CN101577425A - Optimal load allocating system - Google Patents
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E40/00—Technologies for an efficient electrical power generation, transmission or distribution
- Y02E40/70—Smart grids as climate change mitigation technology in the energy generation sector
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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- Y04S—SYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
- Y04S10/00—Systems supporting electrical power generation, transmission or distribution
- Y04S10/12—Monitoring or controlling equipment for energy generation units, e.g. distributed energy generation [DER] or load-side generation
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Abstract
The invention provides an operating schedule with lowest fuel cost. The operating schedule consumes the lowest fuel cost, and comprises fewest number of input parameters which are obtained by off-line calculation and are established based on output allocation of the lowest fuel cost among a plurality of units. The optimal load allocating system is used for managing the optimal load allocation of total output of power generating equipment consisting of a plurality of units in the plurality of the units, and comprises a data input part 1, an optimal load allocation input file 2, an optimal load allocating calculation part 3, an optimal load allocating output file 4, an optimal load allocating mode display part 5 and an optimal load allocating and scheduling display part 6, wherein the data input part 1 is used for inputting the equipment specification of each unit required by the optimal load allocation; the optimal load allocation input file 2 stores data input by the data input part; the optimal allocating calculation part 3 carries out optimal allocating calculation based on data stored in the optimal load allocating calculation file; and the optimal load allocating output file 4 stores the calculation result executed by the optimal allocating calculation part 3. The optimal load allocating mode display part 5 displays the following contents: a sending end characteristic curve of each unit; a fuel cost curve of each unit; a curve of a load optimally allocated to each unit, which is relative to the total output; a fuel cost curve of the total output; and a fuel cost curve used for comparing optimal load allocation and conventional load allocation based on data stored in the optimal load allocating output file and the load allocating input file. The optimal load allocating and scheduling display part 6 displays a power transmission time scheduling table, a power transmission time scheduling curve and a fuel cost comparative table of different operating modes.
Description
Technical field
The present invention relates to the optimal load allocating system in a kind of generating equipment.Especially, relate under the situation of considering fuel cost, realize the system of optimal load allocating.
Background technology
Usually, generating equipment is composed of multiple units, and according to the operation planning that determines each unit by the specified total output of distribution substation.According to prior art, between these unit, distribute the load to depend on operator's experience, and the electric power transfer cost is always minimum in the mode that realizes total output.
In recent years, electricity market is established, and Utilities Electric Co. is required to improve operating efficiency.Therefore, need help between each unit, distribute the feature of load by this way, feasible through-put power cost minimization by the specified gross power of distribution substation.
The Japan Patent spy opens the thought that NO.2000-78750 discloses a kind of optimized operation.But according to this thought, based on the sensor information from physical device, executed in real time optimization computation, and at each unit real-time operation sub-controller of generating equipment is with energy savings and raise the efficiency.
Summary of the invention
Yet the foundation of optimal model sometimes is too complicated, to such an extent as to can not set input parameter, and optimized operation can not be used.
The present invention forms under the circumstances, and the purpose of this invention is to provide the operation scheduling table, this operation scheduling: minimize fuel cost; The input parameter that comprises minimum number; Obtain through computed offline; And be to consider that the output that minimizes fuel cost between a plurality of unit distributes and formulates.
In order to achieve this end, the invention provides a kind of optimal load allocating system, it is used for managing the optimal load allocating of total output of the generating equipment that is composed of multiple units in described a plurality of unit, comprise: data input device, it is used to import the specification of equipment of each required unit of optimal load allocating; The optimal load allocating input file, its storage is via the data of described data input device input; The optimal load allocating calculation element, it is carried out optimal load allocating and calculates based on the data that are stored in the described optimal load allocating input file; The optimal load allocating output file, it is stored by the performed described result calculated of described optimal load allocating calculation element; The optimal load allocating mode display unit, it shows below content: the transmitting terminal characteristic curve of each unit, the fuel cost curve of each unit, optimally be assigned to the curve of the load of each unit with respect to described total output, the fuel cost curve of described total output, and be used for the fuel cost curve that comparison distributes based on the described optimal load allocating and the conventional load of the data that are stored in described optimal load allocating output file and described optimal load allocating input file; And optimal load allocating scheduling display unit, it shows electric power transfer time scheduling table, electric power transfer time scheduling curve and fuel cost comparative table, and
A kind of optimal load allocating method, it is used for managing the optimal load allocating of total output of the generating equipment that is composed of multiple units in described a plurality of unit, comprising: the specification of equipment of each unit that the input optimal load allocating is required and storage input data; Carry out optimal load allocating based on described data and calculate and store this result calculated; Show below content: the transmitting terminal characteristic curve of each in described a plurality of unit, the fuel cost curve of each in described a plurality of unit, optimally be assigned to each load in described a plurality of unit with respect to the curve of described total output, the fuel cost curve of described total output, and be used for the fuel cost curve that comparison distributes based on the described optimal load allocating and the conventional load of described data and described result calculated; And demonstration electric power transfer time scheduling table, electric power transfer time scheduling curve and fuel cost comparative table.
