1. Field of the Invention
The present invention relates to a lampshade, and more particularly to a light-emitting diode (LED) lampshade having a shorter distance between a light incident portion and a light emitting portion, and enhanced light transmittance and concentration through the lampshade.
2. Description of the Related Art
A conventional LED lamp normally has a base, an LED module and a lampshade. The LED module is mounted on the base, and has a circuit board having LEDs mounted thereon. The lampshade is mounted on and covers the base, and has a body. The body has a light incident surface and a light emitting surface. The light incident surface is adjacent to the LEDs, and has multiple recesses. The recess is formed in the light incident surface, faces the LEDs, and has a circular light concentration wall inside the recess to define a chamber to hold a corresponding LED inside. The light emitting surface is a plane.
However, as light emitted by LEDs must be refracted by the light concentration wall and transmitted through the light emitting surface of the lampshade, and the distance between the recess and the light emitting surface is quite far, the light concentration performance is affected and luminance is dimmed. As a consequence, such a lampshade fails to satisfy the market demand.
An objective of the present invention is to provide an LED lampshade having a shorter distance between a light incident portion and a light emitting portion, and enhanced light transmittance and concentration therethrough.
To achieve the foregoing objective, the LED lampshade has a body and multiple light concentrators.
The body has a light exit plane.
The light concentrators are formed on the body. Each light concentrator has a light incident recess, a light transmitting recess and a second concentration wall. The light incident recess has a first concentration wall and a first chamber. The first chamber is defined by the first concentration wall. The light transmitting recess corresponds to the light incident recess, and has a second concentration wall, a second chamber and an opening. The second chamber is defined by the second concentration wall and oppositely faces the first chamber. The opening is formed through the light exit surface of the body. The third concentration wall is formed around a periphery of the light concentrator.
The LED lampshade can be mounted in an LED lamp and covers a lamp holder of the LED lamp. An LED module of the LED lamp is mounted between the LED lampshade and the lamp holder. The light concentrators of the LED lampshade respectively correspond to LEDs mounted on the LED module. Each LED can be inserted in the first chamber of the light incident recess. Light emitted from the LED can be concentrated and transmitted out through the light exit plane by reflection and/or refraction with the first concentration wall, the second concentration wall and the third concentration wall. Besides, the distance between the opposite light incident recess and light transmitting recess is shorter. Therefore, luminance and light concentration can be significantly enhanced by the LED lampshade.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
The body 10 has a light exit plane 11 formed on a top of the body 10. The light concentrators 20 are formed on the body 10, and each light concentrator 20 has a light incident recess 21 and a light transmitting recess 22. The light incident recess 21 has a first concentration wall 23 and a first chamber 25 defined by the first concentration wall 23. The light transmitting recess 22 corresponds to the light incident recess 21, and has a second concentration wall 24, a second chamber 26 and an opening 27. The second chamber 26 is defined by the second concentration wall 24 and oppositely facing the first chamber 25. The opening 27 is formed through the light exit plane 11. Each light concentrator 20 further has an third concentration wall 28 formed around a periphery of the light concentrator 20.
With reference to
With reference to
With reference to
Each light concentrator 20 of the LED lampshade corresponds to and aligns with one of the LEDs 42 of the LED module 40. An emitting end of each LED 42 is inserted in the first chamber 25 of a corresponding light concentrator 20. Light emitted from the LED 42 can be emitted through the exit plane 11 of the body 10 of the LED lampshade through the following paths. Light emitted from the LED 42 is first reflected or refracted by the first concentration wall 23. The reflected light propagates to and is reflected again by the second concentration wall 24, and then is transmitted out of the light exit plane 11 of the body 10. The refracted light propagates to the third concentration wall 28, and is reflected or refracted by the third concentration wall 28. The reflected light propagates to and is reflected by the second concentration wall 24, and is transmitted out of the light exit plane 11 of the body 10. The refracted light propagates to and is refracted by the third concentration wall 28 of an adjacent light concentrator 20. The refracted light propagates to and is reflected by the second concentration wall 24, and is transmitted out of the light exit plane 11 of the body 10. According to the above light transmission paths, propagation angles of light transmitted from the LED 42 can be adjusted through the optical design of the first concentration wall 23, the second concentration wall 24 and the third concentration wall 28. As a result, light concentration can be effectively achieved by the light concentrator 20.
Each light concentrator 20 of the LED lampshade has the light incident recess 21 and the light transmitting recess 22 oppositely formed therein to shorten a gap between the light incident recess 21 and the light transmitting recess 22, so that light transmitted from the LEDs 42 can be more easily transmitted out through the light concentrator 20. Accordingly, the light transmittance and luminance of the LED lampshade is enhanced. Additionally, lights emitted from the LED lamp are more concentrated by reflection and/or refraction with the first concentration wall 23, the second concentration wall 24 and the third concentration wall 28. Accordingly, the LED lampshade of the present invention addresses an improved solution in terms of light transmittance and light concentration.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only. Changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.