1. Technical Field
The present disclosure relates to light emitting diode (LED) lamps, and particularly to an LED lamp with a high heat dissipating efficiency, a large illumination area and an even illumination intensity.
2. Description of Related Art
In recent years, LEDs are preferred for use in LED lamps rather than CCFLs (cold cathode fluorescent lamps) and other traditional lamps due to their excellent properties, including high brightness, long lifespan, directivity, and etc.
For an LED, about eighty percents of the power consumed thereby is converted into heat. Generally, an LED lamp includes a plurality of LEDs arranged on a flat surface. Therefore, a heat dissipation device is necessary for timely and adequately removing the heat generated by the LEDs. In addition, since the LEDs are arranged in a flat surface, an illumination area of the LEDs is limited. Thus, the LED lamp cannot obtain a desired illumination area.
For the foregoing reasons, therefore, there is a need in the art for an LED lamp which overcomes the limitations described.
Many aspects of the present embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Reference will now be made to the drawing figures to describe the various embodiments in detail.
Referring to
The lamp housing 10 includes a front shell 11 and a rear shell 12 connected to the front shell 11. The front shell 11 is a hollow cylinder, and has a front end 111 and an opposite rear end 112. The heat dissipation part 30 is arranged in the front shell 11, while the electrical part 40 is arranged in the rear shell 12. The rear shell 12 is cup-shaped. The rear shell 12 has an open front end connected with the rear end 112 of the front shell 11, and a rear screwed lamp holder 121 for electrically connecting with a power socket.
The heat dissipation part 30 is provided with a heat sink 32 arranged in the front shell 11 and a mounting seat 34 arranged in front of the heat sink 32.
The heat sink 32 is made of a material having a high heat conductivity, such as aluminum or aluminum alloy. The heat sink 32 includes a column-shaped solid base 321 and a plurality of fins 322 extending radially and outwardly from a circumferential surface of the solid base 321. The front shell 11 defines a plurality of air exchanging holes 113 therein, located corresponding to the fins 322 of the heat sink 32, to thereby allow an ambient airflow to flow into and out of the front shell 11. The air exchanging holes 113 are longitudinally extended in a circumferential surface of the front shell 11, and are defined radially through the circumferential surface of the front shell 11.
The mounting seat 34 is located in front of the heat sink 32 and directly thermally connected to a front end of the heat sink 32 which faces the optical part 20. Alternatively, the mounting seat 34 can be thermally connected to the heat sink 32 via a heat conducting member with high heat transfer efficiency such as a heat pipe. The mounting seat 34 is made of a material having a high heat conductivity, such as copper or copper alloy, and has a configuration of a frustum of a pyramid.
Referring also to
The optical part 20 is arranged in front of the heat dissipation part 30. The optical part 20 includes a plurality of light sources 21 mounted on the heat absorbing surfaces 343 of the mounting seat 34, a light reflector 22 and an optical lens 23. Each of the light sources 21 includes a substrate 211, a pair of electrodes 213 formed on the substrate 211, and at least one LED 212 (light emitting diode) arranged on the substrate 211 and electrically connected to the electrodes 213. The light sources 21 are respectively mounted on the heat absorbing surfaces 343 of the mounting seat 34, to thereby obtain a three-dimensional illumination coverage. The light sources 21, the mounting seat 34 and the heat sink 32 cooperatively form a light engine 31 for the LED lamp 100.
A plurality of through holes 214 are defined in the substrate 211 of each light source 21 and located adjacent to a peripheral edge of the substrate 211. Fixing devices, such as screws, extend through the through holes 214 of the substrate 211 of each light source 21 and threadedly engage into a corresponding heat absorbing surface 343 of the mounting seat 34, to thereby securely attach the light source 21 to the corresponding heat absorbing surface 343 of the mounting seat 34.
When the light sources 21 are mounted to the heat absorbing surfaces 343 of the mounting seat 34, a layer of thermal interface material (TIM) may be applied between the substrate 211 of each light source 21 and the corresponding heat absorbing surface 343 of the mounting seat 34 to eliminate an air interstice therebetween, to thereby enhance a heat conduction efficiency between the light source 21 and the mounting seat 34. Alternatively, the substrate 211 of each light source 21 can be attached to the corresponding heat absorbing surface 343 of the mounting seat 34 fixedly and intimately through surface mount technology (SMT).
The light reflector 22 is located between the heat sink 32 and the light sources 21, and surrounds the mounting seat 34, to thereby optically isolate the light sources 21 from the heat sink 32. The light reflector 22 is round plate-shaped, and defines a positioning hole 221 therein for the mounting seat 34 extending therethrough. The light reflector 22 forms a planar light reflecting surface 222 at a front side thereof facing the light sources 21. Light beams emitted by the light sources 21 are evenly reflected by the light reflector 22 to the optical lens 23.
The optical lens 23 is located in front of the light reflector 22 and mounted to the front end 111 of the front shell 11. The optical lens 23 has a configuration of a hollow hemisphere. The light reflector 22 and the optical lens 23 cooperatively receive the mounting seat 34 and the light sources 21 therein. The light sources 21 mounted on the heat absorbing surfaces 343 of the mounting seat 34 face the optical lens 23. Light emitted by the light sources 21 radiate radially towards the optical lens 23 in every direction. The optical lens 23 can form a plurality of spherical protrusions thereon to expand the illumination area of the LED lamp 100 and reduce glare from the light sources 21.
