Fuse carrying mechanism and connector assembly
By designing a fuse load bearing mechanism that includes an insulating body, a quick-removal base and a movable member, the problem of fuses being difficult to disassemble and replace in existing fuse connectors is solved, and the rapid disassembly and assembly and replacement of fuses are realized.
Patent Information
- Application Number
- CN202311841350.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2023-11-10
- Filing Date
- 2023-12-15
- Publication Date
- 2025-05-13
AI Technical Summary
In existing fuse connectors, the fuse is not easy to disassemble or replace, resulting in inconvenient use.
A fuse bearing mechanism is designed, including an insulating body, a quick-removal base and a movable member. The movable member is connected to the quick release base and can be movably pushed against the fuse, making it easy to install and disassemble.
It realizes quick disassembly and assembly and replacement of fuses, without using tools, and improves the convenience of use.
Smart Images

Figure CN119994585A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to a fuse carrying mechanism and a connector assembly, and in particular to a fuse carrying mechanism and a connector assembly which can be installed and disassembled without tools. Background Art
[0002] Common existing connectors with fuses, such as busbar connectors used in servers, are designed to protect other related electronic components. In practical applications, in order to ensure good conductive contact between the fuse and the device, it is usually fixed with bolts, which makes the fuse difficult to disassemble. Summary of the invention
[0003] One embodiment of the present invention discloses a fuse carrying mechanism and a connector assembly, which are mainly used to improve the problem that the fuse in the existing connector with a fuse is difficult to disassemble and replace.
[0004] One embodiment of the present invention discloses a fuse carrying mechanism, which includes: an insulating body; a quick-release base, which is disposed on the insulating body; and a movable member, which is movably connected to the quick-release base; wherein, when a fuse is installed on the quick-release base, a portion of the movable member is located on one side of the fuse; when the movable member moves relative to the quick-release base, it can push the fuse to move.
[0005] Preferably, the quick-release base further comprises at least two conductive components which are fixed in the insulating body at intervals, each conductive component comprises a receiving groove, and the two receiving grooves are used to receive the fuses.
[0006] Preferably, the movable member further comprises a pushing structure, and when the fuse is located in the two receiving grooves and the movable member is located at a restricted position, the pushing structure pushes a portion of the receiving groove, causing at least a portion of the receiving groove to elastically deform inwardly.
[0007] Preferably, the conductive component further includes an elastic arm and an auxiliary elastic arm, the auxiliary elastic arm and the elastic arm together form a receiving groove, and an opening is formed on one side of the receiving groove.
[0008] Preferably, the movable component is pivotally connected to the two conductive components, and the movable component can rotate between the two conductive components to push the fuses located in the two receiving slots out of the two receiving slots.
[0009] Preferably, the insulating body includes a first engaging structure, and the movable component includes a second engaging structure; when the movable component is located at the restricted position, the second engaging structure and the first engaging structure engage with each other.
[0010] Preferably, the quick-release base further comprises at least two conductive components which are fixed to the insulating body at intervals, each conductive component comprises an elastic clamping structure, and the two elastic clamping structures are used to clamp the fuse therein.
[0011] Preferably, the movable component is pivotally connected to the two conductive components, and the movable component can rotate between the two conductive components to push the clamped fuse away from the two elastic clamping structures.
[0012] Preferably, the movable component further comprises a pushing structure. When the fuse is located between the two elastic clamping structures, the pushing structure pushes the two elastic clamping structures so that the two elastic clamping structures clamp the fuse therebetween.
[0013] One embodiment of the present invention discloses a fuse carrying mechanism, which includes: a conductive component, which includes a receiving slot; a movable component, a portion of which is movably connected to the conductive component, and the movable component includes a push-out portion; wherein, when a fuse is located in the receiving slot and the movable component leaves a restricted position, the push-out portion pushes against the fuse to cause the fuse to escape from the receiving slot.
