Substrate glass batch feeder with adjustable rack
By improving the adjustable frame and bearing seat structure of the substrate glass feeding machine, the problem of eccentric installation position of the spiral auger was solved, improving material conveying efficiency and product quality, and avoiding raw material adhesion and cross-contamination.
Patent Information
- Application Number
- CN202511194531.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-25
- Publication Date
- 2025-11-25
AI Technical Summary
The installation position of the screw conveyor auger inside the cylinder of a traditional screw conveyor is difficult to adjust precisely, resulting in eccentricity, which affects material conveying efficiency and product quality, and is also prone to raw material adhesion and cross-contamination.
A substrate glass feeding machine with an adjustable frame was designed. Through improvements to the height movement component and bearing seat structure, the overall movement and height adjustment of the device were realized, ensuring that the rotation axis of the auger coincides with the center line of the conveying cylinder. With the help of cooling components and drive components, material adhesion and high-temperature melting are avoided.
Precise installation of the auger was achieved, improving material conveying efficiency, avoiding raw material adhesion and cross-contamination, and ensuring product quality stability and normal material conveying.
Smart Images

Figure CN121005291A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of substrate glass feeding machines, and specifically to a substrate glass feeding machine with an adjustable frame. Background Technology
[0002] In the glass manufacturing industry, screw conveyors are widely used in the conveying of glass raw materials (such as powdery or granular materials like quartz sand, soda ash, and limestone) due to their simple structure and good sealing performance.
[0003] Currently, the traditional screw conveyor commonly used in the industry typically consists of a conveying cylinder, a screw conveyor (or screw blades) housed within the cylinder, a drive unit, and bearing housings supporting both ends of the screw conveyor. These bearing housings are usually bolted to the end caps at both ends of the conveying cylinder, while the screw conveyor is installed between the bearing housings.
[0004] However, this traditional design and installation method has obvious technical limitations in practice:
[0005] Due to the fixed bolt holes used to mount the bearing housing, once the bearing housing is bolted to the end cover, the radial position of the auger within the conveying cylinder is determined and fixed. This rigid structure makes it difficult to precisely adjust the actual installation position of the auger within the cylinder, often failing to ensure that the auger's axis of rotation coincides perfectly with the geometric center line of the conveying cylinder. This can lead to eccentricity of the auger within the cylinder, resulting in inconsistent circumferential gaps between the spiral blades and the inner wall of the cylinder. Too small a gap can easily cause friction or even jamming, while too large a gap reduces material conveying efficiency and allows some material (especially when conveying viscous or fine powdery glass raw materials) to adhere and accumulate on the cylinder wall or spiral blades in areas with larger gaps, forming residues. These residues can then mix into newly conveyed batches, causing cross-contamination of raw materials with different formulations and affecting the quality of subsequent products. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention provides a substrate glass feeding machine with an adjustable frame, which solves the problems mentioned in the background art.
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] A substrate glass feeding machine with an adjustable frame includes a frame, a height-moving component mounted on the bottom surface of the frame, a feeding component mounted on the top surface of the frame, an electrical control box mounted on one side of the frame, and a drive component mounted on the bottom surface of the inner cavity of the frame. The output end of the drive component is connected to the feeding component via a sprocket assembly and a chain. The feeding component includes a bearing component, a conveying hopper, and a conveying component. The bearing component and the conveying hopper are respectively mounted on the top surface of the frame. The conveying hopper is connected to one side of the bearing component, and a cooling component is mounted on one side of the conveying hopper. The drive portion of the conveying component is mounted on the bearing component, and the conveying portion of the conveying component... The machine is equipped with a conveying hopper and a cooling component. The bearing component includes a bearing housing and a fixed base. The fixed base is bolted to the top surface of the frame. The top surface of the fixed base has a symmetrically arranged T-slot. The bearing housing is installed above the fixed base. A T-block is fixedly connected to one end of the bottom surface of the bearing housing. A T-block is slidably connected in the T-slot. A connecting base is fixedly connected to the other end of the bottom surface of the fixed base. An adjustment hole is symmetrically arranged on the top surface of the connecting base. An insertion hole is provided on one side of the bearing housing. A sealing ring is bolted to one side of the bearing housing and the side located at the insertion hole. A first bearing seat structure and a second bearing seat structure are respectively installed inside the bearing housing.
