The present invention relates to a lighting device, a display device and a television receiver.
For example, a liquid crystal panel used for a liquid crystal display device such as a liquid crystal television set does not emit light by itself and therefore separately requires a backlight unit as a lighting device. This backlight unit is installed on a rear side of the liquid panel (side opposite to a display surface) and includes a chassis having an opening on a surface close to the liquid crystal panel side, a plurality of cold cathode tubes housed in the chassis, a plurality of optical members (such as a diffuser sheet) arranged in the opening of the chassis so as to efficiently radiate light emitted from the cold cathode tubes to the liquid crystal panel side, an inverter board that can supply electric power to each cold cathode tube, and a connector that electrically connects the cold cathode tubes and the inverter board.
Patent Document 1 discloses a specific structure of the connector of the backlight unit. The connector includes connection terminals that sandwich an outer lead provided in an end part of a cold cathode tube and an operation member having a pressure portion to pressurize the connection terminals sandwiching the outer lead. This structure enhances a sandwiching force with which the connection terminals sandwich the outer lead.
Patent Document 1: Japanese Unexamined Patent Publication No. 2007-48716
Meanwhile, it is concerned that, if large vibration or impact is applied during transportation of a liquid crystal display device, an outer lead sandwiched by connection terminals is disengaged from the connection terminals and a connection state is cancelled. In Patent Document 1, the connection terminals are pressurized by the pressure portion to achieve the configuration of enhancing the sandwiching force with which the connection terminals sandwich the outer lead. However, it does not specifically maintain vibration resistance performance or impact resistance performance for great vibration or impact that may be caused during transportation. Therefore, the above structure may not reliably prevent disengagement of the outer lead. Therefore, connection reliability may be further improved.
The present invention was made in view of the foregoing circumstances and it is an object of the present invention to improve connection reliability.
A lighting device of the present invention includes a light source having an external connecting portion at an end part; a chassis housing the light source; and a connector mounted to the chassis and including an insertion path to which the external connecting portion is inserted, a connection terminal configured to expand to receive the external connecting portion inserted to the insertion path, and a restricting portion configured to be selectively moved in one of a first position and a second position. The restricting portion positioned in the first position allows the external connecting portion to be inserted to the insertion path and allows the connection terminal to expand to receive the external connecting portion. The restricting portion positioned in the second position restricts the external connecting portion to be inserted to the insertion path and restricts expansion of the connection terminal that holds the external connecting portion therein.
With this configuration, if the restricting portion is arranged in the first position, the external connecting portion at an end part of the light source is allowed to be inserted to the insertion path of the connector and the connection terminal sandwiching the external connecting portion is allowed to expand. Therefore, the external connecting portion is inserted from the outside into the insertion path and the connection terminal sandwich the external connection portion therebetween. Also, the external connecting portion is detached from the connection terminal and removed to the outside to the insertion path. If the restricting portion is positioned in the second position after the external connecting portion is sandwiched with the connection terminal, insertion of the external connecting portion into the insertion path is restricted and expansion of the connection terminal sandwiching the external connecting portion is restricted. Accordingly, even if vibration or impact is applied to the lightning device from the outside, it is prevented that the connection terminal is carelessly expanded and the sandwiched external connecting portion is detached therefrom or the detached external connecting portion falls out to the outside through the insertion path. The restricting portion positioned in the second position directly operates to the external connecting portion and the connection terminal that are mutually connected and this prevents a connection state from being released. Therefore, it is possible to maintain the connection state between the external connecting portion and the connection terminal more stably than the conventional structure and acquire higher connection reliability.
As embodiments of the present invention, the following configurations are preferable.
(1) The connector may include a connector housing mounted to the chassis and configured to house the connection terminal, and the restricting portion may be provided separately from the connector housing. With this structure, compared to a case where the restricting portion is integrally provided to the connector housing, the restricting portion is freely designed.
