An inductor dispensing and encapsulating apparatus

By introducing linkage and drive components into the inductor dispensing and encapsulation equipment, the synchronous adjustment of four sets of clamping molds is achieved, solving the problem of poor adaptability of inductor dispensing equipment to different specifications and sizes, and improving the equipment's versatility and production efficiency.

CN121820129BActive Publication Date: 2026-06-02SHANDONG YINGDAKOTE ELECTRONIC TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANDONG YINGDAKOTE ELECTRONIC TECHNOLOGY CO LTD
Filing Date
2026-03-16
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing inductor dispensing equipment has poor adaptability, is cumbersome to adjust, has low versatility, and has a long production preparation time when dealing with inductor packages of different specifications and sizes.

Method used

The inductor dispensing and encapsulation equipment consists of a table, a rotating platform, a CCD detection component, a dispensing component, a cam divider, and a push mold component. Through linkage and drive components, it realizes the synchronous opening and closing adjustment of four sets of clamping molds to adapt to the clamping needs of inductors of different sizes and specifications.

Benefits of technology

It significantly improves the versatility of the equipment, reduces production preparation time, and enables efficient and precise dispensing and encapsulation operations.

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Abstract

This invention relates to the field of inductor packaging equipment technology, specifically to an inductor dispensing and packaging device, comprising a platform and a cam divider. A rotating platform is fixed to the output end of the cam divider, and multiple sets of carrying fixtures are fixed on the rotating platform. Each carrying fixture includes a base, on which two sets of sliders are mounted via slide rails. Each set of sliders has a stand mounted on it. A carrying seat is fixed in the middle of the base, and the two sets of stands are symmetrically distributed on both sides of the carrying seat. Slide blocks are slidably connected to the top ends of the carrying seat, and mounting seats are fixed to the top of each slide block and each stand. A clamping mold is slidably connected to one end of each mounting seat. A push-mold assembly achieves synchronous movement of the four clamping molds through a contact assembly. This invention, through the four sets of clamping molds arranged in a cross shape, combined with a linkage assembly and a drive assembly, can achieve synchronous opening and closing adjustment of the clamping molds, adapting to the clamping requirements of inductors of different sizes and specifications, eliminating the need for frequent fixture changes, and significantly improving the versatility of the equipment.
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Description

Technical Field

[0001] This invention relates to the field of inductor packaging equipment technology, specifically to an inductor dispensing and packaging equipment. Background Technology

[0002] Inductors, as a fundamental passive electronic component, are widely used in various electronic devices. During their manufacturing process, components such as magnetic cores and coils often require bonding, insulation, or overall encapsulation, necessitating the use of specialized dispensing and encapsulation equipment.

[0003] During the dispensing process, if the inductor is not securely clamped, it is prone to displacement or shaking, leading to problems such as inaccurate dispensing position, poor glue shape, or even glue contamination. Chinese utility model patent CN216827014U discloses a fixture for dispensing inductor assembly, comprising a fixture body, a first spring, a second spring, a first clamping plate, a second clamping plate, a first connecting post, a second connecting post, a first eccentric rotating shaft, a second eccentric rotating shaft, and a top cover. The fixture body is a semi-closed cavity structure with an open top. The top cover detachably closes the top opening of the fixture body. The top cover has multiple positioning holes and multiple first dispensing holes. The fixture body has multiple positioning posts corresponding to the positions of the positioning holes. The bottom of the fixture body has multiple second dispensing holes communicating with the internal cavity of the fixture body.

[0004] While the above solution addresses the issue of inaccurate dispensing position in existing inductor dispensing operations, the fixture exhibits drawbacks such as poor adaptability, cumbersome adjustments, and low versatility when handling inductor packaging tasks of different specifications and sizes. Furthermore, manual adjustment is required for each dispensing operation, resulting in long production preparation time. Summary of the Invention

[0005] To address the problems existing in the prior art, this invention proposes an inductor dispensing and encapsulation device that improves the adaptability to inductors of different specifications, thereby achieving efficient and precise dispensing and encapsulation operations.

