Molding finger mounting structure of integrated molding device and integrated molding device

By using the shaping finger installation structure of the integrated shaping device, and utilizing an external power structure to drive the connecting rod and shaping finger to slide, the shaping problem of the metal wire when rotating 360 degrees is solved, achieving effective shaping and anti-pollution effects.

CN223833306UActive Publication Date: 2026-01-27UNION STRONG (BEIJING) TECH CO LTD
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Patent Information

Application Number
CN202520095587.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2026-01-27
Estimated Expiration
2035-01-15

AI Technical Summary

Technical Problem

Existing wire forming equipment is not applicable when the wire can rotate 360 ​​degrees, causing the forming mechanism to fail.

Method used

An integrated shaping device with a shaping finger mounting structure was designed, including a wire limiting nozzle, shaping fingers, flexible parts, and connecting rods. The connecting rods and shaping fingers slide synchronously through an external power structure to achieve shaping of the wire in all directions. The entire shaping process is completed in an independent shaping cavity, avoiding contamination.

Benefits of technology

It achieves effective shaping of the metal wire in all directions, prevents contamination, and after shaping, the metal wire is protected inside the shell and is not easily deformed by pressure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a shaping finger mounting structure of an integrated shaping device and the integrated shaping device, and the shaping finger mounting structure comprises a shell which is internally provided with a shaping cavity and is provided with a mounting opening in the side wall; the metal wire limiting nozzle is fixed in the shaping cavity; the shaping finger is mounted in the shaping cavity in a sliding manner and is used for extruding and shaping the metal wire; the first end of the flexible part is mounted at the mounting opening; one end of the connecting rod is connected with the shaping finger, the other end of the connecting rod is connected with the second end of the flexible part, the connecting rod is used for being detachably connected with an external power structure, the external power structure can drive the connecting rod and the shaping finger to slide synchronously, the flexible part seals the mounting opening, or the flexible part and the connecting rod seal the mounting opening together. According to the metal wire shaping finger, the metal wire penetrating through the metal wire limiting nozzle can rotate and move relative to the metal wire limiting nozzle, so that the metal wire can be shaped in all directions only by reciprocating movement of the shaping finger, and the whole shaping finger is simple in structure.
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Description

Technical Field

[0001] This utility model relates to the field of interventional consumable equipment, specifically to the installation structure of the shaping finger of an integrated shaping device. Background Technology

[0002] Patent document CN115055604B discloses a metal wire shaping device that can automatically shape metal wires. In the aforementioned patent document, a second rotary motor assembly controls the movement of the shaping top block to deform the metal wire, while a first rotary motor assembly enables the shaping top block to rotate 360 ​​degrees around the axis of the shaping nozzle, thereby achieving deformation of the metal wire at various positions.

[0003] That is, the metal wire shaping mechanism in the aforementioned patent document is designed for situations where the metal wire cannot rotate. It achieves the shaping of the metal wire by rotating the shaping top block 360 degrees. When the metal wire can rotate 360 ​​degrees, the metal wire shaping mechanism in the aforementioned patent document is not applicable. Utility Model Content

[0004] To address the aforementioned problems, this utility model proposes an integrated molding finger mounting structure for the molding device.

[0005] The technical solution adopted by this utility model is as follows:

[0006] An integrated molding tool's molding finger mounting structure includes:

[0007] The housing has an internal molding cavity, and the side wall of the housing has a mounting opening;

[0008] A wire guide nozzle is fixed inside the molding cavity and is used for the passage of a metal wire. The metal wire passing through the wire guide nozzle can rotate and move relative to the wire guide nozzle.

[0009] The shaping finger is slidably installed in the shaping cavity. The shaping finger is used to cooperate with the metal wire at the outlet of the metal wire limiting nozzle to compress and shape the metal wire.

