CN216613029U - Automatic magnetic steel feeding device - Google Patents
Automatic magnetic steel feeding device Download PDFInfo
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- CN216613029U CN216613029U CN202122878987.5U CN202122878987U CN216613029U CN 216613029 U CN216613029 U CN 216613029U CN 202122878987 U CN202122878987 U CN 202122878987U CN 216613029 U CN216613029 U CN 216613029U
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- 229910000831 Steel Inorganic materials 0.000 title claims abstract description 83
- 239000010959 steel Substances 0.000 title claims abstract description 83
- 230000007246 mechanism Effects 0.000 claims abstract description 66
- 238000011084 recovery Methods 0.000 claims abstract description 18
- 239000000463 material Substances 0.000 claims abstract description 17
- 238000007885 magnetic separation Methods 0.000 claims abstract description 11
- 230000005389 magnetism Effects 0.000 claims description 23
- 238000001125 extrusion Methods 0.000 claims description 2
- 238000000926 separation method Methods 0.000 claims 1
- 230000001360 synchronised effect Effects 0.000 abstract description 3
- 238000010586 diagram Methods 0.000 description 3
- 238000000034 method Methods 0.000 description 3
- 238000004519 manufacturing process Methods 0.000 description 2
- 238000010923 batch production Methods 0.000 description 1
- 230000009286 beneficial effect Effects 0.000 description 1
- 230000000903 blocking effect Effects 0.000 description 1
- 230000007547 defect Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
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Abstract
The utility model discloses an automatic magnetic steel feeding device which comprises a rack, a feeding through groove, a non-return mechanism and an ejecting mechanism, wherein the feeding through groove is arranged on a workbench of the rack, a discharge hole is formed in the output end of the feeding through groove, the non-return mechanism is arranged above the discharge hole, an ejector rod of the ejecting mechanism is driven by an air cylinder to vertically reciprocate in the discharge hole, a material hooking part is arranged on the first side wall of the ejector rod, and the non-return mechanism is provided with an elastic opening coaxial with the ejector rod. According to the utility model, the discharge hole of the feeding through groove, the non-return mechanism and the ejector rod are coaxially arranged, so that the ejector rod can eject the magnetic steel by moving upwards, the magnetic separation sheet is removed by moving downwards, the continuous feeding of the magnetic steel and the synchronous recovery of the magnetic separation sheet can be quickly realized by the vertical reciprocating motion of the ejector rod, and the efficiency and the automation of the magnetic steel feeding are greatly improved.
Description
Technical Field
The utility model relates to the technical field of magnetic steel feeding devices, in particular to an automatic magnetic steel feeding device.
Background
The magnetic steel is one of important parts required by the motor rotor, and in the process of assembling the motor rotor, the feeding link of the magnetic steel is a time-consuming process in the assembling process of the motor rotor. At present, the feed of magnet steel is magnet steel and magnetism isolating piece interval emission in proper order, adopts cylinder ejector pin ejecting magnet steel and magnetism isolating piece in proper order usually, uses rotary clamping feeding agencies to press from both sides in proper order and gets, judges through the sensor and distinguishes magnet steel and magnetism isolating piece. If the magnetic steel is adopted, the magnetic steel inserting mechanism takes materials to complete the action of inserting the magnetic steel; if the magnetic separation sheet is used, the clamping mechanism is loosened, and the magnetic separation sheet enters the recovery channel. Although the mode replaces manual work, the repeated actions of the magnetic steel clamping link are more, so that the equipment efficiency is still lower, the assembly of subsequent products is influenced, and the large-batch production cannot be adapted.
Therefore, if the feeding efficiency of the magnetic steel is improved, the problem which needs to be solved at present is urgently needed.
SUMMERY OF THE UTILITY MODEL
The utility model aims to overcome the defects in the prior art and provides an automatic magnetic steel feeding device.
