The present invention relates to a fan, and more particularly, to a compact and quiet fan.
Fans are common electric appliances in many homes. The purchase and use of fans are less expensive than the purchase and use of air conditioners.
Referring to
The present invention is therefore intended to obviate or at least alleviate the problems encountered in the prior art.
It is the primary objective of the present invention to provide a compact and quiet fan.
To achieve the foregoing objective, the fan includes an annular frame, a maglev assembly, blades and movable elements. The maglev assembly is connected to the annular frame. Each of the movable elements is connected to an external end of a corresponding one of the blades and kept floating by the maglev assembly.
In another aspect, a fan includes internal and external annular frames, internal and external maglev assemblies, internal and external movable elements, and internal and external blades. The internal maglev assembly is connected to the internal annular frame. The internal movable elements are kept floating by the internal maglev assembly. Each of the internal blades includes an end connected to a corresponding one of the internal movable elements. The external annular frame extends around the internal annular frame. The external maglev assembly is connected to the external annular frame. The external movable elements is kept floating by the external maglev assembly. Each of the external blades includes an end connected to a corresponding one of the external movable elements and another end connected to the internal annular frame.
In another aspect, a fan includes internal, external and intermediate annular frames, internal, external and intermediate maglev assemblies, internal, external and intermediate movable elements, and internal and external blades. The internal maglev assembly is connected to the internal annular frame. The internal movable elements are kept floating by the internal maglev assembly. Each of the internal blades includes an end connected to a corresponding one of the internal movable elements. The external annular frame extends around the internal annular frame. The external maglev assembly is connected to the external annular frame. The external movable elements are kept floating by the external maglev assembly. The intermediate annular frame is connected to the internal annular frame. The intermediate maglev assembly is connected to the intermediate annular frame. The intermediate movable elements are kept floating by the intermediate maglev assembly. Each of the external blades includes an end connected to a corresponding one of the external movable elements and another end connected to a corresponding one of the intermediate movable elements.
Other objectives, advantages and features of the present invention will be apparent from the following description referring to the attached drawings.
The present invention will be described via detailed illustration of six embodiments versus the prior art referring to the drawings wherein:
Referring to
The maglev assembly 21 is located in the groove 200. Details of the maglev assembly 21 will be given later.
The propeller includes blades 22 extending from a hub 24 in a radial manner. Each of the blades 22 includes an end 22a connected to the hub 24 by welding or ultrasonic welding. Preferably, the blades 22 and the hub 24 are made in one piece.
Preferably, the number of the blades 22 is identical to the number of the movable elements 23 to achieve balance in rotation. Each of the movable elements 23 is connected to another end 22b of a corresponding one of the blades 22.
The maglev assembly 21 includes pairs of electromagnets 21a and 21b attached to the external strip 20b and pairs of electromagnets 21a′ and 21b′ attached to the internal strip 20a. Thus, the electromagnets 21a, 21b, 21a′ and 21b′ are located in the groove 200.
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In each of the electromagnets 21a, the controller 9 sends a current I to the solenoid 211 to generate a magnetic field. In each of the electromagnets 21b, the controller 9 sends a current I′ to the solenoid 211 to generate a magnetic field.
In each of the electromagnets 21a′, the controller 9 sends a current I to the solenoid 211 to generate a magnetic field. In each of the electromagnets 21b′, the controller 9 sends a current I′ to the solenoid 211 to generate a magnetic field.
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One of the movable elements 23 is shown and will be called “the movable element 23” in the description referring to
For example, the magnet 231 generates a S-pole (or N-pole) toward the pairs of electromagnets 21a and 21b. For example, the magnet 232 generates an N-pole (or S-pole) toward the pairs of electromagnets 21a and 21b. For example, the magnet 231′ generates an N-pole (or S-pole) toward the pairs of electromagnets 21a′ and 21b′. For example, the magnet 232′ generates a S-pole (or N-pole) toward the pairs of electromagnets 21a′ and 21b′.
The magnet 231 is attracted to each of the electromagnets 21a as indicated by an arrow head f1, but repulsed from each of the electromagnets 21b as indicated by an arrow head f2. The magnet 232 is attracted to each of the electromagnets 21b as indicated by an arrow head f1, but repulsed from each of the electromagnets 21a as indicated by an arrow head f2. The magnet 231′ is attracted to each of the electromagnets 21a′ as indicated by an arrow head f1, but repulsed from each of the electromagnets 21b′ as indicated by an arrow head f2. The magnet 232′ is attracted to each of the electromagnets 21b′ as indicated by an arrow head f1, but repulsed from each of the electromagnets 21a′ as indicated by an arrow head f2. Thus, the movable element 23 is moved and kept floating by the maglev assembly 21.
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Secondly, there is an additional magnetic assembly 34. The magnetic assembly 34 includes an additional magnet 34 attached to each of the movable elements 23 and a magnet 34b attached to the frame 30. The magnet 34b is preferably an annular element fitted in the groove 300. The magnet 34b can however be replaced with magnets in the form of blocks.
Thirdly, there is an additional post 3a. An upper end of the post 3a is connected to the frame 30. A lower end of the post 3a is connected to a base (not numbered).
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In operation, the external maglev assembly 21 keeps the external movable elements 23 floating and moving, thereby keeping the blades 42 in rotation. Preferably, the rotation of the blades 42 is in an opposite sense of direction to the rotation of the blades 22. In another embodiment, the sense of direction of the rotation of the blades 42 is identical to the sense of direction of the rotation of the blades 22.
In another embodiment, there can be another circumferential fan arranged around the circumferential fan 4a.
Referring to
In use, the external and intermediate maglev assemblies 21 keep the external and intermediate movable elements 23 floating and moving, thereby keeping the blades 52 in rotation. Preferably, the rotation of the blades 52 is in an opposite sense of direction to the rotation of the blades 22. In another embodiment, the sense of direction of the rotation of the blades 52 is identical to the sense of direction of the rotation of the blades 22.
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Advantageously, the blades 22, 42 or 52 are rotated by the movable elements 23 and the maglev assembly 21, not a motor that is attached to a rear portion of a conventional fan and thus renders the conventional fan bulky. Hence, the fan 2, 3, 4 or 5 of the present invention is compact.
Moreover, the movable elements 23 are kept floating during the rotation of the blades 22, 42 or 52. There is no friction between the movable elements 23 and the frame 20, 30, 40 or 50. Furthermore, there is no friction between the hub 24 and a mandrel of a motor. Hence, the fan 2, 3, 4 or 5 of the present invention is quiet in operation.
The fan 2, 3, 4 or 5 of the present invention can be used to cool an electronic device. For example, the fan 2, 3, 4 or 5 of the present invention can be used in a computer or a projector.
The fan 2, 3, 4 or 5 of the present invention can be used to evenly distribute heat in an electronic device. For example, the fan 2, 3, 4 or 5 of the present invention can be used in a microwave oven.
The fan 2, 3, 4 or 5 of the present invention can be used to drive a vehicle. For example, the fan 2, 3, 4 or 5 of the present invention can be used on s a drone, a hover craft or a swamp boat.
The present invention has been described via the illustration of the embodiments. Those skilled in the art can derive variations from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.
This application is a divisional of U.S. Non-Provisional patent application Ser. No. 17/100,952 filed on Nov. 23, 2020, and titled “COMPACT AND QUIET FAN” the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | 17100952 | Nov 2020 | US |
Child | 18117402 | US |