Cooling plate device

Through the design of the vertical structure of the cool plate device, combined with the frame, power, transmission, fork and tensioning components, the horizontal cool plate device has a large area, small quantity and poor quality, and has achieved efficient production and low-cost cool plate products.

CN111348374BActive Publication Date: 2025-08-22SHANGHAI ZHONGJI MACHINERY
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Patent Information

Application Number
CN202010182957.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-03-16
Publication Date
2025-08-22
Estimated Expiration
2040-03-16

AI Technical Summary

Technical Problem

The existing horizontal cooling panel device covers a large area, has a small number of cooling panels and poor product quality, which cannot meet modern production needs.

Method used

A vertical structure cool plate device is adopted to form a vertical structure cool plate device through the combination of frame components, power components, transmission components, fork components and tensioning components, reducing the floor area and improving the number and production efficiency of cool plates.

Benefits of technology

The cooling plate device has achieved the effect of small floor area, large number of cooling plates, high production efficiency and good product quality, and has novel design and low cost, with good economic benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

A cooling plate device includes a frame assembly, a power assembly, a transmission assembly, a fork assembly, and a tensioning assembly. The frame assembly is horizontally arranged on a horizontal support surface, the power assembly is mounted on the frame assembly, two or more transmission assemblies are longitudinally arranged on the frame assembly, and multiple fork assemblies are transversely mounted on the transmission assembly. The power assembly drives the transmission assembly and the fork assembly to rotate cyclically in the longitudinal direction of the frame assembly. The tensioning assembly is used to tension the transmission assembly and eliminate the inertial impact caused to the transmission assembly and the fork assembly when the power assembly starts or stops. The cooling plate device provided by the present invention is a vertical cooling plate device with a small footprint, a large number of cooling plates, high production efficiency, and good cooling plate product quality. The present invention is novel and unique in design, simple to manufacture, low in cost, and has good scalability. It can create better economic benefits for enterprises and has great promotion and application value.
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Description

Technical Field

[0001] The invention relates to a cooling plate device, in particular to a cooling plate device used in the production process of artificial boards, especially soft surface sandwich panels, and belongs to the technical field of sandwich panel production equipment. Background Art

[0002] Soft surface sandwich panel is a kind of man-made board material, usually refers to a sandwich panel made of polyurethane, phenolic or other main agents mixed with flame retardants, smoke suppressants, curing agents, foaming agents or other additives into an adhesive, foamed under heat and pressure, and then bonded together with the upper and lower soft surface materials after foaming, and then cooled and solidified to form a sandwich panel.

[0003] The specifications of soft surface sandwich panels are generally: thickness 20-150 mm, width 1200 mm, and custom length.

[0004] Soft surface sandwich panels are generally used for insulation and fire protection of building wall panels.

[0005] During the production of soft-surface sandwich panels, finished but not yet fully cooled soft-surface panels lack strength and are easily damaged during transportation and packaging. Therefore, a cooling and hardening process, commonly referred to as "cold panel" in the industry, is essential before transportation and packaging. In actual production, natural cooling is generally used to achieve cooling and hardening of soft-surface sandwich panels.

[0006] When using natural cooling to achieve the cooling and hardening process of the soft surface sandwich panels, a certain gap needs to be set between the soft surface sandwich panels to facilitate ventilation, thereby accelerating the cooling speed. In order to ensure the smooth cooling of the panels, a cooling panel device is usually used to cool and harden the soft surface sandwich panels.

[0007] In the prior art, the cooling plate device used for cooling and hardening the soft surface sandwich panel is generally a horizontal structure, such as:

[0008] The utility model patent (application number 201821155467.3) provides a "cooling device for artificial boards", in which the cooling device includes a second base and a conveyor belt connected to the second base, the conveyor belt is driven by a conveyor belt motor, and a plurality of artificial board supports are provided on the surface of the conveyor belt. The artificial board supports include a mounting block connected to the conveyor belt and a clamping rod fixedly connected to the mounting block for clamping the artificial board. The various artificial board supports are arranged at intervals along the conveying direction of the conveyor belt, and the sliding frame can slide relative to the first base along the conveying direction of the conveyor belt;

[0009] The invention patent (application number 201710010863.0) discloses an "automatic artificial board cooling line", in which the cooling device includes a feed conveying device, a cooling conveying device and a discharging conveying device arranged in sequence, and the cooling conveying device includes a cooling conveying frame, on which a cooling conveying belt is installed. The cooling conveying belt is driven by a cooling conveying motor, and a clamping rod is fixed to the surface of the cooling conveying belt through a mounting block. Multiple clamping rods and multiple mounting blocks are spaced apart along the conveying direction, and multiple clamping rods are arranged longitudinally spaced apart on the cooling conveying belt.

[0010] These horizontal cooling plate devices provide a good platform for the cooling and hardening of man-made panels, especially soft surface sandwich panels. However, we can Figure 1 As shown in the schematic diagram of the structure of a horizontal cooling plate device in the prior art, this type of horizontal cooling plate device can only cool one side.

