The present disclosure relates to the field of liquid crystal display panels, and more particularly, to a light-emitting diode (LED) lightbar and a backlight unit.
A hotspot phenomenon in a backlight unit of a liquid crystal display panel should be prevented. The hotspot phenomenon is bright spots obviously distributed at intervals at sides of LED lightbars of the backlight unit. Confined to the lighting angle of 120 degrees (120°) and uneven distribution of the brightness, the brightness of a gap zone of the LED lamps is much less than the brightness of an emitting surface of the LED lamps when the LED lamps distributed at intervals on a flexible print circuit (FPC) are lit, resulting in bright and dark spots at one side of the LED lamps near a light guide plate (LGP). This is the cause of the occurrence of the hotspot phenomenon.
With the development of the LED technique, a dual-chip LED is proposed. Two lighting chips are packaged in an LED. Compared with a standard single-chip LED with the width of 3.8 millimeters (3.8 mm), the brightness of the dual-chip LED increases 1.8 times and the width of the dual-chip LED merely prolongs 0.4 mm. The number of the LED lamps of an LED lightbar can decrease with the dual-chip LED as a light source while the brightness is greater. Obviously, high brightness and high lighting efficiency are tendencies in the future. However, a problem occurs after the dual-chip LED is applied. The distance between any two LEDs enlarges in the same size when the dual-chip LED or an LED with high lighting efficiency is used. The decrease in the number of the LED lamps in the same size implies that the distance between any two LEDs enlarges. In addition, the improvement of the brightness of the LED enlarges the contrast of the bright and dark zones. As a result, the hotspot phenomenon may occur abruptly.
In light of the inadequacy of related art, an object of the present disclosure is to propose an LED lightbar and a backlight unit to curb the hotspot phenomenon.
According to one aspect of the present disclosure, a light-emitting diode (LED) lightbar includes a flexible print circuit, an LED lamp arranged on the flexible print circuit, and a light guiding plate arranged on the flexible print circuit. The light guiding film is arranged on an emitting surface between two adjacent LEDs. The light guiding film includes an incident surface and an emitting surface. Two sides of the incident surface of the light guiding film are attached to the emitting surface of the two LEDs.
Furthermore, the light guiding film is arranged on the emitting surface of one side of the two LEDs adjacent to the flexible print circuit.
Furthermore, a light guiding dot is arranged on the incident surface. The light guiding dot is configured to lead light out.
Furthermore, a prism structure is arranged on the emitting surface. The prism structure is configured to condense light.
Furthermore, the prism structure is defined by consecutive V-shaped grooves connected with one another.
Furthermore, the light guiding dot is formed by spherical recesses arranged in an array.
Furthermore, the light guiding dot is formed by hemispherical recesses arranged in an array.
Furthermore, the light guiding dot is arranged on a gap between the two adjacent LEDs on the incident surface, and the gap corresponds to the incident surface.
Furthermore, the prism structure is arranged on a gap between the two adjacent LEDs on the emitting surface, and the gap corresponds to the emitting surface.
According to another aspect of the present disclosure, a backlight unit includes a middle frame, a light guide plate arranged in the middle frame, a light-emitting diode (LED) lightbar. The LED lightbar comprises a flexible print circuit and a plurality of LEDs arranged on the flexible print circuit. The light guiding film is arranged on an emitting surface between two adjacent LEDs. The light guiding plate includes an incident surface and an emitting surface. Two sides of the incident surface of the light guiding plate is attached to the two LEDs. The emitting surface of the light guiding film is adhered to a side of the light guide plate.
Compared with the related art, a light guiding film is arranged on emitting surfaces of any two neighboring LEDs in the present disclosure. Light beams emitted by the LEDs enter the light guiding film partially. The light guiding film reflects the partial light beams are transferred to the gap between the LEDs. Therefore, the hotspot phenomenon is well curbed.
The invention is described below in detail with reference to the accompanying drawings.
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The incident surface 4 is formed by the surface of one side of the light guiding film 3. The emitting surface 5 is formed by the surface of the other side of the light guiding film 3, and this side is opposite to the incident surface 4. The incident surface 4 and the emitting surface 5 are arranged opposite. Specifically, the width of the light guiding film 3 is equal to the thickness of the LED 2.
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In another embodiment of the present disclosure, as
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Specifically, the emitting surface 5 of the light guiding film 3 is adhered to the incident surface of the LGP 9.
A light guiding film 3 is fabricated from polycarbonate (PC) material or polymethylmethacrylate (PMMA) material in another embodiment of the present disclosure.
The operating principle of the present disclosure is elaborated as follows.
When the LED lightbar works, the light beams emitted from the emitting surface of the LED 2 opposite to the light guiding film 3 enter the LGP 9 partially. The light beams are totally reflected and transmitted in the LGP 9. After the light beams shine on each of the recesses 61, the reflected light diffuses every nook and cranny. The reflected light emits from the emitting surface 5 of the light guiding film 3 by the reflection qualification of the reflected light is destroyed. The destroyed reflected light is condensed and emitted out through the prism structure. Since some of the light is transformed to be emitted out from the gap between the LEDs 2, the hotspot phenomenon is effectively curbed.
The structure of the LED 2 is improved without changing the original structure of the backlight unit to curb the hotspot phenomenon.
Above are embodiments of the present invention, which does not limit the scope of the present invention. Any modifications, equivalent replacements or improvements within the spirit and principles of the embodiment described above should be covered by the protected scope of the invention.
Number | Date | Country | Kind |
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201710312559.1 | May 2017 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2017/086009 | 5/25/2017 | WO | 00 |