(2) The restricting portion may move approximately linearly between the first position and the second position. With this configuration, the restricting portion is approximately linearly moved between the first position and the second position, and this improves workability. The restricting portion is formed separately from the connector housing, and this easily achieves a design for approximately linear movement.
(3) The restricting portion may move in a movement direction that is inclined to an insertion direction in which the external connecting portion is inserted to the insertion path. With this configuration, compared to a case where the movement direction of the restricting portion is orthogonal to the insertion direction of the external connecting portion, the restricting portion is easier to be operated when moving, and this improves workability.
(4) At least one of the restricting portion and the connector housing may have a guide surface that is inclined to the insertion direction in which the external connecting portion is inserted to the insertion path and guide movement of the restricting portion. With this configuration, the restricting portion is operated along the insertion direction of the external connecting portion with respect to the insertion path, and accordingly, the movement of the restricting portion is guided by the guide surface. That is, an operation of inserting the external connecting portion into the insertion path and connecting it to the connection terminal and an operation of moving the restricting portion are executed in the same direction and this improves workability.
(5) The restricting portion may include a pair of restricting pieces. The pair of restricting pieces may be separated from each other and form a space therebetween that is communicated to the insertion path in the first position. The pair of restricting pieces may be closer to each other to narrow the space as the restricting pieces move from the first position to the second position. With this configuration, the space formed between the restricting pieces is communicated to the insertion path in the first position, and therefore, facing surfaces of the restricting pieces determine the position of the external connecting portion with respect to the insertion path. If the restricting pieces are moved from the first position to the second position, the restricting pieces move closer to each other to narrow the space. This restricts insertion of the external connecting portion into the insertion path and expansion of the connection terminal sandwiching the external connecting portion.
(6) The pair of restricting pieces may have a symmetrical shape. With this configuration, each of the restricting pieces is formed from a common component, and this reduces cost for the restricting portion.
(7) The lighting device may further include a holding structure provided on the restricting portion and the connector housing and configured to hold the restricting portion with respect to the connector housing selectively in one of the first position and the second position. With this configuration, it is possible to hold the restricting portion in one of the first position and the second position.
(8) The connector may include a connector housing that is mounted to the chassis and configured to house the connection terminal, and the restricting portion may be integrally formed with the connector housing. With this configuration, compared to a case where the restricting portion is formed separately from the connector housing, the number of components and the production cost are reduced.
(9) The restricting portion may be connected to the connector housing via a hinge and rotatably move around the hinge between the first position and the second position. With this configuration, the restricting portion is moved rotatably around the hinge to be moved between the first position and the second position.
(10) The light source may be formed in a linear shape having an axis. The restricting portion that is positioned in the first position may be arranged in adjacent to and outside of the connector housing in a direction crossing both the axis and an insertion direction in which the external connecting portion is inserted to the insertion path. With this configuration, it is prevented that the restricting portion in the first position and the connector housing are arranged along the axis of the light source. Therefore, the lighting device is reduced in size in an axial direction of the light source.
(11) The restricting portion may have one end side connected to the connector housing by the hinge and another end side separated from the connector housing. With this configuration, in the first position, the restricting portion is arranged adjacent to only one side of the connector housing in a direction crossing the axis and the insertion direction of the external connecting portion with respect to the insertion path. This ensures a space on a side opposite to the restricting portion in the first position.
(12) The restricting portion may include a pair of restricting pieces, and an end part of one of the restricting pieces that is away from another restricting piece in the second position may be connected to the connector housing by the hinge. With this configuration, in the first position, the pair of restricting pieces is arranged in adjacent to and on both sides of the connector housing in a direction crossing the axis and the insertion direction of the external connecting portion with respect to the insertion path. Therefore, it is possible to reduce the spaces ensured on the both sides of the connector housing when the pair of restricting pieces is arranged in the first position.
