1. Field of the Invention
The invention relates to a transformer and a core assembly thereof, and in particular relates to a transformer and a core set thereof for enhancing leakage inductance.
2. Description of the Related Art
Due to a demand for thinner monitors, liquid crystal displays (LCDs) have merits for reducing the thickness and having a high-quality frame. Consequently, the LCDs have rapidly replaced CRT monitors. A backlight module of an LCD monitor comprises a cold cathode fluorescent lamp (CCFL), driven by high voltage, to serve as a light source for the backlight system of the LCD. In general, the CCFL is driven by an inverter, which comprises a drive circuit and a high-voltage transformer.
Although LCD monitors are much thinner than CRT monitors, size requirements for LCD monitors continue to grow. Thus, the length of the CCFL must be increased. The leakage capacitance is therefore increased due to the increased LCD monitor size. To improve entire efficiency and the balance of tube current, matching the leakage inductance and the leakage capacitance is performed to decrease the damage of the transformer. Accordingly, the leakage inductance is necessarily increased for matching up with the increased leakage capacitance.
Referring to
The number of the coils or the distance between the primary coils and the secondary coils can adjust the leakage inductance of the conventional transformer 1. However, the space of the winding area 11 and 12 and the length of two cores 20 be increased. Also, it increases the volume of the transformer 1. If the coil diameter is decreased to substitute for changing the available space for winding areas 11 and 12, the temperature will increase. Thus, the conventional transformers need to be improved.
Referring to
The size of the gap B, the number of the coils or the distance between the primary coils and the secondary coils can adjust the leakage inductance of the conventional transformer 2. It is therefore understood that conventional transformer 2 has the same drawbacks as the conventional transformer 1. Accordingly, the conventional transformer 2 needs to be improved.
Accordingly, an object of the invention is to provide a transformer, which changes the magnetic circuit to enhance the leakage inductance by at least a protrusion of the core set.
Another object of the invention is to provide a core set, which is to solve the problem in the conventional transformer due to drawbacks in increasing the volume and the number of coils to enhance the leakage inductance.
According to the foregoing objects and others, the present invention provides a transformer comprises a bobbin having a hollow portion, a primary winding area and at least a secondary winding area, a first core disposed in the hollow portion of the bobbin, and a second core disposed on the bobbin, wherein the second core comprises a plurality of first protrusions and at least a second protrusion, and the first protrusions which are disposed at two sides of the bobbin and the second protrusion is disposed between the primary winding area and the secondary winding area.
According to the foregoing objects and others, the present invention provides a core set disposed on a bobbin having a hollow portion, a primary winding area and a secondary winding area, the core set comprising a first core and a second core having a plurality of first protrusions and a second protrusion thereon, wherein the first core is disposed in the hollow portion of the bobbin, and the first protrusions of the second core are disposed at two sides of the bobbin and the second protrusion of the second core is disposed between the primary winding area and the second winding area.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
Referring to
The second core 50 further comprises three through holes 53 formed between the first protrusions 51 and the second protrusions 52. Thus, the shape of the second core 50 is three rectangles connected together along a straight line. Furthermore, the width of the first protrusions 51 can be larger than, smaller than, or equal to the width of the second protrusion. (In
Additionally, the first core 30 and the second core 50 are made of metal magnetic materials, such as Mn—Zn materials, Ni—Zn materials, Mg—Zn materials, permeable magnetic materials, or stacked silicon steel. When the first core 30 and the second core 50 are stacked with Mn—Zn materials or silicon steel, a cover 15 is disposed between the bobbin 10 and the second core 50. The cover 15 is made of insulated materials, e.g. plastic. The shape of the cover 15 fits the shape of the bobbin 10. The cover 15 has a bottom and a plurality of sidewalls connected to the bottom, and the cover 15 covers the bobbin 10. The cover 15 is mounted on the bobbin 10 to protect a primary coil (not shown) and two secondary coils (not shown). Subsequently, the second core 50 is mounted on the bobbin 10. The cover 15 comprises an opening 151 formed on one of the sidewalls of the bobbin 10, and is correspondingly to the hollow portion 13 of the bobbin 10. Therefore, the first core 30 is inserted into the hollow portion of the bobbin 10 when the cover 15 covers the bobbin 10. Additionally, the cover 15 comprises two through holes 152 formed on the bottom of the bobbin 10 corresponding to the second protrusions 52 of the second core 50. Therefore, the second protrusions 52 pass through the cover 15 and are disposed between the first primary winding area 11 and the second winding areas 12.
Furthermore, when the second core 50 is made of Mn—Zn materials or stacked silicon steels, the cover can be omitted by increasing the intervals between the primary winding area 11 of the bobbin 10 and the secondary winding area 12.
The number of the magnetic circuits formed by the first core 30 and the second core 50 is increased due to the two second protrusions 52 of the second core 2 of the transformer 3; thus, the leakage inductance is increased without increasing the number of coils or the volume of the transformer. It is therefore improved upon the drawbacks of conventional transformers.
Referring to
In this embodiment, the magnetic circuits are changed because the second core 60 of the transformer 4 further comprises two second protrusions 62 to enhance the leakage inductance.
Referring to
The second core 80 further comprises two through holes 83. The through holes 83 are formed between the first protrusions 81 and second protrusion 82. Thus, the shape of the second core 80 is two rectangles connected together along a straight line. Furthermore, the first protrusions 81 are wider than the second protrusion 82. The cross sections of the first protrusions 81 and the second protrusion 82 of the second core 80 are U-shaped to form gap between the first core 30 and the second core 80 (not shown).
When the second core 50 is made of Mn—Zn materials or stacked silicon steel, a cover can be disposed between the bobbin 70 and the second core 80. The cover is made of insulated materials. The shape of the cover 14 fits the shape of the bobbin 70 for the purpose of assembling the cover 14 and the bobbin 70. The structure of and the function of the cover is similar to the previously described cover, thus the descriptions and figures thereof are omitted.
In this embodiment, the magnetic circuits are changed because the second core 80 of the transformer 5 further comprises the two second protrusions 82, to enhance leakage inductance.
In the invention, the transformer and the core assembly thereof comprise at least a protrusion between the primary coil and secondary coil to change the number of the magnetic circuits. Then, the leakage inductance is enhanced to fit the leakage capacitance. Hence, the total efficiency is promoted and the tube current is balanced without increasing the number of coils and the size of the transformer.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
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