According to the present invention, because input constitutes the specification of equipment of each equipment of generating equipment, can come load allocating between the described unit of computational minimization fuel cost at the specified total output of distribution substation, and can operate generating equipment based on described load allocating by this way, make fuel cost minimize.
Description of drawings
Fig. 1 is the calcspar that the configuration of the embodiment of the invention 1 is shown;
Fig. 2 A illustrates fuel cost how along with the performance diagram of the rate of change of total output T of P1 and generating equipment;
Fig. 2 B illustrates the diagram of calculating according to exemplary optimal load allocating embodiments of the invention 2, under the situation that generating equipment is made up of three or more unit;
Fig. 3 A is fuel cost curve and the characteristic performance diagram of power transmission efficiency that illustrates according to each unit of the generating equipment of the embodiment of the invention 3;
Fig. 3 B optimization is shown distributes to the load of each unit with respect to the curve of total output of generating equipment and the performance diagram of total fuel cost curve of exporting;
Fig. 3 C is the performance diagram that the fuel cost curve that tradition (equalization) load allocating and optimal load allocating are compared is shown;
Fig. 4 A illustrates the load allocating dispatch list that is used to minimize fuel cost according to the embodiment of the invention 4;
Fig. 4 B is the diagram that the overall transmission power output scheduling curve of expectation is shown;
Fig. 4 C is the diagram that the through-put power output scheduling curve of each unit is shown;
Fig. 4 D is the diagram that the overall transmission power output scheduling of entire equipment is shown;
Fig. 4 E is the diagram that is illustrated in the curve under the situation of considering the load variations rate;
Fig. 4 F is illustrated in the dispatch list under the situation of importing impossible desired value;
Fig. 4 G comprises the diagram that is used to show the situation of importing impossible desired value;
Fig. 5 is the diagram that the startup of considering auxiliary machinery and the operation example that stops to be shown; And
Fig. 6 illustrates the fuel cost that shows optimum operation, the optimum operation of considering auxiliary machinery and the table that is used for the traditional operation of comparison.
Embodiment
Below, embodiments of the invention will be described with reference to the accompanying drawings.
Fig. 1 is the diagram that illustrates according to the configuration of the optimal load allocating system of the embodiment of the invention 1.At first, with the configuration that is described with reference to Figure 1 according to the optimal load allocating system of embodiment 1.According to embodiment 1, optimal load allocating system has: data input device 1, and it is used to import the specification of equipment of needed each unit of optimal load allocating (two unit); Optimal load allocating input file 2, its storage is by the data of data input device 1 input; Optimal load allocating calculation element 3, it carries out optimal load allocating calculating based on the data that are stored in the optimal load allocating input file 2; Optimal load allocating input file 4, the result of calculation that its storage is carried out by optimal load allocating calculation element 3; Optimal load allocating mode display unit 5, it shows the transmitting terminal characteristic curve of each unit, the fuel cost curve of each unit, the load optimum allocation curve that each unit is relatively always exported, the fuel cost curve of total output, and the fuel cost curve that is used for coming distribution of comparison conventional load and optimal load allocating based on the data that are stored in optimal load allocating output file 4 and optimal load allocating input file 2; And optimal load allocating scheduling display unit 6, it shows electric power transfer time scheduling table, electric power transfer time scheduling curve, and fuel cost comparative table.
Next, will the operation of optimal load allocating system be described.At first, optimal load allocating is calculated required data quilt by data input device 1 input.The input data item comprises the efficiency of transmission (%) of minimum output (MW), maximum output (MW), through-put power (MW), through-put power, every calorie of price (unit/kcal), load variations ratio (%/minute), uses the through-put power (MW) of auxiliary machinery, auxiliary machinery running time (hour) and the through-put power (MW) of expectation of per time period.Though price represents that with Chinese unit certainly, the present invention can be used to other monetary unit.
Next, will the calculating of fuel cost be described progressively.Described calculating comprises following.
