Noodle airing rack system
By designing a noodle drying rack system, the automatic and uniform drying of noodles is achieved through stretching, plugging, and telescopic mechanisms. This solves the problems of uneven noodle stretching and manual shaking in traditional drying methods, and improves the drying effect and automation level.
Patent Information
- Application Number
- CN202511199327.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-11-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional methods of drying noodles can easily lead to uneven stretching of the noodles, affecting the drying effect, and require manual shaking, resulting in low automation.
A noodle drying rack system was designed, which includes a stretching mechanism, a plugging mechanism, and a telescopic mechanism. It uses components such as grippers, hydraulic clamps, drive motors, and servo motors to achieve automated stretching and shaking of noodles, and achieves uniform drying of noodles through clamping, moving, and plugging.
It achieves automated, uniform stretching and shaking of noodles, improves drying effect, reduces manual intervention, and enhances the degree of automation.
Smart Images

Figure CN120926705A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of noodle processing equipment technology, and in particular to a noodle drying rack system. Background Technology
[0002] The traditional way to dry noodles is to evenly sprinkle dry flour on the surface of the noodles to form an insulating layer to prevent them from sticking together. Then, use a long stick to straighten the noodles and hang them up in a cool, dry, and well-ventilated area to avoid direct sunlight that could cause uneven dehydration.
[0003] Currently, a chain guide structure with multiple upright supports is used. The noodle-hanging rods are fixed by arc-shaped blocks on adjacent chains, forming a continuous conveying path. The chains drive the sprockets to rotate, achieving automated conveying of the noodle-hanging rods. However, this method still requires manual shaking and stretching of the noodles during use, and the long rods at the lower end are suspended without support. Therefore, the noodles are prone to uneven stretching during the drying process, affecting the drying effect. Summary of the Invention
[0004] Based on the aforementioned technical problems, this invention proposes a noodle drying rack system.
[0005] This invention proposes a noodle drying rack system, comprising a drying rack body, a first bamboo pole, and a second bamboo pole. A first support plate and a second support plate are fixedly mounted on the surface of the drying rack body. The surface of the first support plate has a first slot formed by a rectangular array, and the surface of the second support plate has a second slot formed by a rectangular array. The surface of the first bamboo pole is inserted into the inner wall of the first slot, and the surface of the second bamboo pole is inserted into the inner wall of the second slot. Noodles are suspended between the first and second bamboo poles. Support plates are fixedly mounted on both sides of the drying rack body, and the surfaces of the two support plates are respectively provided with a tensioning mechanism, an insertion mechanism, and a telescopic mechanism.
[0006] The stretching mechanism includes first grippers symmetrically distributed on the surface of the support plate near the drying rack body, which clamp the two ends of the second bamboo pole.
[0007] The insertion mechanism includes a hydraulic clamp, which fixes the second bamboo pole after it has been stretched by the stretching mechanism.
[0008] The telescopic mechanism includes a drive motor, a servo motor, a screw, a connecting gear, and a rack. The drive motor drives the screw to rotate, the servo motor drives the connecting gear to rotate, and the connecting gear meshes with the rack.
[0009] Preferably, the stretching mechanism further includes connecting plates symmetrically distributed on the side surface of the support plate near the drying rack body, a first self-driving slide rail is fixedly installed on the side surface of the connecting plate near the drying rack body, and the first gripper is disposed on the slider surface of the first self-driving slide rail.
[0010] Through the above technical solution, the movement of the slider on the first self-driving slide rail drives the first gripper to move, thereby driving the first gripper to move linearly up and down, and the movement of the first gripper drives the second bamboo pole to move.
[0011] Preferably, a groove is formed through the surface of the drying rack body, and one of the connecting plates extends into the groove.
[0012] The above technical solution facilitates the determination of the positions of the support plate and the drying rack body.
[0013] Preferably, the insertion mechanism further includes a sliding groove formed on the surface of the support plate near the drying rack body, a second self-driving slide rail fixedly installed on the surface of the support plate away from the drying rack body, an L-shaped plate slidably engaged with the inner wall of the sliding groove, a first limiting groove formed on the surface of the L-shaped plate, a first moving block slidably engaged with the inner wall of the first limiting groove, and a hydraulic clamp fixedly installed on one side surface of the first moving block.
