1. Field of the Invention
The present invention relates to a lighting device, and more specifically, to a lighting device with a liquid ejection function.
2. Description of the Prior Art
In general, outdoor illumination is one of main applications of a conventional lighting device. For preventing liquid (e.g. rainwater) from entering the lighting device via its heat dissipating hole or structure gap to cause short circuit, the lighting device usually has a waterproof function by a sealing structural design, so as to ensure that the circuit devices in the lighting device can work properly. Accordingly, the lighting device can keep illuminating in an outdoor environment. However, the said sealing structural design obstructs air convection between the lighting device and the outdoor environment, so as to make heat generated by light emitting diodes in the lighting device incapable of being dissipated efficiently. As a result, life of the lighting device is reduced greatly due to the internal temperature increase. On the other hand, the lighting device does not have a water ejection function. Thus, after the lighting device is used over a period of time, water may accumulate in the lighting device to make the internal structures of the lighting device become rusty easily. The said condition also reduces life of the lighting device. Furthermore, for a conventional lighting device with heat dissipating fins which are exposed outside, dust and rainwater can not be expelled quickly, but accumulate over the dissipating fins so as to reduce heat dissipating efficiency of the heating dissipating fins greatly. In such a manner, the internal temperature of the lighting device is raised easily, and then life of the lighting device is further influenced.
The present invention provides a lighting device with a liquid ejection function. The lighting device includes a first cover, a heat dissipating structure, and a lightbar device. A plurality of first guide slots is formed on the first cover. The heat dissipating structure is disposed in the first cover and has a plurality of heat dissipating fins. A plurality of second guide slots is formed on positions between adjacent heat dissipating fins respectively corresponding to the plurality of first guide slots. The lightbar device is disposed on the heat dissipating structure. Light generated by the lightbar device is emitted out of the first cover. Liquid is drained out through at least one of the plurality of first guide slots and the corresponding second guide slot.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
More detailed description for the structural design of the components of the lighting device 10 is provided as follows. Please refer to
In the following, the liquid ejection design of the lighting device 10 is described in detail on condition that the lighting device 10 is applied to outdoor illumination. When liquid (e.g. rainwater) falls on the lighting device 10 during the lighting device 10 is used, the liquid flows from the surface of the first cover 12 to at least one of the first guide slots 24 and then enters the lighting device 10 via the first guide slot 24. Subsequently, since the second guide slots 28 and the third guide slots 30 are formed on the heat dissipating structure 16 and the second cover 14 respectively as mentioned above, the said liquid flows through the corresponding second guide slot 28 and the corresponding third guide slot 30 sequentially and then is drained out of the second cover 14. In brief, via the flow guide design of the first guide slot 24, the second guide slot 28, and the third guide slot 30, the liquid that enters the lighting device 10 can be drained out of the lighting device 10 quickly. Thus, the present invention can prevent the liquid from continuously accumulating in the lighting device, as well as prevent the components in the lighting device 10 from becoming rusty due to the accumulated liquid, so as to prolong life of the lighting device 10. In practical application, for making the liquid be drained out more efficiently, at least one liquid outlet (not shown in figures) is selectively formed at the bottom side of the first cover 12 or the second cover 14 for guiding draining out of the liquid.
Besides the said liquid ejection function, the lighting device 10 can also have a function of expelling small objects (e.g. dust). That is, a small object can also be expelled out of the lighting device 10 after passing through the first guide slot 24, the second guide slot 28, and the third guide slot 30 sequentially. Thus, the problem that small objects accumulate in the lighting device 10 after the lighting device 10 is used over a period of time can be solved. Furthermore, the lighting device 10 can further have a heating dissipating function by the first guide slot 24 and the third guide slot 30 respectively formed on the first cover 12 and the second cover 14, meaning that the heat dissipating structure 16 can dissipate heat generated during the lighting device 10 emits light cooperatively with the first guide slot 24 and the third guide slot 30.
To be noted, in another embodiment, a guide channel (not shown in figures) is extendedly formed on the first guide slot 24 or the second guide slot 28. The guide channel is communicated with the corresponding first guide slot 24 and the corresponding second guide slot 28 for guiding the flow of the liquid. In such a manner, the liquid can flow from the first guide slot 24 to the corresponding second guide slot 28 more efficiently so as to enhance liquid ejection efficiency of the lighting device 10. The said guide channel can also be formed the second guide slot 28 or the third guide slot 30 for communicating with the second guide slot 28 and the third guide slot 30.
Furthermore, disposal of the lighting device 10 is not limited to the design of utilizing the support frame 20 to support the first cover 12 and the second cover 14 on the holding surface 22 mentioned in the said embodiment. That is, the support frame 20 can be an omissible component. For example, please refer to
Compared with the prior art, the present invention utilizes the design that both of the cover and the heat dissipating structure have the corresponding guide slots formed thereon, so that liquid can be drained out of the lighting device after passing through the corresponding guide slots sequentially. In such a manner, the lighting device provided by the present invention can not only prevent that liquid (or small objects) accumulates therein and then reduces heat dissipating efficiency of the lighting device, but also solve the problem that the components in the lighting device become rusty easily due to the accumulated liquid. Accordingly, life of the lighting device can be enhanced. Furthermore, the heat dissipating structure can also dissipate heat generated during the lighting device emits light cooperatively with the guide slots.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention.