Iron core exchange feeding mechanism

By designing the iron core exchange feeding mechanism, the first and second feeding components are used to realize the alternate feeding of the iron core, and the problems of low feeding efficiency and position interference in the prior art are solved through the alternating movement of the discharge seat, thereby achieving efficient core feeding and non-interference feeding positions.

CN222947588UActive Publication Date: 2025-06-06SHENZHEN HONEST MECHATRONIC EQUIP CO LTD
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Patent Information

Application Number
CN202421583897.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-05
Publication Date
2025-06-06
Estimated Expiration
2034-07-05

AI Technical Summary

Technical Problem

The existing iron core feeding mechanism does not use the first and second feeding components to realize the alternate feeding, resulting in a long wait time and low efficiency when feeding the iron core, and the alternating movement of the first and second discharge seats cannot be achieved, resulting in position interference.

Method used

An iron core exchange feeding mechanism is designed to realize the alternate feeding of the iron core through the first and second feeding components, and is located on the rear side of the second support frame through the alternating movement of the first and second feeding seats to avoid positional interference.

Benefits of technology

It reduces the waiting time during iron core feeding, improves the efficiency of iron core feeding, and avoids position interference, meeting the position requirements of iron core feeding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an iron core exchange feeding mechanism, and relates to the technical field of motor automation assembly equipment, the iron core exchange feeding mechanism comprises a first feeding assembly and a second feeding assembly, the first feeding assembly comprises a first support frame, a first longitudinal moving assembly, a first vertical moving assembly and a first material placing seat; the second feeding assembly comprises a first supporting frame, a second longitudinal moving assembly and a second discharging seat, the second discharging seat is installed at the output end of the second longitudinal moving assembly, and the first discharging seat and the second discharging seat are both located on the rear side of the second supporting frame in an alternate moving mode. Alternate feeding of iron cores is achieved through the first feeding assembly and the second feeding assembly, the waiting time during iron core feeding is shortened, and the iron core feeding efficiency is improved; the first discharging base and the second discharging base are both located on the rear side of the second supporting frame in an alternate moving mode, alternate feeding of the first discharging base and the second discharging base is achieved, the feeding efficiency is improved, and meanwhile position interference is avoided.
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Description

Technical Field

[0001] The utility model relates to the field of motor automatic assembly equipment technology, in particular to an iron core exchange feeding mechanism. Background Art

[0002] During the motor assembly process, it is necessary to stick adhesive tape on a single iron core and attach the adhesive tape to the side wall of the iron core. When sticking the adhesive tape, an exchange feeding mechanism is needed to feed the iron core to the required position; the iron core feeding mechanism in the prior art does not use the first feeding component and the second feeding component to realize alternating feeding of the iron core, the waiting time during iron core feeding is long, and the iron core feeding efficiency needs to be improved; the first discharge seat and the second discharge seat are not both alternately movable and located at the rear side of the second support frame, which is not convenient for realizing alternating feeding of the first discharge seat and the second discharge seat, and it is not convenient to avoid position interference while improving feeding efficiency; therefore, in view of this situation, it is urgent to develop an iron core exchange feeding mechanism to meet the needs of actual use. Utility Model Content

[0003] In view of this, the utility model aims to solve the deficiencies in the prior art, and its main purpose is to provide an iron core exchange feeding mechanism, which realizes alternate feeding of the iron core by adopting a first feeding component and a second feeding component, thereby reducing the waiting time during iron core feeding and improving the iron core feeding efficiency; the first discharge seat and the second discharge seat can be alternately moved to the rear side of the second support frame, thereby realizing alternate feeding of the first discharge seat and the second discharge seat, improving the feeding efficiency and avoiding position interference.

[0004] In order to achieve the above purpose, the utility model adopts the following technical solutions:

[0005] A core exchange feeding mechanism comprises a first feeding assembly and a second feeding assembly, wherein the first feeding assembly comprises a first supporting frame, a first longitudinal movement assembly, a first vertical movement assembly and a first material discharge seat, wherein the first longitudinal movement assembly is mounted on the first supporting frame, the first vertical movement assembly is mounted on the output end of the first longitudinal movement assembly, and the first material discharge seat is mounted on the output end of the first vertical movement assembly; the second feeding assembly comprises a second supporting frame, a second longitudinal movement assembly and a second material discharge seat, wherein the second longitudinal movement assembly is mounted on the second supporting frame, the second material discharge seat is mounted on the output end of the second longitudinal movement assembly, and the first material discharge seat and the second material discharge seat can be alternately moved and located at the rear side of the second supporting frame.

[0006] As a preferred solution: the first vertical movement assembly has a guiding device for guiding the first material discharge seat, the guiding device is installed at the output end of the first longitudinal movement assembly, and the guiding device is connected to the bottom of the first material discharge seat.

