Anti-splashing device of molten glass discharging slide way
By designing an anti-splash device for the unloading slide, and utilizing the rotation mechanism of the unloading movable plate and the return spring, the internal stress accumulation during the cooling of molten glass waste is alleviated, the problem of molten glass waste splashing is solved, and safe production is ensured.
Patent Information
- Application Number
- CN202520247873.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-02-17
AI Technical Summary
During the glass bottle production process, fine molten glass waste splashes as it cools in the unloading chute, posing a safety hazard.
Design an anti-splash device for a molten glass unloading slide. By cooperating with the unloading movable plate and the return spring, the molten glass waste is rotated into the unloading slide by gravity, and the internal stress is reduced by a slow cooling rate to prevent cracking.
This effectively prevents molten glass waste from splashing in the unloading chute, ensuring the safety of operators.
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Figure CN223673736U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass bottle production field, especially a kind of anti-splashing device of glass liquid unloading slide. BACKGROUND
[0002] In the production process of glass bottle, glass liquid is first melted in the furnace, then the molten glass liquid is introduced into the mold, and is formed by the mold of line machine;In the forming process, in order to ensure the uniformity of the thickness of bottle, therefore, when the mold is formed, some glass liquid will be injected, and the overflow groove of the mold will be designed to discharge the excess glass liquid, and then the glass liquid waste is discharged through the discharge port.
[0003] In order to avoid the injury of the operator due to the contact with the high-temperature glass liquid waste, the unloading slide is usually arranged below the discharge port, and the cooling water flows in the unloading slide, when the glass waste flows through the unloading slide, the cooling water can quickly absorb the heat of the glass waste, so that the temperature is reduced, but due to the shape and size limitation of the overflow groove of the mold, the glass liquid waste is in the form of filament, due to the small thickness of the glass liquid waste, the temperature difference between the inner and outer layers of the glass liquid waste is large when cooling, which will cause the glass to burst when the stress caused by the rapid cooling exceeds the breaking strength of the glass liquid waste, so that the filament glass liquid waste is easy to splash in the unloading slide, which causes great safety hazard to the operator. UTILITY MODEL CONTENTS
[0004] To solve the above technical problems, the utility model provides an anti-splashing device of glass liquid unloading slide, which aims to solve the technical problem that the filament glass liquid waste is easy to splash in the unloading slide, which causes great safety hazard to the operator.
[0005] The technical solution of the utility model to solve the above technical problems is as follows:
[0006] An anti-splashing device of glass liquid unloading slide, comprising an unloading slide body, a supporting base, a mounting rack provided on the top of the supporting base, an installation cavity provided on the top of the mounting rack, the unloading slide body being arranged at one end of the mounting rack, the installation cavity being communicated with the inside of the unloading slide body, a rotating base provided in the inside of the installation cavity, an unloading movable plate rotatably connected to the top of the rotating base, a storage end provided at one end of the unloading movable plate, the storage end being close to the unloading slide body, the storage end being used for receiving glass liquid waste, a reset end provided at the other end of the unloading movable plate, a reset base provided in the inside of the installation cavity, a reset spring provided on the top of the reset base, and one end of the reset spring being connected with the reset end.
[0007] When the glass liquid waste is discharged from the discharge port and enters the mounting frame, the glass liquid waste first contacts the storage end of the discharge movable plate. As the glass liquid waste accumulates at the storage end, its volume gradually increases. When the volume of the glass liquid waste at the storage end reaches a certain level, the gravity of the large volume of glass liquid waste will cause the discharge movable plate to rotate, thereby guiding the glass liquid waste into the interior of the discharge slide body. Since the large volume of glass liquid waste has a large thickness and a slow heat transfer rate, when they come into contact with water, the cooling rate is relatively slow. The slow cooling rate helps to reduce the accumulation of internal stress, so that the glass liquid waste does not burst when it comes into contact with the cooling water of the discharge slide body, thereby avoiding the splashing of glass liquid waste from the discharge slide body and ensuring the safety of the operator.
[0008] Further, in the present application, the top of the discharge movable plate is provided with a separation block, and the separation block is located between the storage end and the reset end.
