Anti-deviation conveying mechanism

By designing an anti-deviation conveying mechanism and using electromagnets and limit components to fix the overlapping copper clad laminates, the problem of misalignment of the copper clad laminates under inertia is solved, and stable conveying and automatic limiting of the copper clad laminates are achieved.

CN223328451UActive Publication Date: 2025-09-12JIANG SU YAO HONG ELECTRONICS CO LTD
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Patent Information

Application Number
CN202422837346.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2025-09-12
Estimated Expiration
2034-11-21

AI Technical Summary

Technical Problem

The stacked copper clad laminates are prone to misalignment due to inertia, and existing technology requires manual sorting, resulting in low efficiency.

Method used

An anti-deviation conveying mechanism is designed, which uses an electromagnet to attract the slider, combined with components such as rectangular rods, vertical tubes, pressure plates and limit screws to achieve lateral limitation and fixation of the laminated copper clad laminates to prevent inertial dislocation.

Benefits of technology

It effectively prevents the copper clad laminate from being dislocated due to inertia, improves the stability and automation of the conveying process, and reduces manual intervention.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an anti-deviation conveying mechanism which comprises two symmetrically-arranged cross beams, a plurality of electric rollers are rotationally installed between the two cross beams, T-shaped grooves are formed in the upper surfaces of the cross beams in the length direction of the cross beams, and sliding blocks are installed in the T-shaped grooves in a sliding mode. A plurality of mounting openings are uniformly formed in the bottom in the T-shaped groove, electromagnets attracted to the sliding block are mounted in the mounting openings, a stand column is mounted in the middle of the upper surface of the sliding block, a vertical pipe is mounted at the upper end of the stand column through an adjusting part, and a vertical rod is inserted in the vertical pipe; a pressing plate used for pressing a copper-clad plate is installed at the upper end of the vertical rod, two L-shaped plates are installed on one side face of the pressing plate, the vertical portions of the L-shaped plates are sleeved with rectangular pipes, and limiting screws used for limiting the relative positions of the L-shaped plates and the rectangular pipes are in threaded connection with the upper portions of one side faces of the rectangular pipes. The copper-clad plate has the following beneficial effect that the copper-clad plates which are overlapped together are prevented from being misplaced under the action of inertia.
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Description

Technical Field

[0001] The utility model relates to an anti-deviation conveying mechanism, belonging to the field of copper clad plate processing. Background Art

[0002] During the transportation process of copper clad laminates, multiple copper clad laminates are usually stacked together and then transported using a conveyor line formed by multiple electric rollers. When the stacked copper clad laminates are transported to the required workstation, the electric rollers stop rotating. At this time, the stacked copper clad laminates are prone to dislocation and offset due to inertia, and need to be manually reorganized. Therefore, it is necessary to design an anti-deviation conveying mechanism to prevent the stacked copper clad laminates from being dislocated due to inertia. Utility Model Content

[0003] In view of the shortcomings of the prior art, the purpose of the present invention is to provide an anti-deviation conveying mechanism to solve the problems raised in the above background technology. The present invention prevents the stacked copper clad laminates from being dislocated under the action of inertia.

[0004] In order to achieve the above-mentioned object, the present invention is realized through the following technical scheme: an anti-deviation conveying mechanism, comprising two symmetrically arranged crossbeams, a plurality of electric rollers are rotatably installed between the two crossbeams, a T-shaped slot arranged along the length direction of the crossbeam is provided on the upper surface of the crossbeam, a slider is slidably installed in the T-shaped slot, a plurality of evenly arranged mounting openings are provided at the bottom of the T-shaped slot, an electromagnet adsorbed by the slider is installed in the mounting opening, a column is installed at the middle position of the upper surface of the slider, the upper end of the column extends to the outside of the T-shaped slot, a vertical tube is installed at the upper end of the column through an adjusting member, the cross section of the vertical tube is rectangular, a vertical rod is inserted in the vertical tube, the cross section of the vertical rod is rectangular, a pressure plate for pressing the copper clad plate is installed on the upper end of the vertical rod, two L-shaped plates are installed on one side of the pressure plate, the vertical portion of the L-shaped plate is sleeved with a rectangular tube that fits the stacked copper clad plates, and a limit screw for limiting the relative position of the L-shaped plate and the rectangular tube is threadedly connected at the upper position of one side surface of the rectangular tube.

