Anti-layering Ru porcelain glaze tank
By combining the synergistic design of the spiral conveyor and the stirring rod with the conical hopper and the discharge pipe, the problems of stratification and inaccurate retrieval in the glaze storage tank are solved, achieving uniform mixing and precise retrieval of the glaze, thus improving the quality of Ru porcelain firing and the utilization rate of the glaze.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- RUZHOU YUJUAN RU KILN CO LTD
- Filing Date
- 2025-06-23
- Publication Date
- 2026-05-19
AI Technical Summary
Existing glaze storage containers are prone to stratification and sedimentation, resulting in uneven glaze composition, which affects the firing effect of Ru ware, and the inaccurate use of glaze also easily leads to waste.
The design employs a spiral conveyor and a stirring rod working in tandem, combined with a conical hopper and a discharge pipe, to achieve the lifting, conveying, and uniform mixing of the glaze. The filter holes promote glaze mixing, and the controller adjusts the motor speed to meet different needs.
It effectively prevents glaze layering, ensures uniform glaze composition, precisely controls the amount used, reduces waste, and improves the quality of Ru porcelain products and the utilization rate of glaze.
Smart Images

Figure CN224257424U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glaze storage container technology, and in particular to a Ru porcelain glaze jar that prevents delamination. Background Technology
[0002] Ru ware is renowned for its unique color and texture. During the production process, the quality of the glaze plays a crucial role in the final product's quality. During glaze storage, due to the varying densities of its components, layering and sedimentation can easily occur, leading to uneven glaze composition and affecting the subsequent firing process.
[0003] Most glaze storage containers currently on the market lack the function of preventing glaze delamination, or their anti-delamination structure is complex, costly, and inconvenient to operate. In addition, it is often difficult to accurately control the amount of glaze taken, and the glaze at the bottom is difficult to access, resulting in glaze waste.
[0004] Therefore, it is necessary to provide a Ru ware glaze container that prevents delamination to solve the above-mentioned technical problems. Utility Model Content
[0005] This invention provides a Ru porcelain glaze container that prevents delamination, thus solving the problems in the background art.
[0006] To solve the above-mentioned technical problems, this utility model provides a Ru ware glaze container for preventing stratification, comprising a container body. Inside the container body, a conveying cylinder is vertically installed via a fixing rod. The fixing rod ensures the conveying cylinder is stably positioned at the center of the container body, providing a channel for glaze conveying. A top cover is sealed on the top surface of the container body, forming a closed glaze storage space. A drive motor is centrally mounted on the top surface of the top cover, with its output end penetrating the top cover surface and coaxially fixedly connected to a spiral conveyor paddle. The drive motor drives the spiral conveyor paddle to rotate. One end of the spiral conveyor paddle extends into the conveying cylinder, penetrating to the bottom of the glaze to lift and convey the glaze upwards. A rod is radially fixed to the outer surface of the spiral conveyor paddle, and multiple stirring rods are obliquely mounted at equal intervals on the outer surface of the rod. When the spiral conveyor paddle rotates, the rod and stirring rods rotate accordingly. The stirring rods can fully agitate the glaze outside the conveying cylinder, working in conjunction with the spiral conveyor paddle to prevent glaze stratification.
[0007] Preferably, a conical hopper, wider at the top and narrower at the bottom, is installed through the bottom of the material tank body. The conical hopper is connected to the interior of the material tank body, and its bottom end is connected to a discharge pipe extending vertically downwards. An easy-to-operate valve is installed on the discharge pipe. By controlling the opening and closing of the valve, and utilizing gravity, the glaze can be accurately discharged from the material tank body through the conical hopper into the discharge pipe.
[0008] Preferably, the conveying cylinder has multiple equally spaced filter holes that extend through its periphery. These filter holes allow the glaze inside and outside the conveying cylinder to circulate with each other, further promoting uniform mixing of the glaze.
[0009] Preferably, a brush is installed on the inner wall surface of the mounting rod, and the brush is in close contact with the outer wall of the conveying cylinder. As the mounting rod rotates with the screw conveyor, the brush is always in close contact with the outer wall of the conveying cylinder, which can clean the filter holes in time, prevent the filter holes from being blocked by glaze, and ensure smooth flow of glaze.
[0010] Preferably, multiple stirring rods are installed, and the multiple stirring rods are installed at equal intervals on the outer surface of the mounting rod, so that the glaze can be stirred more thoroughly and evenly when rotating.
[0011] Preferably, the top surface of the top cover has a feed inlet located on the side away from the drive motor, which facilitates the addition of glaze. The feed inlet is equipped with a sealing cap, which can effectively prevent dust from entering the inside of the tank body when no material is being fed.
