Glass wool processing belt conveying line with limiting structure
By designing an interlocking sliding mechanism and a nested elastic mechanism, the problems of instability and falling during the glass wool conveying process are solved, achieving stable and efficient glass wool conveying and improving ease of use and processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GOME YINGSHENG (JIANGSU) ENERGY SAVING TECH CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-01
AI Technical Summary
Existing belt conveyor lines have insufficient protective design during the glass wool transportation process, which may cause the glass wool to be unstable during transportation, easily collide or fall off, affecting the convenience of use and processing efficiency.
A belt conveyor with a limiting structure was designed. Through a meshing sliding mechanism and a nested elastic mechanism, including components such as meshing gears, limiting rotating rods, anti-fall top plates, and nested sliding rings, the side protection and stable conveying of glass wool are achieved.
It effectively prevents glass wool from falling off during transportation, improving the stability and processing efficiency of the transportation process, especially in terms of safety and convenience when transporting large quantities of glass wool.
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Figure CN224185130U_ABST
Abstract
Description
A belt conveyor line made of glass wool with a limiting structure Technical Field
[0001] This utility model relates to the field of belt conveyor technology, specifically to a belt conveyor made of glass wool with a limiting structure. Background Technology
[0002] Belt conveyors, also known as belt conveyor lines or rubber belt conveyors, are widely used in various industries such as home appliances, electronics, electrical appliances, machinery, tobacco, injection molding, post and telecommunications, printing, and food for the assembly, testing, debugging, packaging, and transportation of objects.
[0003] To prevent workpieces from being thrown out during high-speed turns, existing belt conveyors typically have arc-shaped baffles installed on the outside of the belt. However, this approach also leads to another problem: workpieces collide with the baffles at high speeds, which can easily damage the workpieces and affect their quality.
[0004] To overcome the above-mentioned defects, the prior art (publication number: CN219238341U, Chinese patent application date: 2023-06-23) discloses a double-layer switching oscillating belt conveyor line, including an upper belt conveyor side plate installed on the top of the main frame assembly and a lower belt conveyor side plate in the middle. The two ends of the upper and lower belt conveyors are respectively fixedly installed on the corresponding upper and lower belt conveyor side plates. The top of the upper belt drive assembly and the lower drive assembly are respectively installed on the conveyor side plates, and the bottom is installed on the main frame assembly. The rotating shaft support assembly is installed on the main frame assembly. The end transition assembly is installed on the lower belt conveyor side plate. One end of the oscillating cylinder is fixedly installed on one side of the main frame assembly, and the other end is connected to the end transition assembly. One end of the auxiliary oscillating synchronization assembly is installed on one side of the bottom of the main frame assembly, and the other end is connected to the end transition assembly. The conveyed products can meet the needs of various product types. The production rhythm can be adjusted according to the needs of different products to achieve equidistant conveying of products on the rear cooling belt conveyor line.
[0005] While the above design can solve the aforementioned problems, it lacks sufficient protection during the transportation process. Relying solely on a simple conveyor belt for transportation may result in goods falling due to unstable placement or collisions, causing significant inconvenience. Furthermore, when transporting glass wool, if a large amount of glass wool is placed at once, it may fall due to excessive stacking, limiting the quality of each transport and reducing processing efficiency. Summary of the Invention
[0006] The purpose of this utility model is to provide a belt conveyor line for glass wool processing with a limiting structure, so as to solve the problem of insufficient protection design for the transportation process of goods mentioned in the background art. Relying solely on a simple conveyor belt for transportation work may result in the goods falling due to unstable placement or collision during transportation, which is very inconvenient to use. At the same time, when conveying glass wool, if a large amount of glass wool is put in at one time, it may fall due to the high stacking, resulting in limited single conveying quality and reduced processing efficiency.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a belt conveyor line for processing glass wool with a limiting structure, comprising a supporting rotating base, a fixed drive motor mounted above the supporting rotating base, and an engagement sliding mechanism for moving a fall-prevention top plate back and forth mounted at the output end of the fixed drive motor, the engagement sliding mechanism comprising a cargo conveyor belt, the cargo conveyor belt being rotatably installed inside the supporting rotating base, the output end of the fixed drive motor being connected to the interior of the cargo conveyor belt, a first supporting rotating frame mounted on the upper surface of the supporting rotating base, a second supporting rotating frame mounted on the upper surface of the supporting rotating base, and a nested elastic mechanism for fixing a semi-circular retractable rod mounted inside the second supporting rotating frame.
