This application claims priority to Taiwan Application Serial Number 102109265, filed Mar. 15, 2013, which is herein incorporated by reference.
1. Technical Field
Embodiments of the present invention relate to a luminous element. More particularly, embodiments of the present invention relate to a luminous element, a bar-shaped luminous element and the applications thereof.
2. Description of Related Art
In an LED lighting device such as a lamp or a backlight module in the display, plural LED chips are encapsulated in a lighting unit disposed on a substrate of the lamp or the backlight module. By wire soldering, the LED chips of the lighting unit are soldered to a circuit board in the lamp or the backlight module, so as to be electrically connected to the components, e.g. the driving module, on the circuit board.
However, if the LED chip is damaged and needs to be replaced, the soldering wires have to be desoldered to remove the damaged lighting unit and place a new lighting unit on the substrate. Afterwards, the new lighting unit needs to be wire-soldered to the circuit board. Therefore, it is inconvenient for the existing lamp or the backlight module to maintain or replace the lighting unit.
A summary of various embodiments according to the present invention are disclosed below. It should be understood that these aspects are presented merely to provide the reader with a brief summary of these certain embodiments and that these aspects are not intended to limit the scope of this disclosure.
Embodiments of the present invention provide a luminous element, bar-shaped luminous element that are easily to be replaced, so as to overcome the difficulty in the prior art.
In one aspect of the present invention, a luminous element includes a heat dissipation plate, a body, a plurality of LED chips, a first connector, a second connector, a first circuit and a second circuit. The heat dissipation plate includes a first surface and a second surface. The first surface has a die bonding area, and the second surface has a heat dissipation area. The body surrounds the heat dissipation plate, and includes a first body surface and a second body surface opposite to the first body surface. The first body surface includes a concave part exposing the die bonding area. The second body surface includes an opening exposing the heat dissipation area. The LED chips are mounted on the die bonding area. The first and second connectors are respectively disposed on the edge of the first body surface or the edge of the second body surface of the body. The first and the second connectors both include a first and a second electrical input port for being pluggably connected to an external power source or other connectors. The first circuit and the second circuit are disposed in the body. The LED chips are electrically connected between the first and the second circuits. The first circuit is electrically connected to the first electrical input ports of the first and the second connectors, and the second circuit is electrically connected to the second electrical input ports of the first and the second connectors.
The foregoing luminous element can be connected to or disconnected from the external power source or other connectors via the first connector and the second connector, so as to facilitate to replace the luminous element.
In another aspect of the present invention, a direct type backlight module includes a backlight source, a diffusion plate and a housing. The backlight source includes a plurality of luminous elements as described above. The first connector and/or the second connector of one of the luminous elements are pluggably connected to the first connector and/or the second connector of an adjacent one of the luminous elements via a connection wire having two third connectors at opposite ends thereof, so that the luminous elements are connected in series to form the backlight source. The diffusion plate is disposed above the backlight source. The housing accommodates the backlight source and the diffusion plate for constructing the direct type backlight module. The heat dissipation area of each of the luminous elements is in contact with the housing.
In the foregoing direct type backlight module, any luminous element can be connected to or disconnected from other luminous elements via the connection wire, so as to replace the luminous element.
In another aspect of the present invention, an edge-lit type backlight module includes a light guide plate, a light bar and a housing. The light guide plate has a light outgoing surface and a light incident surface perpendicular to the light outgoing surface. The light bar faces toward the light incident surface, such that the light bar emits a light toward the light incident surface. The light bar includes a plurality of luminous elements as described above. The first connector and/or the second connector of one of the luminous elements are pluggably connected to the first connector and/or the second connector of an adjacent one of the luminous elements via a connection wire having two third connectors at opposite ends thereof, so that the luminous elements are connected in series. The housing accommodates the light bar and the light guide plate for constructing the edge-lit type backlight module, and the heat dissipation area of each of the luminous elements is in contact with the housing.
In the foregoing edge-lit type backlight module, any luminous element can be connected to or disconnected from other luminous elements via the connection wire, so as to replace the luminous element.