[0009] The separation block is located between the storage end and the reset end, which means that it forms a physical barrier on the discharge movable plate, thereby preventing the glass liquid waste from flowing freely to the reset end when it falls on the storage end, preventing the glass liquid waste from contacting the reset spring, and protecting the reset spring from damage caused by high-temperature waste.
[0010] Further, in the present application, one side of the separation block is formed with a guide slope, and the guide slope faces the storage end.
[0011] When the glass liquid waste is discharged from the discharge port and contacts the storage end of the discharge movable plate, the guide slope can cause the waste to flow along the slope. When the glass liquid waste accumulates to a certain extent, it will flow smoothly into the interior of the discharge slide due to the guiding action of gravity and the slope, thereby avoiding the glass liquid waste from remaining on the separation block.
[0012] Further, in the present application, a cooling cavity is formed in the interior of the discharge movable plate, a cooling spout is formed in the bottom of the storage end and communicates with the cooling cavity, and a liquid inlet hole is formed in the top of the reset end and communicates with the cooling cavity.
[0013] Further, in the present application, a cooling seat is provided on the top of the mounting frame, a conveying pipe is provided on the top of the cooling seat, one end of the conveying pipe is provided with a cooling spout, and the cooling spout is vertically arranged so that it faces the liquid inlet hole.
[0014] Further, in the present application, a limiting seat is provided on the top of the cooling seat, a limiting groove is formed in the interior of the limiting seat, and the conveying pipe is arranged in the interior of the limiting groove.
[0015] Further, in the application, the top of the mounting frame is provided with two limiting top seats, the two limiting top seats are provided with limiting rods, and the limiting rods are located between the cooling spray pipe and the reset end.
[0016] Further, in the application, the inside of the rotating base is provided with a first rotating shaft, the inside of the discharging movable plate is provided with a first rotating groove, and the first rotating shaft is in rotating fit with the first rotating groove.
[0017] Further, in the application, one side of the reset end is provided with a setting seat, the inside of the setting seat is provided with a second rotating shaft, one end of the reset spring is provided with a connecting seat, one side of the connecting seat is provided with a guide cylinder, the inside of the guide cylinder is provided with a second rotating groove, and the second rotating groove is in rotating fit with the second rotating shaft.
[0018] Further, in the application, one end of the reset spring is provided with a first fixed hook, one side of the connecting seat is provided with a first fixed ring, the first fixed hook is hooked with the first fixed ring, the top of the reset base is provided with a second fixed ring, the other end of the reset spring is provided with a second fixed hook, and the second fixed hook is hooked with the second fixed ring.
[0019] The utility model has the following beneficial effects:
[0020] When the glass liquid waste is discharged from the discharging port and enters the mounting frame, the glass liquid waste first contacts the storage end of the discharging movable plate, and as the glass liquid waste accumulates on the storage end, the volume gradually increases, when the volume of the glass liquid waste on the storage end reaches a certain degree, the gravity of the storage end exceeds the elastic force of the reset spring, and the large-volume glass liquid waste will rotate the discharging movable plate under the action of gravity, thereby guiding the glass liquid waste into the inside of the discharging slide body, as the large-volume glass liquid waste has a large thickness and a slow heat transfer rate, when they meet water, the cooling rate is relatively slow, the slow cooling rate helps to reduce the accumulation of internal stress, so that the glass liquid waste does not burst when contacting the cooling water of the discharging slide body, thereby avoiding the splashing of the glass liquid waste from the discharging slide body, and ensuring the personal safety of the operator. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is a structural schematic diagram of the utility model.
[0022] Figure 2 It is a structural schematic diagram of the limiting rod of the utility model.
[0023] Figure 3 It is a structural schematic diagram of the isolation block of the utility model.
[0024] Figure 4It is the structure schematic view of the cooling nozzle of the utility model.
[0025] Figure 5 It is the structure schematic view of the reset spring of the utility model.
[0026] Figure 6 It is the structure schematic view of the cooling cavity of the utility model.
