The present invention relates to LED lamps, particularly to an LED lamp with omnidirectional beam angle.
LED light sources have advantages of high luminous efficiency, low heat generating, energy saving and long span-life, and thus are widely used. However, for characteristics of solid light sources, LED light sources can not obtain large beam angle as incandescent bulbs. Particularly for LED lamps of COB (chip on board), of which LED light sources are fixed on a heat transfer board thereof directly by COB, although heat dissipation efficiency thereof are improved, but beam angle thereof are less than 180 degrees for the heat transfer board being flat, and thus luminous intensities are uneven, affecting lighting effects.
In order to obtain omnidirectional beam angle, in prior art, light sources are usually mounted on planes of different angles (such as horizontal plane and vertical plane), and spherical sector shaped shells are used to make light with angles more than 180 degrees emit out. Such solution can obtain omnidirectional beam angle, but still has disadvantages as follows:
1. it is difficult to obtain uniform luminance on surfaces of the shell, and may generate spots and dark area on the shell;
2. it is difficult to mass-produce since each plane the light source being mounted needs an aluminum base, which increases load of paste aluminum base; and
3. it is difficult to line up the light source automatically to be sold to the aluminum base, which reduces productivity.
From above, it is necessary to provide an LED lamp with omnidirectional beam angle, and is simple in structure and easy to produce.
One solution to solve the technical problem of the present invention is that:
An LED lamp includes a lamp bulb shell, a light emitting unit and a reflecting unit. The lamp bulb shell covers the light emitting unit. The reflecting unit includes a reflecting member. The reflecting member is fixed on the lamp bulb shell, and includes an annular reflecting surface. The reflecting surface of the reflecting member faces the lighting emitting unit for reflecting light generated by the light emitting unit towards a bottom of the lamp bulb shell.
Another solution to solve the technical problem of the present invention is that:
An LED lamp includes a lamp holder, a lamp bulb shell, a light emitting unit, and a reflecting unit. The lamp bulb shell covers the light emitting unit. A bottom of the lamp bulb shell is fixed on the lamp holder. The reflecting unit is received in the lamp bulb shell, and includes a reflecting member. The reflecting member is fixed on the lamp holder, and includes an annular reflecting surface. The reflecting surface of the reflecting member faces the lighting emitting unit for reflecting light generated by the light emitting unit towards a bottom of the lamp bulb shell.
Compared with the prior art, the LED lamp of the present invention includes reflecting unit disposed in the lamp bulb shell, and the reflecting member of the reflecting unit faces the light emitting unit, thus the annular reflecting surface reflects light of the light emitting unit to the bottom of the lamp bulb shell, thereby enhancing luminous intensity at the bottom of the lamp bulb shell, obtaining omnidirectional beam angle. Forever, the LED lamp of the present invention is simple in structure since the LED light sources need not to be mounted on 3D structures.
The present invention will be described in detail with reference to the drawings and embodiments.
An LED lamp 100 according to a first embodiment of the present invention is shown in
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During operation of the LED lamp 100, the light emitting unit 30 emits light upwardly to the reflecting member 52. The first reflecting surface 522 of the reflecting member 52 reflects the light towards the bottom of the lamp bulb shell 40, thus luminous intensity at a portion of the lamp bulb shell 40 beneath the heat transfer substrate 20 is also strong, thereby enlarging beam angle of the LED lamp 100. For the aperture 526 formed in the reflecting member 52, and the inner diameter of the reflecting member 52 increasing along the direction away from the light emitting unit 30, the second reflecting surface 524 of the reflecting member 52 reflects the light towards the top of the lamp bulb shell 40. Thus, noticeable shadows are avoided forming on the lamp bulb shell 40 for blocking of the reflecting member 52 during lighting, as viewed from outside. For the light scattering material on the lamp bulb shell 40, light emitting out from the lamp bulb shell 40 is more evenly. Please referring to
From above, in the first and second embodiments, the LED lamps 100, 100a of the present invention form reflecting unit 50 in the lamp bulb shell 40, the reflecting member 52 of the reflecting unit 50 faces the light emitting unit 30, 30a, and the annular reflecting surfaces 522, 524 of the reflecting member 52 reflect light generated by the light emitting unit 30, 30a to the bottom of the lamp bulb shell 40, thus enhances luminous intensity at the bottom of the lamp bulb shell 40, which enlarges beam angle of the LED lamp 100, 100a. Compared with the prior art, the LED lamp 100,100a of the present invention is simple in structure since it need not to mount LED light sources 32, 32a on 3D structures. In addition, for the annular reflecting surface 522, 524 of the reflecting member 52 and the aperture 526, the reflecting member 52 does not block the light completely in any direction, thus light distribution on the lamp bulb shell 40 is more even, appearance of the lamp bulb shell 40 has no shadows, and phenomenon of spots and dark area are avoided, thereby the LED lamp 100, 100a of the present invention being easy to accepted by consumers.