The purpose of the utility model is realized by the following technical scheme:
the automatic magnetic steel feeding device comprises a rack, a feeding through groove, a non-return mechanism and a material ejecting mechanism, wherein the feeding through groove is arranged on a workbench of the rack and is used for placing magnetic steel and magnetic isolating sheets which are arranged at intervals; the feeding device comprises a feeding through groove, a non-return mechanism, a magnetic steel, an ejector rod, a hook part, a magnetic steel, a magnetic isolating sheet and a magnetic steel, wherein the output end of the feeding through groove is provided with a discharge hole, the non-return mechanism is arranged above the discharge hole, the ejector mechanism is provided with the ejector rod positioned in the discharge hole, the first side wall of the ejector rod, which is close to the output end, is provided with the hook part, the non-return mechanism is provided with an elastic opening coaxial with the ejector rod, the width of the magnetic steel is greater than the minimum width of the elastic opening and smaller than the maximum width of the elastic opening, the top width of the ejector rod is greater than the minimum width of the elastic opening and smaller than the width of the magnetic steel, in the first stage, the ejector rod moves upwards to jack the magnetic steel, the magnetic steel is separated from the magnetic isolating sheet, the ejector rod passes through the elastic opening, and the outer side wall of the ejector rod is abutted to the elastic opening; and in the second stage, the ejector rod moves downwards and is separated from the elastic opening, the elastic opening contracts to separate the magnetic steel from the ejector rod, meanwhile, the hooking part is abutted against the magnetism isolating sheet and drives the magnetism isolating sheet to move downwards, and the ejector rod is driven by a cylinder at the bottom of the ejector rod to vertically reciprocate so as to realize the circulation of the first stage and the second stage.
Preferably, the non-return mechanism comprises a shell, a first elastic mechanism and a second elastic mechanism, a notch matched with the magnetic steel is formed in the axis of the shell, the first elastic mechanism and the second elastic mechanism are symmetrically arranged on two sides of the shell respectively, a bottom opening between adjacent inner side faces of the first elastic mechanism and the second elastic mechanism is larger than a top opening of the bottom opening, a splayed channel coaxial with the ejector rod is formed, and the top opening is an elastic opening.
Preferably, the first elastic mechanism and the second elastic mechanism are composed of a plunger and a shifting piece, the bottom of the shifting piece is connected with a positioning rod in the shell through a pivot, the plunger is horizontally arranged on the outer side of the shifting piece, the elastic front end of the plunger is abutted to the top of the outer side face of the shifting piece, and the elastic opening is formed in the top of the inner side face of the two shifting pieces through extrusion.
Preferably, the top of the inner side surface of the poking sheet is provided with a guide inclined surface.
Preferably, be provided with the slide rail on the workstation, the slip is provided with the mounting panel on the slide rail, the inboard edge of mounting panel interval in proper order is provided with a set of non return mechanism, the bottom of mounting panel is connected with the motor that drives its removal, every non return mechanism's notch passes through the removal of mounting panel with the axis of ejector pin is aimed at.
Preferably, the hook part is a boss protruding out of the first side wall, and the bottom of the boss is a plane.
Preferably, the material hooking part is a groove which is recessed in the first side wall, the width of the groove is matched with the magnetic shielding sheet, the top of the groove is a plane, and the bottom of the groove is an inclined plane which extends downwards in an inclined mode.
Preferably, a falling channel allowing the magnetic separation sheet to pass through is arranged between the first side wall of the ejector rod and the output end, and the width of the falling channel is smaller than the thickness of the magnetic steel.
Preferably, a recovery channel is arranged below the falling channel, the recovery channel extends obliquely downwards, the top of the recovery channel is provided with a notch allowing the mandril to pass through, and two sides of the recovery channel are provided with retaining walls.
Preferably, a guide block used for limiting the moving direction of the ejector rod is arranged above the discharge port, a convex rib is arranged on the back face of the ejector rod, and a through hole matched with the ejector rod is formed in the guide block.
The utility model has the following beneficial effects:
1. the discharge hole of the feeding through groove, the non-return mechanism and the ejector rod are coaxially arranged, so that the ejector rod can eject the magnetic steel through upward movement, the magnetism isolating sheet is removed through downward movement, the continuous feeding of the magnetic steel and the synchronous recovery of the magnetism isolating sheet can be quickly realized through the vertical reciprocating motion of the ejector rod, and the efficiency and the automation of the magnetic steel feeding are greatly improved;
2. the non-return mechanism enables the top opening of the shifting piece to have telescopic elasticity through the matching of the shifting piece and the plunger, so that after the ejector rod penetrates through the lower part, the top opening can be contracted to separate the magnetic steel and the ejector rod, the feeding of the magnetic steel is completed, the structure is greatly optimized, and the manufacturing cost is saved;
3. the movable mounting plate is arranged to simultaneously arrange the two non-return mechanisms for feeding the magnetic steel, so that double-row feeding is realized, single-clamping jaw feeding and double-clamping jaw feeding can be compatible, feeding requirements under different conditions are met, and using flexibility is improved;
4. a falling channel and a recovery channel are arranged below the discharge port, so that the removed magnetic separation sheets can be recovered in time.
