CN111612267A - Hydropower cluster delivery net rack optimization method considering distant view horizontal year - Google Patents

Hydropower cluster delivery net rack optimization method considering distant view horizontal year Download PDF

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CN111612267A
CN111612267A CN202010467168.9A CN202010467168A CN111612267A CN 111612267 A CN111612267 A CN 111612267A CN 202010467168 A CN202010467168 A CN 202010467168A CN 111612267 A CN111612267 A CN 111612267A
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路亮
江栗
魏明奎
周泓
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Southwest Branch of State Grid Corp
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Abstract

The invention discloses a hydropower cluster transmission net rack optimization method considering a distant view horizontal year, which presets a constraint hard index and an evaluation soft index, establishes an adaptive analysis index system, and presets a power transmission scheme alternative library of a hydropower cluster to a load center. And according to the level of the long-term power supply and the load level of the distant view, a strengthening scheme is provided for the sending-out scheme. After the faucet reservoir is launched, whether the reinforcement scheme meets the long-range horizontal annual power transmission requirement If yes, go to the next step. Is the system safety and stability constraints satisfied If yes, go to the next step. Can a critical failure be checked If yes, go to the next step. Is the channel constraint satisfied, the channel constraint mainly considers the influence of ecological red lines such as natural protected areas and original forests on the path and width of the power transmission corridor If not, the next step is carried out. Forming a hydropower cluster delivery scheme.

Description

Hydropower cluster delivery net rack optimization method considering distant view horizontal year
Technical Field
The invention belongs to the field of power grids, and relates to a hydropower cluster transmission grid optimization method considering the perspective horizon.
Background
At present, relevant researches on the step hydropower have been initially carried out in China, but researches mainly centered on various coordinated optimization scheduling methods in the operation process of the step hydropower are carried out.
The patent [1] provides a scheduling method of a cascade hydroelectric virtual pumped storage power station, which takes the minimum deviation of actual peak regulation power and the minimum water consumption of cascade hydroelectric as scheduling targets, constructs a scheduling objective function of the cascade hydroelectric virtual pumped storage power station to solve and optimize scheduling so as to realize a short-term scheduling plan of a power system;
patent [2] discloses a self-adaptive optimization method and system for power generation dispatching of a cascade hydroelectric system, which are used for improving the overall power generation benefit of the cascade hydroelectric system;
patent [3] provides a cascade hydropower station short-term peak regulation model based on electric quantity control and a solving method, which can make cascade hydropower station fully play the peak regulation function of a cascade hydropower station group while meeting the daily optimized electric quantity, output climbing and output fluctuation control requirements;
the patent [4] discloses a multi-target scheduling parallel dimension reduction method of a giant cascade hydroelectric system;
the patent [5] provides a multi-energy coordination optimization scheduling method considering peak-shaving frequency modulation requirements;
the patent [6] provides a cascade hydropower robust optimization scheduling method based on a random security domain, the method judges the robust feasibility of a pre-scheduling scheme, and the scheduling scheme with robustness is finally obtained through feedback correction coordination optimization;
the patent [7] discloses a multi-period power flow optimization method for the cascade hydropower station water level control based on real-time feedback, which constructs a multi-period optimal power flow control method for coordinating the reservoir water level and the power grid operation, realizes the effect of linear treatment of complex nonlinear conditions based on real-time feedback, and greatly improves the running efficiency of the cascade hydropower station;
the patent [8] provides a combined trading strategy optimization method relating to the stepped hydropower participation provincial and western-to-east power transmission market, which provides beneficial support for the dispatching operation management of large-scale stepped hydropower station groups in the southwest region of China in a new power environment;
patent [9] proposes a double-layer optimization method for medium-and-long-term scheduling and maintenance of a cascade hydropower station in a market environment, wherein a medium-and-long-term scheduling intermediate result is taken as a boundary condition, the minimum maintenance loss is taken as an optimization target, and a maintenance loss optimization result and medium-and-long-term power generation income are merged into total income, so that joint optimization is realized;
the patent [10] provides a method and a system for collaborative combination division of a water, wind and light power station group based on regulation performance, improves the precision of collaborative operation optimization of multiple power sources, is beneficial to scheduling optimization of a complex power system containing multiple power sources, has important significance for improving development and utilization of clean energy, and has important popularization and use values;
patent [11] provides a hydropower group scheduling method considering non-constant coupling constraints; the patent [12] provides a daily optimized scheduling method of a cascade hydropower station considering continuous change of water flow delay;
patent [13] proposes a long-term operation method of a cross-basin cascade hydropower station group under the dynamic production of a giant hydropower station;
patent [14] proposes a daily optimization scheduling method for a cascade hydropower station considering continuous change of water flow delay, and compared with the previous scheduling method, the method has the advantages of detailed description of water flow delay, accurate model, good convergence effect, strong practicability and the like;
patent [15] proposes a real-time optimization scheduling method for a cascade hydropower station group under complex constraint, which incorporates a day-ahead power generation plan into a real-time scheduling algorithm, takes the maximum total energy storage of a cascade hydropower system as an optimization target, and meets the requirements of safety, timeliness, practicability and economy of real-time scheduling.
