Magnetic core machining pushing mechanism
By designing a magnetic core processing and pushing mechanism including support plate, cylinder, pushing plate and U-shaped frame, the problem that the core rolling speed is greater than the pushing plate running speed is solved, and more efficient core pushing and better production quality is achieved.
Patent Information
- Application Number
- CN202421464742.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-06-25
AI Technical Summary
After the existing magnetic core processing pushing mechanism pushes the magnetic core out of the arcuate groove, the rolling speed of the magnetic core may be greater than the running speed of the pushing plate, resulting in an increase in the collision force between the magnetic core and the positioning mechanism, affecting the production quality of the magnetic core.
A magnetic core processing pushing mechanism is designed, including a support plate, a cylinder, a pushing plate and a U-shaped frame. The cylinder is used to drive the pushing plate to approach the core processing equipment, and the magnetic core rolls between the U-shaped frame and the pushing plate. When the U-shaped frame moves to a specific position, the U-shaped frame is driven upward by the lifting component, so that the magnetic core enters the positioning mechanism under the action of inertia.
It effectively improves the material pushing effect of the magnetic core, reduces the collision force between the magnetic core and the positioning mechanism, ensures the production quality of the magnetic core, and has high market application value.
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Figure CN222877041U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of magnetic core processing, in particular to a material pushing mechanism for magnetic core processing. Background Art
[0002] The Chinese patent with the authorization announcement number CN217318689U discloses a magnetic core processing pusher mechanism, which places the magnetic core in the arc groove of the base, uses the servo motor to drive the first bevel gear to rotate, and the first bevel gear is meshed with the second bevel gear to drive the front screw shaft to drive the sprocket to rotate. The two sets of sprockets are connected by chain transmission, so that the two sets of screw shafts rotate at the same time, and the sliding sleeve moves up and down, so that the sliding sleeve drives the push plate to move right under the cooperation of the swing block, the connecting rod and the guide fixed plate, so as to push the magnetic core into the positioning mechanism of the external magnetic core processing equipment. The above device has the following disadvantages: after the push plate pushes the magnetic core out of the arc groove, the magnetic core will roll on the base with the help of the push plate, and the magnetic core is generally a cylindrical structure, which may cause the rolling speed of the magnetic core to be greater than the running speed of the push plate, resulting in the collision force between the magnetic core and the positioning mechanism to increase, resulting in the magnetic force of the magnetic core to decrease, thereby affecting the production quality of the magnetic core. Therefore, it is urgent to study a magnetic core processing pushing mechanism in order to solve the above problems. Utility Model Content
[0003] The utility model provides a material pushing mechanism for magnetic core processing, and its purpose is to solve the technical problems raised in the above background technology.
[0004] In order to solve the above technical problems, the utility model is realized by the following technical solutions:
[0005] The utility model is a magnetic core processing pushing mechanism, comprising a horizontally arranged support plate; a mounting plate is vertically fixed to one side edge of the support plate; a cylinder is horizontally fixed to a side edge of the mounting plate away from the support plate; the output end of the cylinder passes through the mounting plate and is vertically fixed to a push plate parallel to the mounting plate; first sliding grooves are vertically opened on opposite side edges of the push plate; a U-shaped frame is horizontally arranged on the side of the push plate away from the mounting plate; both ends of the U-shaped frame have first sliding parts; the two first sliding parts are respectively slidably connected in the two first sliding grooves; a magnetic core accommodating space is formed between the U-shaped frame and the push plate; a lifting component connected to the U-shaped frame is installed on the push plate; the lifting component is used to drive the U-shaped frame to move up and down.
[0006] As a preferred technical solution of the utility model, a buffer pad is horizontally embedded in the upper surface of the support plate; the buffer pad is used to catch the magnetic core that falls on the support plate.
[0007] As an optimal technical scheme of the present utility model, the opposite sides of the push plate are fixed with a first protrusion; the two first protrusions are arranged on the relatively outer sides of the two first slide grooves, and the two first protrusions are arranged on the side of the push plate away from the mounting plate; the lifting assembly includes a pair of driving shafts that are rotatably connected to the two first protrusions respectively; the two driving shafts are coaxially arranged; the ends of the two driving shafts that are separated are fixed with gears; one side of the two gears is provided with a bracket with a "┐"-shaped structure; the vertical sections of the two brackets are respectively fixed on the two first protrusions; the horizontal sections of the two brackets are horizontally slidably connected with the first racks; the two first racks are respectively meshed with the upper parts of the two gears; the two first racks are rotatably connected to a rotating shaft parallel to the driving shaft on the side close to the cylinder; a transmission rod is radially fixed on the two rotating shafts; the ends of the two transmission rods away from the rotating shaft are rotatably connected with a push-pull strip; the two push-pull strips are respectively vertically fixed on the two first sliding parts.