[0014] Preferably, the conductive component further includes an elastic arm and an auxiliary elastic arm, the auxiliary elastic arm and the elastic arm together form a receiving groove, and an opening is formed on one side of the receiving groove.
[0015] Preferably, the fuse carrying mechanism further comprises an insulating body, the conductive component is fixed to the insulating body, the insulating body comprises a first engaging structure, and the movable component comprises a second engaging structure; when the movable component is located at the restricted position, the second engaging structure engages with the first engaging structure.
[0016] Preferably, the movable member further comprises a pushing structure, and when the fuse is located in the receiving groove and the movable member is located at the limiting position, the pushing structure pushes against the receiving groove, so that at least a portion of the receiving groove is elastically deformed inwardly.
[0017] Preferably, the inner side of the pushing structure has a protrusion, and when the fuse is located in the receiving groove and the movable member is located at the limiting position, the protrusion directly or indirectly pushes against a part of the receiving groove to elastically deform it inward.
[0018] One of the embodiments of the present invention discloses a connector assembly, which includes: a plurality of connecting wires, a connector and a fuse carrying mechanism. The connector includes: an insulating seat and two connecting terminal groups. The two connecting terminal groups are arranged in the insulating seat in an interval and electrically isolated manner, and one of the two connecting terminal groups is electrically connected to at least one of the plurality of connecting wires; the fuse carrying mechanism includes: two conductive components and a movable component. One of the conductive components is connected to the other connecting terminal group, and the other conductive component is connected to the other connecting wires, and each conductive component includes a receiving groove or an elastic clamping structure; the movable component includes a push-out portion; wherein, when the two ends of a fuse are respectively located in the two receiving grooves or clamped by the two elastic clamping structures, and the movable component leaves a restricted position, the push-out portion pushes against the fuse to cause the fuse to be disengaged from the two receiving grooves or the two elastic clamping structures.
[0019] Preferably, the movable component further includes an operating portion, which is connected to the pushing portion and exposed outside the receiving groove, and is used to operate the movable component to the restricted position or leave the restricted position.
[0020] Preferably, the movable component further includes a pushing structure. When the two ends of the fuse are respectively located in the two receiving grooves or between the two elastic clamping structures and the movable component is located in the restricted position, the pushing structure pushes against a part of the receiving groove or the two elastic clamping structures to clamp the fuse.
[0021] Preferably, the insulating seat further comprises at least one slot, and each connecting terminal group is placed on one side of the slot.
[0022] Preferably, each conductive member further comprises an elastic arm and an auxiliary elastic arm, the auxiliary elastic arm and the elastic arm together form a receiving groove, and an opening is formed on one side of the receiving groove for one end of the fuse to enter the receiving groove. The mutual cooperation of the movable members allows the user to easily push the fuse out of the receiving groove by operating the movable member.
[0023] To further understand the features and technical contents of the present invention, please refer to the following detailed description and drawings of the present invention. However, such description and drawings are only used to illustrate the present invention and are not intended to limit the protection scope of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the cover body of the connector assembly of the present invention being closed.
[0025] Figure 2 This is a schematic diagram of the connector assembly of the present invention with the cover opened.
[0026] Figure 3 It is a schematic diagram of the separation of the connector assembly and the fuse of the present invention.
[0027] Figure 4 It is a schematic diagram of an exploded view of the connector assembly of the present invention.
[0028] Figure 5 This is a schematic diagram of the fuse carrying mechanism of the present invention carrying a fuse.
[0029] Figure 6 It is an exploded schematic diagram of the fuse carrying mechanism of the present invention.
[0030] Figure 7 The figure is a top view of the conductive component and the fuse of the fuse support mechanism of the present invention.
[0031] Figure 8 It is a top view schematic diagram of the fuse supporting mechanism of the present invention.
[0032] Fig. 9 for Figure 8 A partial enlarged schematic diagram of .
[0033] Fig.10 The figure is a top view of the fuse supporting mechanism and the fuse of the present invention.
