Feeding device with adjustable feeding direction for substrate glass processing
By designing an adjustable discharge direction feeding device, the problem of complicated installation of the substrate glass feeding machine's inlet structure is solved, and the simple alignment and stable sealing of the discharge pipe and the furnace feeding machine's inlet are achieved, which facilitates the inspection and maintenance of the equipment.
Patent Information
- Application Number
- CN202511231716.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-31
- Publication Date
- 2025-11-18
AI Technical Summary
The existing substrate glass feeding machine has a complicated installation method for its inlet structure. This leads to cumbersome hoisting and adjustment when the discharge pipe and the inlet of the furnace feeding machine are misaligned after equipment maintenance, reducing work efficiency.
An adjustable discharge direction feeding device was designed. Through the combination of positioning plate, positioning mechanism, connecting shaft and adjustment component, the central axis of the discharge pipe is simply aligned with the central axis of the feed inlet of the furnace feeder. A sliding guide pair is formed by guide column and perforation to ensure motion stability and adjustment accuracy. The sealing performance is improved by the sealing design of limit plate and connecting shell.
It simplifies the alignment operation between the discharge pipe and the inlet of the furnace feeder, improves work efficiency, ensures motion stability and sealing, and facilitates equipment installation, inspection and maintenance.
Smart Images

Figure CN120965064A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of substrate glass processing, in particular to a feeding device with adjustable discharge direction for substrate glass processing. BACKGROUND
[0002] The material receiving port structure of the substrate glass feeding machine is one of the key equipment in the melting section of the glass production line. Its main function is to receive and temporarily store the glass batch from the upstream system, and accurately and continuously feed it into the furnace feeding machine through the conveying mechanism, and finally into the glass melting furnace for melting. The stability, sealing performance and alignment accuracy of the structure with the downstream equipment directly affect the feeding efficiency, energy consumption level and quality of the glass product of the production line.
[0003] At present, the existing material receiving port structure of the substrate glass feeding machine usually adopts a fixed design. It usually includes a fixed feeding hopper, a feeding hopper connected directly below a feeding shell with a screw conveyor, and a discharge port of the feeding shell extending to above the furnace feeding machine through a discharge pipe to realize the feeding of raw materials into the furnace feeding machine.
[0004] However, in the prior art, the feeding hopper and the feeding shell are rigidly connected or fixed by flanges. This installation method has the following defects in actual use:
[0005] After equipment installation or maintenance, if it is found that there is an alignment deviation between the discharge pipe and the feeding port of the furnace feeding machine, the entire feeding mechanism usually needs to be lifted by hoisting equipment, the support structure or gasket below it is manually adjusted, and then it is re-fixed. The process is very cumbersome and reduces work efficiency. SUMMARY
[0006] In view of the deficiencies of the prior art, the present application provides a feeding device with adjustable discharge direction for substrate glass processing, which solves the problems mentioned in the background art.
[0007] To achieve the above purpose, the present application realizes the following technical scheme:
[0008] The feeding device with adjustable discharge direction for substrate glass processing comprises:
[0009] A fixed frame is arranged on one side of two furnaces, a feeding port is provided on the furnace, two furnace feeding machines are arranged on the side of the two furnaces close to the fixed frame, and a feeding port is provided on the top of the furnace feeding machine.
[0010] Two feeding hoppers are fixedly installed on the fixed frame, a communication shell is fixedly installed at the bottom of the feeding hopper, a discharge port is formed at the bottom of the communication shell, the discharge port is communicated with the feeding hopper, a blocking assembly is installed on the communication shell for blocking or unblocking the discharge port.
[0011] The bearing mechanism is two groups, which are symmetrically installed on the fixed frame and located on both sides of the feeding hopper, and the bearing mechanism comprises a connecting rod installed on the fixed frame, a bearing plate extending to below the communicating shell is installed on the connecting rod, an arc-shaped slot one and an arc-shaped slot two are formed on the bearing plate, the centers of the arc-shaped slot one and the arc-shaped slot two are located on the axis direction of the discharging pipe, a connecting shaft one and a connecting shaft two are respectively slidably connected in the arc-shaped slot one and the arc-shaped slot two, a positioning sleeve is fixedly installed on the top of the connecting shaft one and the connecting shaft two, an adjusting assembly connected with the connecting shaft one is installed on the bearing plate, which is used to drive the connecting shaft one to slide or stop sliding along the arc-shaped slot one.
