Manufacturing method, management system and method of carbon neutralization intelligent green and environment-friendly module capable of recycling cyclic resources

By recycling building materials to create smart, green, and environmentally friendly neighborhoods, the problem of rising production costs caused by the depletion of materials such as sand and gravel has been solved, achieving efficient utilization and carbon neutrality, and providing energy-saving and environmentally friendly building modules and power management solutions.

CN121589902APending Publication Date: 2026-03-03具本章 +1
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202510602054.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-08-21
Filing Date
2025-05-12
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Existing technologies cannot effectively address the depletion of materials such as sand and gravel after building demolition, leading to increased production costs for concrete modules and high carbon emissions, with a lack of clear carbon neutrality solutions.

Method used

By recycling materials such as sand, gravel, and stone powder from demolished buildings, and mixing them with new steel wire, gravel, and environmentally friendly byproduct Bata Grey, modules such as paving bricks, axial bricks, and gravity bricks are manufactured. Solar LEDs and sensors are integrated into these modules to form smart, green, and environmentally friendly neighborhoods, achieving carbon neutrality.

Benefits of technology

It increases the utilization rate of recyclable materials to 70%, reduces production costs, achieves carbon neutrality, saves energy, and provides environmentally friendly building blocks for the sale of carbon emission rights through solar power generation and sensors on the modules.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121589902A_ABST
    Figure CN121589902A_ABST
Patent Text Reader

Abstract

The invention provides a manufacturing method, a management system and a method of a carbon neutralization intelligent green and environment-friendly module capable of recycling cyclic resources, according to the invention, sand, broken stones and stone powder are recycled as materials capable of being recycled after a building is disassembled to 70%, and the recycling rate of the carbon neutralization intelligent green and environment-friendly module is improved. New steel wires (steel grit), new gravels and environment-friendly byproducts are mixed with basic ash in the recyclable materials (recycling resources), and the manufacturing effect of carbon neutralization blocks is achieved through the manufacturing technology of mixing cement, modules, shaft belt modules, gravity type blocks and large-scale environment-friendly blocks. Through additional configuration, power can be saved and managed, not only carbon can be saved, but also carbon emission permissions can be sold.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to a method for manufacturing, a management system for, and a method thereof for carbon-neutral smart green and environmentally friendly blocks that utilize recycled resources. More specifically, it relates to recycled resource reuse technology, which aims to achieve carbon neutrality through resource regeneration. Background Technology

[0002] Demolishing buildings can yield sand, gravel, and stone powder as recyclable materials, and improving the recycling rate of these materials is key to environmental protection technologies.

[0003] Therefore, the reason for increasing the reuse rate of materials after the demolition of buildings is that, currently, due to the depletion of building materials such as sand and gravel, the production cost of concrete products, especially concrete modules, is increasing day by day. Therefore, it is necessary to solve this problem. In particular, the production process of various building materials generates a lot of carbon and is also at a disadvantage in terms of carbon emission rights. It is necessary to solve these problems.

[0004] In this context, various research and developments are underway in the technical field to which this patent pertains, in order to recycle materials generated during building demolition, and various patents have been proposed.

[0005] For example, Korean Patent Application No. 10-2008-0027487, "Apparatus for Recycling of Concrete Scrapped Material," is an apparatus for recycling construction waste. It involves separating and recycling foreign materials mixed in with shredded construction waste through multiple stages, ensuring that only the desired high-quality recycled aggregates are selected for use.

[0006] In addition, Korean Patent Application No. 10-2003-0012794, "Apparatus using a cistern for sorting and recycling waste of construction and method therefor", relates to how to use the difference in specific gravity between water and foreign matter to remove foreign matter and to screen and separate substances including silt, sand and small stones.

[0007] In addition, the Republic of Korea Patent Application No. 10-2006-0021202, "Apparatus for Recycling of Concrete Scrapped Material", refers to a construction waste treatment device that sorts and reuses mud, sand, stone powder and aggregates through crushing and sorting operations of construction waste, so as to economically supply the natural resources that are insufficient due to excessive mining operations, and at the same time ensure a good supply of stone powder and crushed stone required for construction.