[0011] In order to meet the needs of mass production of artificial boards, especially soft surface sandwich panels, a large number of cooling plate devices must be installed. Since horizontal cooling plate devices occupy a large area, a large number of cooling plate devices require a large area of ​​site.

[0012] In addition, when a horizontal cooling plate device is used for cooling, the sandwich panel inside the horizontal cooling plate device is in a vertical state, the contact area between the lower end of the sandwich panel and the cooling plate device is very small, and the lower edge of the sandwich panel is under greater pressure. Therefore, it is very easy to cause damage to the lower edge of the sandwich panel, affecting the quality of the product.

[0013] In short, the horizontal cooling plate device in the prior art is bulky, occupies a large area, has a small number of cooling plates, and has poor cooling plate product quality, and cannot meet the needs of modern production. Summary of the Invention

[0014] In order to overcome the shortcomings of the existing technology, an embodiment of the present invention provides a cooling plate device for cooling and hardening artificial boards, especially soft surface sandwich panels, with the aim of reducing the footprint of the cooling plate device, increasing the number of cooling plates, and improving the efficiency of the cooling plates and the quality of the cooling plate products.

[0015] To achieve the above objectives, the embodiments of the present invention provide the following technical solutions:

[0016] A cooling plate device, characterized by comprising:

[0017] Frame assembly, power assembly, transmission assembly, fork assembly and tensioning assembly;

[0018] The frame assembly is transversely placed on a horizontal support surface, the power assembly is mounted on the frame assembly, two or more sets of the transmission assemblies are longitudinally arranged on the frame assembly, and multiple sets of the fork assemblies are transversely mounted on the transmission assembly, the power assembly drives the transmission assembly together with the fork assemblies to perform cyclic rotation in the longitudinal direction of the frame assembly, and the tensioning assembly is used to tension the transmission assembly and eliminate inertial impact caused to the transmission assembly and the fork assembly when the power assembly is started or stopped;

[0019] The frame assembly includes support legs on both sides, an upper cross beam frame, a lower cross beam frame, a chain support frame, a chain guide, a bearing support and a tensioning seat. The support legs on both sides are placed on a horizontal supporting surface, and the two ends of the upper cross beam frame are respectively connected to the upper parts of the support legs on both sides, and the two ends of the lower cross beam frame are respectively connected to the lower parts of the support legs on both sides. The chain support frame is arranged between the upper cross beam frame and the lower cross beam frame, the chain guide is fixed on the chain support frame, the bearing support is fixed above the upper cross beam frame on both sides of the chain support frame, and the tensioning seat is fixed below the lower cross beam frame on both sides of the chain support frame, and the tensioning seat includes two opposite connecting plates;

[0020] The power assembly includes a motor and a reducer, the motor drives the reducer to rotate, and the reducer is installed on the upper crossbeam;

[0021] The transmission assembly includes a main transmission shaft, a bearing seat, a driving bearing, a driving sprocket, a driven sprocket, a driven shaft and a chain, the main transmission shaft is connected to the reducer, the bearing seat is fixed on the bearing support, the driving bearing is installed in the bearing seat and sleeved on the main transmission shaft, the driving sprocket is fixedly installed on the main transmission shaft, the driven sprocket is installed on the driven shaft, the chain is composed of a plurality of chain links, each of the chain links is placed on the chain guide and connected to the driving sprocket and the driven sprocket, and the driving sprocket drives the driven sprocket to rotate through the chain;

[0022] The shift fork assembly includes a shift fork and a shift fork connecting rod. The shift fork includes an upper shift fork tube, a lower shift fork tube, and a rear shift fork tube. The upper shift fork tube and the lower shift fork tube are respectively connected to the rear shift fork tube to form a U-shaped member. One side of the shift fork connecting rod is connected to the outer side of the chain link. The other side of the shift fork connecting rod is connected to the rear shift tube to arrange multiple shift forks at equal distances.

[0023] The cam is secured to the upper edge of the support frame, and the cam is secured to the lower edge of the support frame by a spring.

[0024] Furthermore, the main transmission shaft is connected to the driving sprocket via an expansion connection sleeve.

[0025] Furthermore, the chain link includes a connecting plate and segments, the outer side of the connecting plate is used to connect the fork connecting rod, and two segments are fixed side by side on the inner side of the connecting plate, the two segments with a smaller spacing are inner links, and the two segments with a larger spacing are outer links, and through holes are provided at both ends of the segments, the two segments of the inner link are inserted between the two segments of the outer link, and the through holes on the inner link are aligned with the through holes on the outer link, and connecting pieces are inserted into the aligned through holes to connect the inner link and the outer link front to back, and multiple inner links and multiple outer links are connected front to back through multiple connecting pieces to form the chain;

[0026] The connecting part includes a roller, a bushing, a roller, a pin, a flat washer for the pin, an elastic retaining ring for the shaft, and a straight-through pressure-injection oil cup, wherein the roller is arranged between the through holes of the inner chain link, the bushing is arranged in the through hole of the inner chain link, and the roller is arranged outside the through hole of the outer chain link. The roller and the roller are connected in series between the through holes of the inner chain link and outside the through holes of the outer chain link through the pin. The end of the pin is covered with the flat washer for the pin, and the outer side of the flat washer for the pin is locked by the elastic retaining ring for the shaft clamped in the groove at the end of the pin, and the straight-through pressure-injection oil cup is connected at the axis center of the end of the pin.

