The disclosure relates to a fan module.
In response to the thinning trend of consumer electronic products, electronic products such as computers and handheld devices are all developing toward the direction of being light and thin and having high efficiency, but being light and thin often contradicts with having high efficiency. When a high-efficiency element is operating, a large amount of waste heat is generated inside the electronic product. Therefore, a heat dissipation module needs to be disposed to perform heat dissipation and cooling down of the element. However, due to the limitation of size thinning of electronic products, it is difficult for heat dissipation efficiency of conventional heat dissipation modules to meet the demand.
Taking an electronic product disposed with a heat dissipation fan as an example, the size of the cooling fan usually needs to be adaptively adjusted and even reduced along with the product body. However, in the case of an electronic element with higher heat radiation, the above measure obviously cannot meet the heat dissipation requirement, and vice versa.
As such, heat dissipation fans with adjustable thickness have been developed today, which combine two sets of motors and two sets of fan blades in response to the requirements of electronic products operating at different high-power consumptions. However, conventional heat dissipation fans still have matching issue with rotating speed and the fan blades are prone to resonance and noise whether during acceleration or deceleration. At the same time, since two sets of motors and fan blades are combined, there are also issues with complicated structure and large power consumption.
The disclosure provides a fan module, which has changeable blade size and chamber size to meet different heat dissipation requirements.
The fan module of the disclosure includes a body and a plurality of blades. The body has a rotating axis and is telescopic along the rotating axis to have an elongated state and a shortened state. The blades are respectively disposed on the body and rotate along with the body along the rotating axis. At least a portion of each blade is flexible and a bending state of each blade is changed along with the elongated state or the shortened state of the body. An axial size of each blade along the rotating axis when the body is in the elongated state is greater than the axial size of each blade along the rotating axis when the body is in the shortened state.
In an embodiment of the disclosure, the body includes a first hub, a first disc, a second hub, and a second disc. The first disc is disposed on the first hub. The first hub and the second hub are movably sleeved together along the rotating axis. The second disc is disposed on the second hub. Each blade has a plurality of regions connected to each other in sequence along an axial direction of the rotating axis. A first position and a last position of the regions are respectively connected to the first disc and the second disc.
In an embodiment of the disclosure, the regions are divided into a first type and a second type, the region belonging to the second type is flexible, and the region belonging to the first type is adjacent and connected to the region belonging to the second type.
In an embodiment of the disclosure, a toughness of the region belonging to the second type is greater than a toughness of the region belonging to the first type, and the region belonging to the second type maintains a gap relative to the first hub and the second hub.
In an embodiment of the disclosure, the region belonging to the first type and located in the first position or the last position is connected to the first hub or the second hub.
In an embodiment of the disclosure, the first hub or the second hub also has a connecting layer to connect to the region belonging to the second type. The connecting layer is flexible and a toughness of the connecting layer is consistent with the toughness of the region belonging to the second type.
In an embodiment of the disclosure, an area of the region belonging to the first type is greater than an area of the region belonging to the second type.
In an embodiment of the disclosure, the area of the region belonging to the first type is equal to the area of the region belonging to the second type.
In an embodiment of the disclosure, the area of the region belonging to the first type is smaller than the area of the region belonging to the second type.
In an embodiment of the disclosure, one of the first hub and the second hub has a guiding post and the other one of the first hub and the second hub has a guiding groove. The guiding post is coupled to the guiding groove, so that the first hub and the second hub move relative to each other along the rotating axis.
In an embodiment of the disclosure, the guiding groove is parallel to the rotating axis.
In an embodiment of the disclosure, the guiding groove is inclined relative to the rotating axis.
In an embodiment of the disclosure, an included angle of the guiding groove relative to the rotating axis is consistent with a relative rotation angle of the first hub and the second hub in the shortened state or the elongated state based on the rotating axis.
In an embodiment of the disclosure, at a junction of two adjacent regions, one of the regions has at least one protruding rib, the other one of the regions has at least one opening groove, the protruding rib is rotatably buckled to the opening groove, and there is a bend at the junction between the two adjacent regions.
In an embodiment of the disclosure, a bending amount of the junction between the two adjacent regions is greater than a deformation amount of the region belonging to the second type.
In an embodiment of the disclosure, each blade includes a flexible material connected between the first disc and the second disc, and a rigid material covered by the flexible material, so that there is a bend at a region of the rigid material not covered by the flexible material relative to a region of the rigid material covered by the flexible material.