Patent [16] provides a method for making a stepped hydropower station medium-term power generation plan under the condition of a multi-scale power market, comprehensively considers the upstream and downstream complex constraint problem of a stepped hydropower station under the traditional non-market condition and new problems of multi-market power price, performance coupling, market risk and the like brought by the multi-scale market, can better guide the stepped hydropower station power generation process to respond to market price change, improves the overall income through market optimization and avoids the market risk;
the patent [17] provides a method for optimizing a combined trading strategy of a cascade hydropower participation provincial and western-to-east power transmission market, which provides beneficial support for the dispatching operation management of a large-scale cascade hydropower station group in the southwest region of China in a new power environment;
patent [18] proposes a double-layer optimization method for medium and long-term scheduling and overhaul of a cascade hydropower station in a market environment;
patent [19] proposes a day-ahead market clearing mechanism based on the coupling relation of cascade hydropower stations, which realizes the combined clearing of upstream and downstream power stations and solves the problem of unbalance matching between the bid amount and the generating capacity amount in the downstream power stations.
The invention discloses a medium-voltage distribution network accurate planning method based on three-layer macroscopic networking constraint, and the operability, the scientificity and the accuracy of a planning scheme are improved through the target guidance and the old-fashioned principle of global overall planning in space and near-far coordination and reinforcement planning in time.
Patent [21] discloses a power corridor planning method based on GIS information data, which reduces the problems of large water abandonment of hydropower and serious economic benefit loss caused by the delay of planning and construction of an outgoing channel, ensures that the green and environment-friendly hydropower is smoothly sent out, and creates continuous and reliable economic benefit, ecological benefit and social benefit.
The above patent [1-15] basically focuses on the operation side of the cascade hydropower stations and focuses on the problem of coordination and scheduling among the cascade hydropower stations; patents [16-19] focus on the electricity market side, and focus on the problems of how hydropower stations in upstream and downstream participate in competition in the electricity market and determination of clearing price; although the patent [20-21] relates to the problem of grid planning, the patent [20-21] mainly aims at a planning method of a precise power distribution network, and the planning method does not relate to the large-area coordination planning problem of the partition electric quantity balance class, and does not aim at the long-time dynamic process development analysis of leading reservoir construction, and the establishment of a suitable evaluation scheme and an evaluation system.
Therefore, the optimization method of the hydropower cluster delivery net rack in the long-term horizontal year is considered to be urgently researched.
Disclosure of Invention
The invention aims to: the hydropower cluster delivery net rack optimization method considering the distant view horizontal year is provided, the long-term problem of delivery net rack construction under the background of the construction and development process of the leading reservoir is solved, a corresponding partition electric power and electric quantity balance planning model is established, the mathematical model is optimized according to the construction and operation conditions of a delivery channel, hydropower station cluster development planning and production time sequence, a greedy algorithm is adopted for solving to obtain corresponding power transmission alternative schemes, finally, an entropy weight method is adopted for evaluating all the alternative schemes, and the optimal scheme of hydropower cluster delivery and related net rack construction is screened out.
The technical scheme adopted by the invention is as follows:
considering a distant view horizontal year hydropower cluster transmission net rack optimization method, presetting a constraint hard index and an evaluation soft index, establishing an adaptive analysis index system, and presetting a power transmission scheme alternative library of a hydropower cluster to a load center;
the establishment of the adaptive analysis index system comprises the following steps (S1-S7):
s1: dividing all indexes into constraint hard indexes and evaluation soft indexes according to preset index characteristics;
s2: forming an adaptive analysis index system by the soft indexes;
s3: forming an adaptive analysis index system;
s4: quantizing an index system;
s5: solving each index weight by using an entropy weight method, and reducing the dimension of an index system;
s6: constructing a weighted normalization matrix;
s7: determining the membership degree in the comment set (turning to S14);
defining a constraint hard index and an evaluation soft index, establishing an adaptability analysis index system, and simultaneously carrying out primary processing on the index system, such as index system quantification, solving the weight of each index and determining a structural weighting standardization matrix, wherein the hard index comprises safety and stability constraint, serious fault check and channel constraint, and the soft index comprises economic adaptability, supply and demand accommodation adaptability, network source matching adaptability and the like of leading reservoir construction. The evaluation of the soft index is to complete the screening by the method of entropy weight method, and the hard index is to be used as a boundary condition to screen out the scheme which does not accord with the constraint. When the hard index cannot be met, a new alternative scheme can be obtained by changing the development scale and the production time sequence of the hydropower cluster, and evaluation and screening are carried out again until the optimal scheme meeting the hard index is obtained. The optimal scheme guides the construction of the network frame for the water and electricity clusters in the southwest leading reservoir construction.