[0027] Furthermore, the frame assembly also includes a middle support leg and an oblique support, the middle support leg is arranged between the two side legs and is respectively connected to the upper cross beam frame and the lower cross beam frame, and the oblique supports are respectively arranged at the lower parts of the two side legs and the connection between the two side legs and the middle support leg and the upper cross beam frame and the lower cross beam frame.

[0028] Furthermore, the upper fork tube and the lower fork tube are respectively covered with rubber heat shrink tubing, and rubber blocks are installed on the top of the upper fork tube and the lower fork tube; a reinforcement tube is also provided between the upper fork square tube and the lower fork square tube.

[0029] Furthermore, the chain guide is an L-shaped chain guide, the motor is a variable frequency motor with a braking function and an encoding function, and the reducer is a single-axis input and dual-axis output reducer.

[0030] Furthermore, the present invention also provides a cooling plate system, the cooling plate system comprising:

[0031] A cooling plate device and two plate conveying devices arranged on both sides of the cooling plate device, respectively used for feeding and discharging plates; the cooling plate device is any one of the cooling plate devices described above.

[0032] Furthermore, the plate conveying device includes a conveying platform, a conveying chain, a conveying power assembly and a conveying tensioning assembly. The conveying chain is installed on the top of the conveying platform and one end of it is connected to the first fork assembly in a horizontal position at the bottom of the cooling plate device. The conveying power assembly is installed inside the conveying platform to drive the rotation of the conveying chain pair. The conveying tensioning assembly is installed on one side of the conveying platform to tension the conveying chain.

[0033] Furthermore, the present invention also provides a combined cooling plate system, the combined cooling plate system comprising:

[0034] Two sets of cooling plate devices arranged in parallel, a plate conveying device arranged on one side of one cooling plate device for feeding plates, a plate conveying device arranged on the other side of the cooling plate device for discharging plates, and a transfer device arranged between the two sets of cooling plate devices arranged in parallel;

[0035] The cooling plate device is any one of the cooling plate devices described above.

[0036] Further:

[0037] The plate conveying device includes a conveying platform, a conveying chain, a conveying power assembly and a conveying tensioning assembly. The conveying chain is installed on the top of the conveying platform and one end of the conveying chain is connected to the first fork assembly in a horizontal position at the bottom of the cooling plate device. The conveying power assembly is installed inside the conveying platform to drive the rotation of the conveying chain. The conveying tensioning assembly is installed inside the conveying platform to tension the conveying chain.

[0038] The transfer device includes a transfer platform, a transfer chain, a transfer power assembly and a transfer tensioning assembly. The transfer chain is installed on the top of the transfer platform and its two ends are respectively connected to the first fork assembly in a horizontal position at the bottom of the two groups of parallel arranged cooling plate devices. The transfer power assembly is installed inside the transfer platform to drive the rotation of the transfer chain, and the transfer tensioning assembly is installed inside the transfer platform to tension the transfer chain.

[0039] Compared with the prior art, the present invention has the following beneficial effects and significant improvements:

[0040] 1) The cooling plate device provided in the embodiments of the present invention forms a vertical cooling plate device through the creative combination of a frame assembly, a power assembly, a transmission assembly, a shift fork assembly, and a tensioning assembly. This vertical plate device occupies a small area, has a large number of cooling plates, high production efficiency, and good cooling plate product quality;

[0041] 2) The cooling plate device provided by the embodiment of the present invention has a novel and unique design, is simple to manufacture, is low in cost, and has good scalability, and can create better economic benefits for enterprises. Therefore, it has great promotion and application value. BRIEF DESCRIPTION OF THE DRAWINGS

[0042] In order to more clearly illustrate the technical solution of the present invention, the following briefly introduces the drawings required for the embodiments of the present invention.

[0043] Obviously, the drawings described below are only drawings of some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work, but these other drawings also belong to the drawings required for use in the embodiments of the present invention.

