The present invention relates to an electric fan, and more particularly to a motor for an electric fan.
With the continuing development of electronic technology, electronic packages such as CPUs (central processing units) are generating more and more heat that requires immediate dissipation. Electric cooling fans are commonly used in combination with heat sinks for cooling the CPUs.
Referring to
For enhancing the amount of airflow generated by the fan, one way is to increase the size of the blades 86. However, this way will increase the size of the cooling fan, which is disadvantageous in view of miniaturization requirement of electronic products. Another way is to reduce the diameter of the hub 82. However, the yokes of the stator core 62 are formed by stamping silicon-steel sheets, each of which has a flat configuration and a predetermined diameter; thus, the size and the shape of the stator core 62 are almost fixed and difficult to be altered. Due to the fixed size and shape of the stator 6, the shape and size of the rotor 8 including the hub 82 are also almost fixed and difficult to be altered. For the conventionally-shaped hub 82, a turbulent flow is produced in the area of an air inlet of the conventional electric fan, which significantly affects the pressure and the speed of the airflow. Furthermore, the flat, disc-shaped top wall 81 of the hub 82 forms a barrier for the airflow through the fan, whereby flow rate of the airflow is adversely affected. Accordingly, the airflow provided by the conventional electric fan cannot efficiently dissipate heat absorbed by a heat sink from a heat-generating electronic component away from the heat sink.
What is needed, therefore, is an electric fan having a relatively lager amount of airflow and a relatively smaller size.
According to a preferred embodiment of the present invention, an electric fan includes a frame having a central tube extending therefrom, a bearing received in the central tube, a stator mounted around the central tube, and a rotor being rotatably supported by the bearing received in the central tube. The frame defines an air inlet and an air outlet at two different sides thereof. The stator includes two poles and a tube arranged between the poles. Each pole includes a basewall and a sidewall extending from the basewall. Each sidewall includes an upper portion adjacent to the air inlet expanding radially along a direction from the air inlet to the air outlet of the electric fan. The rotor includes a hub and a plurality of blades extending an outer-periphery of the hub. An upper portion of the hub expands radially along the flow direction from the basewall of the stator. Thus the hub has a streamline shaped outer surface with the smallest diameter facing the air inlet of the fan; the flow resistance of the airflow is reduced and the turbulent flow and noise are avoided. The fan blades of the rotor have a larger size and thus can generate a larger amount of airflow. Finally a greater amount of airflow with increased speed and pressure is generated, and the heat dissipating effectiveness of the electric fan is improved.
Other advantages and novel features of the present invention will be drawn from the following detailed description of a preferred embodiment of the present invention with attached drawings, in which:
Many aspects of the present electric fan can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present electric fan. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views:
Referring to
The frame 10 is square shaped. An air inlet 19 and air outlet 17 are defined at two opposite sides of the frame 10. An airflow generated by the fan flows from the air inlet 19 to the air outlet 17. The frame 10 includes a base 13 adjacent to the air outlet 17. A central tube 111 extends upwardly from a central portion of the base 13. The central tube 11 defines a central hole 111 receiving the bearing 30 therein. An axial hole 31 is defined in the bearing 30.
Referring to
The upper and lower poles 51, 53 are arranged facing to each other. Each of the poles 51, 53 includes a ring-shaped basewall 511, 531. The ring-shaped basewalls 511, 531 are connected to top and bottom ends 551, 553 of the tube 55, respectively. Sidewalls 513, 533 respectively extend from an outer-periphery of the basewalls 511, 531 of each of the poles 51, 53 to the other pole 53, 51. A circular hole (not labeled) is defined in a central portion of each basewall 511, 531 of the poles 51, 53 and communicates with the through hole 557 of the tube 55. A pair of latches 539 extends inwardly from an inner circumference of the basewall 531 of the lower pole 53 corresponding to the openings 555 of the tube 55. The basewall 531 of the lower pole 53 has an outer diameter relatively larger than that of the basewall 511 of the upper pole 51. An upper portion of each of the sidewalls 513, 533 adjacent to the air inlet 19 expands radially from the basewall 511 of the upper pole 51 to the basewall 531 of the lower pole 53. A lower portion of the sidewalls 513, 533 adjacent to the air outlet 17 is approximately cylinder-shaped. Alternatively, the lower portion of the sidewalls 513, 533 of the poles 51, 53 can expand in the same way as the upper portion and thus the sidewalls 513, 533 can be of hemi-spherical or hemi-ellipsoidal shape. In other words, the diameter of each sidewall 513, 533 gradually increases along a direction from the top end 551 to the bottom end 553 of the tube 55. Each sidewall 513, 533 has a diameter which at the narrowest point is about the same as the outer diameter of the basewall 511 of the upper pole 51 at the top end 551 of the tube 55, and at the widest point has a diameter about the same as the outer diameter of the basewall 531 of the lower pole 53 at the bottom end 553 of the tube 55. A distance between the sidewalls 513, 533 and the tube 55 is gradually increased along the flowing direction of the airflow from the air inlet 19 to the air outlet 17. Cooperatively the sidewalls 513, 533 and the tube 55 define a space for receiving the windings 57 which expands radially along the flowing direction of the airflow therethrough. Also an upper portion of the windings 57 has an arc-shaped figure corresponding to the upper portion of the sidewalls 513, 533 of the poles 51, 53. Four grooves 515, 535 are defined in each of the sidewalls 513, 533 and divide each of the sidewalls 513, 533 into four parts. The four parts of each sidewall 513, 533 are evenly spaced along a circumferential direction thereof. A cutout 517, 537 is defined in a free end of each part spaced from the basewalls 513, 533 so as to help the electric fan to start smoothly.
