Dispersion device and slurry dispersion system
11534729 · 2022-12-27
Assignee
Inventors
- Ching-Lung Tsai (Taichung, TW)
- Keng-Yang Chen (Zhudong Township, TW)
- Cheng-Hung San (Xinpu Township, TW)
Cpc classification
B01F29/10
PERFORMING OPERATIONS; TRANSPORTING
B01F29/4022
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01F27/861
PERFORMING OPERATIONS; TRANSPORTING
B01F29/40221
PERFORMING OPERATIONS; TRANSPORTING
B01F29/90
PERFORMING OPERATIONS; TRANSPORTING
B01F29/40354
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F29/00
PERFORMING OPERATIONS; TRANSPORTING
B01F29/90
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A dispersion device is provided, including a container and a porous dispersion structure. The container has a first receiving space. The porous dispersion structure has at least three porous dispersion layers and has a second receiving space, wherein the porous dispersion structure is located in the first receiving space of the container.
Claims
1. A dispersion device, comprising: a container, having a first receiving space; and a porous dispersion structure, having at least three porous dispersion layers, and having a second receiving space, wherein the porous dispersion structure is located in the first receiving space of the container and includes: a first porous dispersion layer, having a first pore size; a second porous dispersion layer, having a second pore size; and a third porous dispersion layer, having a third pore size, wherein the second porous dispersion layer is located between the first porous dispersion layer and the third porous dispersion layer, and the second pore size is smaller than the first pore size and the third pore size in the direction along a center axis of the porous dispersion, wherein a central line of a first pore of the first porous dispersion layer, a central line of a second pore of the second porous dispersion layer, and a central line of a third pore of the third porous dispersion layer are located on an axis, and the axis is perpendicular to the central axis of the porous dispersion structure.
2. The dispersion device as claimed in claim 1, wherein the first pore size is larger than the third pore size.
3. The dispersion device as claimed in claim 2, wherein a ratio of the first pore size, the second pore size, and the third pore size is between 3.1:1:2.1 to 12:1:3.
4. The dispersion device as claimed in claim 1, wherein the first pore size is smaller than the third pore size.
5. The dispersion device as claimed in claim 4, wherein a ratio of the first pore size, the second pore size, and the third pore size is between 2.1:1:3.1 to 3:1:12.
6. The dispersion device as claimed in claim 1, wherein a thickness of the second porous dispersion layer is between 50 μm and 500 μm.
7. The dispersion device as claimed in claim 1, wherein: in a direction that is perpendicular to the central axis of the porous dispersion structure, a first pore of the first porous dispersion layer, a second pore of the second porous dispersion layer, and a third pore of the third porous dispersion layer at least partially overlap.
8. The dispersion device as claimed in claim 1, wherein one of the porous dispersion layers of the porous dispersion structure has two regions: a first region and a second region, which are arranged along the central axis of the porous dispersion structure, and the one of the porous dispersion layers has a plurality of first pores located in the first region and a plurality of second pores located in the second region, wherein a shape of the first pores is different from a shape of the second pores.
9. The dispersion device as claimed in claim 8, wherein an area ratio of the first region to the second region is 3:7 to 7:3.
10. The dispersion device as claimed in claim 1, wherein one of the porous dispersion layers of the porous dispersion structure has a plurality of pores with different pore sizes, and the sizes of the pores decrease in order along an opening direction of the second receiving space.
11. The dispersion device as claimed in claim 1, wherein a pore shape of the porous dispersion layers has a polygonal shape, and the polygonal is triangle, quadrilateral, pentagon, hexagon, or heptagon.
12. A slurry dispersion system, configured to disperse a slurry, comprising: a rotation device; and a dispersion device, configured to contain the slurry, including: a container, provided on the rotation device and having a first receiving space; and a porous dispersion structure, having at least three porous dispersion layers and a second receiving space, and the porous dispersion structure located in the first receiving space of the container and includes: a first porous dispersion layer, having a first pore size; a second porous dispersion layer, having a second pore size; and a third porous dispersion layer, having a third pore size, wherein the second porous dispersion layer is located between the first porous dispersion layer and the third porous dispersion layer, and the second pore size is smaller than the first pore size and the third pore size in the direction along a center axis of the porous dispersion, wherein a central line of a first pore of the first porous dispersion layer, a central line of a second pore of the second porous dispersion layer, and a central line of a third pore of the third porous dispersion layer are located on an axis, and the axis is perpendicular to the central axis of the porous dispersion structure, wherein when the rotation device rotates, the rotation device drives the dispersion device to rotate to disperse the slurry.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(11) The making and using of the embodiments of the devices and systems are discussed in detail below. It should be appreciated, however, that the embodiments provide many applicable inventive concepts that can be embodied in a wide variety of specific contexts. The specific embodiments discussed are merely illustrative of specific ways to make and use the embodiments, and do not limit the scope of the disclosure.
(12) Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this invention belongs. It should be appreciated that each term, which is defined in a commonly used dictionary, should be interpreted as having a meaning conforming to the relative skills and the background or the context of the present disclosure, and should not be interpreted in an idealized or overly formal manner unless defined otherwise.