[0014] Through the above technical solution, the hydraulic clamping plate clamps one end of the second bamboo pole, and the movement of the slider on the second self-driving slide rail drives the L-shaped plate connected to it to move along the inner wall of the slide groove.
[0015] Preferably, a first pushing cylinder is fixedly installed on the upper surface of the L-shaped plate, and one end of the piston rod of the first pushing cylinder extends into the first limiting groove and is fixedly connected to the upper surface of the first moving block.
[0016] Through the above technical solution, the extension and retraction of the piston rod of the first push cylinder drives the first moving block connected to it to move along the inner wall of the first limiting groove, thereby driving the hydraulic clamp connected to it to move.
[0017] Preferably, a mounting base is fixedly installed on the side surface of the support plate near the drying rack body. A second limiting groove is formed on the side surface of the mounting base of the drying rack body. A second moving block is slidably engaged with the inner wall of the second limiting groove. A second gripper is fixedly installed on the surface of the second moving block. A third self-driving slide rail is fixedly installed on the side surface of the support plate away from the drying rack body. A second pushing cylinder is fixedly installed on the upper surface of the mounting base. One end of the piston rod of the second pushing cylinder extends into the second limiting groove and is fixedly connected to the upper surface of the second moving block.
[0018] Through the above technical solution, the extension and retraction of the piston rod of the second push cylinder drives the second moving block connected to it to move along the inner wall of the second limiting groove, thereby driving the second gripper connected to it to move.
[0019] Preferably, the telescopic mechanism further includes a fixed sleeve rod fixedly installed on the side of the support plate away from the drying rack body. Connecting blocks are symmetrically distributed on the lower surface of the fixed sleeve rod. Both ends of the screw are respectively installed on the surface of the connecting blocks through bearings. The drive motor is installed on one side surface of one of the connecting blocks. One end of the output shaft of the drive motor is fixedly sleeved with one end of the screw. Threaded blocks are threaded onto the surface of the screw. Connecting rods are symmetrically distributed and fixedly connected to the upper surface of the threaded blocks. A movable sleeve rod is slidably connected to the inner wall of the fixed sleeve rod. One end of each of the two connecting rods is fixedly connected to the surface of the movable sleeve rod. Sliding grooves are symmetrically distributed on the surface of the fixed sleeve rod. The surface of the connecting rod is slidably connected to the inner wall of the sliding groove.
[0020] Through the above technical solution, the rotation of the output shaft of the drive motor drives the screw connected to it to rotate, the rotation of the screw drives the threaded block connected to it to move, the movement of the threaded block drives the connecting rod to move along the inner wall of the sliding groove, thereby driving the moving sleeve rod to move along the inner wall of the fixed sleeve rod.
[0021] Preferably, one of the connecting rods has a mounting groove on its surface, the connecting gear is mounted on the inner wall of the mounting groove via a bearing, the servo motor is mounted on the upper surface of the connecting rod, one end of the output shaft of the servo motor is fixedly sleeved with the axis of the connecting gear, the moving sleeve has a through hole on its surface, a moving rod is slidably connected to the inner wall of the moving sleeve, the surface of the rack is fixedly connected to the surface of the moving rod, the fixed sleeve has a movable hole on its surface, and the surface of the rack is slidably connected to the inner wall of the movable hole.
[0022] Through the above technical solution, the rotation of the servo motor output shaft drives the connecting gear connected to it to rotate. The connecting gear meshes with the rack through a through hole, thereby driving the rack meshing with it to move through the rotation of the connecting gear. The movement of the rack drives the moving rod connected to it to move along the inner wall of the moving sleeve rod. At the same time, the rack can move through the movable hole.
[0023] Preferably, a cam is fixedly sleeved on the surface of the second bamboo pole, a rotating motor is fixedly mounted on the surface of the two first grippers, a drive gear is fixedly sleeved on one end of the output shaft of the rotating motor, and a driven gear is fixedly sleeved on the surface of the second bamboo pole, the driven gear meshing with the drive gear.
