Carbonized composite fiber sleeved glass conveying roller way system
The glass conveying roller system with carbonized composite fiber sleeves solves the problem of damage to high-temperature glass caused by existing conveying rollers by utilizing the contact between the roller sleeve and the glass and the characteristics of carbonized composite fibers, thus achieving stable conveying and quality protection of the glass.
Patent Information
- Application Number
- CN202423253237.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-28
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-12-28
AI Technical Summary
The conveyor rollers of existing glass tempering equipment are prone to damage the glass surface under high temperature conditions, affecting the quality of the glass.
The glass conveying roller system using a carbonized composite fiber suit includes a shell, a conveying mechanism, a roller body, a limit sleeve, an anti-slip ring, a roller sleeve and a pressure wheel assembly. The roller sleeve is in contact with the glass at intervals, and the flexibility and high strength of the carbonized composite fiber are used to protect the glass. Stable conveying is achieved by combining a hydraulic cylinder and a low-speed motor drive.
It effectively reduces the damage to high-temperature glass caused by hard objects during transportation, ensures the stability and quality of the glass, and avoids deviation in the transportation direction.
Smart Images

Figure CN223316597U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass conveying, in particular to a carbonized composite fiber-suited glass conveying roller system. Background Art
[0002] Currently, in the field of physical tempering of glass sheets, glass sheets are transported on a conveyor roller conveyor in the tempering equipment, sequentially to the loading station, heating furnace, tempering cooling section, and unloading station for tempering. Existing conveyor roller conveyors in glass tempering equipment typically use chains, O-belts, active belts, synchronous belts, and other transmission mechanisms.
[0003] Currently, existing conveyor rollers are usually made of hard quartz. Once high-temperature glass comes into contact with their surface, the surface of the glass may be damaged by the hard object, resulting in a technical problem of reduced glass quality.
[0004] Therefore, we have made improvements to this problem and proposed a glass conveying roller system with a carbonized composite fiber suit. Utility Model Content
[0005] In order to solve the problem that the existing conveying rollers easily cause adverse effects on glass at high temperatures, the utility model provides a glass conveying roller system with a carbonized composite fiber package.
[0006] The utility model is achieved in this way:
[0007] A carbonized composite fiber-suited glass conveying roller system comprises an outer shell and a conveying mechanism, wherein the conveying mechanism is installed inside the outer shell, and a plurality of conveying roller bodies are rotatably connected inside the conveying mechanism, wherein the plurality of conveying roller bodies comprise a roller body, a limiting sleeve, an anti-slip ring and a roller sleeve, an annular groove is provided on the outer wall of the roller body, an anti-slip ring is embedded and installed inside the annular groove, the outer wall of the anti-slip ring is suited to the roller sleeve, and limiting sleeves are respectively suited at both ends of the roller body, and the cross-sectional diameter of the limiting sleeve is larger than the cross-sectional diameter of the roller body, a downward pressing assembly is provided at the top of the outer shell, and a plurality of pressure wheel assemblies are respectively installed on both sides of the bottom end of the downward pressing assembly, and the plurality of pressure wheel assemblies are respectively located directly above the roller sleeve.
[0008] Furthermore, the pressure wheel assembly includes an elastic telescopic rod, a retaining frame, a wheel body and a wheel sleeve. The bottom end of the elastic telescopic rod is connected to the retaining frame, and the bottom end of the retaining frame is rotatably connected to the wheel body.
[0009] The beneficial effect of adopting the above-mentioned further solution is that, by installing and using the retaining frame, space is provided for the installation of the wheel body. At the same time, by connecting and using the elastic telescopic rod, the bottom of the pressure wheel assembly can rebound when it contacts the glass, thereby avoiding excessive pressure on the glass.
[0010] Furthermore, a wheel sleeve is mounted on the outer wall of the wheel body.
[0011] The beneficial effect of adopting the above further solution is that, by using the wheel sleeve in a package, direct contact between the wheel body and the glass can be avoided.
[0012] Furthermore, the roller sleeve and the wheel sleeve are both made of carbonized composite fiber.
[0013] The beneficial effect of adopting the above further solution is that by utilizing the excellent flexibility, high strength and high modulus properties of the carbonized composite fiber material, it can effectively protect the roller sleeve and the wheel sleeve.
[0014] Furthermore, the pressing assembly includes a top cover and a slide plate, and the interior of the top cover is slidably connected to the slide plate.
[0015] The beneficial effect of adopting the above further solution is that the slide plate slides inside the top cover, thereby driving multiple pressure wheel assemblies to perform synchronous lifting activities.
[0016] Furthermore, hydraulic cylinders are respectively installed on both sides of the top of the shell, and the output ends of the two hydraulic cylinders extend to the interior of the top cover and are connected to the top of the slide.
