Automatic pipe laying machine for radiator's heat dissipation core
Through the cooperation of the linear slide and the drive rotating seat, automatic pipe layout of the heat dissipation core is realized, which solves the problem of low efficiency of traditional assembly, improves assembly efficiency and automation level, adapts to chips and core strips of different lengths, and reduces equipment costs.
Patent Information
- Application Number
- CN202410554493.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-07
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2044-05-07
AI Technical Summary
Traditional radiator core assembly has low efficiency, relies on manual fabrication and requires high experience, making it impossible to achieve efficient automated assembly.
A linear slide is used to drive the automatic tube laying machine for the heat dissipation core. The chip and core strip feeding troughs are aligned by driving the rotating seat, and the linear slide moves to realize the automatic tube laying of the chip and core strip. The material is added and the tube laying is carried out through the automatic structure of the machine.
It greatly improves the assembly efficiency of the heat dissipation core, reduces the workload of workers, increases the degree of automation of the assembly platform, prevents the deformation of the core strip, is suitable for chips and core strips of different lengths, and reduces equipment costs.
Smart Images

Figure CN118123489B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of automatic assembly of heat dissipation chips, in particular to an automatic pipe laying machine for a heat dissipation core of a radiator. Background Art
[0002] The car radiator is part of the car's cooling system. The radiator in the engine water cooling system consists of a water inlet chamber, a water outlet chamber, and a radiator core. The radiator core includes a mainboard, side panels, heat sinks, and heat strips. The heat sinks and heat strips are arranged in multiple intervals. The side panels are located on both sides of the heat sink and heat strip combination, and the mainboard is located on both sides of the heat sink and heat strip combination. The mainboard has assembly holes for the side panels and heat sinks.
[0003] The traditional assembly method is often to first assemble the heat sink on the assembly platform and then insert the heat strip into the gap between adjacent heat sinks. The traditional assembly platform has multiple limit blocks arranged on both sides along the arrangement direction of the heat sinks. The gaps between adjacent limit blocks serve as guide gaps to guide the heat sinks to fall. Several heat sinks are placed on top of the limit blocks at the same time and gradually pushed. The heat sinks fall into the corresponding guide gaps one by one, and then the heat strips are inserted into the gaps between the heat sinks. With this assembly method, manual laying of the heat sinks and the heat strips is required, which is inefficient and tests the experience of the staff. Therefore, the present invention proposes an automatic pipe laying machine for the heat sink core of a radiator to automatically lay pipes for the heat sinks and the heat strips. Summary of the Invention
[0004] In response to the above problems, the present invention proposes an automatic tube routing machine for the heat dissipation core of a radiator. The automatic tube routing machine for the heat dissipation core of the radiator is driven to move by a linear slide, and at the same time, the first rotating seat is driven to rotate, so that the first feed chute is aligned with the second feed chute. At this time, the chip or core strip falls, and at the same time, the movement of the linear slide is coordinated to automatically route the chips and core strips.
[0005] To achieve the purpose of the present invention, the present invention is implemented through the following technical solutions: an automatic pipe routing machine for the heat dissipation core of a radiator, comprising a linear slide, wherein the linear slide is symmetrically provided with two groups, and the two groups of linear slides are slidably connected to a support seat, a fixing plate is fixed at a position located at the middle end between the two groups of support seats, and mounting blocks are provided at the middle end positions on the front and rear sides of the fixing plate, and a first driving assembly and a second driving assembly are provided on the mounting block, the second driving assembly is located on the inner side of the first driving assembly, and a sliding rod is symmetrically provided on the front side of the first driving assembly, and the two ends of the sliding rod are fixedly connected to the inner wall of the support seat, a chip placement mechanism is provided on the first driving assembly located on the front side of the fixing plate, and a core belt placement mechanism is provided on the first driving assembly located on the rear side of the fixing plate;
[0006] The outer walls of the top ends of the two groups of support seats are provided with mounting plates, a top plate is provided above the fixing plate, two groups of lifting assemblies are symmetrically provided between the top plate and the mounting plate, and both groups of lifting assemblies are provided with loading bins for loading the chip placement mechanism and the core strip placement mechanism;
[0007] A pushing assembly is provided on the inner side of the loading bin for pushing the loading bin to move, and the pushing assembly is fixedly connected to the lifting assembly;
[0008] The bottom of the upper material bin is provided with a baffle to prevent chips or core strips from falling, and limiting columns are fixed at both ends of the baffle. A mounting groove is provided on the outer wall of the lower end of the upper material bin, and a spring guide rod is fixed in the mounting groove. A connecting block is sleeved on the spring guide rod, and the lower end of the connecting block is fixedly connected to the limiting column.
[0009] Further improvements are: the chip arrangement mechanism includes a first arrangement seat, a first arrangement groove, a first limiting plate, a first nut seat, a first discharge mechanism and a third drive component, the first arrangement seat is symmetrically provided with two groups, the inner sides of the two groups of the first arrangement seats are provided with a first arrangement groove for storing the two ends of the chip, the lower end of the first arrangement seat is provided with a first discharge mechanism for lowering the chip, the inner side of the upper end of the first arrangement seat is fixed with a first limiting plate, the first limiting plate is fixed with a first nut seat, and one side of the first nut seat is provided with a third drive component for providing power to the first discharge mechanism.