[0008] Furthermore, the nested elastic mechanism includes an integral rotating rod, which is rotatably mounted inside the second support rotating frame. A driven baffle is mounted on the outer surface of the integral rotating rod, and an extension connecting rod is mounted at the end of the driven baffle.
[0009] Furthermore, nested sliding rings are installed at both ends of the extended docking rod, and a return contraction spring is installed inside the nested sliding ring. A semi-circular contraction rod is installed inside the nested sliding ring, and the end of the semi-circular contraction rod abuts against the return contraction spring. A fixed traction rod is installed on the back of the semi-circular contraction rod, and the fixed traction rod passes through the interior of the extended docking rod.
[0010] Furthermore, a limiting rotating rod is installed inside the first supporting rotating frame, and a second meshing gear is installed at the end of the limiting rotating rod. A first meshing gear is installed on the outer surface of the output end of the fixed drive motor, and the first meshing gear and the second meshing gear mesh with each other.
[0011] Furthermore, a fixed support frame is installed on the upper surface of the supporting rotating base, and an auxiliary horizontal frame is installed inside the fixed support frame. An anti-fall top plate is installed inside the auxiliary horizontal frame, and the front end of the anti-fall top plate is in contact with the upper surface of the cargo conveyor belt. The rotation trajectory of the limiting rotating rod corresponds to the running trajectory of the cargo conveyor belt.
[0012] Furthermore, the outer surface of the first meshing gear contacts the outer surface of the second meshing gear to form a meshing structure, and the inner surface of the first support rotating frame contacts the outer surfaces of both ends of the limiting rotating rod to form a sliding structure. The outer surface of the fixed support frame is equipped with an ejector support spring, and the other end of the ejector support spring abuts against the inner surface of the anti-fall top plate.
[0013] Furthermore, a nested lifting frame is installed on the upper surface of the supporting rotating base, and a docking inner groove is opened on the outer surface of the nested lifting frame. The diameter of the docking inner groove corresponds to that of the semi-circular contraction rod, and the front end of the semi-circular contraction rod is designed as a semi-circle.
[0014] Compared with the prior art, the beneficial effects of this utility model are: the glass wool processing belt conveyor with limiting structure, when the glass wool is being conveyed, the fixed drive motor is started to work the conveyor belt, and the first meshing gear also moves at the same time. The rotation of the first meshing gear will drive the limiting rotating rod through the second meshing gear. As the limiting rotating rod rotates against the side of the conveyor belt, the glass wool is protected from the side. This design prevents the goods from falling during transportation and makes the operation simpler and easier to use.
[0015] Furthermore, when a large amount of glass wool needs to be transported, the integrated rotating rod and the driven baffle are rotated directly along the second support rotating frame, so that the semi-circular shrinking rod abuts against the outer surface of the nested lifting frame and slides inward along the inside of the nested sliding ring. After reaching the corresponding docking inner groove, the reset shrinking spring releases elastic potential energy to push it out, completing the nesting installation. This design allows a large amount of glass wool to be put in at one time, improving processing efficiency.
