This application claims priority of Chinese Application No. 201010161800.3, filed on Apr. 29, 2010.
1. Field of the Invention
The present invention relates to a lamp, and more particularly, to an LED (light-emitting diode) lamp having a good heat-dissipating structure.
2. Description of the Related Art
An LED has the advantages of high efficiency, long life, and low power consumption. LEDs have been gradually replacing traditional light bulbs in recent years. Examples of such replacement include use of LEDs in lighting apparatuses, in backlight modules for display devices, as well as in streetlights.
LEDs experience a drop in efficiency as temperature is increased. Hence, in LED lamps where a plurality of LEDs are used together, good heat dissipation is necessary to maintain high efficiency.
Taiwanese Utility Model Patent No. 368014 discloses a structure for an LED street light assembly, in which a fin structure is used for heat-dissipation purposes.
It is an object of the present invention to provide an LED lamp including a heat-dissipating structure that effectively minimizes the heat generated by the LED lamp through use of a simple, low cost, and easy-to-assemble configuration.
According to one aspect, the LED lamp of this invent ion comprises a lamp seat and a light assembly.
The lamp seat includes a heat-dispersing unit having a plurality of tubular members extending in a horizontal direction and disposed in a side-by-side manner. Each of the tubular members defines a tubular space.
The light assembly includes a light module having an LED element. The light module is mounted directly or indirectly on the tubular members of the heat-dispersing unit.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
Before the present invention is described in greater detail with reference to the accompanying preferred embodiments, it should be noted herein that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The lamp seat 101 includes a heat-dispersing unit 1, a pair of side covers 21, 22, and a top cover 3. The heat-dispersing unit 1 includes a support member 11 and a plurality of tubular members 12. The support member 11 has an elongated, semi-cylindrical structure, and includes a bottom portion 111, and a pair of side portions 112 extending upwardly from opposite sides of the bottom portion 111 to thereby be spaced apart from each other. The cross-sectional view of the support member 11 (see
Some of the tubular members 12 are disposed in a side-by-side manner starting from an outer surface of one of the side portions 112 to thereby be arranged on a first side of the support member 11, and the remainder of the tubular members 12 are disposed in a side-by-side manner starting from an outer surface of the other one of the side portions 112 to thereby be arranged on a second side of the support member 11.
In the first preferred embodiment, the heat-dispersing unit 1 is formed by an aluminum extrusion process, such that the support member 11 and the tubular members 12 are formed as a single piece.
Each of the tubular members 12 extends in a horizontal direction and defines a tubular space 121. In this embodiment, each of the tubular members 12 includes a wall assembly 128 having an outer tubular wall 124, an upper tubular wall 122 disposed above and spaced apart from the outer tubular wall 124, and an intermediate tubular wall 127 interconnecting the outer and upper tubular walls 124, 122. The outer tubular walls 124 of the tubular members 12 on each of the first side and the second side of the support member 11 are interconnected to each other to thereby define a substantially planar attachment surface 120.
One of the light modules 4 is mounted on the attachment surface 120 formed by the tubular members 12 arranged on the first side of the support member 11, and the other one of the light modules 4 is mounted on the attachment surface 120 formed by the tubular members 12 arranged on the second side of the support member 11.
In order to minimize costs associated with providing an additional fin structure for heat dissipation, the present invention makes full use of the configuration of the lamp seat 101 (i.e., the tubular members 12 thereof) to function as a heat dissipating structure. In addition to the material of the tubular members 12 themselves conducting heat to the upper tubular walls 122 via the intermediate tubular walls 127, the hollow tubular spaces 121 defined by the tubular members 12 also function to provide a heat-dissipating effect. In greater detail, when heat generated by the light modules 4 is transferred to the attachment surfaces 120 of the tubular members 12, this heat increases the temperature of the air in the tubular spaces 121. However, the air in the tubular spaces 121 at a distance from the light modules 4 or the air in the two ends of the tubular members 12 is not heated, such that a convection effect is formed in the tubular spaces 121. As a result, the heat generated by the light modules 4 is carried away by the convection effect. Hence, heat dissipation is realized without the use of heat dissipating fins in the present invention.