[0009] Furthermore, the first bearing housing structure includes a translation groove, a fixing nut, and a lifting bolt. Translation grooves are respectively provided on both sides of the bearing housing surface, and fixing nuts are respectively fixedly connected to the bottom surface of the bearing housing cavity. One end of the lifting bolt penetrates the bottom surface of the bearing housing and is threadedly connected to the fixing nut.
[0010] Furthermore, the first bearing housing structure also includes an L-shaped plate. L-shaped plates are installed on both sides of the inner wall of the bearing housing. A vertical groove is provided on one side of the L-shaped plate. A crossbar is fixedly connected between the two sets of L-shaped plates. A transverse groove is symmetrically provided on the top surface of the crossbar. A bearing housing is fixedly connected to the top surface of the crossbar above the transverse groove by bolts and nuts. The second bearing housing structure adopts the same structure as the first bearing housing structure and is installed symmetrically.
[0011] Furthermore, the conveying hopper is composed of a V-shaped hopper, an extension cylinder, a first connecting flange, a conveying cylinder, and a second connecting flange. The extension cylinder and the conveying cylinder are fixedly connected to both sides of the V-shaped hopper, respectively. The first connecting flange is fixedly connected to one side of the extension cylinder, and the second connecting flange is fixedly connected to one side of the conveying cylinder. The other side of the bearing housing is fixedly connected to the first connecting flange by bolts and nuts.
[0012] Furthermore, the cooling component includes a cooling cylinder, with a third connecting flange fixedly connected to the other end of the cooling cylinder. One side of the third connecting flange is fixedly connected to a second connecting flange via a threaded nut. A cooling chamber is provided inside the cooling cylinder, and a partition ring is fixedly connected inside the cooling chamber. A connecting pipe is fixedly connected to one side of the partition ring. The cooling chamber is divided into a water inlet chamber and a water outlet chamber by the partition ring.
[0013] Furthermore, the cooling component also includes a first conveying pipe, a second conveying pipe, a water inlet pipe, and a drain pipe. The surface of the cooling cylinder is fixedly connected to the water inlet pipe and the drain pipe, respectively. One end of the water inlet pipe is fixedly connected to the first conveying pipe, and one end of the drain pipe is fixedly connected to the second conveying pipe. The first conveying pipe and the second conveying pipe pass through the frame and their surfaces are fixedly connected to the frame.
[0014] Furthermore, the conveying component includes a conveying shaft, which is installed in the bearing housing. A sprocket is fixedly connected to the surface of the conveying shaft, and a conveying auger is fixedly connected to one end of the conveying shaft. A blocking disc is fixedly connected to the surface of the conveying shaft, and the blocking disc is located inside the conveying hopper. The conveying auger is located inside both the conveying hopper and the cooling component.
[0015] Furthermore, the drive assembly includes height studs, and height studs are fixedly connected to the bottom surface of the inner cavity of the frame. An adjusting nut and an anti-loosening nut are threadedly connected to the surface of the height studs. An mounting plate is installed on the surface of the height studs and between the adjusting nut and the anti-loosening nut. A reducer is fixedly connected to the top surface of the mounting plate, and a drive motor is fixedly connected to one side of the reducer.
[0016] Furthermore, the height-moving component includes a movable frame, the bottom surface of which is provided with wheel grooves, and movable wheels are installed in the wheel grooves. L-shaped pieces are fixedly connected to both sides of the movable frame, and a connecting hole is provided on one side of the L-shaped pieces. A lifting component is installed on the top surface of the movable frame.
[0017] Furthermore, the lifting component includes studs, and studs are fixedly connected to the top surface of the movable frame. A threaded sleeve is threadedly connected to the surface of the stud, and the threaded sleeve slides within the frame. A screw nut is fixedly connected to the lower part of the surface of the threaded sleeve, and a pressure nut is threadedly connected to the upper part of the surface of the threaded sleeve.