The establishment of the power transmission scheme alternative library comprises the following steps (S8-S15):
s8, determining the horizontal year and the prospective year of the prospect of the future of the analysis and research target; the invention preliminarily determines the planned horizontal year taking 2018 as a research, and 2035 as a prospective prospect year of the research;
s9, analyzing to obtain the development plan, the production time sequence and the power load center plan of the hydropower source cluster;
s10, analyzing and calculating the load demand and load characteristics of the load center;
in Sichuan province, the climate is humid, the summer is hot and stuffy, the winter is cold and humid, and the air conditioning load accounts for a large proportion. The annual load characteristic shows a double-peak characteristic, the load characteristic diagram is shown in figure 2, and 2011-2017 annual double peaks appear in 7-8 months in summer and 12-1 months in winter. The temperature in spring and autumn is proper, the load of the air conditioner is greatly reduced, and the load in the period is relatively low. In recent years, as the cooling load in summer continuously rises, the maximum load in summer is increased more obviously than that in winter, the ratio of double peaks in winter and summer is gradually reduced,
while a typical daily load curve is shown in fig. 3, the typical daily load curve has a difference in peak-valley appearance times in summer and winter. Summer: early peak occurs at 11:00-12:00, late peak occurs at 21:00-22:00, trough load occurs in the morning 7: 00-8: 00; in winter: the early peak appears at 11:00-12:00, the late peak appears at 18:00-20:00, the load curve between the early peak and the late peak is relatively flat, the load of the valley appears in the morning 4: 00-5: 00.
s11, analyzing and calculating the installed capacity and the output characteristic of the hydropower cluster governed by the leading reservoir, and providing data support for the related calculation of the next partition balance power flow plan; specifically, reference can be made to data of planning schemes of hydroelectric power groups in three watersheds of yamo river, jinshajiang river and great river.
S12, obtaining a partition balance power flow plan through partition balance analysis;
s13, obtaining a hydropower cluster sending scheme and sending channel requirements according to the partition balance power flow plan;
s14: according to the channel conditions (original forest, natural protected area and the like), the sending scheme is restrained and optimized;
s15: forming a power transmission scheme alternative library from the hydropower cluster to the load center;
on the basis of a partition balance power flow planning theory of power and electricity, a power transmission scheme library is preliminarily formed, and the scheme is further optimized according to the channel condition, the hydropower cluster development scale and the production sequence to form an alternative library of the power transmission scheme, wherein 2018 is preliminarily determined as a planning horizontal year of research, and 2025 is taken as a prospective development year of research;
according to the power transmission scheme alternative library, the alternative library is evaluated in an entropy weight method evaluation mode to obtain a hydropower cluster power transmission net rack optimization scheme, and the method comprises the following steps (S16-S28):
s16: and calculating the membership degree of each scheme corresponding to the evaluation set to which the scheme belongs, and determining the alternative scheme ordering.
S17: and selecting the current optimal hydropower cluster sending scheme.
S18: is the system safety and stability constraints satisfied? If yes, go to the next step. If not, go to S21
S19: can a critical failure be checked? If yes, go to the next step. If not, go to S21
S20: is the channel constraint (the channel constraint mainly considers the influence of ecological red lines such as natural protected areas and original forests on the path and width of the power transmission corridor)? If not, the next step is carried out. If so, go to S26
S21: the current solution is deleted in the alternative library.
S22: is there an alternative in the alternative library? If not, the next step is carried out. If so, go to S17
S23: is the hydropower cluster development scale and commissioning timing optimizable? If yes, go to the next step. If not, go to S25.
S24: and optimizing the development scale and the production time sequence of the hydropower cluster under the constraint boundary condition. Go to S11.
S25: optimizing partition balance and changing power flow direction. Go to S12.
S26: forming a hydropower cluster delivery scheme.
S27: and according to the level of the long-term power supply and the load level of the distant view, a strengthening scheme is provided for the sending-out scheme.
S28: after the faucet reservoir is launched, whether the reinforcement scheme meets the long-range horizontal annual power transmission requirement? If yes, go to the next step. If not, go to S21.
S29: is the system safety and stability constraints satisfied? If yes, go to the next step. If not, go to S21
S30: can a critical failure be checked? If yes, go to the next step. If not, go to S21
S31: is the channel constraint (the channel constraint mainly considers the influence of ecological red lines such as natural protected areas and original forests on the path and width of the power transmission corridor)? If not, the next step is carried out. If so, go to S21
S32: forming a hydropower cluster delivery scheme.
S33: and (6) ending.
Further: the load demand and load characteristic analysis and calculation are researched by adopting a gray system prediction method, the calculation amount of the gray system in the load analysis is small, and the load analysis has more uncertain factors, which is just the advantage of the gray prediction method, so that the accuracy is higher. The GM (1,1) model is the most commonly used effective grey prediction model, where the first 1 in (1,1) represents a 1 st order equation and the last 1 represents that the 1 st order differential equation contains only a single variable; the S10 adopts a gray prediction method of a GM (1,1) model to judge the meeting requirement and the meeting characteristic, and comprises the following three steps:
the method comprises the following steps: accumulating to generate a structure increasing number sequence, and listing a differential equation matrix;
the original data column and the data column formed by first-order accumulation are respectively shown as formulas (1) and (2);
x(0)={x(0)(1),x(0)(2),…,x(0)(k)},k=1,2,…,n(1)
x(1)={x(1)(1),x(1)(2),…,x(1)(k)},k=1,2,…,n(2)
in the formula (I), the compound is shown in the specification,
Figure BDA0002513057330000051
x(0)representing the raw data column, i.e. the historical data of the load in the investigation region. x is the number of(1)Data columns formed after the first-order accumulation are represented, namely accumulated data of loads in the research area;
the differential equation can thus be set forth as shown in equation (3):
Figure BDA0002513057330000052
in the formula, a and u are model parameters and respectively become development gray scale and endogenous gray scale parameters:
the differential equation (3) is rewritten into a matrix form as shown in equation (4):
Figure BDA0002513057330000061
step two: obtaining the time response function of the GM (1,1) model,
substituting the accumulated data values into a differential equation matrix to obtain the values of the model parameters a and u, and substituting the values into the original differential equation to obtain an iterative equation shown in the formula (5):
Figure BDA0002513057330000062
step three: finally, a grey prediction model of the original sequence is obtained,
the formula (5) is reduced to obtain a gray prediction model of the original number sequence X (0), k is attached with different values according to the model and the sequence number of the time to be predicted, the predicted value of the time point is calculated, and the prediction work is finished
Further: and S12 and S13 obtain a partition balance power flow plan through partition balance analysis, and obtain a hydropower cluster delivery scheme and delivery channel requirements according to the power flow plan, so that an external delivery scheme library is formed preliminarily.
When the electric quantity is checked, the value of the transmitted electric quantity can be used as an independent variable to check the electric quantity of different partitions. The objective function of the load balance of the whole power grid system is shown as the formula (6).
Figure BDA0002513057330000063
In the formula, NG、NdNumber of generator sets and number of balance divisions, Pi,jAnd (t) and L (t) are respectively the active power output of the ith unit and the total load of the power grid at the moment t in the partition j at the moment t.
In each subarea, the sum of the generated power of each unit and the transmission power of the transmission channel connected with the subarea is equal to the total load in the subarea, so that the objective function of each subarea is shown as a formula (7).
Figure BDA0002513057330000064
In the formula, EG,jAnd ED,jRespectively representing the total power generation amount and the total internal power consumption amount of the j sub-area, ET,kRepresenting the magnitude of the electric quantity transmitted on channel k, Bk,jIs a two-dimensional variable used to represent the direction of the transmitted power on channel k.
Generally, the constraint conditions of the mathematical model include a unit power constraint, a direct current power flow constraint, a unit minimum on/off time constraint, a transmission channel capacity constraint and the like.
The critical unit power constraint and the critical direct current power flow constraint are respectively expressed as formulas (8) and (9):
Figure BDA0002513057330000071
Figure BDA0002513057330000072
in the formula, Pi,tThe output of unit i at time t, and Pi,minAnd Pi,maxRespectively the minimum and maximum generating power of the unit i. PbAnd QbRespectively an active power column vector and a reactive power vector of each branch; b isbAnd (3) for each branch admittance diagonal matrix, theta is a node phase angle column vector, and R is a network node branch incidence matrix.
Whereas problems with partitions in the grid are solved using greedy algorithms. In general, the greedy algorithm is solved as follows:
1) and inputting the profit and loss electric quantity of each subarea, and dividing the subareas into a transmission electric quantity class and a receiving electric quantity class according to the profit and loss conditions.
2) And respectively sequencing the subareas of each type from large to small according to the magnitude of the profit and loss electric quantity.
3) And finding out the partition i with the largest redundancy from the transmission electric quantity class each time, transmitting the partition electric quantity to the partition j with the largest electric quantity lack in the received electric quantity class, jumping to the 4 th step if the redundant electric quantity of the partition i is larger than the electric quantity lack of the partition j, and jumping to the 5 th step if the redundant electric quantity of the partition i is not larger than the electric quantity lack of the partition j.
4) After the redundant electric quantity of the partition i is subtracted by the lack electric quantity of the partition j, the partition i is inserted into the transmission electric quantity class in sequence, and meanwhile, the partition j is deleted from the received electric quantity class.
5) After the redundant electric quantity of the partition i is subtracted from the lack electric quantity of the partition j, the partition j is inserted into the received electric quantity class in sequence, and meanwhile, the partition i is deleted from the transmission electric quantity class.