Heat input continuous item
Unit of fuel price K (unit/kg)
Fuel value L (kcal/kg)
Fuel uses G (kg)
Every calorie of price M (unit/kcal)=K/L
Heat input Q (kcal)=G * L
Total cost N (unit)=Q * M
The thermal output continuous item
Power output P (MW)=P * 860 * 1000 (kcal)
Efficient μ (%)
Power manufacturing cost C (unit/kW)
By determining described efficient divided by heat input with thermal output.
[formula 1]
This formula can be reduced to the following equation about Q (obtaining the needed hot input variable of power output P).
[formula 2]
By determining fuel cost divided by the amount of the electrical power that is generated with total cost.
[formula 3]
Therefore, fuel cost can (unit/kcal) and efficient (%) be determined by every calorie of price.
[formula 4]
Suppose μ=f (P),
From formula (3), the fuel cost of two unit (first module and Unit second) can followingly be determined.
[formula 5]
Suppose μ
1=f
1(P
1), μ
2=f
2(P
2) and T=P
1+ P
2
Realize the needed fuel cost C of total output T (MW) (unit/kWh) change along with the output P1 (MW) of first module.The value that minimizes the output P1 of fuel cost C can use formula (8) to determine.
How Fig. 2 A illustrates fuel cost along with the output P1 of first module and the rate of change of always exporting T.The effective range of output P1 need meet following condition.
The effective range of<P1 〉
The effective range of output P1 should be scope { minimum of the P1 〉=correlation unit (output) } and scope { (maximum of P1≤correlation unit is exported) }, and in the scope { (P1≤always export T) } less one.
As mentioned above, according to embodiment 1,, can calculate the load allocating that makes between the minimized unit of fuel cost for the specified total output of distribution substation because the specification of equipment of each unit (two unit) is transfused to.
Below, embodiment of the present invention will be described 2.Except data input device can be handled three or more unit, the configuration of the optimal load allocating system of embodiment 2 was identical with embodiment 1, therefore, and with the description of omitting to its configuration.
Next, will the operation of this optimal load allocating system be described.Fig. 2 B illustrates exemplary optimum load allocating related in the operation according to embodiment 2 and calculates.Except the quantity of unit, the I/O data item is identical with computational methods with embodiment 1.
In embodiment 2, suppose the optimal load allocating between three unit (first module, Unit second and Unit the 3rd) is calculated.Under the situation of three or more unit, those unit are grouped into two dummy units.In embodiment 2, Unit first and second are grouped into virtual N unit.Preferably nominal load and the approaching as far as possible unit of fuel use amount are grouped in together.
For the computing formula in the Application Example 1, the gross efficiency of virtual N unit must be determined by the formula among the embodiment 1 (8).According to the formula among the embodiment 1 (1), can be by determining efficient divided by heat input with thermal output.
The output of supposing first maker is P1 (MW), and the output of second maker is P2 (MW), then can determine the thermal output of virtual N unit according to following formula.
The thermal output of virtual N unit=(P1+P2) * 860 * 1000 (kcal)
Next, the heat input of virtual N unit will be determined.Because described heat input is the amount of input heat, therefore described hot input can use (kg) to determine by fuel value (kcal/kg) and fuel.
The fuel value of supposing first module is Q1 (kcal/kg), the fuel value of Unit second is Q2 (kcal/kg), it is G1 (kg) that the fuel of first module uses, and it is G2 (kg) that the fuel of Unit second uses, and then can determine the heat input of virtual N unit according to following formula.
The heat input of virtual N unit=(Q1 * G1)+(Q2 * G2) (kcal)
Therefore, can determine the efficient μ of virtual N unit according to following formula.
[formula 6]
By the formula among the embodiment 1 (8), can determine the power output of Unit the 3rd and virtual N unit, this power output minimizes the cost of electricity-generating of virtual N unit and Unit the 3rd.
Next, virtual N unit is reduced to first module and Unit second, and determines the optimal load allocating curve of first module and Unit second by the calculating described in the execution embodiment 1.
As mentioned above, according to embodiment 2,, can operate generating equipment with the fuel cost of minimum by the application of embodiment 1 although three or more unit are arranged.
Below, with the optimal load allocating system of describing according to the embodiment of the invention 3.The configuration of the optimal load allocating system of embodiment 3 is identical with embodiment's 1, therefore, and with the description of omitting to its configuration.
