Photovoltaic network power generating station system and operation method therefor

The solar network power plant system addresses power shortages by virtually integrating solar storage battery units for flexible discharge, optimizing power usage and preventing shutdowns through external management and control.

JP2025124611APending Publication Date: 2025-08-26SOLAR JAPAN CO LTD
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Patent Information

Application Number
JP2025020490
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-04-30
Filing Date
2025-02-12
Publication Date
2025-08-26

AI Technical Summary

Technical Problem

The increasing generation of excess electricity during the day under the national FIT system leads to power shortages at other times, necessitating the shutdown of solar power plants and resulting in economic losses and societal power shortages.

Method used

A solar network power plant system where solar storage battery units are virtually integrated through a communication network, allowing external management by a computer to control discharge output based on storage and demand information, enabling flexible power discharge to the grid without stopping generation.

Benefits of technology

Enables accurate and flexible discharge of stored electricity to the grid at any time and in any amount, optimizing power usage and preventing shutdowns, while allowing for efficient management and identification of performance issues in individual units.

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Abstract

To provide a photovoltaic network power generating station system and an operation method therefore, capable of more accurately and appropriately performing discharge output of power stored in a photovoltaic network power generating station configured to be virtually integrated to a power transmission network at any time with any electric energy.SOLUTION: A photovoltaic storage battery unit 10 is configured by comprising a power generation unit 20, a storage battery 31, power storage information acquisition means, and a communication controller 35 that can transmit power storage information to the outside and controls discharge output from the storage battery 31 using an instruction from an external management computer 70. As a photovoltaic network power generating station, a plurality of such photovoltaic storage battery units 10 are virtually integrated and are connected to the management computer 70 via the communication controller 35 and a communication network other than a network connected to an electric power company via a verification wattmeter 45 so as to be capable of being individually managed from the outside on the basis of the power storage information.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a solar network power plant system and an operation method thereof, in which a solar storage battery unit is provided at each of a plurality of solar power plants as a terminal unit where solar power generation and storage are performed and which is connected to a power transmission grid via a power conditioner, the solar storage battery unit including a power generation unit that generates power from sunlight, a storage battery that can automatically charge the power generated by the power generation unit, and a communication control device equipped so that the discharge output from the storage battery can be controlled by external instructions, and in which a plurality of the solar storage battery units are connected to an external management computer via a communication network by each of the communication control devices, thereby being virtually integrated as a solar network power plant and managed by the external management computer. [Background technology]

[0002] As shown in Figure 5, a conventional solar power plant 100 includes a power generation unit 20 in which multiple solar power generation panels 21 are connected in series, and a power conditioner 40 in which multiple power generation units 20 are connected in parallel, and is connected to an electric power company 50. That is, the basic configuration of the solar power plant 100 is that first, a plurality of solar power generation panels 21 are connected in series to form one power generation unit 20 circuit so that the voltage matches the voltage accepted by the power conditioner 40. Furthermore, a plurality of these power generation unit 20 circuits are connected in parallel to the power conditioner 40 to form one power conditioner 40 system. The power generation output of the solar power plant 100 is the sum of the outputs of the power conditioners 40 connected in parallel.

[0003] A specific example of a conventional solar power plant will be described. A typical solar power generation panel 21 generates DC power with a typical output of 300 W, a maximum output voltage of 40 V, a typical generation voltage of 30 V, and a typical generation current of 10 A. Seven solar power generation panels 21 are connected in series to form a power generation unit 20, which is connected to a power conditioner 40 with a maximum output voltage of 280 V, a typical generation voltage of 210 V, a typical generation current of 10 A, and a grid generation power of 2,100 W (2.1 kW). This basic grid configuration is generally standardized for both small and large solar power plants. The number of systems connected to the power conditioner 40 is adjusted according to the output of the power generation unit 20. For example, a 5 kW power conditioner 40 has three 2.1 kW solar power generation panel systems (power generation units 20) connected in parallel. For a 50 kW system, 30 systems are connected, and a 1,000 kW mega solar power plant has 600 systems connected. The power conditioner 40 has the characteristic of automatically outputting AC power in proportion to the DC input power from the solar power generation panel system.

