This application claims priority of Chinese Application No. 201110051036.9, filed on Mar. 1, 2011.
1. Field of the Invention
This invention relates to a lamp, and more particularly to an illumination lamp that includes a partitioning unit disposed between a power supply module and a circuit module.
2. Description of the Related Art
A conventional emergency illumination lamp (e.g. disclosed in Taiwanese Utility Model No. M363552) includes a circuit module and a battery unit that are disposed within the same space of a lamp body.
However, in such a lamp structure, since the circuit module is adjacent to the battery unit, a high temperature produced from the circuit module during operation has an adverse influence on the battery unit. That is, the service life of the battery unit is reduced when the battery unit is in a high temperature environment for a long time period.
The object of this invention is to provide an illumination lamp that can reduce effectively an adverse influence of a high temperature of a circuit module on a power supply module.
According to this invention, there is provided an illumination lamp comprising: a lamp body defining an inner space; a partitioning unit being disposed in the lamp body for dividing the inner space into a first space and a second space; and a circuit module disposed within the second space and electrically connected to the light-emitting module for driving the light-emitting module to emit light.
Due to the presence of the partitioning unit, thermal convection between the first and second spaces is prevented to reduce adverse influence of a high temperature of the circuit module on the power supply module.
These and other features and advantages of this invention will become apparent in the following detailed description of a preferred embodiment of this invention, with reference to the accompanying drawings, in which:
Referring to
With further reference to
In this embodiment, the lamp body 101 includes a lamp holder 11, a main body 12, and a heat-dissipating member 13. The lamp holder 11 includes a conductive connector 111 and a surrounding wall 112 extending upwardly from the conductive connector 111. The surrounding wall 112 of the lamp holder 11 has a plurality of circumferentially arranged apertures 110. The main body 12 includes a top wall 121 and a surrounding wall 122 extending downwardly from the top wall 121. The surrounding wall 122 of the main body 12 has a bottom end that is connected to a top end of the surrounding wall 112 of the lamp holder 11, such that the main body 12 cooperates with the lamp holder 11 to define the inner space 102.
The top wall 121 of the main body 12 has a first top portion 124 (extending an angle of about 270 degrees with respect to a circumferential direction of the top wall 121), and a second top portion 125 (extending an angle of about 90 degrees with respect to the circumferential direction of the top wall 121) that is higher than the first top portion 124. The first top portion 124 is disposed directly above the first space 1021. The second top portion 125 is disposed directly above the second space 1022. The top wall 121 has a plurality of apertures 126 formed in the first top portion 124 and in fluid communication with the first space 1021. The surrounding wall 122 of the main body 12 has a plurality of circumferentially arranged apertures 127.
With particular reference to
The first and second partitions 21, 22 are interconnected to constitute the partitioning unit 2, such that the first space 113 of the lamp holder 11 and the first space 128 of the main body 12 are in fluid communication with each other to constitute the first space 1021 of lamp body 101, and the second space 114 of the lamp holder 11 and the second space 129 of the main body 12 are in fluid communication with each other to constitute the second space 1022 of the lamp body 101.
It should be noted that, to promote the heat-insulating effect of the partitioning unit 2, in this embodiment, the second partition 22 of the partitioning unit 2 is hollow, and has two plate-shaped portions 221 parallel to each other, and an interlayer space 220 defined between the plate-shaped portions 221. Such a hollow partition structure can reduce heat transmitted from the second space 1022 into the first space 1021 via the partitioning unit 2. The interlayer space 220 is filled with air. Due to high heat resistance of air, heat transmission and heat convection can be prevented effectively.
In alternative arrangements, the lamp holder 11 and/or the main body 12 may be provided with snap-fitting or tongue-and-groove connecting structures, and the partitioning unit 2 may be a separate member connected to the lamp holder 11 and/or the main body 12 by the connecting structures.
With particular reference to
Since the second top portion 125 of the top wall 121 of the main body 12 is higher than the first top portion 124, an air passage 14 is formed between the first top wall 1311 of the first heat-dissipating component 131 and the first top portion 124 of the main body 12.
