A conveying device for producing insulating epoxy resin boards
By designing the U-shaped conveying groove plate and related mechanical structures, the automatic separation and conveying of insulated epoxy resin plates is realized one by one, solving the problem of difficult separation of stacked stacked plates and improving production efficiency and speed.
Patent Information
- Application Number
- CN202411345790.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2044-09-26
AI Technical Summary
Insulated epoxy resin boards are difficult to separate and automatically transport one by one after stacking during processing, resulting in low production efficiency and speed.
A conveying device including a U-shaped conveying groove plate, a conveying motor, a roller, a conveying belt, a plate, an n-shaped plate, an inverted U-shaped wide plate, a partition, an extrusion finishing plate and a material-dividing mechanism is designed, and the one-by-one separation and automatic conveying of the insulated epoxy resin plate is realized through the coordination of the mechanical structure.
It improves the production efficiency and speed of insulated epoxy resin boards, realizes the automatic separation and conveying of stacked stacked boards, and has the functions of alternating loading and regularization of double stations. It has simple structure and stable and reliable operation.
Smart Images

Figure CN119190874B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of conveying devices, and in particular relates to a conveying device for producing insulating epoxy resin boards. Background Art
[0002] Insulating epoxy resin board is a material used for electrical insulation and protection; it is usually made of epoxy resin and glass fiber cloth through high-temperature pressing, and has excellent insulation properties and mechanical strength; insulating epoxy resin board has excellent insulation properties, high mechanical strength, chemical corrosion resistance and good heat resistance; insulating epoxy resin board is usually used to manufacture insulating structures, insulating boards, partitions, insulating pads, etc. of electrical equipment. It is widely used in the fields of electricity, electronics, communications, etc., and its excellent insulation properties and mechanical strength make it an important electrical insulation material, which helps to ensure the safe operation of electrical equipment.
[0003] Insulating epoxy resin boards are stacked during the processing process, but the stacked insulating epoxy resin boards are not convenient to be processed and transported one by one, so they need to be manually separated one by one and then placed on the conveying equipment for conveying operations. This production and conveying operation is not automated enough, which seriously reduces the efficiency and speed of processing. Therefore, improvements are needed to address the above problems. Summary of the Invention
[0004] The upper and lower ends of the U-shaped conveying trough are fixed with rollers at both ends, and a conveyor belt is installed between the two rollers. A conveying motor connected to one end of the rollers is installed on one side of the U-shaped conveying trough. A table located above the conveyor belt is fixedly installed in the middle of the top of the U-shaped conveying trough, and an n-shaped plate is fixedly installed in the middle of the top of the table. An inverted U-shaped wide plate that can move back and forth is installed inside the n-shaped plate, and a partition is fixedly installed in the middle of the inside of the inverted U-shaped wide plate. Movable and adjustable extrusion and sorting plates are installed on both sides of the inside of the inverted U-shaped wide plate, and adjustable rotating sorting plates are installed on both sides of the inverted U-shaped wide plate. A feeding port is opened in the middle of the table just below the inside of the n-shaped plate, and a one-by-one material dividing mechanism is installed in the middle of the feeding port. The top of the one-by-one material dividing mechanism is provided with stacked insulating epoxy resin board bodies.
[0005] Preferably, a horizontal moving groove is opened in the middle of one side of the inner part of the N-shaped plate, a horizontal threaded shaft is rotatably installed in the middle of the horizontal moving groove, a second motor connected to one end of the horizontal threaded shaft is installed at one end of the N-shaped plate, and the surface of the horizontal threaded shaft is threadedly connected to a moving block slidably installed inside the horizontal moving groove, and the middle part of the outside of the inverted U-shaped wide plate is fixedly connected to the moving block, so that the inverted U-shaped wide plate can be effectively adjusted to move back and forth.
[0006] Preferably, vertical grooves are provided on both sides of the inverted U-shaped wide plate, and the interiors of the two vertical grooves are connected to the extrusion and sorting plates through four springs. The interiors of the two vertical grooves are rotatably connected to the first vertical rotating shaft, and the surface of the first vertical rotating shaft is fixedly connected to two eccentric wheels in contact with the extrusion and sorting plates, so that the extrusion and sorting plates can be effectively extruded and adjusted; mounting grooves are provided on both sides of the inverted U-shaped wide plate, and the interiors of the two mounting grooves are rotatably connected to the second vertical rotating shaft, and the two rotating sorting plates are respectively fixedly connected to the surfaces of the two second vertical rotating shafts, so that the rotating sorting plates can be effectively rotated and adjusted.
