LAMINAR FLOW DEVICE
20230178400 ยท 2023-06-08
Inventors
Cpc classification
F24F13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H01L21/673
ELECTRICITY
Abstract
The present invention discloses a laminar flow device which includes a housing defining a cavity, at least one air inlet, a diffusion device and at least one uniform flow structure. The at least one air inlet is positioned within the housing. The diffusion device is positioned within the housing, and the at least one uniform flow structure is positioned within the bottom of the cavity.
Claims
1. A laminar flow device, comprising: a housing defining a cavity; at least one air inlet, positioned within the housing; at least one diffusion device, connected with the at least one air inlet and positioned within the cavity; and at least one uniform flow structure, positioned within the bottom of the cavity; wherein the at least one diffusion device comprises at least one diffusion frame and at least one connecting space portion, and the at least one connecting space portion is connected with the cavity.
2. The laminar flow device as claimed in claim 1, wherein the housing is defined as a top cover, a partition and an outer shell.
3. The laminar flow device as claimed in claim 1, wherein the at least one diffusion frame having a hollow portion.
4. The laminar flow device as claimed in claim 1, wherein the at least one connecting space portion having an opening portion.
5. The laminar flow device as claimed in claim 1, wherein the uniform flow structure is ventilating plate, a porous plate, or a filter material layer.
6. The laminar flow device as claimed in claim 1, wherein the uniform flow structure has irregular boundary.
7. The laminar flow device as claimed in claim 2, wherein the outer shell comprises two supporting members and a connecting member; wherein the connecting member is between the two supporting members.
8. The laminar flow device as claimed in claim 2, wherein the top cover has at least one convex portion.
9. The laminar flow device as claimed in claim 8, wherein the partition and the outer shell respectively have at least one first concave portion which is aligned with the at least one convex portion.
10. The laminar flow device as claimed in claim 2, wherein the outer shell and the partition respectively have at least one second concave portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
[0007]
[0008]
[0009]
DETAILED DESCRIPTION OF THE INVENTION
[0010] To make the description of the present disclosure more detailed and complete, the following description provides an illustrative description for the implementation and specific embodiments of the present invention.
[0011] The present invention is regarding as at least one embodiment of a laminar flow device, especially a laminar flow device used to generate a uniform airflow.
[0012]
[0013] Therefore, the dynamic pressure generated by the gas SG at the inlet hole 20 is converted into a static pressure by the diffusion frame 31, and after passing through the uniform flow structure 40, it is output in the direction of the door of the container 2 to form the aforementioned uniform airflow GL.
[0014] In the embodiment, the container 2 can be a semiconductor container such as Front Opening Unified Pod (FOUP) or Multi-Application Carrier (MAC). In addition, the gas SG can be Xtreme Clean Dry Air (XCDA) or Clean Dry Air (CDA). However, the gas SG can be an inert gas such as nitrogen gas, helium gas or argon gas, excepting the XCDA or CDA.
[0015] To make the gas GL more concentratively output, the ratio of the height to the length of the housing 10 can be 20%, and the ratio of the width to the length of the housing 10 ranges from 10 to 20%. Moreover, the air inlet 20 can have a diameter between 7 millimeters and 16 millimeters, preferably between 7 to 7.5 millimeters.
[0016]
[0017] In the embodiment, the outer shell 13 can be one-piece which is formed from two supporting members 131 and a connecting member 132. In addition, the outer shell 13 is not limited only to the above shown, which can be detachable, which is formed by connecting two supporting members 131 and a connecting member 132 with fasteners such as bolts or screws. Furthermore, the outer shell can be non-detachable, which is formed by two supporting members 131 and a connecting member 132 by gluing, riveting, welding, or pressing. The present invention is not limited thereto.
[0018] As discussed above, in the embodiment, the forming way of the housing 10 can be anyone as the description above. For example, the housing 10 can be one piece which is from the top cover 11, the partition 12, and the outer shell 13, or the housing 10 can be thereby composed of the top cover 11 and the partition 12, the top cover 11 and the outer shell 13, the partition 12 and the outer shell 13, or a top cover 11, the partition 12 and the outer shell 13. The connecting way of the above two components can be locking, gluing, riveting, welding, or pressing.