6) The next partition is then processed until the power of each partition in the grid is balanced.
In summary, due to the adoption of the technical scheme, the invention has the beneficial effects that:
1. the prospect is strong. The hydropower cluster sending-out grid optimization method considering the distant view horizontal year, the main grid upgrading optimization requirement considering the distant view horizontal year and the scheme with poor adaptability in the distant view horizontal year are eliminated, so that the design scheme is optimized and the repeated construction is reduced.
2. On a larger time scale, the consumption of clean energy across provincial and regional areas is promoted. The optimization method provided by the invention has better long-term adaptability, and is beneficial to promoting the consumption of clean energy in provincial and regional areas on a larger time scale and promoting the continuous development of the clean energy.
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In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings that are required to be used in the embodiments will be briefly described below, it should be understood that the following drawings only illustrate some embodiments of the present invention and therefore should not be considered as limiting the scope, and that for those skilled in the art, other relevant drawings can be obtained according to the drawings without inventive effort, wherein:
FIG. 1 is a flow chart of the present invention;
FIG. 2 is a graph of the load of the power grid in Szechwan in 2005-2016;
FIG. 3 is a typical daily load curve of the Sichuan power grid in summer and winter according to the present invention;
FIG. 4 is a view showing the structure of a first division mode according to the present invention;
fig. 5 is a diagram showing a structure of a second partition method of the present invention.
Detailed Description
In order to make the objects, technical solutions and advantages of the present invention more apparent, the present invention is described in further detail below with reference to the accompanying drawings and embodiments. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention. The components of embodiments of the present invention generally described and illustrated in the figures herein may be arranged and designed in a wide variety of different configurations.
Thus, the following detailed description of the embodiments of the present invention, presented in the figures, is not intended to limit the scope of the invention, as claimed, but is merely representative of selected embodiments of the invention. All other embodiments, which can be derived by a person skilled in the art from the embodiments of the present invention without making any creative effort, shall fall within the protection scope of the present invention.
It is noted that relational terms such as "first" and "second," and the like, may be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Also, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising an … …" does not exclude the presence of other identical elements in a process, method, article, or apparatus that comprises the element.
The features and properties of the present invention are described in further detail below with reference to examples.
Example one
In the optimization method for the hydropower cluster grid-sending out considering the long-term horizon provided by the preferred embodiment of the invention, on the basis of fig. 1, a relevant mathematical model of power and electric quantity balance is established and analyzed and solved to obtain a scheme library of a delivery channel of the hydropower cluster, and an entropy weight method is adopted to further screen the alternative scheme library, so that a reinforcing scheme for the hydropower cluster grid-sending out meeting safety and stability constraints, serious fault checking and channel constraints is finally obtained.
(1) Setting the installed capacity of each power supply of a hydropower group in a certain horizontal water year in a certain hydropower enrichment area and the predicted power P under the combined operation after the faucet reservoir is connectedGAs shown in table 1-cascaded power station installed capacity and output parameters.
TABLE 1 (Unit: MW)
Figure BDA0002513057330000091
Annual power consumption P in the areaDAs shown in table 2-annual electricity usage in certain area:
TABLE 2 (Unit: MW)
Month of the year 1 2 3 4 5 6 7 8 9 10 11 12
Load(s) 5550 4971 5215 5032 5184 5337 5642 6099 5587 5032 5520 5916
And obtaining a partition balance power flow plan through partition balance analysis, obtaining a hydropower cluster delivery scheme and delivery channel requirements according to the power flow plan, and preliminarily forming a delivery scheme library. In the initial solution library, six sets of implementable solutions are formed on the basis of two types of partition modes, which are respectively shown in fig. 4 and fig. 5.
The specific electricity consumption of the two types of partition modes is shown by a power generation electricity meter of a table 3-partition mode I and a power generation electricity meter of a table 4-partition mode II.
TABLE 3
Partitioning Annual average power generation/(MW h) Annual average power consumption/(MW h)
A 3506421 7174441
B 15301922 11224281
C 9327220 16210122
D 9136002 5355080
E 10238801 7546442
TABLE 4
Partitioning Annual average power generation/(MW h) Annual average power consumption/(MW h)
A 3506421 7174441
B 4946400 2610478
C 10355520 8613801
D 9327220 16210122
E 9136002 5355080
F 10238801 7546442
Six implementable schemes in the initially selected scheme library are respectively established under the two types of partition modes, wherein a scheme I, a scheme II, a scheme III and a scheme IV are established under the partition mode shown in the table 3, a scheme V and a scheme VI are established under the partition mode II shown in the table 4, and the specific power transmission channel selection condition of the electrical connection of each scheme is shown in the table 5-power transmission channel transmission electric quantity.
