Supply chain renewable energy procurement support device and supply chain renewable energy procurement support method
The supply chain renewable energy procurement support device optimizes renewable energy procurement through predictive planning and strategic purchasing, addressing the challenges faced by SMEs to achieve RE100 in the supply chain, ensuring cost-effective and efficient renewable energy use.
Patent Information
- Application Number
- JP2022125959
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-08-05
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2042-08-05
AI Technical Summary
Existing methods for achieving 100% renewable energy (RE100) in a supply chain are hindered by the challenges faced by small and medium-sized enterprises, including financial constraints, space limitations, and fluctuating costs of renewable energy procurement, making it difficult for companies to achieve RE100 products and placing a burden on suppliers.
A supply chain renewable energy procurement support device and method that predicts energy consumption and creates a renewable energy purchasing plan, optimizing the procurement of renewable energy through direct purchases and environmental certificates, ensuring RE100 achievement without excess or deficiency, and minimizing costs for individual suppliers.
Enables the procurement of necessary renewable energy throughout the supply chain at low cost, achieving RE100 without burdening individual small and medium-sized enterprises, and effectively managing fluctuations in market prices and demand.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a supply chain renewable energy procurement support device and a supply chain renewable energy procurement support method, and more particularly to a supply chain renewable energy procurement support device and a supply chain renewable energy procurement support method that are suitable for enabling all companies constituting a supply chain to procure renewable energy as a measure against global warming. [Background technology]
[0002] In recent years, there has been international concern about the exacerbating effects of disasters caused by CO2 acting as a greenhouse gas in the global environment, and in Japan, both the public and private sectors have responded by working towards a so-called decarbonized society. Companies are also increasingly moving towards using 100% so-called "green" renewable energy (hereinafter simply referred to as "renewable energy"), such as through RE100 (Renewable Energy 100%), to provide products and services.
[0003] As such, current methods for companies to procure renewable energy for the manufacture of products or provision of services include installing green power generation equipment in-house, purchasing green power itself, or purchasing environmental certificates such as non-fossil certificates and J-Credits. Here, green power refers to electricity generated by renewable energy.
[0004] A device that uses an information processing device to support renewable energy procurement is disclosed, for example, in Patent Document 1. The device described in Patent Document 1 that determines the amount of environmental certificates to be purchased determines the target reduction amount, certain reduction amount (reduction amount from solar power generated on the company's premises), and uncertain reduction amount (reduction amount from solar power generated by sources other than the company's own premises) for each target year up to the target year in accordance with a predetermined algorithm based on the company's greenhouse gas reduction target, and then calculates the amount of environmental value certificates to be purchased for each target year that are necessary to achieve the target. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Patent No. 7021388 Summary of the Invention [Problem to be solved by the invention]
[0006] The device for supporting renewable energy procurement described in Patent Document 1 above supports companies in reducing greenhouse gas emissions.
[0007] However, in reality, many products are made by combining a large number of raw materials and parts purchased from other companies, and as a result, a supply chain exists that covers a series of steps from product development to delivery to the consumer, including the procurement of raw materials for the product, production and processing, inventory management, distribution, sales, and the logistics involved in each process.
[0008] Therefore, unless all manufacturers participating in the supply chain for raw materials and parts procurement make their products RE100, the entire supply chain will not achieve RE100 products in the true sense of the word. Even if a company simply purchases an environmental certificate to reduce its own greenhouse gas emissions in accordance with the device described in Patent Document 1, it will not be able to achieve the RE100 product target, including the raw materials and parts that make up the product.
[0009] Furthermore, when parts suppliers are small and medium-sized enterprises, even if they are asked to become RE100, it is often practically impossible for them to install their own power generation facilities and procure the renewable energy required for RE100, due to factors such as limited financial resources or limited space on land that cannot accommodate large-scale power generation facilities. Furthermore, if renewable energy is procured through the purchase of certificates, the purchase costs will be added to the cost of manufacturing the product. For parts manufacturers that supply products to multiple manufacturers, it is difficult to deal with the reality that some customers will buy RE100 parts even if they are expensive, while others want cheaper products that are not RE100.
[0010] Furthermore, with regard to the method of purchasing renewable energy, the current Corporate Power Purchase Agreement (PPA) contracts for purchasing green electricity from mega solar operators and the like are contracts for purchasing a large amount of electricity over a fairly long period of time, which makes it difficult for small and medium-sized enterprises to purchase only the amount of electricity needed to manufacture products for customers who purchase RE100 parts, even if it is expensive.
[0011] On the other hand, environmental certificates can be purchased in small quantities, but the price of environmental certificates fluctuates wildly and tends to be expensive if the purchase quantity is small. This makes it difficult to predict the impact on product manufacturing costs, placing a heavy burden on budget and cost management.
[0012] Ultimately, even if a manufacturer aims to make its products 100% RE, if the parts procurement supply chain is made up of small and medium-sized manufacturers, the effort and difficulty of cost management specific to renewable energy procurement makes it difficult to obtain cooperation from the parts manufacturers, making it difficult to provide 100% renewable energy products. Conversely, large companies that want to make their own products 100% RE could force weaker SMEs in their supply chains to do so, forcing them to bear the effort and cost burden of renewable energy procurement.
