Efficient sodium antimonate production equipment
Through the design of the rotary switching disk and the functional partition seat, the automated continuous production of sodium antimonate is achieved, which solves the problem of low automation level of existing equipment and improves production efficiency.
Patent Information
- Application Number
- CN202422534305.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-10-21
AI Technical Summary
The existing sodium antimonate production equipment has a low degree of automation, which makes the cleaning and drying process time-consuming and labor-intensive, affecting production efficiency.
The rotating switching disk and functional partition seat design are adopted to realize the automated continuous production of sodium antimonate. The loading, cleaning, drying and recycling are carried out in sequence through the rotating switching disk, and the continuous operation is realized by the drive motor and transmission gear system.
The method realizes the continuous production of sodium antimonate, improves the production efficiency, and has the characteristics of simple structure, high efficiency and convenience.
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Figure CN223352356U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of sodium antimonate production, in particular to high-efficiency sodium antimonate production equipment. Background Art
[0002] Sodium antimonate, a widely used antimony salt, is a promising fine chemical product. It is primarily used as a clarifier and decolorizer for high-grade glass, with increasing usage in television picture tube glass. It is a key electronic chemical raw material. It can also be used as a flame retardant and a whitening agent for enamel.
[0003] Sodium antimonate is obtained by crushing antimony blocks, mixing them with sodium nitrate, heating them, allowing air to react, and then leaching them with nitric acid. It can also be obtained by mixing crude antimony trioxide with hydrochloric acid, chlorinating with chlorine, hydrolyzing it, and neutralizing it with excess alkali. To obtain higher-purity sodium antimonate, the crude sodium antimonate is washed and dried.
[0004] CN117651836A discloses a cleaning and drying device that uses a cleaning liquid to clean and dry a powdered material composed of a high-molecular organic compound. The cleaning and drying device includes: a container; a rotatable stirring blade disposed in the container; a filter disposed in the container and capable of filtering and separating the material to be treated and the cleaning liquid; a heater disposed in the container and capable of heating the container; and a control device that rotates the stirring blade during cleaning and drying of the material to be treated, and operates the heater during drying of the material to be treated. The container includes: a container body; a material supply pipe that is connected to the container body and capable of supplying the material to be treated; a cleaning liquid supply pipe that is connected to the container body and capable of supplying the cleaning liquid; a material discharge pipe that is connected to the container body and capable of discharging the material to be treated; and a cleaning liquid discharge pipe that is connected to the container body and capable of discharging the cleaning liquid. The filter is disposed in the container body and is located upstream of the cleaning liquid discharge pipe. After the cleaning and drying process is completed, the device needs to be shut down to discharge the material to be treated and prepare for the next cleaning and loading.
[0005] Therefore, the cleaning and drying devices in the prior art require human participation in the cleaning and drying processes, and have a low degree of automation, which results in a time-consuming and labor-intensive cleaning and drying process, thereby affecting production efficiency and presenting certain deficiencies. Utility Model Content
[0006] The purpose of the utility model is to provide a high-efficiency sodium antimonate production equipment to achieve automatic and continuous operation of sodium antimonate and improve the production efficiency of sodium antimonate.
[0007] In order to solve the above technical problems, the utility model provides a high-efficiency sodium antimonate production equipment, including a support seat, a rotating switching disk and a functional partition seat;
[0008] The support seat is provided with a drainage cavity, a drying cavity and a recovery cavity along its length direction;
[0009] The rotating switching disk is rotatably mounted between the support seat and the functional partition seat through a slewing bearing. The rotating switching disk is distributed circumferentially and has a material trough, and a filter is provided at the bottom of the material trough. The rotating switching disk is externally connected to a rotating drive member.
[0010] The functional partition seat is provided with a filling cavity, a cleaning cavity, a drying cavity and a material collecting cavity along its length direction. The cleaning cavity, the drying cavity and the material collecting cavity are respectively coaxially arranged with the drainage cavity, the drying cavity and the recovery cavity.
[0011] Furthermore, a supporting foot is fixedly installed on the bottom of the support seat, and a fixing frame is connected between the support seat and the functional partition seat.