[0008] In addition, the Republic of Korea Utility Model Application No. 20-2004-0024512, "Recycled Block by Using of Building Waste and Waste Sludge," relates to a recycling block using building waste and waste sludge. Its purpose is to utilize building waste and waste sludge generated during reconstruction or redevelopment, mixing far-infrared substances such as loess with an antioxidant solution in a certain proportion to neutralize cement properties and provide far-infrared radiation. Two or more modules have a structure that can be interlocked and fixed, eliminating the need for adhesive mortar, thus providing a more environmentally friendly and easier-to-build recyclable module technology.

[0009] Although various technologies have been provided, the depletion of sand and gravel has led to rising production costs for modules, making it necessary to address these issues, particularly the need to reduce carbon emissions and proactively address carbon emission rights. However, existing technologies have limitations in providing clear and specific solutions.

[0010] Existing technical documents

[0011] Patent documents

[0012] (Patent Document 1) Korean Patent Application No. 10-2008-0027487, “Apparatus for Recycling of Concrete Scrapped Material”

[0013] (Patent Document 2) Republic of Korea Patent Application No. 10-2003-0012794, “Apparatus using a cistern for sorting and recycling wasten of construction and method therefor”

[0014] (Patent Document 3) Korean Patent Application No. 10-2006-0021202, “Apparatus for Recycling of Concrete Scrapped Material”

[0015] (Patent Document 4) Republic of Korea Utility Model Application No. 20-2004-0024512, "Recycled Block by Use of Building Waste and Waste Ludge" Summary of the Invention

[0016] The problem that the invention aims to solve

[0017] This invention aims to propose a technology to solve the aforementioned problem, which recycles 70% of sand, gravel, and stone powder as recyclable materials (circular resources) after the dismantling of buildings. It also provides a technology to mix new steel wire (steel grit), new gravel, and the environmentally friendly byproduct Bata ash into the recyclable materials (circular resources), and then incorporate them into cement to manufacture various large modules such as floor tiles, axial bricks, gravity bricks, and vegetation bricks, thereby achieving carbon neutrality.

[0018] Furthermore, this invention not only provides a technology for manufacturing environmentally friendly modules to utilize the recycled resources generated after the demolition of buildings, but also provides a technology for saving and managing electricity through additional configurations for environmentally friendly modules.

[0019] However, the purpose of this invention is not limited to the stated purpose, and other purposes not mentioned may be clearly understood by the parties from the following description.

[0020] means for solving problems

[0021] To achieve the aforementioned objective, a specific example of the present invention provides a method for manufacturing a carbon-neutral smart green and environmentally friendly neighborhood, comprising:

[0022] The first stage involves preparing recyclable materials after the building is dismantled—equivalent to ① environmentally friendly materials (including sand, gravel, and stone powder); ② additional materials (equivalent to river sand, new gravel, and environmentally friendly byproducts); and ③ combined materials are mixed from various storage tanks using a mixer and supplied through hoppers.

[0023] In the first stage of preparing and supplying materials, ① environmentally friendly materials and; ② after mixing the additional materials in the first mixer, after the mixing is completed within a preset time, ③ the weight portion of the combined materials is added to the mixed materials to form the second stage of the environmentally friendly module composition;

[0024] The third stage involves injecting the formed environmentally friendly module composition into a template for manufacturing the environmentally friendly module composition, mounting the template on a vibrator, and vibrating it to ensure uniform distribution of the environmentally friendly module composition within the template; and

[0025] After the template that has undergone vibration is hardened in the steam heating chamber, it is demolded and cured at room temperature. By confirming the preset viscosity during the curing process, the fourth stage, from the preset lower height, is formed in the top of the environmentally friendly module 10 cured at the preset viscosity, within a set area.

[0026] In one example of the present invention, after the fourth stage, a fifth stage (S15) is formed in the formed hall, in which a solar power generation LED 11 containing a solar LED and an environmental protection module equipment section 10a containing a sensor module 12 are formed.