(13) The light source may include a plurality of light sources and each of the light sources may have a linear shape having an axis and the light sources may be arranged in parallel to each other along a direction crossing the axis and an insertion direction in which the external connecting portion is inserted to the insertion path. The restricting portion in the first position may be arranged in adjacent to and outside of the connector housing along the axis. With this configuration, the restricting portion is not arranged between adjacent light sources in the first position and therefore, the restricting portion is less likely to interfere with the adjacent light sources. In other words, it is possible to freely set intervals between the adjacent light sources regardless of the restricting portion and reduce regulations in optical design of the lighting device.
(14) The connection terminal may include a pair of elastic contact parts that are configured to be elastically in contact with the external connecting portion. With this configuration, if the external connecting portion is sandwiched by the pair of elastic contact parts of the connection terminal, the pair of elastic contact parts elastically contacts the external connecting portion. This maintains good mutual connection state and further enhances connection reliability.
(15) The lighting device may further include an electric power supply board configured to supply drive electric power to the light source and arranged on a side opposite to the light source with respect to the chassis. The connector may electrically relay-connect the electric power supply board and the light source. With this configuration, the electric power supply board and the light source are relay-connected by the connector and this supplies the drive electric power from the electric power supply board to the light source.
(16) The light source may be configured with a cold cathode tube. This achieves a long service life and easily modulates light.
Next, to solve the above problems, a display device of the present technology includes the above-noted lighting device and a display panel that performs display using light from the lighting device.
According to such a display device, the lighting device that supplies light to the display panel has higher connection reliability between the light source and the connector, and therefore it is possible to perform display in a stable manner.
A liquid crystal panel may be used as the display panel. Such a display device may be used as a liquid crystal display device for a display of a television or a personal computer and is specifically suitable for a large screen.
According to an aspect of the present technology, it is possible to improve connection reliability.
The first embodiment of the present invention will be explained using
As illustrated in
Next, the liquid crystal panel 11 and the backlight unit 12 forming the liquid crystal display device 10 will be explained sequentially. The liquid crystal panel 11 has a rectangular shape in a plan view, and, as illustrated in
As illustrated in
The chassis 14 is made from metal such as aluminum and has a configuration in which side plates rise from circumference ends of a bottom plate 14a having a rectangular shape in a plan view similarly to the liquid crystal panel 11. The long side direction of this bottom plate 14a matches the X-axis direction of each figure and the short side direction matches the Y-axis direction. This bottom plate 14a is arranged on the rear side of the cold cathode tubes 18 so as to face each other; in other words, it is arranged on the side opposite to the light output side in the cold cathode tubes 18. The reflection sheet 15 is made from a white synthetic resin of higher light reflectivity and installed so as to cover the substantially whole area of the inner surface in the bottom plate 14a of the chassis 14, and has a function of reflecting light from the cold cathode tubes 18 to the side of the optical member 16 (light output side).
The optical member 16 has a rectangular shape in a plan view similarly to the bottom plate 14a of the chassis 14 and the liquid crystal panel 11, and is made from a synthetic resin capable of light transmission and provided between the cold cathode tubes 18 on the rear side and the liquid crystal panel 11 on the front side. The optical member 16 is configured with, for example, a diffuser plate, a diffuser sheet, a lens sheet and a brightness enhancement sheet in this order from the rear side, and has a function of converting light emitted from each of the cold cathode tubes 18 serving as linear light sources, into uniform planar light.
The frame 17 has a frame shape along a marginal part of the liquid crystal panel 11 or the optical member 16. The frame 17 is arranged on the front side of the optical member 16 and can sandwich the marginal part of the optical member 16 between the side plates of the chassis 14 and the lamp holder 20 which will be described later. Also, the frame 17 can hold the liquid crystal panel 11 from the rear side and sandwich the liquid crystal panel 11 with the bezel 13 arranged on the front side of the liquid crystal panel 11.