[0027] Among them, the sign:
[0028] 1, support base frame;2, mounting frame;3, installation cavity;4, unloading slide body;5, cooling seat;6, limit seat;7, conveying pipeline;8, cooling nozzle;9, limit groove;10, isolation block;11, guide slope;12, unloading movable plate;13, storage end;14, reset end;15, rotating base;16, first rotating shaft;17, first rotating groove;18, cooling nozzle;19, cooling cavity;20, liquid inlet hole;21, setting seat;22, second rotating shaft;23, guide cylinder;24, second rotating groove;25, reset base;26, reset spring;27, connecting seat;28, first fixed ring;29, first fixed hook;30, second fixed ring;31, second fixed hook;32, limit top seat;33, limit rod. DETAILED DESCRIPTION
[0029] The embodiments of the utility model are described in detail below, the examples of the embodiments are shown in the drawings, wherein the same or similar signs represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary, only for explaining the utility model, and cannot be understood as limiting the utility model.
[0030] In the description of the utility model, it is understood that the orientation or position relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" is based on the orientation or position relationship shown in the drawings, only for the convenience of describing the utility model and simplifying the description, and cannot be understood as indicating or implying that the indicated device or element must have a particular orientation, a particular orientation and operation, therefore, cannot be understood as limiting the utility model. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Therefore, the features limited by "first", "second" can be explicitly or implicitly included one or more said features. In the description of the utility model, the meaning of "multiple" is two or more than two, unless otherwise specifically limited.
[0031] In the description of the utility model, it needs to explain, unless another explicit provision and limitation, term '' install '' '' link '' '' connection '' should do broad sense understanding, for example, can be fixed connection, also can be detachable connection, or integrally connected, can be mechanical connection, also can be electric connection or can communicate with each other, can be directly connected, also can be indirectly connected through intermediate medium, can be the intercommunication of two elements or the interaction of two elements. For ordinary skilled in the art, the specific meaning of the above-mentioned terms in the utility model can be understood according to specific circumstances.
[0032] Refer to Figures 1-6 In some embodiments, a kind of glass liquid unloading chute's anti-splashing device, including unloading chute body 4, also include support chassis 1, the top of support chassis 1 is equipped with mounting bracket 2, mounting cavity 3 is opened in the top of mounting bracket 2, unloading chute body 4 is located at one end of mounting bracket 2, mounting cavity 3 is connected with the inside of unloading chute body 4, rotating base 15 is located in the inside of mounting cavity 3, unloading movable plate 12 is rotatably connected in the top of rotating base 15, one end of unloading movable plate 12 is equipped with storage end 13, storage end 13 is close to unloading chute body 4, storage end 13 is used to receive glass liquid waste, the other end of unloading movable plate 12 is equipped with reset end 14, reset base 25 is located in the inside of mounting cavity 3, reset spring 26 is located in the top of reset base 25, one end of reset spring 26 is connected with reset end 14.
[0033] Through the above technical scheme, glass liquid waste is discharged from discharge port and enters mounting bracket 2, glass liquid waste first contacts storage end 13 of unloading movable plate 12, with the accumulation of glass liquid waste in storage end 13, its volume gradually increases, when the volume of glass liquid waste in storage end 13 reaches a certain degree, the gravity of its storage end 13 exceeds the elastic force of reset spring 26, and the glass liquid waste of large volume will make unloading movable plate 12 rotate under the action of gravity, so as to guide glass liquid waste to the inside of unloading chute body 4, since the thickness of glass liquid waste of large volume is larger, the heat transfer rate is slower, therefore, when they meet water, the cooling rate is relatively slow, and the slow cooling rate helps to reduce the accumulation of internal stress, so that glass liquid waste will not burst when it contacts cooling water in unloading chute body 4, thereby avoiding the splashing of glass liquid waste from unloading chute body 4, and ensuring the personal safety of operators.
[0034] In addition, when the glass liquid waste of large volume is separated from storage end 13, the gravity of its storage end 13 is less than the elastic force of reset spring 26, so as to reset reset end 14 through the contraction of reset spring 26, so as to work again.
[0035] Refer to Figures 1-6In some embodiments, the top of the discharging movable plate 12 is provided with a partition block 10, which is located between the storage end 13 and the reset end 14.
[0036] Through the above technical solution, the partition block 10 is located between the storage end 13 and the reset end 14, which means that it forms a physical barrier on the discharging movable plate 12, thereby preventing the glass liquid waste from flowing freely to the reset end 14 when it falls on the storage end 13, preventing the glass liquid waste from contacting the reset spring 26, and protecting the reset spring 26 from damage by high-temperature waste.