TABLE 5 (Unit MW. h)
Figure BDA0002513057330000101
And further developing relevant checking aiming at six schemes in the initially selected scheme library of the meter 5 hydroelectric group outgoing channel, checking whether the schemes in the scheme library meet safety and stability constraint, serious fault checking and channel constraint, and indicating that the six schemes all meet relevant checking standards through checking results. By this time, a power transmission scheme alternative library of hydropower cluster to load center is completely obtained, and then adaptability evaluation analysis is performed on the scheme in the alternative library.
Calculating membership of corresponding affiliated comment sets by constructing fuzzy evaluation matrix and comprehensive weight set according to six schemes in the table 5Degree, resulting in six scenarios with respect to the panel of comments as V ═ V1,v2,L v5The membership matrix of { excellent, good, medium, and good, poor } is shown in formula (1).
Figure BDA0002513057330000102
Obtaining a final fuzzy comprehensive evaluation result according to the membership matrix, wherein the fifth scheme is used for v in the comment set1、v2The membership degree of the scheme V is higher, and the scheme V is proved to be the optimal outward transmission scheme in the power transmission scheme alternative library from the hydropower cluster to the load center. Therefore, in the embodiment of the invention, the partition mode and the outgoing channel selection scheme of the fifth scheme are finally determined to be a reinforcing scheme of the network frame for the hydropower cluster outgoing network in the region.
Example two
This example further assumes that the load of the hydropower-enriched region increases at a rate of 3% per year on the basis of example one, and the annual power consumption P in 2020, 2025, 2030 and 2035 years of the region is calculated on the basis of table 2DAs shown in table 6-the annual power consumption in 2020-:
TABLE 6 (Unit: MW)
Figure BDA0002513057330000111
1) Horizontal prospective year is 2025 years: under the condition that the load is increased in 2025 years and the installed capacity of each step power station is not changed, whether the six electric quantity delivery schemes shown in the table 5 still meet rigid constraints such as safety and stability constraints, serious fault checking and channel constraints is checked. The checking result shows that the scheme one, the scheme two, the scheme three and the scheme four do not meet the relevant inspection standard any more, so that a channel delivery scheme for partition electric quantity balance needs to be re-formulated.
The electricity generation meters in the two types of zoning modes are obtained based on the increase of the load quantity, and are shown in a first electricity generation meter in a zoning mode in a table 7-2025 and a second electricity generation meter in a zoning mode in a table 8-2025:
TABLE 7
Partitioning Annual average power generation/(MW h) Annual average power consumption/(MW h)
A 2750621 6745201
B 19256424 16284838
C 3567894 9828725
D 13203458 9583436
E 17557163 13893360
TABLE 8
Figure BDA0002513057330000112
Figure BDA0002513057330000121
Further, the initial selection scheme library for constructing the outgoing channel under the two types of the subarea power generation and utilization electric quantities is shown in table 9-2025 for the transmission electric quantity of the transmission channel. Among them, the first scheme, the second scheme, the third scheme and the fourth scheme are established under the partition mode shown in table 7, and the fifth scheme and the sixth scheme are established under the partition mode second shown in table 8.
Table 9 (Unit MW h)
Figure BDA0002513057330000122
Transmitting electric quantity by aiming at a power transmission channel for 9-2025 years of the meter; and (3) further expanding related checking to check whether the scheme in the scheme library meets safety and stability constraints, serious fault checking and channel constraints, deleting the scheme III from the alternative library and performing adaptive analysis on the alternative libraries formed by the other five schemes.
Calculating the membership degree of the corresponding belonged comment set according to the schemes in the table 9 by constructing a fuzzy evaluation matrix and a comprehensive weight set to obtain V ═ V { V } relative to the comment set of the five schemes except for the scheme three1,v2,L v5The membership matrix of { excellent, good, medium, and good, poor } is shown in equation (2).
Figure BDA0002513057330000131
Obtaining a final fuzzy comprehensive evaluation result according to the membership matrix, wherein the scheme is six for v in the comment set1、v2The membership degree of the scheme II is higher, and the scheme II is proved to be the optimal outward transmission scheme in the alternative power transmission scheme library from the hydropower cluster to the load center.
Therefore, the partition mode and the outward delivery channel selection scheme of the scheme six shown in the table 9 are finally determined to be a reinforced scheme of delivering the net rack for the hydropower cluster in the 2025 horizontal prospective year of the region.
2) The horizontal prospective year is 2030: under the condition that the load is increased in 2030 while the installed capacity of each cascade power station is not changed, whether the six electric quantity delivery schemes shown in the check meter 9 still meet rigid constraints such as safety and stability constraints, serious fault check and channel constraints is checked. The checking results show that the delivery channel selection scheme shown in table 9 still meets the relevant inspection standards, and the transmission electric quantity of the delivery channel changes as shown in table 10:
meter 102030 years transmission channel transmission electric quantity (Unit MW. h)
Figure BDA0002513057330000132
And further developing relevant checking aiming at six schemes in the initially selected scheme library of the meter 10 hydroelectric group outgoing channel, checking whether the schemes in the scheme library meet safety and stability constraint, serious fault checking and channel constraint, and indicating that the six schemes all meet relevant checking standards through checking results. By this time, a power transmission scheme alternative library of hydropower cluster to load center is completely obtained, and then adaptability evaluation analysis is performed on the scheme in the alternative library.