[0004] Furthermore, as a solar power storage device primarily for home use, a solar power generation storage / discharge device has been disclosed that has a DC input terminal from a solar panel, a DC output terminal to a power conditioner (a device that converts DC power into commercial AC power), and a connection terminal for a signal line from a power sensor, and has a control panel that has a built-in circuit that stores power in the storage battery and controls the DC output to the power conditioner based on a signal from the power sensor, and is fixed to the exterior of the storage battery, and the storage battery connection terminal of the control panel is wired and integrated with the storage battery (see Patent Document 1).This makes it possible to provide a solar power generation storage / discharge device that can store surplus power from solar power generation and consume the stored power at home, thereby significantly reducing the household's electricity purchase costs.

[0005] Also, a solar battery charging unit network system has been disclosed that includes a plurality of solar battery charging units each equipped with a solar battery module installed in a building, a storage battery for storing the power generated by the solar battery module, and a charger for supplying charging power to an electric vehicle, and a management device configured to be able to communicate with the plurality of solar battery charging units via the Internet (see Patent Document 2). This makes it possible to popularize charging stations that use solar power generation and provide a solar battery charging unit network system that allows electric vehicles and the like to be charged while on the go. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Utility Model Registration No. 3223017 (Page 1) [Patent Document 2] Patent Publication No. 2021-97558 (Page 1) Summary of the Invention [Problem to be solved by the invention]

[0007] Under the new national FIT system (Feed-in Tariff Scheme for Renewable Energy) established in 2012, all solar-generated electricity is sold to electric power companies at the same time as it is generated. However, as this system has become more widespread, the amount of electricity generated has increased, resulting in excess electricity generated during the daytime, and a social problem of power shortages during times such as the evening and night. In response to this, solar power plants are currently required to be able to stop generating electricity during the daytime in order to prevent excess electricity, and power generation is stopped by installing power-stopping devices. As a result, power generation companies incur economic losses due to the loss of generated energy during power stoppages, and society as a whole is faced with the problem of power shortages outside of the time periods when excess electricity is generated during the daytime.

[0008] Therefore, an object of the present invention is to provide a solar network power plant system and an operation method thereof that can discharge electricity stored in a virtually integrated solar network power plant to a power grid at any time and in any amount without stopping solar power generation. [Means for solving the problem]

[0009] In order to achieve the above object, the present invention has the following configuration. According to one embodiment of the solar network power plant system of the present invention, in the solar network power plant system configured by a plurality of solar power plants connected by a power transmission network, each of the plurality of solar power plants includes a power generation unit that generates power from sunlight as a terminal unit where solar power generation and storage are performed and which is connected to the power transmission network via a power conditioner, a storage battery that charges the power generated by the power generation unit via a charging circuit and discharges it via a discharging circuit, a storage battery information acquisition means that is connected to the storage battery and acquires storage information, and a communication control device that receives instructions from an external management computer and controls the discharge circuit so as to be able to transmit the storage information to the outside and to control the discharge output from the storage battery, and a solar storage battery unit is configured by the above. A plurality of the solar storage battery units are virtually integrated as a solar network power plant, and are connected to the external management computer via the communication control device and a communication network, separately from a network that is connected to an electric power company via a calibration wattmeter, so as to be able to be individually managed from the outside based at least on the storage information.

[0010] Furthermore, according to one embodiment of the solar network power plant system of the present invention, the storage battery, the charging circuit, the discharging circuit, the storage information acquisition means, and the communication control device are integrated into a unit, thereby forming a storage battery unit connected between the power generation unit and the power conditioner. Furthermore, according to one embodiment of the solar network power plant system of the present invention, the power storage information acquired by the power storage information acquisition means can be characterized as information on the amount of stored power estimated by measuring the voltage of the storage battery.

[0011] The invention related to this application also includes the following features. According to one aspect of the solar network power plant system of the present invention, in the solar network power plant system configured by a plurality of solar power plants connected by a power transmission network, in each of the plurality of solar power plants, a solar storage battery unit is configured by including a power generation unit that generates power from sunlight, a storage battery that can automatically charge the power generated by the power generation unit, and a communication control device that is equipped so that the discharge output from the storage battery can be controlled by an external instruction, as a terminal unit where solar power generation and storage are performed and which is connected to the power transmission network via a power conditioner, and a plurality of the solar storage battery units are connected to an external management computer via a communication network by each of the communication control devices, separately from a network that is connected to an electric power company via a calibration wattmeter, and are virtually integrated as a solar network power plant, and the external management computer controls the discharge output of the storage battery. and an information network is provided to allow the external management computer to access identification information attached to the communication control device to identify each of the solar storage battery units, unique information linked to the identification information, which includes information on at least the installation location of each of the solar storage battery units, power storage information which is variable information linked to the identification information, which includes information on at least the amount of stored power, which includes information on the amount of power stored in each of the solar storage battery units, and power demand information which is variable information and is external information on power demand, and the external management computer creates a discharge output plan for each of the solar storage battery units based on the identification information, the unique information, the power storage information, and the power demand information, and controls the discharge output for each of the solar storage battery units so that the power stored in the solar network power plant can be discharged to a power grid at any time and with any amount of power.