Drawings
The technical scheme of the utility model is further explained by combining the accompanying drawings as follows:
FIG. 1: a schematic diagram of an embodiment of the utility model;
FIG. 2: a cross-sectional view of an embodiment of the utility model;
FIG. 3: an enlarged view of portion a in fig. 2;
FIG. 4: a partial schematic of an embodiment of the utility model;
FIG. 5: a partial schematic of an embodiment of the utility model;
FIG. 6: a schematic diagram of an embodiment of the present invention at a first stage;
FIG. 7: a schematic diagram of an embodiment of the present invention at a first stage;
FIG. 8: the embodiment of the utility model is schematically shown in the second stage;
FIG. 9: a partial schematic of an embodiment of the utility model.
Detailed Description
The present invention will be described in detail below with reference to specific embodiments shown in the drawings. These embodiments are not intended to limit the present invention, and structural, methodical, or functional changes that may be made by one of ordinary skill in the art in light of these embodiments are intended to be within the scope of the present invention.
In the description of the schemes, it should be noted that the terms "center", "upper", "lower", "left", "right", "front", "rear", "vertical", "horizontal", "inner", "outer", etc., indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, and are only for convenience of description and simplicity of description, but do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and thus, should not be construed as limiting the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance. In the description of the embodiment, the operator is used as a reference, and the direction close to the operator is a proximal end, and the direction away from the operator is a distal end.
As shown in fig. 1 to 9, the utility model discloses an automatic magnetic steel feeding device, which comprises a frame 1, a feeding through groove 2, a non-return mechanism and a material ejecting mechanism, wherein the feeding through groove 2 is arranged on a workbench 101 of the frame 1 and is used for placing magnetic steels 5 and magnetic separation sheets 6 which are arranged at intervals; the discharge port 202 is arranged at the output end 201 of the feeding through groove 2, the non-return mechanism is arranged above the discharge port 202, the ejection mechanism is provided with an ejector rod 4 positioned in the discharge port 202, a material hooking part is arranged on a first side wall 403 of the ejector rod 4 close to the output end 201, the non-return mechanism is provided with an elastic opening coaxial with the ejector rod 4, the width of the magnetic steel 5 is greater than the minimum width of the elastic opening and smaller than the maximum width of the elastic opening, the top width of the ejector rod 4 is greater than the minimum width of the elastic opening and smaller than the width of the magnetic steel 5, the ejector rod 4 moves upwards to jack up the magnetic steel 5, the magnetic steel 5 is separated from the magnetic separation sheet 6, the ejector rod 4 penetrates through the elastic opening, and the outer side wall of the ejector rod is abutted to the elastic opening; and in the second stage, the ejector rod 4 moves downwards and is separated from the elastic opening, the elastic opening contracts to separate the magnetic steel 5 from the ejector rod 4, meanwhile, the hooking part is abutted against the magnetism isolating sheet 6 and drives the magnetism isolating sheet 6 to move downwards and separate from the next magnetic steel 5, and the ejector rod 4 is driven by a cylinder 401 at the bottom of the ejector rod to vertically reciprocate so as to realize the circulation of the first stage and the second stage.
According to the utility model, the discharge hole 202 of the feeding through groove 2, the non-return mechanism and the ejector rod 4 are coaxially arranged, so that the ejector rod 4 can eject the magnetic steel 5 by moving upwards, the magnetism isolating sheet 6 is removed by moving downwards, the continuous feeding of the magnetic steel 5 and the synchronous recovery of the magnetism isolating sheet 6 can be rapidly realized by the vertical reciprocating motion of the ejector rod 4, and the efficiency and the automation of the magnetic steel 5 feeding are greatly improved.