[0034] Fig.11 and Fig.12 FIG. 2 is a schematic diagram of assembly and disassembly of another embodiment of a fuse carrying mechanism of the present invention.
[0035] Fig.13 for Fig.11 Schematic diagram of the section along section line XIII-XIII. DETAILED DESCRIPTION
[0036] In the following description, if it is indicated to refer to a specific figure or as shown in a specific figure, it is only used to emphasize that most of the related contents described in the subsequent description appear in the specific figure, but it does not limit the subsequent description to only refer to the specific figure.
[0037] Please also read Figures 1 to 5 , Figure 1 and Figure 2 They are schematic diagrams of the connector assembly of the present invention with the cover body closed and the cover body opened, Figure 3 , Figure 4 and Figure 5 They are respectively a schematic diagram of the connector assembly and the fuse being separated, a schematic diagram of being exploded, and a schematic diagram of the fuse carrying mechanism carrying a fuse according to the present invention.
[0038] The connector assembly 100 of the present invention includes: a fuse carrier 1, a connector 2 and a plurality of connecting wires 3. The connector 2 includes an insulating seat 21 and two connecting terminal groups 22. The two connecting terminal groups 22 are arranged in the insulating seat 21 in an interval and electrically isolated manner, wherein one connecting terminal group 22 is connected to at least one connecting wire 3, and the other connecting terminal group 22 is connected to one of the conductive components 13 of the fuse carrier 1, and the other conductive component 13 of the fuse carrier 1 is connected to the other connecting wires 3. The two connecting terminal groups 22 are respectively used to electrically connect two different power sources (or potentials). The insulating seat 21 may further include a slot, and the two connecting terminal groups 22 may be arranged on both sides of the slot, or as Figure 1 The insulating seat 21 may further include two slots 211 , and the two connecting terminal sets 22 are respectively disposed in the two slots 211 .
[0039] In the drawings of this embodiment, the connector assembly 100 is taken as an example that can carry two fuses 200, but the number of fuses 200 that the connector assembly 100 can carry is not limited thereto. In different embodiments, the connector assembly 100 can also carry only a single fuse 200, or can carry more than three fuses 200. In other words, the fuse carrying mechanism 1 carries one or more fuses and electrically connects a connection terminal group 22 and at least one connection line 3. When the current between the connection terminal group 22 and the at least one connection line 3 exceeds the rated current of the fuse, the fuse will be disconnected to protect the circuit.
[0040] Please also read Figures 4 to 7 , Figure 6 and Figure 7 They are respectively an exploded schematic diagram of the fuse carrying mechanism of the present invention and a top view schematic diagram of the conductive component of the fuse carrying mechanism and the fuse.
[0041] The fuse carrier mechanism 1 includes an insulating housing, two conductive members 13 and two movable members 14. In this embodiment, the insulating housing includes an insulating shell 11 and an insulating body 12, both of which can be independent components from the insulating seat 21 of the connector 2; or the insulating housing and the insulating seat 21 are integrally formed and extended from one side end of the insulating seat 21. The number of conductive members 13 and movable members 14 included in the fuse carrier mechanism 1 is not limited to two. In different embodiments, the fuse carrier mechanism 1 can also include only a single conductive member 13 and a single movable member 14. The movable member 14 is used as a quick release mechanism of the fuse to remove one or more installed fuses.
[0042] The insulating shell 11 may include, for example, a shell body 111 and a cover body 112. The cover body 112 is movably connected to the shell body 111. The insulating body 12 and the two conductive components 13 are disposed in the shell body 111, and a portion of the two movable components 14 is disposed in the shell body 111, and a portion of each movable component 14 is exposed from the shell body 111 for user operation. The cover body 112 and the shell body 111 may have a snap-fit structure respectively, and when the snap-fit structures of the two are snap-fitted with each other, the cover body 112 can form a substantially closed space together with the shell body 111. The insulating shell 11 is mainly used to shield the conductive components 13 to prevent the conductive components 13 from being directly exposed.
