Nano calcium carbonate transition pool
By designing a nano-calcium carbonate transition pool, using the combination of deflector plate, particulate filter plate, vibrating rod and transfer parts, the problems of low automation degree and low filtration accuracy of existing filter devices are solved, and efficient, stable and automated filtration of nano-calcium carbonate is achieved, reducing resource waste and cost.
Patent Information
- Application Number
- CN202421649195.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-12
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-07-12
AI Technical Summary
The existing filtration devices are complicated when filtering nano calcium carbonate powder, with low automation and low filtration accuracy, which leads to easy residues of calcium carbonate powder and waste of resources.
A nano-calcium carbonate transition tank was designed, including the filter tank body and the filter tank. The filter tank was equipped with a flow guide plate, a particulate filter plate, a vibrating rod and a transfer member. Through the synergy of these components, a stable and automated filtration process is achieved.
Through this design, efficient filtration of nano calcium carbonate is achieved, avoiding solid particulate blockage, ensuring the fast and orderly filtration process, improving the degree of automation, reducing costs, and reducing resource waste.
Smart Images

Figure CN222829185U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field related to nano calcium carbonate transition, in particular to a nano calcium carbonate transition pool. Background Art
[0002] Nano-ultrafine calcium carbonate is a new type of ultrafine solid material developed in the 1980s. Nanomaterials have small size effects, surface effects and macroscopic quantum tunneling effects. Therefore, they show many unique properties and are widely used in catalysis, light filtering, light absorption, medicine, magnetic media and new materials. When producing nano-calcium carbonate powder, it is necessary to use a filtering device to screen it to ensure the quality of the nano-calcium carbonate powder.
[0003] The existing filtering device has a complicated filtering process. Calcium carbonate that fails to meet the filtering standard needs to be manually transferred for processing. The degree of automation is not high, which increases the cost. In addition, the filtering accuracy is low. Calcium carbonate powder is easy to remain in the filtering device and clog the filter screen, causing a waste of resources. Therefore, a nano calcium carbonate transition pool is proposed. Utility Model Content
[0004] The utility model provides a nano calcium carbonate transition pool, which solves the problems in the above-mentioned background technology.
[0005] The utility model solves the technical problem by adopting the following technical solutions:
[0006] A nano calcium carbonate transition pool comprises a filter pool body and a filter tank disposed in the filter pool body, both side walls of the filter tank being inclined and gathered inward from top to bottom and provided with guide plates, a filter element being provided on the upper side of the guide plate, the filter element comprising a particle filter plate mounted between the guide plate and the filter pool body, a vibrating rod for vibrating the particle filter plate being provided on the upper side of the particle filter plate, a driving element for driving the vibrating rod being provided on the upper side of the vibrating rod, and a transfer element for transferring filtered solid particles being provided on a side of the particle filter plate close to the guide plate.
[0007] Preferably, the driving member includes a driving motor disposed on the top of the filter tank body, and the top of the vibrating rod is disposed on the output end of the driving motor.
[0008] Preferably, the vibration rod abuts against the particle filter plate, and the frequency of the vibration rod can be adjusted by the output frequency of the driving motor.
[0009] Preferably, the transfer member includes a transfer groove opened in the guide plate, a notch is opened at the junction of the particle filter plate and the guide plate, a baffle is slidably provided in the notch along the setting direction of the particle filter plate, and a telescopic member for driving the baffle to slide is provided on one side of the baffle.
[0010] Preferably, the telescopic member includes a telescopic cylinder arranged at the bottom of the transfer groove, the output end of the telescopic cylinder is arranged on a side surface of the baffle plate for driving the baffle plate to slide to open or close the notch, and one side of the telescopic cylinder is provided with a mounting bracket for connecting to the filter tank body.
[0011] Preferably, a collecting base for collecting solid particles falling out of the notch is provided on the bottom wall of the transfer trough.
[0012] Preferably, a through hole is provided on one side of the transfer groove to facilitate operators to transfer the collection base.
[0013] The advantages and positive effects of the utility model are as follows: the setting of the filter pool body and the filter tank can achieve the goal of making the entire nano-calcium carbonate filtering process be carried out in a stable environment, and the setting of the guide plate can ensure that the filtered material can slide in in an orderly manner, avoiding the situation where accumulation leads to poor filtering efficiency, and the setting of the particle filter plate and the vibrating rod in the filter element can achieve the goal of avoiding the situation where solid particles are blocked in the filter plate, ensuring that the entire filtering process is fast and orderly, and the setting of the transfer element can achieve the goal of transferring the filtered material, ensuring that the entire nano-calcium carbonate can pass through the particle filter plate in an orderly manner. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The utility model is further described below in conjunction with the accompanying drawings and embodiments.