[0044] Figure 1 It is a structural schematic diagram of a horizontal cooling plate device in the prior art;

[0045] Figure 2 A schematic structural diagram of a cooling plate device provided by an embodiment of the present invention;

[0046] Figure 3 A schematic structural diagram of a frame assembly of a cooling plate device provided by an embodiment of the present invention;

[0047] Figure 4 A schematic structural diagram of a power assembly and a transmission assembly of a cooling plate device provided in an embodiment of the present invention;

[0048] Figure 5 A schematic diagram of the three-dimensional structure of a chain link in a cooling plate device provided by an embodiment of the present invention;

[0049] Figure 6A schematic diagram of the exploded structure of a chain link in a cooling plate device provided by an embodiment of the present invention;

[0050] Figure 7 A schematic structural diagram of a fork assembly of a cooling plate device provided by an embodiment of the present invention;

[0051] Figure 8 A schematic diagram of the exploded structure of a tensioning assembly of a cooling plate device provided by an embodiment of the present invention;

[0052] Figure 9 A schematic structural diagram of a cooling plate system provided by an embodiment of the present invention;

[0053] Figure 10 A schematic top view of a cooling plate system provided by an embodiment of the present invention;

[0054] Figure 11 A schematic structural diagram of a plate conveying device provided in an embodiment of the present invention;

[0055] Figure 12 A schematic structural diagram of a combined cooling plate system provided in an embodiment of the present invention;

[0056] Figure 13 A schematic top view of the structure of a combined cooling plate system provided by an embodiment of the present invention;

[0057] Figure 14 A schematic structural diagram of a transfer device provided in an embodiment of the present invention.

[0058] In the picture:

[0059] 100-cooling plate device;

[0060] 110-frame assembly, 11-side legs, 12-upper beam frame, 13-lower beam frame, 14-chain support frame, 15-chain guide rail, 16-bearing support, 17-tensioning seat, 18-middle leg, 19-oblique support;

[0061] 120-power assembly, 21-motor, 22-reducer;

[0062] 130- transmission assembly, 31- main drive shaft, 32- bearing seat, 33- driving bearing, 34- driving sprocket, 35- driven sprocket, 36- driven shaft, 37- chain, 37a- inner link, 37b- outer link, 371- connecting plate, 372 segment, 3721- through hole, 373- roller, 374- bushing, 375- roller, 376- pin, 377- flat washer for pin, 378- elastic circlip for shaft, 379- straight-through pressure injection cup, 38- expansion sleeve;

[0063] 140-shift fork assembly, 41-shift fork, 411-upper shift fork tube, 412-lower shift fork tube, 413-rear fork tube, 414-reinforcement tube, 42-shift fork connecting rod;

[0064] 150-tensioning assembly, 51-slider, 52-disc spring lower pressure column, 53-disc spring, 54-disc spring sleeve, 55-disc spring upper pressure cover, 56-adjusting screw, 57-fixing plate, 58-guide bar, 59-driven bearing;

[0065] 200 / 200'-plate conveying device;

[0066] 210- conveyor platform, 220- conveyor chain, 230- conveyor power assembly, 240- conveyor tensioning assembly;

[0067] 300-transfer device;

[0068] 310-transfer platform, 320-transfer chain, 330-transfer power assembly, 340-transfer tensioning assembly. DETAILED DESCRIPTION

[0069] In order to make the purpose, technical solutions, beneficial effects and significant improvements of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in combination with the drawings provided in the embodiments of the present invention. Obviously, all the described embodiments are only partial embodiments of the present invention, rather than all 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.

[0070] It should be noted that the terms "first", "second" and "third" (if any) in the specification and claims of the present invention and the drawings of the embodiments of the present invention are only used to distinguish different objects, rather than to describe a specific order. In addition, the term "comprising" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally also includes steps or units that are not listed, or optionally also includes other steps or units inherent to these processes, methods, products or devices.

[0071] It should be understood that, in the description of the embodiments of the present invention, terms such as "upper", "lower", "top", "bottom" and other indicative orientation or positional terms are only based on the orientation or positional relationship shown in the drawings of the embodiments of the present invention. They are for the convenience of describing the embodiments of the present invention and simplifying the description, and do not indicate or imply that the device or element must have a specific orientation, specific orientation structure and operation. Therefore, they cannot be understood as limiting the present invention.

[0072] In the present invention, unless otherwise specified or limited, the terms "installed," "connected," "fixed," and the like should be understood broadly. For example, they may refer to fixed connections, detachable connections, movable connections, or integration; they may refer to direct connections or indirect connections through an intermediate medium; they may refer to internal communication between two components or interaction between two components, unless otherwise specified. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0073] It should also be noted that the following specific embodiments may be combined with each other, and the same or similar concepts or processes therein may not be repeated in some embodiments.

[0074] The technical solution of the present invention is described in detail below with reference to specific embodiments.

[0075] Example 1

[0076] This embodiment provides a cooling plate device.