[0012] Furthermore, according to one embodiment of the solar network power plant system of the present invention, the power storage information can be characterized by including information on the amount of stored power estimated by measuring the voltage of the storage battery. Furthermore, according to one embodiment of the solar network power plant system of the present invention, the information network is provided so that information on the discharge output of each solar storage battery unit, which information is information on the amount of output power that can be obtained by measuring the output voltage and output current of the storage battery over time, can be accessed by the external management computer.

[0013] Furthermore, according to one embodiment of a method for operating a solar network power plant system according to the present invention, there is provided a method for operating the solar network power plant system under control by the external management computer, which can include the steps of: ascertaining, by the external management computer, an amount of stored power based on power storage information from each of the solar storage battery units; ascertaining, by the external management computer, an amount of power demand predicted based on the power demand information; creating, by the external management computer, a discharge output plan for each of the solar storage battery units based on the identification information, the unique information, the power storage information, and the power demand information as a power supply plan for supplying power from the solar network power plant to the power grid; and performing discharge output for each of the solar storage battery units in accordance with an instruction from the external management computer based on the discharge output plan.

[0014] Furthermore, one embodiment of the method for operating a solar network power plant system according to the present invention can be characterized by including a step in which the external management computer compares information on an estimated amount of output power estimated from plan information on the discharge output planned for each of the solar storage battery units with information on the amount of output power discharged to a power transmission network by controlling the discharge output for each of the solar storage battery units, the information being obtainable by measuring the output voltage and output current of the battery over time. The information is then used to grasp the operating status of each of the solar storage battery units, and the plan and control related to the discharge output for each of the solar storage battery units are corrected by the external management computer. Furthermore, one embodiment of the method for operating a solar network power plant system according to the present invention can be characterized by including a step of determining the operating status of the solar power plant by using the external management computer to compare information on the amount of power supply output from the solar power plant to the power grid, which is determined by measuring with a calibration power meter provided for each of the solar power plants, with information on the estimated amount of power supply of the solar power plant, which is estimated by integrating information on the amount of output power from each of the solar storage battery units, and correcting plans and controls related to the discharge output of each of the solar storage battery units by the external management computer. [Effects of the Invention]

[0015] The solar network power plant system and its operating method of the present invention have the particularly advantageous effect of being able to discharge and output electricity stored in a virtually integrated solar network power plant to the power grid more accurately and appropriately at any time and in any amount of electricity without stopping solar power generation. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a configuration diagram illustrating an example of a solar network power plant system according to the present invention. [Figure 2] FIG. 10 is an explanatory diagram illustrating access to information relating to an example of operation of the solar network power plant system of the present invention. [Figure 3] FIG. 2 is a single-line diagram showing an example of the configuration of each solar power plant in the example of FIG. 1. [Figure 4] 2 is a single-line diagram showing an example of the configuration of each storage battery unit in the example of FIG. 1. FIG. [Figure 5] FIG. 1 is a single-line diagram showing an example of a conventional solar power plant. DETAILED DESCRIPTION OF THE INVENTION

[0017] Hereinafter, examples of a solar network power plant system and an operating method thereof according to the present invention will be described in detail with reference to the accompanying drawings (FIGS. 1 to 4).

[0018] In the solar network power plant system according to the present invention, as shown in Figures 1 to 4, each of a plurality of solar power plants 100 is provided with a solar storage battery unit 10, which is a terminal unit where solar power generation and storage are performed and which is connected to a power transmission grid 55 via a power conditioner 40, and which includes a power generation unit 20 that generates power from sunlight, a storage battery 31 (see Figure 4) that can automatically charge the power generated by the power generation unit 20, and a communication control device 35 (see Figure 4) that is equipped so that the discharge output from the storage battery 31 can be controlled by external instructions.

