A slurry supply system for a high-pressure grouting production line for ceramic sanitary ware
By setting up multiple discharge pipes and vibration mechanisms in the high-pressure grouting equipment, the problems of low grouting efficiency and uneven stirring are solved, and a more efficient and uniform slurry stirring effect is achieved.
Patent Information
- Application Number
- CN202211642200.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-20
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2042-12-20
AI Technical Summary
The existing high-pressure grouting equipment has problems of low grouting efficiency and uneven mixing.
A plurality of discharge pipes and vibration mechanisms are used to improve grouting efficiency by setting up a plurality of discharge pipes, and the stirring is made more evenly by the vibration mechanism.
The grouting efficiency is improved and the stirring is more uniform, which enhances the fluidity and uniformity of the slurry.
Smart Images

Figure CN115741967B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of ceramic sanitary ware, in particular to a slurry supply system of a high-pressure grouting production line for ceramic sanitary ware. Background Art
[0002] Ceramics are a variety of products made from natural clay and various natural minerals through pulverization, mixing, shaping, and firing. Traditionally, objects made from clay and fired at high temperatures in specialized kilns were referred to as ceramics. Ceramics is a general term for pottery and porcelain. The traditional definition of ceramics refers to all man-made industrial products made from inorganic, non-metallic minerals such as clay. This encompasses a variety of products made from clay or clay-containing mixtures through mixing, shaping, and firing. Ceramics are often produced by manually pouring slurry into molds. This method is not only time-consuming and labor-intensive, but also requires handling and increased labor. Furthermore, slurry tends to solidify when exposed to air, making injection molding more difficult.
[0003] To solve the above problems, some high-pressure grouting equipment has been disclosed in the prior art. For example, the patent document with application number 201820975852.6 discloses a new type of high-pressure grouting equipment, which uses a storage tank and an air pump to discharge the mud in the storage tank from the discharge pipe using air pressure, and at the same time uses a grouting gun to inject the mud into the model, which can reduce labor and improve grouting efficiency.
[0004] However, existing high-pressure grouting equipment typically only has one discharge pipe, resulting in low grouting efficiency. Furthermore, existing high-pressure grouting equipment also suffers from the problem of uneven mixing. In light of these shortcomings, the inventors conducted in-depth research into the above-mentioned existing technologies, resulting in the present invention. Summary of the Invention
[0005] The present invention aims to solve, at least to some extent, one of the technical problems in the above-mentioned technologies. To this end, the present invention is to provide a slurry supply system for a high-pressure grouting production line for ceramic sanitary ware, which improves grouting efficiency by providing multiple discharge pipes and achieves more uniform mixing by providing a vibration mechanism.
[0006] To achieve the above-mentioned purpose, the present invention proposes a slurry supply system for a high-pressure grouting production line for ceramic sanitary ware, comprising a mounting base, a slurry supply cylinder, a vibration mechanism and a discharge assembly;
[0007] The slurry supply cylinder is arranged on the mounting seat, and an inlet for inputting slurry is provided on the slurry supply cylinder, a stirring mechanism for stirring the slurry is provided on the slurry supply cylinder, and a discharge port is provided on the side of the slurry supply cylinder; a vibration mechanism is arranged on the mounting seat, and the vibration mechanism is connected to the bottom of the slurry supply cylinder and drives the slurry supply cylinder to vibrate; the discharge assembly includes a discharge main pipe and a discharge branch pipe, one end of the discharge main pipe is connected to the discharge port, and a plurality of discharge branch pipes are provided, and one end of each discharge branch pipe is connected to the other end of the discharge main pipe, and the other end of each discharge branch pipe is used to connect a grouting machine.
[0008] Furthermore, the slurry supply cylinder includes a cover plate, a cylinder body and a bottom plate, the cover plate is arranged on the top of the cylinder body, and the bottom plate is fixed on the bottom of the cylinder body.
[0009] Furthermore, the stirring mechanism includes a stirring motor, a stirring shaft and stirring blades. The stirring motor is fixed on the cover plate, the stirring shaft is connected to the stirring motor and is driven to rotate by the stirring motor, the stirring blades are fixed on the side of the stirring shaft, and the stirring blades are provided in plurality to stir the slurry in the slurry supply tube.
