A conveying device for processing and producing hot compress patches
By designing the combination of the guide component and the transport mechanism, the material and misalignment problems in the packaging of multiple pieces of hot compress patches are solved, and the automatic hot compress patches are neatly stacked and pressed, improving the packaging efficiency and heating effect.
Patent Information
- Application Number
- CN202510592479.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-05-09
AI Technical Summary
During the production process of existing hot compress patches, multiple hot compress patches are prone to stagnation and misalignment when packaging, which affects the sealing quality and may cause damage to the packaging bag.
A hot compress patch processing and production equipment including a horizontal conveying mechanism and a transfer mechanism is designed. The heat compress patch is dispersed by the guide component. The feeding dishes of the transfer mechanism are stacked misaligned by rotation and gravity and fixed by the pressing component to ensure that they are stacked neatly and entered the packaging bag.
Automatic feeding, alignment and compression of hot compress patches is realized, and the material problem is solved, ensuring smooth packaging of multiple hot compress patches is improved, and heating efficiency and sealing quality are improved.
Smart Images

Figure CN120096879B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of hot compress patch transportation, and particularly relates to a transportation device for processing and producing hot compress patches. Background Art
[0002] A hot compress patch is an external patch that uses the principle of heat generation to relieve pain or discomfort, and is usually composed of a heat generation layer, an adhesive layer, and a backing layer. In the production process of hot compress patches, material transportation is one of the key links, involving the automatic or semi-automatic transfer of multiple steps, mainly including the transportation of raw materials, the transportation of coating and compounding processes, slitting transportation, and packaging transportation.
[0003] During the production of hot compress patches, the cut hot compress patches need to be transported to the packaging station by a transportation device and loaded into a packaging bag. Currently, the common transportation method is a horizontal conveyor belt plus inertial feeding: the hot compress patches are conveyed by the conveyor belt to its end, and slide into the horizontally placed packaging bag by relying on the movement inertia and gravity. This method has a simple structure and low cost, and is suitable for the packaging requirements of single hot compress patches. When multiple hot compress patches (such as 3 pieces or more) need to be loaded into the same packaging bag, the existing transportation method has certain defects: when the first hot compress patch falls into the packaging bag, it occupies part of the space inside the bag, and subsequent hot compress patches may not be able to enter smoothly due to the obstruction of the bag mouth, resulting in the problem of material jamming. When multiple hot compress patches are stacked, they are prone to misalignment, affecting the sealing quality and even causing the packaging bag to break. Summary of the Invention
[0004] In order to solve the above problems, the present invention provides a transportation device for processing and producing hot compress patches, which is used to solve the problems mentioned in the above background art.
[0005] In order to achieve the above object, the embodiments of the present application provide the following technical solutions: The present invention provides a transportation device for processing and producing hot compress patches, including a horizontal transportation mechanism for transporting the cut hot compress patches and a transfer mechanism arranged at the end of the horizontal transportation mechanism for sending the hot compress patches into the packaging bag. The horizontal transportation mechanism includes a transportation platform, and a guiding component for dispersing multiple hot compress patches concentrated in the same area is arranged on the transportation platform. The transfer mechanism includes a mounting frame fixedly arranged on the ground, a rotating shaft is rotatably arranged on the mounting frame, a driving component for driving the rotating shaft to rotate is arranged on the mounting frame, a plurality of receiving trays evenly distributed along the length direction of the rotating shaft are arranged on the rotating shaft, a pressing component for locking multiple stacked hot compress patches is arranged on the receiving tray, and a transmission component for driving the pressing component to approach and move away from the hot compress patches is jointly arranged between each receiving tray and the corresponding pressing component and the mounting frame. The rotating shaft drives the receiving tray to rotate intermittently, and while the pressing component rotates intermittently with the rotating shaft, it cooperates with the transmission component to cycle and lock and unlock the hot compress patches in the receiving tray.
[0006] According to an advantageous embodiment, the conveying platform is composed of a horizontal section and an inclined section. A plurality of conveying rollers are rotatably arranged on both the horizontal section and the inclined section of the conveying platform. A conveyor belt is sleeved between the plurality of conveying rollers. A first motor is fixedly arranged on the conveying platform. One end of the conveying roller at the foremost side of the conveying platform and the output shaft of the first motor are commonly connected by a first sprocket set for transmission.