[0006] To achieve the above objectives, the present invention provides the following technical solution: an inductor dispensing and encapsulation device, comprising a platform and a rotating platform. A cam divider and a CCD detection component and a dispensing component arranged around the rotating platform are fixedly mounted on the platform. The rotating platform is fixedly connected to the output end of the cam divider. Multiple sets of circumferentially distributed jigs are fixed on the rotating platform. Multiple sets of push-mold components corresponding to the jigs are provided on the platform. The jigs include a base and a stand. A carrier is fixed on the base. Two sets of stands are slidably mounted on the base and distributed on both sides of the carrier. The two sets of stands move synchronously in opposite directions through a linkage component. Slides are slidably mounted on both sides of the top of the carrier. The movement direction of the slides is perpendicular to the movement direction of the stands. A mounting seat is fixed at the top of each slide and stand. A clamping mold is slidably mounted at one end of each mounting seat. The four sets of clamping molds are arranged in a cross shape around the center of the carrier. The push-mold component drives the four sets of clamping molds to move synchronously toward or away from the center of the carrier through a contact component.

[0007] Preferably, one side of one of the stands is fixed with a movable plate, and the side of the load base away from the movable plate is fixed with a fixed plate, and a tension spring is hooked between the fixed plate and the movable plate.

[0008] Preferably, the abutment assembly includes a first abutment plate, a second abutment plate, and a drive connecting plate. The first abutment plate is fixed to one side of one of the sets of stands. The second abutment plate is close to the first abutment plate and slidably mounted on one end of the carrier. The drive connecting plate is slidably mounted on the other end of the carrier and fixedly connected to the first abutment plate. The contact portions of the first abutment plate and the contact portions of the second abutment plate are symmetrically arranged.

[0009] Preferably, the two sides of the carrier are respectively provided with third recesses facing opposite directions, and the two end sidewalls of the carrier are respectively provided with through grooves communicating with the corresponding third recesses. The sidewalls of the carrier are fixed with end caps that close the openings of the third recesses. One end of the second abutment plate and the drive connecting plate are provided with a column. The column is respectively linked with the corresponding slide through the drive assembly. The end of the column facing the end cap is provided with a second recess. A second spring is provided in the third recess. One end of the second spring abuts against the corresponding end cap, and the other end of the second spring is embedded in the corresponding second recess.

[0010] Preferably, the driving assembly includes a driving column, the top two ends of the carrier are provided with first guide grooves communicating with the corresponding third recess, the two sides of the first guide groove are provided with second guide grooves, the bottom two sides of the slide are provided with guide rods, the guide rods are embedded in the corresponding second guide grooves to achieve sliding assembly, the slide is provided with a through guide groove, the driving column is located inside the corresponding first guide groove, one end of the driving column is fixedly connected to the corresponding column body, and the other end of the driving column is embedded in the corresponding guide groove.

[0011] Preferably, the bottom of the base is provided with a movable groove, and the linkage component includes a first rack, a gear and a second rack disposed in the movable groove. The gear is fixed in the center of the movable groove by a rotating shaft. The first rack meshes with the gear, and one end of the first rack passes through a preset first movable hole in the base and is fixedly connected to one of the sets of uprights. The second rack meshes with the gear, and one end of the second rack passes through a preset second movable hole in the base and is fixedly connected to another set of uprights.

[0012] Preferably, one end of the mounting base has a sliding cavity, the clamping mold is embedded in the sliding cavity to achieve sliding assembly, the top of the sliding cavity has two elongated holes communicating with the sliding cavity, the top of the sliding cavity is provided with a guide pin adapted to the elongated holes, and the end of the clamping mold facing the sliding cavity has two sets of first recesses, and the first recesses are embedded with a first spring abutting against the end wall of the sliding cavity.

[0013] Preferably, the push mold assembly includes a base, a cylinder is fixed on the top of the base, a support frame is fixed to the output end of the cylinder, and a pressure roller adapted to the abutment assembly is installed on the top of the support frame.

[0014] After adopting the above technical solution, the beneficial effects of the present invention are:

[0015] This invention enables the synchronous opening and closing adjustment of four sets of clamping molds through linkage and drive components, which can adapt to the clamping requirements of inductors of different sizes and specifications, eliminating the need for frequent manual adjustments, greatly improving the versatility of the equipment and reducing production preparation time. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0018] Figure 2This is a schematic diagram of the ejector assembly.

[0019] Figure 3 This is a schematic diagram of the structure of the loading fixture;

[0020] Figure 4 This is a structural diagram of the linkage component;

[0021] Figure 5 This is a schematic diagram of the clamping mold structure;

[0022] Figure 6 A schematic diagram of inductor mounting;

[0023] Figure 7 This is a schematic diagram of the slide block structure;

[0024] Figure 8 This is a schematic diagram of the drive component.

