Management system and management method
The management system calculates and certifies products' renewable energy usage by inputting energy and material data, addressing the challenge of managing and certifying renewable energy use in manufacturing processes with loose equipment-product correspondence.
Patent Information
- Application Number
- JP2021072600
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-04-22
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-04-22
AI Technical Summary
Existing systems struggle to manage and certify that products, including their components and raw materials, are manufactured using electricity derived from renewable energy, especially in manufacturing processes where the correspondence between manufacturing equipment and products is not strictly managed.
A management system comprising a computing unit that calculates and certifies the number and rate of products manufactured using renewable energy by inputting renewable energy supply rates and raw material amounts, ensuring that the certification is granted within the limits of available renewable energy-derived materials.
Enables accurate management and certification that products and their components are manufactured using renewable energy, even in environments where equipment-product correspondence is not strictly managed, thereby guaranteeing the use of renewable energy throughout the manufacturing process.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a management system for managing and authenticating whether a product is derived from renewable energy. [Background technology]
[0002] Japanese Patent Application Laid-Open No. 2007-148726 is known as background art in this technical field. This patent document describes a manufacturing plant energy consumption analysis system (see abstract) that extracts, from input data, a time-series amount of required power for each manufacturing device (processing unit 5), extracts, in time-series, a time-series amount of required power for each process category (processing unit 6), calculates a time-series total required power for each device or process category from the required power for each device or process category, calculates a time-series amount of energy consumption based on energy data (processing unit 7), calculates individual energy consumptions for supplying each device and process category by apportioning the energy consumption in proportion to the calculated time-series total required power, and performs an analysis process for energy consumption including changes in power load and energy consumption (processing unit 8). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-148726 Summary of the Invention [Problem to be solved by the invention]
[0004] The technology described in Patent Document 1 makes it possible to easily analyze the energy consumption of an entire manufacturing plant, including utility equipment, based on the lot flow of the manufacturing equipment, and not only allows for energy conservation considerations and planning, but also allows for management of the proportion of renewable energy used in the manufacturing process of products.However, with the technology described in Patent Document 1, in a manufacturing process where the correspondence between multiple manufacturing equipment and multiple products is not strictly managed, it is difficult to manage and certify that products are manufactured using energy derived from renewable energy.
[0005] The present invention has been made in consideration of these problems, and aims to provide a system and method that can manage and certify that a product, including the parts and raw materials that make up the product, is manufactured using electricity derived from renewable energy, even in a manufacturing process where the correspondence between manufacturing equipment and the product is not strictly managed. [Means for solving the problem]
[0006] A representative example of the invention disclosed in the present application is as follows: That is, a management system for managing renewable energy certification of a product, comprising a computing unit for executing predetermined processing and a storage device connected to the computing unit, wherein the computing unit receives input of a renewable energy supply rate in a manufacturing process and the input amount of raw materials and parts that are derived from renewable energy among the raw materials and parts input into the manufacturing process, and stores the input amount in the storage device. device and the calculation device uses the input renewable energy supply rate and the input amount of raw materials and parts derived from renewable energy to calculate at least one of the number and rate of products to be produced in the manufacturing process that are to be certified as renewable energy, and stores the information in the storage device. deviceand a RE certification granting unit that stores a renewable energy certification in the RE certification granting unit, wherein the RE certification granting unit calculates the smaller value of the number of products calculated from the input renewable energy supply rate and the number of products calculated from the input amounts of raw materials and parts derived from the input renewable energy as the number of products to be granted renewable energy certification. [Effects of the Invention]
[0007] According to one aspect of the present invention, it is possible to manage and certify that a product, including its components and raw materials, is manufactured using electricity derived from renewable energy. Other problems, configurations, and advantages will become clearer from the following description of the embodiments. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a block diagram showing an example of a renewable energy authentication management system according to a first embodiment. [Figure 2] FIG. 4 is a diagram illustrating an example of the configuration of power consumption data according to the first embodiment. [Figure 3] FIG. 2 is a diagram illustrating an example of the configuration of configuration data according to the first embodiment. [Figure 4] FIG. 2 is a diagram showing an example of the configuration of process relation data according to the first embodiment. [Figure 5] FIG. 10 is a diagram illustrating a configuration example of RE authentication data according to the first embodiment. [Figure 6] 10 is a flowchart illustrating details of a RE authentication granting process according to the first embodiment. [Figure 7] FIG. 10 is a diagram showing an example of the configuration of RE certified CO2 emission data according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments of the present invention will be described with reference to the drawings.