[0010] Furthermore, the mounting seat includes a mounting plate, a first support rod and a second support rod, and a buffer mechanism is provided between the mounting plate and the bottom of the slurry supply cylinder.
[0011] Furthermore, the vibration mechanism includes a drive assembly, a first eccentric wheel and a second eccentric wheel. The drive assembly is arranged on the first support rod or the second support rod. The first eccentric wheel is connected to the drive assembly and is driven to rotate by the drive assembly. The first eccentric wheel is used to contact one side of the base plate. The second eccentric wheel is connected to the drive assembly and is driven to rotate by the drive assembly. The second eccentric wheel is used to contact the other side of the base plate.
[0012] Furthermore, when the driving assembly drives the first eccentric wheel and the second eccentric wheel to rotate, the height of the second eccentric wheel is different from the height of the first eccentric wheel.
[0013] Furthermore, the driving assembly includes a driving cylinder, a driving rack, a first driving gear and a second driving gear. The driving cylinder is fixed on the first support rod or the second support rod. The driving rack is connected to the driving cylinder and is driven to move by the driving cylinder. The first driving gear is arranged at the bottom of the mounting plate. The first driving gear is connected to the first eccentric wheel. The first driving gear is meshed with the driving rack. The first driving gear is arranged at the bottom of the mounting plate. The second driving gear is connected to the second eccentric wheel. The second driving gear is meshed with the driving rack.
[0014] Furthermore, the buffer mechanism includes a first elastic buffer pad and a second elastic buffer pad, the top of the first elastic buffer pad is fixed to the bottom of the base plate, the bottom of the first elastic buffer pad is fixed to the mounting plate, the top of the second elastic buffer pad is fixed to the bottom of the base plate, the bottom of the second elastic buffer pad is fixed to the mounting plate, and the second elastic buffer pad is arranged opposite to the first elastic buffer pad.
[0015] Furthermore, a heating mechanism is included, which is located in the slurry supply tube to heat the slurry in the slurry supply tube.
[0016] Furthermore, the heating mechanism includes a heat-conducting hollow rod, a heating rod and a heating wire. The heating rod is located in the heat-conducting hollow rod, a heat-conducting cavity is formed between the heating rod and the heat-conducting hollow rod, and the heating wire is wound around the heating rod.
[0017] Furthermore, it also includes a toggle mechanism, which is connected to the heating mechanism and toggle the heating mechanism to rotate.
[0018] Furthermore, the toggle mechanism includes a toggle component and a connecting component. The toggle component is arranged on the stirring shaft and rotates as the stirring shaft rotates. The connecting component is rotatably arranged in the stirring drum. The connecting component is toggled by the toggle component and rotates along the stirring drum. The connecting component connects multiple heating mechanisms.
[0019] Furthermore, the toggle assembly includes a fixed seat and a toggle rod, the fixed seat is fixed on the stirring shaft, and the toggle rod is fixed on the fixed seat.
[0020] Furthermore, the connecting assembly includes a connecting ring, a connecting seat, a rotating rod, a driving seat, an elastic member and a limit block. The connecting ring can be rotatably set on the inner wall of the slurry supply cylinder, the connecting seat is fixed on the connecting ring, the middle part of the rotating rod can be rotatably set on the connecting seat, the driving seat is fixed on the connecting ring, one end of the elastic member is connected to the driving seat, and the other end of the elastic member is connected to one end of the rotating rod. The limit block is fixed on the connecting ring, and the limit block is for the other end of the rotating rod to abut against.
[0021] Furthermore, a driving rod is provided in the elastic member.
[0022] Furthermore, it also includes a scraper for scraping off sticky material on the inner wall of the slurry supply tube. The scraper is set on the connecting ring and rotates as the connecting ring rotates.
[0023] Furthermore, two scrapers are provided, two heating mechanisms are provided, and the scrapers and the heating mechanisms are spaced apart.
[0024] Furthermore, the plane formed between the two scrapers is perpendicular to the plane formed between the two heating mechanisms.
[0025] Furthermore, the scraper includes a front scraper and a rear scraper. A plurality of perforations are provided on a side of the front scraper that contacts the inner wall of the slurry supply tube, and the rear scraper is provided at the rear of the front scraper.
[0026] Furthermore, an arc-shaped transition surface is provided on one end of the shifting rod close to the rotating rod.
