This application claims the benefit of Taiwan application Serial No. 105212964, filed Aug. 25, 2016, and claims the benefit of Taiwan application Serial No. 105138663, filed on Nov. 24, 2016, the subject matter of which is incorporated herein by reference.
The invention relates to a blade module and a fan using the same, and more particularly to a blade module having an airflow guiding portion and a fan using the same.
A computer includes a central processing unit (CPU) for processing a large amount of data. As a result of processing data, the temperature of the CPU rises. To disperse the heat generated by the CPU, the computer is typically equipped with one or more fans. The amount of air flow pushed by the fan represents the heat dissipation performance and capability of the fan. Therefore, manufactures continue to seek methods to increase the air flow output by the fan.
Embodiments of the present invention provide for an increased amount of air flow for a fan.
In one embodiment of the invention, a blade module is provided. The blade module includes a rotating shaft and a plurality of blades. Each blade connects to the rotating shaft and includes a blade body and a first airflow guiding portion. The blade body has a first edge and a second edge, wherein the first edge and the second edge are arranged in an axial direction of the rotating shaft. The first airflow guiding portion connects to the blade body at a local portion of the first edge.
In another embodiment of the invention, a blade module is made by way of: forming a plurality of blades by using a die stamping forging method and a cutting method, wherein each blade comprises a blade body and a first airflow guiding portion, the blade body has a first edge and a second edge, and the first airflow guiding portion connects to the blade body at a local portion of the first edge; and connecting the blades with a rotating shaft by an insert injection molding method, wherein the first edge and the second edge are arranged in an axial direction of the rotating axis.
In another embodiment of the invention, a fan is provided. The fan includes a casing and a blade module as described above. The casing surrounds a portion of the blade module.
Numerous objects, features and advantages of the invention will be readily apparent upon a reading of the following detailed description of embodiments of the invention when taken in conjunction with the accompanying drawings. However, the drawings employed herein are for the purpose of description and should not be regarded as limiting.
The above objects and advantages of the invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
Referring to
The fan 100 of the present embodiment is a centrifugal fan, for example, and it can be applied to a computer or other device which needs heat dissipation, wherein the computer is, for example, a notebook or a desktop computer.
The fan 100 includes a blade module 110 and a casing 120. As shown in
As shown in
Compared with a plastic blade, the metal blade of the present invention is thinner, and thus the volume of an airflow pushing region SP1 between two blades 112 may be increased, thereby increasing the amount of the airflow output by the fan 100. In an embodiment, the metal blade 112 may have a thickness less than or substantially equal to 0.2 millimeters, and accordingly such blades can increase the volume of the airflow pushing region SP1 to increase the amount of the airflow output of the fan 100. In an embodiment, the thickness of the metal blade 112 may be as small as 0.1 millimeters or 0.05 millimeters, or even less. In contrast, a plastic blade or conventional blade cannot achieve such size. Since the metal blade 112 has a thin thickness, there can be an increase in the number of the blades 112 to improve the ability of the fan's efficiency. In an embodiment, the number of the blades 112 may be 59 or even more. As the number of the blades increases, so too does the pressure of the airflow output by the fan 100. Compared with the metal blade 112, the number of the plastic blades and the ability of the blades pushing the airflow are limited due to the plastic blade having a thicker thickness.
The airflow pushing region SP1 herein means the space between two blade bodies 1121. The larger the airflow pushing region SP1, the greater the amount of the airflow that is pushed into the airflow pushing region SP1, resulting in a greater amount of airflow output, compared to a fan with comparable (and thicker) plastic blades.
Each blade 112 includes the blade body 1121 and the first airflow guiding portion 1122. The first airflow guiding portion 1122 is connected to the blade body 1121 and has a first opening 1122a (the first opening 1122a is shown in
As shown in
As shown in
As shown in
As shown in
The second airflow guiding portion 1123 has a windward surface 1123s. In an embodiment, the windward surface 1123s of each second airflow guiding portion 1123 is an arc surface or an inclined plane. The radius of curvature of the windward surface 1123s is not limited to the embodiment of the present embodiment in that the radius of curvature at different points on the windward surface 1123s may be the same or different.