[0027] In another example of the present invention, in the second step, among the materials prepared for supply in the first stage, ① based on 100 parts by weight of environmentally friendly materials, ② 15 to 25 parts by weight of additional materials are mixed in a first mixer, and after the mixing is completed within a preset time, based on 100 parts by weight of the mixed materials, ③ 23 to 25 parts by weight of the combined materials are added to form an environmentally friendly module composition.

[0028] Furthermore, other implementation examples of the present invention for accomplishing the aforementioned task include:

[0029] Multiple environmental protection modules 10; and

[0030] Under the control of the sender 13, the MPU14, which consists of the environmental protection module equipment unit 10a of each environmental protection module 10, transmits the sensing information of each environmental protection module 10 through the network 200 connected to the Internet of Things gateway 200a, and stores the identification number and sensing information of each environmental protection module 10 in the database of the environmental protection module manufacturing management server 300.

[0031] In one example of the present invention, an environmentally friendly module manufacturing apparatus 100 is also included.

[0032] The environmental protection module manufacturing device 100 manufactures the commissioned environmental protection module 10 from the client terminal 400 through the environmental protection module manufacturing management server 300. It mixes steel wire (steel grit), new gravel, and additional materials equivalent to environmental protection by-products into environmentally friendly materials that can be recycled after the demolition of buildings—materials equivalent to recyclable materials (including sand, gravel, and stone powder). By adding cement, it manufactures the environmental protection module 10, which includes floor tiles, shaft modules, gravity modules, and environmental vegetation modules 10.

[0033] Invention Effects

[0034] According to the present invention, after the demolition of buildings, the recycling rate of sand, gravel, and stone powder as recyclable materials is as high as 70%. Based on the new steel wire (river sand), new gravel, and environmentally friendly by-products provided in the recyclable materials (circular resources), cement is mixed to manufacture various large modules such as floor tiles, axial platform tiles, gravity tiles, and vegetation tiles, thereby achieving the effect of carbon neutrality through resource regeneration.

[0035] Furthermore, according to the present invention, not only can environmentally friendly building blocks be provided, but also electricity can be saved and managed by adding configurations to the environmentally friendly building blocks, thus saving carbon and selling carbon emission rights. Attached Figure Description

[0036] Figure 1 This is a drawing illustrating a carbon-neutral intelligent green and environmentally friendly neighborhood manufacturing management system 1 based on an embodiment of the present invention.

[0037] Figure 2 This is a schematic diagram of the components of the environmentally friendly block 10 in the carbon-neutral intelligent green environmentally friendly block manufacturing management system 1 that recycles and utilizes circular resources, according to an embodiment of the present invention.

[0038] Figure 3 This is a flowchart illustrating a method for creating a carbon-neutral, smart, green, and environmentally friendly neighborhood based on the recycling of resources, according to an embodiment of the present invention.

[0039] Explanation of reference numerals in the attached figures

[0040] 1: A carbon-neutral intelligent green environmental protection module manufacturing management system utilizing recycled resources;

[0041] 10: Environmental Protection Module;

[0042] 11: Solar-powered LEDs;

[0043] 11a: Battery;

[0044] 12: Sensor module;

[0045] 13: Transmitter / Receiver Unit;

[0046] 14: MPU;

[0047] 100: Environmental protection module manufacturing equipment;

[0048] 200: Network;

[0049] 200a: IoT gateway;

[0050] 300: Environmental Protection Module Manufacturing Management Server;

[0051] 300a: Big Data Server;

[0052] 400: Client Terminal. Detailed Implementation

[0053] The following detailed description of preferred embodiments of the present invention will be given with reference to the accompanying drawings. In describing the present invention, detailed descriptions of specific functions or components will be omitted if it is believed that such descriptions might unnecessarily obscure the essence of the invention.

[0054] In this description, if a component “transmits” data or signals to another component, then that component can directly transmit the data or signals to the other component, or at least transmit the data or signals to the other component through the other component.

