network is used as the power regulating quantity ΔPregulating quantity.
In conjunction with the first aspect, further, the power gap required for stable operation of the system under the island condition is actively calculated according to the following formula:
ΔPactively calculated power difference=Σa=1xΔPmicro-grid a+Σj=1yΔPphotovoltaic power station j+Σj=1zΔPwind power station i+Σb=1mΔPenergy-storage power station b (1).
In formula (1), Σa=1xΔPmicro-grid a is an output power compensation of the micro-grids, and is expressed by the following formula:
In formula (2), Σa=1xΔf is a difference between output frequency of the micro-grids and rated grid frequency, and kmicro-grid a is a frequency regulation coefficient of the micro grids.
In formula (1), Σj=1y ΔPphotovoltaic power station j is an output power compensation of the photovoltaic power stations, and is expressed by the following formula.
In formula (3), Σa=1xΔf is the difference between the output frequency of the micro-grids and the rated grid frequency, and kphotovoltaic power station j is a frequency regulation coefficient of the photovoltaic power stations.
In formula (1), Σj=1zPwind power station i is an output power compensation of the wind power stations, and is expressed by the following formula.
In formula (4), Σa=1xΔf is the difference between the output frequency of the micro grids and the rated grid frequency, and kwind power station i is a frequency regulation coefficient of the wind power stations.
In formula (1), Σb=1m ΔPenergy-storage power station b an output power compensation of the energy-storage power stations, and is expressed by the following formula:
In formula (5), Σa=1xΔf the difference between the output frequency of the micro-grids and the rated grid frequency, and kenergy-storage power station b is a frequency regulation coefficient of the energy-storage power stations.
In a second aspect, the invention provides a source-grid-load-storage networked cloud decision control system, comprising a cloud intelligent analysis and decision platform, a source-grid-load-storage networked cooperative control system, and a source-grid-load-storage cooperative control intelligent terminal.
The cloud intelligent analysis and decision platform has a terminal connected to a power grid dispatching system and a terminal connected to the source-grid-load-storage networked cooperative control system, and the source-grid-load-storage networked cooperative control system is connected to the source-grid-load-storage cooperative control intelligent terminal.
The cloud intelligent analysis and decision platform is able to directly respond to grid frequency/voltage disturbance and fault information to make an analysis and decision, the source-grid-load-storage networked cooperative control system sends the decision to the source-grid-load-storage cooperative control intelligent terminal; the cloud intelligent analysis and decision platform is also able to respond to a management and regulation instruction issued by the power grid dispatching system to make an analysis and decision, and the source-grid-load-storage networked cooperative control system sends the decision to the source-grid-load-storage cooperative control intelligent terminal.
The source-grid-load-storage cooperative control intelligent terminal is connected to a distributed power unit, a distributed micro-grid unit, a distributed energy-storage device unit and a distributed load aggregation unit for executing a decision issued by the source-grid-load-storage cooperative control intelligent terminal.
In conjunction with the second aspect, in an active response mode, the system actively responds to the grid frequency/voltage disturbance and fault information to provide analysis and decision support by means of the cloud intelligent analysis and decision platform, and the source-grid-load-storage networked cooperative control system sends a decision command to the distributed units to be executed.
In conjunction with the second aspect, further, in a passive response mode, the system provide analysis and decision support by means of the cloud intelligent analysis and decision platform according to a management and regulation strategy issued by the power grid dispatching system, and the source-grid-load-storage networked cooperative control system sends a decision command to the distributed units to be executed.
In conjunction with the second aspect, further, the source-grid-load-storage networked cooperative control system comprises an emergency regulation and cutback module, and the emergency regulation and cutback module is used to perform the steps of the method in the first aspect.
Compared with the prior art, the emergency control method based on source-load-storage regulation and cutback has the following beneficial effects:
According to the invention, the output power of the power generating sources is regulated according to the power regulating quantity and the frequency regulation requirement, and the output power compensation and output frequency of each power generating source are maintained within permissible ranges, so that a balance between power supply and demand of the power distribution network is maintained.