[0024] Through the above technical solution, the rotation of the output shaft of the rotating motor drives the active gear connected to it to rotate, the rotation of the active gear drives the driven gear meshing with it to rotate, thereby driving the second bamboo pole to rotate, and the rotation of the second bamboo pole drives the cam to rotate, thus realizing the regular shaking of the noodles during the stretching process.
[0025] Preferably, the surfaces of the support plate and the drying rack body are symmetrically provided with casters, and the casters are self-locking casters.
[0026] The above technical solution facilitates the movement of the drying rack body and support plate, and can lock the support plate and drying rack body when in use to prevent displacement.
[0027] The beneficial effects of this invention are as follows: 1. By setting up a stretching mechanism, the first gripper simulates a human hand grasping both ends of the second bamboo pole, and the rotating motor drives the active gear to rotate, which in turn drives the driven gear meshing with it to rotate, thereby driving the second bamboo pole to rotate. With the cooperation of the rotation of the cam on the first self-driving slide rail and the second bamboo pole, a regular and uniform stretching and shaking effect on the noodles is achieved.
[0028] 2. By setting up a plug-in mechanism, it is easy to insert the suspended second bamboo pole into the second slot on the second support plate after the noodles are stretched, thus facilitating the drying of the noodles.
[0029] 3. By setting up a telescopic mechanism, the drive motor drives the screw to rotate, thereby moving the movable sleeve along the inner wall of the fixed sleeve to achieve the first-stage telescopic movement. The servo motor drives the connecting gear to rotate, thereby moving the rack meshing with it, and then moving the movable rod along the inner wall of the movable sleeve to achieve the second-stage telescopic movement. This facilitates the movement of the first gripper, L-shaped plate and second gripper connected to the movable rod respectively. This allows the telescopic mechanism to drive the stretching mechanism and the insertion mechanism to move laterally along the drying rack body, achieving the effect of clamping the second bamboo pole in sequence. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of a noodle drying rack system proposed in this invention; Figure 2 This is a perspective view of the second slot structure of a noodle drying rack system proposed in this invention; Figure 3 This is a perspective view of the L-shaped rod structure of a noodle drying rack system proposed in this invention; Figure 4 This is a perspective view of the threaded block structure of a noodle drying rack system proposed in this invention; Figure 5 This is a perspective view of the drive motor structure of a noodle drying rack system proposed in this invention; Figure 6 This is a perspective view of the second self-driving slide rail structure of a noodle drying rack system proposed in this invention; Figure 7 This is a perspective view of the mounting base structure of a noodle drying rack system proposed in this invention; Figure 8 This is a perspective view of the third self-driving slide rail structure of a noodle drying rack system proposed in this invention; Figure 9 This is a perspective view of the fixing sleeve structure of a noodle drying rack system proposed in this invention; Figure 10 This is a perspective view of the screw structure of a noodle drying rack system proposed in this invention; Figure 11 This is a perspective view of the movable sleeve structure of a noodle drying rack system proposed in this invention; Figure 12 This is a perspective view of the connecting gear structure of a noodle drying rack system proposed in this invention; Figure 13 This is a perspective view of the perforated structure of a noodle drying rack system proposed in this invention; Figure 14 This is a perspective view of the second bamboo pole structure of a noodle drying rack system proposed in this invention; Figure 15 This is a perspective view of the driven gear structure of a noodle drying rack system proposed in this invention; Figure 16 This is a perspective view of the active gear structure of a noodle drying rack system proposed in this invention.