[0025] Explanation of reference numerals in the attached drawings: 1-Tablet, 2-CCD detection assembly, 3-Dispensing assembly, 4-Loading fixture, 5-Push mold assembly, 6-Cam divider, 7-Rotating platform, 8-Base, 9-Cylinder, 10-Support frame, 11-Pressure roller, 12-First contact plate, 13-Second contact plate, 14-Tension spring, 15-Base, 16-Slide rail, 17-Standing base, 18-Loading seat, 19-Slide block, 20-Clamping mold, 21-Mounting base, 22-Fixed plate, 23-Drive linkage 24-Modible plate, 25-Modible groove, 26-Slider, 27-First rack, 28-Gear, 29-Second rack, 30-Guide pin, 31-First cavity, 32-First spring, 33-Sliding cavity, 34-Oblong hole, 35-End cap, 36-Guide groove, 37-Guide rod, 38-Through groove, 39-First guide groove, 40-Second guide groove, 41-Drive column, 42-Column, 43-Second cavity, 44-Second spring, 45-Third cavity. Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and not intended to limit it. Those skilled in the art will recognize that the invention can be practiced without some of these specific details. The following description of the embodiments is merely intended to provide a better understanding of the invention by illustrating examples of it.

[0027] The directional terms used in the following description refer to the directions shown in the figures and are not intended to limit the specific structure of the invention. It should also be noted that, unless otherwise explicitly specified and limited, the terms "installation" 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. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0028] like Figure 1 As shown, the inductor dispensing and encapsulation equipment provided by this invention uses a platform 1 as the basic support structure. By fixing a cam divider 6 on the platform 1 and connecting the output end of the cam divider 6 to the rotary platform 7, the intermittent rotational motion of the rotary platform 7 is realized. Multiple sets of circumferentially distributed jigs 4 are fixedly installed on the rotary platform 7 to support the inductors to be processed.

[0029] The cam divider 6 drives the rotary platform 7 to rotate intermittently. The loading fixture 4 passes counterclockwise sequentially through the inductor base loading station, inductor cap loading station, dispensing station, vision inspection station, transition unloading station (used to remove defective products detected by the vision inspection station), and finished product unloading station. This completes the entire processing flow of the inductor from base loading to finished product unloading.

[0030] The dispensing station is equipped with a dispensing component 3, and the vision inspection station is equipped with a CCD inspection component 2. Both are existing technologies, and their specific structures will not be described in detail here. The ejector assembly 5 is respectively arranged at the inductor base loading station, the transition unloading station, and the finished product unloading station, and is used to trigger the clamping or releasing action of the current loading fixture 4.

[0031] like Figure 2 As shown, the push-die assembly 5 includes a base 8 fixedly mounted on the platform 1, on which a cylinder 9 is fixed. A support frame 10 is fixedly mounted at the output end of the cylinder 9, and a pressure roller 11 is mounted on the top of the support frame 10. When the workpiece fixture 4 rotates to the target position, the cylinder 9 retracts, driving the pressure roller 11 to contact the contact component of the workpiece fixture 4, converting the linear thrust into the opening and closing action of the workpiece fixture 4. The pressure roller 11 uses rolling contact to reduce frictional wear with the contact component.

[0032] like Figure 3 , Figure 4 and Figure 6 As shown, in addition to the contact components, the loading fixture 4 also includes a loading seat 18 and a base 15 fixedly mounted on the rotating platform 7. The loading seat 18 is fixedly mounted on the upper surface of the base 15, and the base 15 is equipped with two sets of sliders 26 via slide rails 16. Each set of sliders 26 is fixedly mounted with a stand 17, and the two sets of stands 17 are distributed on both sides of the loading seat 18.

[0033] The two sets of sliders 26 move synchronously in opposite directions through a linkage component. When clamping the inductor, the forces applied to the inductor by the two uprights 17 are equal in magnitude and opposite in direction, which can ensure that the inductor is subjected to uniform clamping force on the carrier 18, and avoid the inductor tilting, deforming or being damaged due to uneven clamping force, thereby improving the processing quality and yield of the inductor.

