1. Technical Field
The present invention relates to illuminating devices, and particularly, to an illuminating device with a solid state light emitting element.
2. Description of Related Art
Solid state light emitting elements, such as light emitting diodes (LEDs) have been widely used in illuminating devices.
An LED is capable of producing a visible light in a certain wavelength. However, 80% to 90% energy of the LED has been converted into heat, and only the rest is converted into the light.
Referring to
What is needed, therefore, is an illuminating device which overcomes the above-mentioned problem.
An illuminating device includes a light source module and a power supply module. The light source module includes a substrate, at least one solid state light emitting element, and a plurality of first heat-conducting fins. The substrate has a first surface and an opposite second surface. The at least one solid state light emitting element is arranged on the first surface. The first heat-conducting fins are formed on the second surface. The power supply module includes a housing with a slot formed therein. The housing includes a heat-conducting bottom plate and a plurality of second heat-conducting fins formed on the heat-conducting bottom plate. The light source module is detachably inserted in the slot with the first heat-conducting fins interleaved with the second heat-conducting fins and in thermal contact with the heat-conducting bottom plate.
Other advantages and novel features of the present illuminating device will become more apparent from the following detailed description of embodiment when taken in conjunction with the accompanying drawings.
Many aspects of the illuminating device can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present illuminating device. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Embodiment of the present illuminating device will now be described in detail below and with reference to the drawings.
Referring to
The light source module 21 includes a substrate 210, a plurality of solid state light emitting elements 211, a first electrode terminal 212, a second electrode terminal 213, and a plurality of first heat-conducting fins 214.
The substrate 210 is rectangular, and has a first surface 2101 and an opposite second surface 2102. The substrate 210 has an anchor 2103 formed on a side surface thereof. The substrate 210 is made of a thermally conductive metallic material, such as copper, or aluminum.
The solid state light emitting elements 211, first electrode terminal 212, and second electrode terminal 213 are arranged on the first surface 2101 of the substrate 210. Each of the first electrode terminal 212 and second electrode terminal 213 is an elongated metal strip. The solid state light emitting elements 211 are electrically connected to the first electrode terminal 212 and the second electrode terminal 213. Each of the solid state light emitting elements 211 is an LED.
The first heat-conducting fins 214 are formed on the second surface 2102 of the substrate 210. The first heat-conducting fins 214 are made of a thermal conductive material. The first heat-conducting fins 214 each are rectangular.
A sensor 216 and a first signal terminal 215 are also arranged on the first surface 2101 of the substrate 210. The sensor 216 is configured for detecting brightness and color of light emitted by the solid state light emitting elements 211. In this way, decay of the solid state light emitting elements 211 can be detected. The first signal terminal 215 is configured for transmitting signals from the sensor 216.
The power supply module 22 includes a housing 221 with a slot 2214 formed therein and a transparent top plate 222 detachably coupled thereon, a first power terminal 223, a second power terminal 224, and a second signal terminal 225.
The housing 221 is mainly cuboid shaped. The slot 2214 is defined on a sidewall thereof. The housing 221 has other three sidewalls 2211, 2212 and 2213. The transparent top plate 222 is a planar lens. The first power terminal 223, the second power terminal 224, and the second signal terminal 225 are formed on the respective inner surfaces of the sidewalls 2211, 2212 and 2213 of the housing 221. Furthermore, a hole 2216 is also defined on the inner surface of the sidewall 2213 of the housing 221. The housing 221 further includes a heat-conducting bottom plate 2215 and a plurality of second heat-conducting fins 227 formed on the heat-conducting bottom plate 2215. The second heat-conducting fins 227 are similar in shape to the first heat-conducting fins 214. The heat-conducting bottom plate 2215 and the second heat-conducting fins 227 can be integrally formed into a unitary piece from a thermally conductive material.
The first power terminal 223 and the second power terminal 224 are electrically connected to a power supply 201. The second signal terminal 225 is electrically connected to the power supply 201 via a controller 202. The power supply 201 and the controller 202 can be arranged outside of the housing 221.
The light source module 21 can be detachably inserted in the slot 2214 of the housing 221. The anchor 2103 of the substrate 210 is received in the hole 2216 of the housing 221. The first electrode terminal 212 and second electrode terminal 213 each are electrically coupled to the first power terminal 223 and the second power terminal 224, respectively. The first signal terminal 215 is electrically coupled to the second signal terminal 225. The first heat-conducting fins 214 are interleaved with the second heat-conducting fins 227, and in thermal contact with the heat-conducting bottom plate 2215. A thermal grease 203 can be applied at an interface between the neighboring first and second heat-conducting fins 214, 227, and at an interface between the first heat-conducting fins 214 and the heat-conducting bottom plate 2215. In this way, heat generated by the solid state light emitting elements 211 can be conducted to outside via the substrate 210, the first and second heat-conducting fins 214, 227, and the heat-conducting bottom plate 2215.
The controller 202 can generate a control signal for the power supply 201 based on the signals from the sensor 216. In this way, the power supply 201 can provide a desired driving current for the respective solid state light emitting elements 211.
Referring to
It is understood that the above-described embodiments are intended to illustrate rather than limit the invention. Variations may be made to the embodiments and methods without departing from the spirit of the invention. Accordingly, it is appropriate that the appended claims be construed broadly and in a manner consistent with the scope of the invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 200810300115.7 | Jan 2008 | CN | national |