[0031] In the diagram: 1. Drying rack body; 2. First bamboo pole; 3. Second bamboo pole; 4. First support plate; 41. First slot; 5. Second support plate; 51. Second slot; 6. Support plate; 7. First gripper; 71. Connecting plate; 72. First self-driving slide rail; 73. Groove; 74. Cam; 75. Rotating motor; 76. Drive gear; 77. Driven gear; 8. Hydraulic clamp; 81. Slide groove; 82. Second self-driving slide rail; 83. L-shaped plate; 84. First limiting groove; 85. First moving block; 86. First push... 87. Moving cylinder; 88. Mounting base; 89. Second limit groove; 810. Second moving block; 811. Second gripper; 812. Third self-driving slide rail; 813. Second push cylinder; 9. Drive motor; 91. Servo motor; 92. Screw; 93. Connecting gear; 94. Rack; 95. Fixed sleeve rod; 96. Connecting block; 97. Threaded block; 98. Connecting rod; 99. Moving sleeve rod; 910. Sliding groove; 911. Mounting groove; 912. Through hole; 913. Moving rod; 914. Movable hole; 10. Universal wheel. Detailed Implementation
[0032] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0033] Reference Figures 1-16 A noodle drying rack system includes a drying rack body 1, a first bamboo pole 2, and a second bamboo pole 3. A first support plate 4 and a second support plate 5 are fixedly installed on the surface of the drying rack body 1. The surface of the first support plate 4 is provided with a first slot 41 through which a rectangular array is distributed. The surface of the second support plate 5 is provided with a second slot 51 through which a rectangular array is distributed. The surface of the first bamboo pole 2 is inserted into the inner wall of the first slot 41, and the surface of the second bamboo pole 3 is inserted into the inner wall of the second slot 51. Noodles are suspended between the first bamboo pole 2 and the second bamboo pole 3. Support plates 6 are fixedly installed on both sides of the drying rack body 1. The surfaces of the two support plates 6 are respectively provided with a tensioning mechanism, an insertion mechanism, and a telescopic mechanism.
[0034] To facilitate the movement of the support plate 6 and the drying rack body 1, casters 10 are symmetrically distributed on the surfaces of both the support plate 6 and the drying rack body 1. The casters 10 are self-locking casters, which can be locked when the support plate 6 and the drying rack body 1 are in use to prevent displacement.
[0035] In order to stretch the noodles, the stretching mechanism includes first claws 7 symmetrically distributed on the surface of the support plate 6 near the drying rack body 1, which clamp the two ends of the second bamboo pole 3.
[0036] To drive the second bamboo pole 3 to move, the tensioning mechanism also includes a connecting plate 71 symmetrically distributed on the side surface of the support plate 6 near the drying rack body 1. A first self-driving slide rail 72 is fixedly installed on the side surface of the connecting plate 71 near the drying rack body 1. A first gripper 7 is disposed on the slider surface of the first self-driving slide rail 72. The movement of the slider on the first self-driving slide rail 72 drives the first gripper 7 to move, thereby driving the first gripper 7 to move linearly up and down. The movement of the first gripper 7 drives the second bamboo pole 3 to move.
[0037] To achieve the shaking of the second bamboo pole 3, thereby facilitating better noodle stretching, a cam 74 is fixedly sleeved on the surface of the second bamboo pole 3. A rotary motor 75 is fixedly mounted on the surface of the two first grippers 7. A drive gear 76 is fixedly sleeved on one end of the output shaft of the rotary motor 75, and a driven gear 77 is fixedly sleeved on the surface of the second bamboo pole 3. The driven gear 77 and the drive gear 76 mesh. The rotation of the output shaft of the rotary motor 75 drives the drive gear 76 connected to it to rotate. The rotation of the drive gear 76 drives the driven gear 77 meshing with it to rotate, thereby driving the second bamboo pole 3 to rotate. The rotation of the second bamboo pole 3 drives the cam 74 to rotate, thus achieving regular shaking of the noodles during the stretching process.
[0038] In order to connect the support plate 6 with the drying rack body 1, a groove 73 is provided through the surface of the drying rack body 1, and a connecting plate 71 extends into the groove 73 to facilitate the determination of the position of the support plate 6 and the drying rack body 1.
[0039] By setting up a stretching mechanism, the first gripper 7 simulates a human hand grasping both ends of the second bamboo pole 3, and the rotating motor 75 drives the active gear 76 to rotate, thereby driving the driven gear 77 meshing with it to rotate, which in turn drives the second bamboo pole 3 to rotate. With the cooperation of the first self-driving slide rail 72 and the cam 74 rotating on the second bamboo pole 3, a regular and uniform stretching and shaking effect on the noodles is achieved.