[0019] Furthermore, multiple solar battery units 10 are connected to an external management computer 70 via a communication network (e.g., the Internet 60) by their respective communication control devices 35, separate from the network connected to the electric power company via a test wattmeter, thereby virtually integrating them as a solar network power plant and forming a solar network power plant system that is managed by the external management computer 70.

[0020] Furthermore, in the solar network power plant system according to this embodiment, an information network is provided so that the identification information attached to the communication control device 35 to identify each solar storage battery unit 10, unique information linked to the identification information, which includes at least information relating to the installation location of each solar storage battery unit 10, power storage information which is variable information linked to the identification information, which includes at least information relating to the amount of stored power, and power demand information which is variable information and is external information relating to power demand, can be accessed by the arithmetic device of the external management computer 70, etc., for information processing.

[0021] In this embodiment, the external management computer 70 creates a discharge output plan for each of the solar storage battery units 10 based on the identification information, the unique information, the power storage information, and the power demand information so that the power stored in the solar network power plant can be discharged and output to the power grid 55 at any time and in any amount, thereby forming a solar network power plant system that controls the discharge output for each of the solar storage battery units 10. It goes without saying that the information processing according to the present invention can also be performed by utilizing cloud computing or distributed information processing (information processing by multiple servers).

[0022] This has the special advantageous effect of enabling the virtually integrated solar network power plant to be managed rationally, allowing the solar power plant 100 to be used without being shut down and without waste, and allowing the power stored in the solar network power plant to be discharged more accurately and appropriately to the power grid at any time and in any amount. Also, since each solar storage battery unit 10 is managed individually, it becomes possible to grasp any deterioration in power generation performance or storage battery performance or equipment malfunctions at the smallest unit, and problems can be identified and addressed without shutting down the entire solar power plant 100.

[0023] The identification information in this embodiment is an identification means such as an identification code that is assigned so that it can be managed by the external management computer 70, and the identification code can, for example, be an identification number consisting of numbers only, or it can of course be one that uses letters, symbols, etc.

[0024] Furthermore, the unique information in this embodiment is fixed information, and in addition to information about the installation location such as location information, it can include individual information about the solar power generation panel 21 (such as the form of the power generation device that constitutes the power generation unit 20) and the storage battery 31 that deteriorate over time.

[0025] In addition, the power storage information according to this embodiment can include information for grasping the fluctuating power storage situation for each solar battery unit 10, such as information on the amount of power storage estimated by measuring the voltage of the storage battery 31, and information on the amount of power storage predicted for each region (each solar power plant 100) depending on weather conditions.

[0026] Furthermore, the electricity demand information in this embodiment can include fluctuation information such as the market price of electricity other than the FIT system determined by JEPX (Japan Electric Power Exchange, General Incorporated Association) and demand forecasts that vary by region depending on weather conditions.

[0027] This information can be used, for example, to determine the priority order of the solar storage battery units 10 that are to be discharged, or to select or exclude solar storage battery units 10 that are to be discharged at specific times or in specific regions. For example, the operation of the solar network power plant system can be optimized by controlling the solar storage battery units 10 to be discharged preferentially from those closest to areas with high electricity demand, or by controlling the solar storage battery units 10 to be discharged preferentially from those with high stored power amounts.

[0028] In this embodiment, the information network can be provided so that information on the amount of output power, which can be obtained by measuring the output voltage and output current of the storage battery 31 over time as information on the discharge output of each solar storage battery unit 10, can be accessed by the external management computer 70. This makes it possible to properly grasp the operating status of the solar network power plant system, as will be described later, and to properly correct and optimize its operation.

[0029] Next, an embodiment of an operation method for the above-described solar network power plant system will be described with reference to Fig. 2. In this embodiment of the operation method, the solar network power plant system is operated under the control of an external management computer 70, and includes a step of determining the amount of stored power (step 1), a step of determining the amount of power demand (step 2), a step of creating a discharge output plan (step 3), a step of discharging the power (step 4), and a step of comparing the discharge outputs. The step of comparing the discharge outputs may include a step of comparing planned information on the amount of output power for each solar storage battery unit 10 with information on the amount of output power for each solar storage battery unit 10 (step 5), and a step of comparing information on the estimated amount of power supply of the solar power plant 100, which is calculated from the information on the amount of output power for each solar storage battery unit 10, with information on the amount of power supply measured by a calibration wattmeter 45 provided for each solar power plant 10 (step 6).