[0055] Figure 1 This is a drawing illustrating a carbon-neutral intelligent green and environmentally friendly neighborhood manufacturing management system 1 based on an embodiment of the present invention. Figure 2 This is a schematic diagram of the components of the environmentally friendly block 10 in the carbon-neutral intelligent green environmentally friendly block manufacturing management system 1 that recycles and utilizes circular resources, according to an embodiment of the present invention.

[0056] Figure 3 This is a flowchart illustrating a method for creating a carbon-neutral, smart, green, and environmentally friendly neighborhood based on the recycling of resources, according to an embodiment of the present invention.

[0057] First, refer to Figure 1 The carbon-neutral intelligent green and environmentally friendly street manufacturing management system 1 for recycling resources can include multiple environmentally friendly street manufacturing equipment 100, network 200, Internet of Things gateway 200a, environmentally friendly street manufacturing management server 300, big data server 300a, and multiple entrusted terminals 400, which can form multiple environmentally friendly streets 10 generated by the environmentally friendly street manufacturing equipment 100.

[0058] With this configuration, the environmental module manufacturing device 100 can manufacture the commissioned environmental module 10 from the client terminal 400 through the environmental module manufacturing management server 300. However, it can mix steel wire (river sand), new gravel, and additional materials equivalent to environmental by-products, such as cement, into recyclable materials after the demolition of buildings—environmentally friendly materials that are equivalent to recyclable materials (including sand, gravel, stone powder), and prefabricate them into paving bricks, gravity modules, environmental modules, and vegetation modules (10 days).

[0059] The reference particle size used in this invention is preferably 2 to 25 mm. When the particle size is less than 2 mm, the strength performance is insufficient for use in modules, and when it exceeds 25 mm, the workability is poor.

[0060] Similarly, the environmentally friendly module manufacturing device 100 achieves carbon neutrality through resource recycling. By utilizing industrial waste and infrastructure, it can reduce carbon emissions, lighten weight, save energy, lower production costs, and save carbon border taxes, thus addressing the problem of rising production costs for building materials and public facilities due to the depletion of sand and gravel.

[0061] Therefore, the environmental protection module manufacturing device 100 can be based on Figure 3 The manufacturing process includes the production of environmentally friendly modules. In other words, the environmentally friendly module manufacturing device 100 is the first stage (S11), which is the first stage (S11) after the building is dismantled. The recyclable materials (including sand, gravel, stone powder) ① environmentally friendly materials, steel wire (river sand), new gravel, and environmentally friendly by-products ② additional materials, cement, etc. ③ binding materials are mixed in various storage tanks using a mixer and supplied through a hopper. In the materials prepared for supply in the first stage, ① based on 100 parts by weight of the environmentally friendly materials, ② 15 to 25 parts by weight of the additional materials are mixed with the first mixer. After mixing is completed within a preset time, based on 100 parts by weight of the mixed materials, ③ 23 to 25 parts by weight of the binding materials are added to form the second stage (S12). In the second stage, in addition to the binding material, other mixtures can be mixed. Examples of binding materials include cement (slag cement), polymers, sludge solidification powder, and geopolymers. The added mixtures can be thermoplastic polyurethane (TPP). Thermoplastic polyurethane (TPU), carbon fiber, flame retardants, etc., and the weight ratio of thermoplastic polyurethane (TPU) to environmentally friendly materials are 1.2, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, 0.3, based on 100 parts by weight, can be mixed in 7 to 12 parts by weight.

[0062] The cement may include, based on 45 to 52 parts by weight of slag cement or Portland cement, 12 to 15 parts by weight of fly ash, 11 to 13 parts by weight of sludge solidification powder, 2 to 5 parts by weight of blast furnace slag powder, 1 to 3 parts by weight of anhydrous gypsum, 2 to 4 parts by weight of dihydrate gypsum, 0.2 to 0.5 parts by weight of inorganic latent heat material, and 0.3 to 0.6 parts by weight of organic latent heat material.