[0010] Further improvements are that: the core belt arrangement mechanism includes a second arrangement seat, a second arrangement groove, a protective partition, a second limiting plate, a second nut seat, a second discharge mechanism and a fourth drive assembly, and the second arrangement seat is symmetrically provided with two groups, and the inner sides of the two groups of second arrangement seats are provided with second arrangement grooves for storing the two ends of the core belt, and the interior of the second arrangement groove is also provided with a protective partition for protecting the core belt, the lower end of the second arrangement seat is provided with a second discharge mechanism for lowering the core belt, and the outer side of the second discharge mechanism is also provided with a collecting mechanism for collecting the protective partition, a second limiting plate is fixed to the inner side of the upper end of the second arrangement seat, a second nut seat is fixed on the second limiting plate, and a fourth drive assembly for providing power for the second discharge mechanism is provided on one side of the second nut seat.
[0011] Further improvements are: the protective partition is located between two adjacent groups of core belts, fixed columns are provided at both ends of the protective partition, a through groove is provided in the second arrangement groove, one end of the fixed column passes through the through groove and extends to the outside, and the thickness of the protective partition is greater than the thickness of the core belt.
[0012] Further improvements are that: the first limit plate and the second limit plate are symmetrically provided with slide grooves, the slide grooves are slidably connected to the slide rod, the first discharge mechanism and the second discharge mechanism are the same, both include a discharge bin, a first discharge trough, a first rotating seat, a second discharge trough, a fixed rod and a rotating shaft, the top and bottom of the discharge bin are provided with a vertically connected first discharge trough, the interior of the discharge bin is provided with a first rotating seat, a plurality of groups of second discharge troughs are distributed in a circular array on the first rotating seat, and the first discharge trough and the second discharge trough are aligned for unloading, a plurality of groups of fixing rods for fixing the first rotating seat are distributed in a circular array on the inner side of the first rotating seat, a rotating shaft is fixed at the center position of the fixed rod, and one end of the rotating shaft rotates through the discharge bin and extends to the outside world.
[0013] Further improvements are: the third drive assembly and the fourth drive assembly are powered by two groups of second drive assemblies respectively, the third drive assembly and the fourth drive assembly have the same structure, both include a first pulley, a second pulley and a belt, the outer sides of the first nut seat and the second nut seat are rotatably mounted with a hollow shaft, one end of the hollow shaft is fixed with a first pulley, one end of the rotating shaft is fixedly connected to the second pulley, and the first pulley and the second pulley are connected by a belt.
[0014] Further improvements are: the collecting mechanism includes a second rotating seat, a first motor, a pushing rod, a column groove, an arc groove and a partition collecting bin, a second rotating seat is rotatably installed on one side of the second pulley, the second rotating seat is driven by the first motor, three groups of pushing rods are distributed in a circular array on the second rotating seat, the pushing rods are provided with a column groove adapted to the fixed column, the lower end of the second arrangement seat is located on one side of the second arrangement groove and is provided with an arc groove adapted to the protective partition, a partition collecting bin is provided at the outlet of the arc groove, and the partition collecting bin is fixedly connected to the second arrangement seat.
[0015] Further improvements are: the partition collection bin includes a fixed frame, a telescopic frame, a storage groove, a first limit block, a second limit block and a slot, the fixed frame is symmetrically arranged in two groups, the fixed frame is provided with a storage groove, a telescopic frame is provided between the storage grooves of the two groups of fixed frames, the surface of one end of the fixed frame is provided with a first limit block, the surfaces of both ends of the telescopic frame are provided with second limit blocks, the first limit block limits the second limit block, and the middle end of the bottom of the telescopic frame is provided with a slot.
[0016] Further improvements are: the first drive assembly includes a bidirectional screw and a second motor, a bidirectional screw is rotatably installed on the mounting block, and the bidirectional screw is driven by a second motor located on the outer wall of the support seat, the second drive assembly includes a bidirectional motor, a telescopic shaft, a first gear and a second gear, the bidirectional motor is fixed on the mounting block, the output ends of the bidirectional motors are fixed with telescopic shafts, one end of the telescopic shaft is fixed with a first gear, and a second gear is fixed on the hollow shaft, the first gear is meshed with the second gear, and the inner ends of the first nut seat and the second nut seat are respectively rotatably connected to the telescopic shaft.
[0017] Further improvements are: the lifting assembly includes a threaded rod, a lifting seat, a guide rod and a third motor, the threaded rod is rotatably installed between a group of mounting plates and the top plate, the guide rod is fixedly installed between another group of mounting plates and the top plate, one end of the lifting seat is threadedly connected to the threaded rod, and the other end of the lifting seat is slidably connected to the guide rod, the pushing assembly includes a fixed block and a telescopic cylinder, the fixed block is symmetrically fixed to the bottom of the lifting seat, the telescopic cylinder is fixed on the fixed block, the output end of the telescopic cylinder is fixed with a connecting plate, and the lower end of the connecting plate is fixedly connected to the outer wall of the upper end of the upper hopper.
