METHOD, COMPUTER PROGRAM, SYSTEM AND INSTALLATION FOR OPTIMIZING THE OPERATION OF AN ELECTRICAL CURRENT TRANSMISSION NETWORK

MA44867AActive Publication Date: 2019-03-13RTE RESEAU DE TRANSPORT DELECTRICITE
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Patent Information

Application Number
MA44867
Authority / Receiving Office
MA · MA
Patent Type
Applications
Current Assignee / Owner
Priority Date
2017-05-02
Filing Date
2017-05-02
Publication Date
2019-03-13
Estimated Expiration
2037-05-02

AI Technical Summary

Technical Problem

Electric current transmission networks face sporadic congestion risks, especially when powered by renewable energy sources, leading to potential damage, disconnections, and service outages, with existing solutions either costly or impactful on local populations.

Method used

The method utilizes distributed energy storage units to simulate higher transmission capacity by rebalancing energy flows, creating virtual transmission lines that can operate transparently and without altering supply-demand balance, thereby alleviating congestion without the need for new infrastructure.

Benefits of technology

This approach effectively increases temporary network capacity during high production or demand without impacting the balance of supply and demand, reducing the risk of congestion and minimizing environmental impact, while avoiding the costs and public resistance associated with building new power lines.

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Description

[0001] The present invention relates to a method for optimizing the operation of an electric current transmission network. It also relates to a corresponding system and an optimized electric current transmission installation implementing such a method.

[0002] It relates more specifically to an optimization method applicable to the management of a network comprising at least one electrical line, a plurality of energy storage units connected to a plurality of ends of said at least one electrical line and controllers for converting stored energy into electrical current or vice versa between each storage unit and the end(s) of the line(s) to which it is connected, this method comprising the following steps: maintaining up-to-date information in memory on the filling of each of the storage units provided by the conversion controllers, controlling the conversion controllers, by sending commands to store or unstore energy in or from the storage units.

[0003] Such a process is generally implemented to ensure at all times a certain balance between supply and demand in the production and consumption of electric current.

[0004] In particular, when the network is supplied with electricity by production sites using renewable energy sources such as wind farms or solar panels, which are by definition highly dependent on climatic conditions, storage units can be provided on these production sites. A temporary surplus of electrical energy obtained by favorable climatic conditions can thus be stored locally if the demand for electrical energy is not up to par. Similarly, a temporary lack of electrical energy produced due to unfavorable climatic conditions can be compensated on site by discharging the storage unit(s) in the event of demand exceeding production. In summary, the storage units then serve to compensate for production fluctuations based on consumption constraints. Such teaching is for example detailed in patent applications US 2014 / 0163754 A1 and WO 2014 / 072278 A1.

[0005] On the side of the loads consuming electrical current, storage units of uninterruptible power supply devices (UPS) can also be provided to compensate for certain untimely variations in the supply of electrical current by the electrical current transmission network. The optimization method then aims to provide a stable alternating current without cuts or micro-cuts, whatever occurs on the network. Such teaching is for example detailed in the patent application CA 2 869 910 A1.

[0006] Unfortunately, these methods are not designed to address the sporadic risks of network congestion. These risks are increased when the network is powered by renewable energy production sites and supplies consumption sites such as electric vehicle charging stations. In particular, in the case of an electrical power transmission network that tends to operate more and more often at the limit of its capacity, in particular because it is dimensioned as narrowly as possible to be operated at its maximum capacity, this can lead to damage to power lines, untimely disconnections, and service outages.

[0007] Generally, no other solution is considered than building new power lines or reinforcing existing lines to create new transmission capacity. In addition to the associated costs, the impact on the areas crossed is often poorly accepted by the local population when it comes to high-voltage power lines.

[0008] To a lesser extent, it is possible to at least partially resolve congestion problems: by redirecting flows: but this assumes that alternative, non-overloaded routes are available in the network and the gains are limited, or by increasing the efficiency or yield of existing lines, for example by integrating reactive power generating elements whose deficit limits the capacity to transmit active power, i.e. the power that is actually useful, or for example by developing dynamic measurements of the temperature of the lines to operate them as close as possible to their physical limits: but the gains are then really limited.

[0009] It may therefore be desirable to design a process for optimizing the operation of an electrical current transmission network, in particular capable of dealing with sporadic risks of congestion, at lower cost and with less impact, while ensuring a real increase in temporary capacity of the network during high production or demand for electrical current.

[0010] The documents "dena Deutsche Energie-Agentur GmbH: "Results paper. The contribution of pumped storage power plants to grid stability and security of supply - the growing importance of pumped storage power plants for the energy transition.", July 16, 2015" and "F. Merten, C. Krüger: "Synergy effects between gas and electricity grids for the energy transition", April 2015" divulguent des procédés similaires.

[0011] It is not proposed to proceed with the optimization of the functioning of the electrical transmission system according to the revendication 1.

[0012] Thus, thanks to such a process, it is possible to exploit the storage capacities distributed in the network to simulate, at a given moment of high supply or demand for electric current, a transmission of electric current between sets E1 and E2 greater than what it actually is. The requested storage units can then be rebalanced when the supply or demand is lower. In other words, the storage units are used to avoid or absorb temporary congestions in the network without having an impact on the supply / demand balance for electric current and in a completely transparent manner in the transmitted flows. The joint storage and destocking of the same quantity Q of electric current makes it possible to induce flows in the opposite direction of the expected or observed congestions to compensate for them. Virtual lines are thus temporarily created, their length being able to be as long as desired.There are in fact no operational constraints on the distance separating the E1 and E2 sets. Compared to the solution of building or reinforcing existing lines, the impact on the areas crossed is almost zero for comparable efficiency.