In this embodiment, the first heat-dissipating component 131 is made of a plastic material or other material having a low thermal conductivity coefficient, and the second heat-dissipating component 132 is made of aluminum or other material having a thermal conductivity coefficient greater than that of the first heat-dissipating component 131. Due to characteristics of the materials of the first and second heat-dissipating components 131, 132, not only heat can be dissipated quickly from the circuit module 5 via the high thermal-conductivity-coefficient material of the second heat-dissipating component 132, but also heat transmitted from the second heat-dissipating component 132 into the first space 1021 via the low thermal-conductivity-coefficient material of the first heat-dissipating component 131 is reduced to thereby maintain the first space 1021 at a comparatively low temperature.
The first heat-dissipating component 131 further includes a plurality of apertures 1314 in fluid communication with the air passage 14 and the surroundings. The first curved outer periphery 1313 of the first top wall 1311 is formed with a plurality of first notches 1315 so as to have a tooth shape. The first sidewall 1312 has a top side 1317 connected to the first top wall 1311. The top side 1317 is formed with a plurality of second notches 1316 so as to have a tooth shape. The first notches 1315 in the first top wall 1311 correspond respectively to the second notches 1316 in the first sidewall 1312 to form the apertures 1314 of the heat-dissipating member 13. In this embodiment, each of the apertures 1314 of the heat-dissipating member 13 is open in a horizontal direction.
The apertures 1314 of the heat-dissipating member 13, the air passage 14, the apertures 127 of the surrounding wall 122 of the main body 12, and the apertures 110 of the holder 11 are arranged, such that environmental air can be introduced into the first space 1021 through the apertures 1314 of the heat-dissipating member 13 and the air passage 14, to thereby flow back into the surroundings through the apertures 127 of the main body 12 and/or the apertures 110 of the holder 11, so as to form a heat dissipation path (P1) for dissipating heat from the power supply module 4 in the first space 1021.
The light-emitting module 3 is disposed on the first and second top walls 1311, 1321. In this embodiment, the light-emitting module 3 includes a circuit board 31 and a plurality of light-emitting members 32 disposed on the circuit board 31. Preferably, the light-emitting members 32 are light emitting diodes (LEDs). The cover 7 is connected to the heat-dissipating member 13 for covering the light-emitting module 3.
With particular reference to
To further promote the heat-dissipating effect, heat-conducting material (e.g., heat-conducting paste) having a high thermal conductivity coefficient can be applied on an inner surface of the main body 12, in such a manner to contact a bottom surface of the top wall 121 of the main body 12 and/or an inner surface of the surrounding wall 122 of the main body 12. As such, a portion of heat generated from the circuit module 5 can be dissipated via a path including the heat-conducting material, the top wall 121 and/or the surrounding wall 122 of the main body 12, and the second heat-dissipating component 132 of the heat-dissipating member 13.
In view of the above, due to the presence of the partitioning unit 2, the first space 1021 receiving the power supply module 4 is spaced apart from the second space 1022 receiving the circuit module 5, so as to avoid thermal convection between the first and second spaces 1021, 1022. In this manner, heat transmitted between the first and second spaces 1021, 1022 is reduced to solve the problem of adverse influence of heat generated from the circuit module 5 on the power supply module 4. Thus, the object of this invention is achieved. Furthermore, due to difference between thermal conductivity coefficients of the materials of the first and second heat-dissipating components 131, 132, heat transmitted from the first space 1021 into the second space 1022 is reduced. Further, the apertures 1314 of the heat-dissipating member 13, the apertures 127 of the surrounding wall 122 of the main body 12, the apertures 110 of the holder 11, and the air passage 14 constitute cooperatively heat dissipation paths allowing for dissipation of heat from the first and second spaces 1021, 1022 into the surroundings, thereby enhancing the heat-dissipating effect.
With this invention thus explained, it is apparent that numerous modifications and variations can be made without departing from the scope and spirit of this invention. It is therefore intended that this invention be limited only as indicated by the appended claims.
Number | Date | Country | Kind |
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201110051036.9 | Mar 2011 | CN | national |