1. Technical Field
The present disclosure relates to LED (light emitting diode) lamps, and more particularly to an LED light bulb having evenly distributed light emitted therefrom.
2. Description of Related Art
LEDs have many beneficial characteristics, including low electrical power consumption, low heat generation, long lifetime, small volume, good impact resistance, fast response and excellent stability. These characteristics have enabled the LEDs to be widely used as a light source in electrical appliances and electronic devices.
A conventional LED light bulb includes a plurality of LEDs mounted on a center of the LED light bulb. The LEDs generate a smooth round light field with a radiation angle of 120 degrees (±60 degrees). The light emitted from the LEDs is mainly concentrated at a center of the LED light bulb. The light at a periphery of the LED light bulb is relatively poor. Therefore, the light of the LED light bulb is not evenly distributed.
What is needed, therefore, is an improved LED light bulb which can overcome the above described shortcomings.
Embodiments of an LED light bulb in accordance with the present disclosure will now be described in detail below and with reference to the drawings.
Referring to
The holder 10 is a hollow tube with a bottom end thereof being closed. A metallic patch 11 is formed on an outside of the bottom end of the holder 10. The metallic patch 11 functions as a positive electrode, and a threaded periphery (not labeled) of the holder 10 functions as a negative electrode to electrically connect with a power source to drive the LED module 30 to lighten. The holder 10 can be an Edison screw base, such as E26 screw base. The holder 10 is a standard element, so the LED light bulb can be directly connected to a standard socket matching with the holder 10 to electrically connect with the power source.
The LED module 30 includes a printed circuit board 31, an LED 33 mounted on a center of a top surface of the printed circuit board 31, and a lens 35 mounted on the top surface of the printed circuit board 31 and covering the LED 33. The printed circuit board 31 is mounted on the top end of the holder 10 and electrically connects with the positive and negative electrodes of the holder 10.
Alternatively, in other embodiment, the LED lamp includes a plurality of LEDs 33, and the LEDs 33 are covered by the lens 35.
The envelope 50 is made of a light permeable material and has a hollow, bulb-like shape. A bottom edge of the envelope 50 is embedded in a periphery of the top end of the holder 10.
Referring to
In this embodiment, the light dispersing plate 70 faces a light field of the LED 33.
The light dispersing plate 70 includes a light outputting surface 73 and a light inputting surface 75 opposite to the light outputting surface 73. The light outputting surface 73 is attached to the inner surface of the envelope 50. The light inputting surface 75 faces the LED 33. A micro structure 77 is defined in the light inputting surface 75. The micro structure 77 is a plurality of hemispherical recesses recessing from the light inputting surface 75 toward the light outputting surface 73. A volume of each recess is larger than that of each air bubble 71.
The reflecting cup 60 is attached to a lower portion of the envelop 50 and connected to a periphery of the top surface of the printed circuit board 31. The reflecting cup 60 is a hollow tube and reflects light emitted from the LED 33. The reflecting cup 60 includes a first reflecting portion 61 and a second reflecting portion 63. The first reflecting portion 61 is disk-shaped, surrounds the lens 35, and is mounted on the printed circuit board 31. The second reflecting portion 63 is has a shape of a tapered tube and extends from a periphery of the first reflecting portion 61 toward the light dispersing plate 70. A top end of the second reflecting portion 63 abuts against a bottom end of the light dispersing plate 70. A height of the second reflecting portion 63 is larger than that of the LED module 30 and that of the lens 35. The reflecting cup 60 is made of a light opaque material with high reflecting efficiency. In this embodiment, the reflecting cup 60 is made of silver.
In operation, light emitted from the LED 33 radiates towards the light inputting surface 75 of the light dispersing plate 70. A part of the light radiates to the air bubbles 71 and is reflected and refracted by the air bubbles 71 to different directions to make the light be evenly distributed before it travels out of the envelope 50. Another part of light radiates to the micro structure 77 and is reflected and refracted by the micro structure 77 to different directions before it travels out of the envelop 50. The reflecting cup 60 reflects light, which is reflected or refracted by the light dispersing plate 70 towards the printed circuit board 31, upwardly to make the reflected light be reflected and refracted by the light dispersing plate 70 again before it travels through the envelope 50. Accordingly, the light generated by the LED 33 can uniformly radiate out of the LED light bulb In this state, not only the light can be evenly distributed in the light field, but also the light utilization efficiency of the LED light bulb is improved.
Referring to
It is to be further understood that even though numerous characteristics and advantages of the present embodiments have been set forth in the foregoing description, together with details of the structures and functions of the embodiments, 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.
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2013 1 01399230 | Apr 2013 | CN | national |
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