[0063] Thermoplastic polyurethane (TPU) is a non-PVC series thermoplastic resin. Because it does not pose a risk of generating harmful compounds, it is harmless to the human body and does not emit atmospheric or soil pollutants when incinerated, making it environmentally friendly. As a rubbery elastomer with polyurethane groups (-NHCOO-), it possesses excellent mechanical strength and abrasion resistance, and exhibits superior properties in insulation, flexural strength, colorability, and feel. Therefore, thermoplastic resins made from it are suitable for clothing or bedding compositions.

[0064] As an embodiment of the present invention, TPU can be obtained by synthesizing 4,4'-dimethyl phthalate, polybutadiene glycol, and 1,4-butadiene glycol. For 100 parts by weight of 4,4'-dimethyl phthalate, 100 to 150 parts by weight of polybutadiene glycol and 120 parts by weight of 1,4-butadiene glycol can be synthesized.

[0065] The weight ratio of 4,4'-dimethylphenyl diisocyanate, polybutadiene glycol, and 1,4-butanediol can be appropriately changed according to the desired physical properties and the intended use of the polyurethane film. For example, increasing the weight ratio of 4,4'-dimethylphenyl diisocyanate increases the proportion of hard segments within the polyurethane, resulting in improved overall hardness. Conversely, decreasing the weight ratio of 4,4'-dimethylphenyl diisocyanate increases the proportion of soft segments within the polyurethane, leading to increased elongation and ductility.

[0066] On the other hand, carbon fibers and flame retardants can be included in at least one of the granules and phases formed by adding carbon fibers and flame retardants to recycled polypropylene resin. More specifically, carbon fibers are added to recycled polypropylene resin from waste synthetic resin for mixing to obtain carbon fiber reinforced plastic (CFRP) polypropylene resin. Carbon fiber reinforced polypropylene resin has advantages such as being stronger than iron, lighter than aluminum, rust-free, and having good processability.

[0067] In this process, a mixture of 45 to 54 parts by weight of polypropylene and 46 to 55 parts by weight of carbon fiber is added to 100 parts by weight of a mixture. A flame retardant is mixed in 5 to 7 parts by weight of the mixture, and a sunscreen is added in 1 to 2 parts by weight of the mixture. This process improves the strength of the resulting environmentally friendly module, i.e., its breaking strength. By adding flame retardant to the flammable polypropylene, the module becomes flame retardant in the face of potential fires during and after the manufacturing process. It also possesses high competitiveness, flame retardancy, and breaking strength.

[0068] In this invention, the flame retardant used is a mixture of antimony molybdate, aluminum hydroxide, molybdenum oxide, and magnesium hydroxide, or any two or more of these.

[0069] After the second stage (S12), the formed environmentally friendly module composition is injected into the mold frame for manufacturing the environmentally friendly module composition. The mold frame is then installed on a vibrator and vibrated. The environmentally friendly module composition is evenly distributed within the mold frame in the third stage (S13). After the mold plate that has completed the vibration is hardened in the steam heating chamber, it is demolded and cured at room temperature. By confirming the preset viscosity during the curing process, a hole is formed in the top of the environmentally friendly module 10 cured at the preset viscosity, reaching a preset lower height within a set area in the fourth stage (S14). The fifth stage (S15) forms the environmentally friendly module equipment part 10a, which includes a solar power generation LED 11 containing a solar LED and an environmentally friendly module device part 10a containing a sensor module 12, in the formed hall. This may include...

[0070] The environmentally friendly module 10 formed by this configuration consists of a solar-powered LED 11, a battery 11a, a sensor module 12, a transceiver 13, and an MPU 14. Figure 2 As shown, when an object (e.g., a vehicle or bicycle) preset by the object recognition sensor formed in the sensor module 12 reaches a preset distance, the MPU14 controls the power supply of the solar power generation component 11 via the LED 11, thereby forming a solar power generation array 11. The LED element can be yellow (Y), but is not limited to this; the LED element can be a multi-color LED with R, G, and B elements bundled together. Each multi-color LED can adjust its color and brightness through the color combination of its internal R, G, and B elements. Furthermore, not only color combinations, but also color and brightness can be achieved using PWM (Pulse Width Modulation).

