Graphene plant heat preservation pad

By using graphene material carbon wire mesh and aluminum-plated pre-coated film structure in the insulation pad, combined with silver wire mesh and intelligent temperature control components, the problem of difficulty in isolating water vapor in the insulation pad is solved, the structural strength and temperature control capabilities are improved, and the safe and effective operation of the insulation pad is ensured.

CN223224009UActive Publication Date: 2025-08-15JIANGSU LIWUSHENG ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202422539766.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-21
Publication Date
2025-08-15
Estimated Expiration
2034-10-21

AI Technical Summary

Technical Problem

Existing insulation pads are difficult to isolate external water vapor, resulting in increased risk of short circuits and failures.

Method used

The carbon wire mesh and aluminum-plated pre-coated film structure using graphene material, combined with silver wire mesh and intelligent temperature control components, form a multi-layer protective structure to prevent water vapor from invasion, and control the temperature through intelligent temperature control components.

Benefits of technology

It realizes the protection of the internal components of the insulation pad, improves structural strength and temperature control capabilities, prevents water vapor from intrusion, and ensures the safe and effective operation of the insulation pad.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of plant cultivation, and discloses a graphene plant heat preservation pad which comprises an aluminized pre-coating film and a bottom film, the aluminized pre-coating film is fixedly connected behind the bottom film, a carbon strip silk screen is fixedly installed in front of the bottom film, and a silver wire silk screen is additionally installed between the edge of the carbon strip silk screen and the bottom film. The carbon strip silk screen is made of a graphene material, and a card protecting film covers the front ends of the bottom film and the carbon strip silk screen. According to the graphene plant heat preservation pad, the aluminum-plated pre-coating film is fixedly connected to the rear portion of the bottom film, the front face and the back face of the heat preservation pad are composed of the card protecting film made of PVC and the bottom film respectively, the carbon strip silk screen transversely arranged in the heat preservation pad is wrapped and protected by the silver wire silk screen, and the bottommost portion of the bottom film is covered with the aluminum-plated pre-coating film, so that the bottom film is protected from the outer side; and water drops, dew and rainwater generated in the external environment can be prevented from invading the interior of the pad body to soak components such as the carbon strip silk screen, so that the problem that the heat preservation pad is difficult to isolate water vapor is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of plant cultivation, in particular to a graphene plant insulation pad. Background Art

[0002] In order to ensure the healthy growth of plants, it is necessary to create a suitable external environmental temperature according to the habits of the plants. If the temperature is too high, the plants will lose water, lose leaves and rot. If the temperature is too low, there is a possibility of frostbite and freezing to death. Therefore, most indoor planting projects such as greenhouses choose to install insulation mats.

[0003] Ordinary insulation pads only use a separate outer packaging film to wrap the internal heating component. Once connected to the power supply, they can generate heat and continue to heat up and keep warm. However, this type of pad lacks protective function, and water vapor in the external environment can easily invade the interior of the pad, posing the risk of short circuit and failure.

[0004] Now, a new type of graphene plant insulation mat is proposed to solve the above problems. Utility Model Content

[0005] The purpose of the utility model is to provide a graphene plant insulation mat to solve the problem in the above background technology that the insulation mat is difficult to isolate water vapor.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a graphene plant insulation pad, comprising an aluminum-plated pre-coated film and a base film, wherein the aluminum-plated pre-coated film is fixedly connected to the rear of the base film, a carbon wire mesh is fixedly installed in front of the base film, and a silver wire mesh is added between the edge of the carbon wire mesh and the base film, the front end of the base film and the carbon wire mesh is covered with a card protection film, and the carbon wire mesh is a graphene material.

[0007] Preferably, the silver wire mesh is wrapped around the periphery of the carbon strip mesh, and the carbon strip mesh is arranged between the base film and the card protection film.

[0008] Preferably, the area of the aluminized pre-coating film is equal to that of the base film, the aluminized pre-coating film can isolate external water vapor, and the card protection film is made of PVC.

[0009] Preferably, a high-frequency envelope is fixed to the edge of the card protection film, and a reserved envelope is fixed to the left side of the high-frequency envelope.

[0010] Preferably, the high-frequency envelope is sealed in the gap at the edge of the card protection film, and the reserved envelope can be cut along the dotted line according to the size of the pad body.