[0016] Furthermore, when the glass wool moves to the other side, if the pressure is too great, it will come into contact with the front end of the fall arrestor and push it continuously. The fall arrestor slides horizontally with the assistance of the auxiliary horizontal frame. During the movement, the push-out support spring will be squeezed simultaneously. This design makes the protective limiting effect of the glass wool on both sides better. Attached Figure Description
[0017] Figure 1 is a three-dimensional structural diagram of the rotating support base of this utility model;
[0018] Figure 2 is a three-dimensional structural diagram of the fixed support frame of this utility model;
[0019] Figure 3 is a three-dimensional structural diagram of the first meshing gear of this utility model;
[0020] Figure 4 is a three-dimensional structural diagram of the anti-fall roof plate of this utility model;
[0021] Figure 5 is a three-dimensional structural diagram of the integrated rotating rod of this utility model;
[0022] Figure 6 is a schematic diagram of the three-dimensional structure of the nested lifting frame of this utility model.
[0023] In the diagram: 1. Supporting rotating base; 2. Fixed drive motor; 3. Cargo conveyor belt; 4. Fixed traction rod; 5. First meshing gear; 6. First supporting rotating frame; 7. Limiting rotating rod; 8. Fixed support frame; 9. Nested sliding ring; 10. Auxiliary horizontal frame; 11. Anti-fall top plate; 12. Second meshing gear; 13. Ejection support spring; 14. Second supporting rotating frame; 15. Integrated rotating rod; 16. Return retraction spring; 17. Driven baffle plate; 18. Extended docking rod; 19. Nested lifting frame; 20. Dating inner groove; 21. Semi-circular retraction rod. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Example 1: Please refer to Figures 1-6. This utility model provides the following technical solution: A belt conveyor line for processing glass wool with a limiting structure includes a supporting rotating base 1. A fixed drive motor 2 is installed above the supporting rotating base 1, and the output end of the fixed drive motor 2 is equipped with a meshing sliding mechanism for moving the anti-fall top plate 11 back and forth. The meshing sliding mechanism includes a cargo conveyor belt 3, and the cargo conveyor belt 3 is rotatably installed inside the supporting rotating base 1. The output end of the fixed drive motor 2 is connected to the inside of the cargo conveyor belt 3. A first supporting rotating frame 6 is installed on the upper surface of the supporting rotating base 1, and a second supporting rotating frame 14 is installed on the upper surface of the supporting rotating base 1. A nested elastic mechanism for fixing the semi-circular retractable rod 21 is installed inside the second supporting rotating frame 14.
[0026] As shown in Figures 2, 3, and 4, this technical solution addresses the problem of insufficient protection during cargo transportation. Relying solely on a conveyor belt for transport can lead to instability or cargo falling during transport, causing significant inconvenience. The solution discloses: a limiting rotating rod 7 is installed inside the first supporting rotating frame 6, with a second meshing gear 12 installed at its end. A first meshing gear 5 is installed on the outer surface of the output end of the fixed drive motor 2, and the first meshing gear 5 meshes with the second meshing gear 12. A fixed support frame 8 is installed on the upper surface of the supporting rotating base 1. Furthermore, an auxiliary horizontal frame 10 is installed inside the fixed support frame 8, and an anti-fall top plate 11 is installed inside the auxiliary horizontal frame 10. The front end of the anti-fall top plate 11 is in contact with the upper surface of the cargo conveyor belt 3. The rotation trajectory of the limiting rotating rod 7 corresponds to the running trajectory of the cargo conveyor belt 3. The outer surface of the first meshing gear 5 contacts the outer surface of the second meshing gear 12 to form a meshing structure. The inner surface of the first support rotating frame 6 contacts the outer surfaces of both ends of the limiting rotating rod 7 to form a sliding structure. An ejection support spring 13 is installed on the outer surface of the fixed support frame 8, and the other end of the ejection support spring 13 abuts against the inner surface of the anti-fall top plate 11.