[0010] A flexible component, the first end of which is mounted at the mounting port; and

[0011] A connecting rod is connected at one end to the shaping finger and at the other end to the second end of the flexible component. The connecting rod is used for detachable connection with an external power structure. The external power structure can drive the connecting rod and the shaping finger to slide synchronously. The flexible component covers the installation port, or the flexible component and the connecting rod together cover the installation port.

[0012] In this application, the metal wire passing through the wire limiting nozzle can rotate and move relative to the wire limiting nozzle. Therefore, the shaping finger only needs to move back and forth to shape the metal wire in all directions, and the structure of the entire shaping finger is simple. Both the wire limiting nozzle and the shaping finger are located in the shaping cavity of the housing, and the shaping finger is connected to the flexible component through a connecting rod. During operation, an external power structure drives the connecting rod and the shaping finger to slide synchronously to shape the metal wire. The external power structure does not directly enter the interior of the shaping cavity, and the entire shaping action is completed in an independent shaping cavity, which can effectively prevent the metal wire from being contaminated.

[0013] In practical applications, the external power structure can be connected to the second end of the connecting rod or flexible component through vacuum adsorption, magnetic attraction or clamping, and then the movement of the shaping finger is achieved by driving the connecting rod to move.

[0014] In practical applications, the external power structure may include drive components such as electric actuators.

[0015] In one embodiment of the present invention, a slide rail fixed in the molding cavity is further included, and the molding finger is slidably mounted on the slide rail;

[0016] In one embodiment of this utility model, the flexible component is a tower-shaped telescopic sealing sleeve.

[0017] This flexible component design allows for expansion and contraction, enabling the connecting rod to have a large stroke.

[0018] In one embodiment of the present invention, the end of the connecting rod away from the shaping finger has an annular groove, and the second end of the flexible member has an annular portion that is embedded in the annular groove.

[0019] It facilitates the installation and mating of the connecting rod and the ring-shaped part, and the movement of the connecting rod can drive the second end of the flexible part to move.

[0020] In one embodiment of this utility model, the end of the connecting rod away from the slide can be attracted by a magnet.

[0021] In one embodiment of this utility model, the connecting rod is made of iron, or the end of the connecting rod away from the slide has a material that can be attracted by a magnet.

[0022] In practical applications, the external drive structure includes a magnet, which connects to the connecting rod and then drives the connecting rod to move.

[0023] In one embodiment of the present invention, an elastic element is sleeved on the connecting rod, and the elastic element is used to give the connecting rod a tendency to move outward.

[0024] This configuration allows the shaping finger to have an initial position. When it is used in conjunction with an external power structure, the external power structure only needs to hold the connecting rod to drive the shaping finger to move inside the housing. When the external power structure moves backward, the elastic element can drive the shaping finger to move outside the housing.

[0025] In practical applications, the elastic element can be a spring or a sheet, etc.

[0026] In one embodiment of the present invention, the first end of the flexible member is mounted on the outer side wall of the housing.

[0027] The first end of the flexible component is installed on the outer wall of the housing, which does not encroach on the space inside the housing and facilitates the arrangement of the shaping fingers and the wire limiting nozzle.

[0028] In one embodiment of the present invention, the sliding direction of the shaping finger is perpendicular to the axis of the wire limiting nozzle.

[0029] In one embodiment of this utility model, the axis of the wire limiting nozzle is parallel to the axis of the housing, and the straight line of the movement path of the shaping finger intersects perpendicularly with the axis of the wire limiting nozzle and the axis of the housing.

[0030] "The axis of the wire limiting nozzle is parallel to the axis of the housing" means that the wire limiting nozzle is eccentrically set relative to the axis of the housing. The straight line of the movement path of the shaping finger intersects perpendicularly with both the axis of the wire limiting nozzle and the axis of the housing. This setting makes the spatial position of the wire limiting nozzle and the shaping finger more reasonable and improves the space utilization rate. Compared with the axis of the wire limiting nozzle and the axis of the housing being coincident, the eccentric setting makes the structure more compact.