A guide block 9 for limiting the moving direction of the ejector rod 4 is arranged above the discharge port 202, the guide block 9 is positioned between the discharge port 202 and the non-return mechanism, a convex rib 405 is arranged on the back surface of the ejector rod 4, and a through hole matched with the ejector rod 4 is arranged in the guide block 9.
As shown in fig. 5, the non-return mechanism includes a housing 3, a first elastic mechanism and a second elastic mechanism, a notch 301 matched with the magnetic steel 5 is arranged at the axis of the housing 3, the first elastic mechanism and the second elastic mechanism are respectively and symmetrically arranged at two sides of the housing 3, a bottom opening between adjacent inner side faces of the first elastic mechanism and the second elastic mechanism is larger than a top opening thereof, a splayed channel coaxial with the ejector rod 4 is formed, and the top opening is the elastic opening.
Specifically, the first elastic mechanism and the second elastic mechanism are composed of a plunger 302 and a shifting piece 303, the bottom of the shifting piece 303 is pivotally connected with a positioning rod 304 in the shell 3, the plunger 302 is horizontally arranged on the outer side of the shifting piece 303, an elastic front end 305 of the plunger 302 is abutted to the top of the outer side face of the shifting piece 303, and the tops of the inner side faces of the two shifting pieces 303 form the elastic opening by extruding the elastic front end 305. As shown in fig. 6 and 7, in the first stage, the top rod 4 moves upwards to pass through the top opening of the pick 303, at this time, the magnetic steel 5 passes through the top opening and is located above the top opening, the pick 303 is pressed outwards to press the elastic front end 305 and abuts against the outer side wall of the top rod 4, at this time, the width of the top opening is equal to the width of the top rod 4; as shown in fig. 8, in the second stage, because the width of the magnetic steel 4 is greater than that of the top rod 4, when the top rod 4 moves downwards, the magnetic steel 5 cannot pass through the top opening and is kept above the top opening, the top rod 4 is separated from the magnetic steel 5, and the magnetic steel 5 is fed.
The non-return mechanism passes through the cooperation of plectrum 303 and plunger 302 for plectrum 303 open-top has flexible elasticity, makes ejector pin 4 pass the back that moves down, and open-top can separate magnet steel and ejector pin through the shrink, accomplishes the material loading of magnet steel, has greatly optimized the structure, has practiced thrift manufacturing cost. In other possible embodiments, the plunger 302 may be replaced by other resilient elastic members, such as a spring.
In order to facilitate the upward movement and ejection of the ejector rod 4, the top of the inner side surface of the poking piece 303 is provided with a guide inclined surface 306 so as to facilitate the magnetic steel 5 to eject the poking piece 303.
As shown in fig. 4, a slide rail 7 is arranged on the workbench 101, a mounting plate 701 is arranged on the slide rail 7 in a sliding manner, a set of check mechanisms are arranged on the inner side edge of the mounting plate 701 at intervals in sequence, a motor 702 for driving the mounting plate 701 to move is connected to the bottom of the mounting plate 701, and the notch 301 of each check mechanism is aligned with the axis of the ejector rod 4 through the movement of the mounting plate 701. In the illustrated embodiment, the mounting plate 701 is provided with two non-return mechanisms, and the two non-return mechanisms are switched through sliding, so that double-row feeding is realized, the scheme can be compatible with single-clamping-jaw material taking and double-clamping-jaw material taking, feeding requirements under different conditions are met, and use flexibility is improved.
In the present embodiment, as shown in fig. 2 and 3, the material hooking portion is a boss 402 protruding from the first side wall 403, and the bottom of the boss 402 is a plane. An abutting surface which can abut against the magnetic shield piece 6 is formed between the bottom of the boss 402 and the first side wall 403, so that the magnetic shield piece 6 is driven to move downwards. The outer sidewall 404 of the boss 402 is preferably a slope extending downward from the first sidewall 403, and in other possible embodiments, the outer sidewall 404 of the boss 402 may also be a vertical plane. And are not limited herein.