[0043] Two conductive members 13 are arranged at intervals on both sides of the insulating body 12 (such as Figure 5 As shown, the two conductive members 13 are arranged vertically in the Z-axis direction, and a gap S is formed between the two conductive members 13. The fuse 200 is arranged between the two conductive members 13, and the two ends of the fuse 200 are electrically connected to the two conductive members 13 respectively. Figure 5 and Figure 6 As shown, in actual application, each conductive member 13 includes two elastic clamping structures 135 for clamping the fuse 200. When the fuse 200 is disposed on two conductive members 13 facing each other and the fuse carrying mechanism 1 is in a clamping state, the two elastic clamping structures 135 will be elastically deformed by the push of the fuse 200, and the fuse 200 will be clamped by the two elastically deformed elastic clamping structures 135 in the Z-axis direction in the figure, thereby making the two conductive members 13 electrically connected to the fuse 200, and further limiting the range of movement of the fuse 200 in the receiving slot 134.
[0044] Each conductive member 13 further includes a conductive body 131 and two receiving grooves 134. Each receiving groove 134 includes at least one elastic member. In this embodiment, the receiving groove 134 is defined by an elastic arm 132 and an auxiliary elastic arm 133. The inner edge of the receiving groove 134 is roughly consistent with the outer edge of the conductive parts at both ends of the fuse 200. The two receiving grooves 134 are arranged at intervals. Each receiving groove 134 is used to accommodate at least a part of the fuse 200. Each receiving groove 134 of each conductive member 13 is arranged to face one of the receiving grooves 134 of another conductive member 13, and the two receiving grooves 134 arranged to face each other can jointly carry a single fuse 200. The two receiving grooves 134 and the two elastic clamping structures 135 can be respectively regarded as clamping members for clamping the fuse 200 and electrically connecting thereto. In actual application, only one of them can be used. If both are used at the same time, the contact area between the conductive component 13 and the fuse 200 can be increased to increase the conducted current.
[0045] A root portion 1321 of each elastic arm 132 is connected to the conductive body 131, and the other end of each elastic arm 132 is a free end 1322. A root portion 1331 of each auxiliary elastic arm 133 is connected to the conductive body 131, and the other end of each auxiliary elastic arm 133 is a free end 1332. Each elastic arm 132 and each auxiliary elastic arm 133 may be, for example, an upright sheet-like structure that is roughly arc-shaped.
[0046] like Figure 7 As shown, in actual application, the fuse 200 can be a tubular fuse. The receiving groove 134 has an opening P, which is formed by the elastic arm 132 and the auxiliary elastic arm 133. A minimum opening distance L1 of the opening P can be slightly smaller than the diameter 200D of the fuse 200. Through the above design, when the fuse 200 passes through the opening P, the free end 1322 of the elastic arm 132 will be pushed outward by the fuse 200 and elastically deformed. Then, the elastic restoring force generated by the elastic deformation of the elastic arm 132 will effectively clamp the fuse 200 entering the receiving groove 134 by the auxiliary elastic arm 133 and the elastically deformed elastic arm 132.
[0047] like Figure 5 and Figure 6 As shown, two movable members 14 are movably connected to the fuse carrier mechanism 1. In practical applications, each movable member 14 can be pivotally connected to two conductive members 13 (or other structures), and the movable member 14 can be operated to rotate relative to the conductive member 13, but the movable member 14 relative to the conductive member 13 is not limited to rotation. In different embodiments, the movable member 14 can be operated to move linearly or translationally relative to the conductive member 13.
[0048] It should be noted that, in the figure of this embodiment, although the movable component 14 is movably connected to the conductive component 13 as an example, the movable component 14 is not limited to being connected to the conductive component 13. As long as the movable component 14 can be operated to move relative to the conductive component 13, it falls within the scope of application of the movable component 14.