[0018] This invention provides a substrate glass feeding machine with an adjustable frame. Compared with the prior art, it has the following advantages:
[0019] 1. The bearing housing structure avoids the problem of bearing housing not being able to install the bearing due to dimensional errors in design and manufacturing, thus preventing subsequent installation issues.
[0020] 2. The entire device can be moved and the device can be put into operation with the furnace by means of the height moving component. At the same time, the height of the feeding component and the frame can be adjusted to facilitate the docking of the feeding component's discharge port with the furnace later.
[0021] 3. By cooperating with the bearing components, conveying hopper, conveying components, cooling components and drive components in the feeding assembly, the material can be conveyed. During material conveying, the cooling components can cool the material to prevent the high temperature of the furnace from melting the furnace inside the cooling components, which would prevent the material from being conveyed normally. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention 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 some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 An overall schematic diagram of the present invention is shown;
[0024] Figure 2 This diagram shows another perspective view of the overall invention;
[0025] Figure 3 This diagram shows a partial sectional side view of the entire invention.
[0026] Figure 4 A schematic diagram of the highly movable component of the present invention is shown;
[0027] Figure 5 This diagram shows another perspective view of the highly mobile component of the present invention;
[0028] Figure 6 A schematic diagram of the driving component of the present invention is shown;
[0029] Figure 7 A schematic diagram of the feeding assembly of the present invention is shown;
[0030] Figure 8 A schematic diagram of the conveying hopper of the present invention is shown;
[0031] Figure 9 A schematic diagram of the cooling component of the present invention is shown;
[0032] Figure 10 This diagram shows another perspective view of the feeding assembly of the present invention;
[0033] Figure 11A schematic diagram of the conveying component of the present invention is shown;
[0034] Figure 12 A schematic diagram of the bearing component of the present invention is shown;
[0035] Figure 13 This diagram shows another perspective view of the bearing component of the present invention;
[0036] Figure 14 A partial schematic diagram of the bearing component of the present invention is shown;
[0037] As shown in the figure:
[0038] 1. Rack;
[0039] 2. Height-adjustable assembly; 21. Moving frame; 22. Wheel groove; 23. Moving wheel; 24. L-shaped piece; 25. Connecting hole; 26. Stud; 27. Screw sleeve; 28. Tightening nut; 29. Press-down nut;
[0040] 3. Feeding assembly;
[0041] 4. Electrical control box;
[0042] 5. Drive assembly; 51. Height stud; 52. Adjusting nut; 53. Anti-loosening nut; 54. Mounting plate; 55. Reducer; 56. Drive motor;
[0043] 6. Bearing components; 61. Bearing housing; 62. Fixing seat; 63. T-slot; 64. T-block; 65. Connecting seat; 66. Adjustment hole; 67. Through hole; 68. Sealing ring; 69. Translation groove; 610. Fixing nut; 611. Lifting bolt; 612. L-shaped plate; 613. Vertical groove; 614. Crossbar; 615. Horizontal groove; 616. Bearing housing;
[0044] 7. Conveying hopper; 71. V-shaped hopper; 72. Extension cylinder; 73. First connecting flange; 74. Conveying cylinder; 75. Second connecting flange;
[0045] 8. Conveying components; 81. Conveying shaft; 82. Conveying auger; 83. Blocking disc;
[0046] 9. Cooling component; 91. Cooling cylinder; 92. Third connecting flange; 93. Cooling chamber; 94. Separating ring; 95. Connecting pipe; 96. Water inlet chamber; 97. Drainage chamber; 98. First conveying pipe; 99. Second conveying pipe; 910. Water inlet pipe; 911. Drainage pipe. Detailed Implementation
[0047] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention are described clearly and completely. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0048] Example
[0049] To address the technical problems in the background art, a substrate glass feeding machine with an adjustable frame is provided as follows:
[0050] Combination Figures 1-14 As shown, the present invention provides a substrate glass feeding machine with an adjustable frame, comprising a frame 1, a height movement component 2 mounted on the bottom surface of the frame 1, a feeding component 3 mounted on the top surface of the frame 1, an electrical control box 4 mounted on one side of the frame 1, a drive component 5 mounted on the bottom surface of the inner cavity of the frame 1, and the output end of the drive component 5 connected to the feeding component 3 via a sprocket assembly and a chain; the feeding component 3 includes a bearing component 6, a conveying hopper 7, and a conveying component 8. The bearing component 6 and the conveying hopper 7 are respectively mounted on the top surface of the frame 1, the conveying hopper 7 is connected to one side of the bearing component 6, a cooling component 9 is mounted on one side of the conveying hopper 7, the drive part of the conveying component 8 is mounted on the bearing component 6, and the conveying part of the conveying component 8 is equipped with a conveying component. Inside the bucket 7 and cooling component 9; the bearing component 6 includes a bearing housing 61 and a fixed seat 62. The top surface of the frame 1 is bolted to the fixed seat 62. The top surface of the fixed seat 62 is symmetrically provided with a T-slot 63. The bearing housing 61 is installed above the fixed seat 62. A T-block 64 is fixedly connected to one end of the bottom surface of the bearing housing 61. The T-block 64 is slidably connected in the T-slot 63. The other end of the bottom surface of the fixed seat 62 is fixedly connected to a connecting seat 65. The top surface of the connecting seat 65 is symmetrically provided with an adjustment hole 66. A through hole 67 is provided on one side of the bearing housing 61. A sealing ring 68 is bolted to one side of the bearing housing 61 and located on the side of the through hole 67. A first bearing seat structure and a second bearing seat structure are respectively installed inside the bearing housing 61.
[0051] By cooperating with the bearing component 4, conveying hopper 7, conveying component 8, cooling component 9 and drive component 5 in the feeding component 3, the material can be conveyed. During the material conveying, the cooling component 9 can cool the material to prevent the high temperature of the furnace from melting the furnace inside the cooling component 9, which would prevent the material from being conveyed normally.
[0052] The height-moving component 2 enables the overall movement of the device and its operation with the furnace. At the same time, it also allows for the adjustment of the height of the feeding component 3 and the frame 1, facilitating the docking of the feeding port of the feeding component 3 with the furnace later.
[0053] The bearing housing structure avoids the problem of bearing housings being unable to accommodate bearings due to dimensional errors during design and manufacturing, thus preventing subsequent installation issues.
[0054] In this embodiment, the first bearing housing structure includes a translation groove 69, a fixing nut 610, and a lifting bolt 611. Translation grooves 69 are respectively provided on both sides of the surface of the bearing housing 61. Fixing nuts 610 are respectively fixedly connected to the bottom surface of the inner cavity of the bearing housing 61. One end of the lifting bolt 611 penetrates the bottom surface of the bearing housing 61 and is threadedly connected to the fixing nut 610.
[0055] The translation groove 69 and the lifting nut 611 in the first bearing housing structure cooperate with each other to ensure that the bearing housing can be adjusted in height and forward and backward during installation.
[0056] In this embodiment, the first bearing housing structure also includes an L-shaped plate 612. L-shaped plates 612 are respectively installed on both sides of the inner wall of the bearing housing 61. A vertical groove 613 is provided on one side of the L-shaped plate 612. A crossbar 614 is fixedly connected between the two sets of L-shaped plates 612. A transverse sliding groove 615 is symmetrically provided on the top surface of the crossbar 614. A bearing housing 616 is fixedly connected to the top surface of the crossbar 614 and above the transverse sliding groove 615 by bolts and nuts. The second bearing housing structure adopts the same structure as the first bearing housing structure and is symmetrically installed.
[0057] By cooperating with the transverse groove 615 and the vertical groove 613 in the first bearing housing structure, the bearing housing 616 can be adjusted in height and left and right when it is installed, so as to ensure that the bearing housing 616 can be installed on the surface of the bearing.