According to the invention, standby energy-storage power stations can be used to make up a power gap, and an external power supply system can be used to assist in making up a power deficiency, so that the method can adapt to large load disturbance to make up the power gap.
According to the invention, by using standby energy-storage power stations, cutting back power generating sources with power being greater than the rated value of a power source, cutting back removable loads, and using an external power supply system to assist in making up a power deficiency, a power gap caused by long-term load disturbance can be made up, long-term load disturbance can be handled, and the output power compensation and output frequency of each power generating source can be maintained within permissible ranges.
The invention will be further described below in conjunction with the accompanying drawings. The following embodiments are merely used to explain the technical solutions of the invention more clearly, and should not be construed as limiting the protection scope of the invention.
As shown in
Step 1: a power regulating quantity ΔPregulating quantity is obtained.
Power regulating quantity ΔPregulating quantity: in an active response mode of a source-grid-load-storage networked cloud decision control system, an actively calculated power gap required for stable operation of the system under an island condition is used as the power regulating quantity ΔPregulating quantity; and in the passive response mode of the source-grid-load-storage networked cloud decision control system, a power gap required for stable operation of the major network and issued by the major network is used as the power regulating quantity ΔPregulating quantity.
Specifically, in the active response mode of the source-grid-load-storage networked cloud decision control system, the power gap required for stable operation of the system under the island condition and used as the Power regulating quantity ΔPregulating quantity is actively calculated according to the following formula:
ΔPactively calculated power gap=Σa=1xΔPmicro-grid a+Σj=1yΔPphotovoltaic power station j+Ej=1zΔPwind power station i+Σb=1mΔPenergy-storage power station b (1).
In formula (1), Σa=1x ΔPmicro-grid a is an output power compensation of the micro-grids, x is the number of the micro grids, and Σa=1xΔPmicro-grid a is expressed by the following formula:
In formula (2), Σa=1xΔf is a difference between output frequency of the micro-grids and rated grid frequency, and kmicro-grid a is a frequency regulation coefficient of the micro-grids.
In formula (1), Σj=1yΔPphotovoltaic power station j is an output power compensation of the photovoltaic power stations, y is the number of the photovoltaic power stations, and Σj=1yΔPphotovoltaic power station j is expressed by the following formula:
In formula (3), Σa=1x Δf is the difference between the output frequency of the micro grids and the rated grid frequency, and kphotovoltaic power station j is a frequency regulation coefficient of the photovoltaic power stations.
In formula (1), Σj=1zΔPwind power station i is an output power compensation of the wind power stations, z is the number of the wind power stations, and Σj=1zΔPwind power station i is expressed by the following formula:
In formula (4), Σa=1xΔf is the difference between the output frequency of the micro-grids and the rated grid frequency, and kwind power station i is a frequency regulation coefficient of the wind power stations.
In formula (1), Σb=1mΔPenergy-storage power station b is an output power compensation of the energy-storage power stations, m is the number of the energy-storage power stations, and Σb=1mΔPenergy-storage power station b is expressed by the following formula:
In formula (5), Σa=1xΔf is the difference between the output frequency of the micro-grids and the rated grid frequency, and kenergy-storage power station b is a frequency regulation coefficient of the energy-storage power stations.
In formula (6), ΔPwind i.max is a maximum value of the output power compensation of an ith wind power station under the constraint of a rated power value, ΔPphotovolatic j.max is a maximum value of the output power compensation of a jth photovoltaic power station under the constraint of the rated power value, Pmicro-grid a.max is a maximum value of the output power compensation of an ath micro-grid under the constraint of the rated power value, and ΔPenergy-storage b.max is a maximum value of the output power compensation of a bth energy-storage power station under the constraint of the rated power value.
