The present invention claims priority under 35 U.S.C. §119 to Japanese Patent Application No. 2012-068332 filed on Mar. 23, 2012. The content of the application is incorporated herein by reference in their entirety.
Embodiments described herein relate generally to a wiring board device including a wiring pattern, a luminaire and a manufacturing method of the wiring board device.
Hitherto, for example, in an LED module used in a luminaire, a wiring board device in which a wiring pattern is formed on one surface of a board is used. An LED element is electrically connected to the wiring pattern of the wiring board device. Lighting power from a lighting device is supplied to the LED element through the wiring pattern, and the LED element is turned on.
Besides, in the LED module, the output thereof is increased, and the board is required to have high heat resistance and high heat radiation property as the output increases. In order to satisfy this request, a ceramic board is often used. Also in the ceramic board, similarly to a general printed wiring board, a wiring pattern is generally formed on one surface of the ceramic board by printing.
In order to increase the output of the LED module, a large current is made to flow to the LED element through the wiring pattern, and the amount of heat generated in the LED element is increased since the large current is made to flow. Accordingly, a high heat radiation property is required to be secured.
However, in the related art wiring board device, although the ceramic board is used, since the wiring pattern on the ceramic board is formed by printing, it is difficult to cause a large current to flow through the wiring pattern. This is because, since the thickness of the wiring pattern formed by printing is thin and the cross section through which current flows is small, when a large current is made to flow through the wiring pattern, the wiring pattern is melted by Joule heat and is broken. Besides, although the width of the wiring pattern is widened and the cross section through which current flows can be increased, unless the width of the wiring pattern is widened very widely, the wiring pattern can not resist a large current. Thus, the ceramic board must be made large.
Further, even if a large current can be made to flow through the wiring pattern, since the amount of heat generation of the LED element increases, a required heat radiation property can not be obtained, and consequently, it becomes difficult to cause a large current to flow through the LED element.
As stated above, it is required that the wiring board device can allow a large current to flow through the wiring pattern in a limited size of the ceramic board, and can secure a high heat radiation property.
Exemplary embodiments described herein provide a wiring board device, a luminaire and a manufacturing method of the wiring board device, in which a large current can be made to flow through a wiring pattern in a limited size of a ceramic board, and a high heat radiation property can be secured.
a) to 5(f) are sectional views showing a manufacturing method of the wiring board device.
a) and 6(b) show wiring patterns according to different manufacturing methods, in which
In general, according to one embodiment, a wiring board device includes a ceramic board including a first surface and a second surface. A first electrode layer is formed on the first surface of the ceramic board, and a second electrode layer is formed on the second surface of the ceramic board. The first electrode layer and the second electrode layer are not electrically connected to each other. A first copper plated layer as a wiring pattern is formed on the first electrode layer, and a second copper plated layer is formed on the second electrode layer. The first copper plated layer and the second copper plated layer are not electrically connected to each other. A heat spreader is thermally connected to the second copper plated layer.
According to this structure, since the wiring pattern is formed of the first copper plated layer on the first surface side of the ceramic board, the thickness of the wiring pattern can be easily increased. Further, the second copper plated layer is formed on the second surface side of the ceramic board, and the heat spreader is thermally connected to the second copper plated layer. Accordingly, heat is efficiently conduced from the ceramic board to the heat spreader and can be radiated. Accordingly, a large current can be made to flow through the wiring pattern in the limited size of the ceramic board, and a high heat radiation property can be secured.
Hereinafter, embodiments will be described with reference to
The wiring board device 20 includes a square ceramic board 21. A front side of the ceramic board 21 is a first surface 21a, and a back side thereof is a second surface 21b. A first electrode layer 22a is formed on the first surface 21a, and a first copper plated layer 23a is formed on the first electrode layer 22a. A wiring pattern 24 having a specific shape is formed of the first electrode layer 22a and the first copper plated layer 23a. On the other hand, a second electrode layer 22b is formed on substantially the whole area of the second surface 21b, and a second copper plated layer 23b is formed on the second electrode layer 22b. Further, metal plated layers 25 to protect the copper plated layers 23a and 23b are formed on the surfaces of the copper plated layers 23a and 23b.
The electrode layers 22a and 22b are formed by sputtering of a metal such as titanium. The copper plated layers 23a and 23b are formed by copper plating, and the metal plated layers are formed of, for example, nickel/gold plating or nickel/lead/gold plating. A DPC (Direct Plated Copper) board 26 is formed of the ceramic board 21, the electrode layers 22a and 22b, the copper plated layers 23a and 23b, and the metal plated layers 25.