[0013] Optionally, the storage and destocking commands addressed during the activation of the virtual transmission of the quantity Q of electric current are executed by the conversion controllers concerned for a total zero energy balance of the storage units of the sets S1 and S2, apart from the energy efficiency losses.

[0014] According to the invention, a reference filling is predetermined for each of the storage units, the method further comprising, following the step of activating the virtual transmission, a reconstitution step according to which the conversion controllers of the storage units requested during the virtual transmission control their storage or de-storage of energy in order to reach their reference filling.

[0015] Optionally also, the reconstitution step is executed in such a way as to never request an exceeding of the maximum electric current transmission capacity of said at least one electric line.

[0016] Optionally also, each power line has a maximum capacity for transmitting electric current and the virtual transmission of the quantity Q of electric current is activated when at least one power line located between the sets E1 and E2 is requested to temporarily transmit a quantity of electric current exceeding its maximum capacity by a quantity greater than or equal to the quantity Q.

[0017] Also optionally: a main direction of congestion of at least one power line in the network is determined, and the selections of the first and second sets S1, S2 are made to orient the virtual transmission in this main direction of congestion.

[0018] There is also provided a system for optimizing the operation of an electric current transmission network according to claim 6.

[0019] An optimized electric current transmission installation is also proposed, comprising: an electric current transmission network comprising: at least one electric line, a plurality of energy storage units connected to a plurality of ends of said at least one electric line, and controllers for converting stored energy into electric current or vice versa between each storage unit and the end(s) of the line(s) to which it is connected, an optimization system according to the invention, and a telecommunications network for exchanging filling information and storage / destocking commands between the control unit of the optimization system and the conversion controllers of the electric current transmission network.

[0020] Optionally, the storage units can be placed inside electrical substations connecting power lines of the electric current transmission network.

[0021] The invention will be better understood with the aid of the following description, given solely by way of example and with reference to the appended drawings in which: there figure 1 schematically represents the general structure of an optimized electric current transmission installation, according to one embodiment of the invention, the figure 2 illustrates an example of the topology of an electrical current transmission network of the installation of the figure 1 , THE figures 3A et 3B illustrate virtual transmission and reconstruction scenarios, executed on an electric line in accordance with a method for optimizing the operation of an electric current transmission network according to the invention, the figure 4 illustrates the successive steps of a method for optimizing the operation of an electric current transmission network, according to a first embodiment of the invention allowing the execution of the scenarios of the figures 3A et 3B , THE figures 5A et 5B illustrate virtual transmission and reconstruction scenarios, executed on portions of the electrical network in accordance with a method for optimizing the operation of an electrical current transmission network according to the invention, the figure 6 illustrates the successive steps of a method for optimizing the operation of an electric current transmission network, according to a second embodiment of the invention allowing the execution of the scenarios of the figures 5A et 5B , THE figures 7A et 7B illustrate two other virtual transmission scenarios, which can be executed on a portion of the electrical network in accordance with the optimization method of the figure 6 , there figure 8 illustrates a scenario evolving over time of virtual transmissions and any reconstructions, executed on a portion of the electrical network in accordance with a method for optimizing the operation of an electrical current transmission network according to the invention, and the figure 9 illustrates the successive steps of a method for optimizing the operation of an electric current transmission network, according to a third embodiment of the invention allowing the execution of the scenario of the figure 8 .

[0022] The installation illustrated schematically on the figure 1 comprises a network 10 for transmitting electric current, a system 12 for optimizing the operation of the network 10 and a telecommunications network 14 for exchanging data between the optimization system 12 and certain elements of the network 10.

[0023] The network 10 comprises several electrical substations forming some of its nodes. Each electrical substation is electrically connected to at least one end of a power line, each line itself being a high, medium or low voltage electrical current transmission or distribution line. In particular, the high voltage lines of the network 10 extend from one electrical substation to another.

[0024] In this particular non-limiting example, the network 10 comprises four electrical substations 16, 18, 20 and 22, each being defined by the International Electrotechnical Commission IEC as a "part of an electrical network, located in the same place, mainly comprising the ends of the transmission or distribution lines, electrical equipment, buildings, and, possibly, transformers." An electrical substation is therefore an element of the electrical current transmission network used both for the transmission and distribution of electricity. It allows the electrical voltage to be raised for its high-voltage transmission, and to be lowered for consumption by users (individuals or industrial). The relative arrangement of the four electrical substations 16, 18, 20 and 22 is arbitrary and does not correspond to the illustration in which they are aligned for convenience.They form the four vertices of any quadrilateral, each side of which can measure several kilometers or even tens or hundreds of kilometers. Network 10 is also, for example, a sub-network of any larger and more complete network, notably with national coverage.

[0025] In this particular non-limiting example also, the network 10 comprises an electrical line L1 extending between station 16 and station 18, an electrical line L2 extending between station 18 and station 20, an electrical line L3 extending between station 20 and station 22, an electrical line L4 extending between station 22 and station 16 and an electrical line L5 extending between station 18 and station 22.

[0026] The network 10 further comprises a plurality of energy storage units connected to at least part of the ends of the power lines L1, L2, L3, L4 and L5. These storage units comprise, for example, electrochemical batteries, supercapacitors, flywheels, pumped-storage hydraulic stations, or others. In the example of the figure 1 , they are distributed in the electrical substations. In this case, their impact on the territories crossed by the L1, L2, L3, L4 and L5 power lines is zero.