[0071] Network 200 is a high-speed backbone network of a large-scale communication network that provides high-capacity, long-distance voice and data services. It can be a next-generation wired and wireless network providing Internet or high-speed multimedia services. If Network 200 is a mobile communication network, it can be a synchronous or asynchronous mobile communication network. An example of an asynchronous mobile communication network is a WCDMA (Wideband Code Division Multiple Access) network. In this case, although not shown in the diagram, Network 200 may include a Radio Network Controller (RNC). On the other hand, while using WCDMA as an example, it could be a 3G LTE network, a 5G network (beyond 4G), or other IP-based networks. Network 200 is responsible for transmitting signals and data between the environmentally friendly building block manufacturing equipment 100, the IoT gateway 200a, the environmentally friendly building block manufacturing management server 300, the big data server 300a, the client terminal 400, and other systems.

[0072] The sensor module 12 formed in the environmental protection module equipment section 10a formed in the environmental protection module 10 can be used as the object perception sensor to form a CMOS camera or an infrared camera, etc. In addition to the object perception sensor, it can also include sensors for other information perception.

[0073] The environmentally friendly building block manufacturing management server 300 transmits the sensing information of each environmentally friendly building block 10 through the MPU14 composed of the environmentally friendly building block device unit 10a of each environmentally friendly building block 10 via the network 200 connected to the Internet of Things gateway 200a. Under the control of the transceiver unit 13, the identification number and sensing information of each environmentally friendly building block 10 can be stored in the database.

[0074] The shape of the environmentally friendly building block device 10a can be changed to square or round. The solar-powered LED 11 and sensor module 12 are installed at the front. The solar array of the solar-powered LED 11 generates electricity, and the power charged by the battery 11a can enable the operation of the LED element of the solar-powered LED 11, the sensor module 12, the transceiver unit 13, and the MPU 14.

[0075] In other words, the structure of the environmentally friendly building block device 10a is formed by a solar-powered LED 11, a sensor module 12, a transceiver unit 13, and an MPU 14, which are integrated into the environmentally friendly building block 10. The transceiver unit 13 and the MPU 14 can be formed as one piece.

[0076] The transceiver unit 13 can perform short-range wired and wireless communication with the Internet of Things gateway 200a, and can also utilize various communication methods (LoRA, etc.), barcode communication, beacon systems, RFID systems, etc., with mobile communication devices other than the Internet of Things gateway 200a. As another embodiment of the present invention, it can directly perform wired and wireless communication through the network 200.

[0077] Therefore, if the environmental protection module 10 reaches a preset distance (e.g., a vehicle or bicycle) through sensor information, it can save the power generated by the solar array formed by the solar power LED 11 by controlling the power temperature (ON) of the LED elements equipped in the solar power LED 11 according to the preset color.

[0078] In another embodiment of the present invention, the environmental protection module manufacturing management server 300 analyzes sensor information from the network 200 connected to the Internet of Things gateway 200a, identifies objects from the sensor information of adjacent environmental protection modules 10, controls the power-on (ON) of the LEDs of the solar-powered LEDs 11 on the environmental protection modules 10 with object identification information based on a preset color, and controls the power of the LEDs 11 according to the direction of the object identified by the LEDs (through power control of the LEDs 200 of the solar power generation equipment), and transmits the information online. This can save the power required for the sensor modules 12 of adjacent environmental protection modules 10 to identify objects and transmit information.

[0079] In this case, the environmental module device 10a of the environmental module 10 that receives the power-on (ON) control command may not perform the object recognition action of the sensor module 12. In addition to the object recognition sensor in the sensor module 12, it is also possible to request other sensors (such as infrared sensors) to perform actions. For this purpose, the sensor module 12 can be composed of sensors based on stripping the required sensors, such as Arduino.