[0040] In order to insert the stretched second bamboo pole 3 into the second slot 51, the insertion mechanism includes a hydraulic clamp 8, which fixes the stretched second bamboo pole 3 by the stretching mechanism.
[0041] To bring the hydraulic clamping disc 8 closer to the second bamboo pole 3, the insertion mechanism also includes a groove 81 on the side surface of the support plate 6 near the drying rack body 1. A second self-driving slide rail 82 is fixedly installed on the side surface of the support plate 6 away from the drying rack body 1. An L-shaped plate 83 is slidably engaged with the inner wall of the groove 81. A first limiting groove 84 is provided on the surface of the L-shaped plate 83. A first moving block 85 is slidably engaged with the inner wall of the first limiting groove 84. The hydraulic clamping disc 8 is fixedly installed on one side surface of the first moving block 85. The hydraulic clamping disc 8 clamps one end of the second bamboo pole 3. The movement of the slider on the second self-driving slide rail 82 drives the L-shaped plate 83 connected to it to move along the inner wall of the groove 81.
[0042] In order to bring the second bamboo pole 3 closer to the second slot 51, a first push cylinder 86 is fixedly installed on the upper surface of the L-shaped plate 83. One end of the piston rod of the first push cylinder 86 extends into the first limiting groove 84 and is fixedly connected to the upper surface of the first moving block 85. The extension and retraction of the piston rod of the first push cylinder 86 drives the first moving block 85 connected to it to move along the inner wall of the first limiting groove 84, thereby driving the hydraulic clamp 8 connected to it to move.
[0043] To support the movement of the second bamboo pole 3, a mounting base 87 is fixedly installed on the side surface of the support plate 6 near the drying rack body 1. A second limiting groove 88 is opened on the side surface of the mounting base 87 near the drying rack body 1. A second moving block 89 is slidably engaged with the inner wall of the second limiting groove 88. A second gripper 810 is fixedly installed on the surface of the second moving block 89. A third self-driving slide rail 811 is fixedly installed on the side surface of the support plate 6 away from the drying rack body 1. A second push cylinder 812 is fixedly installed on the upper surface of the mounting base 87. One end of the piston rod of the second push cylinder 812 extends into the second limiting groove 88 and is fixedly connected to the upper surface of the second moving block 89. The extension and retraction of the piston rod of the second push cylinder 812 drives the second moving block 89 connected to it to move along the inner wall of the second limiting groove 88, thereby driving the second gripper 810 connected to it to move. The movement of the slider on the third self-driving slide rail 811 drives the second gripper 810 to move.
[0044] By setting up a plug-in mechanism, it is easy to insert the suspended second bamboo pole 3 into the second slot 51 on the second support plate 5 after the noodles are stretched, so as to facilitate the drying of the noodles.
[0045] To achieve the two-stage telescopic effect, the telescopic mechanism includes a drive motor 9, a servo motor 91, a screw 92, a connecting gear 93, and a rack 94. The drive motor 9 drives the screw 92 to rotate, the servo motor 91 drives the connecting gear 93 to rotate, and the connecting gear 93 meshes with the rack 94.
[0046] To achieve telescopic movement, the telescopic mechanism also includes a fixed sleeve rod 95 fixedly installed on the surface of the support plate 6 away from the drying rack body 1. Connecting blocks 96 are symmetrically distributed on the lower surface of the fixed sleeve rod 95. Both ends of the screw rod 92 are respectively mounted to the surface of the connecting blocks 96 via bearings. A drive motor 9 is installed on one side surface of one of the connecting blocks 96. One end of the output shaft of the drive motor 9 is fixedly connected to one end of the screw rod 92. Threaded blocks 97 are threaded onto the surface of the screw rod 92. Connecting rods 98 are symmetrically distributed and fixedly connected to the upper surface of the threaded blocks 97. The fixed sleeve rod 95... The inner wall is slidably connected to a movable sleeve rod 99. One end of each of the two connecting rods 98 is fixedly connected to the surface of the movable sleeve rod 99. The surface of the fixed sleeve rod 95 is symmetrically provided with sliding grooves 910. The surface of the connecting rod 98 is slidably connected to the inner wall of the sliding groove 910. The rotation of the output shaft of the drive motor 9 drives the screw 92 connected to it to rotate. The rotation of the screw 92 drives the threaded block 97 connected to it to move. The movement of the threaded block 97 drives the connecting rod 98 to move along the inner wall of the sliding groove 910, thereby driving the movable sleeve rod 99 to move along the inner wall of the fixed sleeve rod 95.
