Glass baking multi-point conveyor belt device
By designing a conveyor belt body made of high-temperature resistant materials and a multi-point support device, the problems of easy contamination and scratches on glass conveyor belts were solved, achieving cost savings in materials and safe glass transport.
Patent Information
- Application Number
- CN202520097999.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-15
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-01-15
AI Technical Summary
Existing glass conveyor belts have problems such as increasing the risk of glass contamination, easily causing scratches and defects, and high material costs.
Design a multi-point conveyor belt device for glass baking. The conveyor belt body is made of high-temperature resistant material, and a multi-point support device is fixed on it. The support points are spaced apart to reduce the contact area with the glass. The support points are made of high-temperature resistant and scratch-resistant material.
It effectively reduces the risk of glass contamination, avoids scratches from glass shards, and significantly reduces material costs.
Smart Images

Figure CN223792495U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass printing field especially relates to a glass baking multipoint formula conveyer belt device. BACKGROUND
[0002] After glass products enter the equipment printing, place on the conveyer belt surface, then enter the high temperature baking oven, enter the next silk printing post after baking.
[0003] The existing conveyer belt is the dense cloth belt that is woven by the teflon fiber, each teflon line is in close contact, does not leave the gap, the teflon surface is smooth planar, leads to glass and teflon conveyer belt 1:1 whole surface contact, increases the risk of glass being contaminated.In addition, when there is glass chippings on the surface of the conveyer belt, it is easy to cause scratch defects.Moreover, the conveyer belt has high manufacturing cost, the teflon line of the conveyer belt is cross tightly woven, leads to the teflon material needed is more, and the manufacturing cost is high.
[0004] The above information disclosed in the background section is only included to enhance the understanding of the background of the present disclosure, and thus can contain information that is not prior art known to those of ordinary skill in the art at the time of the present disclosure. SUMMARY
[0005] The technical problem to be solved by the utility model lies in that, in view of the above-mentioned defects of the prior art, such as increasing the risk of glass being contaminated, easily leading to scratch defects, and high material cost, a glass baking multipoint formula conveyer belt device is provided.
[0006] The utility model adopts the technical scheme in the solution to solve the technical problem: a glass baking multipoint formula conveyer belt device is constructed, which comprises a conveyer belt body and a multipoint support device, the conveyer belt body is prepared from a high-temperature-resistant material, and the multipoint support device is prepared from a high-temperature-resistant and scratch-resistant material.
[0007] The multipoint support device is fixed on the conveyer belt body, the multipoint support device comprises a plurality of spaced support points for contacting glass, and the distance from the support points to the surface of the conveyer belt body is greater than a first preset distance to reduce the contact area with the glass and avoid chippings contacting the glass.
[0008] Further, in the glass baking multipoint formula conveyer belt device, the multipoint support device comprises a plurality of support lines woven and fixed on the conveyer belt body.
[0009] The support lines are repeatedly inserted into the conveyer belt body in a continuous peak shape, and the peak points of the support lines on one side of the upper surface of the conveyer belt body serve as the support points.
[0010] Further, the support line is woven on the conveying belt body along the length direction of the conveying belt body, and all the support lines are arranged apart along the width direction of the conveying belt body.
[0011] Or, the support line is woven on the conveying belt body along the width direction of the conveying belt body, and all the support lines are arranged apart along the length direction of the conveying belt body.
[0012] Or, all the support lines are divided into two groups, one group of the support lines is woven on the conveying belt body along the length direction of the conveying belt body and arranged apart along the width direction of the conveying belt body, and the other group of the support lines is woven on the conveying belt body along the length direction of the conveying belt body and arranged apart along the width direction of the conveying belt body.
[0013] Further, the support line is an iron fluorine dragon line with a radius of 2-5 mm.
[0014] Further, the multi-point support device comprises a plurality of silica gel nails, the silica gel nail protrudes from the upper surface of the conveying belt body after penetrating through the conveying belt body from the lower surface of the conveying belt body, and the vertex of the silica gel nail on the upper surface of the conveying belt body serves as the support point.