[0010] Example 1 In this embodiment, an example of a system for managing the proportion of renewable energy in the electricity supplied to a production line where the correspondence between manufacturing equipment and products is not strictly managed, and the proportion of raw materials and parts input to the production line that are produced using electricity derived from renewable energy, and for guaranteeing that products on the production line are produced using renewable energy, will be described. Note that this embodiment is not limited to production lines for tangible products, but can also be applied to the development of software, which is an intangible product.
[0011] FIG. 1 is a block diagram showing an example of a renewable energy authentication management system 100 according to a first embodiment of the present invention.
[0012] The renewable energy certification management system 100 is connected to a production management device 201 that manages the production status of a factory 200, power meters 202a, 202b, 202c, and 202d that measure the power consumption of each process, and an energy management system 300 via a network 600. The power meters 202a, 202b, 202c, and 202d measure the amount of power consumed in processes 203a, 203b, 203c, and 203d, respectively. The renewable energy certification management system 100 collects the amount of raw materials, parts, and other inputs in each process and the amount of manufactured goods produced in each process from the production management device 201, collects the amount of power consumed in processes 203a, 203b, 203c, and 203d from the power meters 202a, 202b, 202c, and 202d, and collects information on the renewable energy ratio of energy supplied to each process in the factory 200 from the energy management system 300.
[0013] The renewable energy certification management system 100 is a computer including a processor 1, a memory 2, a storage device 3, an input / output device 4, and a communication device 5.
[0014] The processor 1 is a computing device that executes a program stored in the memory 2. Note that part of the processing performed by the processor 1 when it executes the program may be executed by another computing device (for example, hardware such as an ASIC or FPGA). The processor 1 operates as a functional unit that provides a predetermined function by executing processing according to the program of each functional unit. For example, the processor 1 functions as the RE certification granting unit 101 by executing processing according to the RE certification granting program. The same applies to other programs. The renewable energy certification management system 100 is a computer and computer system that includes functional units realized by the processor 1.
[0015] The memory 2 includes a ROM, which is a non-volatile storage element, and a RAM, which is a volatile storage element. The ROM stores unchanging programs (e.g., BIOS) and the like. The RAM is a high-speed, volatile storage element such as a DRAM (Dynamic Random Access Memory), and temporarily stores programs executed by the processor 1 and data used when the programs are executed. For example, the RE authentication granting unit 101 is loaded as a program into the memory 2 and executed by the processor 1.
[0016] The storage device 3 is, for example, a large-capacity, non-volatile storage device such as a magnetic storage device (HDD) or a flash memory (SSD). The storage device 3 stores data (for example, power consumption data 102, configuration data 103, process-related data 104, and RE authentication data 105) used by the processor 1 when the processor 1 executes a program, and the program executed by the processor 1. That is, the program is read from the storage device 3, loaded into the memory 2, and executed by the processor 1.
[0017] The RE certification unit 101 receives input amounts of raw materials, parts, etc. and production amounts of products in each process 203 from the production management device 201 , and receives power consumption amounts from the power meter 202 .
[0018] The renewable energy certification management system 100 may have an input interface and an output interface. The input interface is an interface to which an input device such as a keyboard or a mouse is connected and which receives input from an operator. The output interface is an interface to which an output device such as a display device or a printer (not shown) is connected and which outputs the results of program execution in a format that can be viewed by the operator. Note that other devices connected to the renewable energy certification management system 100 via the network 600 may provide the input device and the output device.
[0019] The program executed by the processor 1 is provided to the renewable energy certification management system 100 via removable media (CD-ROM, flash memory, etc.) or the network 600, and is stored in a non-volatile storage device 3, which is a non-transitory storage medium. For this reason, the renewable energy certification management system 100 may have an interface for reading data from removable media.
[0020] The renewable energy certification management system 100 is a computer system configured on one physical computer or on multiple logically or physically configured computers, and may operate on a virtual computer constructed on multiple physical computer resources. For example, the subprograms constituting the RE certification granting unit 101 may each operate on separate physical or logical computers, or multiple subprograms may be combined to operate on a single physical or logical computer.
[0021] FIG. 2 is a diagram showing an example of the configuration of the power consumption data 102. As shown in FIG.