[0019] On the other hand, the top cover 11 of the housing 10 can be fixed to the diffusion frame 31 of the diffusion device 30 by the above-mentioned ways.
[0020] In the embodiment, the partition 12 and the outer shell 13 respectively have at least one first concave portion 110 and at least one second concave portion 120. The top cover 11 has at least one convex portion 130 which is aligned with the first concave portion 110. As shown in
[0021] In addition to locating the uniform flow structure 40 at the bottom of the cavity HR by the above-mentioned method, it can also locate by other ways based on the actual situation. For instance, a user can directly locate the uniform flow structure 40 at the bottom of the cavity HR by gluing. In some embodiments, the uniform flow structure 40 has irregular boundaries or jagged boundaries that can increase the contact area between the uniform flow structure 40 and the second concave portion 120, therefore making the uniform flow structure 40 locate better in the cavity HR.
[0022] As discussed above, the uniform flow structure 40 can be a ventilating plate, a porous plate, or a filter material layer. When the ventilating plate is used as the uniform flow structure 40, the plate can be made from a sintered polymeric material with a water absorption rate of less than 5% (but not include 0%), and the plate can have a thickness between 2.0 millimeters to 10.5 millimeters. The sintered polymeric material can be high-density polyethylene (HDPE), ultra-high molecular weight polyethylene (UPE), or mixtures thereof. The above ventilating plate is not limited be made from a sintered polymeric material, as long as it is a material with hydrophobic function, such as ceramics or metals.
[0023] Further, when the ventilating plate is used as the uniform flow structure 40, the diameter of the micropores of the plate ranges from 0.01 to 100 micrometer, and the preferable value of the afore-mentioned diameter is between 0.01 and 15 micrometer.
[0024] Also, when the porous plate is used as the uniform flow structure 40, the diameter of the micropores of the plate ranges from 0.5 to 3 millimeter. Otherwise, the plate can have a thickness between 0.1 and 5 millimeter.
[0025] When the filter material layer is used as the uniform flow structure 40, and the plate can be a single-layer or multi-layer high-efficiency filter (High-Efficiency Particulate Air, HEPA), a bag filter, a flat filter, or a combination thereof. The filter material layer can also combinate granular or powdered filter (e.g. granular activated carbon), hence the airflow can be output more stably.
[0026]
[0027] In the embodiment, the connecting space portion 32 of the diffusion device 30 and the air inlet 20 are parallel to each other, making an open end 321 of the connecting space portion 32 and the air inlet 20 align with each other. In other words, when the gas SG is filled at the air inlet 20, at least a part of the gas SG can directly enter the diffusion device 30 because the open end 321 is aligned with the air inlet 20.
[0028] Otherwise, the shape of the connecting space portion 32 is approximately forming a rectangle; and the shape of the diffusion device 30 is approximately forming a circle. However, the shapes of the invention are not limited there above, the connecting space portion 32 and the diffusion device 30 can be formed any shape, such as polygon, ellipse, and rectangle.
[0029] In addition, in the practical implementation of the present invention, the material of the connecting space portion 32 and the diffusion frame 31 is not limited, and can also be composed of well-known hydrophobicity materials, such as polystyrene (PS), polyethylene (PE), polypropylene (PP), ethylene-vinyl acetate copolymer (EVA), expanded polyethylene (EPE), expanded polystyrene (EPS) or other containing polyolefins. In fact, it can also be made of the same material as the uniform flow structure 40, such as high-density polyethylene (HDPE) or ultra-high molecular weight polyethylene (UPE).
[0030] The above-mentioned descriptions are only preferred embodiments of the present invention and are not intended to limit the scope of implementation of the present invention. Therefore, all the shapes, structures, features, and spirits described in the scope of the patent application of the present invention shall be regarded as equivalent to the changes and modifications per se, and be included in the scope of the patent application of the present invention.