[0027] A storage unit 24 is thus installed inside the electrical substation 16. It is connected to the ends of lines L1 and L4 which arrive at this electrical substation. A conventional conversion device 26 makes it possible to convert energy stored in the unit 24 into electric current intended to be transmitted by at least one of the electric lines L1 and L4. Conversely, it makes it possible to convert electric current transmitted by at least one of the electric lines L1 and L4 into energy to be stored in the unit 24.This conversion device 26 is itself controlled by a conversion controller 28 which interfaces with the optimization system 12: more precisely, the controller 28 is able to provide information on the filling of the storage unit 24 to the optimization system 12; it is furthermore able to control energy conversions in one direction or the other as a function of storage commands (for a conversion of electric current transmitted by at least one of the electric lines L1 and L4 into energy to be stored in the unit 24) or destocking commands (for a conversion of energy stored in the unit 24 into electric current to be transmitted by at least one of the electric lines L1 and L4) that it receives from the optimization system 12.

[0028] Similarly, a storage unit 30 is installed inside the electrical substation 18. It is connected to the ends of lines L1, L2 and L5 which arrive in this electrical substation. A conversion device 32 makes it possible to convert energy stored in the unit 30 into electric current intended to be transmitted by at least one of the electric lines L1, L2 and L5. Conversely, it makes it possible to convert electric current transmitted by at least one of the electric lines L1, L2 and L5 into energy to be stored in the unit 30. This conversion device 32 is itself controlled by a conversion controller 34 which interfaces with the optimization system 12: more precisely, the controller 34 is able to provide information on the filling of the storage unit 30 and to control energy conversions in one direction or the other according to storage or destocking commands which it receives from the optimization system 12.

[0029] Similarly, a storage unit 36 ​​is installed inside the electrical substation 20. It is connected to the ends of lines L2 and L3 which arrive in this electrical substation. A conversion device 38 makes it possible to convert energy stored in the unit 36 ​​into electric current intended to be transmitted by at least one of the electric lines L2 and L3. Conversely, it makes it possible to convert electric current transmitted by at least one of the electric lines L2 and L3 into energy to be stored in the unit 36. This conversion device 38 is itself controlled by a conversion controller 40 which interfaces with the optimization system 12: more precisely, the controller 40 is able to provide information on the filling of the storage unit 36 ​​and to control energy conversions in one direction or the other according to storage or destocking commands which it receives from the optimization system 12.

[0030] Similarly, a storage unit 42 is installed inside the electrical substation 22. It is connected to the ends of lines L3, L4 and L5 which arrive in this electrical substation. A conversion device 44 makes it possible to convert energy stored in the unit 42 into electric current intended to be transmitted by at least one of the electric lines L3, L4 and L5. Conversely, it makes it possible to convert electric current transmitted by at least one of the electric lines L3, L4 and L5 into energy to be stored in the unit 42. This conversion device 44 is itself controlled by a conversion controller 46 which interfaces with the optimization system 12: more precisely, the controller 46 is able to provide information on the filling of the storage unit 42 and to control energy conversions in one direction or the other according to storage or destocking commands which it receives from the optimization system 12.

[0031] The optimization system 12 is for example implemented in a computer device such as a conventional computer and then comprises at least one processing unit 48 associated in read / write mode with at least one memory 50 (for example a RAM memory) for the storage of data files and computer programs.

[0032] The processing unit 48 comprises an interface 52 for connection to the telecommunications network 14. It further comprises at least one computer 54, for example a microprocessor, capable of processing data provided by the interface 52 or stored in memory 50 and of transmitting commands to the network 10, in particular to the conversion controllers 28, 34, 40 and 46. In this, the computer 54 fulfills a control unit function.

[0033] The memory 50 is partitioned into a first area 56 for storing processing data and a second area 58 for storing computer programs. This partition is purely functional, chosen for a clear presentation of the optimization system 12, but does not necessarily reflect the actual organization of the memory 50.

[0034] The first storage area 56 thus notably includes the updated filling information for each of the storage units 24, 30, 36, 42 as provided regularly by each of the conversion controllers 28, 34, 40, 46 of each of the electrical substations 16, 18, 20, 22 to the optimization system 12.

[0035] The second storage area 58 functionally comprises one or more computer programs. Alternatively, the functions performed by this or these programs could be at least partly micro-programmed or micro-wired in dedicated integrated circuits. Thus, as a variant, the computer device implementing the processing unit 48 and its memory 50 could be replaced by an electronic device composed solely of digital circuits (without a computer program) for performing the same functions.

[0036] The computer program(s) of the second storage area 58 comprise(s) instruction lines for addressing commands for storing or de-storing energy in or from the storage units 24, 30, 36 and 42. More precisely and in accordance with the present invention, these instruction lines are defined so as to allow the control unit 54 to: selecting a first set S1 of at least one storage unit connected to a first set E1 of at least one line end, selecting a second set S2 of at least one storage unit connected to a second set E2 of at least one line end, based on the filling information kept up to date in memory 50, activating a virtual transmission of a quantity Q of electric current from the first set E1 to the second set E2 by jointly addressing to the conversion controllers concerned: at least one first command to store a quantity of energy, corresponding to the quantity Q of electric current, in the first set S1, and at least one second command to destock the same quantity of energy, corresponding to the quantity Q of electric current, from the second set S2.