[0027] Furthermore, a limiting groove is provided on the inner side wall of the slurry supply cylinder, and the connecting ring is rotatably provided in the limiting groove.
[0028] Furthermore, a main valve is provided on the main discharge pipe, and a branch valve is provided on each branch discharge pipe.
[0029] Furthermore, a heat-insulating interlayer is provided on the outer side of the discharge pipe.
[0030] After adopting the above structure, the slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to the present invention has at least the following beneficial effects:
[0031] 1. During use, the slurry in the slurry supply tube is stirred by the stirring mechanism. When the stirring mechanism is stirring, the vibration mechanism can be started to vibrate the slurry supply tube, which can cause the slurry supply tube to shake left and right, so that the slurry on the left side of the slurry supply tube moves to the right, or the slurry on the right side of the slurry supply tube moves to the left, thereby increasing the fluidity of the slurry in the slurry supply tube and making the stirring mechanism more uniform.
[0032] Second, by setting up a discharge component, the discharge component includes a discharge main pipe and multiple discharge branch pipes, so that the slurry can be transported to multiple grouting machines through multiple discharge branch pipes, thereby improving the grouting efficiency.
[0033] Compared with the prior art, the present invention improves the grouting efficiency by providing multiple discharge pipes, and at the same time, provides a vibration mechanism to achieve more uniform stirring. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] Figure 1 Schematic diagram of the structure of the slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to an embodiment of the present invention;
[0035] Figure 2 is a cross-sectional view of the slurry supply drum swinging right according to an embodiment of the present invention;
[0036] Figure 3 is a cross-sectional view of a slurry supply drum swinging to the left according to an embodiment of the present invention;
[0037] Figure 4 is a schematic diagram of the internal structure of a heating mechanism according to an embodiment of the present invention;
[0038] Figure 5 is a structural schematic diagram of a toggle mechanism according to an embodiment of the present invention;
[0039] Figure 6 It is a structural schematic diagram of a toggle assembly toggling a connecting assembly according to an embodiment of the present invention;
[0040] Figure 7 Schematic diagram of the distribution of scrapers and heating mechanisms according to an embodiment of the present invention.
[0041] Description of labels
[0042] Mounting base 1, mounting plate 11, first support rod 12, second support rod 13, buffer mechanism 14, first elastic buffer pad 141, second elastic buffer pad 142, slurry supply tube 2, inlet 21, outlet 22, cover plate 23, cylinder 24, bottom plate 25, vibration mechanism 3, drive assembly 31, drive cylinder 311, drive rack 312, first drive gear 313, second drive gear 314, first eccentric wheel 32, second eccentric wheel 33, discharge assembly 4, discharge main pipe 41, main valve 411, discharge branch pipe 42, branch Valve 421, stirring mechanism 5, stirring motor 51, stirring shaft 52, stirring blade 53, heating mechanism 6, heat-conducting hollow rod 61, heating rod 62, heating wire 63, toggle mechanism 7, toggle assembly 71, fixed seat 711, toggle rod 712, arc-shaped transition surface 7121, connecting assembly 72, connecting ring 721, connecting seat 722, rotating rod 723, driving seat 724, elastic member 725, limit block 726, driving rod 727, scraper 73, front scraper 731, perforation 7311, rear scraper 732, grouting machine 10. DETAILED DESCRIPTION
[0043] The following describes embodiments of the present invention in detail, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and are not to be construed as limiting the present invention.
[0044] like Figures 1 to 7 As shown, a slurry supply system for a high-pressure grouting production line for ceramic sanitary ware of the present invention comprises a mounting base 1, a slurry supply cylinder 2, a vibration mechanism 3 and a discharge assembly 4; the slurry supply cylinder 2 is arranged on the mounting base 1, and an inlet 21 for inputting slurry is provided on the slurry supply cylinder 2, a stirring mechanism 5 for stirring slurry is provided on the slurry supply cylinder 2, and a discharge port 22 is provided on the side of the slurry supply cylinder 2; the vibration mechanism 3 is arranged on the mounting base 1, and the vibration mechanism 3 is connected to the bottom of the slurry supply cylinder 2 and drives the slurry supply cylinder 2 to vibrate; the discharge assembly 4 comprises a discharge main pipe 41 and a discharge branch pipe 42, one end of the discharge main pipe 41 is connected to the discharge port 22, and a plurality of discharge branch pipes 42 are provided, one end of each discharge branch pipe 42 is connected to the other end of the discharge main pipe 41, and the other end of each discharge branch pipe 42 is used to connect to a grouting machine 10. Among them, a power pump can be provided on the discharge main pipe 41 to transport the slurry in the slurry supply cylinder 2 to the discharge main pipe 41 and each discharge branch pipe 42.