[0047] To ensure that the first gripper 7, L-shaped plate 83, and second gripper 810 can sequentially contact the multiple second bamboo poles 3 placed on the drying rack body 1, a mounting groove 911 is provided on the surface of one of the connecting rods 98. A connecting gear 93 is mounted on the inner wall of the mounting groove 911 via a bearing. A servo motor 91 is mounted on the upper surface of the connecting rod 98, and one end of the output shaft of the servo motor 91 is fixedly sleeved with the axis of the connecting gear 93. A through hole 912 is provided on the surface of the movable sleeve rod 99, and a movable rod 913 is slidably connected to the inner wall of the movable sleeve rod 99. The surface of the rack 94 is fixedly connected to the surface of the movable rod 913. A movable hole 914 is provided on the surface of the fixed sleeve rod 95. The surface is slidably connected to the inner wall of the movable hole 914. The rotation of the output shaft of the servo motor 91 drives the connecting gear 93 connected to it to rotate. The connecting gear 93 meshes with the rack 94 through the through hole 912. Thus, the rotation of the connecting gear 93 drives the rack 94 to move. The movement of the rack 94 drives the moving rod 913 connected to it to move along the inner wall of the moving sleeve 99. At the same time, the rack 94 can move through the movable hole 914, and the multiple moving sleeves 99 pass through the sliders of the first self-driven slide rail 72, the second self-driven slide rail 82 and the third self-driven slide rail 811, and the moving rod 913 is fixedly connected to the first gripper 7, the L-shaped plate 83 and the second gripper 810 respectively.
[0048] By setting up a telescopic mechanism, the drive motor 9 drives the screw 92 to rotate, thereby causing the movable sleeve 99 to move along the inner wall of the fixed sleeve 95 to achieve the first-level telescopic movement. The servo motor 91 drives the connecting gear 93 to rotate, thereby causing the rack 94 meshing with it to move, which in turn causes the movable rod 913 to move along the inner wall of the movable sleeve 99 to achieve the second-level telescopic movement. This facilitates the movement of the first gripper 7, the L-shaped plate 83 and the second gripper 810 connected to the movable rod 913, respectively. This allows the telescopic mechanism to drive the stretching mechanism and the insertion mechanism to move laterally along the drying rack body 1, achieving the effect of clamping the second bamboo pole 3 in sequence.
