This application is based upon and claims priority under 35 U.S.C. 119 from Taiwan Patent Application No. 109100242 filed on Jan. 3, 2020, which is hereby specifically incorporated herein by this reference thereto.
The present invention relates to a micro fuse, especially to a micro fuse formed with a surface-mount method.
Fuses are mounted in the circuits for protection. The fuse has a fusible element to connect the protected circuit in series electrically. When the current in the circuit is abnormally increased and exceeds the rated current, the fusible element is blown due to overheating, thereby interrupting the circuit operation. Then the safety in using electricity is secured. When the fusible element is blown, the arc may be generated electric field penetrating the air that should have been an insulating medium because the electric field strength at both ends of the breakpoint is still very large. Therefore the circuit is not interrupted immediately, and the fuse loses its effect. In a prior art, an arc-extinguishing material may be disposed around the fusible element. The arc-extinguishing materials are used to reduce the probability of arcing of a fusible element by external influences or to eliminate the arc effect when an arc is generated quickly. However, when the electric field strength is extremely large, to eliminate the arc from outside cannot meet an urgency. As a result, the breaking of the fusible element cannot immediately constitute a circuit interruption.
To overcome the shortcomings, the present invention provides a surface-mount type micro fuse to mitigate or to obviate the aforementioned problems.
A surface-mount type micro fuse has a fusible element provided in a housing. The fusible element has a fusible body and two intermediary portions connected to both ends of the fusing portion. Two gaps are formed respectively between the fusible body and the intermediary portions. When the fusible element is blown out due to the transient abnormal current, the gaps between the intermediary portions cause a large distance instantaneously to prevent the arc. Then effectively ensure the safety of the use of the overall circuit. Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to the attached drawings, the present invention is described by means of the embodiment(s) below where the attached drawings are simplified for illustration purposes only to illustrate the structures or methods of the present invention by describing the relationships between the components and assembly in the present invention. Therefore, the components shown in the figures are not expressed with the actual numbers, actual shapes, actual dimensions, nor with the actual ratio. Some of the dimensions or dimension ratios have been enlarged or simplified to provide a better illustration. The actual numbers, actual shapes, or actual dimension ratios can be selectively designed and disposed, and the detail component layouts may be more complicated.
With reference to
The housing 10 is hollow and has an inner space 11, an annular wall 12, and an opening 13. The annular wall 12 is disposed around the inner space 11 and includes a main wall 121, two sidewalls 122, and two end walls 123. The sidewalls 122 are disposed oppositely on two edges of the main wall 121. The end walls 123 are disposed oppositely on the other two edges of the main wall 121. The sidewalls 122 and the end walls are disposed around the sides of the inner space 11. The opening 13 communicates with the inner space 11 and is disposed between the edges of the sidewalls 122 and the end walls 123. In one embodiment, the housing 10 is made of ceramic.
With reference to
With reference to
The second encapsulant 40 is mounted on the opening 13 of the housing 10 to block the contact between the first encapsulant 30 and the outside environment. The second encapsulant 40 and the first encapsulant 30 are made of different materials. The second encapsulant 40 has heat resistance characteristics. In one embodiment, the second encapsulant 40 may be made of silicon, polyimide (PI), or other materials.
With reference to
In conclusion, the advantage of the present invention is to prevent the arc at the first moment by the structural characteristics of the fusible element 20 itself when the conductive fuse 20 is blown out due to excessive current. Moreover, with the first encapsulant 30 having a characteristic of arc extinguishing, the first encapsulant 30 also can keep the arc from generating to achieve the effect of protecting the circuit.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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109100242 | Jan 2020 | TW | national |