Output device, output method, and program

The output device addresses the challenge of analyzing EMS-integrated plants by optimizing electricity management and providing detailed operational value information, enhancing cost reduction and efficiency.

JP7843791B2Active Publication Date: 2026-04-10NIPPON STEEL & SUMIKIN ENGINEERING CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-02-15
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing systems fail to effectively analyze and facilitate the operation value of plants that have introduced an Energy Management System (EMS).

Method used

An output device that outputs plant operation value information, including an EMS-integrated plant, utilizing a power management device connected via a network to manage electricity demand and supply, optimize costs, and provide detailed operational value information through a user interface.

Benefits of technology

Facilitates the understanding and optimization of EMS-integrated plant operations, reducing costs and enhancing operational efficiency by providing comprehensive operational value information.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To make it easier to grasp the operational value of a plant that has implemented an EMS.SOLUTION: An output device 10 for outputting plant operational value information corresponding to an operational value of a plant is provided, the output device comprising output means 154 for outputting first plant operational value information corresponding to a first plant operational value, or an operational value of a plant that has implemented an EMS.SELECTED DRAWING: Figure 2
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Description

Technical Field

[0001] The present disclosure relates to an output device, an output method, and a program.

Background Art

[0002] Conventionally, there has been a demand for analyzing the operation value of a plant. Patent Document 1 discloses analyzing the operation value of a plant.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, Patent Document 1 does not assume a plant in which an EMS has been introduced.

[0005] Therefore, an object of the present disclosure is to provide an output device that can facilitate grasping the operation value of a plant in which an EMS has been introduced.

Means for Solving the Problems

[0006] An output device according to an aspect of the present disclosure is an output device that outputs plant operation value information corresponding to the operation value of a plant, and includes output means for outputting first plant operation value information corresponding to a first plant operation value, which is the operation value of the plant in which an EMS has been introduced.

Effects of the Invention

[0007] According to the present disclosure, it is possible to facilitate grasping the operation value of a plant in which an EMS has been introduced.

Brief Description of the Drawings

[0008] [Figure 1] A schematic block diagram showing the system configuration of the power management device 10 related to this disclosure. [Figure 2] A schematic block diagram showing a specific example of the functional configuration of the power management device 10. [Figure 3] This figure shows a specific example of a power information table stored in the power information storage unit 141. [Figure 4] This figure shows a specific example of the electricity price information table stored in the electricity price information storage unit 142. [Figure 5] This figure shows a specific example of the power demand information table stored by the power demand information storage unit 144. [Figure 6] A diagram showing an example of a user interface output by output means 154, output means 155, and notification means 156. [Figure 7] A diagram showing an example of a user interface output by output means 154, output means 155, calculation means 157, and notification means 158. [Figure 8] A diagram illustrating a schematic example of the hardware configuration of the information processing device 90 applied to this embodiment. [Figure 9] A flowchart showing an example of a power management method using the power management device 10. [Modes for carrying out the invention]

[0009] (Power management device 10) Figure 1 is a schematic block diagram showing the system configuration of the power management device 10 according to this disclosure. The power management device 10 (output device) is connected to the plant P via a network 70 so as to be communicative. The network 70 may be a wireless communication network or a wired communication network. The network 70 may be configured using, for example, the Internet or a local area network (LAN). The network 70 may be configured by combining multiple networks.

[0010] The power management device 10 performs processing related to the Energy Management System (EMS). An EMS is, for example, a system for managing the amount of electricity demanded and supplied at a specific plant P. By introducing an EMS, for example, the amount of electricity demanded and supplied can be optimized. As a result, it may be possible to reduce costs compared to when an EMS is not introduced. The introduction of an EMS at plant P means, for example, that plant P is controlled by the EMS. The introduction of an EMS at plant P may also mean, for example, that the amount of electricity demanded and supplied at plant P is controlled by the EMS.

[0011] Here, Plant P may be at least part of a facility such as a water treatment facility, production facility, power generation facility, storage facility, or waste treatment facility. Plant P may also generate electricity secondarily by utilizing the energy generated within Plant P when it is performing its primary purpose. For example, if Plant P includes a waste treatment facility, Plant P may also generate electricity secondarily by utilizing the thermal energy generated when it processes (e.g., incinerates) waste.

[0012] Plant P may be a single plant (one facility) or a group of plants (multiple facilities) that can supply and receive power from each other. For example, if Plant P is a group of plants, Plant P may include, for example, at least a portion of the aforementioned facilities, a solar power generation facility, a battery storage facility, and an on-site cogeneration system. If Plant P is a group of plants, the distance between facilities is not limited, and the multiple facilities do not have to be in close proximity.

[0013] The power management device 10 may, for example, consider cost reduction effects based on the introduction of a battery. In this case, the power management device 10 can, for example, charge the battery during the day when electricity prices are low, and discharge the stored electricity at night when electricity prices are high. The electricity discharged from the battery may be sold to the market or consumed at plant P. The power management device 10 may consider, for example, the cost reduction effect on the premise of controlling a waste treatment facility. In this case, the power management device 10 may, for example, reduce the amount of waste treatment in the waste treatment facility during the daytime when the electricity price is low and suppress the power generation amount of the waste treatment facility. On the other hand, for example, during the nighttime when the electricity price is high, the power management device 10 may increase the amount of waste treatment and increase the power generation amount of the waste treatment facility. Note that the cost reduction effect by such control can be achieved not only in the waste treatment facility but also in other facilities as long as they are power generation plants P. For example, when the plant P is a power generation facility, the power generation amount may be set to 0 by not operating the power generation facility during the daytime, and the power generation facility may be operated at the upper limit of its capacity during the nighttime to set the power generation amount to 100% of its capacity. The power management device 10 may consider, for example, the cost reduction effect on the premise of adjusting the demand amount (such as air conditioning, etc.). For example, the power management device 10 may level the demand amount, or may change the demand amount according to the electricity price, or may change the demand amount according to the supply amount.

[0014] The power management device 10 functions as a control device that introduces an EMS into the plant P and controls the plant P by the EMS. For example, as a control device, the power management device 10 formulates a plan for controlling the power reception and supply of the plant P. For example, as a control device, the power management device 10 controls the power reception and supply of the plant P according to the formulated plan. The power management device 10 functions as an output device that outputs plant operation value information corresponding to the operation value of the plant P. For example, as an output device, the power management device 10 calculates the value of the plant P into which an EMS is introduced. For example, the power management device 10 outputs information corresponding to the value. The power management device 10 functions as a processing device that processes claims regarding the consideration for introducing an EMS into the plant P. For example, as a processing device, the power management device 10 calculates the consideration for introducing an EMS into the plant P. For example, the power management device 10 creates information for billing the consideration to the customer.

[0015] Note that the user of the power management device 10 may be, for example, an operator of an EMS or a customer of the operator. The customer may be, for example, a corporation that owns the plant P or a corporation that manages the plant P. The user may be, for example, a construction company of the plant P that sells the plant P to a corporation.

[0016] FIG. 2 is a schematic block diagram showing a specific example of the functional configuration of the power management device 10. The power management device 10 is configured using an information device (information processing device) such as a smartphone, a tablet, a personal computer, a dedicated device, or a server device. The power management device 10 includes a communication unit 11, an input unit 12, an output unit 13, a storage unit 14, and a control unit 15.

[0017] The communication unit 11 is a communication device. The communication unit 11 may be configured as, for example, a network interface. The communication unit 11 performs data communication with other devices via a network according to the control of the control unit 15. The communication unit 11 may be a device that performs wireless communication or a device that performs wired communication.

