The present invention relates to a magnetic device, and more particularly to a magnetic device with a thermally-conductive bobbin.
An electrical appliance is usually equipped with various magnetic devices such as transformers or inductors. As the electrical appliance is developed toward miniaturization, the sizes of the magnetic devices and the inner components are gradually reduced in order to enhance the space utilization of the circuit board. During operation of the electrical appliance, the electronic components may generate energy in the form of heat. Since the size of the magnetic device is reduced, it is very important to remove the heat. If no proper heat-dissipating mechanism is provided to transfer enough heat to the ambient air, the elevated operating temperature may deteriorate the operating performance, reduce the reliability and shorten the use life of the magnetic device.
During operation of the magnetic device 1, the winding coil 11 and the magnetic core assembly 12 may generate energy in the form of heat, which is readily accumulated within the magnetic device 1. Consequently, the operating temperature of the magnetic device 1 is increased. Moreover, since the heat-dissipating plate 13 is attached on the outer surfaces of the winding coil 11 and the magnetic core assembly 12, the heat-dissipating plate 13 is only able to dissipate the heat from the outer surfaces of the winding coil 11 and the magnetic core assembly 12. That is, the heat from the inner surfaces of the winding coil 11 of the bobbin 10 and the magnetic core assembly 12 fails to be effectively removed by the heat-dissipating plate 13. If no proper heat-dissipating mechanism is provided to transfer enough heat from the inner portion of the magnetic device 1 to the ambient air, the operating temperature is increased. Moreover, as the operating temperature of the magnetic device 1 is increased, the saturation flux density (Bs) of the magnetic core assembly 12 is decreased. Consequently, the operating performance and the electrical safety of the power circuit are both adversely affected. In addition, the magnetic device 1 has reduced operating efficiency, reduced reliability and shortened use life. For avoiding the problem of the elevated operating temperature, a larger magnetic core assembly 12 may be employed to increase the heat-dissipating efficacy and increase the operating performance of the magnetic device 1. However, since the overall volume of the magnetic device 1 is increased, the purpose of minimizing the magnetic device 1 fails to be achieved.
Therefore, there is a need of providing a magnetic device with a thermally-conductive bobbin in order to eliminate the above drawbacks.
The present invention provides a magnetic device with a thermally-conductive bobbin. The thermally-conductive bobbin is effective to dissipate the heat from inner surfaces of the winding coil and the magnetic core assembly. Consequently, the operating temperature of the magnetic device is largely reduced. When compared with the conventional magnetic device having the external heat-dissipating plate, the magnetic device of the present invention has enhanced operating performance, better reliability and longer use life. In addition, the overall volume of the magnetic device is reduced so that the purpose of minimizing the magnetic device can be achieved.
In accordance with an aspect of the present invention, there is provided a magnetic device. The magnetic device includes a thermally-conductive bobbin and a winding coil. The thermally-conductive bobbin has a winding section. The winding coil is wound around the winding section. The heat generated from the winding coil is dissipated away through the thermally-conductive bobbin.
In an embodiment, the magnetic device further comprises a magnetic core assembly. The magnetic core assembly is at least partially embedded within a channel of the thermally-conductive bobbin.
In an embodiment, the thermally-conductive bobbin has a non-seamless ring-shape. Alternatively, the thermally-conductive bobbin is formed by at least two parts having corresponding profiles with each other.
In an embodiment, the thermally-conductive bobbin further comprises a heat-dissipating plate. The heat-dissipating plate is fixed on an inner wall of the thermally-conductive bobbin.
In an embodiment, the magnetic device further comprises an insulating medium. The insulating medium is formed on a surface of the thermally-conductive bobbin, and/or the insulating medium is arranged between the thermally-conductive bobbin and the winding coil, and/or the insulating medium is formed on a surface of the winding coil.
In an embodiment, the magnetic device further comprises a fixing structure, which is extended from the thermally-conductive bobbin. Through the fixing structure, the magnetic device is fixed on a system board.
In an embodiment, a thermal conductivity of the thermally-conductive bobbin is 10 W/m×K or higher than 10 W/m×K.
In accordance with another aspect of the present invention, there is provided a magnetic device. The magnetic device includes a first thermally-conductive bobbin, a first winding coil, a second thermally-conductive bobbin, and a second winding coil. The first thermally-conductive bobbin has a first channel. The first winding coil is wound around the first thermally-conductive bobbin. The second thermally-conductive bobbin has a second channel. The second winding coil is wound around the second thermally-conductive bobbin.
In an embodiment, the magnetic device further comprises a magnetic core assembly. The second thermally-conductive bobbin is accommodated within the first channel of the first thermally-conductive bobbin. The magnetic core assembly is at least partially embedded within the second channel of the second thermally-conductive bobbin.