[0007] According to an advantageous embodiment, the material guiding assembly includes two guide rails fixedly arranged on the upper side of the conveying platform and distributed front and back. A cross plate is commonly arranged between the sides of the two guide rails close to each other. A first sliding hole is formed in the guide rail. A guiding column with a T-shaped cross section and symmetrically arranged left and right is rotatably arranged in the first sliding hole. The lower ends of the two front and rear corresponding guiding columns are commonly fixedly and rotatably connected with a pushing plate. A second sliding hole is formed in the pushing plate. Two symmetrically arranged front and back sliders are slidably arranged in the second sliding hole. A driving frame in an X shape formed by rotatably connecting two connecting plates is arranged between the two guide rails. A connecting shaft is commonly rotatably connected between the lower side of the cross plate and the driving frame. The four corners of the driving frame are respectively rotatably connected with the corresponding sliders. Two fixing plates evenly distributed along the inclined direction are fixedly arranged on the inclined section of the conveying platform. A plurality of limiting plates are arranged between the two fixing plates. The plurality of limiting plates are distributed in pairs on the inclined section of the conveying platform.
[0008] According to an advantageous embodiment, a cylinder is fixedly arranged on the upper side of the conveying platform. The output shaft of the cylinder is rotatably connected with the upper ends of the two guiding columns on the right side through a triangular plate.
[0009] According to an advantageous embodiment, the mounting frame includes a U-shaped base fixedly arranged on the ground. Two fixed support arms distributed left and right are fixedly arranged on the upper side of the base. The rotating shaft is rotatably arranged between the two fixed support arms.
[0010] According to an advantageous embodiment, the driving assembly includes a second motor fixedly arranged on any one of the fixed support arms. The output shaft of the second motor and one end of the rotating shaft are commonly connected by a second sprocket set for transmission.
[0011] According to an advantageous embodiment, the pressing assembly includes a pressing plate movably arranged on the surface of the port of the receiving dish. Four guiding rods one distributed in a rectangle are fixedly arranged on the pressing plate. A connecting frame is slidably connected between the four guiding rods one. A pressing spring is sleeved on the guiding rod one. The two ends of the pressing spring are respectively fixedly connected with the pressing plate and the connecting frame. The left and right sides of the receiving dish are respectively slidably connected with guiding rods two through ear seats. The same ends of the four guiding rods two are fixedly connected with the connecting frame.
[0012] According to an advantageous embodiment, the transmission assembly includes two transmission rods. The two transmission rods are respectively rotatably arranged on the left and right sides of the receiving dish through ear plates. Two driving disks symmetrically distributed along the length direction are fixedly arranged on the transmission rods. A driving plate is hinged on the driving disk. The side of the driving plate far from the driving disk is hinged to the corresponding connecting frame. U-shaped fixing frames are fixedly arranged on both the left and right sides of the receiving dish. A worm is rotatably arranged between the fixing frame and the receiving dish. One end of the transmission rod close to the fixing frame is fixedly connected with a worm gear meshing with the corresponding worm. A gear is fixedly arranged at one end of the worm.
[0013] According to an advantageous embodiment, the transmission assembly further includes a plurality of support plates fixedly arranged on the base and evenly distributed along the length direction and in a U shape. The support plates are distributed symmetrically left and right with the receiving dish as the center in pairs. The two pins of the support plate are set with the front higher than the rear. Outer arc-shaped racks and inner arc-shaped racks are respectively fixedly arranged on the upper sides of the left and right pins of the support plate. Both the outer arc-shaped rack and the inner arc-shaped rack are meshed with the corresponding gear.
[0014] According to an advantageous embodiment, an extension guide plate is fixedly connected to the end of the inclined section of the conveying platform. The side of the receiving dish far from the rotating shaft is set as a borderless structure.