Interfaces of the power stations meet Δf=kΔP, in which Δf is a difference between the grid frequency and, rated frequency, so
Kwind power station 1ΔPwind power station 1= . . . =Kwind power station zΔPwind power station z=Kphotovoltaic power station 1ΔPphotovoltaic station 1= . . . =Kphotovoltaic power station yΔPphotovoltaic power station y=Kmicro-grid 1ΔPmicro-grid 1= . . . =Kmicro-grid xΔPmicro-grid x=Kenergy-storage power station 1ΔPenergy-storage power station 1= . . . =Kenergy-storage power station mΔPenergy-storage power station m (7).
In formula (7), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively, Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively, and Kenergy-storage power station b and ΔPenergy-storage power station b are the frequency regulation coefficient and output power compensation of the bth energy-storage power station respectively.
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
Σi=1xΔPwind i+Σj=1yΔPphotovoltaic j+Σa=1zΔPmicro-grid a+Σb=1mΔPenergy-storage b=ΔPregulating quantity (8)
In formula (8), ΔPwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid, and ΔPenergy-storage b is the output power compensation of the bth energy-storage power station.
A total output power compensation of the power generating sources participating in output power compensation is made to meet ΔP=ΔPregulating quantity according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (9), ΔPr is the output power compensation of an rth power generating source, Ks is the frequency regulation coefficient of an sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (6) and formula (8), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, and m is the number of the energy-storage power stations, and x, y, z and m meet:
u=x+y+z+m (10)
In formula (10), u is the total number of the power generating sources participating in output power compensation.
For example, if the first wind power station is out of limit, that is, the output power of the first wind power station is greater than the rated value of the power source, the interfaces of the power stations meet Δf=kΔP, in which Δf is the difference between the grid frequency and the rated frequency, so:
Kwind power station 1ΔPwind power station 1-out-of-limit= . . . =Kwind power station zΔPwind power station z=Kphotovoltaic power station 1ΔPphotovoltaic power station 1= . . . =Kphotovoltaic power station yΔPphotovoltaic power station y=Kmicro-grid 1ΔPmicro-grid 1= . . . =Kmicro-grid xΔPmicro-grid x=Kenergy-storage power station 1ΔPenergy-storage power station 1= . . . =Kenergy-storage power station mΔPenergy-storage power station m=Kstandby energy-storage power station 1ΔPstandby energy-storage power station 1= . . . =Kstandby energy-storage power station nΔPstandby energy-storage power station n (11).
In formula (11), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, ΔPwind power station 1-out-of-limit is a maximum value of the output power compensation of the out-of-limit wind power station under the constraint of the rated power value, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively, Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively, and Kenergy-storage power station b and ΔPenergy-storage power station b are the frequency regulation coefficient and output power compensation of the bth energy-storage power station respectively.
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
Σi=1xΔPwind i+Σj=1yΔPphotovoltaic j+Σa=1zΔPmicro-grid a+Σb=1mΔPenergy-storage b+Σc=1nΔPstandby energy-storage c=ΔPregulating quantity (12).
In formula (12), ΔPwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid, ΔPenergy-storage b is the output power compensation of the bth energy-storage power station, and ΔPstandby energy-storage c is the output power compensation of the cth standby energy-storage power station.
A total output power compensation of the power generating sources participating in power output, excluding the power generating sources with output power being greater than the rated value of the power source, is made to meet ΔP=ΔPregulating quantity−ΔPwind power station 1 out-of-limit according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (13), ΔPr is the output power compensation of the rth power generating source, Ks is the frequency regulation coefficient of the sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (12), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, and m is the number of the energy-storage power stations, and x, y, z and m meet:
u=x+y+z+m+n−1 (14).
In formula (14), u is the total number of the power generating sources participating in output power compensation.
In formula (15), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively,
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
Σi=1xΔPwind i+Σj=1yΔPphotovoltaic j+Σa=1zΔPmicro-grid a+Σb=1mΔPenergy-storage b+Σc=1nΔPstandby energy-storage c=ΔPregulating quantity (16).