[0005] Furthermore, the adjusting member includes a rectangular opening, a rectangular opening is opened at the upper end of the column, a rectangular rod is inserted into the rectangular opening, one end of the rectangular rod extends to the upper side of the electric drum and the rectangular rod is connected and fixed to the lower end of the vertical pipe, and a first screw hole communicating with the rectangular opening is opened in the middle position of the upper surface of the column, and a positioning screw for limiting the relative position of the rectangular rod and the column is threadedly connected in the first screw hole.

[0006] Furthermore, a strip opening is provided on one side of the upper surface of the horizontal portion of the L-shaped plate close to its vertical portion, and a strip in contact with the stacked copper-clad plates is inserted into the strip opening, and the thickness of the strip is the same as the thickness of one side wall of the rectangular tube.

[0007] Furthermore, a second screw hole is provided at an upper position of one side surface of the rectangular tube, and the limiting screw is threadedly connected in the second screw hole.

[0008] Furthermore, a handle is installed on the outer surface of the upper end of the vertical rod, and the handle is a U-shaped structure.

[0009] Furthermore, both ends of the beam are connected and fixed with ear plates, and a plurality of fixing holes for inserting bolts are evenly opened on one side of the ear plates.

[0010] Beneficial effects of the utility model:

[0011] 1. Insert the slider into the T-slot. At this time, the slider slides in contact with the inside of the T-slot. After the electromagnet circuit is turned on, the electromagnet and the slider are attracted to each other to prevent the slider from sliding along the T-slot at will.

[0012] 2. After multiple copper clad laminates are stacked and stored on a conveyor line formed by multiple electric rollers, the position of the rectangular rod is adjusted along the rectangular opening according to the position of the copper clad laminates so that the two vertical tubes are in contact with the side surfaces of the stacked copper clad laminates. At this time, the two vertical tubes are respectively on both sides of the stacked copper clad laminates. The relative position of the rectangular rod and the column is restricted by the positioning screws to limit the side position of the stacked copper clad laminates.

[0013] 3. Insert the vertical rod into the vertical tube. At this time, the pressure plate is pressed on the upper side of the stacked copper clad laminates, so that the structure formed by the L-shaped plate and the rectangular tube is set on the side of the forward direction of the copper clad laminates, and one side of the rectangular tube is in contact with the copper clad laminates. At this time, when the copper clad laminates move under the drive of the electric roller, the rectangular tubes, L-shaped plates, pressure plates, etc. also move accordingly, and the slider slides along the T-slot to make the vertical tubes, pressure plates, rectangular tubes and other components move together with the copper clad laminates. When the electric roller stops working, the electromagnet circuit is turned on, so that under the action of the adsorption force of the electromagnet and the slider, the positions of the vertical tubes, pressure plates, rectangular tubes and other components are restricted, thereby preventing the stacked copper clad laminates from being dislocated under the action of inertia.

[0014] 4. Adjust the length of the L-shaped plate inserted in the rectangular tube, and use the limit screw to limit the relative position of the L-shaped plate and the rectangular tube. At this time, the length of the vertical rod inserted in the vertical tube changes, realizing the limit and anti-drift of copper clad plates with different overlapping thicknesses, thereby expanding the scope of application.

[0015] 5. Insert the strips in the strip opening so that the lower end of the strips contacts the upper end of the rectangular tube, so that the strips fill the gap between the copper clad plate and the vertical part of the L-shaped plate, improving the effect of limiting the copper clad plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Other features, objects and advantages of the present invention will become more apparent from the detailed description of the non-limiting embodiments with reference to the following drawings:

[0017] Figure 1 This is a structural diagram of an anti-deviating conveying mechanism of the utility model;

[0018] Figure 2 for Figure 1 Enlarged view of point A in the middle;

[0019] Figure 3 This is a schematic diagram of the assembly of a slider, a column, a rectangular rod and a vertical pipe in an anti-deviation conveying mechanism of the utility model;

[0020] Figure 4 This is a schematic diagram of the assembly of a column and a slider in an anti-deviating conveying mechanism of the utility model;

[0021] Figure 5 This is a schematic diagram of the assembly of a rectangular tube, an L-shaped plate, a pressure plate and a vertical rod in an anti-deviation conveying mechanism of the utility model;

[0022] Figure 6 This is a cross-sectional view of a crossbeam in an anti-deviating conveying mechanism of the present invention;

