The present invention claims priority under 35 U.S.C. §119 to Japanese Patent Application No. 2012-161668 filed on Jul. 20, 2012. The content of the application is incorporated herein by reference in their entirety.
Embodiments described herein relate generally to an LED module in which a plurality of LEDs are arranged on a substrate and a tube type lamp and a luminaire including the LED module.
In the past, for example, in a tube type lamp in which an LED is used as a light source, an LED module including an elongated substrate and a plurality of LEDs arranged along the longitudinal direction of the substrate is used.
As a configuration of the LED module, for example, a configuration is known in which a series circuit formed by connecting a plurality of LEDs in series is provided and a plurality of the series circuits are connected in parallel.
However, the LEDs have fluctuation in a forward voltage because of differences among individuals. Therefore, even if a constant current flows to the series circuit, different voltages are applied to the individual LEDs of the series circuit. On the other hand, if the plurality of series circuits are connected in parallel, a constant voltage is applied to the individual series circuits. However, an electric current flowing to each of the series circuits is different because of the fluctuation in the forward voltage due to the differences among individual LEDs. Therefore, a difference sometimes occurs in brightness in each of the series circuits.
In the past, the plurality of LEDs are continuously arranged in each of the series circuits along the longitudinal direction of the substrate. Therefore, if a user looks at a light-emitting section of the tube type lamp, the user tends to recognize that brightness unevenness occurs in each of the series circuits.
There is provided an LED module, a tube type lamp, and a luminaire that can reduce unevenness of brightness.
a) and 7(b) are diagrams of an LED module according to a fifth embodiment, wherein
a) and 8(b) are diagrams of an LED module according to a sixth embodiment, wherein
In general, according to one embodiment, an LED module includes a substrate and a connection circuit. The connection circuit includes at least two or more series circuits, in each of which a plurality of LEDs are connected in series. The LEDs of the series circuits different from one another are mixedly arranged along the longitudinal direction of the substrate.
With this configuration, since the LEDs of the different series circuits are mixedly arranged along the longitudinal direction of the substrate, it is possible to expect that unevenness of brightness in the entire LED module can be reduced even if a difference occurs in brightness in each of the series circuits.
Embodiments are explained with reference to the accompanying drawings.
First, a tube type lamp and a luminaire including an LED module are explained with reference to
As shown in
The LED module 11 includes a plurality of substrates 18 and a plurality of LEDs 19 mounted on the entire surfaces of the plurality of substrates 18.
Each of the substrates 18 is formed in an elongated rectangular shape from a material such as metal, ceramics, or resin. A wiring pattern is formed on one surface of the substrate 18. The plurality of LEDs 19 are mounted on the wiring pattern. The plurality of substrates 18 are arrayed in a row along the longitudinal direction of the LED module 11. The plurality of substrates 18 are electrically connected to one another by, for example, connectors at ends of the substrates 18 opposed to each other. A connecting section 20 (see
As the LED 19, for example, an LED package of a surface mounting type is used. In the LED package, LED chips are mounted on a base on which electrodes are provided. A reflector including a recess having a circular truncated cone shape in which the LED chips are housed is bonded to the base provided with an electrode. Further, translucent sealing resin including phosphors is filled in the recess.
The cap for power supply 14 includes a pair of power-supply terminals 23 electrically connected to the connecting section 20 of the substrate 18. The cap for non-power supply 15 includes a non-power-supply terminal 24.
As shown in
The LED module 11 according to a first embodiment is explained with reference to
The connection circuit 33 includes a plurality of series circuits 34 that connect the plurality of LEDs 19 in series and includes a series circuit group 35 that connects the plurality of series circuits 34 in parallel. One series circuit group 35 is arranged on each of the substrates 18. A plurality of the series circuit groups 35 are connected in series between a positive electrode (+) side and a negative electrode (−) side of the connecting section 20 (between the positive electrode (+) and the negative electrode (−) of the direct-current power supply).
A wiring pattern 37 is formed on the substrate 18. The plurality of LEDs 19 are mounted on the wiring pattern 37. The plurality of LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18. In other words, the LEDs 19 of the series circuits 34 different from one another are mixedly arranged along the longitudinal direction of the substrate 18. Further, the LED 19 of the different series circuit 34 is arranged adjacent to each of the LEDs 19 of each of the series circuits 34. For example, as shown in
When direct-current power is supplied to the connecting section 20, all the LEDs 19 connected between the positive electrode (+) side and the negative electrode (−) side of the connecting section 20 emit light.
As explained above, since the LEDs 19 have fluctuation in a forward voltage because of differences among individuals, even if the series circuits 34 are connected in parallel and the same voltage is applied to the series circuits 34, a difference sometimes occurs among electric currents flowing to the series circuits 34. If the difference among the electric currents is large, a difference in the brightness of the series circuits 34 occurs.
For example, it is assumed that the LEDs 19 of the series circuits 34 indicated by A are darker than the LEDs 19 of the series circuits 34 indicated by B. If the LEDs 19 of the series circuits 34 indicated by A are continuously arranged in the longitudinal direction as in the past, the darkness of the LEDs 19 of the series circuits 34 indicated by A is conspicuous in the tube type lamp 10 compared with the LEDs 19 of the other series circuits 34. It is easily recognized that light unevenness occurs among the series circuits 34. On the other hand, in this embodiment, the LEDs 19 of the series circuits 34 indicated by A and the LEDs 19 of the series circuits 34 indicated by B are mixedly arranged along the longitudinal direction of the substrate 18. Therefore, the darkness of the LEDs 19 of the series circuits 34 indicated by A is inconspicuous. As a result, it is possible to make it hard to recognize that unevenness of brightness occurs among the series circuits 34.
