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1. Field of the Invention
The present invention relates generally to an airflow generator, and more particularly to an innovative airflow generator which oscillates by braking a plate with magnetization principle, and then generates airflow for heat-radiating structure.
2. Description of Related Art Including Information Disclosed Under 37 CFR 1.97 and 37 CFR 1.98.
Electronic devices may generate different degrees of heat depending upon the operating scale and capacity. Among the electronic devices, the radiator fan is a commonly used heat-radiating structure that requires smaller dimensions to meet the thin-profile development trend of electronic devices.
However, since the radiator fan is mainly composed of a rotor, a stator and an annular blade, the volume is limited to a cylindrical space. When the annular blade is reduced to a certain volume, the problem of difficult molding and higher defectiveness rate may occur, while the heat transfer and radiating effect of the rotary fan blade becomes very poor. Thus, this radiator fan is currently applied to space-saving electronic products, such as desktop or notepad computers. As the functionality of some electronic/telecom equipment (e.g. mobile phone, PDA and digital camera) improves quickly and the operating capacity of internal processors achieves a manifold growth than ever before, the heat generated increases considerably.
The currently available palm electronic/telecom equipment generates excessively high temperatures, leading to a negative impact on the electronic components and shortening the service life with higher risk hazards. So, a heat-radiating mechanism is required. Owing to the limitations of volume of the aforementioned radiator fan and inflexibility of the rotary blade, there is a lower possibility of achieving the desired heat-radiating efficiency for compact electronic/telecom equipment.
Thus, to overcome the aforementioned problems of the prior art, it would be an advancement in the art to provide an improved structure that can significantly improve efficacy.
Therefore, the inventor has provided the present invention of practicability after deliberate design and evaluation based on years of experience in the production, development and design of related products.
As compared with a typical radiator fan disclosed in the prior art, the airflow generator of the present invention could be developed into a compact and flat shape with desirable heat-radiating efficiency, thereby resolving the poor heat-radiating efficiency and bottleneck of typical radiator fan. The airflow generator of the present invention will be widely applied to the heat-radiating structure of various lightweight electronic devices (e.g. mobile phones, PDAs and digital cameras), helping to realize efficient heat-radiation within a compact space.
Based on the structure of the rotary portion of the plate being coupled with the magnetic brake unit, the structure could be simplified to further cut down the manufacturing cost and reduce the assembly space of an airflow generator with better applicability.
With a bending portion arranged between the rotary portion of the plate and swinging end, it is possible to improve the ductility and flexibility of the swinging end of the plate for a better airflow effect.
Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
The features and the advantages of the present invention will be more readily understood upon a thoughtful deliberation of the following detailed description of a preferred embodiment of the present invention with reference to the accompanying drawings.
The airflow generator A comprises a plate 10, which is a long plate of predefined thickness containing a rotary portion 11 and a swinging end 12 far away from this rotary portion 11. There is a magnetic brake unit 20 linked to the rotary portion 11 of the plate 10. The magnetic brake unit 20 comprises a first magnetizing portion 21 and a second magnetizing portion 22, wherein the first magnetizing portion 21 is set into fixed state, and the second magnetizing portion 22 is set into rotary state. The rotary portion 11 of the plate 10 is coupled with the second magnetizing portion 22. The interactive magnetizing action of the first and second magnetizing portions 21, 22 enables the second magnetizing portion 22 and the rotary portion 11 of the plate 10 to generate a reciprocating rotation, thus driving the swinging end 12 of the plate 10 to generate oscillating traverse motion.
Referring to
Referring to
Two sensor elements (e.g. Hall elements) are arranged at two positions between the rotor 220 and stator 210 to sense the rotation angle of the rotor 220 and to generate reversing signals to the aforementioned controller 30. The controller 30 is used to switch the magnetizing state of rotor 220 and stator 210, enabling oscillating rotation of the rotor 220 according to preset frequency. Moreover, only a small-angle reciprocating rotation of the rotary portion 11 of the plate 10 allows for oscillating traverse motion of the plate 10, so said rotor 220 and stator 210 can also have a circular shape (e.g. semicircular and quadrant) for achieving the same performance.
Referring to
Referring to
Referring to
As for the aforementioned airflow generator A, the actual application of plate 10 and magnetic brake unit 20 is shown in