[0015] Further, the silica gel nail comprises a large head below the lower surface of the conveying belt body and a small head above the upper surface of the conveying belt body, and a shallow ring groove is formed at the joint of the large head and the small head and clamped with the conveying belt body.
[0016] Further, the distance between the two adjacent support points along the width direction of the conveying belt body is greater than the second preset distance, and the distance between the two adjacent support points along the length direction of the conveying belt body is greater than the third preset distance.
[0017] Further, the conveying belt body is a nearly planar mesh belt woven by high-temperature-resistant wires, the interval between the two adjacent high-temperature-resistant wires is not greater than a fourth preset distance, and the fourth preset distance is smaller than the second preset distance and the third preset distance.
[0018] Furthermore, in the glass baking multi-point conveyor belt device of this utility model, the mesh belt is composed of two sets of high-temperature resistant wires. The high-temperature resistant wires in the same set are arranged in parallel at intervals, and the two sets of high-temperature resistant wires are interwoven into a mesh in an alternating up-and-down manner.
[0019] Furthermore, in the glass baking multi-point conveyor belt device of this utility model, the conveyor belt body is a nearly planar mesh belt woven from Teflon threads.
[0020] The multi-point conveyor belt device for glass baking of this utility model has the following beneficial effects: The conveyor belt device of this utility model includes a conveyor belt body and a multi-point support device. The conveyor belt body is made of high-temperature resistant material, and the multi-point support device is made of high-temperature resistant and scratch-resistant material. Compared with the densely woven Teflon fiber cloth belt in the prior art, it can greatly reduce material costs. The multi-point support device is fixed on the conveyor belt body and includes multiple spaced support points for contacting the glass. The distance from the support points to the surface of the conveyor belt body is greater than a first preset distance. Thus, multiple spaced support points can be used to contact the glass, greatly reducing the contact area with the glass and reducing the risk of contamination. Moreover, if there are debris, it can fall onto the surface of the conveyor belt body, located in the space below the support surface formed by a large number of support points, which can prevent debris from contacting and scratching the glass. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.
[0022] Figure 1 This is a schematic diagram of the structure of a first embodiment of the multi-point conveyor belt device for glass baking of this utility model;
[0023] Figure 2 This is a side view of one embodiment of the multi-point conveyor belt device for glass baking of this utility model;
[0024] Figure 3 This is a schematic diagram of the structure of Embodiment 2 of the glass baking multi-point conveyor belt device of this utility model;
[0025] Figure 4 This is a side view of Embodiment 2 of the glass baking multi-point conveyor belt device of this utility model;
[0026] The following are the labeling elements in the figure:
[0027] 1. Conveyor belt body; 101. Mesh gap; 11. High temperature resistant line; 2. Support line; 3. Silicone nail. Detailed Implementation
[0028] To address the shortcomings of existing technologies that use densely woven Teflon fiber conveyor belts for glass conveying, such as increased risk of glass contamination, susceptibility to scratches, and high material costs, this invention provides a multi-point conveyor belt device for glass baking. The general concept of this invention is as follows: A conveyor belt device is provided, comprising a conveyor belt body and a multi-point support device. The conveyor belt body is made of a high-temperature resistant material, and the multi-point support device is made of a high-temperature resistant and scratch-resistant material. Compared to the densely woven Teflon fiber conveyor belts of the prior art, this significantly reduces material costs. The multi-point support device is fixed to the conveyor belt body and includes multiple spaced support points for contacting the glass. The distance between each support point and the surface of the conveyor belt body is greater than a first preset distance. This allows for contact with the glass using multiple spaced support points, greatly reducing the contact area with the glass and lowering the risk of contamination. Furthermore, any debris can fall onto the surface of the conveyor belt body, located in the space below the support surface formed by the numerous support points, preventing debris from contacting and scratching the glass.
[0029] To facilitate understanding of this utility model, a more comprehensive description will be given below with reference to the accompanying drawings. The drawings illustrate typical embodiments of this utility model. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete. It should be understood that the embodiments of this utility model and the specific features thereof are detailed descriptions of the technical solutions of this application, and not limitations thereof. Where there is no conflict, the embodiments of this utility model and the technical features thereof can be combined with each other.