[0037] The control unit 54 can further be programmed to activate such a virtual transmission of a quantity Q of electric current when at least one electric line located between the sets E1 and E2 is requested to temporarily transmit a quantity of electric current exceeding its maximum capacity by a quantity greater than or equal to the quantity Q, for example because of at least one electric current production site connected to the network 10 in a situation of temporary overproduction or because of at least one electric current consumption site connected to the network 10 in a situation of temporary overconsumption. An area or site in “overproduction” is an area or site having excess energy that exceeds the evacuation capacities of the electric lines that connect it to the rest of the network.An area or site in "overconsumption" is an area or site with an energy deficit that exceeds the power supply capacities of the power lines that connect it to the rest of the network. In other words, virtual transmission is activated in the event of temporary congestion in part of the network 10 and is carried out using a joint storage / destocking request from sets S1 and S2 of storage units.

[0038] The more precise operation of the control unit 54 programmed as indicated above will be detailed according to different possible scenarios with reference to the figures 3A , 3B à 9. It will be noted that all the information coming from the network 10 (including in particular the information on filling the storage units 24, 30, 36, 42) and all the storage / removal commands coming from the control unit 54 are exchanged between the control unit 54 of the optimization system 12 and the relevant elements of the electrical substations 16, 18, 20, 22 of the network 10 (in particular the conversion controllers 28, 34, 40, 46) via the telecommunications network 14.

[0039] Knowing further that the installation of the figure 1 is managed in a manner known per se by at least one remote monitoring site connected to each of the electrical substations 16, 18, 20, 22, the optimization system can be implemented in one of these remote sites. Alternatively, it could also be installed inside one of the electrical substations.

[0040] There figure 2 illustrates a non-limiting example of possible configuration and topology for the network 10. The electrical substation 16 is for example connected to an electricity production site using wind turbines while the electrical substation 22 is connected to an electricity production site using photovoltaic panels. These two sites are likely to generate temporary overproduction. The electrical substations 18 and 20 are connected to electricity consumption sites, for example urban areas. These areas are likely to generate temporary overconsumption. Of course, the network 10 is particularly simple and is produced as an example only to allow a rapid understanding of the invention. Generally speaking, an electric current transmission network, including its transport and / or distribution, is much more complex.In particular, it includes electrical substations which are not directly connected to a production site or a consumption site but to one or more other electrical substations.

[0041] THE figures 3A et 3B illustrate an optimization scenario for a single power line L of an electric current transmission network. This power line L receives electric current at a first end and supplies it at its second end. Its two ends are respectively connected to two storage units. It is exposed to intermittent congestions, proven or simulated in “N-1”, that is to say conditionally to a supposed failure of one of the structures of the network considered, and immediate or anticipated according to forecasts of changes in network demands in production or consumption. It has a maximum electric current transmission capacity noted P max .

[0042] On the figure 3A , the line L is confronted at a time TA with a request to transmit a quantity P max + Q of electric current thus exceeding its maximum capacity by the quantity Q. In accordance with the invention, the control unit 54 therefore activates a virtual transmission consisting of: consider that the set E1 consists of the end of line L upstream of the transmission and that the set S1 to be selected consists of the storage unit connected to E1, consider that the set E2 consists of the end of line L downstream of the transmission and that the set S2 to be selected consists of the storage unit connected to E2, verify that the storage unit S1 can store an additional quantity of energy corresponding to the quantity Q of electric current, verify that the storage unit S2 has a quantity of stored energy corresponding to a quantity of electric current greater than or equal to Q,then jointly and respectively send to the conversion controllers managing the two storage units S1 and S2 a first command to store the quantity of energy corresponding to the quantity Q of electric current in the storage unit S1 and a second command to de-storage the quantity of energy corresponding to the quantity Q of electric current from the storage unit S2.,

[0043] This activation ends with the joint execution of the storage and retrieval commands by the relevant conversion controllers. These commands are executed symmetrically and simultaneously for a total zero energy balance of the storage units S1 and S2, except for energy efficiency losses. These losses are preferably less than 10%.

[0044] Consequently, everything happens as if the quantity P max + Q of electric current were transmitted from the end E1 to the end E2 while only the quantity P max actually transits in the line L. Thus the real line L of capacity P max reinforced by the storage units S1 and S2, provides the same service as a line of capacity P max + Q in complete transparency for the distribution network. The storage units can be easily sized in energy capacities and powers to absorb all the temporary congestions that the line L is likely to face. However, for economic reasons linked to a comparison of storage investment costs and costs resulting from residual congestions, it may be chosen to size the storage units only to absorb part of the temporary congestions.

[0045] It should be noted that the length of the line L has no influence on the virtual transmission capacity linked to the presence and operation of the storage units, so that virtual transmissions over very long distances can be envisaged.

[0046] It should also be noted that a reference filling is predetermined for each of the storage units S1 and S2. If the congestion direction is equiprobable (which is not the case for figures 3A et 3B where the E1 end is always producing and the E2 end is always consuming), the reference state is the half-capacity filling of the two storage units. If the congestion always occurs in the same direction of transmission, then the reference state for the upstream storage unit S1 will be the lowest possible load level, and the reference state for the downstream storage unit S2 will be the highest possible load level. For intermediate situations, the reference state is defined as a monotonic statistical function interpolating the two previous cases. The configuration of this function is chosen so as to obtain the best performance of the storages in simulation. This configuration is within the reach of those skilled in the art.

[0047] The temporary virtual transmission of the figure 3A causes a storage imbalance compared to the reference state which should be corrected by taking advantage of periods of low transmission.