[0049] Working principle: When in use, the produced noodles are suspended between the first bamboo pole 2 and the second bamboo pole 3, and the first bamboo pole 2 with the noodles is inserted into the first slot 41 of the first support plate 4 in sequence. Then, the telescopic mechanism connected to the first gripper 7 is activated. The rotation of the output shaft of the drive motor 9 drives the screw 92 connected to it to rotate. The rotation of the screw 92 drives the threaded block 97 connected to it to move. The movement of the threaded block 97 drives the connecting rod 98 to move along the inner wall of the sliding groove 910, thereby driving the moving sleeve rod 99 to move along the inner wall of the fixed sleeve rod 95. Thus, the first gripper 7 moves closer to the second bamboo pole 3 through the moving rod 913, so that the driving gear 76 meshes with the driven gear 77. Then, the rotating motor 75 on the first gripper 7 and the first self-driving slide rail 72 are activated, so that the rotation of the output shaft of the rotating motor 75 drives the driving gear 76 connected to it to rotate. The rotation of the driving gear 76 drives the driven gear 77 meshing with it to rotate, thereby driving the second bamboo pole 3 to rotate. The rotation of the second bamboo pole 3 drives the cam 74 to rotate and cooperates with the first self-driving slide rail 72, thereby driving the second bamboo pole 3 to stretch the noodles downward. When the noodles are stretched to a certain length, the first gripper 7 returns to its original position. Then, the movement of the slider on the second self-driven slide rail 82 causes the L-shaped plate 83 to move along the inner wall of the slide groove 81 and approach the second bamboo pole 3. This causes the hydraulic clamping plate 8 to hold the second bamboo pole 3 and activates the telescopic mechanism connected to the second gripper 810. This causes the second gripper 810 to approach and wrap around the second bamboo pole 3, supporting the second bamboo pole 3 and facilitating the movement of the second bamboo pole 3 along the surface of the second gripper 810. Then, the second self-driven slide rail 82 is activated to move the second bamboo pole 3, causing one end of the second bamboo pole 3 to approach the second slot 51. Then, with the cooperation of the third self-driven slide rail 811, one end of the second bamboo pole 3 is driven into the second slot 51 of the second support plate 5. Then, the slider on the second self-driven slide rail 82 moves in the opposite direction to drive the second bamboo pole 3 into the second slot 51, aligning the first bamboo pole 2 with the second bamboo pole 3. Then, based on the change in distance, the first gripper 7 moves closer to the other second bamboo poles 3 in sequence. However, when the movement of the moving sleeve 99 reaches its maximum value, the servo motor 91 on the connecting rod 98 is activated. The rotation of the output shaft of the servo motor 91 drives the connecting gear 93 connected to it to rotate. The connecting gear 93 meshes with the rack 94 through the through hole 912. Thus, the rotation of the connecting gear 93 drives the rack 94 to move. The movement of the rack 94 drives the moving rod 913 connected to it to move along the inner wall of the moving sleeve 99, making it easier to further drive the first gripper 7, the second gripper 810 and the L-shaped plate 83 to move, thereby stretching all the noodles hanging on the drying rack body 1.
[0050] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A noodle drying rack system, comprising a drying rack body (1), a first bamboo pole (2), and a second bamboo pole (3), characterized in that: The surface of the drying rack body (1) is fixedly installed with a first support plate (4) and a second support plate (5). The surface of the first support plate (4) is arranged in a rectangular array and has a first slot (41) through it. The surface of the second support plate (5) is arranged in a rectangular array and has a second slot (51). The surface of the first bamboo pole (2) is inserted into the inner wall of the first slot (41), and the surface of the second bamboo pole (3) is inserted into the inner wall of the second slot (51). Noodles are suspended between the first bamboo pole (2) and the second bamboo pole (3). Support plates (6) are fixedly installed on both sides of the drying rack body (1). The surfaces of the two support plates (6) are respectively provided with a tensioning mechanism, a plugging mechanism and a telescopic mechanism. The stretching mechanism includes first grippers (7) symmetrically distributed on the surface of the support plate (6) near the drying rack body (1), which clamp the two ends of the second bamboo pole (3) through the two first grippers (7); The insertion mechanism includes a hydraulic clamp (8), which fixes the second bamboo pole (3) after it has been stretched by the stretching mechanism. The telescopic mechanism includes a drive motor (9), a servo motor (91), a screw (92), a connecting gear (93), and a rack (94). The drive motor (9) drives the screw (92) to rotate, the servo motor (91) drives the connecting gear (93) to rotate, and the connecting gear (93) meshes with the rack (94).
2. The noodle drying rack system according to claim 1, characterized in that: The stretching mechanism also includes a connecting plate (71) symmetrically distributed on the side surface of the support plate (6) near the drying rack body (1). A first self-driving slide rail (72) is fixedly installed on the side surface of the connecting plate (71) near the drying rack body (1). The first gripper (7) is disposed on the slider surface of the first self-driving slide rail (72).
3. The noodle drying rack system according to claim 2, characterized in that: The surface of the drying rack body (1) is provided with a groove (73), and one of the connecting plates (71) extends into the groove (73).
