Large-current-resistant circuit protection element
By using thicker conductive sheets and fuse structures in the circuit protection components, the problem of high current tolerance in the prior art has been solved, achieving protection against currents of 150 amperes and above.
Patent Information
- Application Number
- CN202520203684.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-10
AI Technical Summary
Most existing surface-mount circuit protection components can only withstand currents of up to 100 amps, while many high-current devices need to withstand currents of 150 amps or even higher, making it difficult for existing technologies to effectively protect the circuit safety of these devices.
A circuit protection element was designed, which adopts a structure of a thick conductive sheet and a fuse. The conductive sheet extends out of the housing, and the fuse is connected inside and surrounds the central hole. Combined with explosion-proof material filling, it can withstand large current and provide circuit protection in case of overload.
By increasing the cross-sectional area of the conductive sheet to reduce the resistance value and utilizing the current shunting design of the fuse, the circuit can withstand currents of over 150 amps, ensuring circuit safety.
Smart Images

Figure CN223898285U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a protective element, and more particularly to an electronic component used in a circuit, which provides circuit safety by producing a fusing effect when overcurrent occurs. Background Technology
[0002] In response to technological advancements, many devices utilizing high currents have emerged, such as energy storage devices used with renewable energy sources or battery packs for electric vehicles, which require rapid charging or discharging when needed. Similarly, artificial intelligence (AI) computing devices consume large currents during high-speed computation. Most existing surface-mount circuit protection components can only withstand currents up to 100 amps, while the aforementioned high-current devices often require 150 amps or even higher. Therefore, developing circuit protection components capable of withstanding high currents is urgently needed. Utility Model Content
[0003] In view of the aforementioned needs of the prior art, the purpose of this utility model is to provide a circuit protection element that can withstand large currents, namely, a current of 150 amperes or more.
[0004] To achieve the aforementioned utility model objective, the present utility model employs a circuit protection element comprising:
[0005] A shell having an opening and an internal space;
[0006] A conductive fuse is inserted into the opening of the housing and includes a fusible link and two conductive links. The fusible link is connected between the conductive links. The thickness of the fusible link is less than the thickness of the conductive links. The fusible link is located in the internal space of the housing. The conductive links extend from the internal space of the housing out of the housing from the opening.
[0007] A cover that fits over the opening of the housing;
[0008] A colloid that covers the cover.
[0009] The fusible link includes two connecting portions and two fusible portions. The connecting portions are respectively connected to corresponding conductive sheets, and the fusible portions are connected between the connecting portions so that the fusible portions and the connecting portions surround a central hole.
[0010] The fused piece and the conductive piece are not integrally formed but interconnected.
[0011] The fused piece and the conductive piece are integrally formed.
[0012] The fuse and the conductive sheet are made of the same material.
[0013] The fuse and the conductive sheet are made of different materials.
[0014] The housing includes four side walls and a bottom wall. The four side walls extend vertically from the four sides of the bottom wall to form the internal space and the opening relative to the bottom wall.
[0015] The housing includes two opposing first sides and two opposing second sides, with the first and second sides being adjacent and connected. Four positioning blocks are provided in the internal space, with each positioning block located at the junction of the adjacent first and second sides. Each positioning block has a short wall and a long wall, with the short wall arranged along the corresponding first side and the long wall arranged along the corresponding second side. Partial edges of each conductive sheet abut against the short walls of the corresponding positioning blocks.
[0016] The conductive sheets are respectively attached to the corresponding sidewalls of the housing and extend outside the housing.
[0017] The interior space of the shell is filled with explosion-proof material.
[0018] The advantage of this invention is that by using a thicker conductive sheet to increase the cross-sectional area, the resistance value is reduced, and overall the circuit protection element of this invention can withstand a larger current.
[0019] Furthermore, the fuse includes two connecting portions and two fusing portions. The connecting portions are respectively connected to corresponding conductive sheets, and the fusing portions span between the connecting portions, so that the fusing portions and the connecting portions surround a central hole. By providing two fusing portions, a current-shunting effect is achieved when current passes through the conductive fuse, further enhancing the circuit protection element's ability to withstand larger currents.