[0015] Compared with the prior art, a hot compress patch processing and production conveying device provided by an embodiment of the present invention has the following beneficial effects: In the present invention, through the design of the pushing plate of the guiding component, the hot compress patches densely arranged on the conveyor belt are automatically dispersed to the designated position, and in cooperation with the transfer mechanism, it is convenient to package the hot compress patches; the receiving dish of the transfer mechanism makes the hot compress patches stack in a staggered manner first and then align automatically through rotation and gravity, ensuring that multiple hot compress patches are neatly stacked. Then, the stacked hot compress patches are further fixed by the pressing plate, which is convenient for the rotating shaft to drive the whole to rotate to the designated position for bagging. Moreover, the pressing of the hot compress patches by the pressing plate can further press the heating layer in the hot compress patches, improving the heating efficiency of the hot compress patches and prolonging the heating time. It realizes automatic receiving, alignment, pressing and blanking of the hot compress patches without manual intervention, and solves the problem of material jamming during the packaging of multiple hot compress patches. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a three-dimensional structure diagram of the first position of the present invention.
[0017] Figure 2 It is a top view plane structure diagram of the present invention.
[0018] Figure 3 It is a three-dimensional structure diagram of a partial structure of the guiding mechanism in the present invention.
[0019] Figure 4 It is an external three-dimensional structure diagram of the transfer mechanism in the present invention.
[0020] Figure 5 This is a schematic diagram of the relative positions of the rotating shaft, the material receiving dish, the inner arc-shaped rack, and the outer arc-shaped rack in the present invention.
[0021] Figure 6 is Figure 5 an enlarged structural diagram of part A in
[0022] Figure 7 This is an external three-dimensional structural diagram of the material receiving dish in the present invention.
[0023] Figure 8 is Figure 7 an enlarged structural diagram of part B in
[0024] Figure 9 This is a schematic diagram of the state when the material receiving dish rotates with the rotating shaft to the lower part of the outer extension feeding plate in the present invention.
[0025] Figure 10 This is a connection schematic diagram of the gear and the outer arc-shaped rack when the pressing plate compresses the hot compress patch in the present invention.
[0026] Figure 11 This is a connection schematic diagram of the gear and the inner arc-shaped rack when the pressing plate releases the lock of the hot compress patch in the present invention.
[0027] In the figure, reference numerals: 1, horizontal conveying mechanism; 11, conveying platform; 12, feeding guide assembly; 121, guide rail; 122, cross plate; 123, guiding column; 124, pushing plate; 125, slider; 126, driving frame; 127, fixing plate; 128, limiting plate; 2, transfer mechanism; 21, mounting frame; 211, base; 212, fixed support arm; 22, driving assembly; 23, material receiving dish; 24, pressing assembly; 241, pressing plate; 242, guiding rod one; 243, connecting frame; 244, pressing spring; 245, guiding rod two; 25, transmission assembly; 251, transmission rod; 252, driving disk; 253, driving plate; 254, fixing frame; 255, worm; 256, worm gear; 257, gear; 258, support plate; 259, outer arc-shaped rack; 2510, inner arc-shaped rack; 2511, rotating shaft; 3, outer extension feeding plate. Detailed implementation manners
[0028] The following will Figure 1 - with reference to the Figure 11 drawings to further elaborate on the present application.
[0029] Please refer to Figure 1 and Figure 2 , a hot compress patch processing and production conveying device, including a horizontal conveying mechanism 1 for conveying the cut hot compress patches and a transfer mechanism 2 arranged at the end of the horizontal conveying mechanism 1 for feeding the hot compress patches into the packaging bags.
[0030] Refer to Figure 1 and Figure 2 As shown in Figure 1 and Figure 2 , the horizontal conveying mechanism 1 includes a conveying platform 11, and a material guiding component 12 for dispersing a plurality of hot compress patches concentrated in the same area is arranged on the conveying platform 11. The conveying platform 11 is composed of a horizontal section and an inclined section. A plurality of conveying rollers (not shown in the figure) are rotatably arranged on both the horizontal section and the inclined section of the conveying platform 11. A conveyor belt is sleeved between the plurality of conveying rollers. A first motor (not shown in the figure) is fixedly arranged on the conveying platform 11. One end of the conveying roller at the frontmost side of the conveying platform 11 and the output shaft of the first motor are commonly connected by a first sprocket group (not shown in the figure). The first motor cooperates with the first sprocket group to drive the conveying roller to rotate so that the conveyor belt can drive the hot compress patches on the upper side of the conveyor belt to move.
[0031] Refer to Figure 1 , Figure 2 and Figure 3, the material guiding assembly 12 includes two guide rails 121 fixedly arranged on the upper side of the conveying platform 11 and distributed front and back. A cross plate 122 is jointly arranged between the sides of the two guide rails 121 close to each other. A first sliding hole is formed in the guide rail 121, and a guiding column 123 with a T-shaped cross section and symmetrically arranged left and right is rotatably arranged in the first sliding hole. The lower ends of the two front and back corresponding guiding columns 123 are jointly rotatably connected to a pushing plate 124. A second sliding hole is formed in the pushing plate 124, and two symmetrically arranged front and back sliders 125 are slidably arranged in the second sliding hole. A driving frame 126 in an X shape formed by the rotational connection of two connecting plates is arranged between the two guide rails 121. A connecting shaft is jointly rotatably connected between the lower side of the cross plate 122 and the driving frame 126. The four corners of the driving frame 126 are respectively rotatably connected to the corresponding sliders 125. Two fixing plates 127 evenly distributed along the inclined direction are fixedly arranged on the inclined section of the conveying platform 11. A plurality of limiting plates 128 are arranged between the two fixing plates 127, and the plurality of limiting plates 128 are distributed in groups of two on the inclined section of the conveying platform 11. A cylinder is fixedly arranged on the upper side of the conveying platform 11, and the output shaft of the cylinder is rotatably connected to the upper ends of the two guiding columns 123 on the right side through a triangular plate. The two pushing plates 124 on the left and right on the conveyor belt were originally at the position close to the center of the conveyor belt. When the hot compress patch moves to the outer side of the corresponding pushing plate 124, the cylinder can contract to drive the two guiding columns 123 on the right side to move towards the right edge of the conveyor belt simultaneously through the triangular plate, so that the two guiding columns 123 on the right side jointly push the pushing plate 124 on the right side to move. The pushing plate 124 can push the corresponding hot compress patch to move a certain distance towards the edge of the conveyor belt. Similarly, when the pushing plate 124 on the right side moves to the right, the pushing plate 124 on the left side drives the corresponding hot compress patch to move towards the left edge of the conveyor belt synchronously under the action of the driving frame 126, so that the left and right two hot compress patches among the three hot compress patches at the same position move away from each other, so that the three hot compress patches can move to the designated position for blanking. It should be particularly noted that the connection between the guiding column 123 and the guide rail 121 and the connection between the slider 125 and the slider 125 can both be replaced by setting balls to rotate, reducing friction.
[0032] During specific operation, the cut hot compress patches are centrally conveyed through the conveyor belt and move towards the material guiding assembly 12. When the left and right two hot compress patches on the conveyor belt are respectively on the outer sides of the left and right two pushing plates 124, at this time, the cylinder contracts, and while driving the corresponding hot compress strips to move through the conveyor belt through the pushing plate 124, the two pushing plates 124 will push the left and right two hot compress patches to the designated positions.
[0033] Refer to Figure 1 、 Figure 4 and Figure 5The transfer mechanism 2 includes a mounting frame 21 fixedly arranged on the ground, a rotating shaft 2511 is rotatably arranged on the mounting frame 21, a driving component 22 for driving the rotating shaft 2511 to rotate is arranged on the mounting frame 21, a plurality of material receiving dishes 23 evenly distributed along its length direction are arranged on the rotating shaft 2511, a side of the material receiving dish 23 away from the rotating shaft 2511 is arranged as a frameless structure, and the end of the inclined section of the conveying platform 11 is fixedly connected with the epitaxial material guide plate 3, and the two cooperate so that the edge of the port of the material receiving dish 23 can be as close to the end of the epitaxial material guide plate 3 as possible after rotation, so as to facilitate the hot compress patch to enter the material receiving dish 23, a clamping component 24 for locking a plurality of stacked hot compress patches is arranged on the material receiving dish 23, and a transmission component 25 for driving the clamping component 24 to approach and move away from the hot compress patch is commonly arranged between each material receiving dish 23 and the corresponding clamping component 24 and the mounting frame 21.
[0034] See also Figure 4 The mounting frame 21 includes a U-shaped base 211 fixedly disposed on the ground, two fixed support arms 212 distributed on the left and right are fixedly disposed on the upper side of the base 211, and the rotating shaft 2511 is rotatably disposed between the two fixed support arms 212.
[0035] See also Figure 4 The driving assembly 22 includes a second motor fixedly mounted on any one of the fixed support arms 212, and the output shaft of the second motor is connected to one end of the rotating shaft 2511 through a second sprocket set (not shown in the figure). The second motor cooperates with the second sprocket set to drive the rotating shaft 2511 to rotate.
[0036] See also Figure 1 The clamping assembly 24 includes a clamping plate 241 movably arranged on the surface of the port of the receiving dish 23, four rectangularly distributed guide rods 242 are fixedly arranged on the clamping plate 241, a connecting frame 243 is slidably connected between the four guide rods 242, a clamping spring 244 is sleeved on the guide rods 242, and the two ends of the clamping spring 244 are respectively fixedly connected to the clamping plate 241 and the connecting frame 243, and the left and right sides of the receiving dish 23 are slidably connected to guide rods 245 through ear seats, and the same ends of the four guide rods 245 are fixedly connected to the connecting frame 243. The guide rods 245 guide the connecting frame 243.
[0037] See also Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8, the transmission assembly 25 includes two transmission rods 251. The two transmission rods 251 are respectively rotatably arranged on the left and right sides of the material receiving dish 23 through ear plates. Two driving disks 252 symmetrically distributed along the length direction are fixedly arranged on the transmission rod 251. A driving plate 253 is hinged on the driving disk 252. The side of the driving plate 253 away from the driving disk 252 is hinged to the corresponding connecting frame 243. Fixed frames 254 with a U-shaped structure are fixedly arranged on the left and right sides of the material receiving dish 23. A worm 255 is rotatably arranged between the fixed frame 254 and the material receiving dish 23. A worm gear 256 meshing with the corresponding worm 255 is fixedly connected to one end of the transmission rod 251 close to the fixed frame 254. A gear 257 is fixedly arranged at one end of the worm 255.
[0038] Refer to Figure 4 and Figure 5 , the transmission assembly 25 further includes a plurality of support plates 258 fixedly arranged on the base 211 and evenly distributed along its length direction and in a U shape. The support plates 258 are symmetrically distributed in pairs on the left and right with the material receiving dish 23 as the center. The two pins of the support plate 258 are arranged with the front higher than the rear. Outer arc-shaped racks 259 and inner arc-shaped racks 2510 are respectively fixedly arranged on the upper sides of the left and right pins of the support plate 258. Both the outer arc-shaped rack 259 and the inner arc-shaped rack 2510 mesh with the corresponding gear 257.
[0039] During specific operation, for the hot compress patch feeding: the motor two drives the rotating shaft 2511 to rotate, so that the material receiving dish 23 rotates cyclically around the rotating shaft 2511. When the material receiving dish 23 rotates a certain angle, at this time the material receiving dish 23 is inclined at a certain angle and its port faces upward and is located below the end of the outer extension guide plate 3, as Figure 9 shown. At this time, there is a certain accommodation space between the pressing plate 241 and the port of the material receiving dish 23. The hot compress patch moves to the front end of the port of the material receiving dish 23 under the cooperation of the conveyor belt and the guiding assembly 12. The hot compress patch continues to move into the material receiving dish 23 and finally completely enters the material receiving dish 23. Then the front end of the next hot compress patch first enters the material receiving dish 23 and overlaps on the upper side of the previous hot compress patch. In this way, multiple hot compress patches are carried in one material receiving dish 23. At this time, the multiple hot compress patches are stacked in a staggered manner in the material receiving dish 23.
[0040] Alignment of the hot compress patch: Then the rotating shaft 2511 continues to rotate a certain angle. The rotating shaft 2511 drives the material receiving dish 23 to rotate. The inclination angle of the material receiving dish 23 increases. The staggered hot compress patches stacked therein will be neatly stacked together under the action of gravity.
[0041] Fixing of the hot compress patch: The material receiving dish 23 continues to rotate. When the material receiving dish 23 rotates a certain angle again, the gears 257 on the left and right side walls of the material receiving dish 23 will mesh with the corresponding outer arc-shaped racks 259, as Figure 10As shown in the figure. While the gear 257 rotates through the rotating shaft 2511, it will rotate in the reverse direction (in the same direction as the rotation direction of the rotating shaft 2511) along the outer arc-shaped rack 259, thereby driving the corresponding worm 255 to drive the worm wheel 256 to rotate, so that the corresponding transmission rod 251 can drive the driving disc 252 to rotate forward. While the driving disc 252 rotates, it can drive the connecting frame 243 to move relatively towards the receiving dish 23, so that the pressing plate 241 can move towards the surface of the hot compress patches stacked in the receiving dish 23, and finally the pressing plate 241 presses on the surface of the hot compress patches. At this time, the pressing spring 244 is in a compressed state. When the pressing plate 241 presses the stacked hot compress patches, the pressing plate 241 can generate a certain pressure on the hot compress patches. During the production process of the hot compress patches, it can play a role in pressing the heating layer in the hot compress patches, making the materials in the heating layer more compact, eliminating internal voids, making the iron powder and activated carbon particles in close contact, and can play the effects of stabilizing the heating efficiency and extending the heating time.
[0042] Packing the hot compress patches: After the hot compress patches are fixed by the pressing plate 241, the receiving dish 23 continues to rotate with the rotating shaft 2511. Due to the self-locking of the worm wheel 256 and the worm 255, the pressing plate 241 will not loosen during the rotation. When the receiving dish 23 rotates to below the rotating shaft 2511 and is close to the vertical state, the gears 257 on the left and right sides of the receiving dish 23 will mesh with the corresponding inner arc-shaped racks 2510, as Figure 11 shown in the figure. While the gear 257 rotates through the rotating shaft 2511, it will rotate in the forward direction along the inner arc-shaped rack 2510. Under the action of the worm 255, the worm wheel 256 and the transmission rod 251, the driving disc 252 rotates in the reverse direction, so that the connecting frame 243 moves away from the corresponding receiving dish 23. At this time, the pressing spring 244 gradually returns to its original state, the pressure of the pressing plate 241 on the hot compress patches gradually decreases, and finally the pressing plate 241 separates from the hot compress patches. At this time, the hot compress patches are in a vertical state, and under the action of gravity, all the hot compress patches in the receiving dish 23 fall downward. During the falling process, the receiving dish 23 and the pressing plate 241 form a guiding channel, so that when the hot compress patches fall off under the release of pressure, the hot compress patches at the edges will not spread out, and the hot compress patches can still move downward in a basically closed state, so that the lower ends of all the hot compress patches in the same group can successfully fall into the open packaging bag below (the packaging bag is directly below the rotating shaft 2511). After that, the whole hot compress patches can successfully enter the packaging bag, and the packaging of multiple hot compress patches is completed.
[0043] The above are only the embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied to other related technical fields, shall be included in the patent protection scope of the present invention by the same token.
Claims
1. A conveying device for processing and producing hot compress patches, characterized in that: It includes a horizontal conveying mechanism for conveying the cut hot compress patch and a transfer mechanism arranged at the end of the horizontal conveying mechanism for conveying the hot compress patch into a packaging bag; The horizontal conveying mechanism comprises a conveying platform, on which a material guide component for dispersing a plurality of thermal compress patches gathered in the same area is arranged; The transfer mechanism comprises a mounting frame fixedly arranged on the ground, a rotating shaft is rotatably arranged on the mounting frame, a driving assembly for driving the rotating shaft to rotate is arranged on the mounting frame, a plurality of receiving dishes evenly distributed along the length direction thereof are arranged on the rotating shaft, a pressing assembly for locking a plurality of stacked hot compress patches is arranged on the receiving dish, and a transmission assembly for driving the pressing assembly to approach and move away from the hot compress patch is commonly arranged between each receiving dish, the corresponding pressing assembly and the mounting frame; The clamping assembly comprises a clamping plate movably arranged on the surface of the receiving dish port, four rectangularly distributed guide rods are fixedly arranged on the clamping plate, a connecting frame is slidably connected between the four guide rods, a clamping spring is sleeved on the guide rods, and two ends of the clamping spring are fixedly connected to the clamping plate and the connecting frame respectively; The transmission assembly includes two transmission rods, which are rotatably arranged on the left and right sides of the material receiving dish through ear plates respectively, and two driving disks symmetrically distributed along the length direction of the transmission rod are fixedly arranged on the transmission rod, and a driving plate is hinged on the driving disk, and the side of the driving plate away from the driving disk is hinged to the corresponding connecting frame, and a fixing frame with a U-shaped structure is fixedly arranged on the left and right sides of the material receiving dish, and a worm is rotatably arranged between the fixing frame and the material receiving dish, and a worm wheel meshing with the corresponding worm is fixedly connected to one end of the transmission rod close to the fixing frame, and a gear is fixedly arranged on one end of the worm; The transmission assembly also includes a plurality of support plates fixedly arranged on the base and evenly distributed along its length direction and in a U-shape. The support plates are arranged in groups of two and symmetrically distributed left and right with the receiving dish as the center. The two pins of the support plates are arranged to be higher in the front and lower in the back, and an outer arc-shaped rack and an inner arc-shaped rack are fixedly arranged on the upper sides of the left and right pins of the support plates, respectively, and the outer arc-shaped rack and the inner arc-shaped rack are both engaged with corresponding gears.