4. The noodle drying rack system according to claim 1, characterized in that: The insertion mechanism further includes a slide groove (81) formed on the side surface of the support plate (6) near the drying rack body (1). A second self-driving slide rail (82) is fixedly installed on the side surface of the support plate (6) away from the drying rack body (1). An L-shaped plate (83) is slidably engaged with the inner wall of the slide groove (81). A first limiting groove (84) is formed on the surface of the L-shaped plate (83). A first moving block (85) is slidably engaged with the inner wall of the first limiting groove (84). The hydraulic clamp (8) is fixedly installed on one side surface of the first moving block (85).
5. A noodle drying rack system according to claim 4, characterized in that: The upper surface of the L-shaped plate (83) is fixedly mounted with a first push cylinder (86), and one end of the piston rod of the first push cylinder (86) extends into the first limiting groove (84) and is fixedly connected to the upper surface of the first moving block (85).
6. A noodle drying rack system according to claim 5, characterized in that: A mounting base (87) is fixedly installed on the side surface of the support plate (6) near the drying rack body (1). A second limiting groove (88) is opened on the side surface of the mounting base (87) near the drying rack body (1). A second moving block (89) is slidably engaged with the inner wall of the second limiting groove (88). A second gripper (810) is fixedly installed on the surface of the second moving block (89). A third self-driving slide rail (811) is fixedly installed on the side surface of the support plate (6) away from the drying rack body (1). A second push cylinder (812) is fixedly installed on the upper surface of the mounting base (87). One end of the piston rod of the second push cylinder (812) extends into the second limiting groove (88) and is fixedly connected to the upper surface of the second moving block (89).
7. A noodle drying rack system according to claim 1, characterized in that: The telescopic mechanism further includes a fixed sleeve rod (95) fixedly installed on the side surface of the support plate (6) away from the drying rack body (1). Connecting blocks (96) are symmetrically distributed on the lower surface of the fixed sleeve rod (95). The two ends of the screw (92) are respectively installed on the surface of the connecting block (96) through bearings. The drive motor (9) is installed on one side surface of one of the connecting blocks (96). One end of the output shaft of the drive motor (9) is fixedly sleeved with one end of the screw (92). The screw (92) is threaded with a threaded block (97). The upper surface of the threaded block (97) is symmetrically connected with connecting rods (98). The inner wall of the fixed sleeve (95) is slidably connected with a movable sleeve (99). One end of each of the two connecting rods (98) is fixedly connected to the surface of the movable sleeve (99). The surface of the fixed sleeve (95) is symmetrically provided with sliding grooves (910). The surface of the connecting rod (98) is slidably connected to the inner wall of the sliding groove (910).
8. A noodle drying rack system according to claim 7, characterized in that: One of the connecting rods (98) has a mounting groove (911) on its surface. The connecting gear (93) is mounted on the inner wall of the mounting groove (911) via a bearing. The servo motor (91) is mounted on the upper surface of the connecting rod (98). One end of the output shaft of the servo motor (91) is fixedly sleeved with the shaft center of the connecting gear (93). The moving sleeve (99) has a through hole (912) on its surface. The moving sleeve (99) has a moving rod (913) slidably connected to its inner wall. The surface of the rack (94) is fixedly connected to the surface of the moving rod (913). The fixed sleeve (95) has a movable hole (914) on its surface. The surface of the rack (94) is slidably connected to the inner wall of the movable hole (914).
9. A noodle drying rack system according to claim 1, characterized in that: A cam (74) is fixedly sleeved on the surface of the second bamboo pole (3), and a rotating motor (75) is fixedly installed on the surface of the two first grippers (7). A drive gear (76) is fixedly sleeved on one end of the output shaft of the rotating motor (75), and a driven gear (77) is fixedly sleeved on the surface of the second bamboo pole (3). The driven gear (77) and the drive gear (76) mesh.
10. A noodle drying rack system according to claim 1, characterized in that: Both the support plate (6) and the drying rack body (1) are symmetrically provided with casters (10), and the casters (10) are self-locking casters.