[0013] The object of the present invention is to provide a supply chain renewable energy procurement support device and a supply chain renewable energy procurement support method that can procure the necessary renewable energy throughout the supply chain, achieving RE100 at low cost and without excess or deficiency, without placing a burden on individual small and medium-sized enterprises that are suppliers. [Means for solving the problem]
[0014] The configuration of the supply chain renewable energy procurement support device of the present invention is preferably a supply chain renewable energy procurement support device for procuring renewable energy to achieve a 100% renewable energy usage rate (RE100) throughout the entire supply chain in product production, and the device holds supply chain definition data that defines the supply chain relationships in product manufacturing and whether each supplier can manufacture the product using renewable energy, and actual energy consumption data for the final assembler of the product and each supplier where the renewable energy usage rate is not 100% based on past manufacturing performance, and predicts the energy consumption for the final assembler of the product and each supplier where the renewable energy usage rate is not 100% based on past manufacturing performance based on the supply chain definition data and the actual energy consumption data, and creates a renewable energy procurement plan that determines the timing and type of renewable energy purchase based on the predicted energy consumption for the final assembler of the product and each supplier where the renewable energy usage rate is not 100% based on past manufacturing performance. [Effects of the Invention]
[0015] According to the present invention, it is possible to provide a supply chain renewable energy procurement support device and a supply chain renewable energy procurement support method that can procure the necessary renewable energy throughout the supply chain, achieving RE100 at low cost and without excess or deficiency, without placing a burden on individual small and medium-sized enterprises that are suppliers. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a block diagram showing the functional configuration of a supply chain renewable energy procurement support system. [Figure 2] This figure shows the hardware and software configuration of the supply chain renewable energy procurement device. [Figure 3] FIG. 1 is a diagram illustrating an example of a supply chain model. [Figure 4] FIG. 10 is a diagram illustrating an example of supply chain definition data. [Figure 5A]10 is a graph showing the monthly predicted energy consumption values of long-term contract supplier G. [Figure 5B] 10 is a graph showing the monthly predicted energy consumption values of short-term contract supplier H. [Figure 6A] FIG. 10 is a diagram showing an example of energy consumption prediction data (part 1). [Figure 6B] FIG. 10 is a diagram showing an example of energy consumption prediction data (part 2). [Figure 7A] FIG. 10 is a diagram illustrating the relationship between the predicted energy consumption of each supplier and arranger and the amount of green electricity procured. [Figure 7B] This is a diagram explaining the relationship between the predicted energy consumption of each supplier and arranger and the amount of renewable energy procured by the arranger. [Figure 7C] This is a diagram explaining the relationship between the amount of renewable energy procured by the arranger, the amount of green electricity procured, and the amount of renewable energy procured under the environmental certificate procured by the arranger. [Figure 8] FIG. 10 is a diagram showing the relationship between the purchase amount and purchase timing of environmental certificates and market forecasts. [Figure 9] 10 is a flowchart showing a series of processes for creating a renewable energy procurement plan for the next fiscal year. [Figure 10] 10 is a flowchart showing a process for determining a green electricity purchase price. [Figure 11] 10 is a flowchart showing details of a process for creating an environmental certificate plan. [Figure 12] 10 is a flowchart showing renewable energy procurement and renewable energy procurement adjustment processing. [Figure 13] 10 is a flowchart showing details of the renewable energy procurement adjustment process. DETAILED DESCRIPTION OF THE INVENTION
[0017] An embodiment of the present invention will be described below with reference to FIGS.
[0018] First, an overview and premise of the supply chain renewable energy procurement support system of this embodiment will be described. In this embodiment, a company that arranges the procurement of renewable energy throughout the entire supply chain with the aim of making its own products RE100 is referred to as an "arranger" (final assembler of the product), and a company upstream in the supply chain that supplies the arranger with the parts, materials, etc. necessary for manufacturing the product is referred to as a "supplier." The arranger then requests each supplier, working their way up the chain, to make the parts and raw materials delivered to the arranger RE100, picking out suppliers that cannot fulfill the request on their own, and using the supply chain renewable energy procurement support device to create a renewable energy purchasing plan for those companies' raw materials and parts to be supplied to the arranger, so that the arranger can procure the renewable energy necessary for RE100, including their own supply.
[0019] The renewable energy purchasing plan created in this embodiment is an annual plan for determining when and how much of a plurality of renewable energy products to purchase each fiscal year.
[0020] Specifically, current methods for procuring renewable energy include direct purchase of green power, such as corporate power purchase agreements (PPAs), and environmental certificates, such as J-Credits, non-fossil fuel certificates, and green power certificates, which purchase only environmental value. While direct purchase of green power allows for stable and relatively low-cost purchase of renewable energy, contracts are typically long-term, typically five years or more, and are typically fixed-price contracts. This requires long-term production planning for companies and makes it difficult to respond to sudden fluctuations in demand. While environmental certificates can generally be purchased at any time and in any quantity, actual purchases must take into account the large fluctuations in market quantities and prices. Furthermore, non-fossil fuel certificates have expiration dates (they are invalid if not used within the fiscal year). Therefore, improper purchasing of non-fossil fuel certificates can lead to budget overruns and waste.
[0021] Reflecting this current situation, the supply chain renewable energy procurement support device of this embodiment creates a renewable energy purchasing plan that determines the allocation and purchase timing of the amount of direct green electricity purchases and the amount of each environmental certificate purchase, so that the necessary renewable energy can be procured at low cost without excess or shortage.
[0022] In addition, as new types of renewable energy products come on the market and old types of products disappear due to changes in laws, etc., the system of this embodiment is designed to register and use algorithms for creating renewable energy purchase plans, so that when market trends in renewable energy procurement change, it is possible to change to a new one, or to register multiple algorithms and select and use them.
[0023] Next, the configuration of the supply chain renewable energy procurement support system will be explained using Figures 1 and 2.
[0024] As shown in Figure 1, the supply chain renewable energy procurement support system is configured with a supplier company server 10, a green electricity sales company server 20, an environmental certificate sales company server 30, and a supply chain renewable energy procurement support device 100 connected via a network 5.
[0025] The network 5 may be a LAN (Local Area Network) within the arranger company, or a global network such as the Internet.
[0026] The supplier company server 10 is a server that manages information relating to production activities at the supplier company, and includes a parts production energy forecast and performance information transmission unit 11, a supplier contract unit 12, and a parts production energy forecast and performance DB (Data Base) 13.