[0049] Each movable member 14 includes, for example, a connecting portion 141, a pushing portion 142, and an operating portion 144. The operating portion 144 is an insulator. Preferably, all movable members 14 are insulators. The connecting portion 141 is used to connect with other components (or can be called a quick-release base), for example, two conductive members 13, so that they can be relatively movably connected. Each movable member 14 is pivotally connected to the two conductive members 13, so the connecting portion 141 can include a rotating shaft structure. The connecting portion 141, the pushing portion 142, and the operating portion 144 are connected to each other.
[0050] Each movable member 14 may further include a push structure 143, the push structure 143 is, for example, a structure formed by extending the operating portion 144 to one side, and the movable member 14 as a whole may be roughly presented as an F-shaped structure. Figure 6 and Figure 7 As shown in the left half of the figure, when the fuse 200 is located in the receiving groove 134 and the movable member 14 is located at a limited position so that the fuse carrying mechanism 1 is in a clamping state, a part of the receiving groove 134 (elastic arm 132) is directly or indirectly (i.e., through other components) pushed by the pushing structure 143, and elastically deformed inward (toward the receiving groove 134), thereby forcing the elastic arm 132 to clamp the fuse 200 more tightly, so that the fuse 200 is less likely to be separated from the receiving groove 134. Among them, the other components can be, for example, a structure formed by extending the insulating body 12, preferably, the structure can be a structure similar to the elastic arm. In other embodiments, the pushing structure 143 can also be designed to push against the elastic clamping structure 135. When the pushing structure 143 pushes against the elastic clamping structure 135 to put the fuse carrying mechanism 1 in a clamping state, the elastic clamping structure 135 can clamp the fuse 200 tightly, so that the fuse 200 is less likely to be separated. When the pushing structure 143 is operated and no longer clamps the elastic clamping structure 135 , the fuse 200 can be separated from the fuse supporting mechanism 1 .
[0051] like Figure 6 and Figure 8 As shown, in a preferred embodiment, the insulating body 12 may further include a first engaging structure 121, and the movable member 14 may include a second engaging structure 145. When the movable member 14 is located at the restricted position (eg Figure 8 As shown in the left half of the figure, the second engaging structure 145 engages with the first engaging structure 121, thereby keeping the movable member 14 in the restricted position, and the movable member 14 will not move relative to the insulating body 12 or the conductive member 13 at will, so that the fuse carrier 1 is kept in a clamped state. The first engaging structure 121 and the second engaging structure 145 are, for example, a convex strip and a concave groove, respectively.
[0052] The insulating body 12 may also include a limiting portion 122 for limiting at least a portion of the receiving slot 134 (for receiving the fuse 200). Figure 6 and Figure 8In this embodiment, the limiting portion 122 is disposed adjacent to the free end 1332 of the auxiliary elastic arm 133. When the fuse 200 is located in the receiving groove 134 and the movable member 14 is located at the limiting position, one side of the fuse 200 is limited by the elastic arm 132 and the abutting structure 143, while the other side of the fuse 200 is limited by the auxiliary elastic arm 133 and the limiting portion 122. Thus, the installation and disassembly of the fuse 200 can be carried out along the default path and can be better limited in the receiving groove 134. In the embodiment, the limiting portion 122 can also be disposed adjacent to the free end 1322 of the elastic arm 132.
[0053] Please also read Figure 8 and Fig. 9 , Figure 8 is a top view schematic diagram of the fuse carrying mechanism of the present invention, Fig. 9 for Figure 8 The push structure 143 has a protrusion 1432 on the inner side of one end adjacent to the opening P. When the push structure 143 is located at the restricted position, the protrusion 1432 contacts the elastic arm 132, so that the push structure 143 can better push the elastic arm 132.