[0034] Slides 19 are slidably mounted on both sides of the top of the carrier 18, and the movement direction of the slides 19 is perpendicular to the movement direction of the stand 17. A mounting base 21 is fixedly mounted on the top of each slide 19 and the stand 17, and a clamping mold 20 is slidably mounted on one end of each set of mounting bases 21.

[0035] The four sets of clamping molds 20 are arranged in a cross shape, forming a surrounding clamping mechanism for the inductor. The push mold assembly 5 uses the abutment assembly to make the four sets of clamping molds 20 move towards or away from the center of the carrier 18 simultaneously, ensuring that the clamping center is always aligned with the inductor.

[0036] like Figure 4 As shown, the linkage assembly uses the movable groove 25 at the bottom of the base 15 as an integrated mounting cavity, and includes a first rack 27, a gear 28, and a second rack 29. The gear 28 is fixed in the center of the movable groove 25 by a rotating shaft, and the first rack 27 and the second rack 29 are distributed on both sides of the gear 28. Both the first rack 27 and the second rack 29 are arranged along the length of the slide rail 16, and their tooth surfaces mesh with the gear 28 to ensure that the transmission direction is consistent with the sliding direction of the slider 26.

[0037] The base 15 has a pre-drilled connecting groove 25, which is parallel to the first and second movable holes of the slide rail 16. One end of the first rack 27 passes through the preset first movable hole and is fixedly connected to one of the sliders 26, and one end of the second rack 29 passes through the preset second movable hole and is fixedly connected to another set of sliders 26.

[0038] The first and second movable holes serve as guides. When one set of sliders 26 is moved by an external force, the other set of sliders 26 moves synchronously in the opposite direction through gear and rack transmission, ensuring that the two sides of the uprights 17 always move symmetrically and maintain the clamping center unchanged.

[0039] like Figure 3 As shown, a fixed plate 22 is fixed to one side of the carrier 18, and a movable plate 24 is fixed to the side of the stand 17 away from the fixed plate 22. A tension spring 14 is hooked between the movable plate 24 and the fixed plate 22. When the pushing force from the push mold assembly 5 disappears, the tension spring 14 pulls the movable plate 24 to reset, causing the two sets of clamping molds 20 on the stand 17 to move closer to each other, thereby clamping the inductor in the length or width direction.

[0040] like Figure 3As shown, the contact assembly includes a first contact plate 12, a second contact plate 13, and a drive connecting plate 23. The first contact plate 12 is fixed to one side of one of the sets of stands 17. The second contact plate 13 is close to the first contact plate 12 and slidably mounted on one end of the carrier 18. The drive connecting plate 23 is slidably mounted on the other end of the carrier 18 and fixedly connected to the first contact plate 12. The contact portions of the first contact plate 12 and the second contact plate 13 are symmetrically arranged, so that the power of the push mold assembly 5 is simultaneously transmitted to the contact portions of the first contact plate 12 and the second contact plate 13.

[0041] like Figure 7 and Figure 8 As shown, the two side walls of the carrier 18 are respectively provided with third recesses 45 facing opposite directions, and the two end side walls of the carrier 18 are respectively provided with through grooves 38 communicating with the corresponding third recesses 45. The side walls of the carrier 18 are fixed with end caps 35 that close the openings of the third recesses 45. One end of the second contact plate 13 and the drive connecting plate 23 are each provided with a column 42. The column 42 is embedded in the corresponding third recess 45 to form a sliding assembly, and the column 42 is linked to the slide 19 through the drive assembly.

[0042] The through groove 38 restricts the rotational movement of the second contact plate 13 and the drive connecting plate 23, thereby preventing the second contact plate 13 and the drive connecting plate 23 from rotating around their respective columns 42, so that the second contact plate 13 and the drive connecting plate 23 can only move along a specific straight line direction.

[0043] A second cavity 43 is provided at one end of the column 42 facing the end cover 35, and a second spring 44 is provided in the third cavity 45. One end of the second spring 44 abuts against the end cover 35, and the other end is embedded in the second cavity 43 to realize the reset of the slide 19.

[0044] like Figure 8 As shown, the drive assembly includes a drive column 41. The top two sides of the carrier 18 are respectively provided with a first guide groove 39 and two sets of second guide grooves 40. The first guide groove 39 connects to a corresponding third cavity 45, and the two sets of second guide grooves 40 are distributed on both sides of the first guide groove 39. The bottom two sides of the slide 19 are provided with guide rods 37, which are embedded in the corresponding second guide grooves 40 to achieve sliding assembly. The sliding direction of the slide 19 is perpendicular to the movement direction of the column 42.