[0007] Preferably, two first sliding grooves are symmetrically opened in the middle of the top of the table plate, and the ends of the opposite sides of the two first sliding grooves are fixedly installed with first racks. The bottoms of the two first vertical shafts extend to the interior of the two first sliding grooves and are fixedly connected with first gears. The first gear is matched with the first rack, so that the extrusion sorting plate can be adjusted.
[0008] Preferably, two second slide grooves are symmetrically provided on one side of the top of the table, and the ends of the two second slide grooves on the opposite sides are fixedly installed with a second rack, and the other sides of the two second slide grooves are fixedly installed with a sliding block. The bottoms of the two second vertical shafts extend to the inside of the two second slide grooves and are fixedly connected with arc teeth, and the arc teeth are matched with the second rack. The ends of the second vertical shaft located inside the second slide groove are fixedly installed with sliding limit blocks, and the sliding limit blocks are matched with the sliding block, so that the rotating sorting plate can be effectively adjusted.
[0009] Preferably, the one-by-one material distribution mechanism includes four arc grooves, which are respectively opened in the middle of the four sides of the discharge port, and the inside of the four arc grooves are rotatably connected with a rotating pin, and the surface of the rotating pin is fixedly connected to the first disc and the second disc, and the circumferential surfaces of the first disc and the second disc are symmetrically fixed with two fan-shaped support plates, and the fan-shaped support plates on the first disc and the second disc are staggered by 90 degrees. The insulating epoxy resin board body is located between the tops of four of the fan-shaped support plates on the four first discs, and one end of the two fan-shaped support plates on the first disc are both inclined surfaces, so that the stacked insulating epoxy resin board bodies can be effectively lifted.
[0010] Preferably, the bottoms of the four rotating pins extend to the bottom of the table and are fixedly connected to the first sprocket. The bottom of the table is rotatably connected to four second sprockets. A first chain is installed between the four second sprockets and the four first sprockets, so that the four rotating pins can be effectively adjusted to rotate synchronously in the same direction.
[0011] Preferably, a disc is fixedly mounted on the bottom of one of the first sprockets, and four toggle pins are fixedly connected to the circumferential surface of the disc at equal intervals.
[0012] Preferably, a horizontal groove is provided at one end of the top of the U-shaped conveying trough plate, one end of each of the two rollers extends into the interior of the horizontal groove and is fixedly connected to a third sprocket, a second chain is installed between the two third sprockets, the disc and four driving pins are all located inside the horizontal groove and above the upward section of the second chain, and push pins are fixedly installed at equal distances on the surface of the second chain, the push pins are connected to the links of the second chain, and the push pins and the driving pins are matched to enable effective conveying and transmission adjustment.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] (1) During operation, the conveying device for producing insulating epoxy resin boards has an automatic loading and conveying function by providing a U-shaped conveying trough plate, a conveying motor, a roller, a conveyor belt, a table, an n-shaped plate, an inverted U-shaped wide plate, a partition, an extrusion sorting plate, a rotating sorting plate, a discharge port and a one-by-one material separation mechanism. It can separate the stacked insulating epoxy resin boards one by one and place them one by one on the conveyor belt device for conveying operations, thereby improving the efficiency and speed of the production and processing of insulating epoxy resin boards. At the same time, the conveying device also has a double-station alternating loading and tidying function, which can sort the stacked insulating epoxy resin boards and facilitate the subsequent separation and loading and conveying of the insulating epoxy resin boards. In addition, the conveying device has a simple structural design, is easy and convenient to use, and is stable and reliable to operate. Its performance can meet the use requirements of the production and transportation of insulating epoxy resin boards.
[0015] (2) The stacked insulating epoxy resin plate bodies are placed on the inner side of the inverted U-shaped wide plate outside the n-shaped plate. When the inverted U-shaped wide plate moves inside the n-shaped plate, the movement of the inverted U-shaped wide plate will drive the stacked insulating epoxy resin plate bodies to move toward the inside of the n-shaped plate and drive the extrusion sorting plate and the rotation sorting plate to move. The inverted U-shaped wide plate will drive the first gear to move inside the first slide groove and drive the arc-shaped teeth and the sliding limit block to move inside the second slide groove. The movement of the arc-shaped teeth will first roll on the surface of the second rack and drive the sliding limit block and the second vertical shaft to rotate, and finally make the sliding limit block and the second vertical shaft rotate 45 degrees and separate the arc-shaped teeth from the second rack. At the same time, the sliding limit block rotated 45 degrees will slide in contact with the sliding block bar to keep the second vertical shaft from rotating.
