1. Field of the Invention
The present invention relates generally to switched-mode power supply modules and more particularly to a ferrite mosaic and a magnetic core structure which are applied in passive substrate for switched-mode power supply module.
2. Description of the Related Art
The trend in the design of switched-mode power supply modules improves toward several targets as high power density, ultra-thin thickness and low cost. Power electronic components, in particular magnetic components, having ultra-thin size are the key to the achievement of miniaturization and flat of power-supply modules. Further, the magnetic components such as inductors and transformers embedded in PCB (printed circuit board) could achieve ultra-thin power converter with technology trends.
China patent No. CN101018446 has disclosed that a method for producing passive substrate compatible with PCB (printed circuit board) process. However, the cores for magnetic components embedded into the passive substrate are preferably flat ferrite cores which are cut via diamond cutting machine from commercial magnetic cores or sintered via sintering furnace in accordance with the design needs. Two defects exist in this method: first, it is not conducive to modularity and standardization of the magnetic core and causes a decrease of efficiency of production and an increase of cost; second, in passive integrated module, because of the flat magnetic core of inductors, the gap aspect ratio is so high that results great fringing magnetic field due to fringing effect of the gap. A conventional inductor design would be no longer applicable. Even though adding a correction factor to an inductor design formula to reduce design errors, the fringing field around the gap due to fringing effect would cause that current distribution in winding is not uniform. And it further causes additional copper losses.
In addition, the flat magnetic core has a larger surface area and a thinner thickness, so that while the flat magnetic core is embedded into the passive substrate, it is easy to be broken and cause a higher defect rate.
Regarding to method of the flat magnetic core structure, it has been suggested to produce magnetic core structure by ferrite polymer composites. The ferrite polymer composites are produced by mixing ferrite powder and polymers as to form polymer composites. The average permeability of the ferrite polymer is adjustable by changing the ratio of the ferrite powder to polymers. Although distributed gap in the core made by ferrite polymer composites could reduce the fringing field as to reduce the copper losses, the average permeability of said material is too low and the core loss is high. Hence, it does not suit for high-frequency and high-efficiency switched-mode power supply module.
Aspects of the present invention address one or more of the issues mentioned above, thereby providing a magnetic core structure for passive substrate of switched-mode power supply module. Technology trends of this invention are improvement of modularity and standardization of design of the magnetic core, upgrading the efficiency and reducing production costs; at the same time, fringing field around air-gaps of the magnetic core could be reduced and copper losses are decreased; further, while the magnetic core is embedded into the passive substrate, the magnetic core is not easy to be broken as to cause a higher defect rate.
Aspect 1: a ferrite mosaic for passive substrate of switched-mode power supply module, the ferrite mosaic comprises a supporting plate and numbers of ferrite units stuck on the supporting plate. Each of the ferrite units is rectangular.
Said ferrite mosaic further comprises ferrite glue polymer composites cured in air-gaps between the ferrite units.
Said ferrite glue polymer composites are a mixture of ferrite powders and epoxy polymer resin or a mixture of ferrite powders and organic silicon polymer.
Said supporting plate is a plastic film or insulation paper or PCB plate or ferrite polymer film.
Said each ferrite unit has upper and lower surfaces which are both square.
Said ferrite units define transverse and longitudinal air-gaps therebetween, and width of each transverse air-gap is equal to that of each longitudinal air-gap.
Aspect 2: a magnetic core structure for passive substrate of switched-mode power supply module, the magnetic core structure is finished after cutting, laminating and assembling the ferrite mosaics discussed in aspect 1.
The ferrite units which have standard rectangular shape are formed by sintering or cutting ferrite. And then the ferrite units are stuck onto the supporting plate, and a magnetic core structure having the desired shape and size is formed after cutting, laminating and assembling the ferrite mosaics which are consisted of the ferrite units and the supporting plate. It improves modularity and standardization of the design of the magnetic core, makes production of the magnetic core much easier, reduces the cost and increases the productivity. Simultaneously, ferrite glue polymer composites are cured in air-gaps between the ferrite units. The ferrite glue polymer composite is a mixture of ferrite powders and epoxy polymer resin or a mixture of ferrite powders and organic silicon polymer. The ferrite glue polymer composites have an average permeability more than 1, so each equivalent air gap length between the ferrite units is decreased as to reduce reluctance and get a high-inductance magnetic core.