[0027] The parts production energy forecast / actual result information transmission unit 11 is a functional unit that transmits data related to parts production energy forecasts and actual results in the production activities of suppliers to the supply chain renewable energy procurement support device 100. The supplier contract unit 12 is a functional unit that manages contracts between arrangers and suppliers and between suppliers themselves.
[0028] The parts production energy forecast and performance DB (Data Base) 13 is a database of parts production energy forecast and performance in the production activities of suppliers.
[0029] The green power sales company server 20 is a server that trades green power, such as a corporate PPA, and includes a green power trading unit 21 and a green power trading DB 22.
[0030] The green electricity trading unit 21 is a functional unit that sells and manages green electricity to external companies.
[0031] The green power trading DB 22 is a database that manages information regarding green power trading with external companies.
[0032] The environmental certificate selling company server 30 is a server that trades environmental certificates with external companies, and includes an environmental certificate trading unit 31 and an environmental certificate trading DB 32 .
[0033] The environmental certificate trading unit 31 is a functional unit that sells and manages environmental certificates to external companies.
[0034] The environmental certificate transaction DB 32 is a database that manages transaction information related to environmental certificates, and includes, for example, non-fossil certificate transaction data 321, J-credit transaction data 322, and green power certificate transaction data 323.
[0035] Environmental certificates are securitizations of environmental value. Among these, non-fossil fuel certificates have a consumption deadline within the fiscal year, but are widely circulated and are the cheapest of the certificates, while J-Credits and Green Power Certificates have no expiration date, but are more expensive than non-fossil fuel certificates and are less widely circulated.
[0036] The supply chain renewable energy procurement support device 100 is a server device operated by an arranger company that receives information on production activities from suppliers and creates a renewable energy purchasing plan for the entire supply chain.It has a supply chain information acquisition unit 101, a renewable energy procurement method registration unit 111, a renewable energy procurement plan creation unit 112, a renewable energy procurement plan adjustment unit 113, a renewable energy price prediction unit 114, a renewable energy procurement information input / output unit 121, a supplier company I / F unit 131, a green power company I / F unit 132, an environmental certificate sales company I / F unit 133, a supply chain DB 140, and a renewable energy procurement management DB 150.
[0037] The supply chain information acquisition unit 101 is a functional unit that acquires information on predicted and actual energy values of parts related to products from the supplier company server 10 via the network 5. The renewable energy procurement method registration unit 111 is a functional unit that registers an algorithm for creating a renewable energy procurement plan. The renewable energy procurement plan creation unit 112 is a functional unit that creates a renewable energy procurement plan based on supplier and arranger energy consumption prediction data 143 (described below) in accordance with the registered algorithm. The renewable energy procurement plan adjustment unit 113 is a functional unit that continuously monitors the differences between the renewable energy purchase plan and actual purchase results, and between the planned and actual energy usage amounts, and adjusts the contents of the purchase plan. The renewable energy market price prediction unit 114 is a functional unit that predicts the market price of environmental certificates related to renewable energy. The renewable energy procurement information input / output unit 121 is a functional unit that inputs and outputs information related to renewable energy procurement in the supply chain renewable energy procurement support device 100 to a user by displaying it on a display device or printing it on a printer. The supplier company I / F unit 131 is a functional unit that performs interface processing with the supplier company server 10. The green electricity company I / F unit 132 is a functional unit that performs interface processing with the green electricity sales company server 20. The environmental certificate sales company I / F unit 133 is a functional unit that performs interface processing with the environmental certificate sales company server 30.
[0038] The supply chain DB 140 is a database relating to information on the supply chain related to the product, and includes supply chain definition data 141, actual energy consumption data 142, and predicted energy consumption data 143.
[0039] The supply chain definition data 141 is setting data on the company structure and transaction information of the supply chain for raw material and parts procurement for products shipped by the arranger. The actual energy consumption data 142 is actual data on the energy consumed by each company in the supply chain for production activities. The predicted energy consumption data 143 is data on the energy that each company in the supply chain is predicted to consume for production activities.
[0040] The renewable energy procurement management DB 150 is a database that manages information for creating a renewable energy procurement plan, and includes renewable energy procurement algorithm data 151, renewable energy procurement performance data 152, renewable energy procurement plan data 153, and renewable energy procurement market price data 154.
[0041] The renewable energy procurement algorithm data 151 is data indicating an algorithm for creating a renewable energy procurement plan. The data indicating the algorithm may be data for executing a program, such as a program name or file name, or data indicating details such as the expiration date and type of an environmental certificate and the unit price of green power. The renewable energy procurement performance data 152 is data indicating the past performance of renewable energy procurement by companies involved in the supply chain. The renewable energy procurement plan data 153 is data on a renewable energy procurement plan created by the supply chain renewable energy procurement support device. The renewable energy procurement market price data 154 is forecast data on the market price of environmental certificates and the market price of green power.
[0042] Next, we will explain the hardware and software configuration of the supply chain renewable energy procurement device using Figure 2. The supply chain renewable energy procurement support device 100 has a hardware configuration that is realized by, for example, a general information processing device such as a personal computer shown in FIG.
[0043] The supply chain renewable energy procurement support device 100 is configured in such a way that a CPU (Central Processing Unit) 202, a main memory device 204, a network I / F (Interface) 206, a display I / F 208, an input / output I / F 210, and an auxiliary memory I / F 212 are connected by a bus.
[0044] The CPU 202 controls each part of the supply chain renewable energy procurement support apparatus 100, and loads and executes necessary programs into the main memory device 204.
[0045] The main storage device 204 is typically configured as a volatile memory such as a RAM, and stores the programs executed by the CPU 202 and data referenced by the CPU 202.
[0046] The network I / F 206 is an interface for connecting to the network 5 .
[0047] The display I / F 208 is an interface for connecting a display device 220 such as an LCD (Liquid Crystal Display).