[0018] The input unit 12 is configured using an existing input device such as a keyboard, a pointing device (mouse, tablet, etc.), a button, or a touch panel. The input unit 12 is operated by the user when inputting the user's instruction to the power management device 10. The input unit 12 may be an interface for connecting the input device to the power management device 10. In this case, the input unit 12 inputs an input signal generated in response to the user's input in the input device to the planning device 20. The input unit 12 may be configured using a microphone and a voice recognition device. In this case, the input unit 12 acquires an acoustic signal generated by the user's speech, recognizes the words spoken by the user, and inputs the character string information of the recognition result to the power management device 10. The voice recognition processing may be executed by the control unit 15. The input unit 12 may be configured in any manner as long as it can input the user's instruction to the power management device 10.

[0019] The output unit 13 outputs information in a format that the user can recognize. The output unit 13 may be an image display device such as a liquid crystal display or an organic EL (Electro-Luminescence) display. The output unit 13 may also be an interface for connecting an image display device to the power management device 10. In this case, the output unit 13 generates a video signal for displaying image data and outputs the video signal to the image display device connected to it. The output unit 13 may also be a device that outputs sound, such as a speaker. The output unit 13 may also be an interface for connecting an audio output device such as a speaker or headphones to the power management device 10. In this case, the output unit 13 generates an audio signal for playing audio data and outputs the audio signal to the audio output device connected to it. The output unit 13 may also be a printer. The output unit 13 may also be an interface for connecting a printer to the power management device 10. In this case, the output unit 13 generates a print signal for printing print data and outputs the print signal to the printer connected to it. The output unit 13 may also be configured as a touch panel integrated with the input unit 12.

[0020] The storage unit 14 is configured using a storage device such as a magnetic hard disk drive or a semiconductor storage device. The storage unit 14 stores data used by the control unit 15. The storage unit 14 stores data necessary when the control unit 15 performs processing. The storage unit 14 functions as a power supply information storage unit 141, an electricity price information storage unit 142, a CO2 emission price information storage unit 143, an electricity demand information storage unit 144, a planning information storage unit 145, and an actual information storage unit 146.

[0021] The power information storage unit 141 stores power information. Power information is information about a power source. A power source is, for example, a power generation facility. Power generation facilities include, for example, solar power generation facilities, waste treatment facilities, wind power generation facilities, storage batteries, and cogeneration systems. Figure 3 shows a specific example of a power information table stored by the power information storage unit 141. The power information table has multiple power information records. Each power information record has values ​​for power source identification number (No.), power source name, power generation capacity, power generation cost, energy storage capacity, rapid energy storage capacity, and energy storage capacity. The power source identification number (No.) is a unique identification number corresponding to each power source. The identification number is, for example, a number. If the identification number is a number, it may indicate the priority of the power source. In this case, for example, a smaller value for the identification number may indicate a higher priority power source. The power source name is a unique name used for the power source corresponding to the power source identification number. Power generation capacity is information indicating the amount of electricity that a power source corresponding to a power source identification number can generate per unit time (if the power source is a battery, power generation capacity may be the amount of discharge that can be discharged per unit time (i.e., discharge capacity)). Power generation cost is information indicating the cost required for a power source corresponding to a power source identification number to generate a unit amount of energy. Energy storage capacity and rapid energy storage capacity are information indicating the amount of energy that a power source corresponding to a power source identification number can store per unit time. The difference between energy storage capacity and rapid energy storage capacity is that rapid energy storage capacity increases the amount of energy that can be stored per unit time at the expense of power source degradation. Energy storage capacity is information indicating the maximum amount of energy that can be stored in a power source corresponding to a power source identification number. Note that energy storage capacity, rapid energy storage capacity, and energy storage capacity may be 0 if the power source is not capable of energy storage.

[0022] The information used to calculate the power generation cost varies depending on the type of plant P. For example, if the power source is a waste treatment facility, the information used to calculate the cost may be related to the cost of combustion aids. These combustion aids are necessary for incinerating (burning) the waste. For example, if the power source is a cogeneration system, the information used to calculate the cost may be related to the cost of fuel. Examples of such fuels include natural gas, petroleum, and LPG. These fuels are used for power generation in the cogeneration system. If the power source is a battery, the information used to calculate the cost may be related to the depreciation cost of the battery (e.g., battery cost / useful life).

[0023] The electricity price information storage unit 142 stores electricity price information. Electricity price information is information relating to electricity prices. Electricity prices may be treated as not fluctuating over time, or as fluctuating over time. If electricity prices are treated as not fluctuating over time, the electricity price becomes a fixed price. In this case, the electricity price information storage unit 142 may store a constant value (fixed price) as electricity price information. If electricity prices are treated as fluctuating over time, the electricity price becomes a variable price. In this case, the electricity price information storage unit 142 may store the electricity price information table shown in Figure 4. Figure 4 is a diagram showing a specific example of an electricity price information table stored by the electricity price information storage unit 142. The electricity price information table has multiple electricity price information records. Each electricity price information record has a value for time and a value for price. The price in one electricity price information record indicates the buying and selling price per unit of electricity for the time (unit period) in that electricity price information record. Furthermore, if the selling price and buying price of electricity differ, the electricity price information record may have values ​​corresponding to the selling price and buying price, respectively, instead of the price. For example, the electricity price information may be a time-based predicted price in the electricity market. The electricity market is, for example, a market where electricity is traded, such as the Japan Electric Power Exchange (JEPX). The electricity market may also be, for example, a spot market or a supply and demand adjustment market. Electricity prices may take into account subsidies from the national or local government. If there are multiple electricity markets, the electricity price information record may have values ​​corresponding to the prices in each market.

[0024] The CO2 emission price information storage unit 143 stores CO2 emission price information. CO2 emission price information is information relating to CO2 emission prices. CO2 emission price is, for example, the cost required for emitting a unit amount of CO2. This cost may include, for example, fines imposed by the national or local government. CO2 emission prices may be fixed prices or variable prices. If CO2 emission prices are variable prices, the CO2 emission price information storage unit 143 may store a CO2 emission price information table. In this case, the CO2 emission price information table may have a structure similar to that of the electricity price information table.

[0025] The power demand information storage unit 144 stores power demand information. Power demand information is information about the amount of electricity demanded by plant P. Plant P consumes electricity for, for example, air conditioning equipment in a warehouse owned by plant P. Figure 5 shows a specific example of a power demand information table stored by the power demand information storage unit 144. The power demand information table has multiple power demand information records. Each power demand information record has values ​​for period and demand amount. The demand amount in one power demand information record indicates the amount of electricity that plant P needs for the period specified in that power demand information record. In the illustrated example, the period is, for example, a period obtained by dividing one year into 30-minute intervals. However, the period (unit period) is not limited to this, and may be, for example, an hour, a day, a month, a 10-minute interval, or a minute. The demand amount in a power demand information record may be, for example, an actual value for any past year (for example, last year). The demand quantity in the power demand information record may be, for example, the average of actual values ​​over any past few years. The demand quantity in the power demand information record may be, for example, the result of a software simulation. The demand quantity in the power demand information record may be, for example, the result of artificial intelligence generation. The demand quantity in the power demand information may be acquired by the power demand information storage unit 144 by being input by a user to the power management device 10. The user who inputs the power demand information may be, for example, the operator of plant P.

[0026] The planning information storage unit 145 stores planning information. Planning information is, for example, information relating to a plan formulated by the planning means 151, which will be described later. Planning information is updated, for example, after a plan has been formulated by the planning means 151. In addition to the planning information from the planning means 151 (hereinafter also referred to as "planning information when EMS is introduced"), the planning information storage unit 145 may also store information relating to a plan when EMS is not introduced (hereinafter also referred to as "planning information when EMS is not introduced"). Planning information when EMS is not introduced is, for example, planning information that is set in advance, without the power management device 10. Planning information when EMS is not introduced may be input, for example, from the input unit 12.