[0058] In this embodiment, the conveying hopper 7 is composed of a V-shaped hopper 71, an extension cylinder 72, a first connecting flange 73, a conveying cylinder 74, and a second connecting flange 75. The extension cylinder 72 and the conveying cylinder 74 are fixedly connected to both sides of the V-shaped hopper 71, respectively. The first connecting flange 73 is fixedly connected to one side of the extension cylinder 72, and the second connecting flange 75 is fixedly connected to one side of the conveying cylinder 74. The other side of the bearing housing 61 is fixedly connected to the first connecting flange 73 by bolts and nuts.
[0059] The design of the conveying hopper 7 facilitates the later conveying of materials and also allows for easy connection to external silos, enabling a continuous supply of materials.
[0060] In this embodiment, the cooling component 9 includes a cooling cylinder 91. A third connecting flange 92 is fixedly connected to the other end of the cooling cylinder 91. One side of the third connecting flange 92 is fixedly connected to a second connecting flange 75 by a threaded nut. A cooling chamber 93 is provided inside the cooling cylinder 91. A partition ring 94 is fixedly connected inside the cooling chamber 93. A connecting pipe 95 is fixedly connected to one side of the partition ring 94. The cooling chamber 93 is divided into a water inlet chamber 96 and a water outlet chamber 97 by the partition ring 94.
[0061] The material can be conveyed by the cooling cylinder 91 in the cooling component 9 in conjunction with the conveying component 8.
[0062] In this embodiment, the cooling component 9 further includes a first conveying pipe 98, a second conveying pipe 99, a water inlet pipe 910, and a drain pipe 911. The surface of the cooling cylinder 91 is fixedly connected to the water inlet pipe 910 and the drain pipe 911, respectively. One end of the water inlet pipe 910 is fixedly connected to the first conveying pipe 98, and one end of the drain pipe 911 is fixedly connected to the second conveying pipe 99. The first conveying pipe 98 and the second conveying pipe 99 pass through the frame 1 and their surfaces are fixedly connected to the frame 1.
[0063] Coolant is delivered into the cooling cylinder 91 through the first delivery pipe 98 and the second delivery pipe 99 in the cooling component 9 to cool the cooling cylinder 91 and prevent the material from being melted in the cooling cylinder 91 by the high temperature in the furnace during transportation, which would prevent the material from being transported into the furnace.
[0064] In this embodiment, the conveying component 8 includes a conveying shaft 81, which is installed in the bearing housing 616. A sprocket is fixedly connected to the surface of the conveying shaft 81, and a conveying auger 82 is fixedly connected to one end of the conveying shaft 81. A blocking disc 83 is fixedly connected to the surface of the conveying shaft 81. The blocking disc 83 is located in the conveying hopper 7, and the conveying auger 82 is located in the conveying hopper 7 and the cooling component 9, respectively.
[0065] By driving the conveyor shaft 81 to rotate through the drive component 5, the conveyor auger 82 can be rotated, thus realizing the conveying of materials in the conveyor hopper 7.
[0066] In this embodiment, the drive assembly 5 includes a height stud 51. The bottom surface of the inner cavity of the frame 1 is fixedly connected to the height stud 51. The surface of the height stud 51 is threaded with an adjusting nut 52 and an anti-loosening nut 53. An mounting plate 54 is installed on the surface of the height stud 51 and between the adjusting nut 52 and the anti-loosening nut 53. A reducer 55 is fixedly connected to the top surface of the mounting plate 54. A drive motor 56 is fixedly connected to one side of the reducer 55.
[0067] By cooperating with the height stud 51, the adjusting nut 52, and the anti-loosening nut 53, the height of the mounting plate 54, the reducer 55, and the drive motor 56 can be adjusted, so that the tension of the chain can be adjusted later to ensure the normal material conveying of the equipment.
[0068] In this embodiment, the height moving component 2 includes a moving frame 21. The bottom surface of the moving frame 21 is provided with wheel grooves 22, and moving wheels 23 are installed in the wheel grooves 22. L-shaped pieces 24 are fixedly connected to both sides of the moving frame 21. A connecting hole 25 is provided on one side of the L-shaped piece 24. A lifting component is installed on the top surface of the moving frame 21.