[0048] The input / output I / F 210 is an interface for connecting input / output devices. In the example of Fig. 2, a keyboard 230 and a mouse 232, which is a pointing device, are connected.
[0049] The auxiliary storage I / F 212 is an interface for connecting an auxiliary storage device such as an HDD (Hard Disk Drive) 250 or an SSD (Solid State Drive).
[0050] The HDD 250 has a large storage capacity and stores programs for executing this embodiment. A supply chain information acquisition program 261, a renewable energy procurement method registration program 262, a renewable energy procurement plan creation program 263, a renewable energy procurement plan adjustment program 264, a renewable energy market price forecasting program 265, a renewable energy procurement information input / output program 266, a supplier company I / F program 267, a green power company I / F program 268, and an environmental certificate sales company I / F program 269 are installed in the supply chain renewable energy procurement support device 100.
[0051] The supply chain information acquisition program 261, the renewable energy procurement method registration program 262, the renewable energy procurement plan creation program 263, the renewable energy procurement plan adjustment program 264, the renewable energy market price forecast program 265, the renewable energy procurement information input / output program 266, the supplier company I / F program 267, the green power company I / F program 268, and the environmental certificate sales company I / F program 269 are programs that respectively realize the functions of the supply chain information acquisition unit 101, the renewable energy procurement method registration unit 111, the renewable energy procurement plan creation unit 112, the renewable energy procurement plan adjustment unit 113, the renewable energy market price forecast unit 114, the renewable energy procurement information input / output unit 121, the supplier company I / F unit 131, the green power company I / F unit 132, and the environmental certificate sales company I / F unit 133.
[0052] The HDD 250 also stores a supply chain DB 140 and a renewable energy procurement management DB 150 .
[0053] Next, an overview of the renewable energy planning process of the supply chain renewable energy procurement support apparatus will be described with reference to FIGS. 3 to 8. FIG.
[0054] 1) Creation of manufacturing and shipping plans, supplier manufacturing plans, and supply chain definition data Arrangers create manufacturing and shipping plans for their company's products, determining which products to ship and how many to ship, and select suppliers and enter into purchasing contracts for materials and parts so that they can gather the necessary raw materials and parts before the start of production of each product.At this time, suppliers are divided into "long-term contract suppliers" with which the company has delivered parts or raw materials every month for the past few years and with which it has formed a so-called partnership, with whom it will continue the contract in the future, and "short-term contract suppliers" with whom it has not formed a partnership.
[0055] In the supply chain renewable energy procurement support system of this embodiment, an arranger draws up a product shipping plan for the following fiscal year and thereafter during the previous fiscal year and enters into a contract with a supplier. Since the arranger wants to make their own products RE100, when signing a contract with a supplier, they confirm whether or not they can provide parts for RE100 production. Here, even if a supplier is able to assemble a certain part A using RE100 (can be manufactured using green energy), if the supplier is unable to manufacture a part B used to assemble that part A using RE100 (cannot be manufactured using green energy), then RE100 will not be permitted for the manufacture of part A.
[0056] In this way, the supply relationships of suppliers when manufacturing parts are traced, and supplier definition data 141 is created up to the parts and raw materials that are RE100 eligible.
[0057] As a model of the supply chain in this embodiment, as shown in Figure 3, it is assumed that Company A, an arranger, plans to ship 1,000 units of a product called "Product A" (assuming it is an electronic device) in December of the following year, and that a supply chain consisting of 25 companies, from Company B to Company Z, exists to procure materials and parts for the production of the product.
[0058] In terms of the supply chain, a chain of suppliers is created, such as semiconductor raw materials (manufactured by Company E) → MCU (manufactured by Company C) → substrate (manufactured by Company B), and alloy materials (manufactured by Company F) → parts (manufactured by Company B) → substrate (manufactured by Company B).
[0059] Finally, the board (manufactured by Company B), parts (manufactured by Company G), ..., and box (manufactured by Company W) are delivered to Company A, the arranger, and product a is assembled.
[0060] The supply chain definition data 141 includes, for example, transaction information of purchased items from each supplier for product a, RE100 information, and contract-related information, as shown in FIG.
[0061] In the example shown in FIG. 4, for example, the following information is included: Arranger "Company A" plans to purchase "500 units" of the purchase item "circuit boards" from supplier "Company B" in "August" and "500 units" in "September." In this case, supplier "Company B" does not accept RE100, and the contract period between supplier "Company B" and delivery destination "Company A" is "long-term." "Company B" purchases the purchase item "Part D" from supplier "Company D." - The production of purchased item "Part D" by supplier "Company D" is "RE100 Unacceptable." "Company D" purchases the product "steel" from supplier "Company F." The production of the purchased item "steel" by supplier "Company F" is RE100 "OK" and is carried out using green energy. Arranger "Company A" purchases the purchase item "Parts" from supplier "Company G". Supplier "Company G" does not allow RE100 for the manufacture of "parts," and the manufacturing is not done using green energy.
[0062] When a plurality of products are shipped and sold, such supply chain definition data 141 is created for the shipping plan of each product.
[0063] 2) Energy consumption forecasts for each supplier and arranger The arranger procures the amount of renewable energy it needs, as well as the amount of renewable energy needed by suppliers that cannot be RE100 certified on their own. Therefore, during the period when each supplier operates their production line to manufacture deliveries to the arranger, the amount of electricity and other energy used during that period (city gas, heavy oil, LPG, etc.) is recorded as the CO2 emission equivalent amount and as energy consumption for each month.
[0064] To achieve this, suppliers that cannot achieve RE100 must obtain the above energy consumption forecast for the following fiscal year before the start of each fiscal year and send it to the supply chain renewable energy procurement support device 100. This can be obtained, for example, by installing a power meter on the distribution board of the production line, and using the power consumption of the production line for similar parts and components in the past and the ratio of production volume and number of units to predict the power consumption according to the planned production number of deliveries to the arranger for each month of the following year. For example, if 400 kW was consumed per similar part in the past, producing 300 units in June of the following year will result in a power consumption of 400 kW x 300 = 120,000 kW. Predictions can be made similarly for fuels other than electricity.