[0027] The performance information storage unit 146 stores performance information. The performance information is information relating to the performance controlled by the control means 152, which will be described later. The performance information is updated, for example, after control is performed by the control means 152.

[0028] The control unit 15 is composed of a processor such as a CPU (Central Processing Unit) and memory (main memory). The control unit 15 functions as a planning means 151, a control means 152, an arithmetic means 153, an output means 154, an output means 155, a notification means 156, a calculation means 157, a notification means 158, a cost calculation means 159, and a creation means 160, when the processor executes a program. Note that all or part of each function of the control unit 15 may be implemented using hardware such as an ASIC (Application Specific Integrated Circuit), a PLD (Programmable Logic Device), or an FPGA (Field Programmable Gate Array). The above program may be recorded on a computer-readable recording medium. Computer-readable recording media include, for example, portable media such as flexible disks, magneto-optical disks, ROMs, CD-ROMs, and semiconductor memory devices (e.g., SSDs: Solid State Drives), as well as memory devices such as hard disks and semiconductor memory devices built into computer systems. The above program may be transmitted via a telecommunications line.

[0029] The control unit 15 may, for example, execute an application installed on its own device (power management device 10). A specific example of such an application is an application provided to the power management device 10 as a dedicated application for the power management system 100. Another specific example of such an application is a web browser application. Such an application may be pre-installed on the power management device 10, or it may be downloaded each time a determination process is executed. For example, if it is implemented as a web browser application, the power management device 10 may download and execute the application from a device specified by the web server (for example, the web server itself or another server) when the power management device 10 connects to a specific web server. The control unit 15 operates according to the program of the application being executed.

[0030] The planning means 151, for example, formulates a plan using the Energy Management System (EMS) that maximizes the objective function representing the operational value of plant P. Here, the EMS has multiple operating modes. The constraints described later differ in each operating mode. The planning means 151 formulates a plan that maximizes the objective function within the range that satisfies the constraints in each operating mode of the EMS.

[0031] The aforementioned objective function is, for example, a function that represents the operating value of plant P in monetary terms. If the plant is a group of plants, the objective function may represent the operating value of the entire group of plants. The objective function can be expressed, for example, by equation (1) below.

[0032] A+BC ··· (1) A, B, and C are as follows: A: Profits obtained from the operation of each power source during the planned period B: Profits obtained from buying and selling electricity in the market during the planning period (amount of electricity sold) C: Costs incurred for CO2 emissions during the planned period (CO2 emission price)

[0033] Here, the planning period is not particularly limited and may be, for example, one year, one month, one week, or one day. The planning unit period may be longer than the unit period mentioned above. The planning period may be input from, for example, the input unit 12, or stored in the storage unit 14.

[0034] (A: Profits obtained from the operation of each power source during the planned period) The above profit is calculated, for example, by multiplying the amount of electricity generated by each power source by the profit obtained per unit of electricity generated. The amount of electricity generated by each power source is, for example, the dependent variable. The profit obtained per unit of electricity generated is calculated, for example, by subtracting the generation cost from the electricity price. If the electricity price is a variable price, the electricity price used as a factor in determining the profit obtained per unit of electricity generated can be the electricity price corresponding to the period in which the power source generates electricity. The electricity price can be determined, for example, based on electricity price information. The profits obtained from the operation of each power source during the planned period may be calculated for each power source (for example, for each solar power generation facility, waste treatment facility, or battery storage facility). For example, if the power source is a waste treatment facility, the profits may fluctuate based on the amount or timing of waste treatment. For example, as mentioned above, profits may be increased by treating more waste at night when electricity prices are high.

[0035] (B: Profits obtained from buying and selling electricity in the market during the planned period) The above profits are calculated, for example, by subtracting the total amount of electricity purchased in each market from the total amount of electricity sold in each market. The amount of electricity sold is calculated by multiplying the amount of electricity sold by the electricity price. If the electricity price is a variable price, the electricity price used as a factor in calculating the amount of electricity sold can be the electricity price during the period of sale. The amount of electricity purchased can be calculated in the same way as the amount of electricity sold. The amount of electricity sold and the amount of electricity purchased are, for example, dependent variables. The electricity price is determined, for example, based on electricity price information. The profits obtained from buying and selling electricity in the market during the planned period may be calculated separately for each market (for example, for the spot market or the supply and demand adjustment market).

[0036] (C: Costs incurred for CO2 emissions during the planned period) The above costs are calculated, for example, by multiplying the CO2 emissions from plant P by the CO2 emission price (the cost required to emit CO2 per unit amount). The CO2 emissions are, for example, the dependent variable. The CO2 emission price is determined, for example, based on CO2 emission price information.

[0037] The investment value may include factors other than those exemplified in A to C above. For example, the operating value may further include imbalance costs. Imbalance costs may include, for example, at least a portion of the imbalance costs related to the power sales plan (e.g., deficit imbalance, surplus imbalance) and the imbalance costs related to the power purchase plan (e.g., deficit imbalance, surplus imbalance). For example, the imbalance cost related to the power sales plan is calculated by multiplying the difference between the amount of power sold in the reported market sales plan and the actual amount of power sold by the imbalance penalty amount per unit of electricity. The penalty amount may be stored, for example, in the storage unit 14. For example, the operating value may further include the cost of processing industrial waste (slag) at a waste treatment facility. If the industrial waste is reusable, this cost may increase the operating value. If the industrial waste is not reusable, this cost may decrease the operating value.

[0038] The planning means 151 performs a simulation using, for example, the objective function related to equation (1) and the constraints described later. In the simulation, for example, the following a to e are used as the objective variables. a: Amount of electricity generated by each power source in each unit period b: The amount of electricity (storage amount) that is stored in the battery from the electricity generated by the power source during each unit period. c: The amount of electricity consumed by plant P (demand) out of the electricity generated by the power source during each unit period. d: The amount of electricity generated by a power source during each unit period that is sold to each electricity market (amount of electricity sold). e: Amount of electricity purchased from each electricity market in each unit period The demand amount related to c above may be set based on electricity demand information. In this case, the demand amount related to c may be set by changing the electricity demand in the electricity demand information under predetermined conditions. Examples of these predetermined conditions include, when increasing or decreasing the demand amount set for each unit period, reflecting that increase or decrease in other unit periods on the same day so as not to change the total demand amount on that day.

[0039] Here, examples of the multiple operating modes in EMS include the following operating modes A to C. A: Cost-effectiveness priority mode I: CO2 emission reduction mode U: Battery degradation suppression mode

[0040] The aforementioned constraints differ for each operating mode. However, the following basic conditions are common to all operating modes. Basic condition 1: In each unit period, the amount of electricity supplied does not fall below the amount of electricity demanded. Basic condition 2: In each unit period, the amount of energy stored in a power source capable of storing energy (e.g., a battery) does not exceed its storage capacity.

[0041] (A: Cost-benefit priority mode) The cost-benefit-first mode is a mode that maximizes the operational value of plant P (operational value maximization mode). In this mode, for example, only the basic conditions are used as constraints to maximize the objective function (i.e., the operational value of plant P).

[0042] (I: CO2 emission reduction mode) The CO2 emission reduction mode is a mode that maximizes the operational value of plant P while keeping CO2 emissions at a certain level. In this mode, for example, the objective function is maximized by adding the following additional conditions to the constraints, in addition to the basic conditions. Additional condition: Total CO2 emissions during the planning period are below a certain value. The aforementioned constant value may be input from, for example, the input unit 12, or it may be stored in the storage unit 14.