[0012] Preferably, a controller is installed on the outer surface of the material tank body. The controller is connected to the drive motor through a circuit. The operator can adjust the speed, start and stop and other operating states of the drive motor through the controller, thereby flexibly controlling the glaze stirring and conveying process to meet different usage needs.
[0013] Preferably, the aforementioned.
[0014] Compared with related technologies, the Ru porcelain glaze container provided by this utility model has the following beneficial effects:
[0015] Compared with existing technologies, this glaze tank uses a drive motor to rotate a spiral conveyor and a stirring rod. The spiral conveyor lifts and transports the glaze inside the conveying cylinder, while the stirring rod thoroughly stirs the glaze outside the conveying cylinder. The two work together to effectively break the stratification and sedimentation phenomenon caused by different component densities in the glaze, ensuring that the glaze composition remains uniform. This provides a stable glaze for Ru porcelain firing and greatly improves the quality of the finished Ru porcelain.
[0016] Compared with existing technologies, the conical hopper and discharge pipe design at the bottom of the material tank body allows the glaze to naturally converge towards the discharge pipe. When taking glaze, the amount of glaze taken can be precisely controlled by opening the valve on the discharge pipe. It also makes it convenient to take glaze from the bottom, reducing glaze waste, improving glaze utilization, and making the operation simple and convenient.
[0017] The parts of the device not covered herein are the same as or can be implemented using existing technologies. Attached Figure Description
[0018] Figure 1A schematic diagram of the structure of a Ru porcelain glaze container for preventing delamination provided by this utility model;
[0019] Figure 2 A schematic diagram of the internal structure of a Ru porcelain glaze container designed to prevent delamination, provided by this utility model;
[0020] Figure 3 A schematic diagram of the spiral conveyor structure of a Ru porcelain glaze tank for preventing delamination provided by this utility model;
[0021] Figure 4 A schematic diagram of the filter hole structure of a Ru porcelain glaze container for preventing delamination provided by this utility model.
[0022] Numbering on the map:
[0023] 1. Tank body; 2. Controller; 3. Top cover; 4. Inlet; 5. Drive motor; 6. Valve; 7. Discharge pipe; 8. Conical hopper; 9. Mounting rod; 10. Conveying cylinder; 11. Fixing rod; 12. Agitating rod; 13. Brush; 14. Spiral conveyor; 15. Filter hole. Detailed Implementation
[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0025] Example 1
[0026] Please refer to the following: Figure 1-4 A Ru ware glaze container designed to prevent delamination has a basic supporting structure of container body 1. Inside container body 1, a conveying cylinder 10 is vertically mounted by welding using four symmetrically distributed fixing rods 11. One end of each fixing rod 11 is welded to the inner wall of container body 1, and the other end is welded to the outer wall of conveying cylinder 10. This welding method ensures that conveying cylinder 10 is stably positioned in the center of container body 1, providing a stable channel for glaze delivery. A top cover 3 is bolted to the top surface of container body 1, with bolts evenly distributed along the edge of the top cover 3. Tightening the bolts creates a sealed glaze storage space, preventing external impurities from entering.
[0027] The drive motor 5 is centrally mounted on the top surface of the top cover 3 using bolts. A sealed bearing is installed between the motor output shaft and the top cover 3 to ensure flexible rotation of the motor output end while preventing glaze leakage. The output end of the drive motor 5 passes through the surface of the top cover 3 and is coaxially fixedly connected to the spiral conveyor 14 via a coupling. The coupling can transmit torque, enabling the drive motor 5 to stably drive the spiral conveyor 14 to rotate. One end of the spiral conveyor 14 extends into the interior of the conveying cylinder 10, penetrating deep into the bottom of the glaze. Its spiral blade design can lift and convey the bottom glaze upwards during rotation.
[0028] The outer surface of the spiral conveyor 14 is radially secured to mounting rods 9 via bolts, with the mounting rods 9 arranged radially. Multiple stirring rods 12 are obliquely welded at equal intervals to the outer surface of the mounting rods 9, with an angle of 45° between the stirring rods 12 and the mounting rods 9. This angle design produces a better stirring effect during mixing. When the spiral conveyor 14 rotates, the mounting rods 9 and stirring rods 12 rotate accordingly. The stirring rods 12 can fully agitate the glaze outside the conveying cylinder 10, working in conjunction with the spiral conveyor 14 to prevent glaze stratification. The spiral conveyor 14 lifts the glaze, and the stirring rods 12 agitate it; together, they form a three-dimensional glaze mixing process, effectively preventing stratification caused by differences in the density of the glaze components.