[0077] like Figure 2 The structural diagram of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0078] A cooling plate device 100 includes: a frame assembly 110, a power assembly 120, a transmission assembly 130, a fork assembly 140 and a tensioning assembly 150;

[0079] The frame assembly 110 is placed horizontally on a horizontal support surface, the power assembly 120 is installed on the frame assembly 110, two or more sets of transmission assemblies 130 are arranged longitudinally on the frame assembly 110, and multiple sets of fork assemblies 140 are installed transversely on the transmission assembly 30. The power assembly 120 drives the transmission assembly 130 and the fork assembly 140 to rotate cyclically in the longitudinal direction of the frame assembly 110. The tensioning assembly 150 is used to tension the transmission assembly 130 and eliminate the inertial impact caused to the transmission assembly 130 and the fork assembly 140 when the power assembly 120 starts or stops.

[0080] like Figure 3 A schematic structural diagram of a frame assembly of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0081] The frame assembly 110 includes two side legs 11, an upper crossbeam frame 12, a lower crossbeam frame 13, a chain support frame 14, a chain guide 15, a bearing support 16 and a tensioning seat 17. The two side legs 11 are placed on a horizontal support surface, the two ends of the upper crossbeam frame 12 are respectively connected to the upper parts of the two side legs 11, and the two ends of the lower crossbeam frame 13 are respectively connected to the lower parts of the two side legs 11. The chain support frame 14 is arranged between the upper crossbeam frame 12 and the lower crossbeam frame 13, the chain guide 15 is fixed on the chain support frame 14, the bearing support 16 is fixed above the upper crossbeam frame 12 on both sides of the chain support frame 14, and the tensioning seat 17 is fixed below the lower crossbeam frame 13 on both sides of the chain support frame 14. The tensioning seat 17 includes two opposing connecting plates.

[0082] Furthermore, the chain guide rail 15 is an L-shaped chain guide rail.

[0083] Furthermore, the frame assembly 110 also includes a middle support leg 18 and an oblique support 19. The middle support leg 18 is arranged between the two side legs 11 and is respectively connected to the upper crossbeam frame 12 and the lower crossbeam frame 13. The oblique supports 19 are respectively arranged at the lower parts of the two side legs 11 and at the connections between the two side legs 11 and the middle support leg 18 and the upper crossbeam frame 12 and the lower crossbeam frame 13.

[0084] like Figure 4 The structural diagram of the power assembly and transmission assembly of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0085] The power assembly 120 includes a motor 21 and a reducer 22 . The motor 21 drives the reducer 22 to rotate. The reducer 22 is installed on the upper crossbeam 12 .

[0086] Furthermore, the motor 21 is a variable frequency motor with a braking function and an encoding function, and the reducer 22 is a single-axis input and dual-axis output reducer.

[0087] like Figure 4 The structural diagram of the power assembly and transmission assembly of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0088] The transmission assembly 130 includes a main transmission shaft 31, a bearing seat 32, a driving bearing 33, a driving sprocket 34, a driven sprocket 35, a driven shaft 36 and a chain 37. The main transmission shaft 31 is connected to the reducer 22, the bearing seat 32 is fixed on the bearing support 16, the driving bearing 33 is installed in the bearing seat 32 and is sleeved on the main transmission shaft 31, the driving sprocket 34 is fixedly installed on the main transmission shaft 31, the driven sprocket 35 is installed on the driven shaft 36, and the chain 37 is composed of a plurality of chain links, each of which is placed on the chain guide 15 and connected to the driving sprocket 34 and the driven sprocket 35. The driving sprocket 34 drives the driven sprocket 35 to rotate through the chain 37.

[0089] Furthermore, the main transmission shaft 31 is connected to the driving sprocket 34 via an expansion sleeve 38 .

[0090] like Figure 5 A schematic diagram of the three-dimensional structure of a chain link in a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0091] Furthermore, the chain link includes a connecting plate 371 and a segment 372. The outer side of the connecting plate 371 is used to connect the fork connecting rod 42. Two segments 372 are fixed side by side on the inner side of the connecting plate 372. The two segments 372 with a smaller distance between them are inner chain links 37a, and the two segments with a larger distance between them are outer chain links 37b. Through holes 3721 are provided at both ends of the segment 372. The two segments 372 of the inner chain link 37a are inserted between the two segments 372 of the outer chain link 37b, and the through holes 3721 on the inner chain link 37a are aligned with the through holes 3721 on the outer chain link 37b. Connectors are inserted into the aligned through holes 3721 to connect the inner chain link 37a and the outer chain link 37b front to back. Multiple inner chain links 37a and multiple outer chain links 37b are connected front to back through multiple connectors to form a chain 37.

[0092] Figure 6 A schematic diagram of the exploded structure of a chain link in a cooling plate device provided by an embodiment of the present invention;

[0093] The connecting parts include roller 373, bushing 374, roller 375, pin 376, flat washer 377 for pin, elastic circlip 378 for shaft, and straight-through pressure injection cup 379. Among them, roller 373 is arranged between the through hole 3711 of the inner link 37a, bushing 374 is arranged in the through hole 3721 of the inner link 37a, roller 375 is arranged outside the through hole 3711 of the outer link 37b, and roller 375 and the roller 373 are connected in series between the through hole 3721 of the inner link 37a and the outside of the through hole 3721 of the outer link 37b through the pin 376. The end of the pin 376 is covered with a flat washer 377 for the pin. The outer side of the flat washer 377 for the pin is locked by an elastic circlip 378 for the shaft clamped in the groove at the end of the pin 376. A straight-through pressure-injection oil cup 379 is connected to the axis center of the end of the pin 376.