[0008] As a preferred technical solution of the utility model, the lower parts of the two gears are horizontally meshed with second racks; the two second racks are horizontally fixed on the upper surface of the support plate, and the two second racks are arranged on one side of the support plate away from the mounting plate.
[0009] As a preferred technical solution of the utility model, the lower surfaces of the horizontal sections of the two brackets have a second sliding portion; the upper surfaces of the two first racks are provided with a second sliding groove along the length direction; the two second sliding portions are respectively slidably connected in the two second sliding grooves.
[0010] As a preferred technical solution of the utility model, a second protrusion is horizontally fixed to the upper edge of the push plate; the lower surfaces of the two second protrusions are vertically connected to tension springs; the lower ends of the two tension springs are respectively fixed to the two first sliding parts.
[0011] The utility model has the following beneficial effects:
[0012] The utility model realizes the pushing operation of the magnetic core by dropping the magnetic core into the magnetic core accommodating space formed between the U-shaped frame and the push plate, and uses the cylinder to drive the push plate to approach the positioning mechanism of the external magnetic core processing equipment, so as to cause the magnetic core to roll between the U-shaped frame and the push plate. When the U-shaped frame moves to the side edge of the mounting plate away from the cylinder, the lifting component is used to drive the U-shaped frame to move upward, so as to cause the magnetic core to move into the positioning mechanism of the external magnetic core processing equipment under the action of inertia, thereby realizing the pushing operation of the magnetic core. Not only the pushing effect of the magnetic core is effectively improved, but also the collision force between the magnetic core and the positioning mechanism is reduced, so the production quality of the magnetic core is guaranteed, and the utility model has high market application value.
[0013] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions of the embodiments of the utility model, the drawings required for describing the embodiments are briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0015] Figure 1 The utility model is a structural schematic diagram of a magnetic core processing pushing mechanism.
[0016] Figure 2 for Figure 1 Top view of the structure.
[0017] Figure 3 This is a schematic diagram of the structure in which the cylinder of the utility model is arranged on a support plate.
[0018] Figure 4 It is a structural schematic diagram of the connection between the push plate, the U-shaped frame and the lifting assembly of the utility model.
[0019] Figure 5 It is a structural schematic diagram of the connection between the push plate and the lifting assembly of the utility model.
[0020] Figure 6 It is a structural schematic diagram of the connection between the U-shaped frame and the lifting assembly of the utility model.
[0021] In the accompanying drawings, the components represented by the reference numerals are listed as follows:
[0022] 1-support plate, 2-mounting plate, 3-cylinder, 4-push plate, 5-U-shaped frame, 6-lifting assembly, 7-buffer pad, 8-tensioning spring, 401-first slide groove, 402-first protrusion, 403-second protrusion, 501-first sliding part, 601-drive shaft, 602-gear, 603-bracket, 604-first rack, 605-rotating shaft, 606-transmission rod, 607-push-pull bar, 608-second rack, 609-second sliding part, 610-second slide groove. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0024] Embodiment 1:
[0025] See also Figure 1-2 As shown, the utility model is a magnetic core processing pushing mechanism, comprising a horizontally arranged support plate 1; a mounting plate 2 is vertically bolted to one side of the support plate 1; a conventional cylinder 3 in the field is horizontally bolted to one side of the mounting plate 2 away from the support plate 1; the output end of the cylinder 3 slides through the mounting plate 2 and is vertically bolted to a push plate 4 parallel to the mounting plate 2; first slide grooves 401 are vertically opened on opposite sides of the push plate 4; a U-shaped frame 5 is horizontally arranged on one side of the push plate 4 away from the mounting plate 2; both ends of the U-shaped frame 5 are integrally formed with a first sliding portion 501; the two first sliding portions 501 are respectively slidably connected to the two first slide grooves 401; a magnetic core accommodating space is formed between the U-shaped frame 5 and the push plate 4; a lifting assembly 6 connected to the U-shaped frame 5 is installed on the push plate 4; the lifting assembly 6 is used to drive the U-shaped frame 5 to move up and down. When in use, the magnetic core is dropped into the magnetic core accommodating space formed between the U-shaped frame 5 and the push plate 4, and the cylinder 3 is used to drive the push plate 4 to approach the positioning mechanism of the external magnetic core processing equipment, so that the magnetic core rolls between the U-shaped frame 5 and the push plate 4. When the U-shaped frame 5 moves to the side of the mounting plate 2 away from the cylinder 3, the lifting assembly 6 is used to drive the U-shaped frame 5 to move upward, so that the magnetic core moves to the positioning mechanism of the external magnetic core processing equipment under the action of inertia, thereby realizing the pushing operation of the magnetic core, which not only effectively improves the pushing effect of the magnetic core, but also reduces the collision force between the magnetic core and the positioning mechanism, thereby ensuring the production quality of the magnetic core; when the cylinder 3 drives the push plate 4 to reset, the lifting assembly 6 also drives the U-shaped frame 5 to reset.
