1. Field of the Invention
The present invention relates to an optical element, and in particular to an optical element which can enlarge light emitting angle of light.
2. Description of Prior Art
A light emitting diode (LED) is a kind of semiconductor device, which exploits the property of direct-bandgap semiconductor material to convert electric energy into light energy efficiently and has the advantages of long service time, high stability and low power consumption and is developed to replace the traditional non-directivity light tube and incandescent lamp.
The LED is a point-like light source and has high directivity so that the lighting surface of the LED is narrower than that of the traditional light sources, and the luminous intensity of the LED is gradually reduced while the lighting distance is increased, so that the LED is more suitable for providing short-distance and small area lighting fixture, such as table lamp.
In order to solve the mentioned problem, many manufacturers assemble and arrange multiple LEDs to centralize light for solving the problem of narrow lighting range. However, the required power for driving the LEDs is increased when the number of the LEDs is increased, therefore, the effect of saving energy cannot be achieved. Moreover, the price of LED lamp is far higher than the traditional light source so as to reduce the will of using LED lamp.
Accordingly, the present invention provides an optical element, the optical element can effectively enlarge the emitting angle of light pass through the optical element.
The present invention further provides an illuminant device, the illuminant device provides a light with large emitting angle.
Therefore, the present invention provides an optical element, the optical element is assembled with a light emitting diode (LED) to form an illuminative light source. The optical element includes a transparent main body having a light guiding pillar and an extending part. The light guiding pillar has a top surface and a bottom surface opposite the top surface, the bottom surface has a recess. The extending part is extended from the circumference of the top surface and an end of the extending part has at least a light-emitting surface, wherein the LED is disposed on the recess and emits light to the optical element.
The present invention further provides an illuminant device, the illuminant device includes a circuit board, an LED, an optical element, a cover and a heat sink element. The LED is disposed on the circuit. The optical element includes a light guiding pillar and an extending part. The light guiding pillar has a top surface and a bottom surface opposite to the top surface. The bottom surface has a recess, the LED is disposed on the recess. The extending part is extended from the circumference of the top surface and an end of the extending part has a least a light-emitting surface. The cover is made of transparent material. The heat sink element is assembled with the cover such that the LED and the optical element are arranged between the cover and the heat sink element.
The optical element of the present invention uses the extending part which is extended from the circumference of the top surface to guide the light entered the optical element so that the light can be refracted by the extending part or reflected to the light-emitting surface and emitting from the light-emitting surface to enlarge the light-emitting angle of light passed through the optical element. Moreover, charging an included angle formed between the light-emitting surface and the bottom surface can provide different forms of luminous intensity distribution such that the optical element can apply in different lighting field.
The features of the invention believed to be novel are set forth with particularity in the appended claims. The invention itself, however, may be best understood by reference to the following detailed description of the invention, which describes an exemplary embodiment of the invention, taken in conjunction with the accompanying drawings, in which:
A preferred embodiment of the present invention will be described with reference to the drawings.
Reference is made to
The optical element 10 can be integrally-formed by plastic, glass, silicon rubber, silicon resin or other light transparent material by injection molding. The optical element 10 has a transparent main body 11. The main body 11 includes a light guiding pillar 12 and an extending part 14. In this embodiment, the light guiding pillar 12 is, but not limited to, a cylinder. In the practical application, the light guiding pillar can be a triangular prism, a tetragonal prism or polygonal prisms. The light guiding pillar 12 has a top surface 120 and a bottom surface 122 opposite to the top surface 120. The bottom surface 122 is designed as a plane and has a recess 124. In this embodiment, the recess 124 disposed on the central of the bottom surface 122 is concave toward the top surface 120 and an opening of the recess 124 is of circular shape. In the practical application, the opening can be any geometric form. The LED 90 is disposed on the recess 124 and emits light to the optical element 10.
The extending part 14 having a plurality of light guide strips 142 is connected to the light guiding pillar 12 and extended from the circumference of the top surface 120. Multiple light-emitting surfaces 140 are disposed on the end of the light guide strips 142. An included angle θ is formed between the light-emitting surface 140 and the bottom surface 122. In this embodiment, the included angle θ is an obtuse angle, which is larger than ninety degrees.