[0094] like Figure 7 A schematic structural diagram of a fork assembly of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0095] The fork assembly 140 includes a fork 41 and a fork connecting rod 42. The fork 41 includes an upper fork tube 411, a lower fork tube 412 and a rear fork tube 413. The upper fork tube 411 and the lower fork tube 412 are respectively connected to the rear fork tube 413 to form a U-shaped component. One side of the fork connecting rod 42 is connected to the outer side of the chain link, and the other side of the fork connecting rod 42 is connected to the rear fork tube 413 to arrange multiple forks 41 at equal distances.

[0096] Furthermore, the upper fork tube 411 and the lower fork tube 412 are respectively covered with rubber heat shrink tubing, and rubber blocks are installed on the top of the upper fork tube 411 and the lower fork tube 412.

[0097] Furthermore, a reinforcement tube 414 is provided between the upper fork tube 411 and the lower fork tube 412 .

[0098] like Figure 8 The schematic diagram of the exploded structure of the tensioning assembly of a cooling plate device provided by an embodiment of the present invention is shown as follows:

[0099] The tensioning assembly 150 is arranged on both sides of the driven shaft 36. The tensioning assembly 50 includes a slider 51, a disc spring lower pressure column 52, a disc spring 53, a disc spring sleeve 54, a disc spring upper pressure cover 55, an adjusting screw 56, a fixing plate 57, a guide bar 58 and a driven bearing 59. The top of the slider 51 is connected to the disc spring lower pressure column 52, the disc spring 53 is mounted on the disc spring lower pressure column 52, the disc spring sleeve 54 is mounted on the outside of the disc spring 53, and the lower part of the disc spring upper pressure cover 55 has a protrusion 551, which is pressed into the disc spring sleeve 54 and The disc springs 53 are connected, and the upper part of the disc spring upper cover 55 has a groove 552. The lower end of the adjusting screw 56 is pressed in the groove 552. The upper end of the adjusting screw 56 is connected to the fixed plate 57 through the locking nut 561. The fixed plate 57 is installed on the lower crossbeam 13 on the upper part of the tensioning seat 17. The guide bar 58 is vertically installed on both sides of the connecting plate of the tensioning seat 17. The slider 51 can slide up and down in the guide bar 58. The driven bearing 59 is arranged inside the slider 51, and the driven bearing 59 is connected to the driven shaft 36.

[0100] Example 2

[0101] This embodiment provides a cooling plate system.

[0102] like Figure 9 A schematic structural diagram of a cooling plate system provided by an embodiment of the present invention, Figure 10 A schematic diagram of a cooling plate system provided by an embodiment of the present invention is shown in a top view:

[0103] A cooling plate system includes a cooling plate device 100 and two plate conveying devices 200 / 200' disposed on both sides of the cooling plate device 100, respectively used for feeding and unloading plates;

[0104] The cooling plate device 100 is the cooling plate device provided in the first embodiment.

[0105] like Figure 11 A structural diagram of a plate conveying device provided by an embodiment of the present invention is shown as follows:

[0106] The plate conveying device 200 / 200' includes a conveying platform 210, a conveying chain 220, a conveying power assembly 230 and a conveying tensioning assembly 240. The conveying chain 220 is installed on the top of the conveying platform 210 and one end of it is connected to the first fork assembly 140 in a horizontal position at the bottom of the cooling plate device 100. The conveying power assembly 240 is installed inside the conveying platform 210 to drive the rotation of the conveying chain 220. The conveying tensioning assembly 250 is installed on one side of the conveying platform 210 to tension the conveying chain 220.

[0107] Example 3

[0108] This embodiment provides a combined cooling plate system.

[0109] like Figure 12 A schematic structural diagram of a combined cooling plate system provided by an embodiment of the present invention, Figure 13 A schematic top view of the structure of a combined cooling plate system provided by an embodiment of the present invention;

[0110] A combined cooling plate system includes two sets of cooling plate devices 100 arranged in parallel, a plate conveying device 200 disposed on one side of one cooling plate device 100 for feeding plates, a plate conveying device 200' disposed on the other side of the cooling plate device 100 for discharging plates, and a transfer device 300 disposed between the two sets of cooling plate devices 100 arranged in parallel;

[0111] The cooling plate device 100 is any one of the cooling plate devices described above.

