Convenient ceramic marmite manufacturing drying box
By designing a circulating processing component and an inlet/outlet component, the problem of frequent temperature rises and falls during the drying process of ceramic clay pots is solved, realizing the cyclical processing of hot drying, preheating, and cooling, which improves drying efficiency and reduces energy consumption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FENGFENG MINING AREA BOXING PORCELAIN CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-05-12
AI Technical Summary
Existing ceramic casserole drying equipment requires frequent switching between low and high temperatures, resulting in high energy consumption and low drying efficiency.
The system employs a circulating processing component and an inlet/outlet component. A lifting hydraulic cylinder drives the isolation plate to rise and fall, an electric heating mesh plate heats the plate, a rotary motor rotates the transposition plate, and an intake fan and intake linkage pipe work together to create turbulence, achieving a circulating process of heat drying, preheating, and cooling. This reduces the number of heating and cooling steps and improves drying efficiency.
This improved the uniformity and efficiency of the hot drying process in the clay pot, reduced energy consumption, shortened waiting time, and increased drying efficiency.
Smart Images

Figure CN224230517U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic casserole production technology, specifically a convenient drying box for ceramic casserole production. Background Technology
[0002] Sand is a type of cooking utensil. Traditional casserole is a ceramic product made from raw materials such as quartz, feldspar, and clay, which are not good conductors of heat. It is fired at high temperatures and has the characteristics of being breathable, absorbent, having uniform heat transfer, and slow heat dissipation. The production process of casserole includes raw material preparation, shaping, molding, drying, glazing, and firing.
[0003] However, when drying clay pots, existing equipment generally places the low-temperature clay pot directly into the hot drying oven and removes it directly after the drying is complete. This results in the need to repeat the process of going from low temperature to high temperature and then from high temperature to low temperature every time the pot is dried. This requires more energy to heat the pot and takes longer, which affects the drying efficiency. Utility Model Content
[0004] This invention provides a convenient drying box for ceramic casserole making, which can effectively solve the problem mentioned in the background art that when drying casserole, the existing equipment generally places the low-temperature casserole directly into the hot drying box and takes it out directly after the hot drying is completed. This results in the need to repeat the process of going from low temperature to high temperature and then from high temperature to low temperature every time the hot drying is completed. This requires more energy to heat the casserole and takes longer to wait, which affects the drying efficiency.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a convenient drying box for making ceramic casseroles, including a heat-drying isolation box, wherein a circulation processing component is provided on the side of the heat-drying isolation box;
[0006] The circulation processing component includes a lifting hydraulic cylinder;
[0007] Several lifting hydraulic cylinders are symmetrically installed at equal intervals on the side of the hot drying isolation box, and lifting isolation plates are installed on the top of two of the lifting hydraulic cylinders;
[0008] The top and bottom of the inner side of the hot drying isolation box are each provided with several air inlets at equal intervals, and electric heating mesh plates are embedded in the top and bottom of the middle part of the inner side of the hot drying isolation box.
[0009] The inner side of the hot drying isolation box is symmetrically connected with an exhaust pipe. A rotary motor is symmetrically mounted at one end of the hot drying isolation box through a motor base. The output shaft of the rotary motor is clamped to a multi-hole transposition plate. An air intake fan is clamped to the inner side of both the exhaust pipe and the multi-hole transposition plate.
[0010] A drying treatment box is snapped onto one side of the top of the hot drying isolation box, and exhaust treatment pipes are connected through both ends of the hot drying isolation box.
[0011] Both the hot air isolation chamber and the drying treatment chamber have an air intake linkage pipe embedded at one end, and a limiting valve is embedded at one end of the air intake linkage pipe.
[0012] According to the above technical solution, the lifting isolation plate is slidably connected to the hot drying isolation box, and the porous transposition plate is rotatably installed inside the hot drying isolation box.
[0013] According to the above technical solution, one end of the exhaust treatment pipe is installed through one end of the drying treatment box;
[0014] The input terminals of the lifting hydraulic cylinder, electric heating plate, rotary motor, air intake fan, and limiting valve are all electrically connected to the output terminal of an external power supply.