Calculating the membership degree of the corresponding belonged comment set according to six schemes in the table 10 by constructing a fuzzy evaluation matrix and a comprehensive weight set to obtain that the six schemes are V ═ V relative to the comment set1,v2,L v5The membership matrix of { excellent, good, medium, and good, poor } is shown in equation (3).
Figure BDA0002513057330000141
Obtaining a final fuzzy comprehensive evaluation result according to the membership matrix, wherein the scheme is six for v in the comment set1、v2The membership degree of the scheme II is higher, and the scheme II is proved to be the optimal outward transmission scheme in the alternative power transmission scheme library from the hydropower cluster to the load center.
Therefore, the partition method and the outgoing channel selection scheme of the sixth scheme shown in table 10 are finally determined as the reinforcing scheme of the grid transmission of the hydropower cluster in 2030 horizontal perspective in the area.
3) The horizontal prospective year is 2035 years: under the condition that the load is increased in 2035 years and the installed capacity of each step power station is not changed, whether the six electric quantity delivery schemes shown in the check meter 10 still meet the rigid constraints of safety and stability constraint, serious fault check, channel constraint and the like is checked. The checking result shows that the third scheme no longer meets the relevant inspection standard, so that the channel delivery scheme for the partition electric quantity balance needs to be re-formulated.
The electricity generation meters in the two types of zoning modes are obtained based on the increase of the load quantity, and are shown in a first electricity generation meter in the zoning mode of 11-2025 years and a second electricity generation meter in the zoning mode of 12-2025 years:
TABLE 11
Partitioning Annual average power generation/(MW h) Annual average power consumption/(MW h)
A 6578942 9064986
B 24577351 21885461
C 9436172 13208985
D 15624751 12879337
E 19493067 18671514
TABLE 12
Figure BDA0002513057330000142
Figure BDA0002513057330000151
Further, under the two conditions of the power consumption of the subareas, a primary selection scheme library of the outgoing channel is constructed, as shown in table 13-2035. Among them, the first scheme, the second scheme, the third scheme and the fourth scheme are established under the partition mode shown in table 11, and the fifth scheme and the sixth scheme are established under the partition mode second shown in table 12.
Watch 13 (Unit MW h)
Figure BDA0002513057330000152
And further developing related checking aiming at six schemes in the initially selected scheme library of the meter 13 hydroelectric group outgoing channel, checking whether the schemes in the scheme library meet safety and stability constraint, serious fault checking and channel constraint, and indicating that the six schemes all meet related checking standards through checking results. By this time, a power transmission scheme alternative library of hydropower cluster to load center is completely obtained, and then adaptability evaluation analysis is performed on the scheme in the alternative library.
Calculating membership of corresponding affiliated comment sets by constructing fuzzy evaluation matrix and comprehensive weight set to six schemes in the table 13Degree, resulting in six scenarios with respect to the panel of comments as V ═ V1,v2,L v5The membership matrix of { excellent, good, medium, and good, poor } is shown in equation (4).
Figure BDA0002513057330000161
Obtaining a final fuzzy comprehensive evaluation result according to the membership matrix, wherein the scheme is six for v in the comment set1The membership degree of the scheme II is higher, and the scheme II is proved to be the optimal outward transmission scheme in the alternative power transmission scheme library from the hydropower cluster to the load center.
Therefore, the partition method and the outward delivery passage selection scheme of the sixth scheme shown in the table 13 are finally determined as the reinforcing scheme of the net rack for the hydropower cluster delivery in the horizontal prospective year 2035 of the area
The above description is only for the purpose of illustrating the preferred embodiments of the present invention and should not be taken as limiting the scope of the present invention, and any modifications, equivalents and improvements made by those skilled in the art within the spirit and principle of the present invention should be included in the scope of the present invention.

