The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
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The LED module 10 is mounted inside a headlamp 601 of a car 60 (not shown in
The heat sink module 20 is arranged in an air passage 50 in the car 60, and is made of a high thermal conductivity material, such as aluminum, copper, etc. The heat sink module 20 is provided with a plurality of fins, which may be stacked fins, tunnel-type fins, thinned fins, extruded aluminum fins and so on. In the case of the tunnel-type fins, airflow may pass through the fins to enhance the convection heat transfer coefficient of the fins, and accordingly, to increase the thermal performance of the whole heat sink module 20.
The heat conductive element 30 is connected at two ends to the LED module 10 and the heat sink module 20. It conducts heat produced by the LED module 10 to the heat sink module 20. Preferably, the heat conductive element 30 is a heat pipe.
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In the first embodiment, the heat sink module 20 is arranged on the car 60 in an air passage 50, and the airflow pass through the heat sink module 20. The air passage 50 is preferably located at an inner side of or behind the front bumper 90. Since a space behind the front bumper 90 is distant from a radiator 80 (not shown in
An insulating material 40 may be further provided around the LED module 10 to produce a space isolated the heat from the high temperature of the engine compartment, so as to minimize the heat being conducted or convected from the engine compartment and other high-temperature elements thereof to the LED module 10. That is, the LED module 10 isolated from the heat of the engine compartment, and the heat produced by LED module is conducted via the heat conductive element 30 to the heat sink module 20 and dissipated the heat to air.
Preferably, an opening is formed on the front bumper 90 to serve as a vent of the air passage 50. The insulating material 40 may also be provided around the air passage 50 to provide an enhanced heat insulating effect. As having been mentioned above, the heat sink module 20 is arranged in the air passage 50. An opening is also formed on the front fender 91 of said car 60 or the gap between the car shape and the fender to form another vent of the air passage 50. When the car 60 is moving, airflow passes into and out of the air passage 50 via the vents on the front bumper 90 and the front fender 91 of said car 60, respectively, to enhance the thermal performance of the heat sink module 20. When the car 60 is in the idle or still state, the insulating material 40 provided around the headlamp 601 and the air passage 50 isolates the LED module 10 and the heat sink module 20 from the heat transmitted by airflow produced by the fan of the radiator 80, and from the heat produced by other heat-producing elements. That is, either the car 60 is in the still state or in the moving state, airflow may always flow into and out of the air passage 50 due to natural or forced convection of air to enhance the thermal performance of the heat sink module 20. In other words, by taking advantage of the lower ambient air temperature and a ram-air effect, the heat sink module 20 may have improved thermal performance through natural and forced air convection. Therefore, the heat sink module 20 located in or behind the front bumper 90 of the car 60, the heat conductive element 30, the insulating material 40, and the air passage 50 together form an independent thermal module system to isolate the heat sink module 20 from the heat produced in the engine compartment, so that the ambient air temperature of the LED module 10 in use is reduced to prolong the usable lifetime of the LED module 10. Further, a fan or blower(not shown) may be provided in the vicinity of the heat sink module 20 to actively increase the thermal performance of the heat sink module 20 and enhance the convection heat transfer coefficient of it.
To further stop heat produced by the engine compartment and other high-temperature elements from transmitting to the LED module 10, it is preferably to provide a heat isolating material 40 around the LED module 10 to supply a space isolated from the high-temperature engine compartment, and heat produced by the LED module 10 is conducted via the heat conductive element 30 to the heat sink module 20 and dissipated. An air passage 50 in the car 60 has two vents formed on the front fender 91 of said car 60. Airflow goes into and flows out of the air passage 50 via the two vents. Preferably, the two vents of the air passage 50 are separately located near a front and a rear end of the front fender 91 of said car 60. The insulating material 40 may also be provided around the air passage 50, and the heat sink module 20 is arranged in the air passage 50. When the car 60 is in the still state or in the moving state, airflow may always flow into and out of the air passage 50 due to natural or forced air convection, respectively, enabling the heat sink module 20 to have an enhanced thermal performance and improved convection heat transfer coefficient. A fan (not shown) may be provided in the vicinity of the heat sink module 20 to actively increase the thermal performance of the heat sink module 20 and enhance the convection effect.
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Preferably, a heat insulating material 40 is provided around the LED module 10 to supply a space isolated from the high-temperature engine compartment. It is more preferable to provide the heat insulating material 40 between the heat sink module 20 and the radiator 80, so as to prevent the high temperature of the radiator 80 from dropping off the thermal performance of the heat sink module 20, and reduce the heat that is produced by the engine compartment and other high-temperature elements and transmitted to the LED module 10. When the car 60 is in the moving state, airflow flows into the car via the grille 801 in front of the radiator 80 to form a forced convection in the engine compartment and enhance the thermal performance of the heat sink module 20 arranged between the grille 801 and the radiator 80. When the car 60 is in the idle or still state, heat may still be dissipated due to natural convection. A fan or blower (not shown) may be provided in the vicinity of the heat sink module 20 to actively improve the thermal performance of the heat sink module 20 and enhance the convection effect. In this embodiment, the grille 801 serves as an inlet of an air passage 50 for airflow to pass therethrough.
In summary, in the thermal module system for LED headlamp module according to the present invention, a heat sink module is arranged on a car in an air passage having air flowing therethrough, such as a space in or behind the front bumper, at an inner side of the front fender of said car, or at the radiator side. Heat produced by the LED headlamp module is conducted by a heat conductive element to the heat sink module and dissipated. Since the heat sink module is arranged in the air passage, its thermal performance may be enhanced through either natural or forced air convection. A fan may be provided near the heat sink module to further improve the thermal performance. A water sprayer may also be provided in the car near the heat sink module to enhance the thermal performance using water spray. With these arrangements, the LED headlamp module may work at a lowered ambient air temperature to thereby have a prolonged lifetime.
Number | Date | Country | Kind |
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95127155 | Jul 2006 | TW | national |