[0037] Referring to Figures 3-6 In some embodiments, one side of the partition block 10 is formed with a guide slope 11, which faces the storage end 13.
[0038] Through the above technical solution, when the glass liquid waste is discharged from the discharging port and contacts the storage end 13 of the discharging movable plate 12, the guide slope 11 can make the waste flow along the slope, so that when the glass liquid waste accumulates to a certain extent, it will flow smoothly to the inside of the discharging slide body 4 due to the action of gravity and the guide of the slope, avoiding the glass liquid waste remaining on the partition block 10.
[0039] Referring to Figures 1-6 In some embodiments, the inside of the discharging movable plate 12 is provided with a cooling cavity 19, the bottom of the storage end 13 is provided with a cooling spout 18 communicating with the cooling cavity 19, and the top of the reset end 14 is provided with a liquid inlet hole 20 communicating with the cooling cavity 19.
[0040] Through the above technical solution, when the cooling water flows into the liquid inlet hole 20, the cooling water will pass through the cooling cavity 19 and then be discharged from the cooling spout 18 to the discharging slide body 4. When the cooling water passes through the cooling cavity 19, it will absorb and carry away the heat transferred by the high-temperature glass liquid waste, preventing the discharging movable plate 12 from overheating due to long-term contact with high-temperature waste, and prolonging the service life of the discharging movable plate 12.
[0041] Referring to Figures 1-6 In some embodiments, the top of the mounting frame 2 is provided with a cooling seat 5, the top of the cooling seat 5 is provided with a conveying pipeline 7, one end of the conveying pipeline 7 is provided with a cooling spray pipe 8, and the cooling spray pipe 8 is vertically arranged so that the cooling spray pipe 8 faces the liquid inlet hole 20.
[0042] Through the above technical solution, the cooling spray pipe 8 is vertically arranged and faces the liquid inlet hole 20, which can ensure that the cooling water is directly sprayed to the top of the reset end 14 of the discharging movable plate 12, thereby improving the accuracy of the cooling water spray.
[0043] In addition, when the cooling water flow is too large, the impact force of the water flow on the storage end 13 will also increase, which will increase the frictional resistance between the storage end 13 and the surrounding structure, so that an adjusting valve can be arranged on the cooling nozzle 8, so as to control the cooling water flow, so as to maintain the normal work of the discharge movable plate 12.
[0044] With reference to Figure 2 In some embodiments, the top of the cooling seat 5 is provided with a limiting seat 6, the inside of the limiting seat 6 is provided with a limiting groove 9, and the conveying pipeline 7 is arranged in the inside of the limiting groove 9.
[0045] Through the above technical scheme, the limiting groove 9 can effectively prevent the conveying pipeline 7 from deviating due to water flow impact or external interference during the cooling process, and ensure that the cooling water can be accurately conveyed to the cooling nozzle 8.
[0046] With reference to Figure 2 In some embodiments, the top of the mounting frame 2 is provided with two limiting top seats 32, the two limiting top seats 32 are provided with limiting rods 33, and the limiting rods 33 are located between the cooling nozzle 8 and the reset end 14.
[0047] Through the above technical scheme, when the storage end 13 drives the reset end 14 to rotate upward, the reset end 14 will be in contact with the limiting rod 33, the limiting rod 33 avoids the direct contact between the reset end 14 and the cooling nozzle 8, reduces the equipment damage caused by collision, and prolongs the service life of the cooling nozzle 8 and the reset end 14.
[0048] With reference to Figure 3 In some embodiments, the inside of the rotating base 15 is provided with a first rotating shaft 16, the inside of the discharge movable plate 12 is provided with a first rotating groove 17, and the first rotating shaft 16 is in rotating cooperation with the first rotating groove 17.
[0049] Through the above technical scheme, the first rotating shaft 16 is in rotating cooperation with the first rotating groove 17, so as to guide the rotating position of the discharge movable plate 12, and ensure the stability of the rotation of the discharge movable plate 12.
[0050] With reference to Figures 4-6 In some embodiments, one side of the reset end 14 is provided with a setting seat 21, the inside of the setting seat 21 is provided with a second rotating shaft 22, one end of the reset spring 26 is provided with a connecting seat 27, one side of the connecting seat 27 is provided with a guide cylinder 23, the inside of the guide cylinder 23 is provided with a second rotating groove 24, and the second rotating groove 24 is in rotating cooperation with the second rotating shaft 22.