[0065] FIG. 5A is a graph showing the monthly predicted energy consumption values of long-term contract supplier G, and FIG. 6A is energy consumption prediction data 143 for G. As such, G manufactures part G over the course of a year. Here, the graph on the left is an electricity usage graph with the vertical axis in units of KWh, and the graph on the right is a gas usage graph with the vertical axis in units of t-CO2 (CO2 emission equivalent).
[0066] On the other hand, FIG. 5B is a graph showing the monthly predicted energy consumption values of short-term contract supplier D, and FIG. 6B is energy consumption prediction data 143 for D.
[0067] Company D manufactures parts for Company A only in August and September, and energy consumption is an issue only during these months.
[0068] 3) Calculating the amount of green electricity procured The arranger calculates the amount of green electricity to be directly purchased in order to reduce the cost of converting product manufacturing to RE100. As explained above, direct green electricity purchases (corporate PPA) generally involve long-term contracts, so the amount is allocated to the arranger's renewable energy procurement with long-term contract suppliers. In addition, the policy is to contract for the amount of electricity that will definitely be used to avoid over-procurement.
[0069] As shown in Figure 7A, the power consumption of the lowest month in the power consumption forecast by Arranger A is P min (Arranger A) and the minimum monthly power consumption forecast for long-term contract supplier A is P min (Supplier B), ..., the minimum monthly power consumption forecast for long-term contract supplier Z is P min (Supplier Z), the green power procurement value for this fiscal year is P total is the sum of them, P min (Arranger A) + P min (Supplier B)+…+P min (Supplier Z).
[0070] 4) Calculation of the amount of renewable energy to be procured by the arranger The amount of renewable energy procurement calculated by the arranger is the monthly sum of the amount of energy consumed by the arranger and each supplier in non-RE100 production, converted into t-CO2, based on the calculation in "2) Energy consumption forecast for each supplier and arranger." As shown in Figure 7B, when the amount of energy consumed in month m, converted into t-CO2, is C (production entity, m), the amount of renewable energy procurement C that the arranger should procure in month m is total (m) is C(Arranger A,m) + C(Supplier B,m) + ... + C(Supplier Z,m).
[0071] 5) Calculation of the amount of renewable energy procured in the arranger's environmental certificate The arranger will calculate the green power procurement amount P for the fiscal year calculated in "3) Calculation of the amount of green power procurement." total and 4) the amount of renewable energy procured by the arranger calculated in the calculation of the amount of renewable energy procured by the arranger, C total Based on (m), the amount of renewable energy procurement that the arranger should purchase through environmental certificates is calculated. The amount of renewable energy procurement that the arranger should purchase through environmental certificates for month m, C cert (m) is C as shown in Figure 7C. cert (m)=C total (m)-P total This becomes:
[0072] 6) Purchase of environmental certificates by arrangers The arranger will purchase environmental certificates in several installments within the fiscal year based on the monthly renewable energy procurement amount calculated in "5) Calculation of the arranger's renewable energy procurement amount using environmental certificates."
[0073] The reason for purchasing environmental certificates in several installments in this way is that the calculated amount of renewable energy procurement in the environmental certificates is based on the arranger's and each supplier's forecasts of energy consumption in their production activities, the value of environmental certificates fluctuates according to market prices, and as already mentioned, some environmental certificates have expiration dates, such as non-fossil certificates, while others do not, such as J-Credits and green power certificates. Generally, environmental certificates with expiration dates are relatively expensive, while environmental certificates without expiration dates are relatively inexpensive. Therefore, the arranger can purchase environmental certificates flexibly according to the forecast amount of renewable energy procurement, and also keep the total cost down in terms of the expiration dates of the environmental certificates.
[0074] Market prices for environmental certificates are forecast based on the current prices of each certificate on the service sites of renewable energy sellers and long-term forecasts of weather and temperature. This forecast predicts the amount of environmental certificates on the market, such as a significant nationwide drop in solar power generation due to a prolonged rainy season, or that winter solar thermal power generation will not fall as much as usual due to a warm winter, and estimates increases or decreases in demand based on the rise of the environmental boom, etc. Market prices for environmental certificates are forecast by type, but the certificate with the lowest price per unit of electricity is used to determine the purchase timing and quantity.
[0075] In the model shown in Figure 8, environmental certificates are purchased in four installments within the fiscal year (starting in early April and ending at the end of March), and are purchased at times when the predicted market price for environmental certificates reaches a trough according to the forecast. The first purchase is scheduled for early May, the second purchase for early October, the third purchase for early November, and the fourth purchase for early March.
[0076] And the first purchase amount is for April to June: C cert (4)+Ccert (5)+C cert (6) The second purchase amount is for July to October: C cert (7)+C cert (8)+C cert (9)+C cert (10) The third purchase amount is for November to February: C cert (11)+C cert (12)+C cert (1)+C cert (2) The fourth purchase amount is for March: C cert Suppose it was (3).
[0077] It should be noted here that environmental certificates with expiration dates can also be used for past renewable energy procurements within the fiscal year.
[0078] Therefore, it is reasonable to purchase relatively inexpensive environmental certificates with expiration dates for the first to third purchases, and relatively expensive environmental certificates without expiration dates for the fourth purchase. This is because if the fourth purchase cannot be used within the fiscal year, it can be carried over to the next fiscal year.
[0079] Another option is to allocate 30% of the third purchase to environmental certificates with an expiration date and 70% to environmental certificates without an expiration date.
[0080] In other words, generally, the ratio of allocation of environmental certificates without expiration dates to those with expiration dates increases as the end of the fiscal year approaches.