[0054] Please also read Figure 5 , Figure 6 and Fig.10 , Fig.10 FIG. 1 is a top view of the fuse support mechanism and the fuse of the present invention. Figure 5 and Figure 6 As shown, the push-out portion 142 of each movable member 14 is located between the receiving grooves 134 of the two conductive members 13 (i.e., between the elastic arm 132 and the auxiliary elastic arm 133). Figure 5 The Z-axis direction is set at intervals.
[0055] Next, the operation of the movable member 14 as a quick release mechanism will be described. Figure 5 and Fig.10As shown, the operating portion 144 of the movable member 14 is exposed from the fuse carrying mechanism 1. When the two ends of the fuse 200 are respectively located in the two receiving grooves 134 and the movable member 14 is located in the restricted position, if the relevant personnel want to make the fuse 200 withdraw from the receiving groove 134, the relevant personnel can pull the operating portion 144 of the movable member 14 to make the movable member 14 move (move or rotate) relative to the quick release base, so that the push-out portion 142 of the movable member 14 will pass through the space between the two receiving grooves 134 and push the fuse 200 located in the receiving groove 134, and the fuse 200 will be pushed out of the receiving groove 134. The push-out portion 142 has an arc-shaped area or groove to facilitate pushing against the fuse. In the long axis direction of the fuse 200, the area where the fuse 200 is pushed by the push-out portion 142 includes the center of gravity or center of the fuse 200. In other words, the design of the two conductive components 13 and the movable component 14 of the fuse carrier 1 allows the relevant personnel to quickly and easily remove the fuse 200 from the receiving slot 134 without any tools. In some applications, the movable component 14 does not need the operating portion 144, and the connecting portion 141 is used as the operating portion. For example, the connecting portion 141 extends and is exposed outside the quick release base, and the user can push the exposed portion of the connecting portion 141 to make the movable component 14 move relative to the quick release base.
[0056] It should be particularly emphasized that in the above description, the movable member 14 of the fuse carrier mechanism 1 has two functions at the same time. First, when the pushing structure 143 of the movable member 14 is in the restricted position, it can push the elastic arm 132 and / or the elastic clamping structure 135, so that the elastic arm 132 and / or the elastic clamping structure 135 can better clamp the fuse 200; second, the movable member 14 can be operated to push the fuse 200 disposed in the receiving groove 134 out of the receiving groove or release the fuse 200. However, the fuse carrier mechanism 1 of the present invention is not limited to having the above two functions at the same time. In different embodiments, the fuse carrier mechanism 1 can also only have the function of pushing the fuse 200 out of the receiving groove 134.
[0057] Please also read Figures 11 to 13 , Fig.11 and Fig.12 is a schematic diagram of assembly and disassembly of another embodiment of the fuse carrying mechanism of the present invention, Fig.13 for Fig.11Schematic diagram of the section along the section line XIII-XIII. The biggest difference between this embodiment and the previous embodiment is that the insulating body 12 also includes four auxiliary elastic structures 123, and the limiting portion 122 includes four auxiliary limiting structures 124. Each auxiliary elastic structure 123 can be an arc-shaped elastic sheet, and the four auxiliary limiting structures 124 are located at both ends of the insulating body 12, and two adjacent auxiliary limiting structures 124 can be arranged with an upper and lower interval. The four auxiliary limiting structures 124 are located at a position approximately in the center of the insulating body 12, and two adjacent auxiliary limiting structures 124 can be arranged with an upper and lower interval. Each auxiliary elastic structure 123 can be arranged facing one of the auxiliary limiting structures 124.
[0058] like Fig.11 and Fig.13 As shown in the right half of the figure, when the two conductive components 13, the insulating body 12 and the two movable components 14 are assembled with each other, each auxiliary elastic structure 123 is located on the outside of each elastic arm 132 of the conductive component 13 (that is, the elastic arm 132 is opposite to the side facing the auxiliary elastic arm 133), and each auxiliary limiting structure 124 is roughly located on the outside of the auxiliary elastic arm 133 (that is, the auxiliary elastic arm 133 is opposite to the side facing the elastic arm 132).