In formula (16), Pwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid. ΔPenergy-storage b is the output power compensation of the bth energy-storage power station, and ΔPstandby energy-storage c is the output power compensation of the cth standby energy-storage power station.
A total output power compensation of the power generating sources participating, in power output and the standby energy-storage power stations is made to meet ΔP=ΔPregulating quantity according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (17), ΔPr is the output power compensation of the rth power generating source, Ks is the frequency regulation coefficient of the sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (16), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, m is the number of the energy-storage power stations, n is the number of the energy-storage power stations, and x, y, z, m and n meet:
u=x+y+z+m+n (18).
In formula (18), u is the total number of the power generating sources participating in power output.
In formula (19), aloadf is a load to be cut back, and Ploudd is power distributed to a dth load by the power distribution network.
A total output power compensation of the power generating sources and the standby energy-storage power stations after load cutback is made to meet ΔP=ΔPregulating quantity−ΔPremovable load f according to the balance between supply and demand, and Step 3 is performed.
This cycle is repeated h times, and the interfaces of the power stations meet Δf=kΔP, in which Δf is a difference between the grid frequency and the rated frequency, so:
Kwind power station 1ΔPwind power station 1= . . . =Kwind power station zΔPwind power station z=Kphotovoltaic power station 1ΔPphotovoltaic power station 1= . . . =Kphotovoltaic power station yΔPphotovoltaic power station y=Kmicro-grid 1ΔPmicro-grid 1= . . . =Kmicro-grid xΔPmicro-grid x=Kenergy-storage power station 1ΔPenergy-storage power station 1= . . . =Kenergy-storage power station mΔPenergy-storage power station m=Kstandby energy-storage power station 1ΔPstandby energy-storage power station 1= . . . =Kstandby energy-storage power station nΔPstandby energy-storage power station n (20).
In formula (20), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively, Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively,
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
In formula (21), Pwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid, ΔPenergy-storage b is the output power compensation of the bth energy-storage power station, ΔPstandby energy-storage c is the output power compensation of the cth standby energy-storage power station, and ΔPremovable load f is the output power compensation of the jth removable load.
A total output power compensation of the power generating sources participating in power output and the standby energy-storage power stations is made to meet ΔP=ΔPregulating quantity−Σf=1h ΔPremovable load f according to the balance between supply and demand, and the output power of each power generating source is calculated according to the following formula:
In formula (22), ΔPr is the output power compensation of the rth power generating, source, Ks is the frequency regulation coefficient of the sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (21), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, m is the number of the energy-storage power stations, n is the number of the energy-storage power stations, and x, y, z, m and n meet:
u=x+y+z+m+n (23)
In formula (23), u is the total number of the power generating sources participating in power output.
In formula (24), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively, Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively,
Kenergy-storage power station b and ΔPenergy-storage power station b are the frequency regulation coefficient and output power compensation of the bth standby energy-storage power station respectively, Kstandby energy-storage power station c and ΔPstandby energy-storage power station c are the frequency regulation coefficient and output power compensation of the cth standby energy-storage power station respectively, and Kexternal power supply and ΔPexternal power supply are the frequency regulation coefficient and output power compensation of the external power supply system respectively.
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
ΔPwind+ΔPphotovoltaic+Pcontrollable sourceΣi=1xΔPwind i+Σj=1yΔPphotovoltaic j+Σa=1zΔPmicro-grid a+Σb=1mΔPenergy-storage b+Σc=1nΔPstandby energy-storage c+ΔPexternal power supply=ΔPregulating quantity−Σd=1lΔPremovable load d (25)
In formula (25), Pwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid, ΔPenergy-storage b is the output power compensation of the bth energy-storage power station, ΔPstandby energy-storage c is the output power compensation of the cth standby energy-storage power station, ΔPexternal power supply is the output power compensation of the external power supply system, and ΔPremovable load f is the output power compensation of the fth removable load.