[0048] So, at a moment TB illustrated on the figure 3B where the demand for electric current transmission on line L is of value P less than P max - Q, a reconstitution of the reference state is carried out at the ends of line L. The conversion controllers of the storage units S1 and S2 requested during the previous virtual transmission control their storage or destocking of energy in order to reach their reference filling. In the example illustrated, everything happens as if the quantity P of electric current was transmitted from end E1 to end E2 while the quantity P + Q actually transits in line L to reconstitute the reference state of the storage units S1 and S2.

[0049] Of course, this reconstitution is carried out in such a way as to never request an excess of the maximum capacity P max of the line L. It can be carried out autonomously by the conversion controllers concerned or controlled by the control unit 54. It is only possible if the line L does not always operate at the limit of capacity.

[0050] To address this scenario in accordance with the figures 3A et 3B , the control unit 54 and possibly the conversion controllers of the installation can be programmed to execute in loops the successive steps of the process illustrated in the figure 4 .

[0051] During a step 100, the optimization system 12 receives various remote signaling or telemetry data from the network 10, more precisely from the electrical substations, or from a remote monitoring site. This data includes in particular the filling information of each of the storage units provided by the conversion controllers and any information on actual or simulated, imminent or future congestion. This allows in particular the control unit 54 to update the data of the first storage zone 56.

[0052] Step 100 is followed by a first test 102 during which the control unit 54 determines whether one of the lines of the network 10, denoted L, is in a situation of potential congestion.

[0053] If yes, test 102 is followed by a selection step 104: of a storage unit S1 connected to the end E1 of the line L located upstream of the potential congestion, and of a storage unit S2 connected to the end E2 of the line L located downstream of the potential congestion.

[0054] The method then moves on to a second test 106 during which the filling information of the storage units selected in step 104 is analyzed by the control unit 54 to determine whether the desired storage and destocking to absorb the potential congestion is feasible. In other words, are the margins of maneuver sufficient in the storage units S1 and S2 to achieve the virtual transmission of a quantity Q of electric current by the overloaded line L?

[0055] If yes, test 106 is followed by a step 108 of activating this virtual transmission from the E1 end to the E2 end by jointly addressing to the conversion controllers concerned: a first command to store a quantity of energy, corresponding to the quantity Q of electric current, in the storage unit S1, and a second command to release the same quantity of energy, corresponding to the quantity Q of electric current, from the storage unit S2.

[0056] Then, the commands are executed in parallel by the relevant conversion controllers in a step 110, and then the method returns to step 100.

[0057] If no congestion is detected in the test step 102, the method moves on to a third test 112 during which the control unit 54 determines whether a reconstitution of the reference state of at least part of the storage units of the network 10 is necessary, in particular following a virtual transmission carried out previously.

[0058] If yes, test 112 is followed by a step 114 during which the conversion controllers of the storage units concerned by this reconstitution command their storage or de-storage of energy in order to reach their reference filling, this being carried out within the limit of maximum electric current transmission capacity of the electric line(s) requested for the reconstitution. The reconstitution step 114 continues until the reference fillings are obtained or until reconstitution is no longer possible, for example because of a new congestion. It is followed by a return to step 100.

[0059] Finally, if a virtual transmission is not considered possible during test 106 or if a reconstruction is not detected as necessary during test 112, the method also returns to step 100.

[0060] THE figures 5A et 5B illustrate a scenario for optimizing portions of an electric power transmission network that may simultaneously involve several nearby and distant lines. This is a generalization of the scenario of figures 3A et 3B . A first zone Z1 is, for example, a producer of electric current and exposed to temporary overproduction. A second zone Z2 is, for example, a consumer of electric current and exposed to temporary overconsumption. An intermediate zone Z, through which the two zones Z1 and Z2 are connected, has its own connections to production and / or consumption sites and is assumed to be in balance. Power lines LL1 with a maximum overall capacity P 1,max connect the first zone Z1 to the intermediate zone Z. They are exposed to temporary congestion due to potential overproduction in the first zone Z1. Power lines LL2 with a maximum overall capacity P 2,max connect the second zone Z2 to the intermediate zone Z. They are exposed to temporary congestion due to potential overconsumption in the second zone Z2.As previously, these temporary congestions may be proven or simulated, immediate or anticipated. Zone Z1 comprises a first set S1 of storage units connected to a first set E1 of line ends (which may be either the line ends LL1 connected to the first zone Z1, or other line ends of the first zone Z1). Zone Z2 comprises a second set S2 of storage units connected to a second set E2 of line ends (which may be either the line ends LL2 connected to the second zone Z2, or other line ends of the second zone Z2).

[0061] On the figure 5A , the electric current transmission network is faced at a time TA with potential congestion: either because zone Z1 is in overproduction P 1 = P 1,max + Q, independently of the state of zone Z2, or because zone Z2 is in overconsumption P 2 = P 2,max + Q, independently of the state of zone Z1, or for the two previous reasons simultaneously, and in this case we will note Q the greater of the two congestions.

[0062] In accordance with the invention, the control unit 54 therefore activates a virtual transmission consisting of: select the set S1 of storage units from zone Z1, select the set S2 of storage units from zone Z2, check that the storage units from set S1 can globally store an additional quantity of energy corresponding to the desired quantity Q of electric current, check that the storage units from set S2 have globally a quantity of stored energy corresponding to a quantity of electric current greater than or equal to Q, then if only zone Z1 is in overproduction, check that the destocking necessary in set S2 for energy neutrality would not congest zone Z2, if only zone Z2 is in overconsumption, check that the storage necessary in set S1 for energy neutrality would not congest zone Z1,jointly and respectively address to the conversion controllers managing the two sets S1 and S2 of storage units at least a first command to store the quantity of energy corresponding to the quantity Q of electric current in the set S1 and at least a second command to de-storage the quantity of energy corresponding to the quantity Q of electric current from the set S2.,

[0063] This activation ends with the joint execution of storage and destocking orders by the relevant conversion controllers.