[0059] like Fig.13 As shown in the left half of the figure, when the fuse 200 is inserted and the movable member 14 is located at the restricted position, the auxiliary elastic structure 123 is located between the pushing structure 143 and the elastic arm 132, and the pushing structure 143 pushes the auxiliary elastic structure 123 and elastically deforms in the direction of the elastic arm 132 to indirectly push the elastic arm 132, so that the fuse 200 is better held.
[0060] In a preferred application, the outer side of the auxiliary elastic structure 123 may also have a first auxiliary engaging structure 1231, and the inner side of the push structure 143 may have a second auxiliary engaging structure 1433. Fig.13 As shown in the left half of the figure, when the movable component 14 is located in the restricted position, the first auxiliary engaging structure 1231 is engaged with the second auxiliary engaging structure 1433. In this way, the movable component 14 located in the restricted position will not be easily affected by external force and will not shake or leave the restricted position.
[0061] In summary, the connector assembly 100 of the present invention, through the design of the fuse carrying mechanism 1 and the like, allows relevant personnel to quickly and easily remove the fuse 200 from the connector assembly 100 without using additional tools. Figure 1 and Figure 2As shown, the relevant personnel only need to open the cover 112, and then rotate the movable member 14 in the direction of the cover 112, so that the fuse 200 can be removed from the receiving groove 134. On the contrary, when the relevant personnel want to place the fuse 200 into the connector assembly 100, when the cover 112 is opened, the relevant personnel only need to slightly pull the movable member 14 so that the pushing structure 143 of the movable member 14 does not push against the elastic arm 132 and / or the elastic clamping structure 135, and then directly push the fuse 200 into the receiving groove 134 of the fuse carrying mechanism 1. In the process of the fuse 200 being pushed into the receiving groove 134, the fuse 200 will drive the movable member 14 to rotate. Finally, the relevant personnel only need to confirm that the second engaging structure 145 of the movable member 14 is engaged with the first engaging structure 121 of the insulating body 12, and the installation of the fuse 200 can be completed.
[0062] The above description is only a preferred embodiment of the present invention, and does not limit the patent scope of the present invention. Therefore, all equivalent technical changes made using the contents of the present invention description and drawings are included in the protection scope of the present invention.
Claims
1. A fuse carrying mechanism, characterized in that: The fuse carrying mechanism comprises: an insulating body; A quick-release base, disposed on the insulating body; and a movable member movably connected to the quick-release base; Wherein, when a fuse is installed on the quick-release base, a part of the movable component is located on one side of the fuse; when the movable component moves relative to the quick-release base, it can push the fuse to move.
2. The fuse carrier mechanism according to claim 1, characterized in that: The quick-release base further comprises at least two conductive components which are fixed in the insulating body at intervals, each of the conductive components comprises a receiving groove, and the two receiving grooves are used to receive the fuses.
3. The fuse carrier mechanism according to claim 2, characterized in that: The movable member further comprises a pushing structure. When the fuse is located in the two receiving grooves and the movable member is located at a restricted position, the pushing structure pushes a portion of the receiving groove to elastically deform at least a portion of the receiving groove inward.
4. The fuse carrier mechanism according to claim 2, characterized in that: The conductive component further includes an elastic arm and an auxiliary elastic arm. The auxiliary elastic arm and the elastic arm together form the containing groove and form an opening at one side of the containing groove.
5. The fuse carrier mechanism according to claim 2, characterized in that: The movable component is pivotally connected to the two conductive components. The movable component can rotate between the two conductive components to push the fuses located in the two receiving slots out of the two receiving slots.
6. The fuse carrier mechanism according to claim 3, characterized in that: The insulating body includes a first engaging structure, and the movable component includes a second engaging structure; when the movable component is located at the restricted position, the second engaging structure engages with the first engaging structure.