[0031] This application also discloses an integrated shaping device, including the shaping finger mounting structure of the integrated shaping device described above.

[0032] In one embodiment of this utility model, the integrated shaping device further includes:

[0033] A column, connected to the housing, the column having a piston hole, the axis of the piston hole coinciding with the axis of the wire limiting nozzle;

[0034] A piston assembly is installed on the piston hole of the column. The piston assembly has a wire locking element. In use, the wire passes through the wire limiting nozzle and is fixed with the wire locking element. The piston assembly can rotate and move relative to the column.

[0035] In practical applications, the piston assembly can rotate and move relative to the column under the drive of an external power structure.

[0036] The integrated shaping device of this application completes the shaping of the metal wire inside the housing. The structures driving the piston assembly and the shaping fingers are external power structures and are not part of the integrated shaping device itself. Therefore, after the shaping process is complete, the integrated shaping device can be used as a whole to store and transport the shaped metal wire. When needed, the housing can be opened to retrieve the wire. This unique structural and operational approach ensures that the shaped metal wire is not contaminated and, because it is inside the housing, is protected from pressure deformation.

[0037] The beneficial effects of this utility model are as follows: In this application, the metal wire passing through the metal wire limiting nozzle can rotate and move relative to the metal wire limiting nozzle. Therefore, the shaping finger only needs to move back and forth to shape the metal wire in all directions, and the structure of the entire shaping finger is simple. Both the metal wire limiting nozzle and the shaping finger are located in the shaping cavity of the housing, and the shaping finger is connected to the flexible component through a connecting rod. During operation, an external power structure drives the connecting rod and the shaping finger to slide synchronously to shape the metal wire. The external power structure does not directly enter the interior of the shaping cavity, and the entire shaping action is completed in an independent shaping cavity, which can effectively prevent the metal wire from being contaminated. Attached Figure Description

[0038] Figure 1 This is a schematic diagram of an integrated shaping device;

[0039] Figure 2 This is the front view of the integrated shaping device;

[0040] Figure 3 This is a rear view of the integrated shaping device;

[0041] Figure 4 yes Figure 2 Sectional view of AA;

[0042] Figure 5 This is a schematic diagram of an integrated molding device with a concealed shell structure.

[0043] Figure 6 This is a schematic diagram showing the piston assembly after it has detached from the cylinder and the limiting clamp after it has detached from the piston body.

[0044] Figure 7 This is a schematic diagram of a wire locking element;

[0045] Figure 8 This is a schematic diagram showing the locking cap inserted into the anti-rotation groove;

[0046] Figure 9 This is an exploded view of a wire locking element;

[0047] Figure 10 This is a cross-sectional view of the integrated shaping device in Example 2.

[0048] The labels for the attached figures are as follows:

[0049] 1. Metal wire; 10. Integrated shaping device; 11. Housing; 111. Shaping cavity; 112. Loading / unloading port; 113. Closure component; 114. Mounting port; 115. First positioning structure; 116. Annular limiting groove; 12. Metal wire limiting nozzle; 13. Shaping finger; 14. Column; 141. Piston hole; 142. Anti-rotation groove; 15. Piston assembly; 151. Metal wire locking element; 1511. Mounting component; 1512. Elastic clamping component; 15121. Elastic gripper; 15 13. Locking cover; 15131. Raised ridge; 152. Piston body; 1521. First end of piston body; 1522. Second end of piston body; 1523. Torsional pushing part; 15231. Positioning groove; 15232. Clamping positioning part; 153. Limiting clip; 1531. Positioning protrusion; 16. Flexible part; 161. First end of flexible part; 162. Second end of flexible part; 163. Annular part; 17. Slide rail; 18. Connecting rod; 181. Annular groove. Detailed Implementation

[0050] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0051] In the description of this application, it should be noted that the terms "inner" and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use. They are used only for the convenience of describing this application and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0052] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "setup" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0053] The present invention will now be described in detail with reference to the accompanying drawings.