In another possible embodiment, the hooking portion is a groove (not shown) recessed in the first side wall 403, the width of the groove is adapted to the magnetic shielding sheet 6, and the surface area of the magnetic shielding sheet 6 is smaller than that of the magnetic steel 5, so that only the magnetic shielding sheet 6 can be embedded into the groove to avoid the embedding of the magnetic steel 5. The top of the groove is a plane and is abutted against the top of the magnetism isolating sheet 6, and the bottom of the groove is an inclined plane extending downwards in an inclined manner so that the magnetism isolating sheet 6 falls down along the inclined plane at the bottom of the groove.
Further, a falling channel 801 is arranged between the first side wall 403 of the top rod 4 and the output end 201, and the magnetic separation sheet 6 can pass through the falling channel 801, wherein the width of the falling channel 801 is smaller than the thickness of the magnetic steel 5, so that the magnetic steel 5 is prevented from falling.
A recovery channel 8 is arranged below the falling channel 801, the recovery channel 8 extends downwards in an inclined manner to enable the magnetism isolating sheet 6 to slide away from the ejector rod 4 to a specified position, so that the magnetism isolating sheet can fall off without affecting the movement of the ejector rod 4, a notch 802 capable of enabling the ejector rod 4 to pass through is arranged at the top of the recovery channel 8 to reduce the gap between the magnetism isolating sheet and the ejector rod 4 as much as possible, and blocking walls 803 are arranged on two sides of the recovery channel 8 to ensure that the magnetism isolating sheet 6 falls into the recovery channel 8, so that the magnetism isolating sheet 6 can be recovered in time.
In addition, one side top that the groove 2 was led to in the material loading still is provided with and is used for spacing limiting plate 203, restricts magnet steel 5 is in the height that the groove 2 was led to in the material loading, the output that the groove 2 was led to in the material loading is equipped with the drive magnet steel 5, the actuating mechanism (not shown in the figure) of the antedisplacement of magnetism isolating sheet 6, and this is prior art, is not the key point of this scheme, and here does not have the repeated description.
It should be understood that although the present description refers to embodiments, not every embodiment contains only a single technical solution, and such description is for clarity only, and those skilled in the art should make the description as a whole, and the technical solutions in the embodiments can also be combined appropriately to form other embodiments understood by those skilled in the art.
The above-listed detailed description is only a specific description of a possible embodiment of the present invention, and they are not intended to limit the scope of the present invention, and equivalent embodiments or modifications made without departing from the technical spirit of the present invention should be included in the scope of the present invention.
Claims (10)
1. Automatic change magnet steel loading attachment, its characterized in that: the magnetic steel separation device comprises a rack (1), a feeding through groove (2), a non-return mechanism and a material ejecting mechanism, wherein the feeding through groove (2) is arranged on a workbench (101) of the rack (1) and is used for placing magnetic steels (5) and magnetic separation sheets (6) which are arranged at intervals; the discharge hole (202) is arranged at the output end (201) of the feeding through groove (2), the non-return mechanism is arranged above the discharge hole (202), the ejection mechanism is provided with an ejector rod (4) positioned in the discharge hole (202), a material hooking part is arranged on a first side wall (403) of the ejector rod (4) close to the output end (201), the non-return mechanism is provided with an elastic opening coaxial with the ejector rod (4), the width of the magnetic steel (5) is greater than the minimum width of the elastic opening and smaller than the maximum width of the elastic opening, the top width of the ejector rod (4) is greater than the minimum width of the elastic opening and smaller than the width of the magnetic steel (5),
in the first stage, the ejector rod (4) moves upwards to jack up the magnetic steel (5), the magnetic steel (5) is separated from the magnetic separation sheet (6), the ejector rod (4) penetrates through the elastic opening, and the outer side wall of the ejector rod is abutted to the elastic opening; and in the second stage, the ejector rod (4) moves downwards and is separated from the elastic opening, the elastic opening contracts, the magnetic steel (5) is positioned at the top of the elastic opening, the hooking part is abutted with the magnetism isolating sheet (6) and drives the magnetism isolating sheet (6) to move downwards, and the ejector rod (4) is driven by a cylinder (401) at the bottom of the ejector rod to vertically reciprocate so as to realize the circulation of the first stage and the second stage.