The cold cathode tubes 18 are a kind of linear light sources (tubular light sources). As illustrated in
These cold cathode tubes 18 are a kind of discharge tubes and, as illustrated in
The lamp clip 19 is made from a white synthetic resin of high light reflectivity and, as illustrated in
The lamp holder 20 is made from a white synthetic resin of high light reflectivity and, as illustrated in
The inverter board 21 is made by forming a predetermined circuit pattern on a board made from a synthetic resin (made from, for example, a phenolic paper or a glass-epoxy resin) and mounting various electrical components (these and the circuit pattern are not illustrated) such as a transformer. This inverter board 21 is connected to the power source P of the liquid crystal display device 10 and has a function of controlling the lighting and extinction of the cold cathode tubes 18 by rising the pressure of an input voltage that is input from the power source P and by, for example, outputting an output voltage higher than the input voltage to the cold cathode tubes 18. As illustrated in
As illustrated in
As illustrated in
The connection terminal 24 has a size so as to be housed in the terminal housing room 23d and range from the light source receiving portion 23a to the board receiving portion 23b. In the connection terminal 24, an end part arranged inside the above light source receiving portion 23a is a light source contact portion 24a that can contact the outer lead 18c of the cold cathode tube 18, and an end part arranged inside the above board receiving portion 23b is a board contact portion 24b that can contact the connecter connecting portion 21a in the inverter board 21. An output voltage that is output from the inverter board 21 can be input to the outer lead 18c and the electrode portions 18b of the cold cathode tube 18 via the connection terminal 24 of the connector 22. Among these, the board contact portion 24b has one spring portion and comes into elastic contact with the contact connecting portion 21a. The insertion and extraction direction of the connector connecting portion 21a with respect to the board contact portion 24b substantially matches the X-axis direction.
As illustrated in
The connector 22 according to the present embodiment includes a restricting portion 27 to maintain a connection state between the outer lead 18c and the connection terminal 24. The restricting portion 27 is formed separately from the connector housing 23 and is mounted to the terminal housing room 23d of the light source receiving portion 23a. Further, in the connector housing 23, the restricting portion 27 is selectively arranged in one of a first position illustrated in
To be more specific, the restricting portion 27 has an outline similar to the terminal housing room 23d in the light source receiving portion 23a as a whole. The restriction portion 27 is configured with a pair of restricting pieces 27A and 27B that is mutually divided and has a mutually symmetrical shape. That is, the pair of restricting pieces 27A and 27B is an identical component. In an inner periphery of the terminal housing room 23d, both internal surfaces in the X-axis direction have a substantially straight shape along the Z-axis direction as illustrated in
As illustrated in
When the pair of restricting pieces 27A and 27B is arranged in the first position illustrated in
When the pair of restricting pieces 27A and 27B is in the second position illustrated in
The restricting pieces 27A and 27B are selectively held in the first position or the second position with respect to the connector housing 23, and the connector housing 23 and the restricting pieces 27A and 27B have the holding structure that will be explained next. The holding structure is configured with a first holding protrusion 33 and a second holding protrusion 34 that are provided in the restricting pieces 27A and 27B and a holding groove portion 35 provided in the connector housing 23. The first holding protrusion 33 and the second holding protrusion 34 are formed in the facing surfaces of the guide surfaces 28 of the restricting pieces 27A and 27B. The first holding protrusion 33 and the second holding protrusion 34 are arranged with a predetermined interval in the Z-axis direction and the first holding portion 33 is relatively arranged on the front side and the second holding protrusion 34 is relatively arranged on the rear side. The holding groove portion 35 is formed by penetrating a side wall 23f having the guide surface 28 in the terminal housing room. 23d of the connector housing 23 in the Y-axis direction. The dimension of the holding groove portion 35 in the Z-axis direction is substantially equal to the external dimension between the first holding protrusion 33 and the second holding protrusion 34. The dimension in the Z-axis direction of a part remaining on the front side of the holding groove portion 35 in the side wall 23f is substantially equal to the internal dimension smaller than the external dimension between the first holding protrusion 33 and the second holding protrusion 34. Also, if the restricting pieces 27A and 27B are arranged in the first position, as illustrated in
The present embodiment provides the configuration described above and its operation will be explained next. To produce the liquid crystal display device 10, the liquid panel 11, the backlight unit 12 and the bezel 13 that are separately manufactured are assembled. In the following, the manufacturing procedure of the backlight unit 12 will be mainly explained.