[0015] According to the above technical solution, an inlet / outlet component is installed at one end of the hot drying isolation box;
[0016] The inlet / outlet assembly includes a multi-mesh hot air drying rack;
[0017] The hot drying isolation box has a multi-mesh hot drying rack that is slidably installed inside, and an outward push rod is embedded in the bottom of the inner side of the multi-mesh hot drying rack.
[0018] Both ends of the hot drying isolation box are fitted with inlet and outlet fixed platforms, and one of the inlet and outlet fixed platforms is symmetrically fitted with a movable electric slide rail at the top. A movable processing frame is installed at the top of the movable electric slide rail via a slide rail seat.
[0019] One end of the mobile processing frame is equipped with a switching motor via a motor base, and the top of the other entry / exit fixed platform is equipped with an external electric slide rail. Both the output shaft of the switching motor and the top of the external electric slide rail are engaged with a linkage electromagnetic frame.
[0020] According to the above technical solution, the mobile processing frame is slidably installed on the top of the entry and exit fixed platform, and the linkage electromagnetic frame is slidably installed on the top of the entry and exit fixed platform.
[0021] According to the above technical solution, the longitudinal section of the inlet / outlet fixed platform is L-shaped;
[0022] The input terminals of the movable electric slide rail, the switching motor, the external electric slide rail, and the linkage electromagnetic frame are all electrically connected to the output terminal of an external power supply.
[0023] Compared with the prior art, the advantages of this utility model are: the structure of this utility model is scientific and reasonable, and it is safe and convenient to use.
[0024] 1. Equipped with a circulation processing component, a lifting hydraulic cylinder drives the lifting isolation plate to rise and fall, providing heat insulation to the hot drying isolation chamber. An electric heating grid heats the air inside the chamber. A rotary motor drives a perforated transposition plate to rotate, coordinating with an intake fan and intake linkage pipe to heat-dry the clay pot. Symmetrical bidirectional airflow at the top and bottom creates turbulence, and the changing hot air intake angle ensures steady heat drying, guaranteeing uniform heating of the clay pot. A limiting valve controls the intake linkage pipe, which, along with the intake fan and exhaust pipe, draws external cold air to cool the clay pot. The cooled hot air is then discharged into the unheated clay pot to preheat it. This, combined with the air intake and exhaust pipes, drives airflow circulation for uniform heating. This process isolates multiple steps during the clay pot heating process, allowing for simultaneous heating, preheating, and cooling. The cooled hot air is then discharged into the preheating area, eliminating the need for repeated heating and cooling cycles each time. This reduces waiting time, minimizes resource waste, improves heating efficiency, lowers energy consumption, and enhances drying efficiency.
[0025] 2. Equipped with an inlet / outlet assembly, the multi-mesh hot drying rack is placed on top of the inlet / outlet fixed platform. A switching motor drives the linkage electromagnetic frame to rotate, and a moving electric slide rail drives the moving processing frame and the linkage electromagnetic frame to push the multi-mesh hot drying rack into the hot drying isolation chamber, achieving steady feeding. The linkage electromagnetic frame pushes the outward pushing processing rod to move, which in turn pushes the multi-mesh hot drying rack to move, realizing the layer-by-layer pushing of multiple sets of multi-mesh hot drying racks inside. In conjunction with the outward discharge electric slide rail, the linkage electromagnetic frame pulls the multi-mesh hot drying rack out of the hot drying isolation chamber, achieving discharge. By separating the feeding and discharging processes and isolating multiple feeding and discharging sections, the stability of the internal heat preservation feeding and discharging process is ensured, heat loss is reduced, and energy is effectively saved, thus reducing energy consumption. Attached Figure Description
[0026] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.