In an embodiment, the magnetic device further comprises a magnetic core assembly. The first thermally-conductive bobbin and the second thermally-conductive bobbin are arranged in a side-by-side manner. A part of the magnetic core assembly is at least partially embedded within the first channel of the first thermally-conductive bobbin, and another part of the magnetic core assembly is at least partially embedded within the second channel of the second thermally-conductive bobbin.
In an embodiment, a thermal conductivity of the first thermally-conductive bobbin is 10 W/m×K or higher than 10 W/m×K. A thermal conductivity of the second thermally-conductive bobbin is 10 W/m×K or higher than 10 W/m×K.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
Please refer to
In some embodiments, the thermally-conductive bobbin 20 is made of a non-metallic material such as a carbon fiber material, a composite material or a ceramic material. In a case that the thermally-conductive bobbin 20 is made of the non-metallic material, the thermally-conductive bobbin 20 is a seamless ring-shaped plate.
Please refer to
Alternatively, in some other embodiments, the insulating medium 203 is directly formed on the surface of the winding coil 21. That is, the winding coil 21 is covered by the insulating medium 203. After the winding coil 21 with the insulating medium 203 is wound around the winding section 201 of the thermally-conductive bobbin 20, the insulation between the thermally-conductive bobbin 20 and the winding coil 21 is achieved through the insulating medium 203.
After the magnetic device 2 is assembled, the heat from the winding coil 21 and the magnetic core assembly 22 may be dissipated away through the thermally-conductive bobbin 20. As a consequence, the heat-dissipating efficacy is enhanced. In addition to the function of proving a winding section for winding coil and enhancing the heat-dissipating efficacy, the thermally-conductive bobbin 20 is effective to structurally support the magnetic device 2. Moreover, since the bobbin used in the conventional magnetic device is omitted according to the present invention, the material cost of the present magnetic device is reduced. Moreover, since the operating temperature of the magnetic device 2 is largely reduced, the reliability and the use life of the magnetic device 2 are both increased. Since the magnetic properties of the magnetic core assembly 22 are enhanced, the size of the magnetic core assembly 22 may be reduced while maintaining the operating performance of the magnetic device 2. Under this circumstance, the overall volume of the magnetic device 2 is decreased, and the material cost is reduced.
From the above discussions, the thermally-conductive bobbin of the present invention is able to dissipate the heat of the magnetic device. Consequently, the overall heat-dissipating efficacy is enhanced. Moreover, since it is not necessary to install an additional heat-dissipating structure outside the magnetic device, the overall volume of the magnetic device may be reduced. Moreover, the turns of the winding coil may be increased according to the practical requirement in order to enhance the operating performance of the magnetic device.
In this embodiment, the magnetic core assembly 44 is an EE-type magnetic core assembly. The magnetic core assembly 44 includes two E cores, wherein each E core includes a middle post 440 and two lateral posts. After the first thermally-conductive bobbin 40 with the first winding coil 42 and the second thermally-conductive bobbin 41 with the second winding coil 43 are combined together, the middle posts 440 of the magnetic core assembly 44 are inserted into the second channel 410 of the second thermally-conductive bobbin 41. Consequently, the magnetic core assembly 44 is at least partially embedded within the second channel 410 of the second thermally-conductive bobbin 41. The resulting structure of the assembled magnetic device 4 is shown in
In such way, the heat from the first winding coil 42 and the outer surface of the second coil 43 may be dissipated away through the first thermally-conductive bobbin 40, and the heat from the inner surface of the second coil 43 may be dissipated away through the second thermally-conductive bobbin 41. In other words, the uses of the first thermally-conductive bobbin 40 and the second thermally-conductive bobbin 41 can enhance the heat-dissipating efficacy and operating performance of the magnetic device 4.
From the above embodiments, the magnetic device includes one or more thermally-conductive bobbins. For example, the magnetic device may have three, four or five thermally-conductive bobbins. Depending on the number of the thermally-conductive bobbins, the configurations of the magnetic core assembly are correspondingly adjusted. It is noted that numerous modifications and alterations of the magnetic core assembly may be made while retaining the teachings of the invention.
From the above description, the present invention provides a magnetic device with a thermally-conductive bobbin. The thermally-conductive bobbin is effective to dissipate the heat from the inner surfaces of the winding coil and the magnetic core assembly. Consequently, the operating temperature of the magnetic device is largely reduced. When compared with the conventional magnetic device having the external heat-dissipating plate, the magnetic device of the present invention has enhanced operating performance, better reliability and longer use life. Due to the thermally-conductive bobbin, the magnetic device of the present invention has reduced operating temperature, increased turns of winding coil, and enhanced operating performance. In addition, the overall volume of the magnetic device of the present invention is smaller, and the space utilization is enhanced. Moreover, since the heat-dissipating plate used in the conventional magnetic device may be omitted, the material cost of the present magnetic device is reduced.
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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101116247 | May 2012 | TW | national |