[0017] The beneficial effect of adopting the above further solution is that the slide plate is driven to perform upgrading activities through the output end of the hydraulic cylinder, so that multiple pressure wheel assemblies can be raised and lowered to a specified height.
[0018] Furthermore, the conveying mechanism includes a casing, a plurality of partitions, a worm, a plurality of worm gears and a low-speed motor. The internal rotation of the casing connects the plurality of worm gears and the worm, and the plurality of worm gears are respectively engaged with the worm.
[0019] The beneficial effect of adopting the above further solution is that, through the coordinated use of the worm wheel and the worm, the worm can synchronously drive multiple worm wheels to rotate.
[0020] Furthermore, one end of each of the worm wheels is sleeve-connected to one end of the conveying roller body.
[0021] The beneficial effect of adopting the above further solution is that, through the sleeve connection between the worm gear and the conveyor roller body, the conveyor roller body can rotate following the worm gear under the drive of the worm.
[0022] Furthermore, a low-speed motor is installed on the outer wall of the housing, and the output end of the low-speed motor is transmission-connected to one end of the worm.
[0023] The beneficial effect of adopting the above further solution is that, by installing and using the low-speed motor, it provides power for the rotation of the worm.
[0024] Furthermore, a plurality of partitions are installed inside the housing, and one side of the plurality of partitions is rotatably connected to the outer wall of the worm.
[0025] The beneficial effect of adopting the above further solution is that, through the installation and use of the partition, it provides power for the rotation of the worm.
[0026] The beneficial effect of the present utility model is that, through the cooperation between the conveying roller body, the downward pressure assembly and the pressure wheel assembly, the system can effectively reduce the adverse damage to the glass caused by hard objects when conveying high-temperature glass. Among them, the roller body rotates inside the conveying mechanism and drives the roller sleeve to rotate synchronously, so that the glass can be conveyed. The roller sleeve separates the contact between the roller body and the glass, thereby reducing the contact between hard objects and the glass. Then, the anti-slip ring is used to avoid relative rotation between the roller sleeve and the roller body. At the same time, the installation and use of the limit sleeve makes it easy to limit the conveyed glass plate to a specified position, avoiding deviation in the conveying direction. Secondly, the downward pressure assembly drives the pressure wheel assembly to move downward, so that the pressure wheel assembly contacts the glass, thereby ensuring stability during the glass conveying process. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.
[0028] Figure 1 A three-dimensional diagram of a carbonized composite fiber suited glass conveying roller system provided by the present invention;
[0029] Figure 2 This is a bottom view of a lower pressure component of a carbonized composite fiber suited glass conveying roller system provided by the utility model;
[0030] Figure 3 A cross-sectional view of the conveying mechanism of a carbonized composite fiber suited glass conveying roller system provided by the present invention;
[0031] Figure 4 This is a schematic diagram of the expanded conveyor roller body of a carbonized composite fiber-wrapped glass conveyor roller system provided by the present invention;
[0032] Figure 5This is a bottom view of the pressure wheel mechanism of the carbonized composite fiber suited glass conveying roller system provided by the utility model.
[0033] In the figure: 100, outer shell; 200, conveying mechanism; 2001, machine casing; 2002, partition; 2003, worm; 2004, worm wheel; 2005, low-speed motor; 300, conveying roller body; 3001, roller body; 3002, limiting sleeve; 3003, anti-slip ring; 3004, roller sleeve; 400, pressing assembly; 4001, top cover; 4002, slide plate; 500, hydraulic cylinder; 600, pressure wheel assembly; 6001, elastic telescopic rod; 6002, retaining frame; 6003, wheel body; 6004, wheel sleeve. DETAILED DESCRIPTION
[0034] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0035] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but rather merely represents selected embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by a person of ordinary skill in the art without creative effort are within the scope of protection of the present invention. Example 1
[0036] See also Figure 1-Figure 5 The present invention provides a technical solution: a carbonized composite fiber-coated glass conveyor roller system comprises a housing 100 and a conveying mechanism 200. The conveying mechanism 200 is mounted within the housing 100, and a plurality of conveyor roller bodies 300 are rotatably connected within the conveying mechanism 200. The plurality of conveyor roller bodies 300 comprise a roller body 3001, a stopper sleeve 3002, an anti-slip ring 3003, and a roller sleeve 3004. The outer wall of the roller body 3001 defines an annular groove, within which the anti-slip ring 3003 is embedded and mounted. The outer wall of the anti-slip ring 3003 is fitted with a roller sleeve 3004. Stopper sleeves 3002 are mounted on each end of the roller body 3001. The cross-sectional diameter of the stopper sleeve 3002 is larger than that of the roller body 3001.