[0054] Example 1

[0055] like Figures 1-9 As shown, an integrated shaping device 10 includes:

[0056] The housing 11 has a molding cavity 111 inside;

[0057] The wire limiting nozzle 12 is fixed inside the molding cavity 111 and is used for the wire 1 to pass through;

[0058] The shaping finger 13 is slidably installed in the shaping cavity 111. The shaping finger 13 is used to cooperate with the metal wire 1 at the outlet of the metal wire limiting nozzle 12 to compress and shape the metal wire 1.

[0059] The column 14 is connected to the housing 11. The column 14 has a piston hole 141, and the axis of the piston hole 141 coincides with the axis of the wire limiting nozzle 12.

[0060] Piston assembly 15 is mounted on piston hole 141 of column 14. Piston assembly 15 has wire locking element 151. Piston assembly 15 can rotate and move relative to column 14. In use, wire 1 is fixed to wire locking element 151 and passes through wire limiting nozzle 12.

[0061] In practical applications, the piston assembly 15 can rotate and move relative to the column 14 under the drive of the external power structure, and the shaping finger 13 can perform reciprocating linear motion under the drive of the external power structure.

[0062] In this application, driven by an external power structure, the piston assembly 15 can rotate and move the metal wire 1 passing through the metal wire limiting nozzle 12. Driven by the external power structure, the shaping finger 13 can reciprocate to shape the metal wire 1. Both the metal wire limiting nozzle 12 and the shaping finger 13 are located within the shaping cavity 111 of the housing 11. The entire shaping process is completed within the shaping cavity 111, and the external power structure does not directly enter the shaping cavity 111, effectively preventing contamination of the metal wire 1. Furthermore, after shaping, the integrated shaping device 10 can be completely removed for storing and transporting the metal wire 1. When needed, the housing 11 can be opened to retrieve the metal wire 1. This unique structural and operational approach ensures that the shaped metal wire 1 is not contaminated and, because it is within the housing 11, is protected by the housing 11 and will not be deformed by pressure.

[0063] In practical applications, the connection between the column 14 and the shell 11 refers to either integral molding or fixed connection. The specific connection method can be fixed by fasteners, welding, or detachable fixing by threads.

[0064] In practical applications, the existing wire locking element 151 can be used.

[0065] In this application, the metal wire 1 can pass through the metal wire limiting nozzle 12 and then be fixed to the metal wire locking element 151, or the metal wire 1 can be fixed to the metal wire locking element 151 first and then pass through the metal wire limiting nozzle 12.

[0066] like Figure 4 As shown, in this embodiment, the housing 11 has a pick-up and put-out opening 112 and a closure 113 that covers the pick-up and put-out opening 112.

[0067] In practical applications, the closure 113 can take many forms. The closure 113 can be screwed onto the opening 112 of the housing 11, or it can be a sticker that is attached to the housing 11 to cover the opening 112.

[0068] like Figure 1 and 4 As shown, in this embodiment, the side wall of the housing 11 has a mounting opening 114; the integrated molding device 10 further includes:

[0069] Flexible component 16, the first end 161 of the flexible component is installed at the mounting port 114;

[0070] The slide rail 17 is fixed inside the molding cavity 111, and the molding finger 13 is slidably mounted on the slide rail 17;

[0071] The connecting rod 18 is connected at one end to the shaping finger 13 and at the other end to the second end 162 of the flexible member. The flexible member 16 covers the mounting port 114, or the flexible member 16 and the connecting rod 18 together cover the mounting port 114.

[0072] The term "slide rail" in this application is a general term and can take many forms. For example, a slide rail can be provided with sliding holes, and a shaped finger can slide through the slider.

[0073] In this embodiment, the flexible element is a tower-shaped telescopic sealing sleeve. This flexible element is designed to extend and retract, allowing the connecting rod 18 to have a large stroke.

