Graphene intelligent heating floor anti-fusing copper wire connector
By using silicon carbide materials and oxygen-free copper cylindrical conductive bases, the problems of quick disassembly and assembly and anti-melting of copper wire connectors in graphene smart heating floors are solved, improving maintenance convenience and safety.
Patent Information
- Application Number
- CN202520063198.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-01-13
AI Technical Summary
The copper wire connectors of existing graphene smart heating floors are not easy to quickly disassemble and assemble during use, resulting in inconvenient maintenance and a tendency to melt due to overheating, posing a safety hazard.
The silicon carbide insert, silicon carbide inner connector, and silicon carbide outer connector are made of silicon carbide material. Combined with oxygen-free copper cylindrical conductive base and flexible plug design, it can achieve quick assembly and disassembly and rapid heat transfer, and prevent copper wire from melting.
It enables quick assembly and disassembly of copper wire connectors, facilitates maintenance, and effectively prevents copper wire from melting, ensuring connection effectiveness and service life.
Smart Images

Figure CN223771460U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of copper wire connector technology, specifically a graphene intelligent heating floor anti-melting copper wire connector. Background Technology
[0002] With the advancement of technology and the improvement of living standards, graphene smart heating floors have gradually become the first choice for modern home heating due to their high efficiency, energy saving, uniform heating, and rapid temperature rise. However, in the heating system of graphene smart heating floors, copper wires, as the main carriers of current conduction, are prone to overheating, aging, or even melting at their joints due to the large current density and temperature changes they withstand. This not only affects the normal use of the floor but may also cause safety hazards. Therefore, it is particularly important to develop a copper wire joint for graphene smart heating floors that is resistant to melting.
[0003] According to CN220086401U, an outdoor copper wire connector includes a first copper wire connector, a second copper wire connector, and a connecting component. Both the first and second copper wire connectors are made of copper, and each has a cable connection hole for inserting and electrically connecting a copper wire. The first copper wire connector has a insertion cavity. The connecting component positions the first copper wire connector relative to the second copper wire connector, allowing the second copper wire connector to connect to the first copper wire through the insertion cavity. The electrical connection of the two copper wires is achieved through the connection of the first and second copper wire connectors. The second copper wire connector is sealed and fitted to the first copper wire connector, ensuring the resistivity between the two copper wire connectors and guaranteeing the stability of electrical transmission between the two copper wires. The connection of the two copper wire connectors does not require any other auxiliary equipment, making it convenient for outdoor use. As can be seen from the above, although this copper wire connector can be well applied, it is usually not convenient to quickly disassemble and assemble the whole, which makes it difficult to disassemble and maintain the copper wire connector. It is somewhat inconvenient to use and needs to be improved. Utility Model Content
[0004] The purpose of this utility model is to provide a graphene intelligent heating floor anti-fuss copper wire connector to solve the problem mentioned in the background art that although copper wire connectors can be used well, they are usually not easy to disassemble and assemble quickly as a whole, which makes it difficult to disassemble and maintain the copper wire connector and causes certain inconvenience during use.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a graphene intelligent heating floor anti-fuss copper wire connector, comprising a first copper wire connector, the top of the first copper wire connector being provided with a cylindrical connector, an elastic plug being inserted and installed inside the top of the cylindrical connector, the top of the elastic plug extending to the outside of the cylindrical connector and being provided with a silicon carbide placement cylinder, a silicon carbide inner connector being provided on the outer wall of the silicon carbide placement cylinder, two spring pieces being installed on the outer wall of the silicon carbide inner connector, each of the spring pieces having a snap-fit block on its upper outer wall, a silicon carbide outer connector being installed on the outer side of the silicon carbide inner connector, and snap-fit grooves being provided on both sides of the upper outer wall of the silicon carbide outer connector, the snap-fit grooves and snap-fit blocks engaging with each other.
[0006] Preferably, the inner wall of the lower end of the cylindrical connector is provided with a plug, the bottom end of which extends into the interior of the first copper wire connector. The plug is provided so that the cylindrical connector can be positioned at the top of the first copper wire connector.
[0007] Preferably, a protective sleeve is fitted on the outer wall of the silicon carbide outer connector, and the outer wall of the protective sleeve is provided with anti-slip grooves. The protective sleeve is provided to facilitate the handling of the silicon carbide outer connector.
[0008] Preferably, the upper end of the silicon carbide placement cylinder is provided with an oxygen-free copper cylindrical conductive seat, the top of which extends to the outside of the silicon carbide placement cylinder. The oxygen-free copper cylindrical conductive seat is provided to accommodate the upper copper wire pins and the lower copper wire pins.
[0009] Preferably, the top of the oxygen-free copper cylindrical conductive base is provided with a plurality of upper copper wire pins, and the upper copper wire pins are set to four, so as to install and connect copper wires.