[0030] Example 1
[0031] refer to Figures 1-2 , Figure 1 This is a schematic diagram of the structure of Embodiment 1 of the multi-point conveyor belt device for glass baking of this utility model. Figure 2This is a side view of a first embodiment of the multi-point conveyor belt device for glass baking according to this utility model. In this embodiment, the multi-point conveyor belt device for glass baking includes a conveyor belt body 1 and a multi-point support device. The conveyor belt body 1 is made of a high-temperature resistant material, and the multi-point support device is made of a high-temperature resistant and scratch-resistant material. The multi-point support device is fixed to the conveyor belt body 1 and includes multiple spaced support points for contacting the glass. The distance from each support point to the surface of the conveyor belt body 1 is greater than a first preset distance to reduce the contact area with the glass and prevent debris from contacting the glass.
[0032] Theoretically, a large number of support points can be regularly or irregularly distributed, but to ensure the stability of the glass support, a regularly distributed distribution is generally preferred. In this embodiment, all the support points are arranged in a matrix, uniformly distributed along the width direction of the conveyor belt body 1 and uniformly distributed along the length direction of the conveyor belt body 1. The width direction of the conveyor belt body 1 is... Figure 1 The front-to-back direction, the length direction of the conveyor belt body 1 is... Figure 1 The distance between two adjacent support points along the width direction of the conveyor belt body 1 is greater than a second preset distance, and the distance between two adjacent support points along the length direction of the conveyor belt body 1 is greater than a third preset distance. The second and third preset distances can be equal or unequal. The second and third preset distances can be set according to the size and weight of the glass being carried, and there are no restrictions on this. For example, the length and width directions of the glass should ideally have more than three support points, and the glass pressure distributed at each support point should meet the objective support capacity of the support point. The heavier the glass, the denser the support points should be. Generally, the second and third preset distances are chosen to be 5 cm, that is, the distance between support points should be greater than 5 cm. Of course, the distance between support points should not be too large, and it is recommended not to exceed 15 cm. Therefore, in this embodiment, the distance between support points is set to 10 cm.
[0033] Specifically, the multi-point support device includes multiple support lines 2 woven and fixed onto the conveyor belt body 1. The support lines 2 repeatedly intersect the conveyor belt body 1 in a continuous mountain-like shape. The peak of the support line 2 located on one side of the upper surface of the conveyor belt body 1 serves as the support point. That is, the distance D1 from the peak to the surface of the conveyor belt body is greater than a first preset distance. The first preset distance can be set according to the size of the debris; it only needs to be greater than the size of the debris. The first preset distance is 0.4 cm, meaning the distance D1 from the peak to the surface of the conveyor belt body must be greater than 0.4 cm. In this embodiment, the distance D1 from the peak to the surface of the conveyor belt body is 0.5 cm. Of course, the distance D1 should not be too high; ideally, it should be within 1 cm. This allows multiple spaced support points to contact the glass, greatly reducing the contact area with the glass, lowering the risk of contamination. Furthermore, any debris can fall onto the surface of the conveyor belt body, located in the space below the support surface formed by the numerous support points, preventing the debris from scratching the glass.
[0034] More specifically, in this embodiment, the support lines 2 are woven along the length of the conveyor belt body 1, and all the support lines 2 are spaced apart along the width of the conveyor belt body 1. The distance D2 between two adjacent support lines 2 along the width of the conveyor belt body 1 is 10 centimeters. The distance between adjacent peaks of the same support line 2 is the same as D2.
[0035] It is understood that in other embodiments, the support lines 2 can also be woven along the width direction of the conveyor belt body 1, with all the support lines 2 spaced apart along the length direction of the conveyor belt body 1. For example, they can be further divided into two groups: one group of support lines 2 is woven along the length direction of the conveyor belt body 1 and spaced apart along the width direction of the conveyor belt body 1; the other group of support lines 2 is woven along the length direction of the conveyor belt body 1 and spaced apart along the width direction of the conveyor belt body 1.
[0036] In this embodiment, the support wire 2 is a Teflon wire. The radius of the support wire 2 is 2 mm to 5 mm, and in this embodiment, 3 mm is specifically chosen.