[0045] Thus, the present invention relates to a slurry supply system for a high-pressure grouting production line for ceramic sanitary ware. When in use, the slurry in the slurry supply barrel 2 is stirred by the stirring mechanism 5. When the stirring mechanism 5 is stirring, the vibration mechanism 3 can be started to vibrate the slurry supply barrel 2, which can cause left and right shaking, so that the slurry on the left side of the slurry supply barrel 2 moves to the right, or the slurry on the right side of the slurry supply barrel 2 moves to the left, thereby increasing the fluidity of the slurry in the slurry supply barrel 2 and making the stirring mechanism 5 more uniform. By providing a discharge assembly 4, the discharge assembly 4 includes a discharge main pipe 41 and multiple discharge branch pipes 42, so that the slurry can be transported to multiple grouting machines 10 through the multiple discharge branch pipes 42, thereby improving the grouting efficiency.
[0046] Optionally, the slurry supply cylinder 2 includes a cover plate 23, a cylinder 24, and a bottom plate 25. The cover plate 23 is arranged on the top of the cylinder 24, and the bottom plate 25 is fixed to the bottom of the cylinder 24. The cover plate 23 is provided to facilitate the installation of the stirring mechanism 5. The cover plate 23 is detachably provided on the cylinder 24, so that the heating mechanism 6 (mentioned below) can be installed by opening the cover plate 23.
[0047] In this example, the stirring mechanism 5 includes a stirring motor 51, a stirring shaft 52, and a stirring blade 53. The stirring motor 51 is fixed to the cover plate 23. The stirring shaft 52 is connected to the stirring motor 51 and is driven to rotate by the stirring motor 51. The stirring blade 53 is fixed to the side of the stirring shaft 52. The stirring blade 53 is provided in plurality to stir the slurry in the slurry supply tube 2. After the slurry is placed in the slurry supply tube 2, the stirring motor 51 drives the stirring shaft 52 to rotate. The rotation of the stirring shaft 52 drives the stirring blade 53 to rotate. The stirring blade 53 rotates to stir the slurry in the slurry supply tube 2. Among them, the stirring blade 53 can be provided in plurality, and the plurality of stirring blades 53 are evenly arranged on the stirring shaft 52.
[0048] The mounting base 1 in this example includes a mounting plate 11, a first support rod 12, and a second support rod 13. A buffer mechanism 14 is provided between the mounting plate 11 and the bottom of the slurry supply cylinder 2. The mounting plate 11, the first support rod 12, the second support rod 13, and the buffer mechanism 14 effectively support the slurry supply cylinder 2 disposed on the mounting plate 11.
[0049] Furthermore, the vibration mechanism 3 includes a drive assembly 31, a first eccentric wheel 32 and a second eccentric wheel 33. The drive assembly 31 is arranged on the first support rod 12 or the second support rod 13. The first eccentric wheel 32 is connected to the drive assembly 31 and is driven to rotate by the drive assembly 31. The first eccentric wheel 32 is used to contact one side of the base plate 25. The second eccentric wheel 33 is connected to the drive assembly 31 and is driven to rotate by the drive assembly 31. The second eccentric wheel 33 is used to contact the other side of the base plate 25.
[0050] By setting up a driving component 31, a first eccentric wheel 32 and a second eccentric wheel 33, when in use, the driving component 31 drives the first eccentric wheel 32 and the second eccentric wheel 33 to rotate. Since the first eccentric wheel 32 can contact one side of the bottom plate 25 and the second eccentric wheel 33 can contact the other side of the bottom plate 25, when the first eccentric wheel 32 and the second eccentric wheel 33 rotate, the slurry supply drum 2 is driven to vibrate up and down and left and right, driving the slurry in the slurry supply drum 2 to flow, so that the stirring mechanism 5 can stir more evenly.