[0081] 7) Adjustment of renewable energy procurement amount The renewable energy procurement plan in "6) Arranger's Purchase of Environmental Certificates" involved purchasing environmental certificates based on a forecast of non-RE100 energy consumption in the supply chain for the previous year, which may result in a discrepancy with the actual energy consumption in production activities in the supply chain. In such cases, the arranger will make adjustments for each purchase month if the difference (which may be an increase or decrease) between the forecast of cumulative non-RE100 energy consumption in the purchase month and the actual energy consumption in production activities in the supply chain is greater than a specified threshold.
[0082] In the example of Figure 8, for the arranger, the first to third purchases would be in accordance with the environmental certificates, and relatively inexpensive open-ended environmental certificates would be purchased to minimize costs, and the fourth purchase would be a backup purchase, and if necessary, an environmental certificate with a time limit would be purchased even if it is relatively expensive.This could be a way for the arranger to procure renewable energy that minimizes costs.
[0083] In that case, in the example of Figure 8, when making adjustments, the arranger will adjust the number of environmental certificates to be purchased in the first to third purchases so that costs are minimized according to the environmental certificates (purchasing environmental certificates with low market prices and reducing the number of environmental certificates with high market prices), and the fourth and final purchase of the fiscal year will be considered a preliminary purchase, so that there will be no loss even if an extra purchase is made during adjustments (they can be used in the next fiscal year as well).If additional environmental certificates are to be purchased, it may be optimal to purchase relatively expensive environmental certificates with no expiration date, and when reducing the number of environmental certificates to be purchased, adjust the number of relatively inexpensive environmental certificates with no expiration date.
[0084] Next, the details of the processing of the supply chain renewable energy procurement support device will be described with reference to FIGS.
[0085] First, a series of processes for creating a renewable energy procurement plan for the next fiscal year will be described with reference to FIG. First, the supply chain renewable energy procurement support apparatus 100 sets a renewable energy procurement method (renewable energy procurement algorithm) (S100). The setting information is saved as renewable energy procurement algorithm data 151.
[0086] Next, the supply chain renewable energy procurement support apparatus 100 acquires the supply chain definition data 141 related to products to be shipped in the next fiscal year and thereafter (S101).
[0087] Next, the supply chain renewable energy procurement support device 100 refers to the supply chain definition data 141 and extracts joint suppliers for renewable energy procurement (S102).
[0088] Next, the supply chain renewable energy procurement support device 100 refers to the supply chain definition data 141 and predicts non-RE100 energy consumption for each arranger and each supplier (S103).
[0089] Next, the supply chain renewable energy procurement support apparatus 100 determines the green electricity purchase price (S104). Details of this process will be explained later with reference to FIG.
[0090] Next, the supply chain renewable energy procurement support device 100 accesses the green power sales company server 20 and concludes a long-term contract for purchasing green power in accordance with the green power purchase price determined in S104 (S105).
[0091] Next, the supply chain renewable energy procurement support apparatus 100 performs a process of creating an environmental certificate delivery plan (S106). Details of this process will be described later with reference to FIG.
[0092] Next, the supply chain renewable energy procurement support device 100 accesses the supplier company server 10 and determines whether or not there has been a change in the contract between the arranger and the supplier (S107). If there has been a change in the contract between the arranger and the supplier (S107: YES), the process proceeds to S110; if there has not been a change in the contract between the arranger and the supplier (S107: NO), the process ends.
[0093] If there is a change in the contract between the arranger and the supplier in S107, the supply chain renewable energy procurement support device 100 updates the supply chain definition data 141 (S110) and returns to S101.
[0094] Next, the process of determining the green electricity purchase price will be described in detail with reference to FIG. This is the process corresponding to S104 in FIG. First, the supply chain renewable energy procurement support device 100 refers to the supply chain definition data 141 and determines whether or not there are any long-term contract suppliers among the joint suppliers of renewable energy procurement that consume energy that is not RE100 (S200).If there are any such long-term contract suppliers (S200: YES), the process proceeds to S201; if there are no long-term contract suppliers (S200: NO), the process proceeds to S210.
[0095] Next, in S200, if there is a relevant long-term contract supplier, the supply chain renewable energy procurement support device 100 refers to the supply chain definition data 141, extracts the month with the lowest non-RE100 power consumption for each long-term contract supplier / arranger (S201), and calculates the sum of the power consumption values for the month with the lowest non-RE100 power consumption for each long-term contract supplier / arranger as the monthly green power purchase value (S202).
[0096] Next, if there is no applicable long-term contract supplier in S200, the supply chain renewable energy procurement support device 100 refers to the supply chain definition data 141, extracts the month with the lowest non-RE100 power consumption for the arranger only (S210), and sets the power consumption value for the month with the lowest non-RE100 power consumption for the arranger to the monthly green power purchase value (S211). This is because it is rational for the arranger to purchase green power throughout the year for non-RE100 power consumption, even when there is no applicable long-term contract supplier.
[0097] Next, the details of the process for creating an environmental certificate delivery plan will be described with reference to FIG. The supply chain renewable energy procurement support device 100 refers to the energy consumption forecast data 143 and calculates the total value of non-RE100 power consumption of each supplier / arranger under a long-term contract with the supplier / arranger (S300).
[0098] Next, the supply chain renewable energy procurement support device 100 calculates the amount of renewable energy to be procured under the environmental certificate based on the total amount of non-RE100 electricity consumed by each supplier / arranger under long-term contracts and the green electricity purchase amount determined in S104 (S301).
[0099] Next, the supply chain renewable energy procurement support device 100 acquires the renewable energy procurement market price data 154 and predicts the market price of the environmental certificate (S302).