[0037] Furthermore, in this embodiment, the conveyor belt body 1 is a nearly planar mesh belt woven from high-temperature resistant wires 11. Specifically, it is composed of two sets of high-temperature resistant wires 11, with the high-temperature resistant wires 11 in the same set arranged in parallel at intervals. The two sets of high-temperature resistant wires 11 are interwoven in an alternating up-and-down manner to form a mesh. The interval between two adjacent high-temperature resistant wires 11 is not greater than a fourth preset distance. The fourth preset distance is less than the second preset distance and the third preset distance. For example, the fourth preset distance is 1 cm. That is, the spacing D3 and D4 (here, the spacing refers to the distance between the centers of the high-temperature resistant wires 11) between two high-temperature resistant wires 11 in the width direction and length direction of the conveyor belt body 1 cannot be greater than 1 cm. In this embodiment, D3 and D4 are both 0.5 cm, that is, the area of each mesh gap 101 is 0.5 cm * 0.5 cm.
[0038] Because the conveyor belt body 1 is not a densely woven belt (a densely woven belt does not have mesh gaps), but has mesh gaps, the conveyor belt body 1 can also be made of Teflon thread, which can save a lot of material costs compared to the non-densely woven belts in the prior art.
[0039] Example 2
[0040] refer to Figures 3-4 , Figure 3 This is a schematic diagram of the structure of Embodiment 2 of the multi-point conveyor belt device for glass baking of this utility model. Figure 4 This is a side view of Embodiment 2 of the glass baking multi-point conveyor belt device of this utility model. The difference between this embodiment and Embodiment 1 is that the multi-point support device includes multiple silicone nails 3. Each silicone nail 3 passes through the lower surface of the conveyor belt body 1 and protrudes from the upper surface of the conveyor belt body 1. The vertex of the silicone nail 3 on one side of the upper surface of the conveyor belt body 1 serves as the support point.
[0041] The spacing D5 between two adjacent silicone nails 3 in the width direction and the spacing D6 between two adjacent silicone nails 3 in the length direction are both 10 centimeters.
[0042] The silicone nail 3 includes a large end located below the lower surface of the conveyor belt body 1 and a small end located above the upper surface of the conveyor belt body 1. The small end is spindle-shaped and faces upward, while the large end faces downward. A shallow annular groove is formed at the junction of the large and small ends. After the small end passes through the conveyor belt body 1, the conveyor belt body 1 is precisely engaged in this shallow annular groove to achieve upper and lower positioning. The maximum radial dimension D8 of the small end near the bottom is the same as the distance between the two high-temperature resistant wires 11 (here, the distance refers to the distance between the centers of the two high-temperature resistant wires 11), which is 5 cm, so it will be smaller than the minimum gap between the two high-temperature resistant wires 11. The maximum radial dimension D9 of the top of the large end is greater than the distance between the two high-temperature resistant wires 11, which is 6 cm. The radial dimension D7 at the deepest point of the shallow annular groove is slightly smaller than the minimum gap between the two high-temperature resistant wires 11, which is 4 cm.
[0043] In summary, the glass baking multi-point conveyor belt device of this utility model has the following beneficial effects: The conveyor belt device of this utility model includes a conveyor belt body and a multi-point support device. The conveyor belt body is made of high-temperature resistant material, and the multi-point support device is made of high-temperature resistant and scratch-resistant material. Compared with the densely woven Teflon fiber cloth belt in the prior art, it can greatly reduce material costs. The multi-point support device is fixed on the conveyor belt body and includes multiple spaced support points for contacting the glass. The distance from the support points to the surface of the conveyor belt body is greater than a first preset distance, so that multiple spaced support points can be used to contact the glass, greatly reducing the contact area with the glass and reducing the risk of contamination. Moreover, if there are debris, it can fall onto the surface of the conveyor belt body, located in the space below the support surface formed by a large number of support points, which can prevent debris from contacting and scratching the glass.
[0044] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component. The terms "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0045] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0046] The terms "first," "second," and other ordinal numbers used in this specification are used to describe various constituent elements, but these constituent elements are not limited by these terms. The purpose of using these terms is solely to distinguish one constituent element from others. For example, without departing from the scope of this utility model, a first constituent element may be named a second constituent element, and similarly, a second constituent element may be named a first constituent element.