The first electrode layer 22a and the second electrode layer 22b are formed to have the same thickness, and the first copper plated layer 23a and the second copper plated layer 23b are formed to have the same thickness. As shown in
As shown in
As shown in
As shown in
Although the organic resist layer 31 contains epoxy resin as a main component and is white, there is a tendency that the color is liable to change. The inorganic resist ink layer 32 contains ceramic as a main component and is white, and has a characteristic that the color is hard to change. However, since the particle diameter of the ceramic is large, there is a tendency that light is liable to pass through. Thus, a two-layer structure is adopted in which the inorganic resist ink layer 32 is formed on the organic resist layer 31, so that high reflection efficiency can be continuously maintained.
Although the organic resist layer 31 can be patterned and formed by using a photoresist, the inorganic resist ink layer 32 is patterned and formed by printing. The patterning size accuracy of the inorganic resist ink layer 32 patterned and formed by printing is low, and the distance between itself and the LED element 29 is not stable. Thus, the second distance L2 is increased in view of the size accuracy. When the second distance L2 is large, an area which does not contribute to light reflection becomes large, and reflection efficiency is reduced. Then, the organic resist layer 31 with high patterning accuracy is formed to be close to the LED element 29, so that high reflection efficiency can be obtained. The first distance L1 is 25 to 200 μm, the second distance L2 is 50 to 200 μm, and the relation of the first distance L1≦the second distance L2 is established.
Besides, an annular reflecting frame 34 is formed on the first surface 21a side so as to surround a mount area of the plural LED elements 29. A sealing resin 35 to seal the plural LED elements 29 is filled inside the reflecting frame 34. The sealing resin 35 contains a phosphor which is excited by the light generated by the plural LED elements 29. For example, if the light-emitting module 13 emits white light, the LED element 29 emitting blue light and the phosphor mainly emitting yellow light are used. The blue light generated by the LED element 29 is mixed with the yellow light generated by the phosphor which is excited by the blue light generated by the
LED element 29, and the white light is emitted from the surface of the sealing resin 35. Incidentally, the LED element 29 and the phosphor, which emit lights of colors corresponding to the color of irradiated light, are used.
Besides, a heat spreader 37 is fixed to the second copper plated layer 23b through a solder layer 38 and is thermally connected thereto. The heat spreader 37 includes a copper plate 39 having a thickness of 0.1 to 3 mm, and a metal plated layer 40 such as a nickel plated layer is formed on the whole surface of the copperplate 39. Attachment holes 41 for fixing to a heat radiation part of the luminaire 10 using screws are formed at four corners of the heat spreader 37.
Next, a manufacturing method of the DPC board 26 of the wiring board device 20 will be described with reference to
As shown in
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As shown in
In this way, the DPC board 26 of the wiring board device 20 is manufactured.
Besides, when the light-emitting module 13 is manufactured by using the DPC board 26 of the wiring board device 20, as shown in
The plural LED elements 29 are electrically connected to the wiring pattern 24 (the first copper plated layer 23a) by the solder die bond layer 30.
The annular reflecting frame 34 is provided so as to surround the mount area of the plural LED elements 29, and the sealing resin 35 to seal the plural LED elements 29 is filled inside the reflecting frame 34.
Besides, the heat spreader 37 is fixed to the second copper plated layer 23b by the solder layer 38 and is thermally connected thereto.
In this way, the light-emitting module 13 is manufactured.
Besides, as shown in
The lighting device 14 supplies lighting power to the plural light-emitting modules 13, so that the lighting power flows through the plural LED elements 29 through the wiring patterns 24 of the respective light-emitting modules 13. Thus, the plural light-emitting modules 13 are turned on, and the lights from the plural light-emitting modules 13 are emitted from the floodlight window 12.
The heat generated in the plural LED elements 29 at the time of lighting of the light-emitting modules 13 is efficiently conducted to the first copper plated layer 23a, the ceramic board 21, the second copper plated layer 23b and the heat spreader 37. Further, the heat is efficiently conducted from the heat spreader 37 to the heat radiation part of the equipment main body 11, and is radiated from the heat radiation part of the equipment main body 11.
In this embodiment, since the wiring pattern 24 is formed of the copper plated layer 23a on the first surface 21a side of the ceramic board 21, the thickness of the wiring pattern 24 can be easily increased. Thus, a large current can be made to flow through the wiring pattern 24, and high output of the light-emitting module 13 can be ensured.
Further, since the second copper plated layer 23b is formed on the second surface 21b side of the ceramic board 21, the high heat radiation property from the second copper plated layer 23b can be obtained.
Accordingly, a large current can be made to flow through the wiring pattern 24 in the limited size of the ceramic board 21, and the high heat radiation property can be secured.
Besides, the first copper plated layer 23a and the second copper plated layer 23b have the same thickness. That is, the first copper plated layer 23a and the second copper plated layer 23b can be simultaneously formed at the time of plating, and the manufacturing efficiency can be improved.
Besides, since the first electrode layer 22a and the first copper plated layer 23a are not electrically connected to the second electrode layer 22b and the second copper plated layer 23b, the reliability can be secured.
Besides, since the minimum width of the first copper plated layer 23a (the wiring pattern 24 through which current flows) is 50 to 75 μm, and the thickness is 35 to 100 μm, a large current can be made to flow without increasing the width. Incidentally, the thickness of the first copper plated layer 23a is preferably 50 μm or more from the viewpoint that a large current is made to flow and is 75 μm or less from the viewpoint of manufacturing efficiency. That is, the more preferable thickness range of the first copper plated layer 23a is 50 to 75 μm.
Besides, a current of 1 to 8 amperes flows through the first copper plated layer 23a, and even if a current is large as a current flowing through the wiring pattern 24, the large current can be allowed to flow through the first copper plated layer 23a.
Besides, further merits obtained when the wiring pattern 24 is formed by copper plating will be described with reference to
As shown in
On the other hand, as shown in
Besides, since the heat spreader 37 is thermally connected to the second copper plated layer 23b, heat is efficiently conducted from the ceramic board 21 to the heat spreader 37 and can be radiated, and high output of the light-emitting module 13 can be ensured.
Further, since the second copper plated layer 23b and the heat spreader 37 are soldered to each other, heat conductivity from the second copper plated layer 23b to the heat spreader 37 can be improved.
Besides, the plural LED elements 29 are electrically connected to the first copper plated layer 23a of the wiring board device 20, so that the light-emitting module 13 capable of ensuring high output can be provided.
Besides, since the organic resist layer 31 is formed on the first copper plated layer 23a and the inorganic resist ink layer 32 is formed on the organic resist layer 31, high reflection efficiency can be continuously maintained. That is, although the organic resist layer 31 contains epoxy resin as a main component and is white, there is a tendency that the color is liable to change. On the other hand, the inorganic resist ink layer 32 contains ceramic as a main component and is white, and has a characteristic that the color is hard to change. However, since the particle diameter of the ceramic is large, there is a tendency that light is liable to pass through. Thus, the two-layer structure is adopted in which the inorganic resist ink layer 32 is formed on the organic resist layer 31, so that high reflection efficiency can be continuously maintained.
Besides, the organic resist layer 31 is formed to be spaced from the LED element 29 by the first distance L1, the inorganic resist ink layer 32 is formed to be spaced from the end of the organic resist layer 31 facing the LED element 29 by the second distance L2, and the relation of the first distance L1≦second distance L2 is established. Thus, high reflection efficiency can be obtained. That is, although the organic resist layer 31 can be patterned and formed by using a photoresist, the inorganic resist ink layer 32 is patterned and formed by printing. The patterning accuracy of the inorganic resist ink layer 32 patterned and formed by printing is low, and the distance between itself and the LED element 29 is not stable. Thus, the second distance L2 is preferably increased in view of the accuracy. When the second distance L2 is large, an area which does not contribute to the light reflection becomes large, and reflection efficiency is reduced. Then, the organic resist layer 31 with high patterning accuracy is formed to be close to the LED element 29, so that high reflection efficiency can be obtained. The first distance L1 is 25 to 200 μm, the second distance L2 is 50 to 200 μm, and the respective distances L1 and L2 can be suitably set according to the foregoing condition.
Besides, since the metal plated layer 25 is formed on the first copper plated layer 23a between the LED element 29 and the organic resist layer 31, the first copper plated layer 23a is prevented from being corroded and can be protected.
Incidentally, the wiring board device 20 is not limited to the wiring board device for mounting the LED elements 29, and the wiring board device 20 can also be applied to a wiring board device for mounting an integrated circuit, or a wiring board device for mounting electrical parts of a power supply device.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions, and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2012-068332 | Mar 2012 | JP | national |