1. Technical Field
The present invention relates to an LED lighting apparatus.
2. Background Art
An LED lighting apparatus has a large amount of heat generated due to heat generated by LED. Generally, when the LED lighting apparatus is overheated, the LED lighting apparatus may malfunction or be damaged, and thus it is essentially required to equip the LED lighting apparatus with a heat-dissipating structure in order to prevent the overheating. Moreover, a power supply apparatus for supplying electric power to LED also generates a large amount of heat and suffers with shortened life.
To prevent the overheating problem, Korean Patent Publication 2009-0095903 has disclosed a structure that discharges a linear heat radiation member on an external circumferential surface of the body surrounding a light source. However, in this kind of structure, the air having the heat held therein is stagnated on the exterior of the body in such a way that the problem of lowered heat-dissipating efficiency remains unsolved. Moreover, the heat generated from the light source is confined in the cylindrical body to cause a thermal bottleneck phenomenon, in which the heat confined in the cylindrical body is not transferred to the heat radiation member quickly enough.
Moreover, the power supply apparatus is simply exposed to an outside of the body to dissipate the heat, but this structure of dissipating the heat by simply being exposed has the air with the heat stagnated around, limiting the heat-dissipating capability.
The present invention provides an LED lighting apparatus that can increase heat-dissipating efficiencies of LED and a power supply unit by activating the flow of air around a heat-dissipating member.
An aspect of the present invention features an LED lighting apparatus that includes: a light source module having an LED light source therein; a thermal base coupled with the light source module and configured to receive heat generated by the light source module; a heat-dissipating member coupled with edge regions of the thermal base to discharge heat transferred from the thermal base and having a ventilation unit formed therein for opening a central area of the thermal base so as to facilitate air ventilation with an outside; and a power supply unit disposed outside the heat-dissipating member so as to be positioned in a path of air moving toward the heat-dissipating member and configured to supply electric power to the light source module.
The heat-dissipating member can include a spiral structure of heat-dissipating loop that repeatedly forms heat-absorbing units coupled to the edge regions of the thermal base to receive heat and heat-dissipating units separated from the heat-absorbing units to dissipate the absorbed heat.
The heat-dissipating loop can include an oscillating capillary tube type of heat-pipe loop, into which working fluid is injected.
The LED lighting apparatus can also include a case having the heat-dissipating member and the power supply unit accommodated therein and having an opening formed on an upper side thereof for allowing air to pass through.
The LED lighting apparatus can also include a front cover covering the light source module and having ventilation holes formed in edge regions thereof.
The LED lighting apparatus can also include a support member configured to separate the power supply unit from the thermal base and to support the power supply unit.
The LED light source can be provided in plurality, and the plurality of LED light sources can be disposed corresponding to the edge regions of the thermal base.
According to the present invention, the heat-dissipating efficiency can be improved by allowing the air around the heat-dissipating member and the power supply unit to flow easily without stagnation, and overheating of the power supply unit can be effectively prevented by additionally cooling the power supply unit by use of the air flow.
Moreover, since the heat generated from LED is spread out in wide direction, the heat-dissipating efficiency can be enhanced by preventing heat transfer from slowing down.
Hereinafter, a certain embodiment of the present invention will be described with reference to the accompanying drawings.
The LED lighting apparatus in accordance with an embodiment of the present invention includes a light source module 5, a thermal base 10, a heat-dissipating member 20 and a power supply unit 30.
The light source module 5 is a portion that includes an LED light source 6, which can emit light by use of electrical energy, to generate light required for lighting. As illustrated in
The thermal base 10 is a portion that receives heat generated by the LED light source 6 and transfers the heat to the heat-dissipating member 20. For this, one side of the thermal base 10 is coupled with the LED light source 6 so as to enable heat transfer, and an edge region of the thermal base 10 is coupled with the heat-dissipating member 20 so as to enable heat transfer. Moreover, the thermal base 10 is made of a material that transfers heat quickly. Accordingly, the heat absorbed by the thermal base 10 can be readily transferred to the heat-dissipating member 20.
Most of the heat absorbed by the thermal base 10 is dissipated through edge regions where the heat-dissipating member 20 is coupled. Accordingly, heat transfer passages, in which cross-sectional areas thereof are increased along the passages, are formed in the thermal base 10. Since the heat transfer becomes faster as the cross-sectional areas are increased, the heat absorbed by the thermal base 10 is not stagnated but can be quickly transferred to the heat-dissipating member 20 to increase the heat-dissipating efficiency. In the case where the LED light source 6 is provided in plurality, the plurality of LED light sources 6 can be arranged to correspond to the edge regions of the thermal base to shorten the heat transfer passages and further improve the speed of heat transfer to the heat-dissipating member 20.