[0069] The L-shaped piece 24 and the connecting hole 25 facilitate the subsequent docking and fixing of the furnace, so as to achieve the overall fixation of the device;
[0070] The movable wheels 23 facilitate the later relocation of the entire device.
[0071] In this embodiment, the lifting component includes studs 26. The top surface of the movable frame 21 is fixedly connected to studs 26. The surface of the studs 26 is threadedly connected to a sleeve 27. The sleeve 27 slides within the frame 1. The lower part of the surface of the sleeve 27 is fixedly connected to a screw nut 28. The upper part of the surface of the sleeve 27 is threadedly connected to a pressure nut 29.
[0072] By cooperating with the stud 26, sleeve 27, screw nut 28 and pressing nut 29 in the lifting component, the height of the frame 1 and the feeding component 3 can be adjusted, so that the feeding port end of the feeding component 3 can be connected with the furnace feed port, thus facilitating subsequent feeding.
[0073] Working principle and usage process of this invention:
[0074] In use:
[0075] During assembly:
[0076] First, the workers fix the conveyor hopper 7 to the top surface of the frame 1. After fixing, the cooling cylinder 91 is installed. The third flange 9 on one side of the cooling cylinder 91 is connected to the second flange 75. After connection, the entire installation is completed. After installation, the bearing housing 61 is installed. During installation, the bottom T-block 64 of the bearing housing 61 is first inserted into the T-slot 63. Then, the bearing housing 61 is moved so that one side of the bearing housing 61 contacts one side of the first connecting flange 73. After contact, the workers can proceed with the installation. The components are secured together using bolts and nuts. After securing, the workers then use bolts and nuts to fix the connecting seat 65 to the frame 1. After securing, the workers begin installing the conveying component 8. During installation, one end of the conveying shaft 81 is first inserted into the end of the cooling cylinder 91. As the conveying shaft 81 is inserted, it will pass through the cooling cylinder 91 and the conveying hopper 7 in sequence, with one end of the conveying hopper 7 protruding. After protruding, the conveying shaft 81 will be located inside the bearing housing 61. Simultaneously, the conveying auger 82 and the blocking disc 8... Located inside the conveying hopper 7 and cooling cylinder 91, after the conveying component 8 is installed, the L-shaped piece 612 is installed. During installation, first, a bolt is passed through the translation groove 69, then through the vertical groove 613. After passing through, a nut is used to fix the L-shaped piece 612 to the inner wall of the bearing housing 62. After fixing, the lifting bolt 611 is then inserted from the bottom of the bearing housing 61, so that one end of the lifting bolt 611 contacts the bottom surface of the L-shaped piece 612, thereby allowing for height adjustment of the L-shaped piece 612. The translation groove 69 is used for front-to-back adjustment of the L-shaped piece 612. Finally, the operator installs the bearing housing 616 on the surface of the bearing, with the bolts inserted downwards from the top of the bearing housing 616. Under the action of the transverse groove 615, the bearing housing 616 is adjusted left and right. Combined with the front-to-back and up-to-down adjustments above, adjustment in multiple directions can be achieved. This avoids the bearing housing 616 being unable to be installed on the surface of the bearing due to errors during production or installation. Therefore, this installation method avoids the aforementioned defects.
[0077] During installation,
[0078] First, the entire device is moved to one side of the furnace using the moving wheels 23. Then, the operator rotates the screw nut 28, which drives the screw sleeve 27 to rotate. When the screw sleeve 27 rotates, it will drive the frame 1 and the feeding component 3 to move up or down, thereby adjusting the height of the feeding component 3. When the feeding port of the feeding component 3 is connected to the furnace feed port, the operator can then use bolts and L-shaped pieces 24 to connect and fix the device to the furnace, thus completing the overall fixation of the device.