[0043] (U: Battery degradation suppression mode) The battery degradation suppression mode is a mode that maximizes the operational value of plant P while suppressing battery degradation. In this mode, for example, the objective function is maximized by adding the following additional conditions to the constraints in addition to the basic conditions. Additional condition A: Energy storage will not be performed using the rapid energy storage capacity of the battery, but will be performed using the (normal) energy storage capacity. When using rapid charging capabilities to store energy in a battery, the battery tends to overheat, leading to faster degradation. Therefore, charging the battery without using rapid charging capabilities can help suppress battery degradation. As an additional condition, the following additional condition B may be added in place of the above additional condition A (not to perform energy storage using rapid charging capabilities). Additional condition B: The cost of generating electricity using rapid energy storage capacity is higher than the cost of generating electricity using (normal) energy storage capacity. Under the additional condition B described above, the rate of battery degradation will be reflected in the power generation cost.

[0044] The planning means 151 formulates a plan using, for example, the objective function and constraints described above. In this embodiment, the planning means 151 formulates a plan based on at least one of the following: electricity demand, solar power generation, waste treatment power generation, battery power generation, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price. Note that the method of formulating a plan by the planning means 151 is not limited to the method described above. Here, the planning means 151 may periodically update the planning information (for example, at a fixed time every day) for the purpose of allowing the control means 152, which will be described later, to utilize the planning information. In this case, the operating mode of the EMS that the planning means 151 plans may be set in advance, for example. The operating mode of the EMS may be input from the input unit 12, for example. Furthermore, the planning means 151 may update the planning information in response to input from the input unit 12, for example, with the purpose of the calculation means 153, which will be described later, calculating the plant operation value. In this case, the planning means 151 may plan all operating modes of the EMS.

[0045] The planning information formulated by the planning means 151 as described above is stored, for example, in the planning information storage unit 145. The planning information is stored in the planning information storage unit 145 as a planning information table. The planning information table contains multiple planning information records. A planning information record is represented, for example, as a combination of a unit period and the planned values ​​corresponding to the objective variables a to e above during that unit period. Furthermore, the planning means 151 may, for example, store plant value information corresponding to the operational value of plant P in the storage unit 14 when the planning information is stored in the planning information storage unit 145, for the purpose of allowing the output means 154, which will be described later, to utilize the planning information.

[0046] The control means 152 controls plant P based on the planning information from the planning means 151. The control means 152 may, for example, read the planning information from the planning information storage unit 145. After controlling plant P, for example, the control means 152 updates the actual information stored in the actual information storage unit 146 based on the actual results of controlling plant P. The actual information is stored in the actual information storage unit 146 as an actual information table. The actual information table includes multiple actual information records. An actual information record is represented, for example, as a combination of a unit period and the actual values ​​corresponding to the target variables a to e during that unit period.

[0047] The calculation means 153 calculates the operational value of plant P. The operational value is expressed, for example, by the objective function. The calculation means 153 calculates a first plant operational value and a second plant operational value as the operational value. The first plant operational value is the operational value of plant P in which an EMS has been introduced. The calculation means 153 may calculate the first plant operational value for each of several operating modes. The second plant operational value is the operational value of a plant in which an EMS has not been introduced.

[0048] The calculation means 153 calculates the operational value (operating value of the first plant and the operating value of the second plant) based on the plan and the operational value based on actual results.

[0049] The calculation means 153 may, for example, calculate the first plant operation value based on the plan, based on the objective function and the planning information for EMS introduction stored in the planning information storage unit 145. In this case, the calculation means 153 can calculate the first plant operation value based on the plan, for example, by substituting the planned value in the planning information into the objective variable in the objective function. The calculation means 153 may, for example, calculate the first plant operational value based on the plan, based on the operational value information stored in the memory unit when the planning means 151 formulates the plan. The calculation means 153 may, for example, calculate the first plant operation value based on actual results based on the objective function and the actual results information stored in the actual results information storage unit 146. In this case, the calculation means 153 can calculate the first plant operation value based on actual results by, for example, substituting the actual values ​​in the actual results information for the objective variable in the objective function.

[0050] The calculation means 153 may, for example, calculate the operational value of the second plant based on the plan, based on the objective function and the planning information for the EMS not yet implemented, which is stored in the planning information storage unit 145. In this case, the calculation means 153 can calculate the operational value of the second plant based on the plan, for example, by substituting the planned value in the planning information into the objective variable in the objective function.

[0051] Figure 6 shows an example of a user interface output by output means 154, output means 155, and notification means 156.

[0052] As shown in Figure 6, the output means 154 outputs first plant operation value information corresponding to the first plant operation value. Here, the output of the first plant operation value information by the output means 154 may also be done by the output means 154 displaying the first plant operation value information on a display surface such as the screen of an image display device or the paper of a printed document, or in an electronic file. In this embodiment, the output means 154 outputs first plant operation value information for each of the multiple operating modes. However, the output means 154 does not have to output first plant operation value information for each of the multiple operating modes. For example, if the EMS has only one operating mode, the output means 154 may output only one piece of first plant operation value information. Furthermore, for example, if the output means 154 receives input of an operating mode to be output from the input unit 12, the output means 154 may output first plant operation value information for the operating mode for which input was received.

[0053] The output means 154 outputs first plant operation value information corresponding to the first plant operation value calculated by the calculation means 153. Here, the calculation means 153 calculates the first plant operation value information using the objective function. The objective function includes the variables A to C. Therefore, in this embodiment, the information used by the output means 154 to output the first plant operational value information (for example, the information that forms the basis of the power generation cost as described above) differs depending on the type of plant P. Consequently, for example, a user can more reliably grasp the operational value of a plant P that has introduced an EMS, depending on the type of plant P. Furthermore, the output means 154 outputs information on the operational value of the first plant based on at least one of the following: electricity demand, solar power generation, waste treatment power generation, battery power generation, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price. Therefore, for example, a user can more reliably grasp the operational value of the plant P in which the EMS has been introduced. Furthermore, if plant P includes a waste treatment facility, the output means 154 outputs first plant operational value information based on the amount or timing of waste treatment adjusted by the EMS. Therefore, for example, the output means 154 can output first plant operational value information appropriately according to the waste treatment adjusted by the EMS.

[0054] However, the information used by the output means 154 to output the first plant operation value information does not have to differ depending on the type of plant P. For example, the power generation cost may be the same regardless of the type of plant P. Furthermore, the output means 154 may output the first plant operation value information without basing it on at least one of the following: electricity demand, solar power generation amount, waste treatment power generation amount, battery power generation amount, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price. For example, the first plant operation value information may be calculated and output considering only the power generation aspect without considering electricity demand. Also, the first plant operation value information may be calculated and output without considering the CO2 emission price. Moreover, the first plant operation value information may be calculated and output without considering the spot market electricity price and the supply and demand adjustment market electricity price, for example, by using a fixed price for electricity. Furthermore, if plant P includes wind power generation facilities or cogeneration systems as power sources, the first plant operation value information may be calculated and output based on the power generation amount of each of these facilities.

[0055] The output means 155 outputs second plant operation value information corresponding to the second plant operation value. Here, the output of the second plant operation value information by the output means 155 may be done by displaying the second plant operation value information on a display surface such as the screen of an image display device or the paper of a printed document, or by displaying it in an electronic file.

[0056] The notification means 156 notifies the user in a comparable manner of the first plant operation value information output by the output means 154 and the second plant operation value information output by the output means 155. Here, the notification means 156 notifying the user of the first plant operation value information and the second plant operation value information may be done by the notification means 156 displaying the first plant operation value information and the second plant operation value information on a display surface such as the screen of an image display device or the paper of a printed document, or by displaying it in an electronic file.