[0018] The beneficial effects of the present invention are as follows: the present invention drives the machine to move by the linear slide, and at the same time drives the first rotating seat to rotate, so that the first material discharge trough is aligned with the second material discharge trough. At this time, the chip or core tape falls, and at the same time, the linear slide moves, so as to automatically arrange the chip and core tape. The use of a machine-automated pipe arrangement method can greatly reduce the workload of workers and improve the pipe arrangement efficiency. At the same time, the machine is provided with a loading bin, which automatically engages with the chip arrangement mechanism and the core tape arrangement mechanism through the action of the pushing component and the lifting component, and automatically feeds the chip arrangement mechanism and the core tape arrangement mechanism. By adopting this feeding method of the automated structure, the staff does not need to lift their hands to feed the chip arrangement mechanism and the core tape arrangement mechanism due to the problem of feeding height, which further reduces the workload of the staff and further increases the degree of automation of the machine. At the same time, by setting a protective partition, the overall strength of the core tape is increased, thereby preventing the core tape from deformation and increasing the protection of the core tape. At the same time, when the machine is arranging the core tape, as the core tape falls, at the same time, through The first motor drives the second rotating seat to rotate, so that the column groove on the second rotating seat is engaged with the fixed column on the protective partition, so that the protective partition rotates in the arc groove as the second rotating seat rotates, and finally slides into the partition collection bin for storage, thereby ensuring the subsequent core belt pipe arrangement. The machine is provided with two sets of bidirectional screws, which cooperate with the first nut seat and the second nut seat to drive the first arrangement seat and the second arrangement seat to move respectively, and adjust the spacing between the two adjacent groups of first arrangement seats or second arrangement seats, so that the chip arrangement mechanism and the core belt arrangement mechanism can be suitable for chips and core belts of different lengths, greatly increasing the scope of use of the machine. At the same time, the machine drives the telescopic shaft to rotate through the bidirectional motor, and then drives the hollow shaft to rotate through the engagement between the first gear on the telescopic shaft and the second gear on the hollow shaft, thereby driving the first pulley to rotate, and there is a linkage through the belt, thereby driving the second pulley to rotate, thereby achieving the purpose of simultaneously driving the two sets of first rotating seats located on the same side to rotate. At the same time, this machine adopts this linkage structure to reduce the use of driving source and thus reduce the cost of the machine. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a three-dimensional schematic diagram of the present invention.
[0020] Figure 2 Schematic diagram of the first drive assembly and the second drive assembly of the present invention.
[0021] Figure 3 It is a left side view of the loading bin of the present invention when adding materials.
[0022] Figure 4 It is a schematic diagram of one side of the first arrangement seat of the present invention.
[0023] Figure 5It is a schematic diagram of the other side of the first arrangement seat of the present invention.
[0024] Figure 6 It is a schematic diagram of one side of the second arrangement seat of the present invention.
[0025] Figure 7 It is a schematic diagram of the other side of the second arrangement seat of the present invention.
[0026] Figure 8 It is a schematic diagram of the installation between the protective partition and the arc groove of the present invention.
[0027] Figure 9 It is a structural schematic diagram of the first rotating seat of the present invention.
[0028] Figure 10 It is a structural schematic diagram of the protective partition of the present invention.
[0029] Figure 11 It is a structural schematic diagram of the partition collection bin of the present invention.
[0030] Figure 12 It is a structural schematic diagram of the lifting assembly and the pushing assembly of the present invention.
[0031] Figure 13 It is a schematic diagram of the engagement between the loading bin and the first arrangement seat or the second arrangement seat of the present invention.
[0032] Among them: 1. Linear slide; 2. Support seat; 3. Fixed plate; 4. Mounting block; 5. Slide rod; 6. Mounting plate; 7. Top plate; 8. Loading bin; 9. Baffle; 10. Limiting column; 11. Mounting slot; 12. Spring guide rod; 13. Connecting block; 14. First arrangement seat; 15. First arrangement slot; 16. First limiting plate; 17. First nut seat; 18. Second arrangement seat; 19. Second arrangement slot; 20. Protective partition; 21. Second limiting plate; 22. Second nut seat; 23. Second unloading mechanism; 24. Fixed column; 25. Slide; 26. Unloading bin; 27. First unloading chute; 28. First rotating seat; 29. Second unloading chute; 30. Fixed rod; 31. Rotating shaft; 32. First pulley; 33. Second pulley; 34. Belt; 35. Hollow shaft; 36. Second rotating seat; 37. First motor; 38. Push rod; 39. Column slot; 40. Arc slot; 41. Partition collecting bin; 42. Fixed frame; 43. Telescopic frame; 44. Storage slot; 45. First limit block; 46. Second limit block; 47. Slot; 48. Bidirectional screw; 49. Second motor; 50. Bidirectional motor; 51. Telescopic rotating shaft; 52. First gear; 53. Second gear; 54. Threaded rod; 55. Lifting seat; 56. Guide rod; 57. Third motor; 58. Fixed block; 59. Telescopic cylinder; 60. Connecting plate; 61. Through slot. DETAILED DESCRIPTION
[0033] In order to deepen the understanding of the present invention, the present invention will be further described in detail below with reference to the examples. The examples are only used to explain the present invention and do not constitute a limitation on the scope of protection of the present invention.