Claims (3)

1. The hydropower cluster transmission net rack optimization method considering the distant view horizontal year is characterized by comprising the following steps of: presetting a constraint hard index and an evaluation soft index, establishing an adaptive analysis index system, and presetting a power transmission scheme alternative library of a hydropower cluster to a load center;
the establishment of the adaptive analysis index system comprises the following steps (S1-S7):
s1: dividing all indexes into constraint hard indexes and evaluation soft indexes according to preset index characteristics;
s2: forming an adaptive analysis index system by the soft indexes;
s3: forming an adaptive analysis index system;
s4: quantizing an index system;
s5: solving each index weight by using an entropy weight method, and reducing the dimension of an index system;
s6: constructing a weighted normalization matrix;
s7: determining the membership degree in the comment set (turning to S14);
the establishment of the power transmission scheme alternative library comprises the following steps (S8-S15):
s8, determining the horizontal year and the prospective year of the prospect of the future of the analysis and research target;
s9, analyzing to obtain the development plan, the production time sequence and the power load center plan of the hydropower source cluster;
s10, analyzing and calculating the load demand and load characteristics of the load center;
s11, analyzing and calculating the installed capacity and the output characteristic of the hydropower cluster governed by the leading reservoir, and providing data support for the related calculation of the next partition balance power flow plan;
s12, obtaining a partition balance power flow plan through partition balance analysis;
s13, obtaining a hydropower cluster sending scheme and sending channel requirements according to the partition balance power flow plan;
s14: according to the channel conditions (original forest, natural protected area and the like), the sending scheme is restrained and optimized;
s15: forming a power transmission scheme alternative library from the hydropower cluster to the load center;
according to the power transmission scheme alternative library, the alternative library is evaluated in an entropy weight method evaluation mode to obtain a hydropower cluster power transmission net rack optimization scheme, and the method comprises the following steps (S16-S28):
s16: calculating the membership degree of each scheme corresponding to the evaluation set to which the scheme belongs, and determining alternative scheme ordering;
s17: selecting the current optimal hydropower cluster sending scheme;
s18: is the system safety and stability constraints satisfied? If yes, turning to the next step; if not, go to S21;
s19: can a critical failure be checked? If yes, turning to the next step; if not, go to S21;
s20: is the channel constraint satisfied? If not, the next step is carried out. If yes, go to S26;
s21: deleting the current scheme from the alternative library;
s22: is there an alternative in the alternative library? If not, turning to the next step; if yes, go to S17;
s23: is the hydropower cluster development scale and commissioning timing optimizable? If yes, turning to the next step; if not, go to S25;
s24: optimizing the development scale and production time sequence of the hydropower cluster under the constraint boundary condition; turning to S11;
s25: optimizing partition balance and changing power flow direction. Go to S12.
S26: forming a hydropower cluster sending scheme;
s27: according to the level of a distant view horizontal year power supply and a load level, a strengthening scheme is provided for the sending-out scheme;
s28: after the faucet reservoir is launched, whether the reinforcement scheme meets the long-range horizontal annual power transmission requirement? If yes, turning to the next step; if not, go to S21;
s29: is the system safety and stability constraints satisfied? If yes, turning to the next step; if not, go to S21
S30: can a critical failure be checked? If yes, turning to the next step; if not, go to S21
S31: is the channel constraint satisfied? If not, turning to the next step; if yes, go to S21;
s32: forming a hydropower cluster sending scheme;
s33: and (6) ending.
2. The hydropower cluster delivery grid optimization method considering perspective horizontal years according to claim 1, characterized in that: the step S10 of judging the requirement and the characteristic by adopting a gray prediction method of a GM (1,1) model comprises the following three steps:
the method comprises the following steps: accumulating to generate a structure increasing number sequence, and listing a differential equation matrix;
the original data column and the data column formed by first-order accumulation are respectively shown as formulas (1) and (2);
x(0)={x(0)(1),x(0)(2),…,x(0)(k)},k=1,2,…,n(1)
x(1)={x(1)(1),x(1)(2),…,x(1)(k)},k=1,2,…,n(2)
in the formula (I), the compound is shown in the specification,
Figure FDA0002513057320000021
x(0)representing the raw data column, i.e. the historical data of the load in the investigation region. x is the number of(1)Data columns formed after the first-order accumulation are represented, namely accumulated data of loads in the research area;
the differential equation can thus be set forth as shown in equation (3):
Figure FDA0002513057320000022
in the formula, a and u are model parameters and respectively become development gray scale and endogenous gray scale parameters:
the differential equation (3) is rewritten into a matrix form as shown in equation (4):
Figure FDA0002513057320000031
step two: obtaining the time response function of the GM (1,1) model,
substituting the accumulated data values into a differential equation matrix to obtain the values of the model parameters a and u, and substituting the values into the original differential equation to obtain an iterative equation shown in the formula (5):
Figure FDA0002513057320000032
step three: finally, a grey prediction model of the original sequence is obtained,
and (3) performing subtraction reduction on the formula (5) to obtain a gray prediction model of the original number sequence X (0), attaching different values to k according to the model and the sequence number of the time to be predicted, calculating the predicted value of the time point, and finishing the prediction work.
3. The hydropower cluster delivery grid optimization method considering perspective horizontal years according to claim 1, characterized in that: and S12 and S13 obtain a partition balance power flow plan through partition balance analysis, and obtain a hydropower cluster delivery scheme and delivery channel requirements according to the power flow plan, so that an external delivery scheme library is formed preliminarily.
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