[0057] In the illustrated example, output means 154, output means 155, and notification means 156 display the first plant operation value information and the second plant operation value information as the first table T1 in the first display area R1. The first table T1 includes one header row T1a and multiple record rows T1b.

[0058] The header row T1a is the first row in Table 1 T1. The header row T1a represents the content indicated by the information in each cell (information cell T1d) in the record row T1b. In this embodiment, the headings in the header row T1a are Plant Operating Value, Electricity Trading Amount, and CO2 Emission Price. Electricity Trading Amount corresponds to variable B in equation (1) above. CO2 Emission Price corresponds to variable C in equation (1) above. The header row T1a is common to both the first plant operating value information and the second plant operating value information.

[0059] Each record row T1b represents either the operational value information for the first plant or the operational value information for the second plant. Of the multiple record rows T1b, the row T1b closest to the header row T1a represents the operational value information for the first plant, while the remaining record rows T1b represent the operational value information for the second plant. Each record row T1b contains a header cell T1c and an information cell T1d. The header cell T1c is the first cell of the record row T1b. The header cell T1c indicates whether the corresponding record row T1b represents the operational value information for the first plant or the operational value information for the second plant (for example, whether EMS is implemented or not, and if EMS is implemented, which operating mode).

[0060] Furthermore, when outputting first plant operation value information for each of the multiple operating modes, the output means 154 may highlight the first plant operation value information related to the preferred operating mode. For example, the output means 154 may highlight the record row T1b related to the preferred operating mode by coloring or changing the font. For example, the preferred operating mode may be determined by the output means 154 receiving input of the operating mode from the input unit 12. For example, the preferred operating mode may be determined by the output means 154. In this case, the output means 154 may determine the preferred operating mode based on, for example, the first plant operation value in each mode. For example, the output means 154 may determine that the other operating mode is preferred if the difference between the cost-benefit priority mode and the other operating modes is within a predetermined threshold, and determine that the cost-benefit priority mode is preferred if the difference is above the predetermined threshold. The predetermined threshold may be stored in, for example, the storage unit 14, or it may be input from the input unit 12.

[0061] In this embodiment, the notification means 156 displays the first plant operation value information and the second plant operation value information in record row T1b of Table T1, respectively, thereby notifying the user in a comparable manner. However, the form of notification by the notification means 156 is not limited to this. For example, the notification means 156 may display the first plant operation value information and the second plant operation value information in a graph, thereby notifying the user in a comparable manner.

[0062] In this embodiment, the preconditions Pc1, which are the basis for calculating the operational value, are also displayed (output) in the first display area R1. In the illustrated example, the CO2 conversion factor is displayed as the preconditions Pc1. The CO2 conversion factor is, for example, the CO2 emission price information stored in the CO2 emission price storage unit. The CO2 conversion factor is, for example, the cost required for emitting CO2 per unit amount. In the illustrated example, the preconditions Pc1 are displayed below and to the right of the first table T1. However, the display position and display format of the preconditions Pc1 are not limited to this.

[0063] Furthermore, if the precondition Pc1 is displayed on an image display device, for example, the input unit 12 may allow the user to manipulate the precondition Pc1 displayed in the first display area R1, and the control unit 15 may receive input from the input unit 12 to change the precondition Pc1. When the control unit 15 receives a change in the precondition Pc1, it may update the contents of Table 1 T1. In this case, it becomes easier for the user to confirm how much the operational value of plant P changes as a result of the change in precondition Pc1. Furthermore, in addition to the CO2 conversion factor, other preconditions such as the power supply capacity and storage capacity of the power source may be displayed in the first display area R1 as preconditions Pc1. Moreover, preconditions Pc1 do not necessarily have to be displayed in the first display area R1.

[0064] Figure 7 shows an example of a user interface output by output means 154, output means 155, calculation means 157, and notification means 158.

[0065] As shown in Figure 7, the calculation means 157 calculates the difference between the first plant operation value information output by the output means 154 and the second plant operation value information output by the output means 155. In this embodiment, the calculation means 157 calculates the difference between the first plant operation value in one of the multiple operating modes and the second plant operation value. The calculation means 157 may use a representative value (for example, the mean or median) of the first plant operation value in multiple operating modes as the first plant operation value. Alternatively, the calculation means 157 may use the first plant operation value related to the operating mode input received from the input unit 12 as the first plant operation value.

[0066] The notification means 158 notifies the user of the difference calculated by the calculation means 157, along with the factors causing the difference. The factors include adjustments to the waste treatment timing of the waste treatment facility, which are adjustments made by the EMS. Therefore, for example, the user can easily grasp the difference in operational value between a plant P with an EMS installed and a plant P without an EMS installed, and that this difference is due to the adjustment of the waste treatment timing. Here, the notification means 158 notifying the user of the difference and the cause of the difference may be done by the notification means 158 displaying the difference and the cause of the difference on a display surface such as the screen of an image display device or the paper of a printed document, or in an electronic file.

[0067] In the illustrated example, output means 154, output means 155, calculation means 157, and notification means 158 display the difference and the factors causing that difference as Table 2 T2 in the second display area R2. Table 2 T2 includes one header row T2a and one record row T2b. Note that the first display area R1 shown in Figure 6 and the second display area R2 shown in Figure 7 may be displayed simultaneously at different positions on the same display surface (e.g., a screen or paper), or they may be displayed in the same area on the same display surface at different timings.

[0068] The header row T2a is the first row in Table 2 T2. The header row T2a represents the content indicated by the information in each cell (information cell T2d) in the record row T2b. In this embodiment, the headings in the header row T2a are EMS introduction effect, solar power generation amount, waste treatment power generation amount, battery power generation amount, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price. Of these items, the EMS introduction effect is the difference calculated by the calculation means 157, and the other items are the factors of the difference. Of the other items, solar power generation amount, waste treatment power generation amount, and battery power generation amount correspond to variable A in equation (1) above and indicate the profit obtained from the operation of each power source. Of the other items, the spot market electricity price and supply and demand adjustment market electricity price correspond to variable B in equation (1) above and indicate the profit obtained from buying and selling electricity in each market. Of the other items, the CO2 emission price corresponds to variable C in equation (1) above. The header row T2a is common regardless of the operating mode being reported.

[0069] Each record row T2b represents the difference between the operating value of the first plant and the operating value of the second plant, and the factors contributing to that difference. Record row T2b contains an information cell T2d. In this embodiment, the notification means 158 notifies the user of this information by displaying the difference and the factors causing the difference in record row T2b of Table T2, respectively. However, the form in which the notification means 158 notifies the user is not limited to this. For example, the notification means 158 may notify the user of this information by displaying the difference and the factors causing the difference in a graph.

[0070] In this embodiment, the preconditions Pc2, which are the basis for calculating the difference, are also displayed (notified) in the second display area R2. In the illustrated example, the preconditions Pc2 include information regarding the EMS operating mode, information regarding the spot market electricity price, and information regarding the supply and demand adjustment market electricity price. The information regarding the EMS operating mode indicates, for example, the operating mode that is the basis for calculating the difference and its factors. The information regarding the spot market electricity price indicates the spot market electricity price per unit time, which is the basis for calculating the spot market electricity price, one of the factors of the difference. The information regarding the supply and demand adjustment market electricity price indicates the supply and demand adjustment market electricity price per unit time, which is the basis for calculating the supply and demand adjustment market electricity price, one of the factors of the difference. In the illustrated example, the preconditions Pc2 are displayed below and to the right of Table 2 T2. However, the display position and display format of the preconditions Pc2 are not limited to this. Furthermore, other preconditions different from those related to the EMS operating mode, spot market electricity prices, and supply and demand adjustment market electricity prices may be displayed in the second display area R2 as preconditions Pc2. In addition, preconditions Pc2 do not necessarily have to be displayed in the second display area R2.