In another aspect of the present invention, a backlight source includes a plurality of luminous elements as described above. The first connector and/or the second connector of one of the luminous elements are pluggably connected to the first connector and/or the second connector of an adjacent one of the luminous elements via a connection wire having two third connectors at opposite ends thereof, so that the luminous elements are connected in series to form the backlight source. The diffusion plate is disposed above the backlight source. The housing accommodates the backlight source and the diffusion plate for constructing the lamp panel. The heat dissipation area of each of the luminous elements is in contact with the housing.
In the foregoing lamp panel, any luminous element can be connected to or disconnected from other luminous elements via the connection wire, so as to replace the luminous element.
In another aspect of the present invention, a bar-shaped luminous element includes a bar-shaped heat dissipation plate, a plurality of LED chips, a first connector, a second connector, a first circuit and a second circuit. The bar-shaped heat dissipation plate includes a die bonding area and a heat dissipation area extended from one side of the die bonding area. The body has a recess, and encompasses the bar-shaped heat dissipation plate. The recess has a first body surface, a first recess lateral wall, and a second recess lateral wall. The first body surface exposes the die bonding area. The first recess lateral wall and the second recess lateral wall respectively extend from opposite sides of the first body surface. The heat dissipation area is partially exposed on a surface of the first recess lateral wall opposite to the second recess lateral wall. An angle between the first recess lateral wall and a normal line of the first body surface is φ degrees, and an angle between the second recess lateral wall and the normal line of the first body surface is φ degrees as well, wherein 0 degrees≦φ<90 degrees. The LED chips are mounted on the die bonding area. The first and second connectors are respectively disposed on opposite ends of the body. The first and the second connectors both include a first and a second electrical input ports for being pluggably connected to an external power source or other connectors. The first and the second circuits are insulated from the bar-shaped heat dissipation plate, and are positioned in the body. The LED chips are electrically connected between the first and the second circuits. The first circuit is electrically connected to the first electrical input ports of the first and the second connectors, and the second circuit is electrically connected to the second electrical input ports of the first and the second connectors.
The foregoing bar-shaped luminous element can be connected to or disconnected from the external power source or other connectors via the first connector and the second connector, so as to replace the bar-shaped luminous element.
In another aspect of the present invention, an edge-lit type backlight module includes a light guide plate, a bar-shaped light source and a housing. The light guide plate has a light outgoing surface and a light incident surface perpendicular to the light outgoing surface. The bar-shaped light source includes at least one bar-shaped luminous element as described above. The light guide plate is inserted into the recess, and the LED chips emit lights toward the light incident surface. The housing accommodates the bar-shaped light source and the light guide plate for constructing the edge-lit type backlight module. The heat dissipation area of the heat dissipation plate is in contact with the housing.
In the foregoing edge-lit type backlight module, because the bar-shaped luminous element has the first and second connectors for connecting other connectors, the bar-shaped luminous element can be connected to or disconnected from other bar-shaped luminous elements in a pluggable manner. Therefore, the user can increase or decrease the amount of the bar-shaped elements according to the length of different light guide plates in a pluggable manner.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
The invention can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
As shown in
In particular, the first connector 140 includes a socket 143 caved in one edge of the body 110. The first electrical input port 141 and the second electrical input port 142 are positioned in the socket 143. The external power source or other connector includes a protruded plug, and the plug can be inserted into the socket 143 and be electrically connected to the first electrical input port 141 and the second electrical input port 142. Similarly, the second connector 150 includes a socket 153 caved in another edge of the body 110 opposite to the first connector 140. The first electrical input port 151 and the second electrical input port 152 are positioned in the socket 153. The external power source or other connector includes a protruded plug, and the plug can be inserted into the socket 153 and be electrically connected to the first electrical input port 151 and the second electrical input port 152.
Therefore, the luminous element 10 can be connected to or disconnected from the external power source or other connectors via the first connector 140 and the second connector 150, so as to replace the luminous element 10.
The first circuit 160 is electrically connected to the first electrical input port 141 of the first connector 140 and the first electrical input port 151 of the second connector 150. The second circuit 170 is electrically connected to the second electrical input port 142 of the first connector 140 and the second electrical input port 152 of the second connector 150.
Therefore, when the external power source is pluggably connected to the first connector 140 and the second connector 150, the LED chips 130 can be conducted via the first circuit 160 and the second circuit 170, thereby emitting lights. In other words, the luminous element 10 doesn't have to connect to the external circuit by soldering wires. Instead, the luminous element 10 can be connected to or disconnected from the external power source in a pluggable manner, thereby facilitating the user to replace the luminous element 10.