[0030] In the step of grasping the amount of stored power (step 1), the external management computer 70 grasps the amount of stored power from the power storage information from each solar storage battery unit 10. This makes it possible to grasp the overall amount of stored power in the solar network power plant, as well as the amount of stored power in each solar storage battery unit 10, which is the terminal unit where solar power generation and storage are performed, and therefore allows management to ensure the most efficient supply of power to the power grid 55. For example, grasping (monitoring) the amount of stored power can be performed by the external management computer 70 from data (voltage and current data, etc.) intermittently transmitted (sent) from the communication control device 35 at set time intervals.

[0031] In the step of grasping the amount of power demand (step 2), the amount of power demand predicted by power demand information from, for example, JEPX (Japan Electric Power Exchange), is grasped by the external management computer 70. According to this, for example, when the power demand is greater than the amount of stored power, it is possible to discharge output from all the solar storage battery units 10 so that all the amount of stored power in the entire solar network power plant is supplied to the power grid 55. On the other hand, when the power demand is less than the amount of stored power, it is possible to manage so that a priority for discharge output is determined for each solar storage battery unit 10, as described above, for example.

[0032] In the step of creating a discharge output plan (step 3), the external management computer 70 creates a discharge output plan for each solar storage battery unit 10 based on the identification information, the unique information, the power storage information, and the power demand information as a power supply plan for supplying power from the solar network power plant to the power grid 55. This makes it possible to create a more accurate and appropriate discharge output plan.

[0033] Then, in the step of discharging output (step 4), based on the discharge output plan, discharge output is performed for each solar storage battery unit 10 in response to instructions from the external management computer 70. This allows the power stored in the solar network power plant to be discharged to the power grid more accurately and appropriately at any time and in any amount of power.

[0034] 2, this embodiment can include a step (step 5) in which the external management computer 70 compares information on the estimated amount of output power estimated from plan information on the discharge output planned for each solar storage battery unit 10 with information on the amount of output power discharged to the power grid 55 by controlling the discharge output for each solar storage battery unit 10, which information can be obtained by measuring the output voltage and output current of the storage battery 31 over time. This information can be obtained by measuring the output voltage and output current of the storage battery 31 over time. This allows the external management computer 70 to understand the operating status of each solar storage battery unit 10 and correct the plan and control related to the discharge output for each solar storage battery unit 100. This allows feedback (step 7) of control to discharge the power stored in the solar network power plant to the power grid 55 at any time with any amount of power, thereby enabling more accurate and appropriate management of each solar power plant 100 and each solar storage battery unit 10.

[0035] 2, the present embodiment can include a step (step 6) in which the external management computer 70 compares information on the amount of power supply output from the photovoltaic power plant 100 to the power grid 55, which is obtained by measuring the amount of power supplied by the photovoltaic power plant 100 using a calibration wattmeter 45 provided for each photovoltaic power plant 100 and transmitting the information to the external management computer 70 via the network of the electric power company 50, with information on the estimated amount of power supply from the photovoltaic power plant, which is estimated by integrating information on the amount of power output from each photovoltaic storage battery unit 10, to understand the operating status of the photovoltaic power plant 100, and corrects plans and controls related to the discharge output of each photovoltaic storage battery unit by the external management computer. This also makes it possible to feed back control of discharging and outputting the power stored in the photovoltaic network power plant to the power grid 55 (step 7), thereby enabling more accurate and appropriate management of each photovoltaic power plant 100 and each photovoltaic storage battery unit 10.

[0036] 2, this embodiment can include a step (step 8) of storing the power generation data obtained by comparing the power generation power in step 5 or step 6. This power generation data is used as information for AI learning, and the information obtained by the AI ​​learning can be used to more appropriately control the operation of each solar battery unit 10, each solar power plant 100, or the solar network power plant as a whole.