[0012] Furthermore, the bottom end of the drainage chamber is connected to a sewage drainage pipe, and the bottom end of the drying chamber is connected to a steam exhaust pipe.
[0013] Furthermore, a blower is connected to the bottom of the material collection chamber through a pipeline, and the blower lifts and collects the sodium antimonate through airflow.
[0014] Furthermore, a plurality of material troughs are provided, and the plurality of material troughs are evenly distributed on the circumference of the rotating switching disk. The material troughs are rotated by the rotating driving member and the functional areas are switched.
[0015] Furthermore, the rotary drive member includes a drive motor, a drive gear and a transmission gear ring;
[0016] The driving motor is fixedly mounted on the supporting seat;
[0017] The driving gear is mounted on the output shaft of the driving motor;
[0018] The transmission gear ring is fixedly mounted on the outer side wall of the rotary switching disk, and the transmission gear ring is meshedly connected with the driving gear.
[0019] Furthermore, the driving motor is a stepping motor.
[0020] Furthermore, a hopper is fixedly provided on the top of the injection cavity.
[0021] Furthermore, a material collecting pipe is provided at the top of the recovery chamber.
[0022] Compared with the prior art, the present invention has at least the following beneficial effects:
[0023] The utility model utilizes the rotation of the rotary switching disk to connect the supporting seat and the functional partition seat, thereby realizing the loading, cleaning, drying and recycling of sodium antimonate in sequence, realizing the continuous production of sodium antimonate, greatly improving the production efficiency of sodium antimonate, and having the characteristics of simple structure, high efficiency and convenience. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 This is a schematic diagram of the overall structure of the utility model's high-efficiency sodium antimonate production equipment;
[0025] Figure 2 This is a schematic diagram of the functional partition structure of the high-efficiency sodium antimonate production equipment of the utility model;
[0026] Figure 3 This is a schematic diagram of the support structure of the utility model's high-efficiency sodium antimonate production equipment;
[0027] Figure 4 This is a schematic diagram of the structure of the rotating switching disk of the high-efficiency sodium antimonate production equipment of the utility model.
[0028] In the figure: 1. Support seat; 2. Rotating switching disk; 3. Functional partition seat; 4. Drainage chamber; 5. Drying chamber; 6. Recovery chamber; 7. Material trough; 8. Filling chamber; 9. Cleaning chamber; 10. Drying chamber; 11. Material collection chamber; 12. Support foot; 13. Fixed frame; 14. Sewage drainage pipe; 15. Steam discharge pipe; 16. Blower; 17. Drive motor; 18. Drive gear; 19. Transmission gear ring; 20. Hopper; 21. Material collection pipe; 22. Filter. DETAILED DESCRIPTION
[0029] The following is a more detailed description of the high-efficiency sodium antimonate production equipment of the present invention, with reference to a schematic diagram, which shows a preferred embodiment of the present invention. It should be understood that those skilled in the art may modify the present invention described herein while still achieving the beneficial effects of the present invention. Therefore, the following description should be understood as a general guide for those skilled in the art and not as a limitation of the present invention.
[0030] The following paragraphs describe the present invention in more detail by way of example with reference to the accompanying drawings. The advantages and features of the present invention will become more apparent from the following description. It should be noted that the drawings are greatly simplified and not to exact scale, and are intended solely to facilitate and clearly illustrate the embodiments of the present invention.
[0031] like Figures 1 to 4 As shown, an embodiment of the present utility model proposes a high-efficiency sodium antimonate production device, including a support seat 1, a rotating switching disk 2 and a functional partition seat 3.
[0032] Specifically, the support base 1 is provided with a drainage cavity 4, a drying cavity 5 and a recovery cavity 6 along its length direction.
[0033] The rotating switching disk 2 is rotatably installed between the support seat 1 and the functional partition seat 3 through a slewing bearing. The rotating switching disk 2 is distributed in a circle and is provided with a material trough 7, and a filter screen 22 is provided at the bottom of the material trough 7. The rotating switching disk 2 is externally connected to a rotating drive member.