[0016] The 45° rotation of the second vertical axis will squeeze one side of the stacked insulating epoxy resin board body, and at the same time, the inverted U-shaped wide plate will regularize the two sides of the stacked insulating epoxy resin board body;
[0017] As the inverted U-shaped wide plate continues to move, the first gear will roll and rotate on the surface of the first rack. The rotation of the first gear will drive the first vertical shaft and the eccentric wheel to rotate. The rotation of the eccentric wheel will squeeze and move the extrusion and sorting plate, thereby stretching the spring. Finally, the cooperation between the extrusion and sorting plate and the partition will straighten the two ends of the stacked insulating epoxy resin board bodies.
[0018] Finally, the neatly stacked insulating epoxy resin board bodies will be moved to the inside of the discharge port and located on top of the material separation mechanism;
[0019] (3) By starting the conveying motor, the two rollers drive the conveyor belt to rotate and convey, and at the same time, the rotation of the rollers drives the second chain to rotate through the two third sprockets, and the rotation of the second chain drives all the push pins on its surface to rotate, and each push pin will adjust the disc by 90 degrees through the toggle pin during the rotation process, and each 90-degree rotation of the disc will drive one of the first sprockets to rotate 90 degrees;
[0020] When one of the first sprockets rotates ninety degrees, it drives the other three first sprockets to rotate synchronously in the same direction through the first chain and the four second sprockets. The synchronous and same-direction rotation of the four first sprockets will drive the first disc, the second disc and the fan-shaped support plate thereon to rotate ninety degrees, thereby causing the two fan-shaped support plates on the first disc and the second disc to exchange positions, so that the stacked insulating epoxy resin board bodies fall between the tops of four of the fan-shaped support plates on the four second discs. Then, with another ninety-degree rotation, the fan-shaped support plate on the first disc will cut and separate the insulating epoxy resin board body at the bottom of the stack through the inclined surface, thereby causing the insulating epoxy resin board body at the bottom of the stack to fall onto the surface of the conveyor belt; and through the timed ninety-degree rotation, the stacked insulating epoxy resin boards can be separated one by one and placed one by one on the conveyor belt for loading and conveying operations. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The accompanying drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used to explain the present invention together with the embodiments of the present invention and do not constitute a limitation of the present invention.
[0022] In the attached figure:
[0023] Figure 1 This is a schematic top view of the structure of a conveying device for producing insulating epoxy resin boards according to the present invention;
[0024] Figure 2 It is a schematic top view of the structure of the U-shaped conveying trough plate of the present invention;
[0025] Figure 3Schematic diagram of the top view of the table plate and the top cross-sectional structure of the n-shaped plate of the present invention;
[0026] Figure 4 Schematic diagram of the top view of the tabletop of the present invention;
[0027] Figure 5 For the present invention Figure 4 Schematic diagram of the local structure;
[0028] Figure 6 Schematic diagram of the top cross-section structure of the inverted U-shaped wide plate of the present invention;
[0029] Figure 7 It is a schematic diagram of a partial top view of the tabletop of the present invention;
[0030] Figure 8 For the present invention Figure 7 Schematic diagram of the structure viewed from above;
[0031] Figure 9 For the present invention Figure 7 Schematic diagram of the cross-sectional structure;
[0032] Figure 10 It is a partial structural diagram of the one-by-one material dispensing mechanism of the present invention;
[0033] Figure: 1, U-shaped conveyor trough plate; 101, conveying motor; 2, roller; 3, conveyor belt; 4, table; 5, n-shaped plate; 6, inverted U-shaped wide plate; 7, partition; 8, extrusion sorting plate; 9, rotating sorting plate; 10, unloading port; 11, one-by-one material separation mechanism; 12, insulating epoxy resin plate body; 13, horizontal moving trough; 14, horizontal threaded shaft; 15, second motor; 16, moving block; 17, vertical groove; 18, spring; 19, first vertical rotation axis; 20, eccentric wheel; 21, mounting groove; 22, second vertical rotation axis Shaft; 23. First slide groove; 24. First rack; 25. First gear; 26. Second slide groove; 27. Second rack; 28. Sliding stop bar; 29. Arc teeth; 30. Sliding limit block; 31. Arc groove; 32. Rotating pin; 33. First disc; 34. Second disc; 35. Fan-shaped support plate; 36. Inclined surface; 37. First sprocket; 38. Second sprocket; 39. First chain; 40. Disc; 41. Toggle pin; 42. Horizontal groove; 43. Third sprocket; 44. Second chain; 45. Push pin. DETAILED DESCRIPTION