[0080] In other words, the environmental protection module manufacturing management server 300 can monitor the sensor information of each area by forming environmental protection modules 10 with serial numbers of each location information, and between groups of environmental protection modules 10 forming adjacent areas, rather than between each environmental protection module 10, simply by forming environmental protection module equipment units 10a according to a pre-set quantity.

[0081] In addition, the environmentally friendly building block manufacturing management server 300 can perform video analysis on each object, extract a frame image from the preset time frame during video analysis, and then verify the accident event categories, including rollover, rear-end collision, lane departure, etc., when the object in the extracted frame image is riding in a vehicle or bicycle.

[0082] Among them, the Green Building Block Manufacturing Management Server 300, with its own NPU, can analyze accident event categories (rollover, rear-end collision, lane departure, etc.), and perform machine learning-based identification on each accident event category such as rollover, rear-end collision, and lane departure on the Big Data Server 300a, including distributed rollover pattern DSC DB, rear-end collision pattern DSCDB, and lane departure pattern DSC DB, or analyze the patterns in each set of data, and analyze the event patterns of each set of events by analyzing the patterns in each set of data.

[0083] Therefore, the environmentally friendly building block manufacturing management server 300 stores various pattern images in the DSC DB, which correspond to the event categories of the objects extracted from the sensing information. These are used to verify the events. By comparing the information of the various pattern images themselves or the tilt, reversal, preset angle tilt, magnification, and reduction of the various pattern images with the patterns contained in the frame images, each event in the frame image can be analyzed.

[0084] The environmental protection module manufacturing management server 300 has been verified to detect at least one event category. Furthermore, if at least one event category is also detected based on keywords extracted from voice recognition, the detected frame image or video information, or location information matching the identification number of the environmental protection module 10 that provides voice information and each detected sensor information, can be provided as an official server, including servers, etc.

[0085] As another embodiment of the present invention, the environmental protection module manufacturing management server 300 forms an environmental protection module equipment unit 10a in an area on the environmental protection module 10 with a serial number for each location information, between 10 groups of adjacent areas rather than between each environmental protection module 10. This unit can not only monitor the sensor information of each area, but also perform video analysis on each object, and extract the probability, theft, criminality, etc. of a frame of image within a set analysis time period.

[0086] Among them, the environmentally friendly building block manufacturing management server 300, with its own NPU, can analyze crime categories (violence, theft, robbery, sex crimes, etc.) and identify them by extracting the scattered violent pattern DSC DB, theft pattern DSC DB, robbery pattern DSC DB, sex crime pattern DSC DB, etc. on the big data server 300a based on machine learning.

[0087] Furthermore, in this invention, the environmentally friendly building block manufacturing management server 300 can utilize multiple environmentally friendly building blocks 10 to provide navigation for personal wireless terminals (not shown) operated by users using vehicles or bicycles, etc. That is, the green block manufacturing management server 300 can not only control the power of the receiving range of the short-range wireless signals of the transceiver unit 13 of the green block 10 included in the navigation path information, so as to match the current GPS location information with the GPS location information of the short-range signal detector formed by the personal wireless terminal provided through the network 200, but also confirm the short-range wireless signal (RTT) of at least one green block 10, thereby confirming its own short-range signal 10. If the RTT measurement value increases while the RTT measurement value of other adjacent environmentally friendly modules 10 decreases, the location information of the environmentally friendly module 10 with the decreased RTT measurement value is verified to be the correct location on the navigation path, so as to determine that the navigation path UI (User Interface) can provide the correct path on the screen centered on the location information and identification code of each environmentally friendly module 10.

[0088] This invention can also be implemented as computer-readable code in a computer-readable recording medium. Computer-readable recording media include all types of recording devices that store data readable by a computer system.

[0089] Examples of computer-readable recording media include ROM, RAM, CD-ROM, magnetic tape, floppy disk, optical data storage devices, and recording media implemented in the form of carrier waves (such as those transmitted over the Internet).