[0020] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention. Attached Figure Description
[0021] Figure 1 This is a perspective view of the present utility model;
[0022] Figure 2 This is an exploded view of some components of this utility model;
[0023] Figure 3 This is a side sectional view of the present invention;
[0024] Figure 4 This is a top view of some components of this utility model;
[0025] Figure 5This is a perspective view of the conductive fuse of this utility model;
[0026] Figure 6 This is a perspective view of a conductive fuse according to another embodiment of the present invention;
[0027] Figure 7 This is a side sectional view of another embodiment of the present invention;
[0028] Figure 8 This is a top view of some components of the present invention in its usage state.
[0029] In the attached figures, the following labels are used:
[0030] 10: Shell 101: Sidewall
[0031] 102: Bottom wall 11: Interior space
[0032] 12: Opening 13: First side
[0033] 14: Second side 15: Positioning block
[0034] 151: Short wall 152: Long wall
[0035] 20, 20A: Conductive fuse; 21, 21A: Fuse clip
[0036] 211: Connecting part; 212: Fusible part
[0037] 213: Center hole; 22, 22A: Conductive sheet
[0038] 30: Cap 40: Sealing compound
[0039] 50: Explosion-proof materials Detailed Implementation
[0040] The following, in conjunction with the accompanying drawings and embodiments of the present invention, further illustrates the technical means adopted by the present invention to achieve its intended purpose. The drawings have been simplified for illustrative purposes only, and the structure or method of the present invention is explained by describing the relationship between the elements and components. Therefore, the elements shown in the drawings are not presented in actual quantity, actual shape, actual size, or actual proportion. The size or size proportion has been enlarged or simplified to provide a better illustration. The actual quantity, actual shape, or actual size proportion has been selectively designed and configured, and the detailed element layout may be more complex.
[0041] Please see Figure 1 and Figure 2 As shown, this utility model includes a shell 10, a conductive fuse 20, a cover 30, and a sealing adhesive 40.
[0042] The aforementioned housing 10 includes an internal space 11 and an opening 12. In one embodiment, the housing 10 includes four side walls 101 and a bottom wall 102. The four side walls 101 extend vertically from the four sides of the bottom wall 102, forming the internal space 11 and the opening 12 relative to the bottom wall 102. In one embodiment, the housing 10 includes two opposing first sides 13 and two opposing second sides 14. The first sides 13 and the second sides 14 are adjacent and connected. Four positioning blocks 15 are provided in the internal space 11. The positioning blocks 15 are located at the four corners of the internal space 11, that is, each positioning block 15 is located at the junction of an adjacent first side 13 and a second side 14. Each positioning block 15 has a short wall 151 and a long wall 152. The short wall 151 is provided along the corresponding first side 13, and the long wall 152 is provided along the corresponding second side 14.
[0043] Please see Figures 2 to 4 As shown, the aforementioned conductive fuse 20 passes through the opening 12 of the housing 10 and includes a fusible link 21 and two conductive plates 22. The fusible link 21 connects between the conductive plates 22, and the thickness of the fusible link 21 is less than the thickness of the conductive plates 22. The fusible link 21 is disposed in the internal space 11 of the housing 10. The conductive plates 22 extend from the internal space 11 of the housing 10 out of the housing 10 from the opening 12. The fusible link 21 includes two connecting portions 211 and two fusing portions 212. The connecting portions 211 are respectively connected to the corresponding conductive plates 22, and the fusing portions 212 span between the connecting portions 211, so that the fusing portions 212 and the connecting portions 211 surround a central hole 213. In one embodiment, the conductive plates 22 respectively abut against the corresponding sidewalls 101 of the housing 10 and extend out of the housing 10. In one embodiment (e.g.) Figure 5 As shown), the fuse 21 and the conductive sheet 22 are not integrally formed but connected to each other (e.g., connected by welding); in another embodiment (e.g. Figure 6 As shown in the diagram, the fuse element 21A and the conductive sheet 22A of the conductive fuse 20A are integrally formed. In one embodiment, a portion of the edge of each conductive sheet 22 abuts against the short wall 151 of the corresponding positioning block 15, thereby allowing the conductive fuse 20 to be partially inserted into the internal space 11 of the housing 10 by aligning the edges of the conductive sheets 22 with the short walls 151 of the corresponding positioning blocks 15 during assembly, thus improving assembly convenience. Generally, the conductive fuse 20, when not assembled, appears as follows: Figure 5 As shown in the flat state, the conductive sheet 22 will be bent into a flat shape during assembly. Figures 1 to 4The state shown. In one embodiment, the conductive fuse 20 is made of metals such as silver, copper, nickel, tin, aluminum, zinc, or their alloys; in another embodiment, the conductive fuse 20 is made of silver or copper; in yet another embodiment, the fuse element 21 and the conductive element 22 are made of different materials; in yet another embodiment, the fuse element 21 and the conductive element 22 are made of the same material.