[0007] As a preferred solution: the guide device includes a guide sleeve and a guide column, the guide sleeve is fastened to the output end of the first longitudinal movement component, the guide column can be lifted and moved through the guide sleeve, and the upper end of the guide column is connected to the lower surface of the first discharge seat.

[0008] As a preferred solution: the first vertical movement assembly also includes a vertical movement driving cylinder, and the first material discharge seat is installed on the axial end of the vertical movement driving cylinder; the number of the guide pillars is two, and the two guide pillars are symmetrically distributed on both sides of the vertical movement driving cylinder.

[0009] As a preferred solution: the first longitudinal movement assembly includes a longitudinal movement drive device and a longitudinal movement slide, the longitudinal movement drive device is installed on the first support frame, the longitudinal movement slide is installed on the output end of the longitudinal movement drive device, and the guide device is installed on the longitudinal movement slide.

[0010] As a preferred solution: a connecting plate is provided at the lower ends of the two guide pillars, and a making way slot for making way for the vertical drive cylinder is provided in the middle of the connecting plate.

[0011] As a preferred solution: a plurality of accommodating grooves for accommodating the iron cores are evenly spaced on the first unloading seat and the second unloading seat.

[0012] As a preferred solution: a limit pin for limiting the position of the first material discharge seat is arranged on the longitudinal sliding seat, and the first material discharge seat can be lowered to abut against the upper end of the limit pin.

[0013] Compared with the prior art, the utility model has obvious advantages and beneficial effects. Specifically, it can be seen from the above technical scheme that the alternating feeding of the iron core is realized by adopting the first feeding assembly and the second feeding assembly, which reduces the waiting time when feeding the iron core and improves the feeding efficiency of the iron core; by adopting the first longitudinal movement assembly and the first vertical movement assembly to drive the first discharge seat to move longitudinally and vertically, it is convenient to move the first discharge seat to the feeding position, which meets the position requirement of the iron core feeding; by adopting the second longitudinal movement assembly to drive the second discharge seat to move longitudinally, it is convenient to meet the feeding position requirement of the second discharge seat; by the first discharge seat and the second discharge seat both of which can be alternately moved and located at the rear side of the second support frame, the alternating feeding of the first discharge seat and the second discharge seat is realized, which improves the feeding efficiency and avoids position interference.

[0014] In order to more clearly illustrate the structural features and effects of the present invention, it is described in detail below in conjunction with the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a three-dimensional structural diagram of the core exchange feeding mechanism of the utility model from the first perspective;

[0016] Figure 2It is a schematic diagram of the three-dimensional structure of the iron core exchange feeding mechanism of the utility model from a second viewing angle;

[0017] Figure 3 It is a schematic diagram of the three-dimensional structure of the iron core exchange feeding mechanism of the utility model from the third perspective;

[0018] Figure 4 For the utility model Figure 2 Enlarged view of point M in the middle.

[0019] Description of the accompanying drawings:

[0020] In the figure: 10, iron core exchange feeding mechanism; 11, first feeding assembly; 111, first support frame; 112, first longitudinal movement assembly; 1121, longitudinal movement driving device; 1122, longitudinal movement slide; 1123, limit pin; 113, first vertical movement assembly; 1131, vertical movement driving cylinder; 1132, guide sleeve; 1133, guide column; 1134, connecting plate; 11341, make way slot; 114, first discharge seat; 1141, accommodating groove; 12, second feeding assembly; 121, second support frame; 122, second longitudinal movement assembly; 123, second discharge seat. DETAILED DESCRIPTION

[0021] The utility model Figures 1 to 4 As shown, a core exchange feeding mechanism 10 includes a first feeding assembly 11 and a second feeding assembly 12, wherein:

[0022] The first feeding assembly 11 includes a first supporting frame 111, a first longitudinal movement assembly 112, a first vertical movement assembly 113 and a first material discharge seat 114, the first longitudinal movement assembly 112 is installed on the first supporting frame 111, the first vertical movement assembly 113 is installed at the output end of the first longitudinal movement assembly 112, and the first material discharge seat 114 is installed at the output end of the first vertical movement assembly 113; the second feeding assembly 12 includes a second supporting frame 121, a second longitudinal movement assembly 122 and a second material discharge seat 123, the second longitudinal movement assembly 122 is installed on the second supporting frame 121, the second material discharge seat 123 is installed at the output end of the second longitudinal movement assembly 122, and the first material discharge seat 114 and the second material discharge seat 123 can be alternately moved and located at the rear side of the second supporting frame 121.