[0074] like Figure 4 As shown, the end of the connecting rod 18 away from the shaping finger 13 has an annular groove 181, and the second end 162 of the flexible member has an annular portion 163 that is embedded in the annular groove 181. This facilitates the installation and mating of the connecting rod 18 and the annular portion 163, and the movement of the connecting rod 18 can drive the second end 162 of the flexible member to move.

[0075] In this embodiment, the end of the connecting rod 18 away from the slide can be attracted by a magnet.

[0076] The phrase "the end of the connecting rod 18 away from the slide can be attracted by a magnet" in this application refers to the fact that the connecting rod 18 is made of a material such as iron that can be attracted by a magnet, or it refers to a material such as an iron block or a magnet that can be attracted by an external magnet.

[0077] like Figure 1 and 4 As shown, in this embodiment, the first end 161 of the flexible member is mounted on the outer side wall of the housing 11.

[0078] The first end 161 of the flexible component is installed on the outer side wall of the housing 11, which will not encroach on the space inside the housing 11, and facilitates the arrangement of the shaping finger 13 and the wire limiting nozzle 12.

[0079] In this embodiment, the sliding direction of the shaping finger 13 is perpendicular to the axis of the wire limiting nozzle 12.

[0080] In this embodiment, the axis of the wire limiting nozzle 12 is parallel to the axis of the housing 11, and the straight line of the movement path of the shaping finger 13 intersects perpendicularly with the axis of the wire limiting nozzle 12 and the axis of the housing 11.

[0081] "The axis of the wire limiting nozzle 12 is parallel to the axis of the housing 11" means that the wire limiting nozzle 12 is eccentrically set relative to the axis of the housing 11. The straight line of the movement path of the shaping finger 13 intersects perpendicularly with both the axis of the wire limiting nozzle 12 and the axis of the housing 11. This setting makes the spatial position of the wire limiting nozzle 12 and the shaping finger 13 reasonable and improves the space utilization. Compared with the axis of the wire limiting nozzle 12 and the axis of the housing 11 being coincident, the eccentric setting makes the structure more compact.

[0082] like Figure 4 , 7 As shown in Figure 9, in this embodiment, the wire locking element 151 includes:

[0083] Mounting part 1511 has external threads on its outer wall;

[0084] The elastic clamping member 1512 is mounted on the mounting member 1511. The elastic clamping member 1512 has multiple elastic claws 15121. In use, the metal wire 1 passes through the middle of the multiple elastic claws 15121.

[0085] The locking cover 1513 has an internal thread that engages with the external screw of the mounting piece 1511. The inner sidewall of the locking cover 1513 is used to engage with the elastic gripper 15121. By rotating the locking cover 1513, the elastic gripper 15121 can clamp or release the metal wire 1.

[0086] In practical application, preferably, the outer wall of the end of the elastic gripper 15121 is a conical surface, and the inner wall of the locking cover 1513 has a conical surface. When the locking cover 1513 is locked, the conical surface of the locking cover 1513 presses against the conical surface of the elastic gripper 15121, causing the conical surfaces of the elastic clamping members 1512 to come together, thereby clamping and fixing the metal wire 1. When the locking cover 1513 is loosened, the conical surface of the locking cover 1513 no longer presses against the conical surface of the elastic gripper 15121, the elastic gripper 15121 elastically returns to its original position, and no longer clamps the metal wire 1.

[0087] like Figure 9 As shown, in this embodiment, the elastic clamping member 1512 can be a single piece, and multiple elastic grippers 15121 are obtained by opening a notch at the end.

[0088] like Figure 1 , 4 As shown in Figures 6 and 8, in this embodiment, the piston assembly 15 further includes:

[0089] The piston body 152 has a mounting piece 1511 fixedly mounted on the first end 1521 of the piston body, and the second end 1522 of the piston body has a torsion pushing part 1523.