[0112] like Figure 11 A structural diagram of a plate conveying device provided by an embodiment of the present invention is shown as follows:

[0113] The plate conveying device 200 / 200' includes a conveying platform 210, a conveying chain 220, a conveying power assembly 230 and a conveying tensioning assembly 240. The conveying chain 220 is installed on the top of the conveying platform 210 and one end of it is connected to the first fork assembly 140 in a horizontal position at the bottom of the cooling plate device 100. The conveying power assembly 240 is installed inside the conveying platform 210 to drive the rotation of the conveying chain 220. The conveying tensioning assembly 250 is installed on one side of the conveying platform 210 to tension the conveying chain 220.

[0114] like Figure 14 A schematic diagram of the structure of a transfer device provided by an embodiment of the present invention is shown as follows:

[0115] The transfer device 300 includes a transfer platform 310, a transfer chain 320, a transfer power assembly 330 and a transfer tensioning assembly 340. The transfer chain 320 is installed on the top of the transfer platform 310 and its two ends are respectively connected to the first horizontal fork assembly 140 at the bottom of the two groups of parallel cooling plate devices 100. The transfer power assembly 330 is installed inside the transfer platform 310 to drive the rotation of the transfer chain 320, and the transfer tensioning assembly 340 is installed inside the transfer platform to tension the transfer chain 320.

[0116] In summary, we can see that:

[0117] First, the cooling plate device provided by the embodiment of the present invention forms a vertical cooling plate device through the creative combination of a frame assembly, a power assembly, a transmission assembly, a fork assembly, and a tensioning assembly. This vertical plate device occupies a small area, has a large number of cooling plates, high production efficiency, and good cooling plate product quality.

[0118] Secondly, the cooling plate device provided by the embodiment of the present invention has a novel and unique design, is simple to manufacture, has low cost, and has good scalability, and can create better economic benefits for enterprises. Therefore, it has great value for promotion and application.

[0119] In the description of the above manual:

[0120] The descriptions of terms such as "this embodiment", "an embodiment of the present invention", "as shown in...", "further", "a further improved technical sub-scheme", etc., mean that the specific features, structures, materials or characteristics described in the embodiment or example are included in at least one embodiment or example of the present invention; in this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example, and the specific features, structures, materials or characteristics described may be combined or combined in an appropriate manner in any one or more embodiments or examples; in addition, a person of ordinary skill in the art may combine or combine different embodiments or examples and features of different embodiments or examples described in this specification without causing any contradiction.

[0121] Finally, it should be noted that:

[0122] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit the same.

[0123] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some or all of the technical features therein, and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention. Non-essential improvements, adjustments or replacements made by those skilled in the art based on the contents of this specification are all within the scope of protection required by the present invention.

Claims

1. A cooling plate device, characterized in that: include: Frame assembly, power assembly, transmission assembly, fork assembly and tensioning assembly; The frame assembly is transversely placed on a horizontal support surface, the power assembly is mounted on the frame assembly, two or more sets of the transmission assemblies are longitudinally arranged on the frame assembly, and multiple sets of the fork assemblies are transversely mounted on the transmission assembly, the power assembly drives the transmission assembly together with the fork assemblies to perform cyclic rotation in the longitudinal direction of the frame assembly, and the tensioning assembly is used to tension the transmission assembly and eliminate inertial impact caused to the transmission assembly and the fork assembly when the power assembly is started or stopped; The frame assembly includes support legs on both sides, an upper cross beam frame, a lower cross beam frame, a chain support frame, a chain guide, a bearing support and a tensioning seat. The support legs on both sides are placed on a horizontal supporting surface, and the two ends of the upper cross beam frame are respectively connected to the upper parts of the support legs on both sides, and the two ends of the lower cross beam frame are respectively connected to the lower parts of the support legs on both sides. The chain support frame is arranged between the upper cross beam frame and the lower cross beam frame, the chain guide is fixed on the chain support frame, the bearing support is fixed above the upper cross beam frame on both sides of the chain support frame, and the tensioning seat is fixed below the lower cross beam frame on both sides of the chain support frame, and the tensioning seat includes two opposite connecting plates; The power assembly includes a motor and a reducer, the motor drives the reducer to rotate, and the reducer is installed on the upper crossbeam; The transmission assembly includes a main transmission shaft, a bearing seat, a driving bearing, a driving sprocket, a driven sprocket, a driven shaft and a chain, the main transmission shaft is connected to the reducer, the bearing seat is fixed on the bearing support, the driving bearing is installed in the bearing seat and sleeved on the main transmission shaft, the driving sprocket is fixedly installed on the main transmission shaft, the driven sprocket is installed on the driven shaft, the chain is composed of a plurality of chain links, each of the chain links is placed on the chain guide and connected to the driving sprocket and the driven sprocket, and the driving sprocket drives the driven sprocket to rotate through the chain; The shift fork assembly includes a shift fork and a shift fork connecting rod. The shift fork includes an upper shift fork tube, a lower shift fork tube, and a rear fork tube. The upper shift fork tube and the lower shift fork tube are respectively connected to the rear fork tube to form a U-shaped member. One side of the shift fork connecting rod is connected to the outer side of the chain link. The other side of the shift fork connecting rod is connected to the rear fork tube to arrange multiple shift forks at equal distances. The cam is secured to the upper edge of the support frame, and the cam is secured to the lower edge of the support frame by a secure coupling between the cam and the support frame.