[0023] The rear side of the second support frame 121 is the feeding position; the first material discharge seat 114 and the second material discharge seat 123 are both placed with iron cores, the first longitudinal movement assembly 112 drives the first material discharge seat 114 to move longitudinally, and the first vertical movement assembly 113 drives the second material discharge seat 123 to move vertically; the second longitudinal movement assembly 122 drives the second material discharge seat 123 to move longitudinally; the second longitudinal movement assembly 122 drives the second material discharge seat 123 to move longitudinally to the feeding position on the rear side of the second support frame 121; when the operation on the iron core on the second material discharge seat 123 is completed, the second longitudinal movement assembly 122 drives the second material discharge seat 123 to move longitudinally away from the feeding position on the rear side of the second support frame 121; the first longitudinal movement assembly 112 and the first vertical movement assembly 113 drive the first material discharge seat 114 to move longitudinally and vertically to move the first material discharge seat 114 to the feeding position on the rear side of the second support frame 121.

[0024] By adopting the first feeding component 11 and the second feeding component 12, alternate feeding of the iron core is achieved, the waiting time during feeding the iron core is reduced, and the feeding efficiency of the iron core is improved; by adopting the first longitudinal movement component 112 and the first vertical movement component 113 to drive the first discharge seat 114 to move longitudinally and vertically, it is convenient to move the first discharge seat 114 to the feeding position, meeting the position requirement of the iron core feeding; by adopting the second longitudinal movement component 122 to drive the second discharge seat 123 to move longitudinally, it is convenient to meet the feeding position requirement of the second discharge seat 123; by the first discharge seat 114 and the second discharge seat 123 both being alternately movable and located at the rear side of the second support frame 121, the alternating feeding of the first discharge seat 114 and the second discharge seat 123 is achieved, the feeding efficiency is improved while also avoiding position interference.

[0025] The first longitudinal movement assembly 112 includes a longitudinal movement drive device 1121 and a longitudinal movement slide 1122. The longitudinal movement drive device 1121 is installed on the first support frame 111, the longitudinal movement slide 1122 is installed on the output end of the longitudinal movement drive device 1121, and the guide device is installed on the longitudinal movement slide 1122; the longitudinal movement drive device 1121 drives the longitudinal movement slide 1122 to move longitudinally.

[0026] The first vertical movement assembly 113 has a guiding device for guiding the first material discharging seat 114 . The guiding device is installed at the output end of the first longitudinal movement assembly 112 , and the guiding device is connected to the bottom of the first material discharging seat 114 .

[0027] The guide device includes a guide sleeve 1132 and a guide column 1133. The guide sleeve 1132 is fixedly arranged at the output end of the first longitudinal movement component 112. The guide column 1133 can be lifted and moved through the guide sleeve 1132. The upper end of the guide column 1133 is connected to the lower surface of the first material discharge seat 114.

[0028] The first vertical moving assembly 113 also includes a vertical moving driving cylinder 1131 , and the first material discharging seat 114 is installed on the axial end of the vertical moving driving cylinder 1131 ; there are two guide pillars 1133 , and the two guide pillars 1133 are symmetrically distributed on both sides of the vertical moving driving cylinder 1131 .

[0029] The vertical drive cylinder 1131 drives the first material discharge seat 114 to rise and fall, and the rising and falling of the first material discharge seat 114 drives the guide column 1133 to rise and fall, and the guide column 1133 rises and falls in the guide sleeve 1132; the first material discharge seat 114 is guided by adopting a guide device to prevent the first material discharge seat 114 from position displacement during the lifting process, thereby improving the lifting accuracy and stability of the first material discharge seat 114; the structural stability is increased by adopting two guide columns 1133.

[0030] A connecting plate 1134 is disposed at the lower ends of the two guide pillars 1133 , and a paving slot 11341 for paving the vertical drive cylinder 1131 is provided in the middle of the connecting plate 1134 .

[0031] The connection plate 1134 is used to further improve the stability of the structure, and the recessed slot 11341 is used to prevent the vertical drive cylinder 1131 from interfering with the position of the connection plate 1134 when it is raised or lowered.

[0032] The first material discharging seat 114 and the second material discharging seat 123 are both evenly spaced with a plurality of accommodating grooves 1141 for accommodating the iron cores. The accommodating grooves 1141 are used to improve the stability of the placement of the iron cores.

[0033] The longitudinal sliding seat 1122 is provided with a limit pin 1123 for limiting the position of the first material discharging seat 114. The first material discharging seat 114 can be lowered to abut against the upper end of the limit pin 1123. The limit pin 1123 is used to limit the position of the first material discharging seat 114.

[0034] The longitudinal movement driving device 1121 and the second longitudinal movement assembly 122 both include a driving longitudinal movement motor and a longitudinal movement driving screw, which is installed on the shaft end of the driving longitudinal movement motor. The longitudinal movement slide 1122 is rotationally matched with the longitudinal movement driving screw of the longitudinal movement driving device 1121; the second unloading seat 123 is rotationally matched with the longitudinal movement driving screw of the second longitudinal movement assembly 122.