[0029] Example 2
[0030] Please refer to the following: Figure 1-4 At the bottom of the material tank body 1, a conical hopper 8, wider at the top and narrower at the bottom, is welded through and installed. The larger end of the conical hopper 8 connects to the interior of the material tank body 1, while the smaller end is connected to a vertically downward-extending discharge pipe 7 via a flange. The flange connection facilitates disassembly and maintenance. A ball valve 6 is installed on the discharge pipe 7, with its handle positioned for easy operator access. By controlling the opening and closing of the ball valve, gravity allows the glaze to flow precisely from the material tank body 1 through the conical hopper 8 to the discharge pipe 7. The design of the conical hopper 8 allows the glaze to flow naturally towards the discharge pipe 7, reducing residue, while the precise control of the ball valve meets varying usage requirements, minimizing glaze waste.
[0031] Example 3
[0032] Please refer to the following: Figure 1-4 Multiple equally spaced filter holes 15 are machined through the side of the conveying cylinder 10. The diameter of the filter holes 15 is 5 mm, and the spacing between adjacent filter holes 15 is 20 mm. These filter holes 15 allow the glaze inside and outside the conveying cylinder 10 to flow between each other. When the screw conveyor 14 lifts the glaze inside the conveying cylinder 10, the glaze can flow out through the filter holes 15 and mix with the glaze outside the conveying cylinder 10. When the stirring rod 12 agitates the external glaze, it can also allow the external glaze to enter the conveying cylinder 10 through the filter holes 15, further promoting uniform mixing of the glaze and enhancing the anti-segregation effect.
[0033] Example 4
[0034] Please refer to the following: Figure 1-4A brush 13 is attached to the inner wall of the mounting rod 9 using adhesive. The brush 13 is made of nylon, with soft and resilient bristles that allow it to adhere tightly to the outer wall of the conveying cylinder 10. As the mounting rod 9 rotates with the screw conveyor 14, the brush 13 remains in close contact with the outer wall of the conveying cylinder 10, promptly cleaning the filter holes 15 and preventing them from becoming clogged by glaze. When glaze adheres to the edges of the filter holes 15, the rotating brush 13 scrapes it off, ensuring smooth flow of glaze inside and outside the conveying cylinder 10 and maintaining the continuous effectiveness of the anti-delamination function.
[0035] Example 5
[0036] Please refer to the following: Figure 1-4 Multiple stirring rods 12 are installed and welded at equal intervals to the outer surface of the mounting rod 9. Each stirring rod 12 is 15cm long. This layout and size design allows for more comprehensive and uniform mixing of the glaze during rotation. The simultaneous operation of multiple stirring rods 12 creates multi-directional agitation zones, resulting in a complex flow trajectory of the glaze within the tank body 1, further improving the uniformity of glaze mixing and effectively preventing stratification.
[0037] Example 6
[0038] Please refer to the following: Figure 1-4 The top surface of the top cover 3 has a feed inlet 4 machined into it. The feed inlet 4 is located on the side away from the drive motor 5, making it convenient for operators to add glaze. The edge of the feed inlet 4 has internal threads, and the equipped sealing cap is screwed into the feed inlet 4 via external threads. The sealing cap has a rubber sealing ring inside. When the sealing cap is tightened, the rubber sealing ring can effectively prevent dust from entering the inside of the material tank body 1, keeping the glaze clean and avoiding impurities from affecting the quality of the glaze and the firing effect of Ru porcelain.
[0039] Example 7
[0040] Please refer to the following: Figure 1-4 A controller 2 is bolted to the outer surface of the tank body 1. The controller 2 integrates a control circuit board, which is connected to the drive motor 5 via a shielded cable. Operators can control the speed, start / stop, and other operating statuses of the drive motor 5 using buttons and a display screen on the controller 2. During the initial storage of the glaze, a higher speed can be set for rapid mixing; during storage, the speed can be reduced for continuous anti-stratification stirring, thus flexibly controlling the glaze mixing and conveying process to meet different usage needs while achieving energy-saving operation.
[0041] It should be noted that the control circuit of controller 2 can be implemented by those skilled in the art through simple programming, and is common knowledge in the field. It is only used and not modified, so the control method and circuit connection will not be described in detail.
[0042] The working principle of the anti-segregation Ru porcelain glaze container provided by this utility model is as follows:
[0043] When it is necessary to store Ru ware glaze, open the sealing cap of the feed inlet 4 on the top surface of the top cover 3 and pour the glaze into the body of the jar 1 through the feed inlet 4. At this time, the drive motor 5 is in the off state, and the glaze is temporarily placed in the body of the jar 1.
