Purifying device for zirconium oxide fiberboard
By combining a stirring shell driven by a dual-shaft motor with an electric heating tube, the problems of uneven heating and multiple fans in the zirconia fiber board purification device are solved, achieving uniform heating and simplified operation.
Patent Information
- Application Number
- CN202423058260.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-11
AI Technical Summary
In traditional zirconia fiberboard purification devices, uneven heat distribution in the heating device leads to inconsistent purification efficiency and quality, and the need for multiple fans to assist ventilation increases the complexity of the equipment and operation.
The combination of a stirring shell and an electric heating tube driven by a dual-shaft motor achieves uniform stirring and heating of zirconia fibers, and impurities are discharged through an integrated fan blade, simplifying the equipment structure.
This technology enables uniform heating and purification of zirconia fibers, improving purification efficiency and quality, simplifying the operation process, and reducing equipment complexity and maintenance costs.
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Figure CN223481361U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of purification equipment, specifically a purification equipment for zirconia fiberboard. Background Technology
[0002] Zirconia fiberboard is a board made of zirconia fibers. During the manufacturing process, if the raw zirconia fibers used contain a large number of impurities, the performance of the resulting fiberboard may be affected. To improve the performance of zirconia fiberboard, such as high-temperature resistance, chemical stability, oxidation resistance, and corrosion resistance, it is sometimes necessary to purify the raw materials. Purification removes impurities from the raw materials, thereby improving the purity and performance of the fiberboard. During the purification process, heating is used to expel internal impurities, thus increasing purity. Due to the different types of internal impurities, various temperature ranges are required to achieve the purpose of volatilizing these impurities.
[0003] According to publicly available patent 201410569551.X, an apparatus for purifying zirconia fibers includes a hollow chamber and a temperature control device, a PLC controller, a probe, a thermometer, and an anemometer mounted on the chamber. The temperature control device, probe, thermometer, and anemometer are signal-connected to the PLC controller. Several fans are fixedly connected to the top of the chamber, and several heating tubes are fixedly connected to the chamber. The fans are signal-connected to the temperature control device. This structure prevents air convection within the chamber, allowing the temperature control device to precisely control the temperature and achieve gradient heating. Different impurities volatilize at different temperatures, and the fans promptly remove these volatilized impurities, thus ensuring the purity of the zirconia fibers and improving product quality.
[0004] However, in traditional zirconia fiberboard purification equipment, the heating device typically consists of multiple heating pipes arranged on the outside of the chamber. These heating pipes are fixed in position and mostly close to the surface of the chamber. Due to the uneven heat distribution received by the zirconia fibers in different locations inside the chamber (especially areas near and away from the inner wall), this uneven heating not only affects the purification efficiency and quality of the zirconia fibers but may also lead to inconsistencies in fiber properties. Furthermore, traditional purification equipment often requires multiple fans to assist in ventilation and impurity removal when removing impurities generated during the purification process. This not only increases the complexity and maintenance costs of the equipment but also requires operators to monitor and manage multiple fans simultaneously, undoubtedly increasing operational complexity and workload, and reducing the convenience and efficiency of the entire purification process. Therefore, a new technical solution is needed to address these issues. Utility Model Content
[0005] The purpose of this invention is to overcome the shortcomings of the existing technology, adapt to practical needs, and provide a purification device for zirconia fiberboard. This addresses the problem that in current traditional zirconia fiberboard purification devices, the heating device typically consists of multiple heating pipes arranged outside the chamber. These heating pipes are fixed in position and mostly close to the chamber surface. Due to the uneven heat distribution received by the zirconia fibers at different locations inside the chamber (especially areas near and away from the inner wall), this uneven heating not only affects the purification efficiency and quality of the zirconia fibers but may also lead to inconsistent fiber properties. Furthermore, traditional purification devices often require multiple fans to assist in ventilation and impurity removal when removing impurities generated during the purification process. This not only increases the complexity and maintenance cost of the equipment but also requires operators to monitor and manage multiple fans simultaneously, undoubtedly increasing the complexity and workload of operation and reducing the convenience and efficiency of the entire purification process.
[0006] To achieve the purpose of this utility model, the technical solution adopted by this utility model is as follows: a purification device for zirconia fiber board is designed, including a device box, a control host is installed on the side of the device box, and a rotating wheel is installed at each of the four corners of the bottom of the device box. A circular hole is opened on the top of the device box, a filter screen is installed inside the circular hole, and a purification component is set inside the top of the filter screen.
[0007] Preferably, the purification assembly includes a dual-axis motor, a first rotating rod, a threaded column, a stirring housing, and a blower blade.
[0008] Preferably, the dual-axis motor is installed in the mounting hole, and one end of the dual-axis motor located inside the device housing is connected to a first rotating rod. The side of the first rotating rod is provided with multiple threaded grooves, and one end of a threaded column is threadedly connected inside the multiple threaded grooves. The other end of the threaded column is fixed to an agitator housing.