[0011] Preferably, two groups of riveted terminals 2 are fixed on the left side of the front end of the silver wire mesh, two groups of blocks are fixed on the left side of the front end of the aluminum-plated pre-coated film, a heat shrink tube is fixed to the center of the left side of the front end of the aluminum-plated pre-coated film, and an NTC probe is connected to the right side of the heat shrink tube, and a riveted terminal 1 is fixed to the right side of the NTC probe, and the riveted terminal 1 is fixed to the surface of the carbon wire mesh, an intelligent temperature control component is provided on the left side of the base film, and a British standard plug is fixed to the bottom of the intelligent temperature control component, a rubber cover is installed above the intelligent temperature control component, a blue wire is horizontally plugged into the upper part of the inside of the rubber cover, and a black wire is provided below the blue wire, a white wire is provided below the black wire, and a brown wire is provided below the white wire.

[0012] Preferably, the diameters of the black wire and the white wire are smaller than those of the blue wire and the brown wire, and the black wire and the white wire are connected to the NTC probe through a heat shrink tube.

[0013] Preferably, the blue wire, black wire, white wire and brown wire are all housed in a rubber cover, and the plug is a British standard connector.

[0014] Compared with the prior art, the beneficial effects of the present invention are: the graphene plant insulation pad not only protects the internal components of the insulation pad and improves the internal structural strength of the insulation pad, but also controls the heating temperature;

[0015] With an aluminized pre-coated film fixedly connected to the back of the base film, the front and back of this insulation mat are respectively composed of a card protection film made of PCV and a base film. The carbon wire mesh arranged horizontally inside is also wrapped and protected by a silver wire mesh. The bottom of the base film is covered with a layer of aluminized pre-coated film, which not only protects the base film from the outside, but also increases the brightness of the film for easy identification. It also prevents water droplets, dew, and rainwater generated by the external environment from invading the interior of the mat and soaking the carbon wire mesh and other components.

[0016] By fixing a high-frequency envelope on the edge of the card protection film, when assembling the carbon wire mesh, base film and aluminum-plated pre-coated film, it is necessary to first support the card protection film and the base film with a silver wire mesh to form a rectangular chamber for the carbon wire mesh to be installed. The edges of the base film and the card protection film are sealed and reinforced by the high-frequency envelope. The excess reserved envelope on the left side can be cut off later without affecting the use of the thermal insulation pad. It can also improve the connection strength of the internal structure and prevent dirt from entering the inner side of the pad through the gap.

[0017] An intelligent temperature control component is arranged on the outside of the left side of the base film. There are four wiring harnesses in the rubber cover of the intelligent temperature control component, namely blue wire, black wire, white wire and brown wire. The blue wire and brown wire pass through the cover block and are fixedly connected to the riveted terminal 2, while the black wire and white wire in the center are shrunk in the heat shrink tube and fixedly connected to the NTC probe on the right. The right side of this NTC probe is installed on the carbon wire mesh through the riveted terminal 1. After connecting the power supply with a plug, a complete temperature control system can be formed to prevent the temperature from being too high or too low and affecting the thermal radiation assistance to plant growth. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the front cross-sectional structure of the present utility model;

[0019] Figure 2 This is a side-view exploded schematic diagram of the present invention;

[0020] Figure 3 For the utility model Figure 1 A schematic diagram of the partially enlarged structure at center A;

[0021] Figure 4 This is a front view structural diagram of the intelligent temperature control component of the present invention.

[0022] In the figure: 1. Card protection film; 2. High-frequency envelope; 3. Reserved envelope; 4. Rubber cover; 5. Intelligent temperature control component; 6. Plug; 7. Silver wire mesh; 8. Carbon wire mesh; 9. Base film; 10. Aluminum pre-coated film; 11. NTC probe; 12. Riveted terminal 1; 13. Blue wire; 14. Black wire; 15. White wire; 16. Brown wire; 17. Heat shrink tubing; 18. Sleeve block; 19. Riveted terminal 2. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] See also Figure 1-4 The utility model provides an embodiment: a graphene plant insulation pad, including an aluminum-plated pre-coated film 10 and a base film 9, the rear of the base film 9 is fixedly connected to the aluminum-plated pre-coated film 10, the front of the base film 9 is fixedly installed with a carbon wire mesh 8, and a silver wire mesh 7 is added between the edge of the carbon wire mesh 8 and the base film 9, the front end of the base film 9 and the carbon wire mesh 8 is covered with a card protection film 1, and the carbon wire mesh 8 is a graphene material.