Each of the tubular members 12 is formed with a slit 123 extending in the horizontal direction and spatially communicating with the tubular space 121 thereof. In the first preferred embodiment, the slit 123 formed in the outermost tubular member 12 on each of the first and second sides of the support member 11 are located on a bottom side of the heat-dispersing unit 1, while the slits 123 formed in the remaining tubular members 12 on the first and second sides of the support member 11 are located on a top side of the heat-dispersing unit 1. In this embodiment, except for the outermost tubular member 12 on each of the first and second sides of the support member, each of the tubular members 12 has the structure described above, including the outer tubular wall 124, the upper tubular wall 122 disposed above and spaced apart from the outer tubular wall 124, and the intermediate tubular wall 127 interconnecting the outer and upper tubular walls 124, 122. In this embodiment, the cross section of the upper and intermediate tubular walls 122, 127 of each of these tubular members 12 is L-shaped, as best shown in
In the first preferred embodiment, heights of the upper tubular walls 122 arranged on each of the first and second sides of the support member 11 gradually decrease as the distance from the support member 11 is increased. As an example, such a configuration may be realized by gradually decreasing the lengths of the intermediate tubular walls 127 on each of the first and second sides of the support member 11 as the distance from the support member 11 is increased therefore, in the first preferred embodiment, the upper tubular walls 122 of the tubular members 12 on either one of the first and second sides of the support member 11 form a downward slanting surface in a direction away from the support member 11.
Each of the side covers 21, 22 includes a side wall 211, 221 and a surrounding wall 212, 222 extending from a periphery of the side wall 211, 221. The side wall 211, 221 and the surrounding wall 212, 222 of each side cover 21, 22 define a receiving space 213, 223. Each of the side covers 21, 22 is sleeved on opposite ends of the heat-dispersing unit 1 in the horizontal direction. That is, in the horizontal direction, the support member 11 and the tubular members 12 form opposite ends of the heat-dispersing unit 1, and the side covers 21, 22 are sleeved respectively thereon. The receiving space 213, 223 of each side cover 21, 22 may be sized such that the side cover 21, 22 is securely connected to the heat-dispersing unit 1 when sleeved thereon. In some embodiments, the side covers 21, 22 may be omitted from the configuration of the lamp seat 101 of the LED lamp 100.
The top cover 3 is connected to the heat-dispersing unit 1 to thereby form a space between the top cover 3 and the heat-dispersing unit 1. The space is adapted to receive a lamp post 103 therein, such that the entire LED lamp 100 is connected to the lamp post 103, as shown in
Each of the light modules 4 includes a substrate 41, and a plurality of LED elements 42 disposed on a bottom surface of the substrate 41. In some embodiments, the substrate 41 is an aluminum substrate covered with a copper foil circuit. The LED elements 42 may be light-emitting chips. As described above, the light modules 4 are mounted respectively on the attachment surfaces 120 formed by the tubular members 12 arranged on the first and second sides of the support member 11. In this mounting state, the LED elements 42 face downwardly, such that the light emitted by the LED elements 42 is projected in the same direction.
Referring to
Referring to
Each of the tubular members 12′ of the neat-dispersing unit 1 is an individually formed tube-like structure with a circular cross section, a plurality of the tubular members 12′ are arranged in a side-by-side manner on each of the first and second sides of the support member 11′. The tubular members 12′ may have the same diameter or different diameters. In this embodiment, the tubular members 12′ have different diameters. That is, in this embodiment, the diameters of the tubular members 12′ arranged on each of the first and second sides of the support member 11′ gradually decrease as the distance from the support member 11 is increased.
Moreover, in this embodiment, the lamp seat 101′ may further include a pair of load-bearing plates 125 (e.g., aluminum plates) disposed respectively on the first and second sides of the support member 11′. The tubular members 12′ arranged side-by-side on the first or second side of the support member 11′ are disposed on an upper surface of one of the load-bearing plates 125, and the corresponding light module 4 is disposed on an outer surface of the same load-bearing plate 125. Since the tubular members 12′ are provided as individually formed tube-like structures, as described above, in addition to being maintained in their side-by-side configuration through ends thereof being inserted in the side covers 21′, 22′ (only the side cover 21′ is shown in
Moreover, to realize an improved heat dissipation effect, a thermally conductive material 126, such as a thermally conductive glue, may be filled in the spaces between the tubular members 12′.
In the modified example of
As in the case of the embodiment shown in
It is to be noted that in the embodiments of the present invention, reference to the light modules 4 as being mounted “on” the tubular members 12, 12′, 12″ may mean that the light modules 4 are mounted directly on the tubular members 12 (see
In the LED lamp 100, 100′, 100″ of the present invention described above, the tubular members 12, 12′, 12″ provide a heat-dissipating effect such that an additional fin structure need not be included in the configuration of the present invention. Hence, costs are minimized. In the case of the LED lamp 100 of the first preferred embodiment and the LED lamp 100″ of the modified example of the second preferred embodiment, the tubular members 12, 12″ further provide attachment surfaces 120, 120″ for the light modules 4, such that the tubular members 12, 12″ have a dual purpose and thereby further reduce costs.
In addition, regardless of whether the heat-dispersing unit 1, 1′, 1″ is formed as a single piece through an aluminum extrusion process as shown in
While the present invention has been described in connection with what are considered the most practical and preferred 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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2010 1 0161800 | Apr 2010 | CN | national |
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Number | Date | Country | |
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20120044687 A1 | Feb 2012 | US |