As illustrated in
The thermal base 10 in accordance with the present embodiment has a coupling device 15 coupled thereto for suspending the LED lighting apparatus from a ceiling and for supporting the LED lighting apparatus.
The heat-dissipating member 20 is a portion that is coupled with the edge region of the thermal base 10 to dissipate the heat transferred from the thermal base 10. Particularly, the heat-dissipating member 20 of the present embodiment is formed with a ventilation unit that opens a central area of the thermal base 10 and allows the air to flow freely so as to facilitate air ventilation to the outside.
As illustrated in
Specifically, the air in the hollow space 22 having passed through the heat-dissipating member 20 is in a heated state due to heat received from the heat-dissipating member 20 and thus naturally ascends and is discharged to an outside. When the air inside the hollow space 22 ascends, new, cold outside air is flowed in through the ventilation unit of the heat-dissipating member 20 in order to fill the hollow space 22. In other words, the cold, outside air is flowed in through the ventilation unit of the heat-dissipating member 20, and the flowed-in air is heated by the heat-dissipating member 20 and discharged, creating a continuous flow of air.
Therefore, by increasing the ventilation efficiency and facilitating continuous air flow around the heat-dissipating member 20, it becomes possible to prevent the air having the heat held therein from stagnating and lowering the heat-dissipating performance.
Meanwhile, the air ventilated inwardly can function to dissipate not only the heat of the heat-dissipating member 20 but also the heat absorbed in the thermal base 10, further improving the heat-dissipating efficiency. That is, a surface of the thermal base 10 can be also used as an effective area for heat dissipation.
Specifically, as illustrated in
Moreover, the heat-dissipating loop can include an oscillating capillary tube type of heat-pipe loop, into which working fluid 26 is injected.
As illustrated in
The heat-dissipating member 20 constituted with the linear members is not restricted to the spiral loop type but can be embodied in various permutations, for example, a parallel-arranged plurality of linear members, each of which having a heat-absorbing unit coupled with the edge region of the thermal base 10 to receive heat and a heat-dissipating unit separated from the heat-absorbing unit to dissipate the absorbed heat.
The power supply unit 30 is a portion that supplies electric power required for the light source module 5. Particularly, the power supply unit 30 of the present embodiment is located on a movement path of the air toward the heat-dissipating member 20 so as to prevent overheating.
As shown in
Here, the power supply unit 30 can be separated from the thermal base 10 so as to facilitate the flow of the outside air around the power supply unit 30. As shown in
The LED lighting apparatus in accordance with the present embodiment can additionally include a case 40 and a front cover 45 for protecting internal parts and facilitating an efficient air flow.
As illustrated in
Moreover, as illustrated in
Specifically, as illustrated in
Therefore, the outside air flowed through the ventilation holes 46 of the front cover 45 absorbs heat and becomes heated while sequentially passing through the thermal base 10, the power supply unit 30 and the heat-dissipating member 20, and the heated air is collected in the hollow space 22 of the heat-dissipating member 20 and then ascends to be discharged through the opening 42 on the upper side of the case 40.
Accordingly, the heat-dissipating efficiency can be improved by allowing the air around the heat-dissipating member 20 and the power supply unit 30 to flow easily without stagnation, and overheating of the power supply unit 30 can be effectively prevented by additionally cooling the power supply unit 30 by use of the air flow.
While the present invention has been described with reference to a certain embodiment, the embodiment is for illustrative purposes only and shall not limit the invention. It is to be appreciated that those skilled in the art can change or modify the embodiment without departing from the scope and spirit of the invention.
It shall be also appreciated that a very large number of embodiments other than that described herein are possible within the scope of the present invention, which shall be defined by the claims appended below.
Number | Date | Country | Kind |
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10-2011-0078775 | Aug 2011 | KR | national |
This application is a continuation of PCT/KR2012/004274 filed May 31, 2012, which claims the benefit of Korean Patent Application No. 10-2011-0078775, filed with the Korean Intellectual Property Office on Aug. 8, 2011, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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Parent | PCT/KR12/04274 | May 2012 | US |
Child | 14172251 | US |