[0037] The top of the housing 100 is equipped with a downward pressure assembly 400. Several pressure roller assemblies 600 are mounted on either side of the bottom of the downward pressure assembly 400, each located directly above the roller sleeve 3004. The roller body 3001 rotates within the conveying mechanism 200, driving the roller sleeve 3004 to rotate synchronously, thereby transporting the glass. The roller sleeve 3004 isolates the roller body 3001 from the glass, reducing contact between the glass and hard objects. The installation of the anti-slip ring 3003 prevents relative rotation between the roller sleeve 3004 and the roller body 3001. Furthermore, the installation of the limiting sleeve 3002 helps to restrain the conveyed glass sheet at a specified position, preventing deviation in the conveying direction. Furthermore, the downward pressure assembly 400 drives the pressure roller assemblies 600 downward, bringing them into contact with the glass, thereby ensuring stability during the glass conveying process. Example 2
[0038] See also Figure 1-Figure 5 As an embodiment of the present invention, the pressure roller assembly 600 further includes an elastic telescopic rod 6001, a holder 6002, a wheel body 6003, and a wheel sleeve 6004. The bottom end of the elastic telescopic rod 6001 is connected to the holder 6002, and the bottom end of the holder 6002 is rotatably connected to the wheel body 6003. The installation of the holder 6002 provides space for the installation of the wheel body 6003. At the same time, the connection of the elastic telescopic rod 6001 allows the bottom of the pressure roller assembly 6000 to rebound when it contacts the glass, thereby avoiding excessive pressure on the glass.
[0039] The outer wall of the wheel body 6003 is fitted with a wheel sleeve 6004. This sleeve prevents direct contact between the wheel body 6003 and the glass. Both the roller sleeve 3004 and the wheel sleeve 6004 are made of carbonized composite fiber. This material, with its excellent flexibility, high strength, and high modulus, effectively protects the roller sleeve 3004 and the wheel sleeve 6004. The downward pressure assembly 400 includes a top cover 4001 and a slide plate 4002. The top cover 4001 is internally slidably connected to the slide plate 4002. The slide plate 4002 slides within the top cover 4001, driving the multiple pressure roller assemblies 600 for synchronous lifting and lowering. Hydraulic cylinders 500 are installed on both sides of the top of the shell 100. The output ends of the two hydraulic cylinders 500 extend to the inside of the top cover 4001 and are connected to the top of the slide 4002. The slide 4002 is driven by the output ends of the hydraulic cylinders 500 to perform upgrading activities, so that multiple pressure wheel assemblies 600 can be raised and lowered to a specified height. Example 3
[0040] See also Figure 1-Figure 5As an embodiment of the present invention, the conveying mechanism 200 further includes a housing 2001, a plurality of partitions 2002, a worm 2003, a plurality of worm gears 2004, and a low-speed motor 2005. The housing 2001 internally rotatably connects the plurality of worm gears 2004 to the worm 2003. The plurality of worm gears 2004 are individually meshed with the worm 2003. Through the meshing relationship between the worm gears 2004 and the worm 2003, the worm 2003 can synchronously drive the plurality of worm gears 2004 to rotate. One end of each of the worm gears 2004 is respectively fittedly connected to one end of the conveyor roller body 300. Through the fitted connection between the worm gears 2004 and the conveyor roller body 300, the conveyor roller body 300 can rotate in response to the worm gears 2004, driven by the worm 2003.
[0041] A low-speed motor 2005 is mounted on the outer wall of housing 2001. The output end of low-speed motor 2005 is in driving connection with one end of worm 2003. The installation and use of low-speed motor 2005 provides power for the rotation of worm 2003. Several partitions 2002 are mounted inside housing 2001. One side of each partition 2002 is rotatably connected to the outer wall of worm 2003. The installation and use of partitions 2002 provide power for the rotation of worm 2003.
[0042] Specifically, the carbonized composite fiber-clad glass conveyor roller system operates as follows: Upon use, the system's various structures are first inspected for integrity. Once these structures are confirmed, the hot glass sheet is placed onto the conveyor mechanism 200. Two hydraulic cylinders 500 are activated, causing their output ends to press down on the slide 4002, prompting the slide 4002 to drive the multiple pressure roller assemblies 600 to rise and fall to a specified height until they contact the glass, thereby ensuring stability during the glass conveying process. Furthermore, the elastic telescopic rods 6001 are connected to the roller assembly 600, allowing the bottom of the pressure roller assembly 600 to rebound upon contact with the glass, thus preventing excessive pressure on the glass.