[0034] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments; based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0035] Embodiment 1, by Figures 1 to 10 The present invention includes a U-shaped conveying trough plate 1, rollers 2 are rotatably installed at both ends of the U-shaped conveying trough plate 1, a conveying belt 3 is installed between the two rollers 2, a conveying motor 101 connected to the end of one of the rollers 2 is installed on one side of the U-shaped conveying trough plate 1, a table 4 located above the conveying belt 3 is fixedly installed in the middle of the top of the U-shaped conveying trough plate 1, an n-shaped plate 5 is fixedly installed in the middle of the top of the table 4, an inverted U-shaped wide plate 6 that can move back and forth is installed inside the n-shaped plate 5, and the inverted U-shaped wide plate 6 is fixedly installed inside the n-shaped plate 5. A partition 7 is fixedly installed in the middle of the interior, and movable and adjustable extrusion sorting plates 8 are installed on both sides of the inverted U-shaped wide plate 6, and adjustable rotating sorting plates 9 are installed on both sides of the inverted U-shaped wide plate 6. A discharge port 10 is opened in the middle of the table plate 4 and is located directly below the inside of the n-shaped plate 5. A one-by-one material separation mechanism 11 is installed in the middle of the discharge port 10, and a stacked insulating epoxy resin board body 12 is provided on the top of the one-by-one material separation mechanism 11. The discharge port 10 matches the insulating epoxy resin board body 12.
[0036] The conveying device for producing insulating epoxy resin boards has an automatic loading and conveying function, which can separate the stacked insulating epoxy resin boards one by one and place them one by one on the conveyor belt equipment for conveying operations, thereby improving the efficiency and speed of the production and processing of insulating epoxy resin boards.
[0037] At the same time, the conveying device also has a double-station alternating loading and tidying function, which can sort the stacked insulating epoxy resin boards, making it convenient for the subsequent separation and loading and conveying of the insulating epoxy resin boards.
[0038] In addition, the conveying device has a simple structural design, is easy and convenient to use, and has stable and reliable operation. Its performance can meet the use requirements of the production and conveying of insulating epoxy resin boards.
[0039] Embodiment 2, on the basis of embodiment 1, a horizontal moving groove 13 is opened in the middle of one side of the inside of the n-shaped plate 5, a horizontal threaded shaft 14 is rotatably installed in the middle of the horizontal moving groove 13, and a second motor 15 connected to one end of the horizontal threaded shaft 14 is installed at one end of the n-shaped plate 5. The second motor 15 is a forward and reverse motor. The surface of the horizontal threaded shaft 14 is threadedly connected to a moving block 16 slidably installed in the inside of the horizontal moving groove 13. The middle part of the outside of the inverted U-shaped wide plate 6 is fixedly connected to the moving block 16, so that the inverted U-shaped wide plate 6 can be effectively reciprocated and adjusted;
[0040] By starting the second motor 15 to rotate the horizontal threaded shaft 14, the rotation of the horizontal threaded shaft 14 will cause the moving block 16 to move inside the horizontal moving groove 13. The movement of the moving block 16 will drive the inverted U-shaped wide plate 6 to move, so that the inverted U-shaped wide plate 6 can be reciprocated and adjusted inside the n-shaped plate 5.
[0041] Embodiment 3, on the basis of embodiment 1, vertical grooves 17 are provided on both sides of the inside of the inverted U-shaped wide plate 6, and the insides of the two vertical grooves 17 are connected to the extrusion finishing plate 8 through four springs 18, and the insides of the two vertical grooves 17 are rotatably connected to the first vertical shaft 19, and the surface of the first vertical shaft 19 is fixedly connected to two eccentric wheels 20 in contact with the extrusion finishing plate 8, so that the extrusion finishing plate 8 can be effectively squeezed and adjusted; mounting grooves 21 are provided on both sides of the inverted U-shaped wide plate 6, and the insides of the two mounting grooves 21 are rotatably connected to the second The vertical shaft 22, the two rotating sorting plates 9 are respectively fixedly connected to the surfaces of the two second vertical shafts 22, so that the rotating sorting plates 9 can be effectively rotated and adjusted; two first sliding grooves 23 are symmetrically opened in the middle of the top of the table 4, and the ends of the opposite sides of the two first sliding grooves 23 are fixedly installed with first racks 24. The bottoms of the two first vertical shafts 19 extend to the inside of the two first sliding grooves 23 and are fixedly connected with first gears 25. The first gear 25 is matched with the first rack 24 to adjust the extrusion sorting plate 8.