Next, will the operation of this optimal load allocating system be described.Optimal load allocating mode display unit 5 among the embodiment 1 shows following curve, and described curve is based on being stored in the optimal load allocating dateout that data in the optimal load allocating input file 2 and optimal load allocating calculation element 3 calculate.
<curve of output 〉
(1) the transmitting terminal efficiency characteristic curve of each unit and fuel cost curve (as shown in Figure 3A)
(2) distribute to the curve of the optimal load of each unit with respect to total output, and the fuel cost curve (shown in Fig. 3 B) of total output
(3) the conventional load curve (shown in Fig. 3 C) that distributes the fuel cost curve of (even load distributions) and be used for conventional load distribution and optimum allocation are compared
The transmitting terminal efficiency characteristic curve of each unit shown in Fig. 3 A is based on through-put power (MW) and through-put power is drawn via the efficiency of transmission (%) of data input device 1 input.
Similarly, the fuel cost curve shown in Fig. 3 A (unit/kW) can (determine by every calorie of price according to the formula among the embodiment 1 (4) by unit/kcal) and efficient (%).Thereby, optimal load allocating calculation element 3 by the efficient (%) by data input device 1 input and every calorie of price (unit/kcal) come the computing fuel cost (unit/kW), and calculate fuel cost be stored in the optimal load allocating output file 4.Based on the data of being stored, show the fuel cost curve of each unit.
Fig. 3 B illustrates the load that optimally the is assigned to unit separately curve with respect to total output.Can be according to the formula among the embodiment 1 (8), determine to minimize and realize one output fuel cost that described total output is required, in two unit.The output of other unit can be determined by the output that deducts a unit from total output.By this way, can draw the curve of output of two unit with respect to total output.
Similarly, the fuel cost curve of the shown total output of Fig. 3 B is the mean value figure of the fuel cost of the unit that calculates according to the formula among the embodiment 1 (4).
The shown curve of Fig. 3 C comprises the fuel cost curve of traditional impartial batch operation and the fuel cost curve of total output that the optimum shown in Fig. 3 B is operated, and can compare fuel cost thereby they show on same screen.
As mentioned above, according to embodiment 3, the curve that is assigned to the fuel cost that the curve of output and being used for of the optimal load of each unit compares with traditional operation is shown that visually therefore, the operator of generating equipment can recognize cost more.
Below, embodiment of the present invention will be described 4.The configuration structure of the optimal load allocating system of embodiment 4 is identical with embodiment's 1, therefore, and with the description of omitting to this configuration.
Next, the operation of optimal load allocating system will be described with reference to figure 4A.Following description, the form shown in Fig. 4 A will be divided on four following zones and the scheduling of the optimal load allocating in embodiment 1 display unit 6 and show.
(1) zone of total output of input expectation
(2) zone of total output of demonstration expectation
(3) be presented at the zone of the operation scheduling of each unit after the optimal load allocating
(4) be presented at the zone of the total output after the optimal load allocating
This four zones below will be described.
(1) zone of total output of input expectation is to import in one day the zone of desired total output valve in each time period by the data input device among the embodiment 11.For example, total output 450MW of input 0:00, total output 510MW of 1:15 and total output 460MW of 4:00.
After data are transfused to, optimal load allocating calculation element 3 among the embodiment 1 is carried out and is calculated, and in zone (2) the display result value of the total output that is used for showing expectation, zone (3) is used to show the total output after the operation scheduling of each unit after the optimal load allocating and zone (4) are used to show optimal load allocating.
(2), the overall transmission power output scheduling curve of the expectation shown in Fig. 4 B is shown based on the shown value in zone in the total output that is used for showing expectation.In Fig. 4 B, figure is similar step-like, because the output of last expectation was held before the expected time of being close to the output that changes expectation.
(3) zone of the operation scheduling of each unit after being used for showing optimal load allocating, output valve and the time in one day after calculating optimal load allocating by the optimal load allocating calculation element among the embodiment 13 are shown.
Based on these data, the through-put power output scheduling curve of each unit shown in Fig. 4 C is shown.In physical device operation, need time of certain-length to realize the output expected, therefore, this figure does not have the stepped form shown in Fig. 4 B.Therefore, use load variations rate by 1 input of the data input device among the embodiment 1 (%/minute) to adjust to increase or time of minimizing load.
Particularly, under the situation that increases load, load begins little by little to be increased before the time of expectation.Calculate the time that begins to increase load based on load change rate, thereby realize the output of expectation in the time of expectation.Under the situation that reduces load, after the time of expectation, begin to reduce load based on the load variations rate.