[0045] The slide 19 has a through guide groove 36, and the drive post 41 is located inside the corresponding first guide groove 39. One end of the drive post 41 is fixedly connected to the corresponding post 42, and the other end of the drive post 41 is embedded in the corresponding guide groove 36.

[0046] When the column 42 moves horizontally, the driving column 41 exerts a force on the side wall of the guide groove 36, generating a component force parallel to the second guide groove 40, thereby converting the linear motion of the column 42 in the third cavity 45 into the linear motion of the slide 19 along the second guide groove 40.

[0047] like Figure 5 and Figure 6 As shown, one end of the mounting base 21 has a sliding cavity 33, and the top has two elongated holes 34 communicating with the sliding cavity 33. The clamping mold 20 is embedded in the sliding cavity 33 to achieve sliding assembly, and the top has a guide pin 30 adapted to the elongated holes 34. The guide pin 30 and the elongated holes 34 cooperate to limit the movement trajectory of the clamping mold 20 and improve stability. The end of the clamping mold 20 facing the sliding cavity 33 has two sets of first recesses 31, and each set of first recesses 31 has a first spring 32 embedded in it to abut against the end wall of the sliding cavity 33. When the clamping mold 20 contacts the inductor, the first spring 32 provides buffer pressure to avoid hard impact damage to the product. By changing the clamping mold 20 with different ends, different types of inductors can be accommodated.

[0048] like Figure 3 As shown, the clamping mold 20 closest to the second contact plate 13 is labeled as mold number one, and the remaining clamping molds 20 are labeled as mold number two, mold number three, and mold number four respectively, in a clockwise direction. Taking the inductor loading stage as an example, the working principle of the loading fixture 4 will be further explained below.

[0049] The cam divider 6 drives the rotary platform 7 to rotate, causing one set of loading fixtures 4 to reach the inductor base loading station. The cylinder 9 performs a retraction operation, driving the pressure roller 11 to move closer to the positions of the first contact plate 12 and the second contact plate 13. Under the squeezing action of the pressure roller 11, the first contact plate 12 and the second contact plate 13 move synchronously away from the loading seat 18.

[0050] During the movement of the first contact plate 12, it drives the connected stand 17 to slide in the same direction along the slide rail 16. With the help of the transmission mechanism composed of the first rack 27, the gear 28 and the second rack 29, the other set of stands 17 will move in the opposite direction at the same time, so that the second mold and the fourth mold will separate at the same time and the tension spring 14 will be stretched.

[0051] Simultaneously, the first contact plate 12 drives the drive connecting plate 23 to move. The column 42 at the end of the drive connecting plate 23 drives the drive column 41 to slide along the first guide groove 39. The drive column 41 pushes the slide block 19 to slide along the second guide groove 40 through the guide groove 36, thereby causing the third mold to slide away from the first mold. While the first contact plate 12 moves, the second contact plate 13 moves in the opposite direction, driving the column 42 on it to move synchronously, causing the first mold to slide away from the third mold. During this process, the two sets of second springs 44 are compressed.

[0052] The four clamping molds 20 are separated synchronously to reserve a suitable position for clamping the inductor base. The inductor base is placed in the middle of the carrier 18 by the feeding device. Then the cylinder 9 is reset, and the tension spring 14 and the second spring 44 return to their original positions synchronously. The four clamping molds 20 close together to complete the clamping of the inductor base.

[0053] The embodiments described above are not exhaustive and do not limit the invention to specific implementations. Clearly, many modifications and variations can be made based on the above description. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to effectively utilize the invention and its modifications. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the invention should be included within the scope of protection of the invention.