[0042] Two second chutes 26 are symmetrically provided on one side of the top of the table 4. Second racks 27 are fixedly installed at the ends of the two second chutes 26 on the opposite sides. Sliding bars 28 are fixedly installed on the other sides of the two second chutes 26. The bottoms of the two second vertical shafts 22 extend into the interiors of the two second chutes 26 and are fixedly connected with arc-shaped teeth 29. The arc-shaped teeth 29 are matched with the second racks 27. The ends of the second vertical shafts 22 located inside the second chutes 26 are fixedly installed with sliding limit blocks 30. The sliding limit blocks 30 are matched with the sliding bars 28, so that the rotating sorting plate 9 can be effectively adjusted.
[0043] The stacked insulating epoxy resin plate bodies 12 are placed on the inner side of the inverted U-shaped wide plate 6 outside the n-shaped plate 5. When the inverted U-shaped wide plate 6 moves inside the n-shaped plate 5, the movement of the inverted U-shaped wide plate 6 drives the stacked insulating epoxy resin plate bodies 12 to move toward the inside of the n-shaped plate 5 and drives the extrusion sorting plate 8 and the rotation sorting plate 9 to move. The inverted U-shaped wide plate 6 drives the first gear 25 to move inside the first slide groove 23 and drives the arc-shaped teeth 29 and the sliding limit block 30 to move inside the second slide groove 26.
[0044] The movement of the arc-shaped teeth 29 first rolls on the surface of the second rack 27, driving the sliding limit block 30 and the second vertical shaft 22 to rotate, and finally causing the sliding limit block 30 and the second vertical shaft 22 to rotate 45 degrees and separate the arc-shaped teeth 29 from the second rack 27. At the same time, the sliding limit block 30 rotated 45 degrees will slide into contact with the sliding block 28, preventing the second vertical shaft 22 from rotating.
[0045] The second vertical shaft 22 rotates 45 degrees to squeeze one side of the stacked insulating epoxy resin board body 12, and at the same time, the inverted U-shaped wide plate 6 straightens both sides of the stacked insulating epoxy resin board body 12.
[0046] As the inverted U-shaped wide plate 6 continues to move, the first gear 25 will roll and rotate on the surface of the first rack 24. The rotation of the first gear 25 will drive the first vertical shaft 19 and the eccentric wheel 20 to rotate. The rotation of the eccentric wheel 20 will squeeze and move the squeezing and sorting plate 8 and stretch the spring 18. Finally, the cooperation between the squeezing and sorting plate 8 and the partition 7 will straighten the two ends of the stacked insulating epoxy resin board bodies 12.
[0047] Finally, the neatly stacked insulating epoxy resin board bodies 12 are moved to the inside of the discharge port 10 and are located on top of the one-by-one material separation mechanism 11;
[0048] The reciprocating movement of the inverted U-shaped wide plate 6 causes the two sides to move alternately to the outside of the n-shaped plate 5, thereby having a double-station alternate loading and regularization function.
[0049] Embodiment 4, on the basis of embodiment 1, the one-by-one material dividing mechanism 11 includes four arc grooves 31, and the four arc grooves 31 are respectively opened in the middle of the four sides of the discharge port 10, and the interior of the four arc grooves 31 is rotatably connected to the rotating pin 32, and the surface of the rotating pin 32 is fixedly connected to the first disc 33 and the second disc 34, and the circumferential surfaces of the first disc 33 and the second disc 34 are symmetrically fixed with two fan-shaped support plates 35, and the fan-shaped support plates 35 on the first disc 33 and the second disc 34 are staggered by 90 degrees, and the insulating epoxy resin board body 12 is located between the tops of four of the fan-shaped support plates 35 on the four first discs 33, and one end of the two fan-shaped support plates 35 on the first disc 33 is a slope 36, so that the stacked insulating epoxy resin board bodies 12 can be effectively lifted.