2. The automated magnetic steel feeding device according to claim 1, wherein: the non-return mechanism comprises a shell (3), a first elastic mechanism and a second elastic mechanism, wherein the axis of the shell (3) is provided with a notch (301) matched with the magnetic steel (5), the first elastic mechanism and the second elastic mechanism are symmetrically arranged on two sides of the shell (3) respectively, a bottom opening between adjacent inner side faces of the first elastic mechanism and the second elastic mechanism is larger than a top opening of the bottom opening, a splayed channel coaxial with the ejector rod (4) is formed, and the top opening is an elastic opening.
3. The automated magnetic steel feeding device according to claim 2, characterized in that: first elasticity mechanism and second elasticity mechanism constitute by plunger (302) and plectrum (303), the bottom of plectrum (303) with locating lever (304) pivot connection in casing (3), plunger (302) level set up in the outside of plectrum (303), just elasticity front end (305) of plunger (302) with the top butt of the lateral surface of plectrum (303), two the medial surface top of plectrum (303) is through the extrusion elasticity front end (305) forms the elasticity opening.
4. The automated magnetic steel feeding device according to claim 3, characterized in that: the top of the inner side surface of the poking sheet (303) is provided with a guide inclined surface (306).
5. The automated magnetic steel feeding device according to claim 4, wherein: be provided with slide rail (7) on workstation (101), the slip is provided with mounting panel (701) on slide rail (7), the inboard edge of mounting panel (701) interval sets gradually a set of non return mechanism, the bottom of mounting panel (701) is connected with motor (702) that drive its removal, every non return mechanism's notch (301) pass through the removal of mounting panel (701) with the axis of ejector pin (4) is aimed at.
6. The automated magnetic steel feeding device according to claim 5, wherein: the material hooking part is a boss (402) protruding out of the first side wall (403), and the bottom of the boss (402) is a plane.
7. The automated magnetic steel feeding device according to claim 5, wherein: the material hooking part is a groove which is inwards concave in the first side wall (403), the width of the groove is matched with the magnetism isolating sheet (6), the top of the groove is a plane, and the bottom of the groove is an inclined plane which extends downwards in an inclined mode.
8. The automated magnetic steel feeding device according to claim 6 or 7, characterized in that: a falling channel (801) allowing the magnetism isolating sheet (6) to pass through is arranged between the first side wall (403) of the ejector rod (4) and the output end (201), and the width of the falling channel (801) is smaller than the thickness of the magnetic steel (5).
9. The automated magnetic steel feeding device of claim 8, wherein: a recovery channel (8) is arranged below the falling channel (801), the recovery channel (8) extends obliquely downwards, the top of the recovery channel is provided with a notch (802) through which the mandril (4) can pass, and two sides of the recovery channel are provided with retaining walls (803).
10. The automated magnetic steel feeding device according to claim 1, wherein: a guide block (9) used for limiting the moving direction of the ejector rod (4) is arranged above the discharge hole (202), a convex rib (405) is arranged on the back surface of the ejector rod (4), and a through hole matched with the ejector rod (4) is formed in the guide block (9).
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202122878987.5U CN216613029U (en) | 2021-11-23 | 2021-11-23 | Automatic magnetic steel feeding device |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202122878987.5U CN216613029U (en) | 2021-11-23 | 2021-11-23 | Automatic magnetic steel feeding device |
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| Publication Number | Publication Date |
|---|---|
| CN216613029U true CN216613029U (en) | 2022-05-27 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202122878987.5U Active CN216613029U (en) | 2021-11-23 | 2021-11-23 | Automatic magnetic steel feeding device |
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| CN (1) | CN216613029U (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116946727A (en) * | 2023-09-21 | 2023-10-27 | 中科摩通(常州)智能制造股份有限公司 | Automatic magnetic steel conveying equipment for new energy motor and working method of automatic magnetic steel conveying equipment |
-
2021
- 2021-11-23 CN CN202122878987.5U patent/CN216613029U/en active Active
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116946727A (en) * | 2023-09-21 | 2023-10-27 | 中科摩通(常州)智能制造股份有限公司 | Automatic magnetic steel conveying equipment for new energy motor and working method of automatic magnetic steel conveying equipment |
| CN116946727B (en) * | 2023-09-21 | 2024-01-02 | 中科摩通(常州)智能制造股份有限公司 | Automatic magnetic steel conveying equipment for new energy motor and working method of automatic magnetic steel conveying equipment |
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