[0071] As shown in Figure 2, the cost calculation means 159 calculates the billing cost based on the first plant operating value (hereinafter also referred to as the corresponding first plant operating value) corresponding to the first plant operating value information output by the output means 154. The cost calculation means 159 may, for example, calculate the billing cost for a business operator to provide an estimate to a customer considering the introduction of an EMS. In this case, the corresponding first plant operating value may be calculated based on planning information. The cost calculation means 159 may, for example, calculate the billing cost for a business operator to bill a customer who has already introduced an EMS. In this case, the corresponding first plant operating value may be calculated based on planning information or based on actual information.

[0072] The cost calculation means 159 may calculate the billed cost not only based on the corresponding first plant operating value, but also, for example, based on the second plant operating value corresponding to the second plant operating value information output by the output means 155. For example, the cost calculation means 159 may calculate the billed cost based on the difference calculated by the calculation means 157.

[0073] For example, the billing cost may be a portion of the corresponding operating value of the first plant. In this case, if the operating value of the first plant differs between the first period and the second period, which are different periods, the billing cost may be a portion of the operating value of the first plant that has a lower operating value, between the operating value of the first plant corresponding to the first period and the operating value of the first plant corresponding to the second period. In any of these cases, the billing cost may be, for example, an amount corresponding to the amount of electricity bought and sold related to variable B in equation (1) above.

[0074] For example, the billing cost may be a portion of the operating value corresponding to the difference calculated by the calculation means 157 (the difference between the operating value information of the first plant and the operating value information of the second plant).

[0075] For example, the billing cost may be higher when the corresponding first plant operating value exceeds a predetermined standard than when the corresponding first plant operating value does not exceed a predetermined standard. In this case, the billing cost differs depending on whether or not the first plant operating value exceeds the predetermined standard, and the cost calculation means can calculate the billing cost, for example, as a so-called performance-based fee (success fee). In this case, for example, the predetermined standard, the billing cost when the predetermined standard is exceeded, and the billing cost when the predetermined standard is not exceeded may each be stored in the storage unit 14.

[0076] For example, the billing fee may be paid periodically over a predetermined period. In this case, the cost calculation means 159 can calculate, for example, the billing fee when a user uses the EMS on a subscription basis. In this case, for example, the first plant operating value may be calculated based on the planning information, and then the business operator may present the billing fee calculated by the cost calculation means 159 to a customer who is considering introducing the EMS. In this case, the billing fee may be calculated by multiplying the difference calculated by the calculation means 157 by a predetermined percentage. The predetermined percentage may be stored, for example, in the storage unit 14.

[0077] The creation means 160 creates billing information for billing the customer. The creation means 160 may create billing information based, for example, on the billing cost calculated by the cost calculation means 159. For example, the billing information may be information corresponding to the billing cost. For example, the billing information may simply represent the billing cost. For example, the billing information may be information related to an estimate or invoice that lists the billing cost (for example, information for creating an estimate or invoice, or information indicating an electronic file of an estimate or invoice). For example, the billing information may be information for electronically sending the billing cost to the customer. The creation means 160 may display the billing information on a display surface such as the screen of an image display device or the paper of a printed document, or in an electronic file.

[0078] For example, the creation means 160 may create billing information for billing the customer for a portion of the corresponding first plant operating value. In this case, for example, the operator can reliably bill the customer for a portion of the first plant operating value.

[0079] For example, the creation means 160 may create billing information to charge the customer for a portion of the first plant operating value that has a lower operating value, which is the first plant operating value corresponding to the first period and the first plant operating value corresponding to the second period. In this case, for example, the creation means can create conservative (safe) billing information that is likely to be accepted by the customer.

[0080] For example, the creation means 160 may create billing information for billing the customer for a portion of the operating value corresponding to the difference calculated by the calculation means 157. In this case, for example, the operator can reliably bill the customer for a portion of the operating value corresponding to the difference between the first plant operating value information and the second plant value information.

[0081] Figure 8 is a schematic diagram of an example hardware configuration of an information processing device 90 applied to this embodiment. The information processing device 90 comprises a processor 91, main memory 92, communication interface 93, auxiliary storage device 94, input / output interface 95, and internal bus 96. The processor 91, main memory 92, communication interface 93, auxiliary storage device 94, and input / output interface 95 are connected to each other via the internal bus 96 so as to be able to communicate with each other. The information processing device 90 may be applied to, for example, a power management device 10. In this case, for example, the communication unit 11 may be configured using the communication interface 93. For example, the storage unit 14 may be configured using the auxiliary storage device 94. Also, the control unit 15 may be configured using the processor 91 and the main memory 92.

[0082] The operation of the control unit described above is stored in auxiliary storage device 94 (storage) in the form of a program. The processor 91 reads the program from the auxiliary storage device 94, loads it into the main memory device 92, and executes the above processing according to the program. The processor 91 also allocates memory areas in the main memory device 92 corresponding to each of the above-mentioned storage units according to the program. Examples of the processor 91 include a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), and a microprocessor.

[0083] The program may be for implementing a part of the functions to be performed by the information processing device 90. For example, the program may perform functions in combination with other programs already stored in the auxiliary storage device 94, or in combination with other programs implemented in other devices. In other examples of the embodiment, the information processing device 90 may include a custom LSI (Large Scale Integrated Circuit) such as a PLD (Programmable Logic Device) in addition to or instead of the above configuration. Examples of PLDs include PAL (Programmable Array Logic), GAL (Generic Array Logic), CPLD (Complex Programmable Logic Device), and FPGA (Field Programmable Gate Array). In this case, some or all of the functions implemented by the processor 91 may be implemented by the integrated circuit. Such an integrated circuit is also included as an example of a processor.

[0084] Examples of auxiliary storage devices 94 include magnetic disks, magneto-optical disks, optical disks, and semiconductor memory. The auxiliary storage device 94 may be an internal medium directly connected to the bus of the information processing device 90, or it may be an external medium connected to the information processing device 90 via an input / output interface 95 or a communication line. Furthermore, if this program is delivered to the information processing device 90 via a communication line, the information processing device 90 that receives the delivery may expand the program into the main memory 92 and execute the above processing. In at least one embodiment, the auxiliary storage device 94 is a tangible storage medium that is not temporary.

[0085] Furthermore, the program may be intended to implement some of the functions described above. Furthermore, the program may be a so-called differential file (differential program) that implements the aforementioned functions in combination with other programs already stored in the auxiliary storage device 94.

[0086] The power management device 10 may be implemented using multiple information processing devices. For example, the power management device 10 may be implemented using a device such as a cloud. For example, in the power management device 10, the storage unit 14 and the control unit 15 may be implemented in different information processing devices. For example, the storage unit 14 of the power management device 10 may be distributed and implemented across multiple information processing devices. The functions of the power management device 10 as a control device, as an output device, and as a processing device may be distributed across multiple information processing devices.

[0087] (Power management method) An example of a power management method using the power management device 10 will be explained with reference to Figure 9. Figure 9 is a flowchart of an example of a power management method using the power management device 10. In this method, before the introduction of the EMS, the operator encourages the customer to introduce the EMS. When encouraging introduction, the power management device 10 performs a process (output step) to output first plant operation value information. The power management method can be said to include an output method that includes the output step.

[0088] In this power management method, first, the planning instrument 151 formulates a plan (S101). Subsequently, the output means 154 outputs information such as the operational value of the first plant (S102). At this time, the output means 154 may, for example, work together with the output means 155, notification means 156, calculation means 157, and notification means 158 to display the user interface shown in Figures 6 and 7. Subsequently, the cost calculation means 159 estimates the billing costs that the business operator will charge the customer (S103). At this time, for example, the creation means 160 may display the billing information on a display surface such as the screen of an image display device or the paper of a printed document, or in an electronic file, so that the user can recognize the billing costs. Note that the output by the output means 154 (S102) and the estimation by the cost calculation means 159 (S103) may be performed in any order.