[0023] In the figure: 1-crossbeam, 2-T-slot, 3-electric roller, 4-ear plate, 5-rectangular tube, 6-limit screw, 7-L-shaped plate, 8-slat, 9-pressing plate, 10-vertical rod, 11-handle, 12-vertical tube, 13-positioning screw, 14-rectangular rod, 15-column, 16-slider, 17-electromagnet, 18-first screw hole, 19-rectangular opening, 20-strip opening, 21-second screw hole. DETAILED DESCRIPTION

[0024] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0025] See also Figure 1 and Figure 2 The utility model provides a technical solution: an anti-deviation conveying mechanism, comprising two symmetrically arranged beams 1, a plurality of electric rollers 3 are rotatably installed between the two beams 1, both ends of the beam 1 are connected and fixed with ear plates 4, a plurality of fixing holes for inserting bolts are evenly opened on one side of the ear plates 4, and the ear plates 4 with fixing holes are installed at the ends of the beams 1 to facilitate the assembly of the two beams 1 with each other.

[0026] See Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 6A T-slot 2 is provided on the upper surface of the beam 1 along the length direction of the beam 1, and a slider 16 is slidably installed in the T-slot 2. A plurality of evenly arranged mounting openings are provided at the bottom of the T-slot 2, and an electromagnet 17 adsorbed by the slider 16 is installed in the mounting opening, so that the slider 16 is inserted into the T-slot 2. At this time, the slider 16 is in sliding contact with the inside of the T-slot 2. After the circuit of the electromagnet 17 is turned on, the electromagnet 17 is adsorbed on the slider 16 to prevent the slider 16 from sliding along the T-slot 2 at will.

[0027] See Figures 1-4 , a column 15 is installed in the middle position of the upper surface of the slider 16, the upper end of the column 15 extends to the outside of the T-slot 2, a rectangular opening 19 is opened at the upper end of the column 15, a rectangular rod 14 is inserted into the rectangular opening 19, one end of the rectangular rod 14 extends to the upper side of the electric drum 3 and the rectangular rod 14 is connected and fixed to the lower end of the vertical pipe 12 with a rectangular cross section, a first screw hole 18 is opened in the middle position of the upper surface of the column 15 and communicates with the rectangular opening 19, and the first screw hole 18 is threadedly connected to limit the rectangular rod 14 and the column 1 After the multiple copper clad laminates are stacked on the conveyor line formed by the multiple motorized rollers 3, the positions of the rectangular rods 14 are adjusted along the rectangular openings 19 according to the positions of the copper clad laminates so that both vertical tubes 12 are in contact with the side surfaces of the stacked copper clad laminates. At this time, the two vertical tubes 12 are respectively located on both sides of the stacked copper clad laminates. The positioning screws 13 are used to limit the relative positions of the rectangular rods 14 and the uprights 15, thereby limiting the lateral position of the stacked copper clad laminates.

[0028] See Figure 1-Figure 5, a vertical rod 10 with a rectangular cross section is inserted in the vertical tube 12, and a U-shaped handle 11 is installed on the outer surface of the upper end of the vertical rod 10. A pressure plate 9 for pressing the copper clad plate is installed on the upper end of the vertical rod 10, and two L-shaped plates 7 are installed on one side of the pressure plate 9. The vertical part of the L-shaped plate 7 is sleeved with a rectangular tube 5 that fits the stacked copper clad plates. The second screw hole 21 opened at the upper position of one side of the rectangular tube 5 is threadedly connected with a limit screw 6 for limiting the relative position of the L-shaped plate 7 and the rectangular tube 5. The vertical rod 10 is inserted into the vertical tube 12. At this time, the pressure plate 9 is pressed on the upper side of the stacked copper clad plates, so that the structure formed by the L-shaped plate 7 and the rectangular tube 5 is arranged on the side of the forward direction of the copper clad plates, and one side of the rectangular tube 5 is in contact with the copper clad plates. At this time, the copper clad plates are on the electric roller 3 is driven to move, the rectangular tube 5, L-shaped plate 7, pressure plate 9 and the like also move accordingly, and the slider 16 slides along the T-slot 2, so that the vertical tube 12, pressure plate 9, rectangular tube 5 and other components move together with the copper clad laminate. When the electric roller 3 stops working, the circuit of the electromagnet 17 is turned on, so that under the action of the adsorption force of the electromagnet 17 and the slider 16, the positions of the vertical tube 12, pressure plate 9, rectangular tube 5 and other components are restricted, thereby preventing the copper clad laminates stacked together from being dislocated under the action of inertia, adjusting the length of the L-shaped plate 7 inserted in the rectangular tube 5, and using the limit screw 6 to limit the relative position of the L-shaped plate 7 and the rectangular tube 5. At this time, the length of the vertical rod 10 inserted in the vertical tube 12 changes, thereby realizing the limit and anti-deviating of copper clad laminates of different stacking thicknesses, thereby expanding the scope of application.