The rotor 70 covers the stator 50 therein and has a profile generally conforming to the profile of the poles 51, 53 of the stator 50. The rotor 70 includes a hub 71 having a planar shaped topwall 711 forming a shaft seat 72 at a central portion and a sidewall 713 extending downwardly and outwardly from an outer-periphery of the topwall 711, a shaft 77 received in the shaft seat 72 and extending downwardly therefrom to be rotatably received in the bearing 30, a plurality of fan blades 75 extending radially from the sidewall 713 of the hub 71, and a permanent magnet 73 adhered to an inner wall of the sidewall 713 of the hub 71 to establish a magnetic field. According to the shape of the hub 71, the permanent magnet 73 has a top wall 731 with a shape of a flat ring, facing the basewall 511 of the upper pole 51 of the stator 50, and an arc-shaped sidewall 733 facing the sidewalls 513, 533 of the poles 51, 53. The outer diameter of the sidewall 713 of the hub 71 (also the sidewall 733 of the permanent magnet 73) gradually increases along the flow direction of the airflow. The lower portion of the sidewall 713 of the hub 71 adjacent to the air outlet 17 has a diameter relatively larger than that of the topwall 711 of the hub 71 adjacent to the air inlet 19. In other words, an outer surface of the sidewall 713 of the hub 71 is approximately dome-shaped. Thus, the turbulent flow occurring at the inlet of the conventional electric fan can be avoided in the present invention and the flow resistance of the airflow is reduced. The hub 71 occupies a space which is smaller than that of the hub 82 of the conventional electric fan of
When the fan assembly is assembled together, each part of the sidewalls 513, 533 is received in a corresponding groove 535, 515 of the other sidewall 533, 513. The parts of the sidewalls 513, 533 are alternately arranged along the circumferential direction of the poles 51, 53. Each latch 539 engages with a corresponding opening 555 of the tube 55. Thus the stator 50 is assembled together. The assembled stator 50 is mounted around the central tube 11 of the frame 10 with the central tube 11 extending through the through hole 557 of the tube 55. The bearing 30 is mounted into the central hole 111 of the central tube 11. The axial hole 31 of the bearing 30 receives the shaft 77 therein to support the rotor 70 during rotation. During operation, the axial windings 57 wound around the tube 55 establish an alternating magnetic field which interacts with the magnetic field of the permanent magnet 73 of the rotor 70 thus driving the rotor 70 to rotate. The rotating fan blades 75 of the rotor 70 generate airflow to dissipate heat from a heat source. For the larger size of the fan blades 75, a relatively larger amount of airflow is generated by the electric fan of the present invention. As the airflow flows through the electric fan to the heat source, the flowing resistance is lowered due to the streamlined shape of the outer surface of the hub 71. Also the turbulent flow and noise are generally avoided. The speed and pressure of the airflow are increased. After leaving the air outlet 17, the larger amount of airflow with increased speed and pressure blows onto the heat source and takes away the heat of the heat source effectively. Thus, the flow rate of the airflow and the heat dissipating effectiveness of the electric fan are improved.
Referring to
It is understood that the invention may be embodied in other forms without departing from the spirit thereof. Thus, the present example and embodiment is to be considered in all respects as illustrative and not restrictive, and the invention is not to be limited to the details given herein.
| Number | Date | Country | Kind |
|---|---|---|---|
| 200510036430.X | Aug 2005 | CN | national |