Claims

1. An inductor dispensing and encapsulation device, characterized in that: The system includes a platform (1) and a rotating platform (7). A cam divider (6) and a CCD detection assembly (2) and a dispensing assembly (3) arranged around the rotating platform (7) are fixedly installed on the platform (1). The rotating platform (7) is fixedly connected to the output end of the cam divider (6). Multiple sets of circumferentially distributed loading fixtures (4) are fixed on the rotating platform (7). Multiple sets of push-mold assemblies (5) corresponding to the loading fixtures (4) are provided on the platform (1). The loading fixtures (4) include a base (15) and a stand (17). A loading seat (18) is fixed on the base (15). Two sets of the stands (17) are slidably assembled on the base (15) and distributed on both sides of the loading seat (18). The components are linked together to achieve synchronous reverse movement. The top sides of the carrier (18) are respectively equipped with sliding blocks (19), and the movement direction of the sliding blocks (19) is perpendicular to the movement direction of the upright (17). The top of each sliding block (19) and the upright (17) is fixed with a mounting seat (21). Each set of mounting seats (21) is slidably equipped with a clamping mold (20) at one end. The four sets of clamping molds (20) are arranged in a cross shape around the center of the carrier (18). The push mold component (5) drives the four sets of clamping molds (20) to move synchronously toward or away from the center of the carrier (18) through the abutment component. One side of one set of uprights (17) is fixed with a movable plate (24), and the carrier (18) moves away from the movable plate (24). A fixed plate (22) is fixed on one side of the movable plate (24), and a tension spring (14) is hooked between the fixed plate (22) and the movable plate (24). The abutting assembly includes a first abutting plate (12), a second abutting plate (13), and a driving connecting plate (23). The first abutting plate (12) is fixed on one side of one of the sets of uprights (17). The second abutting plate (13) is close to the first abutting plate (12) and slidably mounted on one end of the carrier (18). The driving connecting plate (23) is slidably mounted on the other end of the carrier (18) and fixedly connected to the first abutting plate (12). The contact parts of the first abutting plate (12) and the contact parts of the second abutting plate (13) are symmetrically arranged. The carrier (18) has a third concave cavity facing opposite directions on both sides. 45), the two side walls of the carrier (18) are respectively provided with through grooves (38) that connect to the corresponding third cavity (45). The side wall of the carrier (18) is fixed with an end cap (35) that closes the opening of the third cavity (45). One end of the second contact plate (13) and the drive connecting plate (23) is provided with a column (42). The column (42) is connected to the corresponding slide (19) through the drive assembly. The end of the column (42) facing the end cap (35) is provided with a second cavity (43). The third cavity (45) is provided with a second spring (44). One end of the second spring (44) abuts against the corresponding end cap (35), and the other end of the second spring (44) is embedded in the corresponding second cavity (43).The driving assembly includes a driving column (41). The top two ends of the carrier (18) are provided with first guide grooves (39) communicating with corresponding third recesses (45). Second guide grooves (40) are arranged on both sides of the first guide grooves (39). Guide rods (37) are provided on both sides of the bottom of the slide (19). The guide rods (37) are embedded in the corresponding second guide grooves (40) to achieve sliding assembly. The slide (19) is provided with a through-type guide groove (36). The driving column (41) is located inside the corresponding first guide groove (39). One end of the driving column (41) is fixedly connected to the corresponding column body (42), and the other end of the driving column (41) is embedded in the corresponding guide groove (36).

2. The inductor dispensing and encapsulation equipment according to claim 1, characterized in that: The bottom of the base (15) is provided with a movable groove (25). The linkage component includes a first rack (27), a gear (28) and a second rack (29) disposed in the movable groove (25). The gear (28) is fixed in the center of the movable groove (25) by a rotating shaft. The first rack (27) meshes with the gear (28), and one end of the first rack (27) passes through a first movable hole preset in the base (15) and is fixedly connected to one of the sets of uprights (17). The second rack (29) meshes with the gear (28), and one end of the second rack (29) passes through a second movable hole preset in the base (15) and is fixedly connected to another set of uprights (17).

3. The inductor dispensing and encapsulation equipment according to claim 1, characterized in that: The mounting base (21) has a sliding cavity (33) at one end. The clamping mold (20) is embedded in the sliding cavity (33) to achieve sliding assembly. The top of the sliding cavity (33) has two elongated holes (34) that connect the sliding cavity (33). The top of the sliding cavity (33) is provided with a guide pin (30) that matches the elongated holes (34). The clamping mold (20) has two sets of first recesses (31) at one end facing the sliding cavity (33). The first recesses (31) are embedded with a first spring (32) that abuts against the end wall of the sliding cavity (33).

4. The inductor dispensing and encapsulation equipment according to claim 1, characterized in that: The push mold assembly (5) includes a base (8), a cylinder (9) is fixed on the top of the base (8), a support frame (10) is fixed on the output end of the cylinder (9), and a pressure roller (11) adapted to the abutment assembly is installed on the top of the support frame (10).