2. The cooling plate device according to claim 1, characterized in that: The main transmission shaft is connected to the driving sprocket via an expansion connection sleeve.

3. The cooling plate device according to claim 1, wherein: The chain links include connecting plates and segments; The outer side of the connecting plate is used to connect the shift fork connecting rod, and two segments are fixed side by side on the inner side of the connecting plate. The segment with the smaller spacing between the two segments is an inner link, and the segment with the larger spacing between the two segments is an outer link. Through holes are provided at both ends of the segment. The two segments of the inner link are inserted between the two segments of the outer link, and the through holes on the inner link are aligned with the through holes on the outer link. Connectors are inserted into the aligned through holes to connect the inner link and the outer link front to back. Multiple inner links and multiple outer links are connected front to back through multiple connectors to form the chain; The connecting part includes a roller, a bushing, a roller, a pin, a flat washer for the pin, an elastic retaining ring for the shaft, and a straight-through pressure-injection oil cup, wherein the roller is arranged between the through holes of the inner chain link, the bushing is arranged in the through hole of the inner chain link, and the roller is arranged outside the through hole of the outer chain link. The roller and the roller are connected in series between the through holes of the inner chain link and outside the through holes of the outer chain link through the pin. The end of the pin is covered with the flat washer for the pin, and the outer side of the flat washer for the pin is locked by the elastic retaining ring for the shaft clamped in the groove at the end of the pin, and the straight-through pressure-injection oil cup is connected at the axis center of the end of the pin.

4. The cooling plate device according to claim 1, wherein: The frame assembly also includes a middle leg and an oblique support, the middle leg is arranged between the two side legs and is respectively connected to the upper crossbeam frame and the lower crossbeam frame, and the oblique supports are respectively arranged at the lower parts of the two side legs and at the connections between the two side legs and the middle leg and the upper crossbeam frame and the lower crossbeam frame.

5. The cooling plate device according to claim 1, wherein: The upper fork tube and the lower fork tube are respectively covered with rubber heat shrink tubing, and rubber blocks are installed on the top of the upper fork tube and the lower fork tube; a reinforcement tube is also provided between the upper fork tube and the lower fork tube.

6. The cooling plate device according to claim 1, wherein: The chain guide is an L-shaped chain guide; the motor is a variable frequency motor with a braking function and an encoding function; and the reducer is a single-axis input and dual-axis output reducer.

7. A cooling plate system, characterized in that: The cooling plate system comprises: A cooling plate device and two plate conveying devices arranged on both sides of the cooling plate device, respectively used for feeding and discharging plates; the cooling plate device is any one of the cooling plate devices described in claims 1 to 6.

8. The cooling plate system according to claim 7, wherein: The plate conveying device includes a conveying platform, a conveying chain, a conveying power assembly and a conveying tensioning assembly. The conveying chain is installed on the top of the conveying platform and one end of it is connected to the first fork assembly in a horizontal position at the bottom of the cooling plate device. The conveying power assembly is installed inside the conveying platform to drive the rotation of the conveying chain pair. The conveying tensioning assembly is installed on one side of the conveying platform to tension the conveying chain.

9. A combined cooling plate system, characterized in that: The combined cooling plate system comprises: Two sets of cooling plate devices arranged in parallel, a plate conveying device arranged on one side of one cooling plate device for feeding plates, a plate conveying device arranged on the other side of the cooling plate device for discharging plates, and a transfer device arranged between the two sets of cooling plate devices arranged in parallel; The cooling plate device is any one of the cooling plate devices according to claims 1 to 6.

10. The combined cooling plate system according to claim 9, wherein: The plate conveying device includes a conveying platform, a conveying chain, a conveying power assembly and a conveying tensioning assembly. The conveying chain is installed on the top of the conveying platform and one end of the conveying chain is connected to the first fork assembly in a horizontal position at the bottom of the cooling plate device. The conveying power assembly is installed inside the conveying platform to drive the rotation of the conveying chain. The conveying tensioning assembly is installed inside the conveying platform to tension the conveying chain. The transfer device includes a transfer platform, a transfer chain, a transfer power assembly and a transfer tensioning assembly. The transfer chain is installed on the top of the transfer platform and its two ends are respectively connected to the first fork assembly in a horizontal position at the bottom of the two groups of parallel arranged cooling plate devices. The transfer power assembly is installed inside the transfer platform to drive the rotation of the transfer chain, and the transfer tensioning assembly is installed inside the transfer platform to tension the transfer chain.

Citation Information

Patent Citations

  • Automatic artificial plate cooling machine

    CN106696430A

  • Artificial board cooling device

    CN209380973U

  • Plate cooling structure

    CN110000887A

  • Vertical plate line airing machine

    CN209939666U