[0022] The power consumption data 102 includes a date and time 1021, a process 1022, a power consumption amount 1023, and a renewable energy rate 1024 in one record. The power consumption data 102 stores the amount of power consumption and the ratio of renewable energy for each process measured by the wattmeter 202. The date and time 1021 is data indicating, for example, a predetermined time range (for example, one day or one hour). The process 1022 is a process identifier, and the power consumption amount 1023 is the amount of power consumed in each process 203. The renewable energy rate 1024 is the ratio of energy derived from renewable energy to the amount of power consumed in each process 203. The renewable energy rate 1024 can be collected from the energy management system 300. For example, the total power consumption for process A on March 5, 2021 was 20 kWh, and the renewable energy rate was 20%, which indicates that 4 kWh of power was supplied by renewable energy.
[0023] FIG. 3 is a diagram showing an example of the configuration of the configuration data 103. As shown in FIG.
[0024] The configuration data 103 includes a process ID 1031, a product type ID 1032, a component type ID 1033, and a component quantity 1034 in one record. The process ID 1031 is an identifier representing the type of process. The product type ID 1032 is an identifier representing the type of product, such as the product model number or type. The component type ID 1033 is an identifier representing the type of raw materials, parts, or product used to manufacture the product. The component quantity 1034 is the amount of the component used to manufacture the product, expressed, for example, by number or volume. That is, the component quantity 1034 may be managed by number, like parts, or by volume, like liquids or gases. The amount of the component included in the product is used during the RE certification process. Here, RE certification indicates that the product is manufactured using renewable energy. The upper limit of the product that can be produced can be calculated by dividing the amount of raw materials or parts input by the value of the component quantity 1034. If the amount of raw materials and parts that are derived from renewable energy is known, the upper limit for the number that can be granted RE certification can be calculated. By granting RE certification to a number that does not exceed this limit, it is possible to guarantee that the product is derived from renewable energy.
[0025] FIG. 4 is a diagram showing an example of the structure of the process relation data 104. As shown in FIG.
[0026] The process relationship data 104 manages the total amount of products that are flagged as being produced from renewable energy among the products that flow between processes at a certain date and time. For example, a units of product X input as parts into process A are products that are produced from renewable energy, and c units of product A, which are products manufactured in process A, are flagged as being produced from renewable energy and are input into process C. Similarly, b units of product X input as parts into process B are products that are produced from renewable energy, and d units of product B, which are products manufactured in process B, are flagged as being produced from renewable energy and are input into process C. In this way, by managing the flow rate of products that can be given RE certification in each process, it is possible to prevent RE certification from being given in an amount that exceeds the amount that can be manufactured with the RE-certified raw materials and parts input.
[0027] FIG. 5 is a diagram showing an example of the configuration of the RE authentication data 105. As shown in FIG.
[0028] The RE certification data 105 includes a date and time 1051, a product type ID 1052, a number of RE certifications 1053, an RE certification rate 1054, a process renewable energy rate 1055, and a component RE certification amount 1056 in one record.
[0029] The date and time 1051 is data indicating the period to be aggregated (for example, daily or hourly). The product type ID 1052 is an identifier indicating the type of product, such as the product model number or type. The RE certification count 1053 is the number of products of the type manufactured during the period indicated by the date and time 1051 that have been certified as being produced using renewable energy. The RE certification rate 1054 is the ratio of the number of products certified as being produced using renewable energy to the total number of products produced for the product type. The process renewable energy rate 1055 is the ratio of renewable energy to the amount of electricity consumed in the process of manufacturing the product. The component RE certification amount 1056 is the total amount of raw materials, parts, etc. used in manufacturing. By centrally managing this information, it is easy to confirm that the number of RE certifications granted to products is within the range that can be manufactured using supplied renewable energy or renewable energy-derived parts. That is, if the RE certification number 1053 does not exceed the component RE certification amount 1056 and the RE certification rate 1054 does not exceed the process renewable energy rate 1055, it can be guaranteed that the RE certification of the product is correct.
[0030] Also, for example, if product Y shown in Figure 5 is manufactured using materials procured from an external supplier and the constituent materials do not have RE certification, it is guaranteed that the process of manufacturing 20 units of product Y is produced using renewable energy. In this way, in cases where parts and materials supplied by external suppliers that are not subject to management do not have RE certification, by managing the renewable energy rate for each process in the factory that is subject to management using the data shown in Figure 5, it is possible to guarantee that at least the processes within the management scope are manufactured using renewable energy.