[0012] The feeding mechanism is fixedly installed on the two positioning sleeves, and the feeding mechanism comprises a feeding shell fixedly installed on the two positioning sleeves, a auger rod is rotatably installed on the feeding shell, a motor for driving the auger rod to rotate is fixedly installed on the feeding shell, a discharging pipe connected with the inside of the feeding shell is fixedly installed below the feeding hopper, a discharge pipe connected with the feeding shell is fixedly installed above the feeding port near one end of the furnace feeding machine, a limiting plate abutting against the bottom of the communicating shell is welded on the top of the outer side wall of the discharging pipe, and a positioning plate is movably sleeved outside the discharging pipe.
[0013] The positioning mechanism is installed on the positioning plate, and when the positioning plate is in contact with the bottom of the limiting plate, the positioning mechanism can fix the positioning plate and the communicating shell.
[0014] Further, the positioning mechanism comprises hinge seats symmetrically fixedly installed on both sides of the positioning plate, a mounting plate extending above the communicating shell is hingedly connected to the hinge seats, a guide rod is movably and vertically penetrated through one end of the mounting plate extending above the communicating shell, an abutting plate abutting against the top of the communicating shell is fixedly installed on the bottom of the guide rod, a threaded column is threadedly penetrated through one end of the mounting plate extending above the communicating shell in a vertical direction, and the bottom of the threaded column is rotatably connected with the top of the abutting plate.
[0015] Further, the adjusting assembly comprises a sliding block slidably installed on the bottom of the bearing plate in a horizontal direction, the sliding block is located on the side of the arc-shaped slot one away from the arc-shaped slot two, a transmission plate in a horizontal shape is fixedly installed on the side of the sliding block close to the arc-shaped slot one, the connecting shaft one and the transmission plate are slidably connected, a threaded rod one in a horizontal shape is rotatably installed on the bottom of the bearing plate, and the threaded rod one is threadedly connected with the sliding block.
[0016] Further, the sealing assembly comprises a shutter and a threaded rod, a plug-in groove in communication with the discharge port is arranged in the communication shell and at the peripheral side of the discharge port, a containing cavity is arranged in the communication shell and at one side of the discharge port, the shutter is slidably connected in the containing cavity in a horizontal direction, the shutter can be inserted into the plug-in groove and block the discharge port, the threaded rod two is rotatably installed on the communication shell and close to the containing cavity in a horizontal state, one end of the threaded rod two extends into the containing cavity, and the threaded rod two extends into the containing cavity One end of the threaded rod two is threaded through one side of the shutter.
[0017] Further, the communication shell is arranged with a plurality of perforations in a rectangular array outside the containing cavity and the plug-in groove, the top of the positioning plate is fixedly installed with a plurality of guide columns in a vertical state in a rectangular array, and the four guide columns can be respectively movably penetrated through the four perforations and clamped with the communication shell.
[0018] Further, the top of the limiting plate is arranged with an annular sealing groove, and the annular sealing gasket clamped with the limiting plate is inserted into the annular sealing groove on the limiting plate.
[0019] Further, the number of connecting rods is two, the two connecting rods are arranged in a vertical direction, and the bottom of the connecting rod and the bottom of the fixed frame are located on the same horizontal plane, the bearing plate is slidably sleeved on the two connecting rods, and the interface between the bearing plate and the connecting rod is fitted, the fixed frame is provided with a fixing mechanism connected with the bearing plate, which is used for fixing the position of the bearing plate on the two connecting rods.
[0020] Further, the fixing mechanism comprises a bracket fixedly installed on the fixed frame, a storage disc rotatably installed on the bracket in a horizontal state, a steel wire rope wound on the storage disc, the other end of the steel wire rope fixedly connected with the bearing plate, and a motor fixedly installed on the bracket for driving the storage disc to rotate.
[0021] Further, the positioning sleeve comprises a lower arc sleeve and an upper arc sleeve, the lower arc sleeve and the upper arc sleeve are sleeved outside the feeding shell, and the lower arc sleeve and the upper arc sleeve are fixed by screws.