[0010] Preferably, the bottom end of the oxygen-free copper cylindrical conductive base is provided with a plurality of lower copper wire pins, and the lower copper wire pins are set to four, so as to install and connect copper wires.
[0011] Compared with the prior art, the beneficial effects of this utility model are: the graphene intelligent heating floor anti-melting copper wire connector not only realizes the function of quick disassembly and assembly of copper wire connector to improve the convenience of copper wire connector maintenance and use, but also achieves the purpose of easy power connection of two copper wires, and achieves the purpose of preventing copper wire from melting, so as to ensure the connection effect and service life of copper wire.
[0012] (1) By setting the elastic plug, when the elastic plug is pulled or pressed, the elastic plug can be inserted into the inside of the cylindrical connector or removed to the outside of the cylindrical connector, so that the silicon carbide insert and the silicon carbide inner connector can be installed and removed from the top of the cylindrical connector. Then, through the good elasticity of the spring piece, when the silicon carbide outer connector is pulled or pushed, the snap-fit block can be snapped into the snap-fit groove or removed to the outside of the snap-fit groove, so as to perform the disassembly and assembly of the silicon carbide inner connector and the silicon carbide outer connector, thereby realizing the function of quick disassembly and assembly of the copper wire connector, thereby improving the convenience of copper wire connector maintenance and use.
[0013] (2) By setting the oxygen-free copper cylindrical conductive base at the upper end of the inside of the silicon carbide placement cylinder, and setting several upper copper wire pins and lower copper wire pins at both ends of the oxygen-free copper cylindrical conductive base, a copper wire is passed through the silicon carbide inner connector and connected to the upper copper wire pin, and another copper wire is passed through the first copper wire connector and the cylindrical connector and connected to the lower copper wire pin, thereby achieving the purpose of easily connecting the two copper wires to the power supply.
[0014] (3) By using silicon carbide materials for the silicon carbide insert, silicon carbide external connector and silicon carbide internal connector, the heat generated during the use of oxygen-free copper cylindrical conductive base and copper wire and other related components can be quickly transferred to the external environment, thereby effectively reducing the phenomenon of high temperature generated by copper wire, thus achieving the purpose of preventing copper wire from melting and ensuring the connection effect and service life of copper wire. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0016] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0017] Figure 3 This is a schematic diagram of the silicon carbide internal connector structure of this utility model;
[0018] Figure 4 This is a schematic diagram of the silicon carbide insert cylinder structure of this utility model;
[0019] Figure 5 This is a schematic diagram of the oxygen-free copper cylindrical conductive base structure of this utility model;
[0020] Figure 6 This is a schematic diagram of the silicon carbide external connector structure of this utility model.
[0021] In the diagram: 1. First copper wire connector; 2. Cylindrical connector; 201. Plug connector; 3. Silicon carbide external connector; 301. Snap-fit groove; 4. Silicon carbide internal connector; 401. Spring piece; 402. Snap-fit block; 5. Oxygen-free copper cylindrical conductive base; 501. Upper copper wire pin; 502. Lower copper wire pin; 6. Silicon carbide insert cylinder; 7. Flexible plug; 8. Protective sleeve; 801. Anti-slip groove. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0023] Please see Figure 1-6 An embodiment of this utility model is provided: a graphene intelligent heating floor anti-melting copper wire connector, including a first copper wire connector 1, a cylindrical connector 2 at the top of the first copper wire connector 1, a plug connector 201 on the inner wall at the lower end of the cylindrical connector 2, and the bottom end of the plug connector 201 extending into the interior of the first copper wire connector 1.
[0024] In use, the plug 201 is designed so that the cylindrical connector 2 can be placed at the top of the first copper wire connector 1;
[0025] A protective sleeve 8 is fitted on the outer wall of the silicon carbide external connector 3, and the outer wall of the protective sleeve 8 is provided with anti-slip grooves 801;
[0026] During use, the protective sleeve 8 is provided to facilitate the removal and handling of the silicon carbide external connector 3;
[0027] A flexible plug 7 is inserted into the top of the cylindrical connector 2. The top of the flexible plug 7 extends to the outside of the cylindrical connector 2 and is provided with a silicon carbide placement cylinder 6. An oxygen-free copper cylindrical conductive seat 5 is provided at the upper end inside the silicon carbide placement cylinder 6. The top of the oxygen-free copper cylindrical conductive seat 5 extends to the outside of the silicon carbide placement cylinder 6.
[0028] In use, the oxygen-free copper cylindrical conductive base 5 is set to accommodate the upper copper wire pin 501 and the lower copper wire pin 502.
[0029] The top of the oxygen-free copper cylindrical conductive base 5 is provided with several upper copper wire pins 501, and there are four upper copper wire pins 501.