[0044] The aforementioned cover 30 covers the opening 12 of the housing 10 to enclose the fuse element 21 of the conductive fuse 20 within the internal space 11 of the housing 10. In one embodiment, the cover 30 is made of ceramic or plastic. In one embodiment (e.g.) Figure 7 As shown, first, explosion-proof material 50 is filled into the internal space 11, and then the cover 30 is placed over it. The explosion-proof material 50 is used to eliminate the electric arc that may be caused by the instantaneous high heat generated when the fuse 21 begins to melt due to excessive current. In one embodiment, the explosion-proof material 50 is made of materials such as quartz sand, explosion-proof sand, ceramic sand, glass fiber, or flame retardant. The flame retardant may be made of materials such as melamine, magnesium hydroxide, or aluminum hydroxide.
[0045] The aforementioned sealant 40 covers the cover 30. In one embodiment, the sealant 40 is made of materials such as silicone, epoxy resin, nylon, or engineering plastics.
[0046] Please see Figure 4 and Figure 8 As shown, in use, the circuit protection element of this invention is connected in series at the required position in the circuit, and forms an electrical connection with the corresponding electronic component through the conductive sheet 22. When a current exceeding the load passes through, the fuse part 212 melts to break the circuit, thereby achieving the effect of protecting the circuit. Because the conductive sheet 22 is relatively thick, its cross-sectional area is large, which effectively reduces the resistance value. Furthermore, the fuse part 212 has a design with two fuse parts 212, which also allows the current to be diverted when it passes through. Overall, the circuit protection element of this invention can withstand a large current.
[0047] The above description is merely an embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above by way of embodiment, it is not intended to limit the present utility model. Anyone skilled in the art can make some modifications or alterations to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.
[0048] Of course, there may be other embodiments of this utility model. Without departing from the spirit and essence of this utility model, those skilled in the art can make various corresponding changes and modifications based on this utility model, but these corresponding changes and modifications should all fall within the protection scope of the claims of this utility model.
Claims
1. A circuit protection element that can withstand high current, characterized in that, include: A shell having an opening and an internal space; A conductive fuse is inserted into the opening of the housing and includes a fusible link and two conductive links. The fusible link is connected between the conductive links. The thickness of the fusible link is less than the thickness of the conductive links. The fusible link is located in the internal space of the housing. The conductive links extend from the internal space of the housing out of the housing from the opening. A cover that fits over the opening of the housing; A colloid that covers the cover.
2. The circuit protection element with high current tolerance according to claim 1, characterized in that, The fuse includes two connecting portions and two fusible portions. The connecting portions are respectively connected to corresponding conductive sheets, and the fusible portions are connected between the connecting portions so that the fusible portions and the connecting portions surround a central hole.
3. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The fuse and the conductive sheet are not integrally formed but are connected to each other.
4. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The fuse and the conductive sheet are integrally formed.
5. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The fuse and the conductive sheet are made of the same material.
6. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The fuse and the conductive sheet are made of different materials.
7. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The housing includes four side walls and a bottom wall. The four side walls extend vertically from the four sides of the bottom wall to form the internal space and the opening relative to the bottom wall.
8. The circuit protection element with high current tolerance according to claim 7, characterized in that: The housing includes two opposing first sides and two opposing second sides, with the first sides and the second sides being adjacent and connected. Four positioning blocks are provided in the internal space, with the positioning blocks located at the junction of the adjacent first and second sides respectively. Each positioning block has a short wall and a long wall, with the short wall arranged along the corresponding first side and the long wall arranged along the corresponding second side. A portion of the edge of each conductive sheet abuts against the short wall of the corresponding positioning block.
9. The circuit protection element with high current tolerance according to claim 7, characterized in that, The conductive sheets are respectively attached to the corresponding sidewalls of the housing and extend outside the housing.
10. The circuit protection element with high current tolerance according to claim 8, characterized in that, The conductive sheets are respectively attached to the corresponding sidewalls of the housing and extend outside the housing.
11. The circuit protection element with high current tolerance according to claim 1 or 2, characterized in that, The interior space of the enclosure is filled with explosion-proof material.