[0015] Figure 1 It is a structural schematic diagram of the utility model;
[0016] The symbols in the accompanying drawings are described as follows:
[0017] 1. Filter tank body; 11. Filter tank; 12. Transfer tank; 13. Guide plate; 14. Through hole; 15. Outlet pipe section; 16. Support rod;
[0018] 2. Filter element; 21. Particle filter plate; 22. Vibrating rod; 23. Driving motor;
[0019] 3. Transfer part; 31. Telescopic cylinder; 32. Baffle; 33. Mounting bracket; 34. Collection base. DETAILED DESCRIPTION
[0020] Now the utility model is further described in detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, which only illustrate the basic structure of the utility model in a schematic manner, and therefore only show the components related to the utility model.
[0021] The following is a further description of the embodiments of the present invention in conjunction with the accompanying drawings:
[0022] Reference Figure 1 As shown, nano-ultrafine calcium carbonate is a new type of ultrafine solid material developed in the 1980s. Nanomaterials have small size effects, surface effects and macroscopic quantum tunneling effects. Therefore, they show many unique properties and are widely used in catalysis, light filtering, light absorption, medicine, magnetic media and new materials. When producing nano-calcium carbonate powder, it is necessary to use a filtering device to screen it to ensure the quality of the nano-calcium carbonate powder. The existing filtering device has a complicated filtering process. Calcium carbonate that fails to meet the filtering standard needs to be manually transferred for processing. The degree of automation is not high, which increases the cost and the filtering accuracy is low. Calcium carbonate powder is easy to remain in the filtering device and block the filter screen, causing a waste of resources. Therefore, a nano-calcium carbonate transition pool is proposed, including a filtering pool body 1 and a filtering tank 11 opened in the filtering pool body 1. The two side walls of the filtering tank 11 are inclined from top to bottom and are provided with a guide plate 13. The upper side of the guide plate 13 is provided with a filter element 2. The filter element 2 includes a particle filter plate 21 erected between the guide plate 13 and the filtering pool body 1. The particle filter plate A vibrating rod 22 for vibrating the particle filter plate 21 is provided on the upper side of 21, a driving member for driving the vibrating rod 22 is provided on the upper side of the vibrating rod 22, and a transfer member 3 for transferring the filtered solid particles is provided on the side of the particle filter plate 21 close to the guide plate 13; the setting of the filter pool body 1 and the filter tank 11 can achieve the purpose of making the entire nano-calcium carbonate filtering process be carried out in a stable environment, and the setting of the guide plate 13 can ensure that the filtered material can slide in in an orderly manner to avoid the accumulation leading to poor filtering efficiency, and the setting of the particle filter plate 21 and the vibrating rod 22 in the filter element 2 can achieve the purpose of avoiding the blockage of solid particles in the filter plate, ensuring that the entire filtering process is fast and orderly, and the setting of the transfer member 3 can achieve the purpose of transferring the filtered material to ensure that the entire nano-calcium carbonate can pass through the particle filter plate 21 in an orderly manner.
[0023] It should be noted that during the entire filtering process described above, filtered water is continuously inputted and is inputted from above the entire filter pool body 1 , and enters the filter tank 11 together with the nano-calcium carbonate. In other words, such an arrangement can also prevent the nano-calcium carbonate from remaining on the particle filter plate 21 .
[0024] Furthermore, the filter hole size of the particle filter plate 21 here can be changed by replacing the filter plate. Specifically, it must be ensured that the size of the filter hole is able to allow the nano-calcium carbonate to pass through in an orderly manner, and the solid particles that cannot pass through will remain on the particle filter plate 21, waiting for the subsequent transfer of the transfer member 3.
[0025] Specifically, the vibrating rod 22 in the filter element 2 is provided to further ensure that the nano-calcium carbonate passes through the particle filter plate 21 in an orderly manner, and can also prevent the particle filter plate 21 from being blocked, making the entire filtration faster.
[0026] In addition, the specific structure of the above-mentioned driving member is: the driving member includes a driving motor 23 arranged on the top of the filter pool body 1, and the top of the vibration rod 22 is arranged on the output end of the driving motor 23; and, the vibration rod 22 is against the particle filter plate 21, and the frequency of the vibration rod 22 can be adjusted by the output frequency of the driving motor 23; the rotation of the vibration rod 22 can be realized by the operation of the driving motor 23, so that the particle filter plate 21 is vibrated back and forth, thereby achieving the purpose of preventing the particle filter plate 21 from being blocked.
[0027] It should also be noted that the specific structure of the above-mentioned transfer member 3 is as follows: the transfer member 3 includes a transfer groove 12 opened in the guide plate 13, a notch is opened at the junction of the particle filter plate 21 and the guide plate 13, a baffle 32 is slidingly provided in the notch along the setting direction of the particle filter plate 21, and a telescopic member for driving the baffle 32 to slide is provided on one side of the baffle 32; through the setting of the notch and the baffle 32, when the baffle 32 slides inward, the notch gradually opens, and the residue that cannot pass through the particle filter plate 21 will fall down along the notch, thereby ensuring that the particle filter plate 21 can continue to filter in an orderly manner.