The time of finishing the load minimizing that begins to increase the time of load and calculate thus is also shown in the zone (3), and this zone (3) are used for showing the operation scheduling of each unit after optimal load allocating.Fig. 4 E illustrates the specific examples of the curve of having considered the load variations rate and having drawn.
If be provided with big load variations at short notice,, then show the indication of impossible operation to such an extent as to its process based on the load variations rate can't be handled too slowly.Fig. 4 F is illustrated in the specific examples (dispatch list) under the situation that impossible desired value is set up, and Fig. 4 G is illustrated in specific examples (curve) under the situation that impossible desired value is set up.
(4) after optimal load allocating, show total zone of exporting, demonstration is according to total output of the time of the load variations of each shown in zone (3) unit, and zone (3) is used for by show the optimal load allocating operation scheduling of each unit afterwards with the mode ordering time in age.Fig. 4 D illustrates the output scheduling curve based on the through-put power of the entire equipment of described data.
As mentioned above, according to embodiment 4, the operation scheduling table of each unit after optimal load allocating and the operation scheduling curve of each unit can be shown, and therefore, can help the operator to adjust output to realize optimum operation.
In addition, begin to increase the time of load and finish the time that load reduces owing to calculate, so can be provided in very important power supply guarantee in the power sale.In addition,, also can show the indication of impossible operation, therefore, can avoid the faulty operation that causes by misdata even imported the inconsistent data that cause in the operation of equipment.
Next, embodiment of the present invention will be described 5.The configuration of the optimal load allocating system of embodiment 5 is identical with embodiment's 1, therefore, omits the description to this configuration.
Below, will be described with reference to Figure 5 the operation of optimal load allocating system.Based on the running time of the auxiliary machinery by data input device input and the through-put power of use (in use of) auxiliary machinery among the embodiment 1, the optimal load allocating calculation element among the embodiment 1 is carried out optimal load allocating and is calculated under the startup of considering auxiliary machinery and situation about stopping.
Particularly, when calculating the optimal load allocating that minimizes fuel cost, the auxiliary machinery running time of input before if resulting auxiliary machinery is equal to or less than running time, and the transmission of power of the use auxiliary machinery of input before the through-put power of resulting use auxiliary machinery is equal to or less than, then can carry out reschedule, start auxiliary machinery and also do not relate to the scheduling that stops auxiliary machinery so that automatically be transformed into neither to relate to from the scheduling that minimizes fuel cost.
If be that unit weighs scheduling optimal load allocating causes the startup of the auxiliary machinery in another unit and stops, then stop reschedule, and adopt and pay the utmost attention to the scheduling that fuel cost reduces the optimal load allocating of this unit.
As mentioned above, according to embodiment 5, except minimizing the optimal load allocating of fuel cost, it also is possible minimizing the startup of auxiliary machinery and the scheduling of stop frequency.Therefore, except the reduction of fuel cost, the maintenance cost of auxiliary machinery also can be lowered.
Below embodiment of the present invention will be described 6.The configuration of the optimal load allocating system of embodiment 6 is identical with embodiment's 1, therefore, and with the description of omitting to this configuration.
Next, the operation of optimal load allocating system will be described with reference to Figure 6.Based on data by 1 input of the data input device among the embodiment 1, optimal load allocating calculation element 3 is calculated as follows the fuel cost under the situation: by optimally distributing load to operate fuel cost under the situation of described equipment, in the startup by having considered auxiliary machinery with stop and optimally distributing load to operate fuel cost under the situation of described equipment, and the fuel cost under the situation of operating described equipment by traditional equalization distribution load, and its result is stored in the optimal load allocating output file 4.
Next, optimal load allocating scheduling display unit 6 show (each unit) each operator scheme that comes from the fuel cost that is stored in each pattern in the optimal load allocating output file 4 every day fuel cost and every day fuel price.
For relatively, also show below content: by optimally distribute load operate under the situation of described equipment cost and in the startup by having considered auxiliary machinery with stop and optimally distributing load to operate difference between the cost under the situation of described equipment; And by optimally distributing load to operate the cost under the situation of described equipment and distributing load to operate difference between the cost under the situation of described equipment by traditional equalization.Every day, cost and annual cost can be shown to be used for comparison.
As mentioned above, according to embodiment 6, can the fuel cost of various modes be carried out than hinge.Therefore, can make the operator recognize the cost of cost and help administrator administers power sale more.