In another embodiment, as shown in
As shown in
In another embodiment, the luminous element 10 further includes a reflective layer 118. The reflective layer 118 is disposed on the die bonding area 101 of the heat dissipation plate 100. The light emitted by the LED chip 130 toward the die bonding area 101 can be reflected by the reflective layer 118 out of the luminous element 10, so as to promote the light extraction efficiency of the luminous element 10.
The reflective layer 118 is formed of ceramic material with high reflectivity. For example, the ceramic material with high reflectivity is selected from the group consisting of titanium dioxide, silicon dioxide, aluminum oxide and zirconium oxide.
In particular, the wavelength converting unit 180 is an encapsulating glue 184 doped with wavelength converting material 182. The encapsulating glue 184 is filled in the concave part 113 and covers the LED chips 130. When the LED chip 130 emits first lights, some first lights excite the wavelength converting material 182 and are converted to second lights. The wavelength of the second lights can be greater than the wavelength of the first lights. These first lights and second lights can be blended in the encapsulating glue 184, thereby forming a light in white or other colors.
The wavelength converting material 182 can be phosphor, pigment or dye. In particular, the wavelength converting material 182 is a phosphor selected from the group consisting of the garnet, the silicate, the nitride, the nitrogen, and the sulfide activated by europium or cerium.
In another embodiment, the distance between the securing legs 194 of the optical lens 192 equals to the distance between the securing holes 117 on the body 110, so that each securing leg 194 can be inserted into a corresponding securing hole 117. The shape and size of the securing leg 194 are the same as the shape and size of the securing hole 117, so that the securing leg 194 can be tightly secured in the securing hole 117, thereby securing the optical lens 192.
In another embodiment, the wavelength converting material 191 is a phosphor selected from the group consisting of the garnet, the silicate, the nitride, the nitrogen, and the sulfide activated by europium or cerium.
In another embodiment, the optical lens 192 includes the quantum dot material therein for providing the ability of converting wavelength. The interior of the optical lens 192 is vacuum or filled with noble gas, so as to prevent the quantum dot material from oxidizing. The quantum dot material refers to the material that the sizes thereof along three dimensions are all less than the wavelength of an electron. The quantum dot material is selected from the group consisting of the zinc sulfide and the zinc selenide, and the zinc cadmium.
Further, in another embodiment, the first connector 140 and/or the second connector can also be disposed on the second body surface 112 of the body 110 (not shown).
The luminous element 10, 10a or 10b can be at least applied on a panel or a direct type backlight module 20 of a lamp panel.
In particular, in
In another embodiment, a heat conductive glue 250 is sandwiched between the heat dissipation area 102 of each of the luminous elements 10 and the housing 220, so as to transfer the thermal energy from the heat dissipation plate 100 to the housing 220.
Although the backlight source 200 is assembled by luminous elements 10 in
The luminous element 10, 10a or 10b can be at least applied on at least one edge-lit type backlight module 30.
As shown in
In another embodiment, a heat conductive glue, such as the heat conductive glue 250 in
Although the light bar 320 includes the luminous elements 10, the present invention is not limited to the luminous elements 10. In other embodiments, the light bar 320 can also include luminous elements 10a (See
As shown in
The first circuit 550 and the second circuit 560 are insulated from the bar-shaped heat dissipation plate 500, and are disposed in the body 510. As shown in
Therefore, when the external power source is pluggably connected to the first connector 530 and the second connector 540, the LED chip 520 can be conducted via the first circuit 550 and the second circuit 560, thereby emitting lights. In other words, the bar-shaped luminous element 50 doesn't have to connect to the external circuit by soldering wires. Instead, the luminous element 50 can be connected to or disconnected from the external power source in a pluggable manner, thereby facilitating the user to replace the bar-shaped luminous element 50.
In another embodiment, as shown in
The user can insert the first plug 533 and the second plug 534 of one bar-shaped luminous element 50 into the first socket 543 and the second socket 544 of another bar-shaped luminous element 50, such that these bar-shaped luminous elements 50 can be electrically connected to each other. Contrarily, the user can also pull the first plug 533 and the second plug 534 of one bar-shaped luminous element 50 out of the first socket 543 and the second socket 544 of another bar-shaped luminous element 50, such that two connected bar-shaped luminous elements 50 can be disconnected.