In an embodiment of the disclosure, the fan module further includes at least one power source, connected to the rotating axis and configured to drive the body and the blades to rotate or the body to elongate and shorten.
In an embodiment of the disclosure, each blade is entirely made of a single flexible material.
In an embodiment of the disclosure, each blade is divided into different regions by at least one fold line.
In an embodiment of the disclosure, an orthographic projection area of each blade on a plane when the body is in the elongated state is greater than the orthographic projection area of each blade on the plane when the body is in the shortened state, wherein the rotating axis is located on the plane.
Based on the above, since the body of the fan module has a telescopic state change along the rotating axis while a portion of the blades is also flexible, the axial size of the blades along the rotating axis will be expanded or reduced along with the telescopic state of the body. In other words, the user may adjust the elongated state or the shortened state of the body according to the heat dissipation requirements, so as to change the size of the fan chamber while controlling the wind catching area of the blades, thereby controlling the wind amount of the fan module. Accordingly, the fan module is no longer limited by the body space of the electronic product, so as to improve the applicability thereof.
Further, the body 110 of the embodiment includes a first hub 112, a first disc 111, a second hub 114, and a second disc 113. The first disc 111 is disposed on the first hub 112. The first hub 112 and the second hub 114 are movably sleeved together along the rotating axis C1. The second disc 113 is disposed on the second hub 114. Each blade 120 has a plurality of regions 121 and 122 connected to each other in sequence along an axial direction of the rotating axis C1, wherein the region 121 is connected to the first disc 111 with a side edge 121a thereof and the region 122 is connected to the second disc 113 with a side edge 122a thereof. Furthermore, the region 122 of the blade 120 is flexible (the region 121 is not flexible), so the region 121 is regarded as the first type and the region 122 is regarded as the second type, and are adjacent and connected to each other.
Accordingly, as the first hub 112 (and the first disc 111) moves relative to the second hub 114 (and the second disc 113) along the rotating axis C1, the flexible region 122 changes the degree of deformation (bending) thereof accordingly.
As such, it can be seen that as the first hub 112 (and the first disc 111) moves away from the second hub 114 (and the second disc 113), the blade 120 is elongated accordingly, thereby increasing the amount of airflow entering the fan module 100, that is, the wind catching amount of the blade 120 may also be increased. Also, it can be regarded as that during the telescopic processes of the body 110, the space between the first disc 111 and the second disc 113, that is, the space (regarded as a fan chamber) for driving and compressing the airflow entering the fan module 100, is also expanded or reduced.
Since the region 122 is flexible, the fan module 100 of the embodiment needs to further adjust the relevant structural configuration.
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It should be noted that the configurations of the guiding post 112a and the guiding groove 114a are not limited, which may also be interchangeably disposed on the second hub 114 and the first hub 112. In addition, in another embodiment not shown, the guiding groove may be parallel to the rotating axis, so that the first hub 112 (and the first disc 111) and the second hub 114 (and the second disc 113) only move away from or close to each other along the rotating axis C1 without having any rotation angle.
In summary, in the embodiments of the disclosure, since the body of the fan module has a telescopic state change along the rotating axis while a portion of the blades is also flexible, the axial size of the blades along the rotating axis will be expanded or reduced due to the telescopic change of the body. Furthermore, the blade may be divided into at least two regions, which are arranged between the first disc and the second disc, wherein the region located at the first position or the last position is connected to the first disc and the second disc. Also, whether the regions are flexible may be appropriately adjusted according to requirements and the only constant is that the flexible regions need to maintain a gap with the first hub or the second hub, so that deformation can be smooth without any limitation.
In other words, the user may adjust the telescopic state of the body according to the heat dissipation requirements, so as to change the size of the fan chamber while controlling the wind catching area of the blades, thereby controlling the wind amount of the fan module. Accordingly, the fan module is no longer limited by the body space of the electronic product, so as to improve the applicability thereof.
This application claims the priority benefit of U.S. provisional application Ser. No. 62/825,004, filed on Mar. 27, 2019. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
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9328713 | Beaston | May 2016 | B2 |
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Entry |
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“Office Action of Taiwan Counterpart Application”, dated Feb. 2, 2021, p. 1-p. 5. |
Number | Date | Country | |
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20200355199 A1 | Nov 2020 | US |
Number | Date | Country | |
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62825004 | Mar 2019 | US |