Moreover, the concentrated air gap of the magnetic core could be dispersed equally to whole magnetic circuit as to reduce the copper losses caused by strong fringing field. This invention discloses that numbers of small area magnetic units are joined together to form a large area magnetic core, and while the magnetic core is embedded into passive substrate, it would not be broken easily as to causes a higher defect rate.
The present invention will be described via detailed illustration of the preferred embodiment referring to the drawings.
a) is an exploded view of a single layer horizontal magnetic core structure with numbers of center poles in accordance with the preferred embodiment of the present invention.
b) is a functional flow diagram in accordance with the preferred embodiment of the present invention, illustrating the installation process of the magnetic core structure shown in
a) is an exploded view of a multi-layer horizontal magnetic core structure without center pole in accordance with the preferred embodiment of the present invention.
b) is a functional flow diagram in accordance with the preferred embodiment of the present invention, illustrating the installation process of the magnetic core structure shown in
a) is an exploded view of a vertical magnetic core structure without center pole in accordance with the preferred embodiment of the present invention.
b) is a functional flow diagram in accordance with the preferred embodiment of the present invention, illustrating the installation process of the magnetic core structure shown in
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The ferrite glue polymer composites 11 are mixture of ferrite powders and epoxy polymer resin or mixture of ferrite powders and organic silicon polymer. Mixing the ferrite powders and the epoxy polymer resin or the organic silicon polymer in varying proportions, it can get ferrite glue polymer composites having different average permeability. Filling this kind of ferrite glue polymer composites into the air-gaps between the ferrite units, due to the average permeability more than 1, the equivalent air gap length would be reduced in proportion. Although the losses of the ferrite glue polymer composites are relatively higher than sintered ferrite, it contributes little to the whole losses of the magnetic component because of their small volume.
During manufacturing the ferrite glue polymer composites, granularity of ferrite powders is smaller than 10 micron and the ferrite powders are preferably MnZn or NiZn ferrite powder. These powders are produced by milling and screening the sintered MnZn or NiZn ferrite. Epoxy polymer resin and organic silicon polymer are needed to be cured quickly at normal temperatures. The epoxy polymer resin is able to be TW GXHY-104 adhesive (Xi'An Towin Telecommunication Technologies Co., Ltd) or high-temperature epoxy adhesive KH0201 (Institute of Chemistry Chinese Academy of Sciences). The organic silicon polymer is able to be KH-SP-RTV silicone rubber (Institute of Chemistry Chinese Academy of Sciences). As an example to TW GXHY-104 adhesive, it consists of two sets adhesives A and B. At room temperature, mixing adhesives A and B in varying proportions can get mixture adhesive with different consistency. In this case, mixing ratio of volume of adhesive A to volume of adhesive B is 2. This mixture adhesive will maintain a thin glue state till 12 hours at room temperature. In addition, if this mixture adhesive is heated to 60 degrees Celsius, it would be cured in 30 minutes.
There are two methods for mixing the ferrite powder and polymers to form ferrite glue polymer composites: (a) first, respectively mixing ferrite powder and the adhesives A and B; second mixing the mixture of ferrite powder and the adhesive A and the mixture of ferrite powder and the adhesive B; b) first, mixing the adhesives A and B; second, mixing ferrite powder and the mixture of the adhesives A and B.
After the mixture of ferrite glue polymer composites is finished, referring to
The ferrite units can also be stuck on the supporting plate, and the ferrite glue polymer composites are filled into and cured in the air-gaps first as to form a ferrite mosaic. And further by cutting, pilling and joining the finished ferrite mosaics forms a desired magnetic core structure. Alternatively, ferrite units can also be stuck on the supporting plate, and by cutting, pilling and joining the finished ferrite mosaics forms a desired magnetic core structure. And further the ferrite glue polymer composites are filled into and cured in the air-gaps as to form a finished ferrite mosaic. And further by pilling and joining the finished ferrite mosaics forms a desired magnetic core structure.
While several embodiments of the invention have been shown and described, it will be apparent to those skilled in the art that modifications may be made therein without departing from the scope and spirit of the present invention.
Number | Date | Country | Kind |
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200810150673.X | Aug 2008 | CN | national |
200910021868.9 | Apr 2009 | CN | national |