2. The processing and production conveying device for a hot compress patch according to claim 1, characterized in that, The conveying platform consists of a horizontal section and an inclined section, both of which are rotatably provided with a plurality of conveying rollers, a conveyor belt is sleeved between the plurality of conveying rollers, a motor is fixedly provided on the conveying platform, and one end of the conveying roller located at the frontmost side of the conveying platform is connected to an output shaft of the motor through a sprocket set.
3. The processing and production conveying device for a hot compress patch according to claim 2, wherein, The guide assembly includes two guide rails fixedly arranged on the upper side of the conveying platform and distributed front and back, a cross plate is jointly arranged between the sides of the two guide rails close to each other, a sliding hole is opened on the guide rail, a guide column with left and right symmetry and T-shaped cross section is rotatably arranged in the sliding hole, the lower ends of the two guide columns corresponding to the front and rear are jointly fixed and rotatably connected with a pushing plate, and the pushing plate is opened with a sliding hole 2, and two sliding blocks with front and rear symmetry are slidably arranged in the sliding hole, and an X-shaped driving frame composed of two connecting plates rotatably connected is arranged between the two guide rails, and a connecting shaft is rotatably connected between the lower side of the cross plate and the driving frame, and the four corners of the driving frame are rotatably connected to the corresponding sliding blocks respectively, and two fixed plates evenly distributed along the inclination direction of the conveying platform are fixedly arranged on the inclined section of the conveying platform, and a plurality of limit plates are arranged between the two fixed plates, and the plurality of limit plates are distributed in groups of two on the inclined section of the conveying platform.
4. A hot compress patch processing and production conveying device according to claim 3, characterized in that, A cylinder is fixedly arranged on the upper side of the conveying platform, and the output shaft of the cylinder is rotatably connected to the upper ends of the two guide columns on the right side through a triangular plate.
5. A hot compress patch processing and production conveying device according to claim 1, characterized in that, The mounting frame comprises a U-shaped base fixedly arranged on the ground, two fixed support arms distributed on the left and right are fixedly arranged on the upper side of the base, and the rotating shaft is rotatably arranged between the two fixed support arms.
6. The processing and production conveying device for a hot compress patch according to claim 5, characterized in that, The driving assembly includes a second motor fixedly arranged on any one of the fixed support arms, and the output shaft of the second motor is connected to one end of the rotating shaft through a second sprocket set.
7. The conveying device for processing and producing hot compress patches according to claim 5, wherein, The left and right sides of the material receiving dish are slidably connected with guide rods 2 through ear seats, and the same ends of the four guide rods 2 are fixedly connected to the connecting frame.
8. A hot compress patch processing and production conveying device according to claim 1, characterized in that, An extension material guide plate is fixedly connected to the end of the inclined section of the conveying platform, and a side of the material receiving dish away from the rotating shaft is configured as a frameless structure.
Citation Information
Patent Citations
Packaging equipment for self-curing packaging material
CN222572685U
Cutting-separating device for bean curd or the like
JP1993057672A
Device For Feeding Book Blocks Into The Infeed Channel Of A Subsequent Processing Arrangement
US20130213765A1