[0034] according to Figure 1-13 As shown, this embodiment proposes an automatic pipe routing machine for the heat dissipation core of a radiator, including a linear slide 1, wherein the linear slide 1 is symmetrically provided with two groups, and the two groups of linear slides 1 are slidably connected to a support seat 2, and a fixing plate 3 is fixed at a position located in the middle end between the two groups of support seats 2, which is characterized in that: a mounting block 4 is provided at the middle end position on both sides of the front and rear of the fixing plate 3, a first driving component and a second driving component are provided on the mounting block 4, the second driving component is located on the inner side of the first driving component, and a sliding rod 5 is symmetrically provided on the front side of the first driving component, and the two ends of the sliding rod 5 are fixedly connected to the inner wall of the support seat 2, a chip arrangement mechanism is provided on the first driving component located on the front side of the fixing plate 3, and a core belt arrangement mechanism is provided on the first driving component located on the rear side of the fixing plate 3;
[0035] The outer walls of the top ends of the two groups of support seats 2 are provided with mounting plates 6, and a top plate 7 is provided above the fixing plate 3. Two groups of lifting assemblies are symmetrically provided between the top plate 7 and the mounting plate 6. Both groups of lifting assemblies are provided with a loading bin 8 for loading the chip placement mechanism and the core strip placement mechanism.
[0036] The inner side of the loading bin 8 is provided with a pushing component for pushing the loading bin 8 to move, and the pushing component is fixedly connected to the lifting component;
[0037] A baffle 9 is provided at the bottom of the loading bin 8 to prevent chips or core strips from falling. Limiting columns 10 are fixed at both ends of the baffle 9. A mounting groove 11 is provided on the outer wall of the lower end of the loading bin 8. A spring guide rod 12 is fixed in the mounting groove 11. A connecting block 13 is sleeved on the spring guide rod 12. The lower end of the connecting block 13 is fixedly connected to the limiting column 10.
[0038] The automatic pipe laying machine is assembled above the assembly platform, so that when the heat dissipation core is assembled, the machine is driven to move by the linear slide 1 to automatically lay the pipes of the heat sink and the heat dissipation belt, which is relatively convenient. At the same time, the use of machine-automated pipe laying can greatly reduce the workload of workers and improve the efficiency of pipe laying. In actual use, only two workers are needed to be located on the front and back sides of the assembly platform respectively, and to add materials to the loading bin 8 at regular intervals. The loading bin 8 automatically engages with the chip placement mechanism and the core belt placement mechanism through the action of the pushing component and the lifting component, and automatically adds materials to the chip placement mechanism and the core belt placement mechanism. This machine sets a baffle 9 at the bottom of the loading bin 8, so that the bottom of the loading bin 8 can be blocked to prevent chips or cores from being stuck. When the chip or core strip falls, when the loading bin 8 is engaged with the chip placement mechanism or the core strip placement mechanism, the upper ends of the chip placement mechanism and the core strip placement mechanism push the limit column 10 to move outward, thereby moving the baffle 9 outward, so that the chip or core strip can fall automatically. The arrangement of the spring guide rod 12, the connecting block 13 and the mounting groove 11 can ensure the stability of the baffle 9 during movement. At the same time, when the loading bin 8 is separated from the chip placement mechanism or the core strip placement mechanism, the baffle 9 can be automatically reset by the elastic potential energy of the spring on the spring guide rod 12. By adopting this feeding method of the automated structure, the staff does not need to lift their hands to feed the chip placement mechanism and the core strip placement mechanism due to the problem of feeding height, which further reduces the workload of the staff and further increases the degree of automation of the machine.
[0039] The chip arrangement mechanism includes a first arrangement seat 14, a first arrangement groove 15, a first limiting plate 16, a first nut seat 17, a first discharge mechanism and a third drive component. The first arrangement seat 14 is symmetrically provided with two groups. The inner sides of the two groups of first arrangement seats 14 are provided with first arrangement grooves 15 for storing the two ends of the chip. The lower end of the first arrangement seat 14 is provided with a first discharge mechanism for lowering the chip. The first limiting plate 16 is fixed to the inner side of the upper end of the first arrangement seat 14. The first nut seat 17 is fixed on the first limiting plate 16. One side of the first nut seat 17 is provided with a third drive component for providing power to the first discharge mechanism.
[0040] By setting two groups of first arrangement seats 14 and setting first arrangement grooves 15 inside the two groups of first arrangement seats 14 to fix both ends of the chip, the chip is automatically unloaded through the chip's own gravity and the cooperation of the first discharge mechanism.