[0027] In the attached diagram:
[0028] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0029] Figure 2 This is a schematic diagram of the structure of the recycling processing component of this utility model;
[0030] Figure 3 This is a schematic diagram of the installation structure of the rotary motor of this utility model;
[0031] Figure 4This is a schematic diagram of the structure of the inlet / outlet component of this utility model;
[0032] Figure 5 This is a schematic diagram of the installation structure of the entry / exit fixed platform of this utility model;
[0033] Numbered in the diagram: 1. Heat-drying isolation oven;
[0034] 2. Circulation processing assembly; 201. Lifting hydraulic cylinder; 202. Lifting isolation plate; 203. Air inlet; 204. Heating grid plate; 205. Exhaust connecting pipe; 206. Rotary motor; 207. Perforated transposition plate; 208. Air intake fan; 209. Drying chamber; 210. Exhaust processing pipe; 211. Air intake linkage pipe; 212. Restriction valve;
[0035] 3. Inlet / outlet assembly; 301. Multi-mesh hot drying rack; 302. Outward push processing rod; 303. Inlet / outlet fixed platform; 304. Moving electric slide rail; 305. Moving processing rack; 306. Switching motor; 307. Outward discharge electric slide rail; 308. Linkage electromagnetic rack. Detailed Implementation
[0036] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0037] Example: Figure 1-5 As shown, this utility model provides a technical solution: a convenient drying box for making ceramic casseroles, including a heat-drying isolation box 1, and a circulation processing component 2 is provided on the side of the heat-drying isolation box 1.
[0038] The circulation processing component 2 includes a lifting hydraulic cylinder 201, a lifting isolation plate 202, an air inlet 203, an electric heating grid plate 204, an exhaust connecting pipe 205, a rotary motor 206, a multi-hole shifting plate 207, an air inlet fan 208, a drying processing box 209, an exhaust processing pipe 210, an air inlet linkage pipe 211, and a limiting valve 212;
[0039] Several lifting hydraulic cylinders 201 are symmetrically and equidistantly installed on the side of the hot drying isolation box 1. Lifting isolation plates 202 are installed on the top of two lifting hydraulic cylinders 201. The lifting isolation plates 202 are slidably connected to the hot drying isolation box 1 to achieve isolation sealing and heat insulation treatment.
[0040] The top and bottom of the inner side of the hot drying isolation box 1 are provided with several air inlets 203 at equal intervals, and electric heating mesh plates 204 are embedded in the top and bottom of the middle part of the inner side of the hot drying isolation box 1.
[0041] An exhaust pipe 205 is symmetrically connected through the middle of the inner side of the hot drying isolation box 1. A rotary motor 206 is symmetrically mounted at one end of the hot drying isolation box 1 through a motor base. The output shaft of the rotary motor 206 is snapped with a perforated transposition plate 207. The perforated transposition plate 207 is rotatably installed inside the hot drying isolation box 1 to realize rotational transposition air intake and ensure the uniformity of hot drying. An air intake fan 208 is snapped into the inner side of both the exhaust pipe 205 and the perforated transposition plate 207.
[0042] A drying treatment box 209 is snapped onto one side of the top of the hot drying isolation box 1. Both ends of the hot drying isolation box 1 are connected to exhaust treatment pipes 210. One end of the exhaust treatment pipe 210 is installed through one end of the drying treatment box 209 to achieve exhaust circulation and ensure the drying treatment of humid air.
[0043] Both the hot air isolation chamber 1 and the drying treatment chamber 209 have an air intake linkage pipe 211 embedded at one end, and a limiting valve 212 is embedded at one end of the air intake linkage pipe 211.
[0044] To ensure stable operation of the equipment, the input terminals of the lifting hydraulic cylinder 201, the electric heating plate 204, the rotary motor 206, the air intake fan 208, and the limiting valve 212 are all electrically connected to the output terminal of an external power supply.
[0045] The hot drying isolation chamber 1 is equipped with an inlet / outlet component 3 at one end;
[0046] The inlet / outlet assembly 3 includes a multi-mesh hot drying rack 301, an outward pushing processing rod 302, an inlet / outlet fixed platform 303, a movable electric slide rail 304, a movable processing rack 305, a switching motor 306, an outward discharge electric slide rail 307, and a linkage electromagnetic rack 308.
[0047] A multi-mesh hot drying rack 301 is slidably installed inside the hot drying isolation box 1, and an outward push rod 302 is embedded in the bottom of the inner side of the multi-mesh hot drying rack 301.