[0009] Preferably, multiple heating tubes are installed on both sides inside the stirring shell, and a battery is installed in the middle of the stirring shell, with a USB charging port on the surface of the battery.
[0010] Preferably, one end of the dual-axis motor extending out of the housing is connected to a second rotating rod, and a fan blade is installed on the top of the second rotating rod.
[0011] Preferably, the front end of the device housing is provided with a housing baffle, the housing baffle is connected to the device housing by a hinge, and a handle is fixed to the front surface of the housing baffle.
[0012] Compared with the prior art, the beneficial effects of the present invention are:
[0013] 1. This utility model, through the combination of a dual-axis motor, a rotating rod, and a stirring shell, not only utilizes the dual-axis motor to drive multiple stirring shells to rotate within the device housing, thereby agitating the zirconia fibers within the housing and ensuring uniform distribution of the zirconia fibers at different locations, but also, because a battery and heating element are installed inside the stirring shell, heat is generated during the agitation of the zirconia fibers. This heat is then used to purify the zirconia fibers at different locations during the agitation process, improving the heating and purification effect. This solves the technical problem in traditional zirconia fiber board purification devices, where the heating device typically consists of multiple heating tubes arranged outside the housing. These heating tubes are fixed in position and mostly close to the housing surface. Due to the uneven heat distribution received by the zirconia fibers at different locations inside the housing (especially areas near and away from the inner wall), this uneven heating not only affects the purification efficiency and quality of the zirconia fibers but may also lead to inconsistent fiber properties.
[0014] 2. This utility model combines a dual-axis motor, a second rotating rod, and a blower blade. During the process of the dual-axis motor driving the stirring housing to agitate the zirconia fiber, it also drives the second rotating rod and blower blade at the top to rotate. The blower blade can then blow the heated impurities upwards. This integrated agitation and impurity removal mechanism eliminates the need for multiple motors, solving the problem that traditional purification devices often require multiple fans to assist in ventilation and impurity removal. This not only increases the complexity and maintenance cost of the equipment but also requires operators to monitor and manage multiple fans simultaneously, undoubtedly increasing operational complexity and workload, and reducing the convenience and efficiency of the entire purification process. Attached Figure Description
[0015] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0016] Figure 2 This is a schematic diagram of the internal structure of the device housing of this utility model;
[0017] Figure 3 This is a schematic diagram of the internal structure of the stirring shell of this utility model.
[0018] In the diagram: 1. Device housing; 101. Hinge; 102. Housing baffle; 103. Handle; 104. Control unit; 105. Rotary wheel; 2. Circular hole; 201. Mounting hole; 202. Dual-axis motor; 203. Fan blade; 204. Filter screen; 205. Second rotating rod; 206. First rotating rod; 207. Threaded column; 208. Agitator housing; 3. Battery; 301. USB charging port; 302. Heating element. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments:
[0020] Example 1: A purification device for zirconia fiberboard, see [link to example]. Figures 1 to 3 The device includes a housing 1, a control host 104 mounted on the side of the housing 1, and four rotating wheels 105 mounted at the four corners of the bottom of the housing 1. A circular hole 2 is opened at the top of the housing 1, and a filter screen 204 is installed inside the circular hole 2. A mounting hole 201 is opened at the top of the filter screen 204, and a purification component is installed inside the mounting hole 201. Zirconia fibers are first placed into the housing 1. After placement, when purification of the zirconia fibers is required, a dual-axis motor 202 is turned on. The dual-axis motor 202 drives a first rotating rod 206, which in turn drives a threaded column 207 and multiple agitator housings 208 to rotate. The multiple agitator housings 208 agitate the zirconia fibers inside the housing 1, ensuring even distribution of the zirconia fibers at different locations. Furthermore, due to the agitation... The housing 208 is equipped with a battery 3 and a heating element 302. During the stirring of the zirconia fiber by the housing 208, the heating element 302 inside the housing 208 is turned on to generate heat. This heats and purifies the zirconia fiber at different locations during the stirring process, improving the heating and purification effect. This solves the problem in traditional zirconia fiber board purification devices, where the heating device usually consists of multiple heating tubes arranged outside the box. These heating tubes are fixed in position and mostly close to the surface of the box. Because the heat distribution of the zirconia fiber at different locations inside the box (especially the areas near and away from the inner wall) is uneven, this uneven heating not only affects the purification efficiency and quality of the zirconia fiber, but may also lead to inconsistent fiber properties.
[0021] For details, see Figure 1 and Figure 2 The purification components include a dual-shaft motor 202, a first rotating rod 206, a threaded column 207, a stirring shell 208, and a blower blade 203.
[0022] Further, see Figure 2 The dual-axis motor 202 is installed in the mounting hole 201. One end of the dual-axis motor 202 located in the device housing 1 is connected to the first rotating rod 206. The side of the first rotating rod 206 is provided with multiple threaded grooves. One end of the threaded column 207 is threadedly connected to the multiple threaded grooves. The other end of the threaded column 207 is fixed to the agitator housing 208.