[0051] As an example, when the driving assembly 31 drives the first eccentric wheel 32 and the second eccentric wheel 33 to rotate, the height of the second eccentric wheel 33 is different from the height of the first eccentric wheel 32. In this way, when the height of the first eccentric wheel 32 is higher than the height of the second eccentric wheel 33, the slurry supply cylinder 2 swings to the right, and when the height of the first eccentric wheel 32 is lower than the height of the second eccentric wheel 33, the slurry supply cylinder 2 swings to the left. The first eccentric wheel 32 and the second eccentric wheel 33 rotate continuously, causing the slurry supply cylinder 2 to swing left and right continuously. When the slurry supply cylinder 2 swings to the right, the slurry on the right flows to the left, and when the slurry supply cylinder 2 swings to the left, the slurry on the left flows to the right, making the stirring mechanism 5 more uniform when stirring.
[0052] The drive assembly 31 includes a drive cylinder 311, a drive rack 312, a first drive gear 313, and a second drive gear 314. The drive cylinder 311 is fixed to the first support rod 12 or the second support rod 13. The drive rack 312 is connected to the drive cylinder 311 and is driven to move by the drive cylinder 311. The first drive gear 313 is disposed at the bottom of the mounting plate 11. The first drive gear 313 is connected to the first eccentric wheel 32, and the first drive gear 313 is meshed with the drive rack 312. The first drive gear 313 is disposed at the bottom of the mounting plate 11. The second drive gear 314 is connected to the second eccentric wheel 33, and the second drive gear 314 is meshed with the drive rack 312. In this example, the first drive gear 313 and the first eccentric wheel 32 can be connected by a connecting shaft, and the connecting shaft is rotatably disposed on the mounting plate 11 to facilitate the rotation of the first drive gear 313 and the first eccentric wheel 32. The second driving gear 314 and the second eccentric wheel 33 may be connected via a connecting shaft. The connecting shaft is rotatably disposed on the mounting plate 11 to facilitate the rotation of the second driving gear 314 and the second eccentric wheel 33 .
[0053] When driving the first eccentric wheel 32 and the second eccentric wheel 33 to rotate, the driving cylinder 311 drives the driving rack 312 to move. When the driving rack 312 moves, it drives the first driving gear 313 and the second driving gear 314 to rotate. The first driving gear 313 rotates to drive the first eccentric wheel 32 to rotate, and the second driving gear 314 rotates to drive the second eccentric wheel 33 to rotate, thereby realizing that the driving component 31 drives the first eccentric wheel 32 and the second eccentric wheel 33 to rotate.
[0054] In this example, a support plate can be provided between the first support rod 12 and the second support rod 13. One end of the support plate is fixed to the first support rod 12, and the other end is fixed to the second support rod 13. A slide rail is provided on the support plate, and a slide groove that cooperates with the slide rail is provided on the drive rack 312. In this way, the support plate provides support during the movement of the drive rack 312. Furthermore, the provision of the slide rail and the slide groove allows the drive rack 312 to move in a specified direction, making the drive rack 312 more stable and smooth when driven by the drive cylinder 311.
[0055] In some examples, the buffer mechanism 14 includes a first elastic buffer pad 141 and a second elastic buffer pad 142. The top of the first elastic buffer pad 141 is fixed to the bottom of the base plate 25, and the bottom of the first elastic buffer pad 141 is fixed to the mounting plate 11. The top of the second elastic buffer pad 142 is fixed to the bottom of the base plate 25, and the bottom of the second elastic buffer pad 142 is fixed to the mounting plate 11. The second elastic buffer pad 142 is arranged opposite to the first elastic buffer pad 141. By providing the first elastic buffer pad 141 and the second elastic buffer pad 142, when the slurry supply tube 2 shakes left and right, the first elastic buffer pad 141 and the second elastic buffer pad 142 play a buffering role, making the slurry supply tube 2 shake more smoothly. Among them, the first elastic buffer pad 141 and the second elastic buffer pad 142 are preferably silicone buffer pads.
[0056] As an example, a heating mechanism 6 is further included, which is located in the slurry supply tube 2 to heat the slurry in the slurry supply tube 2. By providing the heating mechanism 6, the slurry in the slurry supply tube 2 can be heated so that the slurry has a certain temperature, which is convenient for the use of the slurry.
