This application claims priority of Taiwanese Application No. 103111977, filed on Mar. 31, 2014.
The invention relates to a lamp, more particularly to a lamp with ventilation function.
A light-emitting diode (LED) is often used in lighting due to its long lifespan and shock-resistant characteristics. However, light-emission efficiency of the LED is affected by increase in temperature. Heat-dissipation, therefore, becomes a primary concern in LED lighting.
Referring to
The optic component 13 and the heat-dissipating unit 2 block respectively the opposite open ends 111 of the channel of the body 11 of the lighting unit 1, thereby preventing air from the external environment from flowing into the body 11 which would otherwise help heat dissipation. The heat-dissipating unit 2 is hence the only means of heat dissipation, and will need to be made larger if better heat-dissipating efficiency is desired. However, this is accompanied by the disadvantage of an increase in the overall size and weight of the conventional LED lamp.
Therefore, the object of the present invention is to provide a lamp with ventilation function that can alleviate the aforesaid drawbacks of the prior art.
Accordingly, a lamp includes a heat-dissipating unit, a light source and a light guide unit. The heat-dissipating unit is formed with at least one heat-dissipating channel that has opposite open ends. The light source is disposed on the heat-dissipating unit. The light guide unit is disposed in front of the light source for guiding light that is emitted from the light source, and is formed with a vent hole that has opposite open ends in spatial communication with the heat-dissipating channel.
Other features and advantages of the present invention will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings, of which:
a) to 6(c) are schematic sectional views used to illustrate the superior heat-dissipating efficiency of the heat-dissipating channel of the first embodiment in comparison with other configurations;
a) to 7(e) are schematic side views of the first embodiment with different orientations;
a) and 8(b) are schematic sectional views used to illustrate the compact size of the first embodiment in comparison with another configuration; and
Before the present invention is described in greater detail, it should be noted that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The light source 4 includes an annular circuit board 42 that is coupled, to the front end surface 312 of the heat-dissipating seat 31, that is surrounded by the second engaging portion 314 of the heat-dissipating seat 31, and that defines a through hole 41 therein, and a plurality light emitting members 43 that are connected to the annular circuit board 42. The through hole 41 is in spatial communication with the heat-dissipating channels 311. In this embodiment, the light emitting members 43 are LEDs. In other embodiments of this invention, the type of the light emitting members 43 is not limited to the disclosure herein.
The light guide unit 5 includes a lens 51 that has a light incident surface 512 facing the heat-dissipating seat 31, and a light emitting surface 513 opposite to and larger than the light incident surface 512. The lens 51 is formed with a vent hole 511 that has opposite open ends formed respectively in the light incident surface 512 and the light emitting surface 513, and in spatial communication with the through hole 41. The light incident surface 512 is further formed with a first engaging portion 515 surrounding the vent hole 511 and engaged with the second engaging portion 314 of the heat-dissipating seat 31, in detail, said second engaging portion 314 is an annular projection wall and said first engaging portion 515 abuts against the inner side of said annular projection wall to be retained by said annular projection wall. The light emitting surface 513 is further formed with a receiving groove 514 surrounding one of the open ends of the vent hole 511 which is formed in the light emitting surface 513. The light emitted, from the light source 4 enters the lens 51 through the light incident surface 512 and is reflected to exit the lens 51 through the light emitting surface 513. The light guide unit 5 further includes an annular fixing member 52 that extends into the vent hole 511 and that is fixed to the heat-dissipating seat 31 so as to position the lens 51. Specifically, the annular fixing member 52 has a heat-dissipating hole 521 that has opposite open ends and that is in spatial communication with the heat-dissipating channels 311, a rear end section 522 that is connected to the front end surface 312 of the heat-dissipating seat 31 and formed with one of the open ends of the heat-dissipating hole 521, and a front end section 523 that is retained in the receiving groove 514 and formed with the other one of the open ends of the heat-dissipating hole 521. In this embodiment, the heat-dissipating hole 521 tapers rearwardly. As shown in
b) and 6(c) illustrate different configurations of the heat-dissipating channel 311 that has a closed front end and a closed rear end, respectively. The lamp having the heat dissipating channel 311 with opposite open ends in
a) and 8(b) respectively illustrate the first embodiment having the heat-dissipating channel 311 with the the opposite open ends and an LED lamp having a heat-dissipating channel with a closed rear end, both having the same heat-dissipating efficiency. As shown in
Referring to
While the present invention has been described in connection with what are considered the most practical embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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103111977 | Mar 2014 | TW | national |