[0029] See Figure 1 and Figure 5 A strip opening 20 is provided on the upper surface of the horizontal portion of the L-shaped plate 7 near its vertical portion. A strip 8 is inserted into the strip opening 20 to fit the copper clad laminate stacked together. The thickness of the strip 8 is the same as the thickness of one side wall of the rectangular tube 5. The strip 8 is inserted into the strip opening 20 so that the lower end of the strip 8 contacts the upper end of the rectangular tube 5, thereby filling the gap between the copper clad laminate and the vertical portion of the L-shaped plate 7, thereby improving the effect of limiting the copper clad laminate.

[0030] Although this specification is described according to implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. An anti-deviating conveying mechanism, comprising two symmetrically arranged beams (1), characterized in that: A plurality of electric rollers (3) are rotatably mounted between the two beams (1); a T-shaped slot (2) arranged along the length direction of the beam (1) is provided on the upper surface of the beam (1); a slider (16) is slidably mounted in the T-shaped slot (2); a plurality of evenly arranged mounting openings are provided at the bottom of the T-shaped slot (2); an electromagnet (17) adsorbed by the slider (16) is mounted in the mounting opening; a column (15) is mounted in the middle of the upper surface of the slider (16); the upper end of the column (15) extends to the outside of the T-shaped slot (2); the upper end of the column (15) is adjusted by adjusting the upper end of the column (15). The component is installed with a vertical tube (12), the cross section of the vertical tube (12) is rectangular, a vertical rod (10) is inserted in the vertical tube (12), the cross section of the vertical rod (10) is rectangular, the upper end of the vertical rod (10) is installed with a pressure plate (9) for pressing the copper clad plate, one side of the pressure plate (9) is installed with two L-shaped plates (7), the vertical part of the L-shaped plate (7) is sleeved with a rectangular tube (5) that fits the copper clad plate stacked together, and a limit screw (6) for limiting the relative position of the L-shaped plate (7) and the rectangular tube (5) is threadedly connected at the upper position of one side surface of the rectangular tube (5).

2. The anti-deviating conveying mechanism according to claim 1, characterized in that: The adjusting member comprises a rectangular opening (19), the upper end of the column (15) is provided with a rectangular opening (19), a rectangular rod (14) is inserted into the rectangular opening (19), one end of the rectangular rod (14) extends to the upper side of the electric roller (3), and the rectangular rod (14) is connected and fixed to the lower end of the vertical pipe (12), a first screw hole (18) is provided in the middle position of the upper surface of the column (15) and is communicated with the rectangular opening (19), and a positioning screw (13) for limiting the relative position of the rectangular rod (14) and the column (15) is connected to the inner thread of the first screw hole (18).

3. The anti-deviating conveying mechanism according to claim 1, characterized in that: A strip opening (20) is provided on one side of the upper surface of the horizontal portion of the L-shaped plate (7) close to the vertical portion thereof, and a plate strip (8) that fits the copper-clad plates stacked together is inserted into the strip opening (20), and the thickness of the plate strip (8) is the same as the thickness of one side wall of the rectangular tube (5).

4. The anti-deviating conveying mechanism according to claim 1, characterized in that: A second screw hole (21) is provided at an upper position on one side surface of the rectangular tube (5), and the limiting screw (6) is threadedly connected in the second screw hole (21).

5. The anti-deviating conveying mechanism according to claim 1, characterized in that: A handle (11) is installed on the outer surface of the upper end of the vertical rod (10), and the handle (11) is a U-shaped structure.

6. The anti-deviating conveying mechanism according to claim 1, characterized in that: Both ends of the crossbeam (1) are connected and fixed with ear plates (4), and a plurality of fixing holes for inserting bolts are evenly opened on one side of the ear plate (4).