Before the connector 22 is mounted to the chassis 14, the connection terminal 24 and the restricting portion 27 are attached to the connector housing 23. The connection terminal 24 is housed in the terminal housing room 23d of the connector housing 23, and accordingly the connection terminal 24 is arranged in a range from the light source receiving portion 23a to the board receiving portion 23b. The pair of restricting pieces 27A and 27B forming the restricting portion 27 is housed in the terminal housing room 23d of the light receiving portion 23a. At this time, as illustrated in
Each of the connectors 22 having the restricting portion 27 that is positioned in the first position as described above is mounted to the chassis 14, and each of the lamp clips 19 is also attached to the chassis 14 and furthermore the reflection sheet 15 is installed in the chassis 14. Next, each of the cold cathode tubes 18 is housed in the chassis 14. If the cold cathode tubes 18 are housed in the chassis 14, each end part of the cold cathode tubes 18 enters the light source receiving portion 23a of the connector housing 23 of each of the connectors 22 along the Z-axis direction. At this time, each of the outer leads 18c passes through the gap C between the insertion restricting portions 32 of the restricting portions 27, and passes through the insertion path 25 and is inserted to a space between the pair of elastic contact parts 26. The pair of elastic contact parts 26 is pressed and expanded outward by the inserted outer leads 18c, and evacuates into the external expansion allowance space OS and is elastically expansion-deformed in the Y-axis direction. Further, if the cold cathode tubes 18 are pressed into the normal depth in the chassis 14, the outer leads 18c are elastically sandwiched between the pair of elastic contact parts 26 with predetermined contact pressure.
After the cold cathode tubes 18 are housed in the chassis 14, the restricting portion 27 is moved from the first position to the second position. If the restricting pieces 27A and 27B in the first position illustrated in
If all the cold cathode tubes 18 are housed, the lamp holders 20 are attached to the end parts of the chassis 14 in the long side direction. After the lamp holders 20 are attached, the connectors 22 and end portions of the cold cathode tubes 18 are housed in the lamp holders 20 (
When the liquid crystal display device 10 produced as above is transported, large vibration or impact may be applied to the liquid crystal display device 10, and in such a case, a connection state between the connection terminal 24 and the outer lead 18c may be adversely affected. According to the present embodiment, the expansion restricting portions 31 of the restricting portion 27 in the second position are located in the expansion allowance space OS of the elastic contact parts 26 of the connection terminal 24 and restrict the expansion of the both elastic contact parts 26. Therefore, the outer lead 18c sandwiched between the both elastic contact parts 26 is prevented from being released therefrom due to vibration or impact. Further, the insertion restricting portions 32 of the restricting portion 27 in the second position are located in the insertion path 25 and block the insertion path 25 from the outside. Accordingly, insertion of the outer lead 18c into the insertion path 25 is almost impossible and the outer lead 18c is prevented from being released outside. If the outer lead 18c is arranged inside the insertion restricting portions 32 in the terminal housing room 23d, it is possible to maintain a contact state with the elastic contact parts 26. Thus, the restricting portion 27 according to the present embodiment directly operates to the elastic contact parts 26 of the connection terminal 24 and the outer lead 18c that are mutually connected to prevent the connection state from being cancelled. Therefore, even if large vibration or impact is applied to the device, the connection state of the connection terminal 24 and the outer lead 18c is stably maintained and high vibration resistance performance and impact resistance performance are obtained. Accordingly, high connection reliability is also obtained.
As explained above, the backlight unit 12 of the present embodiment includes the cold cathode tube 18 (light source) having the outer lead 18c (external connecting portion) at the end part; the chassis 14 housing the cold cathode tube 18; and the connector 22 mounted to the chassis 14. The connector 22 includes the insertion path 25 to which the outer lead 18c is inserted and the connection terminal 24 that sandwiches the outer lead 18c passing through the insertion path 25. The connector includes the restricting portion 27 that is selectively arranged in one of the first position and the second position. The restricting portion 27 in the first position allows insertion of the outer lead 18c into the insertion path 25 and allows expansion of the connection terminal 24 sandwiching the outer lead 18c. The restricting portion 27 in the second position restricts insertion of the outer lead 18c into the insertion path 25 and restricts expansion of the connection terminal 24 sandwiching the outer lead 18c.