[0026] Among them Figure 3 As shown, a buffer pad 7 made of silicone is horizontally embedded in the upper surface of the support plate 1; the buffer pad 7 is used to catch the magnetic core that falls on the support plate 1. When in use, the buffer pad 7 is designed to catch the magnetic core that falls on the support plate 1, which can effectively reduce the collision force between the magnetic core and the support plate 1, and effectively ensure the production quality of the magnetic core.
[0027] Embodiment 2:
[0028] Based on Example 1, Figure 4-6As shown, first protrusions 402 are welded to the opposite sides of the push plate 4; the two first protrusions 402 are arranged on the opposite outer sides of the two first slide grooves 401, and the two first protrusions 402 are arranged on the side of the push plate 4 away from the mounting plate 2; the lifting assembly 6 includes a pair of driving shafts 601 respectively rotatably connected to the two first protrusions 402; the two driving shafts 601 are coaxially arranged; the ends of the two driving shafts 601 that are separated are keyed to the gears 602; one side of the two gears 602 is provided with a bracket 603 with a "┐"-shaped structure; the vertical sections of the two brackets 603 are respectively bolted to the two first protrusions 402; the horizontal sections of the two brackets 603 are horizontally slidably connected to the first racks 604 ; The two first racks 604 are respectively meshed with the upper parts of the two gears 602; the two first racks 604 are rotatably connected to the rotating shaft 605 parallel to the driving shaft 601 on one side close to the cylinder 3; the two rotating shafts 605 are radially fixed with transmission rods 606; the ends of the two transmission rods 606 away from the rotating shaft 605 are rotatably connected to the push-pull bars 607; the two push-pull bars 607 are respectively vertically bolted to the two first sliding parts 501; the lower parts of the two gears 602 are horizontally meshed with second racks 608; the two second racks 608 are horizontally bolted to the upper surface of the support plate 1, and the two second racks 608 are arranged on the side of the support plate 1 away from the mounting plate 2. When in use, during the movement of the push plate 4, after the gear 602 is meshed with the second rack 608, the gear 602 rolls on the second rack 608, prompting the gear 602 to drive the first rack 604 to move in a straight line, so that the first rack 604 drives the first sliding part 501 to move upward in the first slide groove 401 via the rotating shaft 605 and the transmission rod 606. When the gear 602 moves to the end of the second rack 608 away from the cylinder 3, the horizontal position of the U-shaped frame 5 is higher than the magnetic core, so that the limit on the magnetic core is released. Under the action of inertia, the magnetic core rolls from the support plate 1 to the positioning mechanism of the external magnetic core processing equipment, thereby effectively ensuring the pushing effect of the magnetic core.
[0029] Among them Figure 5-6 As shown, the lower surfaces of the horizontal sections of the two brackets 603 are integrally formed with second sliding parts 609; the upper surfaces of the two first racks 604 are provided with second sliding grooves 610 along the length direction; the two second sliding parts 609 are respectively slidably connected in the two second sliding grooves 610. When in use, the movement stability of the first rack 604 can be effectively guaranteed by designing the two second sliding parts 609 to be respectively slidably connected in the two second sliding grooves 610.