[0031] 6 is a flowchart showing the details of the RE certification process. The RE certification unit 101 receives power consumption data 102, configuration data 103, process relation data 104, and the total number of manufactured products acquired from the production management device 201, and outputs RE certification data 105.
[0032] In step S101, one record is acquired from the power consumption data 102.
[0033] In step S102, for the date and time 1021 and process ID 1022 of one record acquired in step S101, the total number of manufactured products produced in the process at that date and time is acquired from the production management device 201. The acquired total number of manufactured products is multiplied by the renewable energy rate 1024 acquired in step S101 to calculate the production number a that can be set as production derived from renewable energy.
[0034] In step S103, for the process ID 1022 of one record acquired in step S101, the product type ID 1032, component type ID 1033, and component amount 1034 are acquired from the component data 103.
[0035] In step S104, the process relation data 104 is referenced to obtain the number of component type IDs 1033 to be input for the process ID 1022 of one record obtained in step S101 and the component type ID 1033 obtained in step S103.
[0036] In step S105, the total number b of products that can be manufactured in the process corresponding to the record acquired in step S101 is calculated by dividing the number of component type IDs 1033 acquired in step S104 by the component amount 1034 acquired in step S103. The value b is calculated for each component, and multiple values b are calculated for products that include multiple components.
[0037] In step S106, the value a acquired in step S102 and the value b acquired in step S105 are applied to the following formula to calculate the number of certified REs c, which is the upper limit of the number of renewable energy-derived REs that can be granted. The right-hand side of the following formula means that the smaller value of the inputs a and b is taken. c = min(a, b)
[0038] In step S107, the number of certified REs 1053, the certified RE rate relative to the total production quantity 1054, the process renewable energy rate 1055, and the certified RE amount of components 1056 assigned in steps S101 to S106 are stored in the respective items of the RE certification data 105.
[0039] For example, if 30 RE certifications can be granted for product C shown in FIG. 5, representing 20% of the total number of products manufactured, then since the renewable energy rate in the process for manufacturing product C is 30%, it can be confirmed that the energy used in the process for manufacturing 30 units of product C is guaranteed to be derived from renewable energy, given that this rate is 20% of the total number of products manufactured. Furthermore, product C includes c units of product A and d units of product B. The total number of products C that can be manufactured using these c and d units can be calculated from configuration data 103. If the calculated total number of products that can be manufactured is greater than 30, it can be guaranteed that at least 30 units of product C, including products A and B that flow from the previous process, are manufactured using renewable energy. In this way, by tracing the components of a product sequentially and granting and managing RE certifications, it is possible to guarantee that products are manufactured using renewable energy across multiple processes, even in manufacturing processes where the correspondence between manufacturing equipment and products is not strictly managed. Furthermore, by managing RE certification by quantity rather than by individual product, it is possible to guarantee that production is powered by renewable energy even in environments where it is not possible to strictly control the products, input parts, raw materials, and production lines.
[0040] <Example 2> In the second embodiment, a case where CO2 emissions of manufactured products are managed will be described. In the second embodiment, RE certified CO2 emission data 107 is used instead of the RE certified data 105 (FIG. 5) in the first embodiment. In the second embodiment, a configuration different from the first embodiment will be described, and a description of the same configuration as the first embodiment will be omitted.
[0041] The RE certified CO2 emission data 107 according to this embodiment, shown in FIG. 7, manages the CO2 emissions of products by adding component CO2 emissions 1071 to the RE certified data 105 shown in the first embodiment. For example, even if the processes for manufacturing components A and B, which are components of product C, are derived from renewable energy and have zero CO2 emissions, the CO2 emissions in the manufacturing processes of the parts and raw materials of component A or component B are stored in component CO2 emissions 1071. In this way, when using parts or raw materials that emit CO2 procured from external suppliers, managing the CO2 emissions of those parts and raw materials as shown in FIG. 7 makes it possible to manage that the manufacturing process is based on renewable energy. Furthermore, it is possible to manage the CO2 emissions of the components and raw materials, which are components, and ensure CO2 traceability even when the components are not derived from renewable energy.
[0042] The present invention is not limited to the above-described embodiments, but includes various modifications and equivalent configurations within the spirit and scope of the appended claims. For example, the above-described embodiments have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to configurations including all of the described configurations. Furthermore, part of the configuration of one embodiment may be replaced with the configuration of another embodiment. Furthermore, the configuration of another embodiment may be added to the configuration of one embodiment. Furthermore, part of the configuration of each embodiment may be added, deleted, or replaced with other configurations.