[0025] The silver wire mesh 7 is wrapped around the carbon wire mesh 8, and the carbon wire mesh 8 is set between the base film 9 and the card protection film 1. The area of the aluminized pre-coated film 10 is equal to that of the base film 9. The aluminized pre-coated film 10 can isolate external moisture. The card protection film 1 is made of PVC.

[0026] Specifically, if Figure 1 and Figure 2 As shown, the front and back sides of the thermal insulation pad are respectively composed of a card protection film 1 and a base film 9 made of PCV. The carbon wire mesh 8 arranged horizontally inside is also wrapped and protected by a silver wire mesh 7. The bottom of the base film 9 is covered with a layer of aluminum-plated pre-coated film 10, which not only protects the base film 9 from the outside, but also increases the brightness of the film for identification, and prevents water droplets, dew, and rainwater generated in the external environment from invading the pad body.

[0027] A high-frequency envelope 2 is fixed to the edge of the card protection film 1, and a reserved envelope 3 is fixed to the left side of the high-frequency envelope 2. The high-frequency envelope 2 is sealed in the gap at the edge of the card protection film 1. The reserved envelope 3 can be cut along the dotted line according to the size of the pad.

[0028] Specifically, if Figure 1 As shown, when assembling the carbon wire mesh 8, the base film 9 and the aluminum-plated pre-coated film 10, it is necessary to first support the card protection film 1 and the base film 9 with the silver wire mesh 7 to form a rectangular chamber for the installation of the carbon wire mesh 8. The edges of the base film 9 and the card protection film 1 are sealed and reinforced by the high-frequency envelope 2. The excess reserved envelope 3 on the left can be cut off later, which does not affect the use of the insulation pad and can also improve the connection strength of the internal structure.

[0029] Two sets of riveted terminals 2 19 are fixed to the left side of the front end of the silver wire mesh 7, two sets of blocks 18 are fixed to the left side of the front end of the aluminized pre-coated film 10, a heat shrink tube 17 is fixed to the center of the left side of the front end of the aluminized pre-coated film 10, and the right side of the heat shrink tube 17 is connected to the NTC probe 11, and the right side of the NTC probe 11 is fixed with a riveted terminal 12, and the riveted terminal 12 is fixed to the surface of the carbon wire mesh 8, an intelligent temperature control component 5 is provided on the left side of the base film 9, and a British standard plug 6 is fixed to the bottom of the intelligent temperature control component 5, a rubber cover 4 is installed above the intelligent temperature control component 5, a blue wire 13 is horizontally inserted into the upper part of the inside of the rubber cover 4, and a black wire 14 is provided below the blue wire 13, a white wire 15 is provided below the black wire 14, and a brown wire 16 is provided below the white wire 15.

[0030] The diameters of the black wire 14 and the white wire 15 are both smaller than those of the blue wire 13 and the brown wire 16. The black wire 14 and the white wire 15 pass through the heat shrink tubing 17 and are connected to the NTC probe 11. The blue wire 13, the black wire 14, the white wire 15, and the brown wire 16 are all housed in the rubber sleeve 4. The plug 6 is a British standard connector.

[0031] Specifically, if Figure 1 、 Figure 3 and Figure 4 As shown, there are four wire harnesses in the rubber cover 4 of the intelligent temperature control component 5, namely the blue wire 13, the black wire 14, the white wire 15 and the brown wire 16. The blue wire 13 and the brown wire 16 pass through the cover block 18 and are fixedly connected to the riveted terminal 2 19, while the black wire 14 and the white wire 15 at the center are shrunk in the heat shrink tube 17 and fixedly connected to the NTC probe 11 on the right. The right side of this NTC probe 11 is installed on the carbon wire mesh 8 through the riveted terminal 12, forming a complete temperature control system.