[0064] Consequently, everything happens as if the quantity P 1 of electric current were transmitted from zone Z1 to zone Z and the quantity P 2 from zone Z to zone Z2 while only the quantities P 1 - Q and P 2 - Q actually transit respectively in lines LL1 and LL2. The storage units of sets S1 and S2 can be easily sized in terms of energy capacity and power to absorb all or part (according to the aforementioned economic reasons) of the temporary congestions that lines LL1 and LL2 are likely to face. It will be noted that in the case where the production P 1 is less than Q, part of the production P of the intermediate zone Z can be directed towards set S1.

[0065] As before, reference fillings are advantageously predetermined for all storage units of sets S1 and S2. The general reference state is defined so as to obtain the best performance of the storages in simulation according to a priori statistical knowledge of the congestions. Such a configuration is again within the reach of those skilled in the art.

[0066] The temporary virtual transmission of the figure 5A causes a storage imbalance compared to the reference state which should be corrected by taking advantage of periods of low transmission.

[0067] So, at a moment TB illustrated on the figure 5B where the demands for electric current transmission on lines LL1 and LL2 are of values ​​P' 1 and P' 2 respectively lower than P 1,max - Q and P 2,max - Q, a reconstitution of the general reference state is carried out at the ends of sets E1 and E2. The conversion controllers of sets S1 and S2 of storage units requested during the previous virtual transmission control their storage or destocking of energy in order to reach the reference fillings. In the example illustrated, everything happens as if the quantities P' 1 and P' 2 of electric current were respectively transmitted from zone Z1 to zone Z and from zone Z to zone Z2 while the quantity P' 1 + Q actually passes through lines LL1 and the quantity P' 2 + Q through lines LL2 to reconstitute the reference state of the storage units of sets S1 and S2.

[0068] Of course, this reconstitution is carried out in such a way as to never request an exceeding of the maximum capacities P 1,max and P 2,max of the lines LL1 and LL2. It can be carried out autonomously by the conversion controllers concerned or controlled by the control unit 54. It is only possible if the lines LL1 and LL2 do not always operate at the capacity limit.

[0069] To address this scenario in accordance with the figures 5A et 5B , the control unit 54 and possibly the conversion controllers of the installation can be programmed to execute in loops the successive steps of the process illustrated in the figure 6 .

[0070] During a step 200, the optimization system 12 receives various remote signaling or telemetry data from the network 10, more precisely from the electrical substations, or from a remote monitoring site. This data includes in particular the filling information of each of the storage units provided by the conversion controllers and any information on actual or simulated, imminent or future congestion. This allows in particular the control unit 54 to update the data of the first storage zone 56.

[0071] Step 200 is followed by a first test 202 during which the control unit 54 determines whether at least one of the areas of the network 10 is affected by a potential congestion situation.

[0072] If so, test 202 is followed by a second test 204 during which the control unit 54 determines whether a virtual transit can improve the situation of the affected area without putting another area in a critical situation.

[0073] If yes, test 204 is followed by a selection step 206: of a set S1 of storage units connected to a set E1 of line ends located upstream of the potential congestion, and of a set S2 of storage units connected to a set E2 of line ends located downstream of the potential congestion.

[0074] The method then moves on to a third test 208 during which the filling information of the storage units selected in step 206 is analyzed by the control unit 54 to determine whether the desired storage and destocking operations to absorb the potential congestion are feasible. In other words, are the margins for maneuver sufficient in the storage units of the sets S1 and S2 to achieve the virtual transmission of a quantity Q of electric current through the overloaded zone?

[0075] If yes, test 208 is followed by a step 210 of activating this virtual transmission from set E1 to set E2 by jointly addressing to the conversion controllers concerned: at least a first command for storing a quantity of energy, corresponding to the quantity Q of electric current, in the storage units of the set S1, and at least a second command for de-storing the same quantity of energy, corresponding to the quantity Q of electric current, from the storage units of the set S2.

[0076] Then, the commands are executed in parallel by the conversion controllers concerned during a step 212, then the method returns to step 200.

[0077] If no congestion is detected in the test step 202, the method moves on to a fourth test 214 during which the control unit 54 determines whether a reconstitution of the reference state of at least part of the storage units of the network 10 is necessary, in particular following a virtual transmission carried out previously.

[0078] If yes, test 214 is followed by a step 216 during which the conversion controllers of the storage units concerned by this reconstitution command their storage or de-storage of energy in order to reach their reference filling, this being carried out within the limit of maximum electric current transmission capacity of the electric lines requested for the reconstitution. The reconstitution step 216 continues until the reference fillings are obtained or until the reconstitution is no longer possible, for example because of a new congestion. It is followed by a return to step 200.

[0079] Finally, if a virtual transmission is not considered possible during test 208 or if a reconstruction is not detected as necessary during test 214, the method also returns to step 200.