[0043] Furthermore, the aforementioned configurations, functions, processing units, processing means, etc. may be realized in part or in whole in hardware, for example by designing them as integrated circuits, or may be realized in software by having a processor interpret and execute a program that realizes each function.
[0044] Information such as programs, tables, and files that realize each function can be stored in a storage device such as a memory, a hard disk, or an SSD (Solid State Drive), or in a recording medium such as an IC card, an SD card, or a DVD.
[0045] In addition, the control lines and information lines shown are those that are considered necessary for explanation, and do not necessarily represent all the control lines and information lines that are necessary for implementation. In reality, it can be assumed that almost all components are interconnected. [Explanation of symbols]
[0046] 100 Renewable Energy Certification Management System 101 RE Certification Department 102 Power consumption data 103 Configuration Data 104 Process-related data 105 RE certification data 200 factories 201 Production control device 202 Power meter 203 Process 300 Energy Management System
Claims
1. A management system for managing renewable energy certification of products, a computing device that executes predetermined processing, and a storage device connected to the computing device; an input unit in the computing device that receives input of the supply rate of renewable energy in the manufacturing process and the input amount of raw materials and parts derived from renewable energy among the raw materials and parts input into the manufacturing process and stores the input in the storage device; The computing device has a RE certification granting unit that calculates at least one of the number and rate of renewable energy certifications to be granted to products manufactured in the manufacturing process using the input renewable energy supply rate and the input amount of raw materials and parts derived from renewable energy, and stores the calculated number and rate in the storage device; A management system characterized in that the RE certification granting unit calculates the smaller value of the number of products calculated from the input renewable energy supply rate and the number of products calculated from the input amount of raw materials and parts derived from the input renewable energy as the number of products to be granted renewable energy certification.
2. The management system according to claim 1, The management system is characterized in that the RE certification granting unit calculates the number of products produced using renewable energy by multiplying the renewable energy supply rate in the manufacturing process by the number of products produced in the manufacturing process.
3. The management system according to claim 1, The RE certification granting unit divides the amount of raw materials and parts input into the manufacturing process by the constituent amount of those raw materials and parts in the product, thereby calculating the number of products that can be granted renewable energy certification in the manufacturing process.
4. 4. The management system according to claim 3, The RE authentication granting unit If multiple types of raw materials and parts are input into the manufacturing process, calculate the number of products that can be granted renewable energy certification in the manufacturing process for each type of raw materials and parts, A management system characterized by calculating the minimum value of the calculated number of products as the number of products that can be granted renewable energy certification in the manufacturing process.
5. A management method for managing renewable energy certification of a product by a computer, comprising: the computer includes an arithmetic unit that executes predetermined processing and a storage device connected to the arithmetic unit; an input step in which the computing device receives an input of the supply rate of renewable energy in the manufacturing process and the input amount of raw materials and parts derived from renewable energy among the raw materials and parts input into the manufacturing process, and stores the input amount in the storage device; a RE certification granting procedure in which the computing device calculates at least one of the number and rate of renewable energy certifications to be granted to products manufactured in the manufacturing process using the input renewable energy supply rate and the input amounts of raw materials and parts derived from renewable energy, and stores the calculated number and rate in the storage device; A management method characterized in that in the RE certification granting procedure, the calculation device calculates the smaller value of the number of products calculated from the input renewable energy supply rate and the number of products calculated from the input amount of raw materials and parts derived from the input renewable energy as the number of products to be granted renewable energy certification.
6. The management method according to claim 5, A management method characterized in that in the RE certification granting procedure, the calculation device multiplies the renewable energy supply rate in the manufacturing process by the number of products produced in the manufacturing process to calculate the number of products produced using renewable energy.
7. The management method according to claim 5, The RE certification granting procedure is a management method characterized in that the calculation device divides the amount of raw materials and parts input into the manufacturing process by the constituent amount of those raw materials and parts in the product, to calculate the number of products that can be granted renewable energy certification in the manufacturing process.
8. The management method according to claim 7, In the RE authentication procedure, When a plurality of types of raw materials and parts are input into the manufacturing process, the calculation device calculates the number of products that can be granted renewable energy certification in the manufacturing process for each type of raw materials and parts; A management method characterized in that the calculation device calculates the minimum value of the calculated numbers of products as the number of products that can be granted renewable energy certification in the manufacturing process.
Citation Information
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