[0022] Further, the feeding pipe is fixedly sleeved outside the feeding shell, a communication hole is arranged in the top of the feeding shell and inside the feeding pipe, the inside of the feeding shell and the feeding pipe are communicated through the communication hole, a discharge port is arranged in the bottom of the feeding pipe, a sealing plate for blocking the discharge port is fixedly installed on the bottom of the feeding pipe by screws, and a clearance hole is arranged in the bearing plate below the feeding pipe.
[0023] The application provides a discharging direction adjustable feeding device for substrate glass processing.
[0024] 1. By the design of the positioning plate, positioning mechanism, connecting shaft one, connecting shaft two and adjusting assembly, when there is deviation between the central axis of the discharge pipe and the central axis of the feeding port of the furnace feeding machine, the fixation of the positioning mechanism between the positioning plate and the communication shell is cancelled, thereby cancelling the limiting of the limiting plate, at this time, the worker can make the connecting shaft one slide in the arc-shaped groove one along the arc-shaped groove one through the adjusting assembly, drive the discharge pipe to make arc motion around the discharging pipe through the feeding shell, so that the central axis of the discharge pipe is located directly above the central axis of the feeding port of the furnace feeding machine, the operation is simple, the discharge pipe and the feeding port of the furnace feeding machine are easily aligned, thereby improving the work efficiency;
[0025] 2. The cooperation of the guide column and the perforation constitutes a sliding guide pair, ensures that the feeding mechanism can only move along the preset path during lifting and rotating, effectively prevents lateral shaking, and improves the motion stability and adjustment accuracy;
[0026] 3. When the limiting plate abuts against the bottom of the communication shell, the annular sealing gasket abuts against the bottom of the communication shell, thereby increasing the sealing between the limiting plate and the communication shell. BRIEF DESCRIPTION OF DRAWINGS
[0027] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or the prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.
[0028] Figure 1 The three-dimensional structure schematic diagram of the present application is shown;
[0029] Figure 2 The mounting structure schematic diagram of the positioning mechanism of the present application is shown; Figure 1 The enlarged view of A in the present application is shown;
[0030] Figure 3 The mounting structure schematic diagram of the feeding shell of the present application is shown;
[0031] Figure 4 The mounting structure schematic diagram of the positioning mechanism of the present application is shown;
[0032] Figure 5 The enlarged view of B in the present application is shown; Figure 4 The structure schematic diagram of the feeding mechanism of the present application is shown;
[0033] Figure 6 The mounting structure schematic diagram of the adjusting assembly of the present application is shown;
[0034] Figure 7 The mounting structure schematic diagram of the adjusting assembly of the present application is shown;
[0035] Figure 8 A schematic diagram of the installation structure of the sealing assembly of the present invention is shown;
[0036] Figure 9 A front view showing the installation state of the present invention is shown;
[0037] Figure 10 A side view of the present invention in its installed state is shown;
[0038] The diagram shows: 1. Fixed frame; 11. Feeding hopper; 12. Connecting shell; 121. Discharge port; 122. Insertion slot; 123. Receiving cavity; 124. Perforation; 13. Sealing assembly; 131. Gate plate; 132. Threaded rod II; 2. Furnace; 21. Feeding port; 3. Furnace feeder; 4. Bearing mechanism; 41. Connecting rod; 42. Bearing plate; 421. Arc groove I; 422. Arc groove II; 43. Connecting shaft I; 44. Connecting shaft II; 45. Positioning sleeve; 451. Lower arc sleeve; 452. Upper arc sleeve. 5. Feeding mechanism; 51. Feeding shell; 52. Discharge pipe; 521. Sealing plate; 53. Discharge pipe; 54. Limiting plate; 541. Annular sealing groove; 542. Annular sealing gasket; 55. Positioning plate; 551. Guide column; 6. Positioning mechanism; 61. Hinge seat; 62. Mounting plate; 63. Guide rod; 64. Abutment plate; 65. Threaded column; 7. Adjusting assembly; 71. Slider; 72. Transmission plate; 73. Threaded rod one; 8. Fixing mechanism; 81. Bracket; 82. Storage tray; 83. Steel wire rope. Detailed Implementation
[0039] 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.