[0048] Both ends of the hot drying isolation box 1 are clamped with inlet and outlet fixed platforms 303. The longitudinal section of the inlet and outlet fixed platform 303 is L-shaped to ensure the stability of the clamping support and combination connection. One of the inlet and outlet fixed platforms 303 is symmetrically clamped with a movable electric slide rail 304 at the top. The movable electric slide rail 304 is mounted with a movable processing frame 305 through the slide rail seat at the top.
[0049] One end of the mobile processing frame 305 is equipped with a switching motor 306 via a motor mount, and the other end of the inlet / outlet fixed platform 303 is equipped with an external discharge electric slide rail 307. The output shaft of the switching motor 306 and the top of the external discharge electric slide rail 307 are both snapped with a linkage electromagnetic frame 308. The mobile processing frame 305 is slidably installed on the top of the inlet / outlet fixed platform 303, and the linkage electromagnetic frame 308 is slidably installed on the top of the inlet / outlet fixed platform 303, so as to realize the material pushing and changing processing and ensure the stability of material feeding and discharging.
[0050] To ensure stable operation of the equipment, the input terminals of the moving electric slide rail 304, the switching motor 306, the external electric slide rail 307, and the linkage electromagnetic frame 308 are all electrically connected to the output terminal of the external power supply.
[0051] The working principle and usage process of this utility model are as follows: When drying ceramic casseroles, the workers place the manufactured casseroles one by one inside the multi-mesh hot drying rack 301. The multi-mesh hot drying rack 301 is placed on the top of the inlet and outlet fixed platform 303. The switching motor 306 drives the linkage electromagnetic frame 308 to rotate, and the moving electric slide rail 304 drives the moving processing rack 305 to move, so that one end of the moving processing rack 305 and the linkage electromagnetic frame 308 are both attached to the side of the multi-mesh hot drying rack 301. Then, the moving electric slide rail 304 drives the moving processing rack 305 and the linkage electromagnetic frame 308 to push the multi-mesh hot drying rack 301 along the inlet and outlet fixed platform 303. The lifting hydraulic cylinder 201 drives the lifting isolation plate 202 to rise, opening the hot drying isolation box 1 and pushing the multi-mesh hot drying rack 301 into the inside of the hot drying isolation box 1 to achieve steady feeding processing.
[0052] When the multi-mesh hot drying rack 301 moves to the hot drying position, the lifting hydraulic cylinder 201 drives the lifting isolation plate 202 to move down and insert it into the inside of the hot drying isolation box 1. The electric heating mesh plate 204 heats the air inside the hot drying isolation box 1. The air intake fan 208 drives the hot air inside the hot drying isolation box 1 to blow directly onto the position of the multi-mesh hot drying rack 301 along the perforated transposition plate 207. Air is simultaneously intaked from the top and bottom, and the airflow is counteracted to create turbulence inside. This turbulence flows arbitrarily, impacting and heating the casserole. At the same time, the rotary motor 206 drives the perforated transposition plate 207 along the hot drying isolation box 1. Rotating to change the air intake position, when the air intake fan 208 is used to intake air inside, the air intake linkage pipe 211 at the position of the drying treatment box 209 is controlled by the limiting valve 212. After the external air is dried by the silica gel desiccant in the drying treatment box 209, it enters the hot drying isolation box 1 through the air intake linkage pipe 211 and is heated again, thereby continuously drying the casserole. The humid air after hot drying enters the inside of the drying treatment box 209 through the exhaust treatment pipe 210. At this time, the high temperature humid air is dehydrated by the silica gel desiccant and enters the inside of the hot drying isolation box 1 through the air intake linkage pipe 211 again to achieve heat circulation treatment.
[0053] After the hot drying is completed, the lifting hydraulic cylinder 201 drives the lifting isolation plate 202 to rise. The switching motor 306 drives the linkage electromagnetic frame 308 to rotate. The moving electric slide rail 304 drives the moving processing frame 305 and the linkage electromagnetic frame 308 to push the outward processing rod 302 along the multi-net hot drying rack 301, thereby pushing the multi-net hot drying rack 301 from the hot drying position to the cooling position. At this time, the limiting valve 212 opens the air intake linkage pipe 211, and with the help of the exhaust series pipe 205 and the air intake fan 208, the external cold air is used to cool the casserole. The cooled hot air enters the feeding preheating position along the exhaust series pipe 205 to heat the feeding material, thereby achieving the preheating treatment of the casserole.