[0047] Numerous specific details are set forth in the specification provided herein. However, it will be understood that embodiments of the present invention may be practiced without these specific details. In the claims, any reference signs placed between parentheses should not be construed as limiting the claims.
[0048] The embodiments of the present invention have been described above with reference to the accompanying drawings. However, the present invention is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of the present invention without departing from the spirit and scope of the claims. All of these forms are within the protection scope of the present invention.
Claims
1. A multi-point conveyor belt device for glass baking, characterized in that, It includes a conveyor belt body (1) and a multi-point support device. The conveyor belt body (1) is made of high-temperature resistant material, and the multi-point support device is made of high-temperature resistant and scratch-resistant material. The multi-point support device is fixed on the conveyor belt body (1). The multi-point support device includes multiple spaced support points for contacting the glass, and the distance from the support points to the surface of the conveyor belt body (1) is greater than a first preset distance to reduce the contact area with the glass and prevent debris from contacting the glass.
2. The multi-point conveyor belt device for glass baking according to claim 1, characterized in that, The multi-point support device includes multiple support lines (2) woven and fixed on the conveyor belt body (1); The support line (2) is repeatedly inserted into the conveyor belt body (1) in a continuous mountain-like shape, and the peak of the support line (2) on one side of the upper surface of the conveyor belt body (1) serves as the support point.
3. The glass baking multi-point conveyor belt device according to claim 2, characterized in that, The support line (2) is woven on the conveyor belt body (1) along the length direction of the conveyor belt body (1), and all the support lines (2) are arranged separately along the width direction of the conveyor belt body (1). Alternatively: the support line (2) is woven on the conveyor belt body (1) along the width direction, and all the support lines (2) are arranged separately along the length direction of the conveyor belt body (1). Alternatively: all the support lines (2) are divided into two groups. One group of support lines (2) is woven along the length of the conveyor belt body (1) and is arranged separately along the width of the conveyor belt body (1). The other group of support lines (2) is woven along the length of the conveyor belt body (1) and is arranged separately along the width of the conveyor belt body (1).
4. The glass baking multi-point conveyor belt device according to claim 2, characterized in that, The support wire (2) is a Teflon wire with a radius of 2 mm to 5 mm.
5. The multi-point conveyor belt device for glass baking according to claim 1, characterized in that, The multi-point support device includes multiple silicone nails (3). The silicone nails (3) pass through the lower surface of the conveyor belt body (1) and protrude from the upper surface of the conveyor belt body (1). The vertex of the silicone nail (3) located on one side of the upper surface of the conveyor belt body (1) serves as the support point.
6. The multi-point conveyor belt device for glass baking according to claim 5, characterized in that, The silicone nail (3) includes a large end located below the lower surface of the conveyor belt body (1) and a small end located above the upper surface of the conveyor belt body (1). The connection between the large end and the small end forms a shallow annular groove that engages with the conveyor belt body (1).
7. The multi-point conveyor belt device for glass baking according to claim 1, characterized in that, The distance between two adjacent support points along the width direction of the conveyor belt body (1) is greater than a second preset distance, and the distance between two adjacent support points along the length direction of the conveyor belt body (1) is greater than a third preset distance.
8. The multi-point conveyor belt device for glass baking according to claim 7, characterized in that, The conveyor belt body (1) is a nearly planar mesh belt woven from high-temperature resistant wires (11). The adjacent high-temperature resistant wires (11) are spaced apart and the spacing is no greater than a fourth preset distance. The fourth preset distance is less than the second preset distance and the third preset distance.
9. The multi-point conveyor belt device for glass baking according to claim 8, characterized in that, The mesh strip is composed of two sets of high-temperature resistant wires (11). The high-temperature resistant wires (11) in the same set are arranged in parallel at intervals, and the two sets of high-temperature resistant wires (11) are interwoven into a mesh in an alternating up-and-down manner.
10. The multi-point conveyor belt device for glass baking according to claim 7, characterized in that, The conveyor belt body (1) is a nearly planar mesh belt woven from Teflon threads.