[0040] Example
[0041] To address the technical problems in the background art, the following adjustable feeding device for substrate glass processing is provided:
[0042] Combination Figures 1-10 As shown, the adjustable feeding device for substrate glass processing provided by the present invention includes:
[0043] A fixed frame 1 is arranged on one side of two furnaces 2. The furnace 2 is provided with a feeding port 21. Two furnace feeding machines 3 are arranged on the side of the two furnaces 2 near the fixed frame 1. The top of the furnace feeding machine 3 is provided with a feeding port.
[0044] There are two feeding hoppers 11. Both feeding hoppers 11 are fixedly installed on the fixed frame 1. A connecting shell 12 is fixedly installed at the bottom of the feeding hopper 11. The bottom of the connecting shell 12 is provided with a discharge port 121 that communicates with the feeding hopper 11. A sealing component 13 for sealing or unsealing the discharge port 121 is installed on the connecting shell 12.
[0045] There are two sets of supporting mechanisms 4, which are symmetrically installed on the fixed frame 1 and located on both sides of the feeding hopper 11. Each supporting mechanism 4 includes a connecting rod 41 installed on the fixed frame 1. A supporting plate 42 extending to the bottom of the connecting shell 12 is installed on the connecting rod 41. The supporting plate 42 has an arc-shaped groove 421 and an arc-shaped groove 422. The centers of the arc-shaped grooves 421 and 422 are both located on the axial direction of the feeding pipe 52. The arc-shaped grooves 421 and 422 are slidably hinged within each other. There are two connecting shafts: a first connecting shaft 43 and a second connecting shaft 44. The first connecting shaft 43 and the second connecting shaft 44 can slide in the first arc groove 421 and the second arc groove 422, respectively, and the first connecting shaft 43 and the second connecting shaft 44 can rotate in the first arc groove 421 and the second arc groove 422, respectively. The top of the first connecting shaft 43 and the second connecting shaft 44 are fixedly installed with positioning sleeves 45. An adjustment component 7 connected to the first connecting shaft 43 is installed on the bearing plate 42, which is used to drive the first connecting shaft 43 to slide along the first arc groove 421 or stop sliding.
[0046] The feeding mechanism 5 is fixedly installed on two positioning sleeves 45. The feeding mechanism 5 includes a feeding shell 51 fixedly installed on the two positioning sleeves 45. An auger rod is rotatably installed on the feeding shell 51 and inside it. A motor for driving the auger rod to rotate is fixedly installed on the feeding shell 51. A discharge pipe 52 connected to the inside of the feeding hopper 11 is fixedly installed on the feeding shell 51 and directly below it. A discharge pipe 53 connected to the feeding shell 51 is fixedly installed at the end of the feeding shell 51 near the furnace feeder 3 and above the feed inlet. A limiting plate 54 that abuts against the bottom of the connecting shell 12 is welded to the top of the outer wall of the discharge pipe 52. A positioning plate 55 is movably sleeved on the outside of the discharge pipe 52.
[0047] The positioning mechanism 6 is installed on the positioning plate 55. When the positioning plate 55 contacts the bottom of the limiting plate 54, the positioning mechanism 6 can fix the positioning plate 55 and the connecting shell 12.
[0048] Through the design of positioning plate 55, positioning mechanism 6, connecting shaft 1 43, connecting shaft 2 44 and adjusting component 7, when there is a deviation between the central axis of the discharge pipe 53 and the central axis of the feed inlet of the furnace feeding machine 3, the fixing of the positioning plate 55 and the connecting shell 12 by the positioning mechanism 6 is cancelled, thereby cancelling the limitation of the limiting plate 54. At this time, the operator can make the connecting shaft 1 43 slide along the arc groove 1 421 in the arc groove 1 421 by adjusting component 7. The discharge pipe 53 is driven to make arc movement around the discharge pipe 52 by the feeding shell 51, so that the central axis of the discharge pipe 53 is located directly above the central axis of the feed inlet of the furnace feeding machine 3. The operation is simple and it is easy to align the discharge pipe 53 with the feed inlet of the furnace feeding machine 3, thereby improving work efficiency.