[0090] like Figure 1 , 4 As shown in Figures 6 and 8, in this embodiment, the end of the column 14 near the wire limiting nozzle 12 has an anti-rotation groove 142; the anti-rotation groove 142 is used for the insertion of the locking cover 1513, and when the locking cover 1513 is inserted into the anti-rotation groove 142, the locking cover 1513 and the column 14 are fixed relative to each other in the circumferential direction. In this embodiment, the piston assembly 15 further includes:

[0091] The limiting clip 153 is used to lock onto the piston body 152 and limit the maximum distance that the piston body 152 can enter the piston hole 141. When the two ends of the torsion pushing part 1523 abut against the column 14 and the torsion pushing part 1523 respectively, the locking cover 1513 is not inserted into the anti-rotation groove 142. When the torsion pushing part 1523 is removed and the piston body 152 is pushed into the column 14, the locking cover 1513 is inserted into the anti-rotation groove 142.

[0092] like Figure 4 and 8 As shown, in this embodiment, the torsion pushing part 1523 is used to cooperate with an external power structure to move and rotate under the drive of the external power structure, thereby driving the metal wire 1 to move and rotate.

[0093] like Figure 3 and 6As shown, in this embodiment, the torsion pushing part 1523 has a positioning groove 15231 at one end near the piston body 152, and the column 14 has a positioning groove 15231 at one end away from the housing 11. The limiting clamp 153 has positioning protrusions 1531 that respectively cooperate with the two positioning grooves 15231. This arrangement allows for precise positioning of the circumferential position of the piston body 152 by means of the limiting clamp 153.

[0094] like Figure 1 and 6 As shown, in this embodiment, the torsion pushing part 1523 has a clamping and positioning part 15232, which is a groove or a protrusion. The external power structure can reliably dock with the torsion pushing part 1523 through the clamping and positioning part 15232, thereby driving the piston body 152 to rotate and move.

[0095] like Figure 8 As shown, in this embodiment, the anti-rotation groove 142 has a square cross-section, and the outer wall of the locking cover 1513 has four protruding ridges 15131. After the locking cover 1513 is inserted into the anti-rotation groove 142, the four protruding ridges 15131 are located at the four corners of the anti-rotation groove.

[0096] In other embodiments, the anti-rotation groove 142 is circular, and the inner sidewall of the anti-rotation groove 142 has a recess, and the outer sidewall of the locking cover 1513 has a protruding ridge 15131 that mates with the recess.

[0097] like Figure 6 As shown, in this embodiment, the bottom wall of the housing 11 has a first positioning structure 115, which is a positioning groove or a positioning post. The first positioning structure 115 facilitates the positioning and cooperation between the integrated molding device 10 and external equipment, ensuring positioning accuracy.

[0098] like Figure 1 and 6 As shown, in this embodiment, the outer wall of the housing 11 has an annular limiting groove 116. The annular limiting groove 116 facilitates the cooperation between the integrated molding tool 10 and external equipment, preventing the housing 11 from moving up and down during processing.

[0099] In this embodiment, the housing 11, the wire limiting nozzle 12, the shaping finger 13, the flexible part 16, the connecting rod 18, the slide rail 17 and other parts constitute the shaping finger mounting structure of the integrated shaping device 10.

[0100] One working mode of the integrated shaping device 10 in this embodiment:

[0101] Insert one end of the metal wire 1 into the metal wire locking element 151, and then lock the locking cover 1513 to fix the metal wire 1. In actual operation, you can choose to open the closing part 113 and insert the metal wire 1 from top to bottom, or you can insert the column 14 from bottom to top after the metal wire 1 is complete.

[0102] The integrated shaping device 10 is installed on the processing equipment. The processing equipment has a first external power structure and a second external power structure. The first external power structure can clamp the torsion pushing part 1523 to drive the piston assembly 15 to move up and down and rotate. The second external power structure can magnetically hold the connecting rod 18 to drive the shaping finger 13 and the connecting rod 18 to move back and forth synchronously.