[0032] Working principle: When the present invention is in use, the front and back sides of the thermal insulation pad are respectively composed of a card protection film 1 and a base film 9 made of PCV, and the carbon wire mesh 8 arranged horizontally inside is also wrapped and protected by a silver wire mesh 7. The bottom of the base film 9 is covered with a layer of aluminum-plated pre-coated film 10, which not only protects the base film 9 from the outside, but also improves the brightness of the film body for easy identification, and prevents water droplets, dew, and rainwater generated in the external environment from invading the pad body. When assembling the carbon wire mesh 8, base film 9 and aluminum-plated pre-coated film 10, it is necessary to first support the card protection film 1 and base film 9 with the silver wire mesh 7 to form a rectangular chamber for the installation of the carbon wire mesh 8. The edges of the base film 9 and the card protection film 1 are covered with a high-frequency envelope. 2 Sealing reinforcement, the extra reserved cover 3 on the left can be cut off later, which does not affect the use of the insulation pad and can also improve the connection strength of the internal structure. There are four wiring harnesses in the rubber cover 4 of the intelligent temperature control component 5, namely the blue wire 13, the black wire 14, the white wire 15 and the brown wire 16. The blue wire 13 and the brown wire 16 pass through the cover block 18 and are fixedly connected to the riveted terminal 2 19, while the black wire 14 and the white wire 15 at the center are shrunk in the heat shrink tube 17 and fixedly connected to the NTC probe 11 on the right. The right side of this NTC probe 11 is installed on the carbon wire mesh 8 through the riveted terminal 12 to form a complete temperature control system.

[0033] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be encompassed within the present invention. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. A graphene plant insulation pad, comprising an aluminum-plated pre-coated film (10) and a base film (9), characterized in that: The rear of the base film (9) is fixedly connected to an aluminum-plated pre-coated film (10), the front of the base film (9) is fixedly installed with a carbon wire mesh (8), and a silver wire mesh (7) is installed between the edge of the carbon wire mesh (8) and the base film (9), and the front ends of the base film (9) and the carbon wire mesh (8) are covered with a card protection film (1), and the carbon wire mesh (8) is a graphene material.

2. A graphene plant insulation mat according to claim 1, characterized in that: The silver wire mesh (7) is wrapped around the periphery of the carbon strip mesh (8), and the carbon strip mesh (8) is arranged between the base film (9) and the card protection film (1).

3. The graphene plant insulation mat according to claim 1, characterized in that: The area of the aluminum-plated pre-coated film (10) is equal to that of the base film (9), the aluminum-plated pre-coated film (10) can block external water vapor, and the card protection film (1) is made of PVC material.

4. The graphene plant insulation mat according to claim 1, characterized in that: A high-frequency envelope (2) is fixed to the edge of the card protection film (1), and a reserved envelope (3) is fixed to the left side of the high-frequency envelope (2).

5. The graphene plant insulation mat according to claim 4, characterized in that: The high-frequency envelope (2) is sealed in the gap at the edge of the card protection film (1), and the reserved envelope (3) can be cut along the dotted line according to the size of the pad body.

6. The graphene plant insulation mat according to claim 1, characterized in that: Two sets of riveted terminals 2 (19) are fixed on the left side of the front end of the silver wire mesh (7), two sets of sets of blocks (18) are fixed on the left side of the front end of the aluminum-plated pre-coated film (10), a heat shrink tube (17) is fixed at the center of the left side of the front end of the aluminum-plated pre-coated film (10), and the right side of the heat shrink tube (17) is connected to the NTC probe (11), and the right side of the NTC probe (11) is fixed with a riveted terminal 1 (12), and the riveted terminal 1 (12) is fixed on the surface of the carbon wire mesh (8), and the bottom film (9 ) is provided with an intelligent temperature control component (5) on the left side outside, and a British standard plug (6) is fixedly connected to the bottom of the intelligent temperature control component (5), a rubber cover (4) is installed on the top of the intelligent temperature control component (5), a blue wire (13) is horizontally plugged into the top of the inside of the rubber cover (4), and a black wire (14) is provided below the blue wire (13), a white wire (15) is provided below the black wire (14), and a brown wire (16) is provided below the white wire (15).

7. The graphene plant insulation mat according to claim 6, characterized in that: The diameters of the black wire (14) and the white wire (15) are both smaller than those of the blue wire (13) and the brown wire (16). The black wire (14) and the white wire (15) pass through the heat shrink tube (17) and are connected to the NTC probe (11).

8. The graphene plant insulation mat according to claim 6, characterized in that: The blue wire (13), the black wire (14), the white wire (15) and the brown wire (16) are all housed in the rubber cover (4), and the plug (6) is a British standard connector.