[0030] Among them Figure 4-5As shown, the upper edge of the push plate 4 is horizontally welded with a second protrusion 403; the lower surfaces of the two second protrusions 403 are vertically connected with a tension spring 8; the lower ends of the two tension springs 8 are respectively fixed on the two first sliding parts 501. When in use, after the gear 602 is disengaged from the second rack 608, the tension spring 8 presses the first sliding part 501 downward, which can ensure the limiting effect of the U-shaped frame 5 on the magnetic core.
[0031] The preferred embodiments of the utility model disclosed above are only used to help explain the utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the utility model to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the utility model, so that technicians in the relevant technical field can well understand and use the utility model. The utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A magnetic core processing pushing mechanism, comprising a horizontally arranged support plate (1); characterized in that: A mounting plate (2) is vertically fixed on one side of the support plate (1); a cylinder (3) is horizontally fixed on a side of the mounting plate (2) away from the support plate (1); the output end of the cylinder (3) passes through the mounting plate (2) and is vertically fixed with a push plate (4) parallel to the mounting plate (2); first sliding grooves (401) are vertically opened on opposite sides of the push plate (4); A U-shaped frame (5) is horizontally arranged on one side of the push plate (4) away from the mounting plate (2); both ends of the U-shaped frame (5) have a first sliding portion (501); the two first sliding portions (501) are respectively slidably connected to the two first sliding grooves (401); a magnetic core accommodating space is formed between the U-shaped frame (5) and the push plate (4); a lifting component (6) connected to the U-shaped frame (5) is installed on the push plate (4); the lifting component (6) is used to drive the U-shaped frame (5) to move up and down.
2. A magnetic core processing pushing mechanism according to claim 1, characterized in that: A buffer pad (7) is horizontally embedded in the upper surface of the support plate (1); the buffer pad (7) is used to receive the magnetic core that falls on the support plate (1).
3. A magnetic core processing pushing mechanism according to claim 1 or 2, characterized in that: The first protrusions (402) are fixed to the opposite sides of the push plate (4); the two first protrusions (402) are arranged on the opposite outer sides of the two first slide grooves (401), and the two first protrusions (402) are arranged on the side of the push plate (4) away from the mounting plate (2); the lifting assembly (6) includes a pair of driving shafts (601) respectively rotatably connected to the two first protrusions (402); the two driving shafts (601) are coaxially arranged; the ends of the two driving shafts (601) that are separated are fixedly sleeved with gears (602); a bracket (603) with a "┐"-shaped structure is arranged on one side of the two gears (602); the vertical sections of the two brackets (603) They are respectively fixed on the two first protrusions (402); the horizontal sections of the two brackets (603) are horizontally slidably connected with the first racks (604); the two first racks (604) are respectively meshed with the upper parts of the two gears (602); the sides of the two first racks (604) close to the cylinder (3) are rotatably connected with a rotating shaft (605) parallel to the driving shaft (601); a transmission rod (606) is radially fixed on the two rotating shafts (605); the ends of the two transmission rods (606) away from the rotating shaft (605) are rotatably connected with a push-pull bar (607); the two push-pull bars (607) are respectively vertically fixed on the two first sliding parts (501).
4. A magnetic core processing pushing mechanism according to claim 3, characterized in that: The lower parts of the two gears (602) are horizontally meshed with second racks (608); the two second racks (608) are horizontally fixed on the upper surface of the support plate (1), and the two second racks (608) are arranged on a side of the support plate (1) away from the mounting plate (2).
5. A magnetic core processing pushing mechanism according to claim 3, characterized in that: The lower surfaces of the horizontal sections of the two brackets (603) are each provided with a second sliding portion (609); the upper surfaces of the two first racks (604) are each provided with a second sliding groove (610) along the length direction; and the two second sliding portions (609) are respectively slidably connected in the two second sliding grooves (610).
6. A magnetic core processing pushing mechanism according to claim 4 or 5, characterized in that: The upper edge of the push plate (4) is horizontally fixed with a second protrusion (403); the lower surfaces of the two second protrusions (403) are vertically connected with a tensioning spring (8); the lower ends of the two tensioning springs (8) are respectively fixed on the two first sliding parts (501).
Citation Information
Patent Citations
Magnetic core machining pushing mechanism
CN217318689U