[0057] The heating mechanism 6 in this example includes a heat-conducting hollow rod 61, a heating rod 62, and a heating wire 63. The heating rod 62 is located within the heat-conducting hollow rod 61, forming a heat-conducting cavity between the heating rod 62 and the heat-conducting hollow rod 61. The heating wire 63 is wound around the heating rod 62. The heating wire 63 can generate heat. The heating wire 63 is wound around the heating rod 62. The generated heat is attached to the heat-conducting hollow rod 61 through the heat-conducting cavity, causing the surface of the heat-conducting hollow rod 61 to reach a higher temperature, thereby heating the slurry in the slurry supply cylinder 2. The heat-conducting hollow rod 61 protects the heating wire 63 and also conducts heat, reducing heat loss.
[0058] In some examples, a toggle mechanism 7 is further included, which is connected to the heating mechanism 6 and toggles the heating mechanism 6 to rotate. By providing the toggle mechanism 7, the heating mechanism 6 is rotated slowly along the circumferential direction, so that the heating is more uniform and the slurry is heated more reasonably.
[0059] Furthermore, the toggle mechanism 7 includes a toggle assembly 71 and a connecting assembly 72. The toggle assembly 71 is disposed on the stirring shaft 52 and rotates as the stirring shaft 52 rotates. The connecting assembly 72 is rotatably disposed within the stirring drum. The connecting assembly 72 is toggled by the toggle assembly 71 to rotate along the stirring drum. The connecting assembly 72 connects multiple heating mechanisms 6. During use, when the stirring shaft 52 rotates, the toggle assembly 71 is driven to rotate synchronously. The rotation of the toggle assembly 71 toggles the connecting assembly 72, causing the connecting assembly 72 to rotate slowly, thereby preventing the heating mechanism 6 from rotating too quickly and allowing the heating mechanism 6 to heat more reasonably.
[0060] In this example, the toggle assembly 71 includes a fixed base 711 and a toggle lever 712. The fixed base 711 is fixed to the stirring shaft 52, and the toggle lever 712 is fixed to the fixed base 711. When the stirring shaft 52 rotates, the fixed base 711 is driven to rotate synchronously, and when the fixed base 711 rotates, the toggle lever 712 is driven to rotate synchronously, thereby facilitating the toggle of the connecting assembly 72 and driving the connecting assembly 72 to rotate slowly.
[0061] As an example, the connecting assembly 72 includes a connecting ring 721, a connecting seat 722, a rotating rod 723, a driving seat 724, an elastic member 725 and a limit block 726. The connecting ring 721 can be rotatably set on the inner wall of the slurry supply cylinder 2, the connecting seat 722 is fixed on the connecting ring 721, the middle part of the rotating rod 723 can be rotatably set on the connecting seat 722, the driving seat 724 is fixed on the connecting ring 721, one end of the elastic member 725 is connected to the driving seat 724, and the other end of the elastic member 725 is connected to one end of the rotating rod 723. The limit block 726 is fixed on the connecting ring 721, and the limit block 726 is for the other end of the rotating rod 723 to abut against.
[0062] The connecting ring 721 is rotatably mounted on the inner sidewall of the slurry supply cylinder 2. For example, a limiting groove is provided on the inner sidewall of the slurry supply cylinder 2, and the connecting ring 721 is rotatably mounted in the limiting groove. By providing the limiting groove, the limiting groove restricts the connecting ring 721, allowing the connecting ring 721 to rotate along the limiting groove, thereby improving the stability of the connecting ring 721 during rotation.
[0063] To ensure that the connecting assembly 72 can be effectively moved by the moving assembly 71, in this example, a drive rod 727 is disposed within the elastic member 725. Thus, during use, the rotating rod 723 is driven to rotate by the moving rod 712, causing the end of the rotating rod 723 to abut against one end of the drive rod 727, driving the other end of the drive rod 727 to contact the drive seat 724, thereby driving the entire connecting ring 721 to rotate. After the rotating rod 723 rotates to a certain angle, the moving rod 712 no longer contacts the rotating rod 723, and the rotating rod 723 returns to its original position under the action of the elastic member 725, with the other end of the rotating rod 723 abutting against the stop block 726. The elastic member 725 in this example is a spring, which is always in a compressed state.