[0089] If the customer does not agree to the implementation of EMS (S104: No), EMS will not be implemented at Plant P, and the process will end. On the other hand, if the customer agrees to the introduction of an EMS (S104: Yes), the EMS is introduced to plant P, and planning is performed by the planning means 151 and control is performed by the control means 152 (S105). In this case, for example, the planning means 151 may update the plan every 30 minutes, and the control means 152 may review the plan and control plant P each time the plan is updated. After operating the EMS continuously for a predetermined period and implementing planning and control, the creation means 160 creates billing information, and the business operator bills the user for the costs (S106). The predetermined period may be longer than the period for which the planning means 151 updates the plan (for example, one year).

[0090] As described above, according to the power management device 10 of this embodiment, the output means 154 outputs first plant operational value information, as shown in Figures 6 and 7. Therefore, for example, a user can easily grasp the operational value of a plant in which an EMS has been introduced.

[0091] As shown in Figure 6, the output means 154 outputs first plant operation value information for each of the multiple operating modes. Therefore, for example, a user can easily grasp the plant operation value for each operating mode of the EMS.

[0092] The notification means 156 notifies the user of the first plant operation value information and the second plant operation value information in a comparable manner. Therefore, for example, the user can easily grasp the degree to which the plant operation value has improved by introducing the EMS.

[0093] As shown in Figure 7, the calculation means 157 calculates the difference between the first plant operational value information and the second plant operational value information. Therefore, for example, a user can easily grasp the difference in operational value between a plant with an EMS installed and a plant without an EMS installed.

[0094] The notification means 158 notifies the user of the difference calculated by the calculation means 157, along with the factors contributing to that difference. Therefore, for example, the user can easily understand the difference in operational value between a plant with an EMS installed and a plant without an EMS, along with the factors contributing to that difference.

[0095] The technical scope of this disclosure is not limited to the embodiments described above, and various modifications can be made without departing from the spirit of this disclosure.

[0096] The cost calculation means 159 and the creation means 160 are not required. The power management device 10 does not need to function as the processing device. The power management device 10 does not need to calculate the billing costs and does not need to create billing information. Even when billing information is created, for example, it may be created directly from the first plant operating value, in which case the creation means 160 is present but the cost calculation means 159 is not required.

[0097] The calculation means 157 and the notification means 158 are not required. The control unit 15 does not need to calculate the difference between the first plant operation value information and the second plant operation value information, nor does it need to display this difference along with the factors causing the difference. Furthermore, the notification means 158 may simply display the difference, and the notification means 158 does not need to display the factors causing the difference.

[0098] Output means 155 and notification means 156 are not required. The control unit 15 does not need to notify the user in a comparable manner of first plant operation value information and second plant operation value information.

[0099] The planning means 151 and the control means 152 may be omitted. The power management device 10 may not function as the control device. In this case, the power management device 10 may function as a simple output device.

[0100] The calculation means 153 is not required. The power management device 10 (output device) may output, notify, or notify the first plant operation value information, the second plant operation value information, or the difference between the two operation value information obtained from an external source.

[0101] Furthermore, it is possible to replace the components in the above embodiments with well-known components as appropriate, without departing from the spirit of this disclosure, and the above-described modifications may be combined as appropriate.

[0102] (Note) The above embodiment can be understood, for example, as follows:

[0103] <1> An output device according to one aspect of this disclosure is an output device that outputs plant operational value information corresponding to the operational value of a plant, and is characterized by comprising an output means that outputs first plant operational value information corresponding to a first plant operational value which is the operational value of the plant in which an EMS has been introduced.

[0104] The output means outputs the first plant operational value information. Therefore, for example, a user can easily understand the operational value of a plant that has introduced an EMS.

[0105] <2> the above <1> In the output device relating to this, the EMS may be configured such that it has a plurality of operating modes, and the output means outputs the first plant operation value information for each of the plurality of operating modes.

[0106] The output means outputs first plant operation value information for each of the multiple operating modes. Therefore, for example, a user can easily understand the plant operation value for each operating mode of the EMS.

[0107] <3> the above <1> or <2> The output device may be configured to include an output means that outputs second plant operation value information corresponding to the second plant operation value, which is the operation value of the plant in which the EMS has not been introduced, and a notification means that notifies the user in a comparable manner of the first plant operation value information output by the output means and the second plant operation value information output by the output means.

[0108] The notification system provides the user with comparable information on the first plant operation value and the second plant operation value. Therefore, for example, the user can easily grasp the extent to which the plant operation value has improved by implementing the EMS.

[0109] <4> the above <1> ~ <3> An output device according to any one of the embodiments may be characterized by comprising: an output means for outputting second plant operation value information corresponding to the second plant operation value, which is the operation value of the plant in which the EMS has not been introduced; and a calculation means for calculating the difference between the first plant operation value information output by the output means and the second plant operation value information output by the output means.

[0110] The calculation method calculates the difference between the operational value information of the first plant and the operational value information of the second plant. Therefore, for example, a user can easily understand the difference in operational value between a plant with an EMS (Energy Management System) installed and a plant without an EMS.

[0111] <5> the above <4> The output device may further include a notification means that notifies the user of the difference calculated by the calculation means, along with the factors causing the difference.

[0112] The notification means informs the user of the difference calculated by the calculation means, along with the factors causing the difference. Therefore, for example, the user can easily understand the difference in operational value between a plant with an EMS (Energy Management System) and a plant without an EMS, along with the factors causing that difference.

[0113] <6> the above <5> In the output device relating to the present invention, the plant may include a waste treatment facility, and the factor may include the adjustment of the waste treatment timing of the waste treatment facility, which is adjusted by the EMS.

[0114] The factors that the notification means informs the user of are the adjustments to the waste treatment timing of the waste treatment facility, including adjustments by the EMS. Therefore, for example, a user can easily grasp the difference in operational value between a plant with an EMS and a plant without an EMS, and the difference that is due to the adjustment of waste treatment timing.

[0115] <7> the above <1> ~ <6> In any one embodiment of the output device, the plant may include a waste treatment facility, and the output means may output the first plant operational value information based on the amount or timing of waste treatment adjusted by the EMS.

[0116] The output means outputs first plant operational value information based on the amount or timing of waste treatment adjusted by the EMS. Therefore, for example, the output means can output first plant operational value information appropriately according to the waste treatment adjusted by the EMS.

[0117] <8> the above <1> ~ <7> In an output device according to any one of the embodiments, the output means may employ a configuration in which the information used to output the first plant operation value information differs depending on the type of plant.

[0118] The information used by the output means to output the first plant operational value information differs depending on the type of plant. Therefore, for example, a user can more reliably grasp the operational value of a plant that has introduced an EMS, depending on the type of plant.

[0119] <9> the above <1> ~ <8> In an output device according to any one of the above embodiments, the output means may be configured to output the first plant operation value information based on at least one of the following: electricity demand, solar power generation amount, waste treatment power generation amount, battery power generation amount, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price.

[0120] The output means outputs first plant operational value information based on at least one of the following: electricity demand, solar power generation, waste treatment power generation, battery power generation, CO2 emission price, spot market electricity price, and supply and demand adjustment market electricity price. Therefore, for example, a user can more reliably grasp the operational value of a plant that has introduced an EMS.

[0121] <10> the above <1> ~ <9> An output device according to any one of the embodiments may further include a creation means for creating billing information for billing a portion of the first plant operation value corresponding to the first plant operation value information output by the output means to the customer.