(13) Referring to
(14) The dispersion device 20 of the slurry dispersion system 100 includes a container 21 and a porous dispersion structure 22. The container 21 may be a loader having a cylindrical appearance, may load the slurry SL and has a first receiving space SP1. The porous dispersion structure 22 is disposed in the first receiving space SP1. In some embodiments, the porous dispersion structure 22 has a joint portion 22J extending in a direction perpendicular (and including substantially perpendicular) to a main axis 20C of the dispersion device 20, so that the container 21 and the porous dispersion structure 22 are connected and make the porous dispersion structure 22 is disposed in the container 21. In some embodiments, the joint portion 22J may form an engaging mechanism with the edge of the container 21 to engage in an engaging manner. In other embodiments, the joint portion 22J includes a locking hole and a joint member, and is attached to the container 21 through a locking way.
(15) Regarding the rotation device 10 of the slurry dispersion system 100, it may be a planetary rotation mechanism. As shown in
(16) Please refer to
(17) Continuing to refer to
(18) As for the details of the porous dispersion structure 22, each of the porous dispersion layers 221 to 223 has a plurality of pores (or openings): a plurality of first pores 221H, a plurality of second pores 222H, and the plurality of third pores 223H. The pore size (or maximum pore length) of the second pore 222H is smaller than the pore sizes of the first pore 221H and the third pore 223H. That is, the second porous dispersion layer 222, the intermediate layer, has the smallest pores. In some embodiments, the relative sizes of the pores of the first, second, and third porous dispersion layers 221, 222, and 223 are: large-small-medium. In some embodiments, the pore size ratios of the first, second, and third pores 221H, 222H, and 223H are 3.1:1:2.1 to 12:1:3.
(19) In some embodiments, the relative pore size of the first, second, and third porous dispersion layers 221, 222, and 223 are: medium-small-large. That is, the first porous dispersion layer 221, the innermost layer, has a medium pore 221H, the second porous dispersion layer 222, the middle layer, has the smallest pore 222H, and the third porous dispersion layer 223, the outermost layer, has the largest pore 223H. In some embodiments, the first, second, and third pores 221H, 222H, and 223H have a size ratio of the first, second, and third pores of 2.1:1:3.1 to 3:1:12.
(20) As shown in
(21) The porous dispersion structure 22 has three layers, and the pore size of the middle layer is the smallest (relative to the pore sizes of the dispersion layers on both sides). When the slurry dispersion process is performed, the slurry SL sequentially passes through the pores 221H, 222H, 223H will produce a strong turbulent diffusion effect, so that the slurry dispersion system 100 provides a more uniform shear force, and can eliminate the dead angle of flow in a small area, so that the randomness of the slurry dispersion system 100 is effectively improved, and then the dispersion effectiveness is improved. In some embodiments, the aperture ratios of the first porous dispersion layer 221, the second porous dispersion layer 222, and the third porous dispersion layer 223 (i.e., a total pore area/a total area of the dispersion layer) is 15%-20%, 1%-1.5% and 5%-10%, respectively. In other embodiments, the aperture ratios of the first porous dispersion layer 221, the second porous dispersion layer 222, and the third porous dispersion layer 223 are 17%, 1.4%, and 7%.
(22) As shown in
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(25) In some embodiments, as shown in
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(27) In other embodiments, the pores of different shapes (as shown in
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(29) In some embodiments, the area ratio between the first area A1 and the second area A2 may be 3:7 to 7:3, for example, 5:5.
(30) In some embodiments, the aforementioned first and third porous dispersion layers 221, 223 may also have a second porous dispersion layer 222′ configured as shown in
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(32) In some embodiments, the aforementioned first and third porous dispersion layers 221, 223 may also have a second porous dispersion layer 222″ configured as shown in
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(34) The features between the above embodiments can be mixed and used as long as they do not violate the spirit of the disclosure of the present invention or conflict with each other.
(35) In summary, an embodiment of the present invention provides a dispersion device, including a container and a porous dispersion structure. The container has a first receiving space. The porous dispersion structure has at least three porous dispersion layers and has a second receiving space, wherein the porous dispersion structure is located in the first receiving space of the container.
(36) An embodiment of the invention provides a slurry dispersion system, configured to disperse a slurry, comprising: a rotation device and a dispersion device. The rotation device is configured to contain the slurry, includes: a container and a porous dispersion structure. The container is provided on the rotation device and having a first receiving space, and the porous dispersion structure has at least three porous dispersion layers and a second receiving space, and the porous dispersion structure is located in the first receiving space of the container. When the rotation device rotates, the rotation device drives the dispersion device to rotate to disperse the slurry.
(37) The embodiment of the present invention has at least one of the following advantages or effects, in that through the porous dispersion structure of the slurry dispersion layer with at least three layers, the dispersion effect on the slurry can be improved, and the dispersion process time is shortened. In addition, the middle layer of the three-layer dispersion layer has the smallest pores, which can make the porous dispersion structure have a stronger vortex field, generate stronger turbulent disturbances, and greatly improve the dispersion force for the slurry.
(38) Use of ordinal terms such as “first”, “second”, “third”, etc., in the claims to modify a claim element does not by itself connote any priority, precedence, or order of one claim element over another or the temporal order in which acts of a method are performed, but are used merely as labels to distinguish one claim element having a certain name from another element having the same name (but for use of the ordinal term) to distinguish the claim elements.
(39) It will be apparent to those skilled in the art that various modifications and variations can be made in the invention. It is intended that the standard and examples be considered as exemplary only, with the true scope of the disclosed embodiments being indicated by the following claims and their equivalents.