A total output power compensation of the power generating sources participating, in power output, the standby energy-storage power stations and the external power supply system after load cutback is made to meet ΔP=ΔPregulating quantity−Σd=1lΔPremovable load d according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (26), ΔPr is the output power compensation of the rth power generating source, Ks is the frequency regulation coefficient of the sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (25), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, m is the number of the energy-storage power stations, n is the number of the energy-storage power stations, and x, y z, m and n meet:
u=x+y+z+m+n+1 (27)
In formula (27), u is the total number of the power generating sources participating in power output.
In formula (28), ΔPwind i.max is a maximum value of the output power compensation of the ith wind power station under the constraint of a rated power value, ΔPphotovoltaic j.max is a maximum value of the output power compensation of the jth photovoltaic power station under the constraint of the rated power value, Pmicro-grid a.max is a maximum value of the output power compensation of the ath micro-grid under the constraint of the rated power value, and ΔPenergy-storage b.max is a maximum value of the output power compensation of the bth energy-storage power station under the constraint of the rated power value.
Interfaces of the power stations meet Δf=kΔP, in which Δf is a difference between the grid frequency and rated frequency, so:
Kwind power station 1ΔPwind power station 1= . . . =Kwind power station zΔPwind power station z=Kphotovoltaic power station 1ΔPphotovoltaic power station 1= . . . =Kphotovoltaic power station yΔPphotovoltaic power station y=Kmicro-grid 1ΔPmicro-grid 1= . . . =Kmicro-grid xΔPmicro-grid x=Kenergy-storage power station 1ΔPenergy-storage power station 1= . . . =Kenergy-storage power station mΔPenergy-storage power station m (29).
In formula (29), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively, Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively, and Kenergy-storage power station b and ΔPenergy-storage power station b are the frequency regulation coefficient and output power compensation of the bth energy-storage power station respectively.
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
Σi=1xΔPwind i+Σj=1yΔPphotovoltaic j+Σa=1zΔPmicro-grid a+Σb=1mΔenergy-storage b=ΔPregulating quantity (30)
In formula (30), ΔPwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the a ath micro-grid, and ΔPenergy-storage b is the output power compensation of the bth energy-storage power station.
A total output power compensation of the power generating sources is made to meet ΔP=ΔPregulating quantity according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (31), ΔPr is the output power compensation of the rth power generating source, Ks is the frequency regulation coefficient of the sth power generating source, and u is the total number of the power generating sources participating in power generation.
In formula (28) and formula (30), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, and m is the number of the energy-storage power stations, and x, y, z and m meet:
u=x+y+z+m (32)
In formula (32), u is the total number of the power generating sources participating in output power compensation.
In formula (33), Kwind power station i and ΔPwind power station i are the frequency regulation coefficient and output power compensation of the ith wind power station respectively, Kphotovoltaic power station j and ΔPphotovoltaic power station j are the frequency regulation coefficient and output power compensation of the jth photovoltaic power station respectively. Kmicro-grid a and ΔPmicro-grid a are the frequency regulation coefficient and output power compensation of the ath micro-grid respectively, and Kenergy-storage power station b and ΔPenergy-storage power station b are the frequency regulation coefficient and output power compensation of the bth energy-storage power station respectively.
Wherein, the power regulating quantity ΔPregulating quantity is expressed by the following formula:
Σi=2xΔPwind i+Σj=1yΔPphotovoltaic jΣa=1zΔPmicro-grid a+Σb=1mΔPenergy-storage b=ΔPregulating quantity−ΔPwind 1-out-of-limit (34)
In formula (34), ΔPwind i is the output power compensation of the ith wind power station, ΔPphotovoltaic j is the output power compensation of the jth photovoltaic power station, ΔPmicro-grid a is the output power compensation of the ath micro-grid, and ΔPenergy-storage b is the output power compensation of the bth energy-storage power station.