[0023] It is worth noting that, see Figure 3 Multiple heating elements 302 are installed on both sides inside the stirring housing 208, and a battery 3 is installed in the middle of the stirring housing 208. A USB charging port 301 is provided on the surface of the battery 3.
[0024] It is worth noting that, see Figure 1 and Figure 2 One end of the dual-axis motor 202 extending into the housing 1 is connected to a second rotating rod 205. A blower blade 203 is mounted on the top of the second rotating rod 205. During the process of the dual-axis motor 202 driving the stirring housing 208 to stir the zirconia fiber, it also drives the second rotating rod 205 and the blower blade 203 to rotate. The blower blade 203 can quickly blow the heated impurities upwards. The stirring mechanism and the impurity removal mechanism are integrated into one unit, eliminating the need for multiple motors. This solves the problem that traditional purification devices often require multiple fans to assist in ventilation and impurity removal when removing impurities generated during the purification process. This not only increases the complexity and maintenance cost of the equipment, but also requires operators to monitor and manage multiple fans simultaneously, undoubtedly increasing the complexity and workload of operation and reducing the convenience and efficiency of the entire purification process.
[0025] It is worth mentioning that, see Figure 1 The front end of the device housing 1 is provided with a housing baffle 102, which is connected to the device housing 1 by a hinge 101. A handle 103 is fixed on the front surface of the housing baffle 102.
[0026] When using a zirconia fiber board purification device, the zirconia fiber is first placed into the device housing 1. After placement, when purification of the zirconia fiber is required, the dual-shaft motor 202 is turned on. The dual-shaft motor 202 drives the first rotating rod 206, which in turn drives the threaded column 207 and multiple agitator housings 208 to rotate. The multiple agitator housings 208 agitate the zirconia fiber inside the device housing 1, ensuring that the zirconia fiber is evenly distributed in different positions. Furthermore, since a battery 3 and a heating element 302 are installed inside the agitator housing 208, it is possible to... During the stirring of the zirconia fiber by the stirring shell 208, the electric heating tube 302 inside the stirring shell 208 is turned on to generate heat, thereby heating and purifying the zirconia fiber at different positions during the stirring process, improving the heating and purification effect. During the stirring of the zirconia fiber by the dual-shaft motor 202, the second rotating rod 205 at the top and the blower blade 203 will also be driven to rotate. The blower blade 203 can be used to quickly blow the heated impurities upward. The stirring mechanism and the impurity removal mechanism are integrated into one unit, eliminating the need for multiple motors.
[0027] In addition, all components designed in this utility model are general standard parts or components known to those skilled in the art. Their structure and principle can be learned by those skilled in the art through technical manuals or conventional experimental methods. Those skilled in the art can fully implement them, so there is no need to elaborate. The content protected by this utility model does not involve improvements to the internal structure and method.
[0028] The embodiments disclosed in the present invention are preferred embodiments, but are not limited to them. Ordinary technicians in this field can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. As long as they do not deviate from the spirit of the present invention, they are all within the scope of protection of the present invention.
Claims
1. A purification device for zirconia fiberboard, comprising a device housing (1), wherein a control host (104) is mounted on the side of the device housing (1), and a rotating wheel (105) is mounted at each of the four corners of the bottom of the device housing (1), characterized in that, The device housing (1) has a round hole (2) at the top, and a filter screen (204) is installed inside the round hole (2). The filter screen (204) has an installation hole (201) at the top, and a purification component is installed inside the installation hole (201).
2. The purification apparatus for zirconia fiberboard as described in claim 1, characterized in that, The purification assembly includes a dual-axis motor (202), a first rotating rod (206), a threaded column (207), an agitator housing (208), and a blower blade (203).
3. The purification apparatus for zirconia fiberboard as described in claim 2, characterized in that, The dual-axis motor (202) is installed in the mounting hole (201). One end of the dual-axis motor (202) located in the device housing (1) is connected to a first rotating rod (206). The side of the first rotating rod (206) is provided with multiple threaded grooves. One end of a threaded column (207) is threadedly connected inside the multiple threaded grooves. The other end of the threaded column (207) is fixed to an agitator housing (208).
4. The purification apparatus for zirconia fiberboard as described in claim 2, characterized in that, Multiple heating elements (302) are installed on both sides inside the stirring housing (208), and a battery (3) is installed in the middle of the stirring housing (208). A USB charging port (301) is provided on the surface of the battery (3).
5. The purification apparatus for zirconia fiberboard as described in claim 2, characterized in that, One end of the dual-axis motor (202) extending out of the housing (1) is connected to a second rotating rod (205), and a fan blade (203) is installed on the top of the second rotating rod (205).
6. The purification apparatus for zirconium oxide fiberboard as described in claim 1, characterized in that, The device housing (1) has a housing baffle (102) at the front end. The housing baffle (102) is connected to the device housing (1) by a hinge (101). A handle (103) is fixed on the front surface of the housing baffle (102).
Citation Information
Patent Citations
Device used for purifying zirconia fibers
CN104975399A