[0027] When glass wool needs to be conveyed, the fixed drive motor 2, which is fixedly installed above the rotating support base 1, is started first. The fixed drive motor 2 drives the conveyor belt 3, which is connected to the inside of its output end. The conveyor belt 3 continuously conveys goods along the inside of the rotating support base 1. As the fixed drive motor 2 operates, the first meshing gear 5, which is fixedly installed at the output end, also rotates synchronously. When the first meshing gear 5 rotates, it meshes with the second meshing gear 12, which is in contact with its side, and drives it. The second meshing gear 12 rotates in a circular motion as it is driven by the meshing motion. The limiting rotating rod 7, which is fixedly installed on the side of the second meshing gear 12, also rotates in a circular motion synchronously. Due to the limiting rotation... The rotating rod 7 is installed inside the first support rotating frame 6, and the first support rotating frame 6 is fixedly installed on the upper surface of the support rotating base 1. Therefore, the limiting rotating rod 7 will perform lateral stable rotation. The rotation trajectory of the limiting rotating rod 7 corresponds to the side of the cargo conveyor belt 3. When the glass wool is pushed to the other side, it will contact the top of the anti-fall top plate 11. After being resisted, the anti-fall top plate 11 will slide laterally along the inside of the auxiliary horizontal frame 10. As the movement continues, the inner surface of the anti-fall top plate 11 will contact the ejection support spring 13. Since the ejection support spring 13 is fixedly installed at the front end of the fixed support frame 8, the anti-fall top plate 11 will be laterally buffered. This design makes the glass wool conveying process more stable.
[0028] Example 2: As shown in Figures 1, 5, and 6, this technical solution addresses the problem that when conveying glass wool, if a large amount of glass wool is placed at once, it may fall due to high stacking, resulting in limited conveying quality and reduced processing efficiency. The solution discloses a nested elastic mechanism including an integral rotating rod 15, which is rotatably mounted inside a second support rotating frame 14. A driven baffle plate 17 is mounted on the outer surface of the integral rotating rod 15, and an extension connecting rod 18 is mounted at the end of the driven baffle plate 17. The two sides of the extension connecting rod 18 are fitted with… There is a nested sliding ring 9, and a reset contraction spring 16 is installed inside the nested sliding ring 9. A semi-circular contraction rod 21 is installed inside the nested sliding ring 9, and the end of the semi-circular contraction rod 21 abuts against the reset contraction spring 16. A fixed traction rod 4 is installed on the back of the semi-circular contraction rod 21, and the fixed traction rod 4 passes through the interior of the extension docking rod 18. A nested lifting frame 19 is installed on the upper surface of the supporting rotating base 1, and a docking inner groove 20 is opened on the outer surface of the nested lifting frame 19. The opening diameter of the docking inner groove 20 corresponds to that of the semi-circular contraction rod 21, and the front end of the semi-circular contraction rod 21 is designed as a semi-circle.
[0029] When a large quantity of glass wool needs to be transported at once, as the glass wool is poured onto the conveyor belt 3, the integrated rotating rod 15 rotates along the inside of the second support rotating frame 14. Since the second support rotating frame 14 is fixedly installed on the upper surface of the support rotating base 1, the integrated rotating rod 15 will rotate in place in a circular motion. During the rotation, it will drive the driven baffle 17 fixedly installed on the outer surface. The movement of the driven baffle 17 will simultaneously drive the extension connecting rod 18 fixedly installed at the end. When the extension connecting rod 18 rotates downward, the semi-circular shrinking rod 21 will move synchronously and abut against the nested lifting frame 19 in the rotation trajectory. Since the nested lifting frame 19 is fixedly installed on the upper surface of the support rotating base 1, the semi-circular shrinking rod 21 will slide backward due to the abutment at the front end. The semi-circular shrinking rod 21 moves along the nested sliding ring 9. The internal nested retraction mechanism works as follows: Since the nested sliding ring 9 is fixedly installed at the end of the extended docking rod 18, the semi-circular retraction rod 21 remains in a limited position and retracts inward. During the sliding process, it will abut against the reset retraction spring 16 nested inside the nested sliding ring 9 and compress it. Because the front end of the semi-circular retraction rod 21 is semi-circular, it will slide along the outer surface of the nested lifting frame 19 until it corresponds to the appropriate docking inner groove 20. At this time, the reset retraction spring 16 will release elastic potential energy to push the semi-circular retraction rod 21 forward, completing the docking work between the semi-circular retraction rod 21 and the nested lifting frame 19. When replacement or removal is required, simply pull the fixed traction rod 4 backward along the nested sliding ring 9. The fixed traction rod 4 will then drive the semi-circular retraction rod 21 to retract and complete the reset work. This design increases work efficiency.