[0100] The market price of environmental certificates is based on the assumption that it is possible to predict the market price based on past renewable energy procurement market data154 and weather forecasts. The graph of the market price data for environmental certificates shows that the cycle of peaks and valleys is roughly consistent throughout the year, and when the weather is good, the market price of environmental certificates tends to fall, and when the weather is bad, the market price of environmental certificates tends to rise.
[0101] Next, the supply chain renewable energy procurement support device 100 determines the purchase month of the environmental certificate and the purchase amount and allocation by type of environmental certificate based on the market price forecast of the environmental certificate, and stores it in the renewable energy procurement plan data 153 (S303).
[0102] For example, as shown in Figure 8, environmental certificates are purchased four times a year, and in order to keep costs down, environmental certificates with a low unit price per kW are purchased based on the market price forecast at that time.For the first to third purchases, 90% of the total renewable energy procurement amount through environmental certificates is made up of relatively inexpensive limited-term environmental certificates, and only for the fourth purchase is a relatively expensive open-term environmental certificate purchased.
[0103] Next, the renewable energy procurement and renewable energy procurement adjustment process will be described with reference to FIG. Renewable energy procurement and renewable energy procurement adjustment processing will be carried out from the next fiscal year onwards after the renewable energy procurement plan is created.
[0104] First, the supply chain renewable energy procurement support device 100 acquires the renewable energy procurement plan data 153 of each supplier arranger (S400).
[0105] Next, the supply chain renewable energy procurement support device 100 accesses the green power sales company server 20 to sign a contract for purchasing green power, and accesses the environmental certificate sales company server 30 to purchase an environmental certificate (S401).
[0106] Next, the supply chain renewable energy procurement support apparatus 100 sets the renewable energy procurement record data 152 (S402).
[0107] Next, the supply chain renewable energy procurement support device 100 adjusts the renewable energy procurement using the environmental certificate (S403). Details of the adjustment of the renewable energy procurement using the environmental certificate will be explained next with reference to FIG.
[0108] Next, details of the renewable energy procurement adjustment process will be described with reference to FIG. First, the supply chain renewable energy procurement support apparatus 100 acquires the cumulative renewable energy procurement amount from the renewable energy procurement result data 152 (S500).
[0109] Next, the supply chain renewable energy procurement support device 100 accesses the supplier company server 10 and calculates the actual cumulative non-RE100 energy consumption amount of each supplier arranger (S501).
[0110] Next, the supply chain renewable energy procurement support device 100 calculates the difference between the actual cumulative renewable energy procurement amount and the actual cumulative non-RE100 energy consumption amount of each supplier / arranger (S502), and if the absolute value of the difference between the actual cumulative renewable energy procurement amount and the actual cumulative non-RE100 energy consumption amount of each supplier / arranger is greater than a predetermined threshold (S503: YES), proceed to S504, and if it is less than the predetermined threshold (S503: NO), return to S500.
[0111] In S502, when the absolute value of the difference between the actual cumulative renewable energy procurement amount and the actual cumulative non-RE100 energy consumption amount of each supplier / arranger is greater than a predetermined threshold, the supply chain renewable energy procurement support device 100 generates an alarm on an alarm screen (S504) (not shown).
[0112] Next, the supply chain renewable energy procurement support device 100 determines whether it is the month for purchasing an environmental certificate according to the renewable energy procurement plan (S505), and if it is the month for purchasing an environmental certificate (S505: YES), proceeds to S506, and if it is not the month for purchasing an environmental certificate (S505: NO), returns to S500.
[0113] In S505, if it is the purchase month of the environmental certificate, it is determined whether the purchase month is the final purchase month of the fiscal year (S506). If the purchase month is the final purchase month of the fiscal year (S506: YES), the process proceeds to S507, and if the purchase month is not the final purchase month of the fiscal year (S506: NO), the process proceeds to S510.
[0114] In S506, if the purchase month is the final purchase month of the fiscal year, the increase in the procurement of environmental certificates is adjusted by purchasing environmental certificates without an expiry date, and the decrease is adjusted by reducing the purchase of environmental certificates with an expiry date (S507), and the process ends.
[0115] If it is determined in S506 that the purchase month is not the final purchase month of the fiscal year, the purchase amount is adjusted so that the purchase cost of the limited-term environmental certificate is minimized (S510), and the process returns to S500.
[0116] As described above, the supply chain renewable energy procurement support device of this embodiment can eliminate the hassle of procuring renewable energy between a company that wants to manufacture RE100 products and multiple companies connected upstream in the product supply chain, support low-cost and stable renewable energy procurement, and promote decarbonization throughout the entire supply chain.
[0117] In other words, with the supply chain renewable energy procurement support device of this embodiment, a company aiming to make its products RE100 can automatically create a joint renewable energy procurement plan based on the product production schedules of each upstream company in the supply chain, including small and medium-sized enterprises, thereby eliminating the burden on individual small and medium-sized enterprises (suppliers) of procuring renewable energy individually, and enabling the necessary renewable energy to be procured throughout the entire supply chain at low cost and without excess or shortage. [Explanation of symbols]
[0118] 5…Network, 10...Supplier company server, 11...Parts production energy forecast and performance information transmission unit, 12...Supplier contract unit, 13...Parts production energy forecast and performance DB, 20...Green power sales company server, 21...Green power trading unit, 22...Green power trading DB, 30...Environmental certificate sales company server, 31...Environmental certificate trading department, 32...Environmental certificate trading DB, 321...Non-fossil certificate trading data, 322...J-credit trading data, 323...Green power certificate trading data, 100...Supply chain renewable energy procurement support device, 101...supply chain information acquisition unit, 111...renewable energy procurement method registration unit, 112...renewable energy procurement plan creation unit, 113...renewable energy procurement plan adjustment unit, 114...renewable energy market price forecasting unit, 121...renewable energy procurement information input / output unit, 131...supplier company I / F unit, 132...green power company I / F unit, 133...environmental certificate sales company I / F unit, 140...supply chain DB, 141...supply chain definition data, 142...energy consumption actual data, 143...energy consumption forecast data, 150...renewable energy procurement management DB, 151...renewable energy procurement algorithm data, 152...renewable energy procurement actual data, 153...renewable energy procurement plan data, 154...renewable energy procurement market price data
Claims
1. A supply chain renewable energy procurement support device for procuring renewable energy to achieve a renewable energy usage rate of 100% (RE100) throughout the supply chain in the production of a product, Supply chain definition data that defines the supply chain relationships in the manufacturing of the product and whether each supplier can manufacture using renewable energy; We retain energy consumption data from past manufacturing records, including the final assembly of the product and each supplier, where the renewable energy usage rate is not 100%. Based on the supply chain definition data and the energy consumption performance data, a prediction is made of energy consumption that is not 100% renewable energy usage rate at the final assembler of the product and each supplier from past manufacturing performance; A supply chain renewable energy procurement support device that creates a renewable energy procurement plan that determines the timing and type of renewable energy purchases based on past manufacturing performance and predictions of energy consumption by the product's final assembler and each supplier, even if the renewable energy usage rate is not 100%.