Claims (9)
1, a kind of optimal load allocating system, it is used for managing the optimal load allocating of total output of the generating equipment that is composed of multiple units in described a plurality of unit, comprising:
Data input device, it is used to import the specification of equipment of each required unit of optimal load allocating;
The optimal load allocating input file, its storage is via the data of described data input device input;
The optimal load allocating calculation element, it is carried out optimal load allocating and calculates based on the data that are stored in the described optimal load allocating input file;
The optimal load allocating output file, it is stored by the performed described result calculated of described optimal load allocating calculation element;
The optimal load allocating mode display unit, it shows below content: the transmitting terminal characteristic curve of each unit; The fuel cost curve of each unit; Optimally be assigned to the curve of the load of each unit with respect to described total output; The fuel cost curve of described total output; And be used for comparison based on the described optimal load allocating of the data that are stored in described optimal load allocating output file and described optimal load allocating input file and the fuel cost curve of conventional load distribution; And
Optimal load allocating scheduling display unit, it shows electric power transfer time scheduling table, electric power transfer time scheduling curve and fuel cost comparative table.
2, optimal load allocating system according to claim 1, it further comprises the device of the optimal load allocating calculating that can carry out three or more unit in the following way: with three or more unit packet is two dummy units, and will be used for optimal load allocating computing application to two dummy unit of two unit.
3, optimal load allocating system according to claim 1, wherein said optimal load allocating mode display unit visually show the load that is assigned to each unit and the total fuel cost that calculates with respect to described total output.
4, optimal load allocating system according to claim 1, wherein based on the through-put power output valve of the expectation of each time period of being imported, carry out described optimal load allocating and calculate, and show the operation scheduling curve and the operation scheduling table of the optimal load allocating between the description unit.
5, optimal load allocating system according to claim 4, wherein when will display operation during scheduling, operation scheduling is designed to minimize the startup of auxiliary machinery and the number of times that stops based on following content: the through-put power under the situation that auxiliary machinery changes, and the auxiliary machinery operating time of the minimum of importing via described data input device.
6, optimal load allocating system according to claim 5, wherein, under the situation of generation above the big load variations in the short time of the disposal ability of described system, calculating operation is inconsistent and show this inconsistent state visually, in described operation is inconsistent, before reducing fully, have to increase load in load.
7, optimal load allocating system according to claim 1, its total fuel cost relatively between three kinds of situations wherein, described three kinds of situations comprise: load between the described unit situation of being distributed by (equably) traditionally; Startup by considering auxiliary machinery and stop and between described unit, distributing the situation of load; And the situation of optimally distributing load by paying the utmost attention to the cost reduction.
8, optimal load allocating system according to claim 4, wherein Qi Wang total output valve (time and output) is imported in advance, load variations rate according to each unit, beginning increases load gradually before the time of expectation, thereby under the situation that increases load, realize the output of expectation in the time of expectation, after the time of expectation, begin to reduce load, and the realization time of the load of calculation expectation under the situation that reduces load, and optimal load allocating scheduling display unit shows this result.
9, a kind of optimal load allocating method, it is used for managing the optimal load allocating of total output of the generating equipment that is composed of multiple units in described a plurality of unit, comprising:
The specification of equipment of each unit that the input optimal load allocating is required and storage input data;
Carry out optimal load allocating based on described data and calculate and store this result calculated;
Show below content: the transmitting terminal characteristic curve of each in described a plurality of unit; The fuel cost curve of each in described a plurality of unit; Optimally be assigned to each load in described a plurality of unit with respect to the curve of described total output; The fuel cost curve of described total output; And be used for comparison based on the described optimal load allocating of described data and described result calculated and the fuel cost curve of conventional load distribution; And
Show electric power transfer time scheduling table, electric power transfer time scheduling curve and fuel cost comparative table.
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Cited By (1)
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US9683503B2 (en) | 2015-08-17 | 2017-06-20 | Caterpillar Inc. | Managing load sharing among multiple engines |
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US9683503B2 (en) | 2015-08-17 | 2017-06-20 | Caterpillar Inc. | Managing load sharing among multiple engines |
DE112016003239T5 (en) | 2015-08-17 | 2018-05-09 | Caterpillar Inc. | CONTROL OF THE LOADING BETWEEN SEVERAL ENGINES |
CN108290626A (en) * | 2015-08-17 | 2018-07-17 | 卡特彼勒公司 | Manage the load distribution between multiple engines |
CN108290626B (en) * | 2015-08-17 | 2020-03-10 | 卡特彼勒公司 | Managing load distribution among multiple engines |
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