[0079] When loading materials:
[0080] First, the staff connects the conveying hopper 7 to the external silo. After connection, the discharge valve of the silo is opened, allowing the material to fall into the conveying hopper 7. At this time, the staff can supply power to the drive motor 56 through the electrical control box 4. As the drive motor 56 works, it drives the sprocket to rotate under the action of the reducer 55. When the sprocket rotates, it drives the conveying shaft 81 to rotate under the action of the chain. When the conveying shaft 81 rotates, it drives the conveying auger 82 and the blocking disc 83 to rotate. When the conveying auger 82 rotates, the material in the V-shaped hopper 71 is conveyed into the conveying cylinder 74. As the material is conveyed, it will be conveyed from the conveying cylinder 74 into the cooling cylinder 91. Finally, the material is conveyed from the cooling cylinder 91 into the furnace, thus realizing the material conveying.
[0081] When conveying materials, the workers first connect the external water inlet pipe and drain pipe to the first conveying pipe 98 and the second conveying pipe 99, respectively. After connection, cooling water is injected into the water inlet chamber 96. The cooling water flows into the drain chamber 97, thereby cooling the materials in the cooling cylinder 91. The high-temperature water generated by cooling is finally discharged through the drain pipe 911, which facilitates the replacement of cooling water in the later stage.
[0082] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0083] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A substrate glass feeding machine with an adjustable frame, characterized in that: The machine includes a frame (1), a height moving component (2) is installed on the bottom surface of the frame (1), a feeding component (3) is installed on the top surface of the frame (1), an electrical control box (4) is installed on one side of the frame (1), a drive component (5) is installed on the bottom surface of the inner cavity of the frame (1), and the output end of the drive component (5) is connected to the feeding component (3) through a sprocket set and a chain. The feeding assembly (3) includes a bearing component (6), a conveying hopper (7), and a conveying component (8). The top surface of the frame (1) is respectively equipped with the bearing component (6) and the conveying hopper (7). The conveying hopper (7) is connected to one side of the bearing component (6). The cooling component (9) is installed on one side of the conveying hopper (7). The driving part of the conveying component (8) is installed in the bearing component (6). The conveying part of the conveying component (8) is installed inside the conveying hopper (7) and the cooling component (9). The bearing component (6) includes a bearing housing (61) and a fixed seat (62). The fixed seat (62) is bolted to the top surface of the frame (1). The fixed seat (62) has a T-slot (63) symmetrically arranged on the top surface of the fixed seat (62). The bearing housing (61) is installed above the fixed seat (62). A T-block (64) is fixedly connected to one end of the bottom surface of the bearing housing (61). The T-block (64) is slidably connected in the T-slot (63). A connecting seat (65) is fixedly connected to the other end of the bottom surface of the fixed seat (62). An adjustment hole (66) is symmetrically arranged on the top surface of the connecting seat (65). An insertion hole (67) is provided on one side of the bearing housing (61). A sealing ring (68) is bolted to one side of the bearing housing (61) and the side located at the insertion hole (67). A first bearing seat structure and a second bearing seat structure are respectively installed in the bearing housing (61).
2. The substrate glass feeding machine with an adjustable frame according to claim 1, characterized in that: The first bearing housing structure includes a translation groove (69), a fixing nut (610), and a lifting bolt (611). Translation grooves (69) are respectively provided on both sides of the surface of the bearing housing (61). Fixing nuts (610) are respectively fixedly connected to the bottom surface of the inner cavity of the bearing housing (61). One end of the lifting bolt (611) penetrates the bottom surface of the bearing housing (61) and is threadedly connected to the fixing nut (610).
3. A substrate glass feeding machine with an adjustable frame according to claim 2, characterized in that: The first bearing housing structure also includes an L-shaped plate (612). L-shaped plates (612) are respectively installed on both sides of the inner wall of the bearing housing (61). A vertical groove (613) is provided on one side of the L-shaped plate (612). A crossbar (614) is fixedly connected between the two sets of L-shaped plates (612). A transverse groove (615) is symmetrically provided on the top surface of the crossbar (614). A bearing housing (616) is fixedly connected to the top surface of the crossbar (614) above the transverse groove (615) by bolts and nuts. The second bearing housing structure adopts the same structure as the first bearing housing structure and is installed symmetrically.