With this configuration, if the restricting portion 27 is arranged in the first position, the outer lead 18c provided at the end part of the cold cathode tube 18 is allowed to be inserted into the insertion path 25 of the connector 22 and the connection terminal 24 sandwiching the outer lead 18c is allowed to be expanded. Therefore, it is possible to insert the outer lead 18c into the insertion path 25 from the outside and sandwich it with the connection terminal 24, and also it is possible to detach the outer lead 18c from the connection terminal 24 and extract it to the outside with passing through the insertion path 25. If the restricting portion 27 is arranged in the second position after the outer lead 18c is sandwiched by the connection terminal 24, insertion of the outer lead 18c into the insertion path 25 is restricted and expansion of the connection terminal 24 sandwiching the outer lead 18c is restricted. Accordingly, for example, even if vibration or impact is applied to the backlight unit 12 from the outside, it is prevented that the connection terminal 24 is carelessly expanded and the sandwiched outer lead 18c is released therefrom or the released outer lead 18c comes out to the outside through the insertion path 25. That is, the restricting portion 27 arranged in the second position directly operates to the outer lead 18c and the connection terminal 24 that are mutually connected and this prevents a connection state from being cancelled. This maintains the connection state between the outer lead 18c and the connection terminal 24 more stably than the related art and higher connection reliability is obtained.
Also, the connector 22 is mounted to the chassis 14 and has the connector housing 23 housing the connection terminal 24, and the restricting portion 27 is formed separately from the connector housing 23. With this configuration, compared to a configuration in which the restricting portion is formed integrally with the connector housing 23, the restricting portion 27 is freely designed.
Also, the restricting portion 27 is approximately linearly moved between the first position and the second position. With this configuration, the restricting portion 27 is moved substantially linearly between the first position and the second position, and this improves workability. The restricting portion 27 is formed separately from the connector housing 23 and this easily achieves design for substantial linear movement.
Also, the movement direction of the restricting portion 27 is inclined to the insertion direction (Z-axis direction) of the outer lead 18c with respect to the insertion path 25. With this configuration, compared to a configuration in which the movement direction of the restricting portion is orthogonal to the insertion direction of the outer lead 18c, the restricting portion 27 is easier to be operated upon movement and the workability is high.
Also, at least one of the restricting portion 27 and the connector housing 23 is provided with the guide surface 28 that is inclined to the insertion direction of the outer lead 18c with respect to the insertion path 25 and guides the movement of the restricting portion 27. With this configuration, the restricting portion 27 is operated along the insertion direction of the outer lead 18c with respect to the insertion path 25, and accordingly the movement of the restricting portion 27 is guided by the guide surface 28. That is, the operation directions are same in an operation of inserting the outer lead 18c into the insertion path 25 and connecting it to the connection terminal 24 and in an operation of moving the restricting portion 27, and this further improves workability.
Also, the restricting portion 27 is formed with the pair of restricting pieces 27A and 27B, and the pair of restricting pieces 27A and 27B is separated from each other and holds the gap C therebetween that is communicated to the insertion path 25 in the first position. The restricting pieces 27A and 27B get closer to each other with narrowing the gap C as they move from the first position to the second position. With this configuration, in the first position, the gap C held between the pair of restricting pieces 27A and 27B is communicated to the insertion path 25, and the facing surfaces of the restricting pieces 27A and 27B determine the position of the outer lead 18c with respect to the insertion path 25. If the pair of restricting pieces 27A and 27B is moved from the first position to the second position, the pair of restricting pieces 27A and 27B get closer to each other with narrowing the gap C. This restricts insertion of the outer lead 18c into the insertion path 25 and expansion of the connection terminal 24 sandwiching the outer lead 18c.