[0080] THE figures 7A et 7B illustrate two other virtual transmission scenarios that can be handled by executing the method of the figure 6 . According to these scenarios, any electric current transmission network may be affected by variable intermittent congestions, in particular according to variable main transmission directions. This network is then provided with multiple storage units distributed in a large number of its nodes, in particular at the precise locations where congestions are most likely. Depending on the main direction of a congestion, which can be determined in step 202, the control unit 54 selects the best possible sets E1, S1 and E2, S2 in step 206 to orient the desired virtual transmission in the correct main direction illustrated by the dotted textured arrow, i.e. in the direction of the congestion. In the case of the figure 7A , for example, it is a virtual transmission from South to North that is desired. In the case of the figure 7B , for example, it is a virtual transmission from West to East that is desired. By executing in a loop the process of the figure 6 , it is also possible to modify the main direction of the virtual transmission at any time, on simple command, by simply changing the composition of the sets E1, S1 and E2, S2. It is thus possible to orient the virtual transmission like a weather vane, according to the needs of the network.

[0081] There figure 8 illustrates another scenario of virtual transmissions and reconstructions that can run at the same time and evolve over time independently of each other, without necessarily presenting main directions. It should also be noted that the sets E1 and E2 do not necessarily form connected geometric figures either because of the complexity of the distribution of congestion to be treated. This scenario thus represents a generalization of the previous scenarios. As previously, the storage units are multiplied at the most sensitive points of the network to deal with all or part (according to the aforementioned economic reasons) of the possible congestion situations. At a time T1, two virtual transmissions (represented by two textured dotted arrows) conforming to the scenario of the figure 3A are for example executed while a reconstruction (represented by a textured arrow in horizontal hatching) conforming to the scenario of the figure 3B is also executed. The situation then evolves so that at a time T2, two other virtual transmissions (represented by two textured dotted arrows) conforming to the scenario of the figure 3A are executed while two other reconstructions (represented by two textured arrows in horizontal hatching) conforming to the scenario of the figure 3B are also executed. It will be noted in particular that a storage unit requested for a virtual transmission at time T1 can be at least partially reconstituted by another virtual transmission at time T2. Similarly, at a given time, the same storage unit can be requested for virtual transmission and reconstitution, one even being able to incidentally at least partially compensate for the other.

[0082] A general optimization process such as that illustrated in figure 9 , running on top of at least one of the processes of the figures 4 And 6 , allows this more complex scenario to be handled. This general process can also be executed by the control unit 54 and possibly the conversion controllers of the installation.

[0083] During a first step 300, the optimization system 12 receives various remote signaling or telemetry data from the network 10, more precisely from the electrical substations, or from a remote monitoring site. This data includes in particular the filling information of each of the storage units provided by the conversion controllers and any information on actual or simulated, imminent or future congestion. This allows in particular the control unit 54 to update the data of the first storage zone 56. In this step can be included the steps 100 and 200 of the two methods previously described.

[0084] During a following step 302, a computer program implementing a constrained optimization method is executed, integrating all the virtual transmission and network reconstruction needs at a time T and the forecasts of the needs at future times. Such an optimization program is for example an adaptation of a known mathematical optimization program, of the “Optimal Power Flow” type, as implemented in the Eurostag software (registered trademark) distributed by the company TRACTEBEL Engineering. In this step 302, or even in the optimization program, steps 102, 104, 106, 108 and 112 or 202, 204, 206, 208, 210 and 214 of the two methods previously described may be included, but the optimization program may also be adapted in another way to include the general principles of the invention.

[0085] Finally, during a step 304, the instructions and commands established in the previous step are executed, including in particular the storage and destocking commands involved in the virtual transmission and reconstitution operations decided: for example steps 110 and 114 of the method of the figure 4 , or steps 212 and 216 of the method of the figure 6 The general optimization process then returns to step 300 at the end of the current period.

[0086] It is clear that an installation such as that described above, implementing one of the methods described above, makes it possible to sporadically and transparently increase the transmission capacities of the power lines of an electric current transmission network without needing to resize or reinforce it.

[0087] It will also be noted that the invention is not limited to the embodiments described above.

[0088] In particular, the previously described use of storage units for virtual transmissions of electric current with a total zero energy balance does not preclude a conventional additional use of net movement of storage or destocking of these units. These two storage or destocking processes can overlap, the first consisting of creating a virtual transmission carried out with a zero energy balance and the second a net storage or destocking. It is just necessary to provide for these two uses in order to size the storage units accordingly. In particular, the power capacity of the storage units must be consistent with the maximum conceivable virtual transmission power and their energy capacity must be consistent with the maximum conceivable duration of a virtual transmission.