A total output power compensation of the power generating sources participating in power output is made to meet ΔP=ΔPregulating quantity−ΔPout-of-limit according to the balance between supply and demand, and the output power compensation of each power generating source is calculated according to the following formula:
In formula (35), ΔPr is the output power compensation of the rth power generating source, Ks is the frequency regulation coefficient of the sth power generating source, and u is, the total number of the power generating sources participating in power generation.
In formula (34), x is the number of the micro-grids, y is the number of the photovoltaic power stations, z is the number of wind power stations, m is the number of the energy-storage power stations, n is the number of the energy-storage power stations, and x, y, z, m and n meet:
u=x+y+z+m+n−1 (36).
In formula (36), u is the total number of the power generating sources participating in power output.
As shown in
The cloud intelligent analysis and decision platform has a terminal connected to a power grid dispatching system and a terminal connected to the source-grid-load-storage networked cooperative control system, and the source-grid-load-storage networked cooperative control system is connected to the source-grid-load-storage cooperative control intelligent terminal.
The cloud intelligent analysis and decision platform is able to directly respond to grid frequency/voltage disturbance and fault information to make an analysis and decision, the source-grid-load-storage networked cooperative control system sends the decision to the source-grid-load-storage cooperative control intelligent terminal; the cloud intelligent analysis and decision platform is also able to respond to a management and regulation instruction issued by the power grid dispatching system to make an analysis and decision, and the source-grid-load-storage networked cooperative control system sends the decision to the source-grid-load-storage cooperative control intelligent terminal.
The source-grid-load-storage cooperative control intelligent terminal is connected to a distributed power unit, a distributed micro-grid unit a distributed energy-storage device unit and a distributed load aggregation unit for executing a decision issued by the source-grid-load-storage cooperative control intelligent terminal.
In the active response mode, the source-grid-load-storage networked cloud decision control system actively responds to the grid frequency/voltage disturbance and fault information to provide analysis and decision support by means of the cloud intelligent analysis and decision platform, and the source-grid-load-storage networked cooperative control system sends a decision command to the distributed units to be executed. As shown in
In a passive response mode, the source-grid-load-storage networked cloud decision control system provide analysis and decision support by means of the cloud intelligent analysis and decision platform according to a management and regulation strategy issued by the power grid dispatching system, and the source-grid-load-storage networked cooperative control system sends a decision command to the distributed units to be executed. As shown in
The source-grid-load-storage, networked cooperative control system comprises an emergency regulation and cutback module, and the emergency regulation and cutback module is used to perform the steps of the method in Embodiment 1.
The above embodiments are merely preferred ones of the invention. It should be noted that various improvements and transformations may be made by those ordinarily skilled in the art without departing from the technical principle of the invention, and all these improvements and transformations should fall within the protection scope of the invention.
Number | Date | Country | Kind |
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202110454856.6 | Apr 2021 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/109630 | 7/30/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2022/227319 | 11/3/2022 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20020103745 | Lof | Aug 2002 | A1 |
20100229544 | Bollinger | Sep 2010 | A1 |
20120080420 | Hui | Apr 2012 | A1 |
20140025217 | Jin | Jan 2014 | A1 |
20190004585 | Halverson | Jan 2019 | A1 |
Number | Date | Country |
---|---|---|
109510247 | Mar 2019 | CN |
Entry |
---|
CNIPA, Notification of a First Office Action for CN202110454856.6, Nov. 23, 2021. |
Nanjing University of Posts and Telecommunications, State Grid Electric Power Research Institute (Applicants), Reply to Notification of a First Office Action for CN202110454856.6, w/ replacement claims, Nov. 24, 2021. |
Nanjing University of Posts and Telecommunications, State Grid Electric Power Research Institute (Applicants), Supplemental Reply to Notification of a First Office Action for CN202110454856.6, w/ (allowed) replacement claims, Dec. 22, 2021. |
CNIPA, Notification to grant patent right for invention in CN202110454856.6, Jan. 11, 2022. |
Number | Date | Country | |
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20240097454 A1 | Mar 2024 | US |