[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0031] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A belt conveyor line for processing glass wool with a limiting structure, comprising a supporting rotating base (1), a fixed drive motor (2) mounted above the supporting rotating base (1), and an engagement sliding mechanism for moving a fall-prevention top plate (11) back and forth at the output end of the fixed drive motor (2); characterized in that: The meshing sliding mechanism includes a cargo conveyor belt (3), which is rotatably installed inside a supporting rotating base (1). The output end of the fixed drive motor (2) is connected to the inside of the cargo conveyor belt (3). A first supporting rotating frame (6) is installed on the upper surface of the supporting rotating base (1), and a second supporting rotating frame (14) is installed on the upper surface of the supporting rotating base (1). A nested elastic mechanism for fixing the semi-circular retractable rod (21) is installed inside the second supporting rotating frame (14).
2. The belt conveyor line with a limiting structure for glass wool processing according to claim 1, characterized in that: The nested elastic mechanism includes an integral rotating rod (15), which is rotatably mounted inside the second support rotating frame (14). A driven baffle (17) is installed on the outer surface of the integral rotating rod (15), and an extension connecting rod (18) is installed at the end of the driven baffle (17).
3. A belt conveyor line with a limiting structure for processing glass wool according to claim 2, characterized in that: Nested sliding rings (9) are installed at the ends of both sides of the extended docking rod (18), and a reset contraction spring (16) is installed inside the nested sliding ring (9). A semi-circular contraction rod (21) is installed inside the nested sliding ring (9), and the end of the semi-circular contraction rod (21) abuts against the reset contraction spring (16). A fixed traction rod (4) is installed on the back of the semi-circular contraction rod (21), and the fixed traction rod (4) passes through the interior of the extended docking rod (18).
4. A belt conveyor line with a limiting structure for processing glass wool according to claim 1, characterized in that: The first support rotating frame (6) is equipped with a limiting rotating rod (7) inside, and a second meshing gear (12) is installed at the end of the limiting rotating rod (7). A first meshing gear (5) is installed on the outer surface of the output end of the fixed drive motor (2), and the first meshing gear (5) meshes with the second meshing gear (12).
5. A belt conveyor line with a limiting structure for processing glass wool according to claim 4, characterized in that: A fixed support frame (8) is installed on the upper surface of the supporting rotating base (1), and an auxiliary horizontal frame (10) is installed inside the fixed support frame (8). An anti-fall top plate (11) is installed inside the auxiliary horizontal frame (10), and the front end of the anti-fall top plate (11) is in contact with the upper surface of the cargo conveyor belt (3). The rotation trajectory of the limiting rotating rod (7) corresponds to the running trajectory of the cargo conveyor belt (3).
6. A belt conveyor line with a limiting structure for processing glass wool according to claim 5, characterized in that: The outer surface of the first meshing gear (5) contacts the outer surface of the second meshing gear (12) to form a meshing structure, and the inner surface of the first support rotating frame (6) contacts the outer surfaces of both ends of the limiting rotating rod (7) to form a sliding structure. The outer surface of the fixed support frame (8) is equipped with an ejector support spring (13), and the other end of the ejector support spring (13) abuts against the inner surface of the anti-fall top plate (11).
7. A belt conveyor line with a limiting structure for processing glass wool according to claim 3, characterized in that: The upper surface of the supporting rotating base (1) is equipped with a nested lifting frame (19), and the outer surface of the nested lifting frame (19) is provided with a docking inner groove (20). The opening diameter of the docking inner groove (20) corresponds to that of the semi-circular shrinking rod (21), and the front end of the semi-circular shrinking rod (21) is designed as a semi-circle.
Citation Information
Patent Citations
Double-layer switching swing belt conveying line
CN219238341U