In addition, each second airflow guiding portion 1123 extends toward the airflow pushing region SP1 from the opening edge 1122a1. As a result, when the blade module 110 operates, the airflow G1 is guided by the windward surface 1123s of the second airflow guiding portion 1123 to concentrate in the airflow pushing region SP1 to increase the amount of the airflow input of the fan 100.
In addition, each second airflow guiding portion 1123 is bent outwardly in a direction reverse to the rotating direction S1 of the rotating shaft 111. As a result, when the blades 112 rotate in the rotating direction S1, the airflow G1 passes the first opening 1122a toward a direction reverse to the rotating direction S1 and guided by the windward surface 1123s of the second airflow guiding portion 1123 to enter the airflow pushing region SP1 between two blade bodies 1121.
As shown in
Each blade 312 includes the blade body 1121 and a first airflow guiding portion 3122, wherein the first airflow guiding portion 3122 is connected to the blade body 1121. Each first airflow guiding portion 3122 includes a first extending portion 3122a and a second extending portion 3122b connected to the first extending portion 3122a, wherein the first extending portion 3122a is connected to a local portion of the first edge 1121e1 of the corresponding blade body 1121, and extends toward a direction away from the first edge 1121e1 from the first edge 1121e1 in the rotating direction S1 of the rotating shaft 111. Each second extending portion 3122b extends toward a direction away from a side of the blade body 1121 from the first extending portion 3122a, and extends toward the rotating direction S1 of the rotating shaft 111 simultaneously. More particularly, the first extending portion 3122a and the second extending portion 3122b have an obtuse angle A2, which is located at a downstream side of the first extending portion and the second extending portion along the rotating direction S1 of the rotating shaft. It should be noted that the obtuse angle mentioned represents an angle larger than 90 degrees and smaller than 180 degrees. When the blades 312 rotate in the rotating direction S1, the airflow G1 is pushed by the first airflow guiding portion 3122, and is pushed to enter the airflow pushing region SP1 by the first extending portion 3122a and the second extending portion 3122b, such that the airflow smoothly enters the airflow pushing region SP1, thereby increasing the amount of airflow output by the fan 100.
In another embodiment of the present invention, the aforementioned first airflow guiding portion may be shaped into a smooth curved-surface shape, and does not have an obvious boundary or a bend line between the first extending portion and the second extending portion.
In addition, the material and/or size of the blade 312 may be similar to that of the aforementioned blade 112. The manufacturing method of the blade 312 and the rotating shaft 111 of the present embodiment may be similar to that of the aforementioned blade 112 and the rotating shaft 111. In another embodiment, the first airflow guiding portion 3122 may extend downwardly from the second edge 1121e2, or two first airflow guiding portions 3122 may extend from the first edge 1121e1 and the second edge 1121e2 respectively.
A relationship of the amount of airflow output and air pressure is recorded in
As described above, the blade module of an embodiment of the present invention includes several blades, wherein each blade includes a blade body and a first airflow guiding portion, and the first airflow guiding portion connects with a first edge of the blade body. Each first airflow guiding portion has a first opening, the airflow can enter the region between two blade bodies through the first opening for increasing the amount of the airflow outlet by the fan. In an embodiment, each blade further includes a second airflow guiding portion connecting to an opening edge of the first opening for increasing the effect on the guiding for the airflow and making more airflow enter the region between two blade bodies. In another embodiment, each blade may further include a third airflow guiding portion and a fourth airflow guiding portion, wherein the third airflow guiding portion connects to a second edge of the blade body for increasing the amount of airflow outlet by the fan. In another embodiment, the first airflow guiding portion includes a first extending portion and a second extending portion connecting to the first extending portion. The first extending portion is substantially vertical to the first edge of the corresponding blade body, and the second airflow guiding portion extends toward the rotating direction of the rotating shaft. As a result, when the blades rotate in the rotating direction, the airflow is pushed by the first airflow guiding portion to increase the amount of airflow outlet by the fan. In another embodiment, an obtuse angle is included between the first extending portion and the second extending portion; as a result, when the blade module rotates in the rotating direction, the airflow is pushed into the airflow pushing region by the first extending portion and the second extending portion for increasing the amount of airflow outlet by the fan.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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105212964 U | Aug 2016 | TW | national |
105138663 A | Nov 2016 | TW | national |
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Taiwan Office Action and Search Report, dated Jul. 4, 2017, 7 pages. |
Number | Date | Country | |
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20180058467 A1 | Mar 2018 | US |