[0030] During use, the copper wire is installed and connected by setting the upper copper wire pin 501;
[0031] The bottom end of the oxygen-free copper cylindrical conductive base 5 is provided with several lower copper wire pins 502, and there are four lower copper wire pins 502.
[0032] During use, the copper wire is installed and connected by setting the lower copper wire pin 502;
[0033] The outer wall of the silicon carbide insert cylinder 6 is provided with a silicon carbide inner connector 4. Two spring pieces 401 are installed on the outer wall of the silicon carbide inner connector 4. Each spring piece 401 has a fastening block 402 on its upper outer wall. A silicon carbide outer connector 3 is installed on the outer side of the silicon carbide inner connector 4. Both sides of the upper outer wall of the silicon carbide outer connector 3 are provided with fastening grooves 301. The fastening grooves 301 and the fastening blocks 402 are fastened to each other.
[0034] In this embodiment, the two copper wires are connected by several upper copper wire pins 501 and lower copper wire pins 502. One copper wire is passed through the silicon carbide inner connector 4 and connected to the upper copper wire pin 501, while another copper wire is passed through the first copper wire connector 1 and the cylindrical connector 2 and connected to the lower copper wire pin 502. The silicon carbide housing 6, silicon carbide outer connector 3, and silicon carbide inner connector 4 are all made of silicon carbide, allowing the heat generated during the use of the oxygen-free copper cylindrical conductive base 5 and the copper wires to be quickly transferred to the external environment, reducing the risk of the copper wires melting and being damaged due to high temperatures. Finally, the flexible plug 7... When the elastic plug 7 is pulled or pressed, it can be inserted into the inside of the cylindrical connector 2, or removed to the outside of the cylindrical connector 2, so that the silicon carbide sleeve 6 and the silicon carbide inner connector 4 can be installed or removed from the top of the cylindrical connector 2. Then, due to the good elasticity of the spring piece 401, when the silicon carbide outer connector 3 is pulled or pushed, the snap-fit block 402 can be snapped into the snap-fit groove 301, or removed to the outside of the snap-fit groove 301, so as to disassemble and assemble the silicon carbide inner connector 4 and the silicon carbide outer connector 3. Because the copper wire connector has the function of quick disassembly and assembly, it is easy to disassemble and maintain the copper wire connector, thereby completing the use of the copper wire connector.
Claims
1. A graphene smart-thermal floor anti-fusible copper wire joint, characterized in that: The utility model provides a copper wire joint, including first copper wire joint (1), the top end of first copper wire joint (1) is equipped with the tubular connector (2), the inside top end of tubular connector (2) is inserted and is installed with elastic plug (7), the top end of elastic plug (7) extends to the outside of tubular connector (2) and is equipped with silicon carbide spare barrel (6), the outer wall of silicon carbide spare barrel (6) is equipped with silicon carbide inner joint (4), the outer wall of silicon carbide inner joint (4) is installed with two elastic sheet (401), the outer wall of elastic sheet (401) upper end is all equipped with the buckle block (402), the outside of silicon carbide inner joint (4) is installed with silicon carbide outer joint (3), the both sides outer wall of silicon carbide outer joint (3) upper end is all equipped with the buckle groove (301), and the buckle groove (301) and buckle block (402) are mutually buckled.
2. The graphene intelligent heating floor anti-fusing copper wire joint according to claim 1, characterized in that: The inner wall of the lower end of the tubular connector (2) is provided with a plug (201), and the bottom end of the plug (201) extends to the inside of the first copper wire joint (1).
3. The graphene intelligent heating floor anti-fusing copper wire joint according to claim 1, characterized in that: The outer wall of the silicon carbide outer joint (3) is sleeved with a protective sleeve (8), and the outer wall of the protective sleeve (8) is provided with an anti-skid groove (801).
4. The graphene intelligent heating floor anti-fusing copper wire joint according to claim 1, characterized in that: The upper end of the inside of the silicon carbide spare barrel (6) is provided with an oxygen-free copper cylindrical conductive seat (5), and the top end of the oxygen-free copper cylindrical conductive seat (5) extends to the outside of the silicon carbide spare barrel (6).
5. The graphene intelligent heating floor anti-fusible copper wire joint according to claim 4, characterized in that: The top end of the oxygen-free copper cylindrical conductive seat (5) is provided with a plurality of upper copper wire pins (501), and the upper copper wire pins (501) are four in number.
6. The graphene intelligent heating floor anti-fusible copper wire joint according to claim 4, characterized in that: The bottom end of the oxygen-free copper cylindrical conductive seat (5) is provided with a plurality of lower copper wire pins (502), and the lower copper wire pins (502) are four in number.
Citation Information
Patent Citations
Outdoor copper wire connector
CN220086401U