[0043] Next, by starting the low-speed motor 2005, its output end drives the worm 2003 to rotate. The meshing relationship between the worm gear 2004 and the worm 2003 allows the worm 2003 to synchronously drive the rotation of multiple worm gears 2004. Simultaneously, the worm gear 2004 is fittedly connected to the conveyor roller body 300, allowing the worm 2003 to drive the worm gear 2004 to rotate. Furthermore, the worm gear 2004 is fittedly connected to the conveyor roller body 300, allowing the conveyor roller body 300 to rotate along with the worm gear 2004 under the drive of the worm 2003, driving the roller sleeve 3004 to rotate synchronously, thereby conveying glass. The roller sleeve 3004 separates the contact between the roller body 3001 and the glass, thereby reducing the contact between hard objects and the glass. The anti-slip ring 3003 is then used to avoid relative rotation between the roller sleeve 3004 and the roller body 3001. At the same time, the installation and use of the limit sleeve 3002 facilitates the conveyed glass plate to be restricted to a specified position, avoiding deviation in the conveying direction.
[0044] It should be noted that the specific models and specifications of the low-speed motor 2005 and the hydraulic cylinder 500 need to be selected and determined based on the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be described in detail.
[0045] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A carbonized composite fiber-wrapped glass conveying roller system, comprising a housing (100) and a conveying mechanism (200), characterized in that: The housing (100) is internally mounted with a conveying mechanism (200), and the interior of the conveying mechanism (200) is rotatably connected with a plurality of conveying roller bodies (300), the plurality of conveying roller bodies (300) comprising a roller body (3001), a limiting sleeve (3002), an anti-slip ring (3003) and a roller sleeve (3004), an annular groove is provided on the outer wall of the roller body (3001), an anti-slip ring (3003) is embedded in the interior of the annular groove, and the anti-slip ring (3004) is provided on the outer wall of the roller body (3001). 3) is provided with a roller sleeve (3004) on the outer wall, and limiting sleeves (3002) are respectively provided on both ends of the roller body (3001), the cross-sectional diameter of the limiting sleeve (3002) is larger than the cross-sectional diameter of the roller body (3001), and a downward pressing component (400) is provided at the top end of the shell (100), and a plurality of pressure wheel assemblies (600) are respectively installed on both sides of the bottom end of the downward pressing component (400), and the plurality of pressure wheel assemblies (600) are respectively located directly above the roller sleeve (3004).
2. The carbonized composite fiber suited glass conveying roller system according to claim 1, characterized in that: The pressure wheel assembly (600) comprises an elastic telescopic rod (6001), a retaining frame (6002), a wheel body (6003) and a wheel sleeve (6004); the bottom end of the elastic telescopic rod (6001) is connected to the retaining frame (6002), and the bottom end of the retaining frame (6002) is rotatably connected to the wheel body (6003).
3. The carbonized composite fiber-wrapped glass conveying roller system according to claim 2, characterized in that: The outer wall of the wheel body (6003) is sleeved with a wheel sleeve (6004).
4. The carbonized composite fiber-wrapped glass conveying roller system according to claim 3, characterized in that: The roller sleeve (3004) and the wheel sleeve (6004) are both made of carbonized composite fiber material.
5. The carbonized composite fiber-wrapped glass conveying roller system according to claim 1, characterized in that: The pressing assembly (400) comprises a top cover (4001) and a slide plate (4002), wherein the interior of the top cover (4001) is slidably connected to the slide plate (4002).
6. The carbonized composite fiber-wrapped glass conveying roller system according to claim 5, characterized in that: Hydraulic cylinders (500) are respectively installed on both sides of the top of the housing (100), and the output ends of the two hydraulic cylinders (500) extend to the interior of the top cover (4001) and are connected to the top of the slide plate (4002).
7. The carbonized composite fiber-wrapped glass conveying roller system according to claim 1, characterized in that: The conveying mechanism (200) comprises a housing (2001), a plurality of partitions (2002), a worm (2003), a plurality of worm wheels (2004) and a low-speed motor (2005); the housing (2001) internally rotates to connect the plurality of worm wheels (2004) and the worm (2003); and the plurality of worm wheels (2004) are respectively engaged with the worm (2003).
8. The carbonized composite fiber-wrapped glass conveying roller system according to claim 7, characterized in that: One end of each of the worm wheels (2004) is sleeve-connected to one end of the conveying roller body (300).
9. The carbonized composite fiber-wrapped glass conveying roller system according to claim 8, characterized in that: A low-speed motor (2005) is installed on the outer wall of the housing (2001), and an output end of the low-speed motor (2005) is drivingly connected to one end of the worm (2003).
10. The carbonized composite fiber coated glass conveying roller system according to claim 9, characterized in that: A plurality of partitions (2002) are installed inside the housing (2001), and one side of the plurality of partitions (2002) is rotatably connected to the outer wall of the worm (2003).