[0049] Combination Figures 1-10 As shown, the positioning mechanism 6 includes hinge seats 61 symmetrically fixedly installed on both sides of the positioning plate 55. A mounting plate 62 that can extend to the top of the connecting shell 12 is hinged to the hinge seat 61. A guide rod 63 is vertically movably inserted through one end of the mounting plate 62 extending to the top of the connecting shell 12. An abutment plate 64 that can abut against the top of the connecting shell 12 is fixedly installed at the bottom of the guide rod 63. A threaded post 65 is vertically threaded through one end of the mounting plate 62 extending to the top of the connecting shell 12. The bottom of the threaded post 65 is rotatably connected to the top of the abutment plate 64. By using the spiral pressing method of the threaded post 65, a large vertical downward pressure can be generated by a small rotational force. The force is applied to the top of the connecting shell 12 through the abutment plate 64, and an upward lifting force is applied to the positioning plate 55, so that the positioning plate 55 is tightly pressed against the limiting plate 54, and the locking effect is reliable.
[0050] Combination Figures 1-10 As shown, the adjustment assembly 7 includes a slider 71 that is horizontally slidably mounted on the bottom of the support plate 42. The slider 71 is located on the side of the arc groove 421 away from the arc groove 422. A horizontal transmission plate 72 is fixedly mounted on the side of the slider 71 close to the arc groove 421. The connecting shaft 43 is slidably hinged to the transmission plate 72. A horizontal threaded rod 73 is rotatably mounted on the bottom of the support plate 42. The threaded rod 73 is threadedly connected to the slider 71. The rotational motion of the threaded rod 73 is converted into the linear motion of the slider 71, and then the linear motion is converted into the arc motion of the connecting shaft 43 through the transmission plate 72. The threaded transmission has self-locking and high precision, making the adjustment process smooth and controllable. The adjusted position can also be firmly maintained and will not shift due to vibration.
[0051] Combination Figures 1-10As shown, the sealing assembly 13 includes a gate 131 and a threaded rod 132. A insertion groove 122 communicating with the discharge port 121 is provided inside the communicating shell 12 and on the outer periphery of the discharge port 121. A receiving cavity 123 is provided inside the communicating shell 12 and on one side of the discharge port 121. The gate 131 is slidably connected horizontally within the receiving cavity 123. The gate 131 can be inserted into the insertion groove 122 and seals the discharge port 121. A threaded rod 132 is rotatably mounted on the communicating shell 12 and on the side near the receiving cavity 123. The threaded rod 132 is horizontal, with one end extending into the receiving cavity 123. It is worth noting that the cross-sections of the outer wall of the gate 131, the insertion groove 122, and the inner wall of the receiving cavity 123 are all in close contact. The threaded rod 132 extends into the receiving cavity 123 and its thread penetrates one side of the gate 131. By rotating the threaded rod 132, the gate 131 is pushed to insert or withdraw from the insertion groove 122, thus achieving reliable sealing and opening of the discharge port 121. The structure is simple and the sealing effect is good.
[0052] Combination Figures 1-10 As shown, the connecting shell 12 has through holes 124 arranged in a rectangular array on the outside of the receiving cavity 123 and the insertion slot 122. The top of the positioning plate 55 has guide posts 551, all of which are vertical, fixedly installed in a rectangular array. The four guide posts 551 can move through the four through holes 124 respectively and are engaged with the connecting shell 12. The cooperation between the guide posts 551 and the through holes 124 forms a sliding guide pair, which ensures that the feeding mechanism 5 can only move along the preset path during lifting and rotation, effectively preventing lateral swaying and improving the stability and adjustment accuracy of the movement.
[0053] Combination Figures 1-10 As shown, the top of the limiting plate 54 is provided with an annular sealing groove 541, and an annular sealing gasket 542 is inserted on the limiting plate 54 and located in the annular sealing groove 541, which is engaged with the limiting plate 54. When the limiting plate 54 abuts against the bottom of the connecting shell 12, the annular sealing gasket 542 abuts against the bottom of the connecting shell 12, thereby increasing the sealing between the limiting plate 54 and the connecting shell 12.
[0054] Combination Figures 1-10 As shown, there are two connecting rods 41, both of which are arranged vertically, and the bottom of the connecting rods 41 is on the same horizontal plane as the bottom of the fixing frame 1. The bearing plate 42 is slidably sleeved on the two connecting rods 41, and the interface between the bearing plate 42 and the connecting rods 41 is in contact. The fixing frame 1 is equipped with a fixing mechanism 8 connected to the bearing plate 42, which is used to fix the position of the bearing plate 42 on the two connecting rods 41.