7. The fuse carrier mechanism according to claim 1, characterized in that: The quick-release base further comprises at least two conductive components which are fixed to the insulating body at intervals. Each of the conductive components comprises an elastic clamping structure. The two elastic clamping structures are used to clamp the fuse therein.
8. The fuse carrier mechanism according to claim 7, characterized in that: The movable component is pivotally connected to the two conductive components. The movable component can rotate between the two conductive components to push the clamped fuse away from the two elastic clamping structures.
9. The fuse carrier mechanism according to claim 7, characterized in that: The movable component further comprises a pushing structure. When the fuse is located between the two elastic clamping structures, the pushing structure pushes the two elastic clamping structures to make the two elastic clamping structures clamp the fuse therebetween.
10. A fuse carrying mechanism, characterized in that: The fuse carrying mechanism comprises: a conductive member comprising a receiving groove; and a movable member, a portion of which is movably connected to the conductive member, the movable member comprising a push-out portion; Wherein, when a fuse is located in the receiving groove and the movable component leaves a restricted position, the pushing portion pushes against the fuse to make the fuse escape from the receiving groove.
11. The fuse carrier mechanism according to claim 10, characterized in that: The conductive component further includes an elastic arm and an auxiliary elastic arm. The auxiliary elastic arm and the elastic arm together form the containing groove and form an opening at one side of the containing groove.
12. The fuse carrier mechanism according to claim 10, characterized in that: The fuse carrying mechanism further includes an insulating body, the conductive component is fixed to the insulating body, the insulating body includes a first engaging structure, and the movable component includes a second engaging structure; when the movable component is located at the restricted position, the second engaging structure engages with the first engaging structure.
13. The fuse carrier mechanism according to claim 10, characterized in that: The movable component further comprises a pushing structure. When the fuse is located in the receiving groove and the movable component is located at the limiting position, the pushing structure pushes against the receiving groove to elastically deform at least a portion of the receiving groove inward.
14. The fuse carrier mechanism according to claim 13, characterized in that: The inner side of the pushing structure has a protrusion. When the fuse is located in the receiving groove and the movable member is located at the limiting position, the protrusion directly or indirectly pushes a part of the receiving groove to elastically deform it inward.
15. A connector assembly, characterized in that: The connector assembly comprises: Multiple connection lines A connector comprising: an insulating base; and Two connection terminal groups are disposed in the insulating seat in an interval and electrically isolated manner, and one of the two connection terminal groups is electrically connected to at least one of the plurality of connection wires; and A fuse carrying mechanism, comprising: Two conductive components, one of which is connected to the other connecting terminal group, and the other is connected to the other connecting wires, and each of which comprises a receiving groove or an elastic clamping structure; and A movable member including a push-out portion; When two ends of a fuse are respectively located in the two receiving grooves or clamped by the two elastic clamping structures, and the movable member leaves a restricted position, the pushing portion pushes against the fuse to make the fuse escape from the two receiving grooves or the two elastic clamping structures.
16. The connector assembly according to claim 15, characterized in that The movable component further includes an operating portion, which is connected to the pushing portion and exposed outside the receiving groove. The operating portion is used to operate the movable component to the restricted position or to leave the restricted position.
17. The connector assembly according to claim 15, characterized in that The movable component further includes a pushing structure. When the two ends of the fuse are respectively located in the two receiving grooves or between the two elastic clamping structures and the movable component is located in the restricted position, the pushing structure pushes against a part of the receiving groove or the two elastic clamping structures to clamp the fuse.
18. The connector assembly according to claim 15, wherein: The insulating seat further comprises at least one slot, and each of the connecting terminal groups is disposed on one side of the slot.
19. The connector assembly according to claim 15, wherein: Each of the conductive components further includes an elastic arm and an auxiliary elastic arm. The auxiliary elastic arm and the elastic arm together form the receiving groove, and an opening is formed on one side of the receiving groove to allow one end of the fuse to enter the receiving groove.