Moreover, the LED 19 of the different series circuit 34 is arranged adjacent to each of the LEDs 19 of each of the series circuits 34. In other words, the LEDs 19 of the series circuits 34 indicated by A and the LEDs 19 of the series circuits 34 indicated by B are alternately arranged one by one along the longitudinal direction of the substrate 18. Therefore, it is possible to more surely make it hard to recognize that unevenness of brightness occurs among the series circuits 34.
In this way, in the LED module 11, the LEDs 19 of the different series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18. Therefore, even if a difference occurs in the brightness of the LEDs 19 among the series circuits 34, it is possible to reduce unevenness of the brightness in the entire LED module 11. As a result, it is possible to uniformalize the brightness in the longitudinal direction of the LED module 11.
The plurality of series circuit groups 35 are connected in series. Further, the LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18 in each of the series circuit groups 35. Therefore, it is possible to simplify a wiring structure.
Moreover, each of the series circuit groups 35 is provided in each of the plurality of substrates 18. Therefore, it is possible to simplify the wiring structure.
If the LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18, for example, the LEDs 19 of the series circuits 34 indicated by A and the LEDs 19 of the series circuits 34 indicated by B may be alternately arranged by a plural number (e.g., two, three, or four) along the longitudinal direction of the substrate 18.
The LED module 11 according to a second embodiment is explained with reference to
The connection circuit 33 includes the plurality of series circuit groups 35 in which the plurality of series circuits 34 are connected in parallel. The plurality of series circuit groups 35 are connected in series between the positive electrode (+) and the negative electrode (−) of the direct-current power supply. The LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrates 18 in the series circuit group 35 close to the positive electrode (+) side of the connecting section 20 and the series circuit group 35 close to the negative electrode (−) side of the connecting section 20. For example, as shown in
In this embodiment, as in the first embodiment, in the LED module 11, the LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18. Therefore, even if a difference occurs in the brightness among the series circuits 34, it is possible to reduce unevenness of the brightness in the entire LED module 11. As a result, it is possible to uniformalize the brightness in the longitudinal direction of the LED module 11.
Moreover, the plurality of series circuit groups 35 are connected in series between the positive electrode (+) and the negative electrode (−) of the direct-current power supply. Further, the LED 19 of the series circuit group 35 close to the positive electrode (+) side of the connecting section 20 and the LED 19 of the series circuit group 35 close to the negative electrode (−) side of the connecting section 20 are mixedly arranged along the longitudinal direction of the substrates 18. Therefore, it is possible to simplify a wiring structure.
If the LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18, for example, the LEDs 19 of the series circuit groups 35 indicated by P1 and the LEDs 19 of the series circuit groups 35 indicated by M1 may be alternately arranged by a plural number (e.g., two, three, or four) along the longitudinal direction of the substrate 18.
The LED module 11 according to a third embodiment is shown in
If the series circuit group 35 includes, for example, four series circuits 34 indicated by A, B, C, and D, the LEDs 19 of the series circuits 34 indicated by A, B, C and D may be mixedly arranged along the longitudinal direction of the substrate 18. The number of series circuits 34 on which the LEDs 19 are mixedly arranged along the longitudinal direction of the substrate 18 may be three or five or more besides two and four.
The LED module 11 according to a fourth embodiment is shown in
The LEDs 19 are arranged, for example, in two rows in a direction crossing the longitudinal direction of the substrate 18, i.e., the latitudinal direction of the substrate 18. The LEDs 19 of the series circuits 34 indicated by A are continuously arranged in one row along the longitudinal direction of the substrate 18. The LEDs 19 of the series circuits 34 indicated by B are continuously arranged in the other row along the longitudinal direction of the substrate 18. The LEDs 19 in one row and the LEDs 19 in the other row are arranged to be shifted by a half pitch in the longitudinal direction of the substrate 18.
In the longitudinal direction of the substrate 18, the LEDs 19 indicated by A and the LEDs 19 indicated by B are alternately arranged. Therefore, in this embodiment, as in the embodiments explained above, the LEDs 19 of the plurality of series circuits 34 are mixedly arranged along the longitudinal direction of the substrate 18.
The LED module 11 according to a fifth embodiment is shown in
In the LED module 11, the plurality of substrates 18 mounted with the LEDs 19 are connected along the longitudinal direction of the LED module 11. A predetermined distance L needs to beset between the ends in the longitudinal direction of the substrates 18 and the LEDs 19 in order to secure insulation properties of the LED 19 and limit mounting of the LEDs 19 according to a mounting method.
As indicated by a comparative example shown in
As shown in
The LED module 11 according to a sixth embodiment is shown in
In the LED module 11, the LEDs 19 are arranged in two rows in a direction crossing the longitudinal direction of the substrate. In this case, as in the fifth embodiment, the predetermined distance L needs to be set between the end in the longitudinal direction of the substrate 18 and the LED 19 in each of the rows.
As indicated by a comparative example shown in
As shown in
The LED module 11 can be applied not only to the tube type lamp 10 but also to a luminaire in which the LED module 11 is attached to a luminaire main body.
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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2012-161668 | Jul 2012 | JP | national |