[0054] After the casserole is cooled, the linkage electromagnetic frame 308 and the multi-mesh hot drying rack 301 are magnetically combined. The external electric slide rail 307 drives the linkage electromagnetic frame 308 to move along the inlet and outlet fixed platform 303, and pulls the multi-mesh hot drying rack 301 out of the hot drying isolation box 1 to realize the discharge process.
[0055] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A convenient drying oven for making ceramic casseroles, comprising a heat-drying isolation chamber (1), characterized in that: A circulation processing component (2) is provided on the side of the hot drying isolation box (1); The circulation processing component (2) includes a lifting hydraulic cylinder (201); The hot drying isolation box (1) has several lifting hydraulic cylinders (201) installed symmetrically at equal intervals on its side ends, and lifting isolation plates (202) are installed on the top of two of the lifting hydraulic cylinders (201); The hot drying isolation box (1) has several air inlets (203) at equal intervals at the top and bottom of the inner side, and electric heating mesh plates (204) are embedded in the top and bottom of the middle part of the inner side of the hot drying isolation box (1). The inner middle of the hot drying isolation box (1) is symmetrically connected with an exhaust pipe (205). A rotary motor (206) is symmetrically mounted at one end of the hot drying isolation box (1) through a motor base. The output shaft of the rotary motor (206) is snapped with a perforated transposition plate (207). An air intake fan (208) is snapped into the inner side of both the exhaust pipe (205) and the perforated transposition plate (207). The top side of the hot drying isolation box (1) is fitted with a drying treatment box (209), and both ends of the hot drying isolation box (1) are connected through exhaust treatment pipes (210); Both the hot air drying isolation box (1) and the drying treatment box (209) have an air intake linkage pipe (211) embedded at one end, and a limiting valve (212) is embedded at one end of the air intake linkage pipe (211).
2. The convenient ceramic casserole drying oven according to claim 1, characterized in that, The lifting isolation plate (202) is slidably connected to the hot drying isolation box (1), and the porous transposition plate (207) is rotatably installed inside the hot drying isolation box (1).
3. The convenient ceramic casserole drying oven according to claim 1, characterized in that, One end of the exhaust treatment pipe (210) is installed through one end of the drying treatment box (209); The input terminals of the lifting hydraulic cylinder (201), the electric heating plate (204), the rotary motor (206), the air intake fan (208), and the limiting valve (212) are all electrically connected to the output terminal of an external power supply.
4. The convenient ceramic casserole drying oven according to claim 3, characterized in that, The hot drying isolation box (1) is equipped with an inlet / outlet component (3) at one end; The inlet / outlet assembly (3) includes a multi-mesh hot air drying rack (301); The hot drying isolation box (1) has a multi-mesh hot drying rack (301) slidably installed inside, and an outward push rod (302) is embedded at the bottom of the inner side of the multi-mesh hot drying rack (301). Both ends of the hot drying isolation box (1) are connected to the inlet and outlet fixed platform (303), and the top of one of the inlet and outlet fixed platforms (303) is symmetrically connected to the movable electric slide rail (304). The top of the movable electric slide rail (304) is equipped with a movable processing frame (305) through the slide rail seat. One end of the mobile processing rack (305) is equipped with a switching motor (306) via a motor mount, and the top of the other entry and exit fixed platform (303) is equipped with an external electric slide rail (307). The output shaft of the switching motor (306) and the top of the external electric slide rail (307) are both snapped with a linkage electromagnetic frame (308).
5. A convenient drying oven for making ceramic casseroles according to claim 4, characterized in that, The mobile processing frame (305) is slidably installed on the top of the entry and exit fixed platform (303), and the linkage electromagnetic frame (308) is slidably installed on the top of the entry and exit fixed platform (303).
6. A convenient drying oven for making ceramic casseroles according to claim 4, characterized in that, The longitudinal section of the inlet / outlet fixed platform (303) is L-shaped; The input terminals of the movable electric slide rail (304), the switching motor (306), the external electric slide rail (307), and the linkage electromagnetic frame (308) are all electrically connected to the output terminal of the external power supply.