[0034] The functional partition seat 3 is provided with a filling chamber 8, a cleaning chamber 9, a drying chamber 10 and a material collecting chamber 11 along its length direction. The cleaning chamber 9, the drying chamber 10 and the material collecting chamber 11 are coaxially arranged with the drainage chamber 4, the drying chamber 5 and the recovery chamber 6 respectively.
[0035] In this embodiment, first, the material enters from the hopper 20 at the top of the injection chamber 8, passes through the injection chamber 8 and falls into the material trough 7. Then, the rotating switching disk 2 rotates under the drive of the rotary drive member, and the sodium antimonate that has fallen into the material trough 7 rotates until it docks with the cleaning chamber 9. Among them, a cleaning nozzle is provided in the cleaning chamber 9, which cleans the sodium antimonate in the material trough 7, and the cleaned wastewater is discharged from the drainage chamber 4. Subsequently, after cleaning is completed, the rotating switching disk 2 continues to rotate, and the cleaned sodium antimonate docks with the drying chamber 5 and the drying chamber 10. The hot air flow in the drying chamber 10 dries the sodium antimonate, and the gas generated by the drying is discharged from the drying chamber 5. Finally, the rotating switching disk 2 continues to rotate, and the dried sodium antimonate docks with the recovery chamber 6 and the material collection chamber 11. The strong airflow on the side of the recovery chamber 6 lifts the sodium antimonate and collects it from the end of the material collection chamber 11.
[0036] In a specific embodiment, a support foot 12 is fixedly mounted on the bottom of the support base 1, and a fixing bracket 13 is connected between the support base 1 and the functional partition base 3. The connection between the support base 1 and the functional partition base 3 via the fixing bracket 13 achieves relative stillness between the support base 1 and the functional partition base 3, thereby ensuring accurate docking between the drainage chamber 4 and the cleaning chamber 9, the drying chamber 5 and the drying chamber 10, and the recovery chamber 6 and the material collection chamber 11.
[0037] Furthermore, multiple material troughs 7 are provided, evenly distributed circumferentially around the rotating switching disk 2. These troughs 7 are rotated by the rotating drive element to switch between functional areas. When the rotating switching disk 2 rotates a certain angle, the material troughs 7 sequentially progress through the filling chamber 8, cleaning chamber 9, drying chamber 10, and material collection chamber 11, achieving continuous operation of the filling, cleaning, drying, and collection operations.
[0038] It should be noted that the bottom surface of the support base 1 is in contact with the surface of the rotating switching disk 2 and is in sliding contact, thereby preventing the sodium antimonate material from moving between the support base 1 and the rotating switching disk 2. In addition, during the rotation of the rotating switching disk 2, the injection, cleaning, drying, and collection operations are repeated continuously, realizing automatic and continuous cleaning and drying of the sodium antimonate, greatly improving the production efficiency of the sodium antimonate.
[0039] Furthermore, the bottom end of the drainage chamber 4 is connected to a sewage drainage pipe 14, the bottom end of the drying chamber 5 is connected to a steam exhaust pipe 15, and the bottom of the material collection chamber 11 is connected to a blower 16 through a pipe. The blower 16 lifts and collects the sodium antimonate through airflow, and a material collection pipe 21 is provided at the top of the recovery chamber 6.
[0040] Specifically, the sodium antimonate is sequentially cleaned, dried, and collected. During this process, wastewater generated during cleaning is collected and processed through a wastewater drain pipe 14, and hot steam generated during the drying process is discharged through a steam exhaust pipe 15. After drying, the sodium antimonate is lifted by a strong airflow from a blower 16 and ultimately collected through a recovery chamber 6 and a material collection pipe 21.
[0041] Furthermore, the rotary drive component includes a drive motor 17 , a drive gear 18 and a transmission gear ring 19 .
[0042] Specifically, the driving motor 17 is fixedly mounted on the supporting base 1 .
[0043] The driving gear 18 is mounted on the output shaft of the driving motor 17 .