[0055] Combination Figures 1-10As shown, the fixing mechanism 8 includes a bracket 81 fixedly installed on the fixing frame 1. A horizontally oriented storage tray 82 is rotatably installed on the bracket 81. A steel wire rope 83 is wound around the storage tray 82. The other end of the steel wire rope 83 is fixedly connected to the bearing plate 42. An electric motor for driving the storage tray 82 to rotate is fixedly installed on the bracket 81.
[0056] Combination Figures 1-10 As shown, the positioning sleeve 45 includes a lower arc-shaped sleeve 451 and an upper arc-shaped sleeve 452. Both the lower arc-shaped sleeve 451 and the upper arc-shaped sleeve 452 are sleeved on the outside of the feeding shell 51, and the lower arc-shaped sleeve 451 and the upper arc-shaped sleeve 452 are fixed together by screws. Specifically, the lower arc-shaped sleeve 451 of the two positioning sleeves 45 is fixedly connected to the top of the connecting shaft 1 43 and the connecting shaft 2 44, respectively.
[0057] Combination Figures 1-10 As shown, the feeding pipe 52 is fixedly sleeved on the outside of the feeding shell 51. A connecting hole is opened on the top of the feeding shell 51 and inside the feeding pipe 52. The connecting hole allows the feeding shell 51 to communicate with the inside of the feeding pipe 52. A discharge port is opened at the bottom of the feeding pipe 52. A sealing plate 521 for sealing the discharge port is fixedly installed at the bottom of the feeding pipe 52 by screws. A clearance hole is opened on the bearing plate 42 and below the feeding pipe 52.
[0058] Working principle and usage process of this invention:
[0059] When using:
[0060] When feeding substrate glass processing raw materials into the furnace feeder 3, the substrate glass processing raw materials are guided into the feeding hopper 11. The screw rod 132 is rotated to make the gate 131 move into the receiving cavity 123 along the insertion groove 122 in the connecting shell 12, thus removing the blockage of the discharge port 121. The raw materials in the feeding hopper 11 fall into the discharge pipe 52 through the discharge port 121 and flow into the feeding shell 51 through the connecting hole. During this period, the motor of the feeding mechanism 5 is turned on, which drives the auger rod to rotate in the feeding shell 51. The raw materials flowing into the feeding shell 51 are conveyed to the discharge pipe 53, so that the raw materials in the feeding shell 51 are discharged through the discharge pipe 53 and then fall into the furnace feeder 3 through the feed port. At this time, the raw materials can be fed into the furnace 2 for processing through the furnace feeder 3.
[0061] When there is a deviation between the central axis of the discharge pipe 53 and the central axis of the feed inlet of the furnace feeding machine 3, the operator manually rotates the two threaded posts 65 on the positioning mechanism 6, causing both threaded posts 65 to move upward spirally on the mounting plate 62. At this time, under the action of the positioning plate 55's own gravity, the positioning plate 55 moves downward outside the discharge pipe 52, and the positioning plate 55 does not contact the limiting plate 54, thus canceling the fixed state between the positioning plate 55 and the connecting shell 12. The four guide posts 551 move downward in the four through holes 124 respectively and engage with the connecting shell 12, limiting the position of the limiting plate 54. At this time, the operator manually rotates the threaded rod 73, causing the slider 71 to slide at the bottom of the bearing plate 42, thereby bringing... The transmission plate 72 is displaced, the connecting shaft 43 rotates between the transmission plate 72 and slides on the transmission plate 72, the connecting shaft 43 slides along the arc groove 421 in the arc groove 421, the connecting shaft 44 slides along the arc groove 422 in the arc groove 422, and the feeding pipe 52 rotates in the positioning plate 55. Thus, the feeding shell 51 drives the discharge pipe 53 to make arc motion around the feeding pipe 52, so that the central axis of the discharge pipe 53 is located directly above the central axis of the feed inlet of the furnace feeder 3. This achieves the effect of adjusting the discharge direction of the feeding mechanism 5 of the discharge pipe 53, and ensures that the raw materials are stably fed into the furnace feeder 3. This is beneficial for the stable feeding of the raw materials into the furnace 2 for melting and processing.