[0064] In this example, a scraper 73 is further included for scraping off sticky material from the inner sidewall of the slurry supply tube 2. The scraper 73 is provided on the connecting ring 721 and rotates as the connecting ring 721 rotates. By providing the scraper 73, when the connecting ring 721 rotates, the scraper 73 rotates synchronously, scraping off sticky material from the inner sidewall of the slurry supply tube 2. The scraped sticky material falls into the slurry supply tube 2, so that the sticky material stuck to the inner sidewall of the slurry supply tube 2 can be heated after being scraped off.
[0065] As an example, two scrapers 73 are provided, and two heating mechanisms 6 are provided, and the scrapers 73 and the heating mechanisms 6 are spaced apart. In this way, when the slurry supply tube 2 is stirred and vibrated, after the slurry sticks to the inner wall of the slurry supply tube 2, the scrapers 73 can scrape it off in time, and after scraping it off, it is heated by the heating mechanism 6, so that the slurry in the slurry supply tube 2 can be heated better and more evenly, and the heating effect is good.
[0066] The plane formed between the two scrapers 73 is perpendicular to the plane formed between the two heating mechanisms 6. Thus, providing two heating mechanisms 6 improves heating efficiency, and providing two scrapers 73 improves scraping efficiency. The angle formed between each scraper 73 and the adjacent heating mechanism 6 is 90 degrees, facilitating better scraping and heating, and ensuring a reasonable scraping and heating configuration.
[0067] In this example, when the lever 712 collides with the rotating rod 723 and drives the rotating rod 723 to rotate, the entire connecting assembly 72 will change from a static state to a rotating state, that is, the connecting assembly 72 will be suddenly vibrated. During this vibration process, the slurry adhered to the scraper 73 will be vibrated and fall into the slurry supply tube 2, making it easier for the heating mechanism 6 to heat it.
[0068] Furthermore, the scraper 73 includes a front scraper 731 and a rear scraper 732. The side of the front scraper 731 that contacts the inner sidewall of the slurry supply cylinder 2 is provided with a plurality of perforations 7311, and the rear scraper 732 is provided at the rear of the front scraper 731. Thus, when the front scraper 731 is scraping the slurry, some of the slurry enters between the front scraper 731 and the rear scraper 732 through the perforations 7311, and then the rear scraper 732 scrapes off the slurry. By providing the front scraper 731 and the rear scraper 732, the slurry can be effectively scraped off. When a large amount of slurry adheres to the inner sidewall of the slurry supply cylinder 2, some of the slurry can enter between the front scraper 731 and the rear scraper 732 through the perforations 7311, allowing the rear scraper 732 to scrape off the slurry, thereby preventing the situation where there is too much slurry and it cannot be scraped off.
[0069] As an example, an arcuate transition surface 7121 is provided at one end of the lever 712 close to the rotating rod 723. By providing the arcuate transition surface 7121, after the lever contacts the rotating rod 723, when the lever needs to be disengaged from the rotating rod 723, the arcuate transition surface 7121 plays a transition role, facilitating the disengagement of the rotating rod 723.
[0070] In this example, a main valve 411 is provided on the main discharge pipe 41, and a sub-valve 421 is provided on each branch discharge pipe 42. The main valve 411 and sub-valve 421 facilitate opening and closing the slurry output. An insulating interlayer is provided on the outer side of the branch discharge pipe 42. This insulating interlayer provides insulation during the transportation of slurry within the branch discharge pipe 42, facilitating the use of the grouting machine 10.
[0071] Compared with the prior art, the present invention improves the grouting efficiency by providing a plurality of discharge pipes 42 , and at the same time, provides a vibration mechanism 3 to achieve more uniform stirring.
[0072] The above embodiments and drawings do not limit the product form and style of the present invention. Any appropriate changes or modifications made by ordinary technicians in the relevant technical field should be deemed to be within the patent scope of the present invention.