[0035] The usage and principle of the core exchange feeding mechanism are as follows:

[0036] The rear side of the second support frame is the feeding position; the first discharge seat and the second discharge seat are both provided with iron cores, the first longitudinal movement assembly drives the first discharge seat to move longitudinally, and the first vertical movement assembly drives the second discharge seat to move vertically; the second longitudinal movement assembly drives the second discharge seat to move longitudinally; the second longitudinal movement assembly drives the second discharge seat to move longitudinally to the feeding position on the rear side of the second support frame; when the operation on the iron core on the second discharge seat is completed, the second longitudinal movement assembly drives the second discharge seat to move longitudinally away from the feeding position on the rear side of the second support frame; the first longitudinal movement assembly and the first vertical movement assembly drive the first discharge seat to move longitudinally and vertically to move the first discharge seat to the feeding position on the rear side of the second support frame.

[0037] The design focus of the utility model is that the alternating feeding of the iron core is realized by adopting the first feeding component and the second feeding component, the waiting time during the feeding of the iron core is reduced, and the feeding efficiency of the iron core is improved; the first longitudinal movement component and the first vertical movement component are used to drive the first discharge seat to move longitudinally and vertically, so as to facilitate the movement of the first discharge seat to the feeding position, and meet the position requirement of the iron core feeding; the second longitudinal movement component is used to drive the second discharge seat to move longitudinally, so as to facilitate the feeding position requirement of the second discharge seat; the first discharge seat and the second discharge seat can be alternately moved and located at the rear side of the second support frame, so as to realize the alternating feeding of the first discharge seat and the second discharge seat, improve the feeding efficiency and avoid position interference.

[0038] The above description is only a preferred embodiment of the present invention and does not limit the technical scope of the present invention. Therefore, any slight modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention are still within the scope of the technical solution of the present invention.

Claims

1. A core exchange feeding mechanism, characterized in that: It includes a first feeding assembly and a second feeding assembly, the first feeding assembly includes a first supporting frame, a first longitudinal movement assembly, a first vertical movement assembly and a first material discharge seat, the first longitudinal movement assembly is installed on the first supporting frame, the first vertical movement assembly is installed at the output end of the first longitudinal movement assembly, and the first material discharge seat is installed at the output end of the first vertical movement assembly; the second feeding assembly includes a second supporting frame, a second longitudinal movement assembly and a second material discharge seat, the second longitudinal movement assembly is installed on the second supporting frame, the second material discharge seat is installed at the output end of the second longitudinal movement assembly, and the first material discharge seat and the second material discharge seat can be alternately moved and located at the rear side of the second supporting frame.

2. The core exchange feeding mechanism according to claim 1, characterized in that: The first vertical movement assembly has a guiding device for guiding the first material discharging seat. The guiding device is installed at the output end of the first longitudinal movement assembly and is connected to the bottom of the first material discharging seat.

3. The iron core exchange feeding mechanism according to claim 2, characterized in that: The guide device includes a guide sleeve and a guide column. The guide sleeve is fixedly arranged at the output end of the first longitudinal movement component. The guide column can be lifted and moved through the guide sleeve. The upper end of the guide column is connected to the lower surface of the first material discharge seat.

4. The iron core exchange feeding mechanism according to claim 3, characterized in that: The first vertical movement assembly also includes a vertical movement driving cylinder, and the first material discharging seat is installed on the axial end of the vertical movement driving cylinder; there are two guide pillars, and the two guide pillars are symmetrically distributed on both sides of the vertical movement driving cylinder.

5. The iron core exchange feeding mechanism according to claim 2, characterized in that: The first longitudinal movement assembly includes a longitudinal movement driving device and a longitudinal movement slide. The longitudinal movement driving device is installed on the first supporting frame, the longitudinal movement slide is installed on the output end of the longitudinal movement driving device, and the guiding device is installed on the longitudinal movement slide.

6. The iron core exchange feeding mechanism according to claim 4, characterized in that: A connecting plate is arranged at the lower ends of the two guide pillars, and a making way slot for making way for the vertical movement driving cylinder is arranged in the middle position of the connecting plate.

7. The iron core exchange feeding mechanism according to claim 1, characterized in that: The first material discharging seat and the second material discharging seat are both evenly spaced with a plurality of accommodating grooves for accommodating the iron core.

8. The iron core exchange feeding mechanism according to claim 5, characterized in that: The longitudinal sliding seat is provided with a limit pin for limiting the position of the first material discharging seat, and the first material discharging seat can be lowered and abutted against the upper end of the limit pin.