[0050] The bottoms of the four rotating pins 32 extend to the bottom of the table 4 and are fixedly connected to the first sprocket 37. The bottom of the table 4 is rotatably connected to four second sprockets 38. A first chain 39 is installed between the four second sprockets 38 and the four first sprockets 37, so that the four rotating pins 32 can be effectively adjusted to rotate synchronously in the same direction.
[0051] When one of the first sprockets 37 rotates ninety degrees, it drives the other three first sprockets 37 to rotate synchronously in the same direction through the first chain 39 and the four second sprockets 38. The synchronous and same-direction rotation of the four first sprockets 37 drives the first disc 33, the second disc 34 and the fan-shaped supporting plate 35 thereon to rotate ninety degrees, thereby causing the two fan-shaped supporting plates 35 on the first disc 33 and the second disc 34 to exchange positions, so that the stacked insulating epoxy resin board bodies 12 fall between the tops of the four fan-shaped supporting plates 35 on the four second discs 34. Then, with another ninety-degree rotation, the fan-shaped supporting plate 35 on the first disc 33 will cut and separate the insulating epoxy resin board body 12 at the bottom of the stack through the inclined surface 36, so that the insulating epoxy resin board body 12 at the bottom of the stack falls onto the surface of the conveyor belt 3;
[0052] By rotating ninety degrees at a fixed time, the stacked insulating epoxy resin plates 12 can be separated one by one and placed one by one on the conveyor belt 3 for loading and conveying operations.
[0053] A disc 40 is fixedly installed at the bottom of one of the first sprockets 37. Four toggle pins 41 are fixedly connected to the circumferential surface of the disc 40 at equal intervals. A horizontal groove 42 is opened at one end of the top of the U-shaped conveying trough plate 1. One end of each of the two rollers 2 extends into the interior of the horizontal groove 42 and is fixedly connected to a third sprocket 43. A second chain 44 is installed between the two third sprockets 43. The disc 40 and the four toggle pins 41 are all located inside the horizontal groove 42 and above the upstream section of the second chain 44. Push pins 45 are fixedly installed on the surface of the second chain 44 at equal intervals. The push pins 45 are connected to the chain links of the second chain 44. The push pins 45 are matched with the toggle pins 41, so that conveying and transmission adjustment can be effectively performed.
[0054] By starting the conveying motor 101, the two rollers 2 drive the conveyor belt 3 to rotate and convey. At the same time, the rotation of the rollers 2 will drive the second chain 44 to rotate through the two third sprockets 43. The rotation of the second chain 44 will drive all the push pins 45 on its surface to rotate. During the rotation process, each push pin 45 will adjust the disc 40 by ninety degrees through the toggle pin 41. Each ninety-degree rotation of the disc 40 will drive one of the first sprockets 37 to rotate by ninety degrees.
[0055] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0056] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A conveying device for producing insulating epoxy resin boards, comprising a U-shaped conveying trough plate (1), characterized in that: Rollers (2) are rotatably mounted on both ends of the U-shaped conveying trough plate (1), a conveying belt (3) is mounted between the two rollers (2), a conveying motor (101) connected to the end of one of the rollers (2) is mounted on one side of the U-shaped conveying trough plate (1), a table (4) located above the conveying belt (3) is fixedly mounted in the middle of the top of the U-shaped conveying trough plate (1), an n-shaped plate (5) is fixedly mounted in the middle of the top of the table (4), an inverted U-shaped wide plate (6) that can move back and forth is mounted inside the n-shaped plate (5), and the inverted U-shaped wide plate (6) is fixedly mounted inside the n-shaped plate (5). A partition (7) is fixedly installed in the middle of the n-shaped wide plate (6), movable and adjustable extrusion finishing plates (8) are installed on both sides of the inverted U-shaped wide plate (6), and adjustable rotating finishing plates (9) are installed on both sides of the inverted U-shaped wide plate (6). A discharge port (10) is opened in the middle of the table (4) and is located directly below the inside of the n-shaped plate (5). A one-by-one material separation mechanism (11) is installed in the middle of the discharge port (10), and a stacked insulating epoxy resin plate body (12) is provided on the top of the one-by-one material separation mechanism (11); The one-by-one material dispensing mechanism (11) includes four arc grooves (31), which are respectively opened in the middle of the four sides of the material discharge port (10), and the interior of the four arc grooves (31) is rotatably connected with a rotating pin (32), and the surface of the rotating pin (32) is fixedly connected with a first disc (33) and a second disc (34), and the circumferential surfaces of the first disc (33) and the second disc (34) are symmetrically fixedly installed with two fan-shaped supporting plates (35), and the fan-shaped supporting plates (35) on the first disc (33) and the second disc (34) are 90 degrees. The insulating epoxy resin plate body (12) is staggered and located between the tops of four fan-shaped supporting plates (35) on the four first discs (33). One end of each of the two fan-shaped supporting plates (35) on the first disc (33) is a slope (36). The bottoms of the four rotating pins (32) extend to the bottom of the table (4) and are fixedly connected to the first sprocket (37). The bottom of the table (4) is rotatably connected to four second sprockets (38). A first chain (39) is installed between the four second sprockets (38) and the four first sprockets (37).