[0103] Under the action of the first external power structure and the second external power structure, the metal wire 1 is shaped;

[0104] After the shaping is completed, the integrated shaping device 10 is removed from the processing equipment for later use. At this time, the shaped metal wire 1 can be stored and fixed on the integrated shaping device 10.

[0105] When it is necessary to remove the metal wire 1, remove the limit clip 153, push the piston body 152 into the cylinder 14, insert the locking cover 1513 into the anti-rotation groove 142, rotate the locking cover 1513 to make the elastic claw 15121 release the metal wire 1, open the closure 113, and take out the metal wire 1.

[0106] Example 2

[0107] like Figure 10 As shown, the difference between this embodiment and Embodiment 1 is that the end of the connecting rod 18 away from the slide block can be prevented from being attracted by the magnet. In this embodiment, the connecting rod 18 is fitted with an elastic element 50, which is used to give the connecting rod 18 a tendency to move outward.

[0108] This configuration allows the shaping finger 13 to have an initial position. When working with an external power structure, the external power structure only needs to push against the connecting rod 18 to drive the shaping finger 13 to move inward toward the housing 11. When the external power structure moves backward, the elastic element 50 can drive the shaping finger 13 to move outward toward the housing 11. In practical applications, the elastic element 50 can be a spring or a sheet, etc.

[0109] The above description is only a preferred embodiment of the present utility model and does not limit the scope of patent protection of the present utility model. Any equivalent structural transformations made based on the content of the present utility model specification and drawings, whether directly or indirectly applied to other related technical fields, are similarly included within the scope of protection of the present utility model.

Claims

1. A shaping finger mounting structure for an integrated shaping device, characterized in that, include: The housing has an internal molding cavity, and the side wall of the housing has a mounting opening; A wire guide nozzle is fixed inside the molding cavity and is used for the passage of a metal wire. The metal wire passing through the wire guide nozzle can rotate and move relative to the wire guide nozzle. The shaping finger is slidably installed in the shaping cavity. The shaping finger is used to cooperate with the metal wire at the outlet of the metal wire limiting nozzle to compress and shape the metal wire. A flexible component, the first end of which is installed at the mounting port; as well as A connecting rod is connected at one end to the shaping finger and at the other end to the second end of the flexible component. The connecting rod is used for detachable connection with an external power structure. The external power structure can drive the connecting rod and the shaping finger to slide synchronously. The flexible component covers the installation port, or the flexible component and the connecting rod together cover the installation port.

2. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, It also includes a slide rail fixed inside the molding cavity, and the molding finger is slidably mounted on the slide rail.

3. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The flexible component is a tower-shaped telescopic sealing sleeve.

4. The shaping finger mounting structure of the integrated shaping device as described in claim 3, characterized in that, The connecting rod has an annular groove at one end away from the shaping finger, and the flexible member has an annular portion that is embedded in the annular groove at its second end.

5. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The end of the connecting rod away from the slide can be attracted by a magnet; the connecting rod is made of iron, or the end of the connecting rod away from the slide has a material that can be attracted by a magnet.

6. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The connecting rod is fitted with an elastic element, which is used to give the connecting rod a tendency to move outward.

7. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The first end of the flexible component is mounted on the outer side wall of the housing.

8. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The sliding direction of the shaping finger is perpendicular to the axis of the wire limiting nozzle.

9. The shaping finger mounting structure of the integrated shaping device as described in claim 1, characterized in that, The axis of the wire limiting nozzle is parallel to the axis of the housing, and the straight line along the movement path of the shaping finger intersects perpendicularly with both the axis of the wire limiting nozzle and the axis of the housing.

10. An integrated shaping device, characterized in that, The molding finger mounting structure includes the integrated molding device as described in any one of claims 1 to 9.

Citation Information

Patent Citations

  • Metal wire shaping equipment and metal wire shaping methods

    CN115055604B