[0090] Furthermore, computer-readable recording media are distributed across network-connected computer systems, allowing for the distributed storage and execution of computer-readable code. The functional programs, code, and code segments implementing this invention can be readily deduced by programmers skilled in the art to which this invention pertains.

[0091] As described above, the preferred embodiments of the invention have been introduced in this list and drawings. Although certain terminology has been used, it is only for the purpose of illustrating the technical content of the invention and aiding in understanding the invention in a general sense, and is not intended to limit the scope of the invention. Other variations based on the technical concept of the invention may be implemented in addition to the embodiments introduced herein, which will be self-evident to those skilled in the art to which this invention pertains.

Claims

1. A method for manufacturing a carbon-neutral intelligent green and environmentally friendly module that reuses recycled resources, characterized in that, The manufacturing method includes: The first stage involves preparing recyclable materials after the building is dismantled, which are equivalent to ① environmentally friendly materials (including sand, gravel, and stone powder); ② additional materials equivalent to river sand, new gravel, and environmentally friendly by-products; and ③ combined materials mixed from various storage tanks by a mixer and supplied through hoppers. In the second stage, the materials prepared in the first stage are mixed for the first time using a mixer to mix ① environmentally friendly materials and ② additional materials. After the mixing is completed within a preset time, ③ binding materials are added to the mixed materials to form an environmentally friendly modular composition. In the third stage, the formed environmentally friendly module composition is injected into a template for manufacturing the environmentally friendly module composition. The template is then mounted on a vibrator and vibrated to ensure uniform distribution of the environmentally friendly module composition within the template. In the fourth stage, after the template that has completed the vibration is hardened in the steam heating chamber, it is demolded and cured at room temperature. By confirming the preset viscosity during the curing process, a hole is formed in the top of the environmentally friendly module (10) cured at the preset viscosity, up to the preset lower height, within a set area.

2. The manufacturing method of the carbon-neutral intelligent green and environmentally friendly module for reusing recycled resources according to claim 1, characterized in that, Following the fourth stage, a fifth stage (S15) is also included, in which a solar-powered LED (11) containing a solar LED and an environmental protection module equipment section (10a) containing a sensor module (12) are formed in the formed hall.

3. The manufacturing method of the carbon-neutral intelligent green and environmentally friendly module for reusing recycled resources according to claim 1, characterized in that, In the second stage, In the materials prepared for supply in the first stage, ① based on environmentally friendly materials and 100 parts by weight of environmentally friendly materials, ② 15 to 25 parts by weight of additional materials are mixed in a first mixer. After mixing is completed within a preset time, based on 100 parts by weight of the mixed materials, ③ 23 to 25 parts by weight of the binding materials are added to form an environmentally friendly module composition.

4. A manufacturing management system for a carbon-neutral intelligent green and environmentally friendly module that reuses recycled resources, characterized in that, The manufacturing management system includes: Multiple environmental protection modules (10); and The environmental protection module manufacturing management server (300), under the control of the sender (13), the MPU (14) composed of the environmental protection module equipment part (10a) of each environmental protection module (10) transmits the sensing information of each environmental protection module (10) through the network (200) connected to the Internet of Things gateway (200a), and stores the identification number and sensing information of each environmental protection module (10) in the database.

5. The manufacturing management system for the carbon-neutral intelligent green and environmentally friendly module for recycling resources according to claim 4, characterized in that, The manufacturing management system also includes an environmentally friendly module manufacturing device (100). The environmental module manufacturing device (100) manufactures the commissioned environmental module (10) from the client terminal (400) through the environmental module manufacturing management server (300). It mixes steel wire (steel grit), new gravel and additional materials equivalent to environmental by-products with materials that can be recycled after the demolition of the building—such as recyclable materials (including sand, gravel, stone powder), and cement to produce environmental modules (10) including floor tiles, modules, modules, gravity, and environmental implants.

Citation Information

Patent Citations

  • Method and IC for detecting variation of capacitance

    KR1020060021202A

  • The watertight cover of spark plug

    KR1020080027487A