The electrical part 40 provides drive power, control circuit and power management for the light sources 21. The electrical part 40 includes a circuit board 41 received in an inner space of the rear shell 12. The circuit board 41 electrically connects with the electrodes 213 of the light sources 21 via a plurality of electrical wires 301 and electrically connects with the screwed lamp holder 121 via a plurality of electrical wires 302, whereby the LED lamp 100 can get power from an external power source via the power socket (not shown) connected to the screwed lamp holder 121. The circuit board 41 is mounted in the rear shell 12 via a plurality of sockets 122 and a plurality of connecting poles 411. The sockets 122 are attached to an inner surface of the rear shell 12. The connecting poles 411 connect the circuit board 41 with the sockets 122. The heat dissipation part 30 further includes a partition plate 42 arranged between the circuit board 41 and the heat sink 32. The partition plate 42 is mounted to the rear end 112 of the front shell 11 and defines therein a plurality of air openings 421 which communicate the heat dissipation part 30 with the electrical part 40. A plurality of air apertures 123 are defined radially through the rear shell 12 at a position adjacent to the screwed lamp holder 121. The air apertures 123 communicate the inner space of the rear shell 12 with an outside environment, and are utilized for dissipating heat generated by the circuit board 41.
In operation, heat generated by the LEDs 212 of the light sources 21 is absorbed by the mounting seat 34 and rapidly transferred to the solid base 321 and the fins 322 of the heat sink 32. Air in passages defined between adjacent fins 322 of the heat sink 32 is heated by the heat transferred to the fins 322 and the solid base 321, and then floats upwardly. One portion of the heated, upwardly floating air escapes to the ambient atmosphere via the air exchanging holes 113 of the front shell 11. The other portion of the heated, upwardly floating air enters into the rear shell 12 via the air openings 421 of the partition plate 42, and then escapes to the ambient atmosphere via the air apertures 123 of the rear shell 12. Cooling air in the ambient atmosphere enters into the front shell 11 via the air exchanging holes 113 of the front shell 11, whereby a natural air convection is circulated through the front shell 11 and the rear shell 12 of the lamp housing 10. Thus, the heat of the LEDs 212 of the light sources 21 is continuously and effectively removed.
In the LED lamp 100, the mounting seat 34 is in the form of a polyhedron (i.e., a frustum of a square pyramid), and has a polyhedral rear end surface 341 facing the heat sink 32 and a plurality of sloping heat absorbing surfaces 343. The light sources 21 are mounted on the sloping heat absorbing surfaces 343 of the mounting seat 34. An angle between the rear end surface 341 and each of the absorbing surfaces 343 is less than 90 degrees. Alternatively, the mounting seat 34 can have a configuration of other polyhedron, such as a pyramid or a prism.
Referring to
It is well known in the art that a heat pipe is a sealed hollow pipe body receiving working fluid therein and containing a wick structure disposed on an inner wall of the pipe body. The heat pipe 36 transfers heat under phase change of working fluid hermetically contained therein. The heat pipe 36 is elongated and includes a front evaporating section 361 connecting with the mounting seat 34 and a rear condensing section 362 connecting with the heat sink 32. The heat sink 32 defines axially a first receiving hole 326 in the solid base 321 thereof. The condensing section 362 of the heat pipe 36 is received in the first receiving hole 326 of the heat sink 32. The mounting seat 34 defines axially a second receiving hole 348 therein. The evaporating section 361 is received in the second receiving hole 348 of the mounting seat 34. The evaporating section 361 forms a planar end surface at a free end thereof to increase a heat contacting area between the mounting seat 34 and the evaporating section 361 of the heat pipe 36.
The light reflector 22a is located between the heat sink 32 and the mounting seat 34, and surrounds the evaporating section 361 of the heat pipe 36. The light reflector 22a includes a planar mounting portion 224 and a tapered reflecting portion 226 extending forwardly and outwardly from an outer peripheral edge of the mounting portion 224 towards the optical lens 23. The light reflector 22a forms a light reflecting surface 222a at a front side thereof facing and surrounding the mounting seat 34. The light reflecting surface 222a of the light reflector 22a includes an annular planar surface 2241 formed on an inner, front side of the mounting portion 224 and a tapered surface 2261 formed on an inner, front side of the reflecting portion 226.
Referring to
The cooling fan 35 is located at a rear side of the heat sink 32. The front shell 11b defines radially a plurality of air exchanging holes 133b corresponding to the fins 322 of the heat sink 32 and a plurality of air openings 115 in a rear end thereof adjacent to the rear shell 12. The air openings 115 of the front shell 11 function as air supply openings or air exhausting openings for the cooling fan 35. When the cooling fan 35 operates, the cooling fan 35 inhales air from the ambient atmosphere via the air openings 115 defined in the rear end of the front shell 11. An airflow generated by the cooling fan 35 flows towards the heat sink 32, and then is exhausted out of the front shell 11 via the air exchanging holes 113b of the front shell 11 located corresponding to the fins 322 of the heat sink 32, whereby a forced air convection is circulated through the front shell 11 to further increase the heat dissipation efficiency of the LED lamp 100.
It is to be understood, however, that even though numerous characteristics and advantages of the disclosure have been set forth in the foregoing description, together with details of the structure and function of the disclosure, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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200910301672.5 | Apr 2009 | CN | national |