[0041] The core belt arrangement mechanism includes a second arrangement seat 18, a second arrangement groove 19, a protective partition 20, a second limiting plate 21, a second nut seat 22, a second discharge mechanism 23 and a fourth drive assembly. The second arrangement seat 18 is symmetrically provided with two groups, and the inner sides of the two groups of second arrangement seats 18 are provided with second arrangement grooves 19 for storing the two ends of the core belt. The interior of the second arrangement groove 19 is also provided with a protective partition 20 for protecting the core belt. The lower end of the second arrangement seat 18 is provided with a second discharge mechanism 23 for lowering the core belt, and the outer side of the second discharge mechanism 23 is also provided with a collecting mechanism for collecting the protective partition 20. The second limiting plate 21 is fixed to the inner side of the upper end of the second arrangement seat 18, and the second nut seat 22 is fixed on the second limiting plate 21. One side of the second nut seat 22 is provided with a fourth drive assembly for providing power to the second discharge mechanism 23.
[0042] By setting two groups of second arrangement seats 18, and setting second arrangement grooves 19 on the inner sides of the two groups of second arrangement seats 18 for fixing the two ends of the core belt, and at the same time setting a group of protective partitions 20 on both sides of each group of core belts, the core belt is automatically unloaded through the gravity of the core belt and the protective partition 20 themselves and the cooperation of the second unloading mechanism 23.
[0043] The protective baffle 20 is located between two adjacent groups of core belts. Fixed columns 24 are provided at both ends of the protective baffle 20. A through groove 61 is provided in the second arrangement groove 19. One end of the fixed column 24 passes through the through groove 61 and extends to the outside. The thickness of the protective baffle 20 is greater than the thickness of the core belt.
[0044] The protective baffle 20 is provided because the core tape is a flexible structure and only adopts a containment structure fixed at both ends. When the core tape is stored in the second arrangement groove 19, it is easy for the core tape to be deformed from the middle end due to the accumulation of its own weight. By inserting the protective baffle 20 between the chips, the overall strength of the core tape can be increased, thereby preventing the core tape from deformation.
[0045] The first limiting plate 16 and the second limiting plate 21 are symmetrically provided with slide grooves 25, and the slide grooves 25 are slidably connected to the slide rod 5. The first discharging mechanism and the second discharging mechanism 23 have the same structure and both include a discharge bin 26, a first discharge trough 27, a first rotating seat 28, a second discharge trough 29, a fixed rod 30 and a rotating shaft 31. The top and bottom of the discharge bin 26 are each provided with a vertically connected first discharge trough 27, and a first rotating seat 28 is provided inside the discharge bin 26. A plurality of groups of second discharge troughs 29 are distributed in an annular array on the first rotating seat 28. When the first discharge trough 27 and the second discharge trough 29 are aligned, discharge is carried out. A plurality of groups of fixing rods 30 for fixing the first rotating seat 28 are distributed in an annular array on the inner side of the first rotating seat 28. A rotating shaft 31 is fixed at the center position of the fixed rod 30. One end of the rotating shaft 31 rotates through the discharge bin 26 and extends to the outside.
[0046] This machine supports the chip arrangement mechanism and the core strip arrangement mechanism as a whole by engaging the slide rod 5 with the slide groove 25, and at the same time ensures the stability of the movement of the first arrangement seat 14 and the second arrangement seat 18 when the first arrangement seat 14 and the second arrangement seat 18 move.
[0047] This machine drives the first rotating seat 28 to rotate, so that the first discharge chute 27 is aligned with the second discharge chute 29. At this time, the chips or core strips fall down, and at the same time, the linear slide 1 moves to automatically lay out the chips and core strips.
[0048] The third drive assembly and the fourth drive assembly are respectively powered by two groups of second drive assemblies. The third drive assembly and the fourth drive assembly have the same structure and both include a first pulley 32, a second pulley 33 and a belt 34. A hollow shaft 35 is rotatably installed on the outer side of the first nut seat 17 and the second nut seat 22. One end of the hollow shaft 35 is fixed with the first pulley 32, and one end of the rotating shaft 31 is fixedly connected to the second pulley 33. The first pulley 32 and the second pulley 33 are connected by a belt 34.
[0049] The collecting mechanism includes a second rotating seat 36, a first motor 37, a pushing rod 38, a column groove 39, an arc groove 40 and a partition collecting bin 41. The second rotating seat 36 is rotatably installed on one side of the second pulley 33. The second rotating seat 36 is driven by the first motor 37. Three groups of pushing rods 38 are distributed in a circular array on the second rotating seat 36. The pushing rods 38 are provided with column grooves 39 adapted to the fixed columns 24. The lower end of the second arrangement seat 18 is located on one side of the second arrangement groove 19 and is provided with an arc groove 40 adapted to the protective partition 20. A partition collecting bin 41 is provided at the outlet of the arc groove 40, and the partition collecting bin 41 is fixedly connected to the second arrangement seat 18.