4. A substrate glass feeding machine with an adjustable frame according to claim 3, characterized in that: The conveying hopper (7) consists of a V-shaped hopper (71), an extension cylinder (72), a first connecting flange (73), a conveying cylinder (74), and a second connecting flange (75). The extension cylinder (72) and the conveying cylinder (74) are fixedly connected to both sides of the V-shaped hopper (71). The first connecting flange (73) is fixedly connected to one side of the extension cylinder (72), and the second connecting flange (75) is fixedly connected to one side of the conveying cylinder (74). The other side of the bearing housing (61) is fixedly connected to the first connecting flange (73) by bolts and nuts.
5. A substrate glass feeding machine with an adjustable frame according to claim 4, characterized in that: The cooling component (9) includes a cooling cylinder (91), and a third connecting flange (92) is fixedly connected to the other end of the cooling cylinder (91). One side of the third connecting flange (92) is fixedly connected to a second connecting flange (75) by a threaded nut. A cooling chamber (93) is provided inside the cooling cylinder (91). A partition ring (94) is fixedly connected inside the cooling chamber (93). A connecting pipe (95) is fixedly connected to one side of the partition ring (94). The cooling chamber (93) is divided into a water inlet chamber (96) and a drain chamber (97) by the partition ring (94).
6. A substrate glass feeding machine with an adjustable frame according to claim 5, characterized in that: The cooling component (9) further includes a first conveying pipe (98), a second conveying pipe (99), a water inlet pipe (910), and a drain pipe (911). The surface of the cooling cylinder (91) is fixedly connected to the water inlet pipe (910) and the drain pipe (911). One end of the water inlet pipe (910) is fixedly connected to the first conveying pipe (98), and one end of the drain pipe (911) is fixedly connected to the second conveying pipe (99). The first conveying pipe (98) and the second conveying pipe (99) pass through the frame (1) and their surfaces are fixedly connected to the frame (1).
7. A substrate glass feeding machine with an adjustable frame according to claim 6, characterized in that: The conveying component (8) includes a conveying shaft (81), which is installed in the bearing housing (616). A sprocket is fixedly connected to the surface of the conveying shaft (81), and a conveying auger (82) is fixedly connected to one end of the conveying shaft (81). A blocking disc (83) is fixedly connected to the surface of the conveying shaft (81), and the blocking disc (83) is located in the conveying hopper (7). The conveying auger (82) is located in the conveying hopper (7) and the cooling component (9) respectively.
8. A substrate glass feeding machine with an adjustable frame according to claim 7, characterized in that: The drive assembly (5) includes a height stud (51). The bottom surface of the inner cavity of the frame (1) is fixedly connected to the height stud (51). The surface of the height stud (51) is threaded with an upper adjusting nut (52) and an anti-loosening nut (53). An mounting plate (54) is installed on the surface of the height stud (51) and between the upper adjusting nut (52) and the anti-loosening nut (53). A reducer (55) is fixedly connected to the top surface of the mounting plate (54). A drive motor (56) is fixedly connected to one side of the reducer (55).
9. A substrate glass feeding machine with an adjustable frame according to claim 8, characterized in that: The height-moving component (2) includes a movable frame (21), the bottom surface of the movable frame (21) is provided with wheel grooves (22), movable wheels (23) are installed in the wheel grooves (22), L-shaped pieces (24) are fixedly connected to both sides of the movable frame (21), a connecting hole (25) is provided on one side of the L-shaped piece (24), and a lifting component is installed on the top surface of the movable frame (21).
10. A substrate glass feeding machine with an adjustable frame according to claim 9, characterized in that: The lifting component includes studs (26), and studs (26) are fixedly connected to the top surface of the moving frame (21). A threaded sleeve (27) is threadedly connected to the surface of the stud (26). The threaded sleeve (27) slides within the frame (1). A screw nut (28) is fixedly connected to the lower part of the surface of the threaded sleeve (27), and a pressing nut (29) is threadedly connected to the upper part of the surface of the threaded sleeve (27).