[0028] It should be noted that the stage in which the baffle 32 slides to open the notch is after the filtration is completed, at which time the input of filtered water is stopped, and this is the operating time of the transfer member 3.
[0029] In addition, the specific structure of the telescopic member is as follows: the telescopic member includes a telescopic cylinder 31 arranged at the bottom of the transfer groove 12, and the output end of the telescopic cylinder 31 is arranged on a side surface of the baffle 32 for driving the baffle 32 to slide to open or close the gap, and one side of the telescopic cylinder 31 is provided with a mounting bracket 33 for connecting to the filter tank body 1; the baffle 32 can be made to start sliding by the operation of the telescopic cylinder 31, and the sliding of the baffle 32 is parallel to the setting direction of the particle filter plate 21, and this setting is to ensure the protection of the gap.
[0030] Furthermore, the mounting bracket 33 is provided to ensure stable mounting of the telescopic cylinder 31, and in order to ensure that water does not enter the notch during the filtering process, waterproof measures such as water-stopping washers may be provided at the baffle 32 and the notch.
[0031] It is worth mentioning that a collecting base 34 for collecting solid particles falling out of the notch is provided on the bottom wall of the transfer trough 12; the setting of the collecting base 34 can achieve the purpose of collecting solid particles, and the nano-calcium carbonate remaining in this part of the solid particles can also be collected to meet the purpose of subsequent secondary filtration.
[0032] It should be noted that in order to facilitate the secondary transfer of the collecting base 34, in this embodiment, a through hole 14 is opened on one side of the transfer groove 12 to facilitate the operator to transfer the collecting base 34; the setting of the through hole 14 can facilitate the removal of the collecting base 34, and the setting mode of the collecting base 34 here is detachable.
[0033] In addition, in order to make the whole filtering process proceed in an orderly manner, in this embodiment, a water outlet pipe section 15 for transferring filtered water is provided at the bottom of the filter tank 11. Of course, a filter screen is provided at the outlet of the water outlet pipe section 15 to prevent the outflow of nano calcium carbonate.
[0034] Correspondingly, at the top of the filter pool body 1 , the position where the filtered water and nano calcium carbonate are put is the hollowed-out position of the filter pool body 1 , and in order to support the top of the filter pool body 1 , a plurality of support rods 16 are provided.
[0035] It should be emphasized that the embodiments described in the present invention are illustrative rather than restrictive. Therefore, the present invention is not limited to the embodiments described in the specific implementation manner. Any other implementation manners derived by those skilled in the art based on the technical solution of the present invention also fall within the scope of protection of the present invention.
Claims
1. A nano calcium carbonate transition pool, comprising a filter pool body (1) and a filter tank (11) disposed in the filter pool body (1), characterized in that: The two side walls of the filter tank (11) are inclined and gathered inward from top to bottom, and are provided with guide plates (13); a filter element (2) is provided on the upper side of the guide plate (13); the filter element (2) comprises a particle filter plate (21) mounted between the guide plate (13) and the filter tank body (1); a vibration rod (22) for vibrating the particle filter plate (21) is provided on the upper side of the particle filter plate (21); a driving element for driving the vibration rod (22) is provided on the upper side of the vibration rod (22); and a transfer element (3) for transferring filtered solid particles is provided on the side of the particle filter plate (21) close to the guide plate (13).
2. A nano calcium carbonate transition pool according to claim 1, characterized in that: The driving member comprises a driving motor (23) arranged at the top of the filtering pool body (1), and the top of the vibrating rod (22) is arranged on the output end of the driving motor (23).
3. A nano calcium carbonate transition pool according to claim 2, characterized in that: The vibrating rod (22) abuts against the particle filter plate (21), and the frequency of the vibrating rod (22) can be adjusted by the output frequency of the driving motor (23).
4. A nano calcium carbonate transition tank according to claim 1, characterized in that: The transfer member (3) comprises a transfer groove (12) provided in the guide plate (13); a notch is provided at the junction of the particle filter plate (21) and the guide plate (13); a baffle (32) is provided in the notch for sliding along the setting direction of the particle filter plate (21); and a telescopic member for driving the baffle (32) to slide is provided on one side of the baffle (32).
5. A nano calcium carbonate transition tank according to claim 4, characterized in that: The telescopic member comprises a telescopic cylinder (31) arranged at the bottom of the transfer groove (12); an output end of the telescopic cylinder (31) is arranged on a side surface of the baffle (32) for driving the baffle (32) to slide to open or close the notch; and a mounting bracket (33) for connecting to a filter tank body (1) is provided on one side of the telescopic cylinder (31).
6. A nano calcium carbonate transition tank according to claim 5, characterized in that: A collecting base (34) for collecting solid particles falling out of the notch is provided on the bottom wall of the transfer groove (12).
7. A nano calcium carbonate transition tank according to claim 6, characterized in that: A through hole (14) is provided on one side of the transfer groove (12) for facilitating an operator to transfer the collection base (34).