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The LED lamp 100b of the fourth embodiment is the same as the LED lamp 100 of the first embodiment in major, and difference therebetween is in that:
The light emitting unit 30b includes 20 LED light sources 32b, which are evenly arranged on an outer periphery of the top surface of the heat transfer substrate 20b and spaced from each other. Each LED light source 32b is about 0.3 w.
The lamp bulb shell 40b is integrally formed as a whole and is generally spherical sector shaped, and has light scattering material coated on surfaces thereof.
The reflecting unit 50b includes a base 52b, a plurality of fixing poles 54b, and a reflecting member 56b.
The base 52b is coated with light scattering material on surfaces thereof, and is arranged on the heat transfer substrate 20b and beneath the light emitting unit 30b. The fixing poles 54b are three in number, extending from an outer periphery of the base 52b and spaced from each other (some of the fixing poles 54b are not shown for the angle of view). The fixing poles 54b fix the reflecting member 56b to the base 52b. The base 52b is fixed on the heat transfer substrate 20b, thereby fixing the reflecting member 56b on the lamp holder 10b.
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The retaining lug 70 is arranged in the lamp bulb shell 40b, and has a bottom connected to the top of the heat sink 14, and thus is fixed on the lamp holder 10b. Outer surfaces of the retaining lug 70 are coated with white paint with high reflection coefficient. The heat transfer substrate 20b is arranged on a top of the retaining lug 70. A ratio of a height of the retaining lug 70 and the height of the lamp bulb shell 40b is 0.25˜0.33.
During operation of the LED lamp 100b, the light emitting unit 30b emits light upwards to the reflecting member 56b of the reflecting unit 50b, and the second annular surface 564b and the third annular surface 566b of the reflecting member 56b reflect the light downwardly to a position beneath the heat transfer substrate 20b. The second annular surface 564b and the third annular surface 566b are connected as annular curved surface, thus lighting area of the light is enlarged. For the light scattering material of the lamp bulb shell 40b, the white paint of the retaining lug 70, and scattering of the reflecting board 60, luminous intensity at a portion of the lamp bulb shell 40b beneath the reflecting member 56b is also strong. Light distribution at a portion of the lamp bulb shell 40b above the reflecting member 56b is formed as follows: the first annular surface 562b reflects the light of the light emitting unit 30b towards two directions, one of which is downwards to the base 52b and is reflected by the base 52b upwardly to the top of the lamp bulb shell 40b to enhance light distribution at the top of the lamp bulb shell 40b; and the other of which shines aslant towards the top of the lamp bulb shell 40b, ensuring that luminous intensity at the top of the lamp bulb shell 40b is strong.
From above, the LED lamp 100b according to the third embodiment of the present invention includes a reflecting unit 50b which includes a reflecting member 56b, a reflecting board 60 beneath the reflecting member 56b, and a retaining lug 70 in the lamp bulb shell 40b, the second annular surface 564b and the third annular surface 566b of the reflecting member 56b, the reflecting board 60, and the retaining lug 70 and lamp bulb shell 40b of high scattering cooperate to ensure luminous intensity of the lamp bulb shell 40b beneath the reflecting member 56b, particularly beneath the heat transfer substrate 20b, enlarging beam angle of the LED lamp 100b. The third annular surface 566b, the base 52b, and the lamp bulb shell 40b of high scattering cooperate to ensure luminous intensity of the lamp bulb shell 40b above the reflecting member 56b. For the light emitting unit 30b including a plurality of densely packed LED light sources 32b of miniwatt, light distribution at surfaces of the lamp bulb shell 40b is uniform. The LED lamp 100b of the present invention has a beam angle enlarged to about 320 degrees, light distribution on the lamp bulb shell 40b is even, luminous intensity is uniform, appearance of the lamp bulb shell 40b has no shadow, and phenomenon of spots and dark area are avoided. In addition, the retaining lug 70 is connected to the heat sink 14, heat dissipation area of the LED lamp 100b of the present invention is large, and thus heat dissipation efficiency is high.
The foregoing is considered to be illustrative of the principles of the present invention. Furthermore, since modifications and changes to various aspects and implementations will occur to those skilled in the art without departing from the scope and spirit of the invention, it is to be understood that the foregoing does not limit the invention as expressed in the appended claims to the exact constructions, implementations and versions shown and described.
Number | Date | Country | Kind |
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201110254731.5 | Aug 2011 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2012/072588 | 3/20/2012 | WO | 00 | 1/29/2014 |