[0050] When this machine is laying the core belt, as the core belt falls, the second rotating seat 36 is driven to rotate by the first motor 37, so that the column groove 39 on the second rotating seat 36 is engaged with the fixed column 24 on the protective partition 20, so that the protective partition 20 rotates in the arc groove 40 as the second rotating seat 36 rotates, and finally slides into the partition collection bin 41 for storage, thereby ensuring the subsequent laying of the core belt.
[0051] The partition collecting bin 41 includes a fixed frame 42, a telescopic frame 43, a receiving groove 44, a first limit block 45, a second limit block 46 and a slot 47. The fixed frame 42 is symmetrically arranged in two groups. The fixed frame 42 is provided with a receiving groove 44. A telescopic frame 43 is provided between the two groups of receiving grooves 44 of the fixed frames 42. A first limit block 45 is provided on the surface of one end of the fixed frame 42. Second limit blocks 46 are provided on the surfaces of both ends of the telescopic frame 43. The first limit block 45 limits the second limit block 46. A slot 47 is provided at the middle end of the bottom of the telescopic frame 43.
[0052] The partition collection bin 41 is composed of a fixed frame 42 and a telescopic frame 43, so that the partition collection bin 41 can be adjusted in length to meet the needs of the machine. At the same time, the maximum length of the partition collection bin 41 is limited by the first limit block 45 and the second limit block 46 to prevent the telescopic frame 43 from moving out of the fixed frame 42. At the same time, a slot 47 is provided at the middle end of the bottom of the telescopic frame 43. When a large number of protective partitions 20 are accumulated in the partition collection bin 41 and need to be cleaned, the staff can directly take the protective partitions 20 through the slot 47, which is more convenient and greatly increases the work efficiency of the staff.
[0053] The first driving assembly includes a bidirectional screw 48 and a second motor 49. The bidirectional screw 48 is rotatably installed on the mounting block 4. The bidirectional screw 48 is driven by the second motor 49 located on the outer wall of the support seat 2. The second driving assembly includes a bidirectional motor 50, a telescopic shaft 51, a first gear 52 and a second gear 53. The bidirectional motor 50 is fixed on the mounting block 4. The output ends of the bidirectional motors 50 are fixed with telescopic shafts 51. One end of the telescopic shaft 51 is fixed with a first gear 52. The second gear 53 is fixed on the hollow shaft 35. The first gear 52 is meshed with the second gear 53. The inner ends of the first nut seat 17 and the second nut seat 22 are respectively rotatably connected with the telescopic shaft 51.
[0054] This machine sets two sets of bidirectional screws 48 to cooperate with the first nut seat 17 and the second nut seat 22 to drive the first arrangement seat 14 and the second arrangement seat 18 to move respectively, and adjust the distance between the two adjacent sets of first arrangement seats 14 or second arrangement seats 18, so that the chip arrangement mechanism and the core strip arrangement mechanism can be suitable for chips and core strips of different lengths, which greatly increases the scope of use of this machine. At the same time, this machine drives the telescopic shaft 51 to rotate through the bidirectional motor 50, and then drives the hollow shaft 35 to rotate through the engagement between the first gear 52 on the telescopic shaft 51 and the second gear 53 on the hollow shaft 35, thereby driving the first pulley 32 to rotate, and then driving the second pulley 33 to rotate through the linkage of the belt 34, thereby achieving the purpose of simultaneously driving the two sets of first rotating seats 28 located on the same side to rotate. At the same time, this machine adopts this linkage structure to reduce the use of the driving source and thus reduce the cost of this machine.
[0055] The lifting assembly includes a threaded rod 54, a lifting seat 55, a guide rod 56 and a third motor 57. The threaded rod 54 is rotatably installed between a group of mounting plates 6 and a top plate 7. The guide rod 56 is fixedly installed between another group of mounting plates 6 and a top plate 7. One end of the lifting seat 55 is threadedly connected to the threaded rod 54, and the other end of the lifting seat 55 is slidingly connected to the guide rod 56. The pushing assembly includes a fixed block 58 and a telescopic cylinder 59. The fixed block 58 is symmetrically fixed to the bottom of the lifting seat 55. The telescopic cylinder 59 is fixed on the fixed block 58. The output end of the telescopic cylinder 59 is fixed with a connecting plate 60. The lower end of the connecting plate 60 is fixedly connected to the outer wall of the upper end of the upper hopper 8.
[0056] This machine drives the threaded rod 54 to rotate through the third motor 57, thereby driving the lifting seat 55 to move up and down, thereby driving the upper bin 8 to move up and down, and at the same time, the pushing component can push the upper bin 8 to move horizontally through the telescopic cylinder 59, so that the upper bin 8 can be lowered to facilitate personnel to add materials. This machine places the telescopic cylinder 59 at the bottom of the lifting seat 55, and increases the upward stroke to increase the downward movement stroke of the upper bin 8, thereby further achieving the purpose of facilitating the staff to add materials.