2. The conveying device for producing insulating epoxy resin boards according to claim 1, characterized in that: A horizontal moving groove (13) is provided in the middle of one side of the inside of the n-shaped plate (5), a horizontal threaded shaft (14) is rotatably mounted in the middle of the horizontal moving groove (13), a second motor (15) connected to one end of the horizontal threaded shaft (14) is mounted on one end of the n-shaped plate (5), a moving block (16) slidably mounted in the inside of the horizontal moving groove (13) is threadedly connected to the surface of the horizontal threaded shaft (14), and the middle of the outside of the inverted U-shaped wide plate (6) is fixedly connected to the moving block (16).
3. The conveying device for producing insulating epoxy resin boards according to claim 1, characterized in that: The inverted U-shaped wide plate (6) is provided with vertical grooves (17) on both sides thereof, the interiors of the two vertical grooves (17) are connected to the extrusion and finishing plate (8) via four springs (18), the interiors of the two vertical grooves (17) are rotatably connected to a first vertical rotation shaft (19), the surface of the first vertical rotation shaft (19) is fixedly connected to two eccentric wheels (20) in contact with the extrusion and finishing plate (8), the inverted U-shaped wide plate (6) is provided with mounting grooves (21) on both sides thereof, the interiors of the two mounting grooves (21) are rotatably connected to a second vertical rotation shaft (22), and the two rotating finishing plates (9) are respectively fixedly connected to the surfaces of the two second vertical rotation shafts (22).
4. The conveying device for producing insulating epoxy resin boards according to claim 3, characterized in that: Two first chutes (23) are symmetrically provided in the middle of the top of the platform (4), and first racks (24) are fixedly installed at the ends of the two first chutes (23) on opposite sides. The bottoms of the two first vertical shafts (19) respectively extend to the inside of the two first chutes (23) and are fixedly connected with first gears (25), and the first gears (25) are matched with the first racks (24).
5. The conveying device for producing insulating epoxy resin boards according to claim 3, characterized in that: Two second chutes (26) are symmetrically provided on one side of the top of the platform (4), and the ends of the two second chutes (26) on the opposite sides are fixedly installed with second racks (27), and the other sides of the two second chutes (26) are fixedly installed with sliding blocks (28), and the bottoms of the two second vertical shafts (22) extend to the inside of the two second chutes (26) and are fixedly connected with arc-shaped teeth (29), and the arc-shaped teeth (29) are matched with the second racks (27), and the ends of the second vertical shafts (22) located inside the second chutes (26) are fixedly installed with sliding limit blocks (30), and the sliding limit blocks (30) are matched with the sliding block (28).
6. The conveying device for producing insulating epoxy resin boards according to claim 1, characterized in that: A disc (40) is fixedly mounted on the bottom of one of the first sprockets (37), and four toggle pins (41) are fixedly connected to the circumferential surface of the disc (40) at equal intervals.
7. The conveying device for producing insulating epoxy resin boards according to claim 6, characterized in that: A horizontal groove (42) is formed at one end of the top of the U-shaped conveying trough plate (1), one end of each of the two rollers (2) extends into the interior of the horizontal groove (42) and is fixedly connected to a third sprocket (43), a second chain (44) is installed between the two third sprockets (43), a disc (40) and four toggle pins (41) are all located inside the horizontal groove (42) and above the upper section of the second chain (44), and push pins (45) are fixedly installed at equal distances on the surface of the second chain (44), and the push pins (45) are matched with the toggle pins (41).
Citation Information
Patent Citations
Paint spraying device for mechanical equipment production
CN210545890U
Disc distributing mechanism
CN218478238U