Claims
1. A slurry supply system for a high-pressure grouting production line for ceramic sanitary ware, characterized by: It includes a mounting base, a slurry supply cylinder, a vibration mechanism and a discharge assembly; the slurry supply cylinder is arranged on the mounting base, an inlet for inputting slurry is arranged on the slurry supply cylinder, a stirring mechanism for stirring the slurry is arranged on the slurry supply cylinder, and a discharge port is arranged on the side of the slurry supply cylinder; The mounting base includes a mounting plate, a first support rod and a second support rod, and a buffer mechanism is provided between the mounting plate and the bottom of the slurry supply cylinder; the buffer mechanism includes a first elastic buffer pad and a second elastic buffer pad, the top of the first elastic buffer pad is fixed to the bottom of the base plate, the bottom of the first elastic buffer pad is fixed to the mounting plate, the top of the second elastic buffer pad is fixed to the bottom of the base plate, the bottom of the second elastic buffer pad is fixed to the mounting plate, and the second elastic buffer pad is arranged opposite to the first elastic buffer pad; The vibration mechanism is arranged on the mounting seat, the vibration mechanism is connected to the bottom of the slurry supply drum and drives the slurry supply drum to vibrate in the left and right directions; the vibration mechanism includes a driving assembly, a first eccentric wheel and a second eccentric wheel. The driving assembly is arranged on the first support rod or the second support rod, the first eccentric wheel is connected to the driving assembly and is driven to rotate by the driving assembly. The first eccentric wheel is used to contact one side of the bottom plate, the second eccentric wheel is connected to the driving assembly and is driven to rotate by the driving assembly, and the second eccentric wheel is used to contact the other side of the bottom plate; when the driving assembly drives the first eccentric wheel and the second eccentric wheel to rotate, the height of the second eccentric wheel is different from the height of the first eccentric wheel; the driving assembly includes a driving cylinder, a driving rack, a first driving gear and a second driving gear, the driving cylinder is fixed on the first support rod or the second support rod, the driving rack is connected to the driving cylinder and is driven to move by the driving cylinder, the first driving gear is arranged at the bottom of the mounting plate, the first driving gear is connected to the first eccentric wheel, the first driving gear is meshed with the driving rack, the first driving gear is arranged at the bottom of the mounting plate, the second driving gear is connected to the second eccentric wheel, and the second driving gear is meshed with the driving rack; The discharge assembly includes a main discharge pipe and a branch discharge pipe. One end of the main discharge pipe is connected to the discharge port. There are multiple branch discharge pipes. One end of each branch discharge pipe is connected to the other end of the main discharge pipe. The other end of each branch discharge pipe is used to connect to a grouting machine.
2. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 1, characterized in that: The slurry supply cylinder comprises a cover plate, a cylinder body and a bottom plate. The cover plate is arranged on the top of the cylinder body, and the bottom plate is fixed on the bottom of the cylinder body.
3. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 2, characterized in that: The stirring mechanism includes a stirring motor, a stirring shaft and a stirring blade. The stirring motor is fixed on the cover plate. The stirring shaft is connected to the stirring motor and is driven to rotate by the stirring motor. The stirring blade is fixed on the side of the stirring shaft. The stirring blade is provided in plurality to stir the slurry in the slurry supply tube.
4. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 1, characterized in that: The utility model further comprises a heating mechanism, which is located in the slurry supply cylinder and is used to heat the slurry in the slurry supply cylinder.
5. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 4, characterized in that: It also includes a toggle mechanism, which is connected to the heating mechanism and drives the heating mechanism to rotate; the toggle mechanism includes a toggle component and a connecting component, the toggle component is arranged on the stirring shaft and rotates as the stirring shaft rotates, the connecting component can be rotatably arranged in the stirring drum, and the connecting component is toggled by the toggle component to rotate along the stirring drum, and the connecting component connects multiple heating mechanisms.
6. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 5, characterized in that: The toggle assembly comprises a fixing seat and a toggle rod, wherein the fixing seat is fixed on the stirring shaft, and the toggle rod is fixed on the fixing seat.
7. The slurry supply system of the high-pressure grouting production line for ceramic sanitary ware according to claim 6, characterized in that: The connecting assembly includes a connecting ring, a connecting seat, a rotating rod, a driving seat, an elastic member and a limit block. The connecting ring can be rotatably set on the inner wall of the slurry supply cylinder, the connecting seat is fixed on the connecting ring, the middle part of the rotating rod can be rotatably set on the connecting seat, the driving seat is fixed on the connecting ring, one end of the elastic member is connected to the driving seat, and the other end of the elastic member is connected to one end of the rotating rod. The limit block is fixed on the connecting ring, and the limit block is for the other end of the rotating rod to abut against.
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