[0062] After the position of the discharge pipe 53 is adjusted, the operator manually rotates the two threaded posts 65 on the positioning mechanism 6 in the opposite direction, so that both threaded posts 65 move downward spirally on the mounting plate 62, so that the contact plate 64 abuts against the top of the connecting shell 12. Under the reverse force, the positioning plate 55 moves upward outside the discharge pipe 52, so that the positioning plate 55 abuts against the bottom of the limiting plate 54. Thus, the positioning plate 55 and the connecting shell 12 clamp and position the limiting plate 54, thereby achieving the positioning purpose of the discharge pipe 52, and thus achieving the positioning purpose of the feeding mechanism 5.
[0063] When the feeding mechanism 5 needs to be disassembled for inspection and maintenance, personnel manually rotate the two threaded posts 65 on the positioning mechanism 6, causing both threaded posts 65 to move upwards spirally on the mounting plate 62, thus canceling the contact state between the contact plate 64 and the connecting shell 12. At this time, personnel then apply force to the two mounting plates 62 respectively, causing the two mounting plates 62 to rotate around the two hinge seats 61, driving the contact plate 64 to flip to the outside of the two positioning plates 55. At this time, the control motor is turned on, driving the storage tray 82 to rotate on the bracket 81 to unfold the wire rope 83. At this time, under the action of gravity of the bearing plate 42 and the feeding mechanism 5, the bearing plate 42 slides downwards along the two connecting rods 41, reducing the height of the bearing plate 42, thereby reducing the height of the feeding mechanism 5, which is conducive to the disassembly of the feeding mechanism 5. During disassembly, personnel use tools to... By removing the screws securing the lower arc sleeve 451 and the upper arc sleeve 452, the fixing between them can be eliminated, allowing the upper arc sleeve 452 to be disassembled. This also eliminates the need to position the feeding shell 51, enabling the disassembly of the feeding mechanism 5. The operation is simple and facilitates the disassembly, inspection, and maintenance of the feeding mechanism 5. Conversely, after the maintenance of the feeding mechanism 5 is completed, the feeding shell 51 is positioned using the two positioning sleeves 45. The motor is then controlled to rotate the receiving tray 82 to wind up the wire rope 83. This causes the bearing plate 42 to slide upwards along the two connecting rods 41, moving the feeding mechanism 5 upwards until the limiting plate 54 contacts the bottom of the connecting shell 12, thus allowing the feeding mechanism 5 to be installed and fixed. During the disassembly, inspection, and maintenance of the feeding mechanism 5, no additional hoisting equipment is required for the hoisting operation.
[0064] When disassembling, inspecting and maintaining the feeding mechanism 5, the personnel first place a storage box with an open top below the clearance hole, and then use tools to remove the screws used to fix the sealing plate 521. After removing the sealing plate 521, the raw material in the feeding pipe 52 can fall into the storage box, which is convenient for cleaning the residual raw material in the feeding pipe 52.
[0065] 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.
[0066] 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. An adjustable feeding device for substrate glass processing, characterized in that: include: A fixed frame is installed on one side of the two furnaces. The furnaces are equipped with feeding ports. Two furnace feeding machines are installed on the side of the two furnaces near the fixed frame. The top of the furnace feeding machines is equipped with feeding ports. There are two feeding hoppers, both of which are fixedly installed on a fixed frame. A connecting shell is fixedly installed at the bottom of the feeding hopper. The bottom of the connecting shell has a discharge port that communicates with the feeding hopper. A sealing component for sealing or unsealing the discharge port is installed on the connecting shell. The bearing mechanism consists of two sets, which are symmetrically installed on the fixed frame on both sides of the feeding hopper. Each bearing mechanism includes a connecting rod installed on the fixed frame. A bearing plate extending to the bottom of the connecting shell is installed on the connecting rod. The bearing plate has an arc-shaped groove 1 and an arc-shaped groove 2. The centers of the arc-shaped groove 1 and the arc-shaped groove 2 are both located on the axial direction of the feeding pipe. A connecting shaft 1 and a connecting shaft 2 are slidably hinged in the arc-shaped groove 1 and the connecting shaft 2, respectively. A positioning sleeve is fixedly installed on the top of the connecting shaft 1 and the connecting shaft 2. An adjustment component connected to the connecting shaft 1 is installed on the bearing plate, which is used to drive the connecting shaft 1 to slide along the arc-shaped groove 1 or stop sliding. The feeding mechanism is fixedly installed on two positioning sleeves. The feeding mechanism includes a feeding shell fixedly installed on the two positioning sleeves. An auger rod is rotatably installed on the feeding shell and inside it. A motor for driving the auger rod to rotate is fixedly installed on the feeding shell. A discharge pipe connected to the inside of the feeding shell is fixedly installed on the feeding shell and directly below the feeding hopper. A discharge pipe connected to the feeding shell is fixedly installed at the end of the feeding shell near the furnace feeder and above the feed inlet. A limiting plate that abuts against the bottom of the connecting shell is welded to the top of the outer wall of the discharge pipe. A positioning plate is movably sleeved on the outside of the discharge pipe. The positioning mechanism is installed on the positioning plate. When the bottom of the positioning plate contacts the limiting plate, the positioning mechanism can fix the positioning plate and the connecting shell.
2. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The positioning mechanism includes hinge seats symmetrically fixedly installed on both sides of the positioning plate. A mounting plate that can extend to the top of the connecting shell is hinged to the hinge seats. A guide rod is vertically movably inserted through one end of the mounting plate that extends to the top of the connecting shell. An abutment plate that can abut against the top of the connecting shell is fixedly installed at the bottom of the guide rod. A threaded post is vertically threaded through one end of the mounting plate that extends to the top of the connecting shell. The bottom of the threaded post is rotatably connected to the top of the abutment plate.
3. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The adjustment assembly includes a slider that is horizontally slidably mounted on the bottom of the support plate. The slider is located on the side of the arc groove one away from the arc groove two. A horizontal transmission plate is fixedly mounted on the side of the slider close to the arc groove one. The connecting shaft one is slidably hinged to the transmission plate. A horizontal threaded rod one is rotatably mounted on the bottom of the support plate. The threaded rod one is threadedly connected to the slider.
4. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The sealing assembly includes a gate and a threaded rod. A insertion groove connected to the discharge port is provided inside the connecting shell and on the outer periphery of the discharge port. A receiving cavity is provided inside the connecting shell and on one side of the discharge port. The gate is slidably connected in a horizontal direction in the receiving cavity. The gate can be inserted into the insertion groove and seals the discharge port. A horizontal threaded rod is rotatably installed on the connecting shell and on the side near the receiving cavity. One end of the threaded rod extends into the receiving cavity, and the threaded end of the threaded rod extending into the receiving cavity passes through one side of the gate.
5. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The connecting shell has through holes arranged in a rectangular array on the outside of the receiving cavity and the insertion slot. The top of the positioning plate has guide posts, all of which are vertical, fixedly installed in a rectangular array. The four guide posts can move through the four through holes and are engaged with the connecting shell.
6. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The top of the limiting plate is provided with an annular sealing groove, and an annular sealing gasket that engages with the limiting plate is inserted on the limiting plate and located in the annular sealing groove.
7. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The number of connecting rods is two, both of which are arranged vertically, and the bottom of the connecting rods is on the same horizontal plane as the bottom of the fixing frame. The bearing plate is slidably sleeved on the two connecting rods, and the interface between the bearing plate and the connecting rods is in contact. The fixing frame is equipped with a fixing mechanism connected to the bearing plate, which is used to fix the position of the bearing plate on the two connecting rods.
8. The adjustable feeding device for substrate glass processing according to claim 7, characterized in that: The fixing mechanism includes a bracket fixedly installed on a fixed frame, a horizontally oriented storage tray rotatably mounted on the bracket, a steel wire rope wound around the storage tray, the other end of the steel wire rope being fixedly connected to a bearing plate, and an electric motor for driving the storage tray to rotate fixedly mounted on the bracket.
9. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The positioning sleeve includes a lower arc-shaped sleeve and an upper arc-shaped sleeve, both of which are fitted onto the outside of the feeding shell, and the lower arc-shaped sleeve and the upper arc-shaped sleeve are fixed together by screws.
10. The adjustable feeding device for substrate glass processing according to claim 1, characterized in that: The feeding tube is fixedly sleeved on the outside of the feeding shell. A connecting hole is opened at the top of the feeding shell and inside the feeding tube, so that the feeding shell and the inside of the feeding tube can be connected through the connecting hole. A discharge port is opened at the bottom of the feeding tube, and a sealing plate for sealing the discharge port is fixedly installed at the bottom of the feeding tube by screws. A clearance hole is opened on the bearing plate below the feeding tube.