[0057] When the automatic pipe routing machine for the heat dissipation core of the radiator is actually used, two workers are respectively located on the front and rear sides of the assembly platform. The workers only need to place the main board and side panels of the heat dissipation core. Then the machine moves on the linear slide 1 and cooperates with the rotation of the first rotating seat 28 on the chip placement mechanism to automatically place the core. After that, the machine resets and cooperates with the rotation of the first rotating seat 28 on the core tape placement mechanism to automatically place the core tape. When there are not many chips and core tapes on the chip placement mechanism and the core tape placement mechanism, when the chip placement mechanism moves to one side, the linear slide 1 is stopped, and the loading bin 8 is pushed to separate from the first arrangement seat 14 by the telescopic cylinder 59, and then rotated by the threaded rod 54 to move the loading bin 8 downward. At this time, the workers add chips. Similarly, the core tape is also added in this way. After the adding is completed, it is reset. Through the structural design on the baffle 9, the chips or core tapes in the loading bin 8 will be automatically unloaded as the loading bin 8 engages with the first arrangement seat 14 or the second arrangement seat 18.
[0058] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An automatic pipe laying machine for a heat dissipation core of a radiator, comprising a linear slide (1), wherein the linear slide (1) is symmetrically provided with two groups, and the two groups of linear slides (1) are slidably connected to support seats (2), and a fixing plate (3) is fixed at a position at the middle end between the two groups of support seats (2), characterized in that: The fixing plate (3) is provided with mounting blocks (4) at the middle positions of the front and rear sides, and the mounting blocks (4) are provided with a first drive assembly and a second drive assembly, the second drive assembly is located on the inner side of the first drive assembly, and the front side of the first drive assembly is symmetrically provided with a slide bar (5), the two ends of the slide bar (5) are fixedly connected to the inner wall of the support seat (2), the first drive assembly located on the front side of the fixing plate (3) is provided with a chip arrangement mechanism, and the first drive assembly located on the rear side of the fixing plate (3) is provided with a core belt arrangement mechanism; The outer walls of the top ends of the two groups of support seats (2) are both provided with mounting plates (6), a top plate (7) is provided above the fixing plate (3), two groups of lifting assemblies are symmetrically provided between the top plate (7) and the mounting plate (6), and both groups of lifting assemblies are provided with loading bins (8) for loading the chip arrangement mechanism and the core strip arrangement mechanism; A pushing component for pushing the loading bin (8) to move is provided on the inner side of the loading bin (8), and the pushing component is fixedly connected to the lifting component; The bottom of the loading bin (8) is provided with a baffle (9) for preventing the chips or core strips from falling, and limiting columns (10) are fixed at both ends of the baffle (9). A mounting groove (11) is provided on the outer wall of the lower end of the loading bin (8), and a spring guide rod (12) is fixed in the mounting groove (11). A connecting block (13) is sleeved on the spring guide rod (12), and the lower end of the connecting block (13) is fixedly connected to the limiting column (10); The core belt arrangement mechanism comprises a second arrangement seat (18), a second arrangement groove (19), a protective partition (20), a second limiting plate (21), a second nut seat (22), a second discharge mechanism (23) and a fourth driving assembly. The second arrangement seat (18) is symmetrically provided with two groups. The inner sides of the two groups of second arrangement seats (18) are provided with a second arrangement groove (19) for storing the two ends of the core belt. The inner sides of the second arrangement groove (19) are also provided with a protective partition (20) for protecting the core belt. The lower end of the second arrangement seat (18) is provided with a second discharge mechanism (23) for lowering the core belt. The outer side of the second discharge mechanism (23) is also provided with a second discharge mechanism (23) for lowering the core belt. A collecting mechanism for collecting by a protective partition (20), a second limiting plate (21) is fixed on the inner side of the upper end of the second arrangement seat (18), a second nut seat (22) is fixed on the second limiting plate (21), and a fourth drive component for providing power for a second discharge mechanism (23) is provided on one side of the second nut seat (22); the protective partition (20) is located between two adjacent groups of core belts, both ends of the protective partition (20) are provided with fixing columns (24), a through groove (61) is provided in the second arrangement groove (19), one end of the fixing column (24) passes through the through groove (61) and extends to the outside, and the thickness of the protective partition (20) is greater than the thickness of the core belt.
2. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 1, characterized in that: The chip arrangement mechanism comprises a first arrangement seat (14), a first arrangement groove (15), a first limiting plate (16), a first nut seat (17), a first discharge mechanism and a third driving component. The first arrangement seat (14) is symmetrically provided with two groups. The inner sides of the two groups of the first arrangement seats (14) are provided with first arrangement grooves (15) for storing both ends of the chip. The lower end of the first arrangement seat (14) is provided with a first discharge mechanism for lowering the chip. The inner side of the upper end of the first arrangement seat (14) is fixed with a first limiting plate (16). The first limiting plate (16) is fixed on the first nut seat (17). One side of the first nut seat (17) is provided with a third driving component for providing power to the first discharge mechanism.
3. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 2, characterized in that: The first limiting plate (16) and the second limiting plate (21) are both symmetrically provided with a slide groove (25), and the slide groove (25) is slidably connected to the slide rod (5). The first discharge mechanism and the second discharge mechanism (23) are the same in structure, and both include a discharge bin (26), a first discharge trough (27), a first rotating seat (28), a second discharge trough (29), a fixed rod (30) and a rotating shaft (31). The top and bottom of the discharge bin (26) are both provided with a vertically connected first discharge trough (27). A first rotating seat (28) is provided inside, and a plurality of second material discharge troughs (29) are distributed in a circular array on the first rotating seat (28). Material is discharged when the first material discharge trough (27) and the second material discharge trough (29) are aligned. A plurality of fixing rods (30) for fixing the first rotating seat (28) are distributed in a circular array on the inner side of the first rotating seat (28). A rotating shaft (31) is fixed at the center position of the fixing rod (30), and one end of the rotating shaft (31) rotates through the material discharge bin (26) and extends to the outside.
4. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 3, characterized in that: The third drive assembly and the fourth drive assembly are powered by two groups of second drive assemblies respectively. The third drive assembly and the fourth drive assembly have the same structure and both include a first pulley (32), a second pulley (33) and a belt (34). The outer sides of the first nut seat (17) and the second nut seat (22) are both rotatably mounted with a hollow shaft (35). One end of the hollow shaft (35) is fixed with the first pulley (32). One end of the rotating shaft (31) is fixedly connected to the second pulley (33). The first pulley (32) and the second pulley (33) are connected via a belt (34).
5. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 4, characterized in that: The collecting mechanism comprises a second rotating seat (36), a first motor (37), a pushing rod (38), a column groove (39), an arc groove (40) and a partition collecting bin (41). The second rotating seat (36) is rotatably mounted on one side of the second pulley (33). The second rotating seat (36) is driven by the first motor (37). Three groups of pushing rods (38) are distributed in a circular array on the second rotating seat (36). The pushing rods (38) are provided with a column groove (39) adapted to the fixed column (24). The lower end of the second arrangement seat (18) is provided with an arc groove (40) adapted to the protective partition (20) at a position on one side of the second arrangement groove (19). A partition collecting bin (41) is provided at the outlet of the arc groove (40). The partition collecting bin (41) is fixedly connected to the second arrangement seat (18).
6. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 5, characterized in that: The partition collecting bin (41) comprises a fixed frame (42), a telescopic frame (43), a receiving groove (44), a first limiting block (45), a second limiting block (46) and a slot (47). The fixed frame (42) is symmetrically arranged in two groups. The fixed frame (42) is provided with a receiving groove (44). A telescopic frame (43) is provided between the receiving grooves (44) of the two groups of fixed frames (42). A first limiting block (45) is provided on the surface of one end of the fixed frame (42). Second limiting blocks (46) are provided on the surfaces of both ends of the telescopic frame (43). The first limiting block (45) limits the second limiting block (46). A slot (47) is provided at the middle end of the bottom of the telescopic frame (43).
7. The automatic pipe routing machine for the heat dissipation core of a radiator according to any one of claims 4 to 6, characterized in that: The first driving assembly includes a bidirectional screw (48) and a second motor (49). The bidirectional screw (48) is rotatably mounted on the mounting block (4). The bidirectional screw (48) is driven by the second motor (49) located on the outer wall of the support seat (2). The second driving assembly includes a bidirectional motor (50), a telescopic rotating shaft (51), a first gear (52) and a second gear (53). The bidirectional motor (50) is fixed on the mounting block (4). The output end of the bidirectional motor (50) is fixed with a telescopic rotating shaft (51). One end of the telescopic rotating shaft (51) is fixed with a first gear (52). The second gear (53) is fixed on the hollow shaft (35). The first gear (52) is meshed with the second gear (53). The inner ends of the first nut seat (17) and the second nut seat (22) are respectively rotatably connected to the telescopic rotating shaft (51).
8. The automatic pipe routing machine for the heat dissipation core of a radiator according to claim 1, characterized in that: The lifting assembly includes a threaded rod (54), a lifting seat (55), a guide rod (56) and a third motor (57), wherein the threaded rod (54) is rotatably mounted between a group of mounting plates (6) and a top plate (7), and the guide rod (56) is fixedly mounted between another group of mounting plates (6) and a top plate (7), one end of the lifting seat (55) is threadedly connected to the threaded rod (54), and the other end of the lifting seat (55) is slidably connected to the guide rod (56), and the pushing assembly includes a fixed block (58) and a telescopic cylinder (59), wherein the fixed block (58) is symmetrically fixed to the bottom of the lifting seat (55), and the telescopic cylinder (59) is fixed on the fixed block (58), and the output end of the telescopic cylinder (59) is fixed with a connecting plate (60), and the lower end of the connecting plate (60) is fixedly connected to the outer wall of the upper end of the upper bin (8).
Citation Information
Patent Citations
Automatic assembly equipment for automatically feeding automobile radiator core body
CN113441933A
Integrated assembling device for radiator core
CN220575165U