[0037] In addition, in the solar power plant 100 of the embodiment shown in Fig. 3, a storage battery unit 30 (see Fig. 4) including a storage battery 31 and a communication control device 35 is connected between the power generation unit 20 and the power conditioner 40 for each power generation unit 20, thereby providing a solar storage battery unit 10 consisting of the power generation unit 20 and the storage battery unit 30. This storage battery unit 30 can be charged with power generated by the power generation unit 20, and can be managed by an external management computer 70 so that the stored power can be discharged to the power conditioner 40 as desired (see Fig. 2). Furthermore, this storage battery unit 30 only needs to be simply connected between the power generation unit 20 and the power conditioner 40, and the power to operate this storage battery unit 30 (such as the communication control device 35) can also be provided by the power from the power generation unit 20.

[0038] A specific configuration example of the solar power plant 100 will now be described with reference to Fig. 3. Seven 300W solar power generation panels 21 configure a power generation circuit (power generation units 20) with 2.1kW, DC voltage 280V, and DC current 7.5A. Three circuits of these power generation units 20 are connected in parallel to a power conditioner 40 to configure a 5kW power conditioning system. A storage battery unit 30 is connected to each of the power generation units 20 of these three circuits. In order to charge most of the power generated during the day, each storage battery unit 30 should be provided with a 10kWh storage battery 31 (see Fig. 4).

[0039] 4 includes a charging circuit 32, a storage battery 31 that is automatically charged by the charging circuit 32 with all of the power generated by the power generation unit 20, a discharge circuit 33 that discharges the power stored in the storage battery 31 to the power conditioner 40, and a communication control device 35 for remotely operating the discharge circuit 33. The storage battery 31 is connected to a voltmeter (not shown) that measures the voltage to determine the amount of stored power, and an ammeter (not shown) that measures the output current to calculate the amount of power together with the output voltage measured by the voltmeter, and can be connected to the communication control device 35 so that information on the voltage and output voltage related to the amount of stored power and information on the output current can be communicated to the external management computer 70.

[0040] That is, in the example form shown in Figure 4, the solar battery unit 10 is configured to include a power generation unit 20, a storage battery 31 that charges the power generated by the power generation unit 20 via a charging circuit 32 and discharges it via a discharging circuit 33, a storage battery information acquisition means that is connected to the storage battery 31 and acquires storage battery information, and a communication control device 35 that receives instructions from an external management computer 70 and controls the discharge circuit 33 so as to be able to transmit storage battery information to the outside and to control the discharge output from the storage battery 31, and the storage battery unit 30 that is connected between the power generation unit 20 and the power conditioner 40 is configured by integrating the storage battery 31, the charging circuit 32, the discharge circuit 33, the storage battery information acquisition means, and the communication control device 35 into a single unit.

[0041] A plurality (large number) of solar storage battery units 10 are virtually integrated as a solar network power plant, and are connected to an external management computer 70 via a communication control device 35 and a communication network, separate from a network connected to the power company via a calibration wattmeter, so that they can be individually managed from the outside based at least on the power storage information. The power storage information acquisition means of this embodiment can be configured using the above-mentioned voltmeter, ammeter, etc.

[0042] This allows, for example, all of the electricity generated by sunlight to be stored in the storage battery 31. Although this varies depending on the season, the approximate amount of electricity stored for that day can be determined for each solar storage battery unit 10, for example, around 3:00 PM. Based on this, for example, by individually controlling a selected number of solar storage battery units 10 in accordance with the expected increase in electricity demand from around 5:00 PM, in contrast to the decrease in solar power generation, the solar network power plant system can freely discharge the required amount of electricity during the required time period. Furthermore, the external management computer 70 for managing the charge and discharge of the storage battery units 30 may, for example, manage the stored electricity information of the storage battery 31, so that the total power or a preset amount of power is output (discharged) during a predetermined time period, regardless of other information. This eliminates the need to stop power generation at the solar power plant to prevent excess power during the day, allowing for more effective use of solar energy.

[0043] In addition, although this embodiment is a power generation system that is assumed in principle to sell all of the generated power, it goes without saying that the use of that power can be set appropriately, such as for self-consumption of power to operate the system. Furthermore, this embodiment is a power generation system that is assumed in principle to charge all of the generated power into the storage battery 31, but is not limited to this, and a circuit may be added so that part of the generated power or, depending on the time period, all of it is sent directly from the power generation unit 20 to the power conditioner 40 and supplied to the power grid 55.