[0122] The creation mechanism generates billing information for claiming a portion of the operating value of the first plant from the customer. Therefore, for example, the operator can reliably claim a portion of the operating value of the first plant from the customer.

[0123] <11> the above <1> ~ <9> An output device according to any one of the embodiments may further include: an output means for outputting second plant operation value information corresponding to the second plant operation value, which is the operation value of the plant in which the EMS has not been introduced; a calculation means for calculating the difference between the first plant operation value information output by the output means and the second plant operation value information output by the output means; and a creation means for creating billing information for billing a portion of the operation value to the customer, corresponding to the difference calculated by the calculation means.

[0124] The creation means creates billing information for charging the customer a portion of the operating value corresponding to the difference calculated by the calculation means (the difference between the operating value information of the first plant and the value information of the second plant). Therefore, for example, a business operator can reliably charge the customer a portion of the operating value corresponding to the difference between the operating value information of the first plant and the value information of the second plant.

[0125] <12> the above <1> ~ <9> An output device according to any one of the embodiments may further include a cost calculation means for calculating a billing cost based on the first plant operation value corresponding to the first plant operation value information output by the output means, wherein the billing cost is higher when the corresponding first plant operation value exceeds a predetermined standard than when the corresponding first plant operation value does not exceed a predetermined standard.

[0126] The cost calculation means calculates the invoice cost based on the first plant operating value corresponding to the first plant operating value information output by the output means. Here, the invoice cost is higher when the corresponding first plant operating value exceeds a predetermined standard than when the corresponding first plant operating value does not exceed the predetermined standard. In this way, the invoice cost differs depending on whether the first plant operating value exceeds the predetermined standard or not, and the cost calculation means can calculate the invoice cost, for example, as a so-called performance-based fee (success fee).

[0127] <13> the above <1> ~ <9> An output device according to any one of the embodiments may further include a cost calculation means for calculating billing costs based on the first plant operation value corresponding to the first plant operation value information output by the output means, and the billing costs are paid periodically over a predetermined period.

[0128] The cost calculation means calculates the billing cost based on the first plant operating value corresponding to the first plant operating value information output by the output means. Here, the billing cost is paid periodically over a predetermined period, and the cost calculation means can, for example, calculate the billing cost when a user uses the EMS on a subscription basis.

[0129] <14> the above <1> ~ <9> An output device according to any one of the embodiments may further include a means for creating billing information for billing a customer for a portion of the first plant operation value that corresponds to the first plant operation value output by the output means, which is the first plant operation value corresponding to the first period and the first plant operation value corresponding to the second period, with the lower operation value being billed to the customer.

[0130] The creation mechanism generates billing information to charge the customer for a portion of the operating value of the first plant, which has a lower operating value, from the operating value of the first plant corresponding to the first period and the operating value of the first plant corresponding to the second period. Therefore, for example, the creation mechanism can generate conservative (safe) billing information that is likely to be accepted by the customer.

[0131] <15> An output method according to one aspect of this disclosure is an output method for outputting plant operational value information corresponding to the operational value of a plant, characterized by comprising an output step of outputting first plant operational value information corresponding to a first plant operational value which is the operational value of the plant in which an EMS has been introduced.

[0132] <16> A program according to one aspect of this disclosure is a program for causing a computer to function as an output device that outputs plant operational value information corresponding to the operational value of a plant, characterized in that the computer performs a process of outputting first plant operational value information corresponding to a first plant operational value, which is the operational value of the plant in which an EMS has been introduced. [Explanation of symbols]

[0133] 10 Output device 154 Output means 155 Output methods 156 Means of Notification 157 Calculation method 158 Notification methods 159 Cost Calculation Methods 160 Means of creation P Plant

Claims

1. An output device that outputs plant operating value information, which is an amount of money indicating the value obtained by a customer of the business operator who owns the plant through the operation of the plant in which an EMS provided by the business operator is introduced, A calculation means calculates the first plant operating value, which is the operating value of the plant in which the EMS is introduced, based on an objective function representing the operating value of the plant and performance information showing the controlled performance of the plant in which the EMS is introduced. An output means that outputs first plant operation value information indicating the first plant operation value calculated by the calculation means, A creation means for creating billing cost information indicating the billing costs from the business operator providing the EMS installed in the plant to the customer, based on the first plant operation value information output by the output means, Equipped with, The calculation means calculates the first plant operating value as a calculation result obtained using the objective function with the actual information as an input variable, The creation means calculates a portion of the first plant operation value indicated by the first plant operation value information as the billing cost indicated by the billing cost information, based on the first plant operation value information output by the output means. The first plant operating value includes the profits obtained by the EMS installed in the plant controlling the batteries included in the plant owned by the customer. An output device characterized by the following features.

2. The creation means calculates the billing cost indicated by the billing cost information to be higher when the first plant operation value indicated by the first plant operation value information exceeds the predetermined standard, compared to when the first plant operation value does not exceed the predetermined standard, based on the first plant operation value information output by the output means and a predetermined standard. The output device according to feature 1.

3. The billing costs indicated in the aforementioned billing cost information are to be paid periodically over a specified period. The output device according to feature 1.

4. The creation means calculates a portion of the first plant operation value with a lower operation value as the billing cost indicated by the billing cost information, based on the first plant operation value information which indicates the first plant operation value with a lower operation value among the first plant operation value corresponding to the first period and the first plant operation value corresponding to the second period, which is indicated by the first plant operation value information output by the output means. The output device according to feature 1.

5. The calculation means calculates the second plant operating value, which is the operating value of the plant in which the EMS has not been introduced, based on the objective function and the planning information in which the EMS has not been introduced, and uses the objective function with the planning information as an input variable as the calculation result obtained. The output device is An output means that outputs second plant operation value information indicating the second plant operation value calculated by the calculation means, A notification means that notifies the user in a comparable manner of the first plant operation value information output by the output means and the second plant operation value information output by the output means, The output device according to any one of claims 1 to 4, characterized by comprising:

6. The calculation means calculates the second plant operating value, which is the operating value of the plant in which the EMS has not been introduced, based on the objective function and the planning information in which the EMS has not been introduced, and uses the objective function with the planning information as an input variable as the calculation result obtained. The output device is An output means that outputs second plant operation value information indicating the second plant operation value calculated by the calculation means, A calculation means for calculating the difference between the first plant operation value indicated by the first plant operation value information output by the output means and the second plant operation value indicated by the second plant operation value information output by the output means, The output device according to any one of claims 1 to 4, characterized by comprising:

7. An output method for outputting plant operating value information, which is an amount of money indicating the value obtained by a customer of the business operator who owns the plant through the operation of the plant on which an EMS provided by the business operator is introduced, the operating value of the plant, A computer performs a calculation step in which it calculates a first plant operating value, which is the operating value of the plant in which the EMS is introduced, based on an objective function representing the operating value of the plant and performance information showing the controlled performance of the plant in which the EMS is introduced. An output step in which the computer outputs first plant operation value information indicating the first plant operation value calculated in the calculation step, A creation step in which a computer creates billing cost information indicating the billing cost from the business operator providing the EMS installed in the plant to the customer, based on the first plant operation value information output in the output step, Equipped with, In the calculation step, the first plant operating value is calculated as the result obtained using the objective function with the actual information as an input variable. In the creation step, based on the first plant operation value information output in the output step, a portion of the first plant operation value indicated by the first plant operation value information is calculated as the billing cost indicated by the billing cost information. The first plant operating value includes the profits obtained by the EMS installed in the plant controlling the batteries included in the plant owned by the customer. An output method characterized by the following:

8. The computer is made to function as an output device according to any one of claims 1 to 4. A program characterized by the following features.

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