[0044] The transmission gear ring 19 is fixedly mounted on the outer side wall of the rotary switching disk 2 , and the transmission gear ring 19 is meshedly connected with the driving gear 18 .
[0045] In this embodiment, the driving motor 17 drives the rotary switching disk 2 to rotate using the driving gear 18 and the transmission gear ring 19, and sequentially performs the injection, cleaning, drying and collection operations, thereby achieving continuous operation of the sodium antimonate cleaning and drying operations.
[0046] In a specific embodiment, the driving motor 17 is a stepper motor, which can accurately control the rotational angular displacement of the rotating switching disk 2, thereby ensuring stable operation of the injection, cleaning, drying and collection operations during the rotation of the rotating switching disk 2.
[0047] Compared with the prior art, the present invention has at least the following beneficial effects:
[0048] The utility model utilizes the rotation of the rotary switching disk to connect the supporting seat and the functional partition seat, thereby realizing the loading, cleaning, drying and recycling of sodium antimonate in sequence, realizing the continuous production of sodium antimonate, greatly improving the production efficiency of sodium antimonate, and having the characteristics of simple structure, high efficiency and convenience.
[0049] Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims of the present invention and their equivalents, the present invention is intended to include such modifications and variations.
Claims
1. High-efficiency sodium antimonate production equipment, characterized in that: It comprises a support seat (1), a rotary switching disk (2) and a functional partition seat (3); The support seat (1) is provided with a drainage cavity (4), a drying cavity (5) and a recovery cavity (6) along its length direction; The rotating switching disk (2) is rotatably mounted between the support seat (1) and the functional partition seat (3) via a slewing bearing. The rotating switching disk (2) is circumferentially distributed and has a material trough (7). A filter screen (22) is provided at the bottom of the material trough (7). The rotating switching disk (2) is externally connected to a rotating drive member. The functional partition seat (3) is provided with a material injection chamber (8), a cleaning chamber (9), a drying chamber (10) and a material collection chamber (11) along its length direction. The cleaning chamber (9), the drying chamber (10) and the material collection chamber (11) are respectively arranged coaxially with the drainage chamber (4), the drying chamber (5) and the recovery chamber (6).
2. The high-efficiency sodium antimonate production equipment according to claim 1, wherein A supporting foot (12) is fixedly mounted on the bottom of the support seat (1), and a fixing frame (13) is connected between the support seat (1) and the functional partition seat (3).
3. The high-efficiency sodium antimonate production equipment according to claim 1, wherein The bottom end of the drainage chamber (4) is connected to a sewage drainage pipe (14), and the bottom end of the drying chamber (5) is connected to a steam discharge pipe (15).
4. The high-efficiency sodium antimonate production equipment according to claim 1, wherein The bottom of the recovery chamber (6) is connected to a blower (16) via a pipeline, and the blower (16) lifts and collects the sodium antimonate through airflow.
5. The high-efficiency sodium antimonate production equipment according to claim 1, wherein A plurality of material troughs (7) are provided, and the plurality of material troughs (7) are evenly distributed on the circumference of the rotating switching disk (2). The material troughs (7) are rotated by the rotating drive member to switch the functional areas.
6. The high-efficiency sodium antimonate production equipment according to claim 1, wherein The rotary drive member comprises a drive motor (17), a drive gear (18) and a transmission gear ring (19); The driving motor (17) is fixedly mounted on the supporting seat (1); The driving gear (18) is mounted on the output shaft of the driving motor (17); The transmission gear ring (19) is fixedly mounted on the outer side wall of the rotating switching disk (2), and the transmission gear ring (19) is meshedly connected with the driving gear (18).
7. The high-efficiency sodium antimonate production equipment according to claim 6, characterized in that: The driving motor (17) is a stepping motor.
8. The high-efficiency sodium antimonate production equipment according to claim 1, wherein A hopper (20) is fixedly provided on the top of the injection cavity (8).
9. The high-efficiency sodium antimonate production equipment according to claim 1, wherein A material collecting pipe (21) is provided at the top of the recovery chamber (6).