Based on
In another embodiment, as shown in
Based on
In another embodiment, as shown in
Based on
The reflective layer is formed of ceramic material with high reflectivity. For example, the ceramic material with high reflectivity is selected from the group consisting of titanium dioxide, silicon dioxide, aluminum oxide and zirconium oxide.
As shown in
In particular, the wavelength converting unit 570 is an encapsulating glue 574 doped with wavelength converting material 572. The encapsulating glue 574 is filled in the concave part 511 and covers the LED chips 520. When the LED chip 520 emits first lights, some first lights excite the wavelength converting material 572 and are converted to second lights. The wavelength of the second lights can be greater than the wavelength of the first lights. These first lights and the second lights can be blended in the encapsulating glue 574, thereby forming a light in white or other colors.
The wavelength converting material 572 can be phosphor, pigment or dye. In particular, the wavelength converting material 572 is a phosphor selected from the group consisting of the garnet, the silicate, the nitride, the nitrogen, and the sulfide activated by europium or cerium.
In particular, in another embodiment, the first body surface 512 of the body 510 has a plurality of securing holes 516. The wavelength converting unit 580 is an optical lens 582 having wavelength converting material 581. The optical lens 582 includes a plurality of securing legs 584. The securing legs 584 are connected to the bottom surface 583 of the optical lens 582 facing to the LED chips 520. The optical lens 582 is secured above the LED chips 520 by inserting the securing legs 584 in the securing holes 516, such that the wavelength converting unit 580 is spaced apart from the LED chips 520. More particularly, the distance between the securing legs 584 of the optical lens 582 equals to the distance between the securing holes 516 on the body 510, so that each securing leg 584 can be inserted into a corresponding securing hole 516. In another embodiment, the shape and size of the securing leg 584 are the same as the shape and size of the securing hole 516, so as to secure the optical lens 582.
In another embodiment, the wavelength converting material 581 is a phosphor, a pigment or a dye. In particular, the wavelength converting material 581 is the phosphor selected from the group consisting of the garnet, the silicate, the nitride, the nitrogen, and the sulfide activated by europium or cerium.
In another embodiment, the optical lens 582 includes the quantum dot material therein for providing the ability of converting wavelength. The interior of the optical lens 582 is vacuum or filled with noble gas, so as to prevent the quantum dot material from oxidizing. The quantum dot material refers to the material that the sizes thereof along three dimensions are all less than the wavelength of an electron. The quantum dot material is selected from the group consisting of the zinc sulfide and the zinc selenide, and the zinc cadmium.
The bar-shaped luminous elements 50 and 50a can be at least applied on an edge-lit type backlight module 60.
The heat dissipation area 502 of the bar-shaped heat dissipation plate 500 is in contact with the housing 620. Therefore, the thermal energy generated by the LED chip 520 on the die bonding area 501 can be transferred to the heat dissipation area 502 via the bar-shaped. Therefore, the thermal energy generated by the LED chip 130 can be transferred to the housing 220 via the heat dissipation plate 100, and be dissipated to the ambience via the housing 220.
In another embodiment, a heat conductive glue 250 is sandwiched between the heat dissipation area 102 of each of the luminous elements 10 and the housing 220, so as to transfer the thermal energy from the heat dissipation plate 100 to the housing 220 by the bar-shaped heat dissipation plate 500, and be dissipated to the ambience via the housing 620.
In another embodiment, a heat conductive glue 630 is sandwiched between the heat dissipation area 502 of the bar-shaped heat dissipation plate 500 and the housing 620, so as to transfer the thermal energy from the LED chip 520 to the housing 620.
In another embodiment, as shown in
In particular, as shown in
In the foregoing edge-lit type backlight module 60, because the bar-shaped luminous element 50 has the first connector 530 and the second connector 540 for connecting other connectors, the bar-shaped luminous element 50 can be connected to or disconnected from other bar-shaped luminous elements 50 in a pluggable manner. Therefore, the user can increase or decrease the amount of the bar-shaped elements 50 according to the length of different light guide plates 610 in a pluggable manner.
Although the bar-shaped backlight source 600 is assembled by bar-shaped luminous elements 50 in
Although the present invention has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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102109265 | Mar 2013 | TW | national |