In the practical application, the LED 90 is disposed in the recess 124 and emits light to the optical element 10. The light is guided by the light guiding pillar 12 and emits to the top surface 120 and the extending part 14 by refraction or emits form the light-emitting surface 140 by reflecting by the extending part 14. The extending part can effectively guide light to the light-emitting surface 140 to enhance the light-emitting angle. The luminous intensity distribution of the optical element 10 is shown in
Reference is made to
Reference is made to
The optical element 10 is disposed on the circuit board 82 and located on the LED 90. With reference again to
With reference again to
The heat sink element 86 is assembled with the cover 84 such that the circuit board 82, the LED 90 and the optical element 10 are arranged between the cover 84 and the heat sink element 86. The heat sink element 86 can be made of material for fast removing the heat generated by lighting the LED 90.
The conductive connector 88 is assembled to one side of the heat sink element 86, which is opposite to the cover 84, and electrically connected to the circuit board 82. The conductive connector 88 can be, but not limited to, E26 or E27 connector. The conductive connector 88 is adapted to be connected into the socket of ordinary lamp and electrically connected to an external power. The power is transmitted to the circuit board 82 and lighting the LED 90 through the conductive connector 88. The light emitted from the LED 90 transmits to the top surface 120 and the extending part 14 and emits form the top surface 120 or extending part 14 by refraction or emits form the light-emitting surface 140 by reflecting by the extending part 14.
Reference is made to
The extending part 24 having a plurality of light guide strips 242 is connected to the light guiding pillar 22 and extended from the circumference of the top surface 220. Multiple light-emitting surfaces 240 are disposed on the end of the light guide strips 242. An included angle θ is formed between the light-emitting surface 240 and the bottom surface 222. In this embodiment, the included angle θ is an obtuse angle, which is larger than ninety degrees.
The LED 90 is disposed on the recess 224 and emits light to the optical element 20. The light transmits to the top surface 220 and the extending part 24 and emits form the top surface 220 or extending part 24 by refraction or emits form the light-emitting surface 240 through reflecting by the extending part 24.
Reference is made to
The extending part 34 having a plurality of light guide strips 342 is connected to the light guiding pillar 32 and extended from the circumference of the top surface 320. Multiple light-emitting surfaces 340 are disposed on the end of the light guide strips 342. An included angle θ is formed between the light-emitting surface 340 and the bottom surface 322. In this embodiment, the included angle θ is an obtuse angle, which is larger than ninety degrees.
The LED 90 is disposed on the recess 324 of the optical element 30. Partial light emitted by the LED 90 and entered to the optical element 30 emits form the top surface 320, the top surface 320 diverges the light. Other light emitted by the LED 90 and entered to the optical element 30 emits from the extending part 34 by refraction or emits form the light-emitting surface 340 through reflecting by the extending part 34. The luminous intensity distribution of the optical element 30 is shown in
Reference is made to
The extending part 44 having a plurality of light guide strips 442 is connected to the light guiding pillar 42 and extended from the circumference of the top surface 420. Multiple light-emitting surfaces 440 are disposed on the end of the light guide strips 442. An included angle θ is formed between the light-emitting surface 440 and the bottom surface 422. In this embodiment, the included angle θ is a right angle, which is equal to ninety degrees.
Reference is made to
The extending part 54 having a plurality of light guide strips 542 is connected to the light guiding pillar 52 and extended from the circumference of the top surface 520. Multiple light-emitting surfaces 540 are disposed on the end of the light guide strips 542. An included angle θ is formed between the light-emitting surface 540 and the bottom surface 522. In this embodiment, the included angle θ is an acute angle, which is smaller than ninety degrees.
Reference is made to
The extending part 64 having a plurality of light guide strips 642 is connected to the light guiding pillar 62 and extended from the circumference of the top surface 620. A light-emitting surface 640 are disposed on the end of the light guide strips 642. An included angle θ is formed between the light-emitting surface 640 and the bottom surface 622. In this embodiment, the included angle θ is an obtuse angle, which is larger than ninety degrees. In the practical application, the included angle θ can be a right angle or an acute angle for adjusting the light-emitting angle. The LED 90 is disposed on the recess 624 and emits light to the optical element 60.
To sum up, in the present invention, the optical element uses the extending part which is extended from the circumference of the top surface to guide the light entered the optical element so that the light can be refracted by the extending part or reflected to the light-emitting surface and emitting from the light-emitting surface to enlarge the light-emitting angle of light passed through the optical element. Moreover, charging an included angle formed between the light-emitting surface and the bottom surface can provide different forms of luminous intensity distribution such that the optical element can apply in different lighting field.
Although the present invention has been described with reference to the foregoing preferred embodiment, it will be understood that the invention is not limited to the details thereof. Various equivalent variations and modifications can still occur to those skilled in this art in view of the teachings of the present invention. Thus, all such variations and equivalent modifications are also embraced within the scope of the invention as defined in the appended claims.
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