[0051] Through the technical scheme, when the reset spring 26 drives the reset end 14 to reset, the second rotating groove 24 of the guide cylinder 23 can rotate with the second rotating shaft 22, so that the accuracy and stability of the discharging movable plate 12 during the resetting process are ensured; and the design of the guide cylinder 23 and the rotating groove reduces the friction and wear between the reset spring 26 and the reset end 14, thereby prolonging the service life of the reset end 14.
[0052] With reference to Figure 5 In some specific embodiments, one end of the reset spring 26 is provided with a first fixed hook 29, one side of the connecting seat 27 is provided with a first fixed ring 28, the first fixed hook 29 is hooked with the first fixed ring 28, the top of the reset base 25 is provided with a second fixed ring 30, the other end of the reset spring 26 is provided with a second fixed hook 31, and the second fixed hook 31 is hooked with the second fixed ring 30.
[0053] Through the technical scheme, the first fixed hook 29 is hooked with the first fixed ring 28, and the second fixed hook 31 is hooked with the second fixed ring 30, so that the reset spring 26 establishes a stable connection between the connecting seat 27 and the reset base 25, thereby ensuring the reliability and consistency of the resetting action.
[0054] It should be noted that, in this document, the terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between the entities or operations. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment.
Claims
1. A splash guard for a glass liquid discharge chute comprising a discharge chute body, characterised in that, Also include support chassis, the top of the support chassis is equipped with mounting rack, the top of the mounting rack is provided with mounting cavity, the unloading chute body is arranged at one end of the mounting rack, the mounting cavity is communicated with the inside of the unloading chute body, the inside of the mounting cavity is provided with a rotating base, the top of the rotating base is rotatably connected with an unloading movable plate, one end of the unloading movable plate is provided with a storage end, the storage end is close to the unloading chute body, the storage end is used for receiving glass liquid waste, the other end of the unloading movable plate is provided with a reset end, the inside of the mounting cavity is provided with a reset base, the top of the reset base is provided with a reset spring, one end of the reset spring is connected with the reset end.
2. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 1, wherein The top of the unloading movable plate is provided with an isolation block, and the isolation block is located between the storage end and the reset end.
3. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 2, wherein One side of the isolation block is formed with a guide inclined surface, and the guide inclined surface faces the storage end.
4. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 1, wherein The inside of the unloading movable plate is provided with a cooling cavity, the bottom of the storage end is provided with a cooling nozzle communicated with the cooling cavity, and the top of the reset end is provided with a liquid inlet hole communicated with the cooling cavity.
5. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 4, wherein The top of the mounting rack is provided with a cooling seat, the top of the cooling seat is provided with a conveying pipeline, one end of the conveying pipeline is provided with a cooling nozzle, and the cooling nozzle is vertically arranged, so that the cooling nozzle faces the liquid inlet hole.
6. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 5, wherein The top of the cooling seat is provided with a limiting seat, the inside of the limiting seat is provided with a limiting groove, and the conveying pipeline is arranged in the limiting groove.
7. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 5, wherein The top of the mounting rack is provided with two limiting top seats, the two limiting top seats are provided with limiting rods, and the limiting rods are located between the cooling nozzle and the reset end.
8. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 1, wherein The inside of the rotating base is provided with a first rotating shaft, the inside of the unloading movable plate is provided with a first rotating groove, and the first rotating shaft is rotatably connected with the first rotating groove.
9. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 1, wherein One side of the reset end is provided with a setting seat, the inside of the setting seat is provided with a second rotating shaft, one end of the reset spring is provided with a connecting seat, one side of the connecting seat is provided with a guide cylinder, the inside of the guide cylinder is provided with a second rotating groove, and the second rotating groove is rotatably connected with the second rotating shaft.
10. A device for preventing splashing of molten glass from a glass flow slide as defined in claim 9, wherein One end of the reset spring is provided with a first fixed hook, one side of the connecting seat is provided with a first fixed ring, the first fixed hook is hooked with the first fixed ring, the top of the reset base is provided with a second fixed ring, the other end of the reset spring is provided with a second fixed hook, and the second fixed hook is hooked with the second fixed ring.