2. 2. The supply chain renewable energy procurement support device according to claim 1, wherein the type of renewable energy procurement is direct purchase of green power or environmental certificate.
3. 3. The supply chain renewable energy procurement support device according to claim 2, wherein the environmental certificates include environmental certificates with expiration dates and environmental certificates without expiration dates.
4. 3. The supply chain renewable energy procurement support device according to claim 2, wherein the environmental certificate is a non-fossil certificate, a J-Credit, or a green power certificate.
5. The supply chain definition data includes information on whether each supplier has a long-term contract for supplying parts to other suppliers or final assemblers; The supply chain renewable energy procurement support device of claim 2, characterized in that renewable energy is procured through the direct purchase of green electricity for the predicted amount of energy consumption by the final assembler, the final assembler of the product resulting from the manufacture of parts related to the long-term contract, and each supplier, where the renewable energy usage rate is not 100%, and renewable energy is procured using the environmental certificate for the predicted amount of energy consumption by the final assembler of the product resulting from the manufacture of parts not related to the long-term contract, and each supplier, where the renewable energy usage rate is not 100%.
6. The supply chain renewable energy procurement support device according to claim 3, characterized in that the renewable energy procurement period is divided into several periods within a fiscal year, and as the renewable energy procurement period at the end of the fiscal year approaches, the ratio of procurement of environmental certificates with expiration dates to procurement of environmental certificates without expiration dates increases.
7. The supply chain renewable energy procurement support device according to claim 3, characterized in that the renewable energy procurement period is divided into several periods within a fiscal year, and in the final renewable energy procurement period within a fiscal year, renewable energy is procured using an environmental certificate with an expiration date, and in renewable energy procurement periods other than the final renewable energy procurement period within a fiscal year, renewable energy is procured using an environmental certificate with an expiration date.
8. The supply chain renewable energy procurement support device according to claim 3, characterized in that it predicts the market price of environmental certificates, and for environmental certificates with expiration dates, it procures renewable energy using environmental certificates with a low market price per unit energy.
9. The supply chain renewable energy procurement support device of claim 7, characterized in that when the absolute value of the difference between the predicted amount of energy consumption where the final product assembler and each supplier do not use 100% renewable energy and the actual amount of energy consumption where the final product assembler and each supplier do not use 100% renewable energy reaches or exceeds a certain threshold, the supply chain renewable energy procurement support device adjusts the purchase amount of environmental certificates with no expiration date when correcting an increase in renewable energy procurement, and adjusts the purchase amount of environmental certificates with an expiration date when correcting a decrease in renewable energy procurement, when the renewable energy procurement period is the final renewable energy procurement period of the fiscal year.
10. A supply chain renewable energy procurement support method using a supply chain renewable energy procurement support device for procuring renewable energy to achieve a renewable energy usage rate of 100% (RE100) throughout the supply chain in the production of a product, The types of renewable energy procurement are direct purchase of green power or environmental certificates. The environmental certificates include environmental certificates with expiration dates and environmental certificates without expiration dates, The supply chain renewable energy procurement support device comprises: Supply chain definition data that defines the supply chain relationships in the manufacturing of the product and whether each supplier can manufacture using renewable energy; We retain energy consumption data from past manufacturing records, including the final assembly of the product and each supplier, where the renewable energy usage rate is not 100%. The supply chain definition data includes information on whether each supplier has a long-term contract for supplying parts to other suppliers or final assemblers; a step in which the supply chain renewable energy procurement support device predicts energy consumption at a final assembler of a product and each supplier that has a renewable energy usage rate that is not 100% based on past manufacturing results, based on the supply chain definition data and the energy consumption result data; The supply chain renewable energy procurement support device has a step of creating a renewable energy procurement plan that determines the timing and type of renewable energy purchase based on a prediction result of energy consumption in which the renewable energy usage rate is not 100% at the final assembler of the product and each supplier from past manufacturing results, A supply chain renewable energy procurement support method characterized by procuring renewable energy through the direct purchase of green electricity for the predicted amount of energy consumption by the final assembler, the final assembler of the product resulting from the manufacture of parts related to the long-term contract, and each supplier, where the renewable energy usage rate is not 100%, and procuring renewable energy using the environmental certificate for the predicted amount of energy consumption by the final assembler of the product resulting from the manufacture of parts not related to the long-term contract, and each supplier, where the renewable energy usage rate is not 100%.
Citation Information
Patent Citations
Electric power supply system utilizing weather forecast information
JP2002262458A
Co2-free power distribution method
JP2021189510A
Determination device, determination method, and program toward construction of decarbonized society
JP2023027713A
Decision-making device, decision-making method, and program for building a decarbonized society
JP7021388B1