Claims

1. A method for optimizing the functioning of an electrical current transmission network (10), the network comprising at least one electrical line (L1, L2, L3, L4, L5), a plurality of energy storage units (24, 30, 36, 42) connected to a plurality of ends of said at least one electrical line and controllers (28, 34, 40, 46) for converting stored energy into electric current and reciprocally between each storage unit and the line end(s) to which it is connected, the method for optimizing comprising the following steps: - maintaining up to date (100; 200; 300) in memory (56) of filling information of each one of the storage units (24, 30, 36, 42) supplied by the conversion controllers (28, 34, 40, 46), - commanding (108; 210; 302) of the conversion controllers (28, 34, 40, 46), by sending energy storage or release commands in or from the storage units (24, 30, 36, 42), the method further comprising the following steps: - selecting (104; 206) a first assembly S1 of at least one storage unit connected to a first assembly E1 of at least one line end, - selecting (104; 206) a second assembly S2 of at least one storage unit connected to a second assembly E2 of at least one line end, - based on (106; 208) the filling information maintained up to date in memory (56), activation (108; 210; 302) of a virtual transmission of quantity Q of electrical current from the first assembly E1 toward the second assembly E2 by jointly sending to the concerned conversion controllers: • at least one first command to store a quantity of energy, corresponding to the quantity Q of electrical current, in the first assembly S1, and • at least one second command to release the same quantity of energy, corresponding to the quantity Q of electrical current, from the second assembly S2, and - executing jointly (110; 212; 304) the storage and release commands by the concerned conversion controllers, characterized in that a reference filling is predetermined for each of the storage units (24, 30, 36, 42), the method further comprising, following the virtual transmission activation step (108; 210; 302), a step of reconstitution (114; 216; 302) according to which the conversion controllers of the storage units that have been solicited during the virtual transmission command their energy storage or release, so as to reach their reference filling, and wherein the reference filling is predetermined for each of the storage units (24, 25 30, 36, 42) at least according to the following rules: - if the congestion direction is equiprobable, then the reference filling is the half-capacity filling of each storage unit concerned, - if congestion always occurs in the same transmission direction, then the reference filling for each upstream storage unit will be the lowest possible load level, and the reference filling for each downstream storage unit will be the highest possible load level, and - for any intermediate situation, the reference filling is defined as a monotonic function interpolating the two previous rules.

2. The method for optimizing according to claim 1, wherein the storage and release commands sent during the activation (108; 210; 302) of the virtual transmission of the quantity Q of electrical current are executed by the concerned conversion controllers for a zero total energy balance of the storage units of the assemblies S1 and S2, to the nearest energy efficiency losses.

3. The method for optimizing according to claim 1, wherein the step of reconstitution (114; 216; 302) is executed in such a way as to never solicit an exceeding of the maximum electrical current transmission capacity of said at least one electrical line (L1, L2, L3, L4, L5).

4. The method for optimizing according to any of claims 1 to 3, wherein, each electrical line (L1, L2, L3, L4, L5) having a maximum electrical current transmission capacity, the virtual transmission of the quantity Q of electrical current is activated (108; 210; 302) when at least one electrical line located between the assemblies E1 and E2 is solicited (102; 202) to temporarily transmit a quantity of electrical current that exceeds its maximum capacity by a quantity greater than or equal to the quantity Q.

5. The method for optimizing according to any of claims 1 to 4, wherein: - a main direction of congestion of at least one electrical line in the network is determined (202), and - the selections (206) of the first and second assemblies S1, S2 are made so as to direct the virtual transmission in this main direction of congestion.

6. A system (12) for optimizing the functioning of an electrical current transmission network (10), the network comprising at least one electrical line (L1, L2, L3, L4, L5), a plurality of energy storage units (24, 30, 36, 42) connected to a plurality of ends of said at least one electrical line and controllers (28, 34, 40, 46) for converting stored energy into electrical current and reciprocally between each storage unit and the line end(s) to which it is connected, the system for optimizing (12) comprising: - a memory (56) maintaining up to date filling information on each one of the storage units (24, 30, 36, 42), - a command unit (54), with a read / write connection to the memory (56) and exchanging with the conversion controllers (28, 34, 40, 46), programmed (58) to send energy storage or release commands in or from the storage units (24, 30, 36, 42), wherein the command unit (54) is furthermore programmed (58) to: - select a first assembly S1 of at least one storage unit connected to a first assembly E1 of at least one line end, - select a second assembly S2 of at least one storage unit connected to a second assembly E2 of at least one line end, - based on the filling information maintained up to date in memory (56), activate a virtual transmission of quantity Q of electrical current from the first assembly E1 toward the second assembly E2 while jointly sending to the concerned conversion controllers: • at least one first command to store a quantity of energy, corresponding to the quantity Q of electrical current, in the first assembly S1, and • at least one second command to release the same quantity of energy, corresponding to the quantity Q of electrical current, from the second assembly S2, characterized in that the command unit (54) is furthermore programmed (58) to execute the following steps: a reference filling is predetermined for each of the storage units (24, 25 30, 36, 42), following the virtual transmission activation step (108; 210; 302), a step of reconstitution (114; 216; 302) according to which the conversion controllers of the storage units that have been solicited during the virtual transmission command their energy storage or release so as to reach their reference filling, the reference filling is predetermined for each of the storage units (24, 25 30, 36, 42) at least according to the following rules: - if the congestion direction is equiprobable, then the reference filling is the half-capacity filling of each storage unit concerned, - if congestion always occurs in the same transmission direction, then the reference filling for each upstream storage unit will be the lowest possible load level, and the reference filling for each downstream storage unit will be the highest possible load level, and - for any intermediate situation, the reference filling is defined as a monotonic function interpolating the two previous rules.

7. An equipment for optimized transmission of electrical current comprising: - an electrical current transmission network (10) comprising: • at least one electrical line (L1, L2, L3, L4, L5), • a plurality of energy storage units (24, 30, 36, 42) connected to a plurality of ends of said at least one electrical line, and • controllers (28, 34, 40, 46) for converting stored energy into electrical current or reciprocally between each storage unit and the line end(s) to which it is connected, - a system for optimizing (12) according to claim 6, and - a telecommunications network (14) for an exchange of the filling information and storage / release commands between the command unit (54) of the system for optimizing (12) and the conversion controllers (28, 34, 40, 46) of the electrical current transmission network (10).

8. The equipment according to claim 7, wherein the storage units (24, 30, 36, 42) are arranged inside electrical substations (16, 18, 20, 22) for connecting electrical lines (L1, L2, L3, L4, L5) of the electrical current transmission network (10).