[0044] Furthermore, although a large number of solar storage battery units 10, each consisting of a power generation unit 20 and a storage battery unit 30, will be installed, these solar storage battery units 10 can be mass-produced at low cost, reducing the equipment costs (initial costs) of the solar network power plant system. Furthermore, because the storage battery units 30 are installed for each power generation unit 20, they can be installed in a dispersed manner within the solar power plant 100, which has the advantage of not requiring additional space. In other words, for example, by storing the storage battery units 30 in a waterproof housing to improve durability, they can be installed outdoors in a dispersed manner corresponding to each power generation unit 20.

[0045] Furthermore, although there are many manufacturers of power generation units 20 (e.g., photovoltaic power generation panels 21) and power conditioners 40, the basic specifications of the power generation circuits are the same. Therefore, even when a storage battery unit 30 is connected to an already installed power generation unit 20 as an add-on, the storage battery unit 30 can be standardized and can be easily installed in existing photovoltaic power plants 100. This makes it possible to mass-produce the storage battery unit 30, thereby reducing costs.

[0046] The information network of this embodiment uses, for example, the Internet 60 as a communication network, and a wireless LAN (Local Area Network) can be used in each solar power plant 100. This wireless LAN can be installed easily and at low cost by using the widely used Wi-Fi. Of course, other communication means such as a mobile phone line, Bluetooth, a parent device and a child device, etc. can also be used selectively as appropriate.

[0047] Although the present invention relates to a power plant system for photovoltaic power generation, it is of course possible to add a power generation system using other natural energy sources such as wind power and hydropower in addition to the configuration described above. Furthermore, it is also possible to add a control and management system so that surplus commercial power generated by base load power sources can be charged and discharged by the storage battery 31 in accordance with predicted power demand.

[0048] The present invention has been described above in various ways using preferred embodiments, but the present invention is not limited to these embodiments, and it goes without saying that many modifications can be made within the scope of the invention without departing from the spirit of the invention. [Explanation of symbols]

[0049] 10 Solar battery unit 20 power generating units 21 Solar panels 30 Battery Unit 31 Storage battery 32 Charging circuit 33 Discharge circuit 35 Communication control device 40 Power Conditioner 45 Calibration wattmeter 50 Electric Power Companies 55 Power grid 60 Internet 70 External Management Computer 100 solar power plants

Claims

1. In a solar network power plant system configured by connecting multiple solar power plants via a power transmission grid, In each of the plurality of photovoltaic power plants, a terminal unit is configured to generate and store photovoltaic power and to be connected to a power grid via a power conditioner. a power generation unit that generates electricity from sunlight; a storage battery that charges the power generated by the power generation unit through a charging circuit and discharges the power through a discharging circuit; a power storage information acquisition means that is connected to the storage battery and acquires power storage information; a communication control device that receives instructions from an external management computer and controls the discharge circuit so as to transmit the power storage information to the outside and control the discharge output from the storage battery, and A solar network power plant system characterized in that a plurality of the solar storage battery units are virtually integrated as a solar network power plant, and are connected to the external management computer via the communication control device and communication network, separate from the network connected to the electric power company via a certification wattmeter, so that they can be individually managed from the outside based at least on the storage information.

2. The solar network power plant system according to claim 1, characterized in that the storage battery unit connected between the power generation unit and the power conditioner is configured by integrating the storage battery, the charging circuit, the discharging circuit, the storage information acquisition means, and the communication control device into a unit.

3. 2. The solar network power plant system according to claim 1, wherein the power storage information acquired by the power storage information acquisition means is information on the amount of stored power estimated by measuring the voltage of the storage battery.

4. Identification information assigned to the communication control device so as to identify each of the solar storage battery units; Unique information associated with the identification information, the unique information including at least information about an installation location for each of the solar storage battery units; power storage information, which is variable information linked to the identification information and includes information on at least the amount of stored power related to each of the solar battery storage units; and electricity demand information, which is external information related to electricity demand and is variable information. an information network is provided to enable access to the external management computer; 4. The solar network power plant system according to claim 1, wherein the external management computer creates a discharge output plan for each solar storage battery unit based on the identification information, the unique information, the power storage information, and the power demand information, and controls the discharge output for each solar storage battery unit, so that the power stored in the solar network power plant can be discharged and output to the power grid at any time and in any amount.

5. The solar network power plant system according to claim 4, characterized in that the information network is provided so that information on the discharge output of each solar battery unit, which information on the amount of output power that can be obtained by measuring the output voltage and output current of the battery over time, can be accessed by the external management computer.

Citation Information

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