[0044] During storage, to prevent glaze stratification, the drive motor 5 installed on the top surface of the top cover 3 is activated. The output end of the drive motor 5 penetrates the surface of the top cover 3, driving the spiral conveyor paddle 14 to rotate. One end of the spiral conveyor paddle 14 extends into the inside of the conveying cylinder 10. During rotation, it can lift and convey the glaze at the bottom of the conveying cylinder 10 upwards, so that the glaze forms an upward flow within the conveying cylinder 10.
[0045] Meanwhile, the mounting rod 9 installed on the outer surface of the spiral conveyor 14 rotates along with the spiral conveyor 14, and the multiple stirring rods 12 installed on the outer surface of the mounting rod 9 also rotate accordingly. These stirring rods 12 stir the glaze outside the conveying cylinder 10, causing the glaze to circulate inside the tank body 1. The multiple equidistant filter holes 15 penetrating the circumference of the conveying cylinder 10 allow the glaze inside and outside the conveying cylinder 10 to circulate, further promoting uniform mixing of the glaze and effectively preventing stratification and sedimentation of the glaze.
[0046] In addition, the brush 13 installed on the inner wall surface of the mounting rod 9 contacts the outer wall of the conveying cylinder 10. When the mounting rod 9 rotates, the brush 13 will clean the outer wall of the conveying cylinder 10 to prevent the filter hole 15 from being blocked by the glaze and ensure the normal flow of the glaze inside and outside the conveying cylinder 10.
[0047] When glaze is needed, open valve 6 on discharge pipe 7. Since a conical hopper 8 is installed through the bottom of the tank body 1, and the bottom of the conical hopper 8 is connected to discharge pipe 7, the glaze will flow along the conical hopper 8 towards discharge pipe 7 under gravity, and then flow out through discharge pipe 7. By controlling the opening degree of valve 6, the amount of glaze used can be precisely controlled. The process is simple and convenient, and it ensures that the glaze at the bottom is fully utilized, reducing glaze waste.
[0048] The controller 2 installed on the outer surface of the material tank body 1 can control the drive motor 5, such as adjusting the speed of the drive motor 5, thereby adjusting the force and speed of glaze stirring and conveying according to actual needs to meet different usage scenarios.
[0049] It should be noted that all components used in this application are standard parts that can be purchased from the market. The specific connection methods of each part adopt conventional methods such as bolts, rivets and welding that are mature in the prior art. The mechanical parts and electrical equipment adopt conventional models in the prior art. The circuit connection adopts conventional connection methods in the prior art. The electrical equipment is connected to an external safe power source. These will not be described in detail here.
[0050] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A Ru ware glaze container for preventing delamination, comprising a container body (1), characterized in that, Inside the material tank body (1), a conveying cylinder (10) is installed via a fixing rod (11). A top cover (3) is installed on the top surface of the material tank body (1). A drive motor (5) is installed on the top surface of the top cover (3). The output end of the drive motor (5) passes through the surface of the top cover (3) and is connected to a spiral conveying paddle (14). One end of the spiral conveying paddle (14) extends into the inside of the conveying cylinder (10). An installation rod (9) is installed on the outer surface of the spiral conveying paddle (14). A stirring rod (12) is provided on the outer surface of the installation rod (9).
2. The Ru ware glaze container for preventing delamination according to claim 1, characterized in that, A conical hopper (8) is installed through the bottom of the material tank body (1), and a discharge pipe (7) is connected through the bottom of the conical hopper (8). A valve (6) is installed on the discharge pipe (7).
3. The Ru ware glaze container for preventing delamination according to claim 1, characterized in that, The conveying cylinder (10) has filter holes (15) through its periphery, and multiple filter holes (15) are provided, and the multiple filter holes (15) are equally spaced on the periphery of the conveying cylinder (10).
4. The Ru ware glaze jar for preventing delamination according to claim 1, characterized in that, A brush (13) is installed on the inner wall surface of the mounting rod (9), and the brush (13) is in contact with the outer wall of the conveying cylinder (10).
5. A Ru ware glaze container for preventing delamination according to claim 1, characterized in that, Multiple stirring rods (12) are installed, and the multiple stirring rods (12) are installed at equal intervals on the outer surface of the mounting rod.
6. A Ru ware glaze jar for preventing delamination according to claim 1, characterized in that, The top surface of the top cover (3) is provided with a feed inlet (4), and the feed inlet (4) is provided with a sealing cover.
7. A Ru ware glaze jar for preventing delamination according to claim 1, characterized in that, A controller (2) is installed on the outer surface of the tank body (1).