The pair of restricting pieces 27A and 27B has a mutually symmetrical shape. With this configuration, the restricting pieces 27A and 27B are configured with a common component, and this reduces the cost related to the restricting portion 27.
The restricting portion 27 and the connector housing 23 have a holding structure (the first holding protrusion 33, the second holding projection structure 34 and the holding groove 35) that can selectively hold the restricting portion 27 in the first position or the second position with respect to the connector housing 23. With this configuration, it is possible to hold the restricting portion 27 in the first position or the second position in a position determination state.
The connection terminal 24 has the pair of elastic contact parts 26 that comes in elastically contact with the outer lead 18c. With this configuration, if the outer lead 18c is sandwiched between the pair of elastic contact parts 26 of the connection terminal 24, the elastic contact parts 26 elastically contact to the outer lead 18c. This maintains a good mutual connection state and further enhances the connection reliability.
The inverter board 21 that supplies drive electric power to the cold cathode tube 18 (electric power supply board) is arranged on a side of the chassis 14 that is opposite to the cold cathode tube 18 side. The connector 22 electrically relay-connects the inverter board 21 and the cold cathode tube 18 With this configuration, the connector 22 relay-connects the inverter board 21 and the cold cathode tube 18 and this supplies the drive electric power from the inverter board 21 to the cold cathode tube 18.
The light source is configured with the cold cathode tube 18. This achieves a long service life and easily modulates light.
The second embodiment of the present invention will be explained using
As illustrated in
As described above, according to the present embodiment, a connector 122 is mounted to the chassis 14 and has the connector housing 123 housing the connection terminal 24, and the restricting portion 127 is integrally formed with the connector housing 123. With this configuration, compared to a configuration in which the restricting portion is formed separately from the connector housing 123, and this reduces the number of components and the production cost.
The restricting portion 127 is connected to the connector housing 123 via the hinge 36 and rotates around the hinge 36 between the first position and the second position. With this configuration, the restricting portion 127 is rotated around the hinge 36 to move the restricting portion 127 between the first position and the second position.
The cold cathode tube 18 has a linear shape along the axis direction, and in the first position, the restricting portion 127 arranged adjacent to and outside of the connector housing 123 in a direction (Y-axis direction) crossing the axis direction (X-axis direction) and the insertion direction of the outer lead 18c with respect to the insertion path 25 (Z-axis direction). Accordingly, it is prevented that the restricting portion 127 in the first position and the connector housing 123 are arranged along the axis direction of the cold cathode tube 18 and this reduces a size of the backlight unit 12 in the axis direction of the cold cathode tube 18.
One end side of the restricting portion 127 is connected to the connector housing 123, and the other end side is separated from the connector housing 123. Accordingly, in the first position, the restricting portion 127 is arranged adjacent to only one side of the connector housing 123 in a direction crossing the axis direction and the insertion direction of the outer lead 18c with respect to the insertion path 25, and this ensures the available space on the opposite side.
The third embodiment of the present invention will be explained using
As illustrated in
As described above, according to the present embodiment, the restricting portion 227 is configured with the pair of restricting pieces 227A and 227B. The end parts of the restricting pieces 227A and 227B that are away from each other in the second position are connected to the connector housing 223 by the hinge 236. Accordingly, in the first position, the pair of restricting pieces 227A and 227B is arranged adjacent to both sides of the connector housing 223 in a direction (Y-axis direction) crossing the axis direction (X-axis direction) and the insertion direction of the outer lead 18c with respect to the insertion path 25 (Z-axis direction), and this reduces the spaces ensured on the both sides of the connector housing 223 when the pair of restricting pieces 227A and 227B is arranged in the first position.
The fourth embodiment of the present invention will be explained using
As illustrated in
As explained above, according to the present embodiment, the cold cathode tube 18 has a linear shape along the axis direction and a plurality of the cold cathode tubes 18 is arranged in parallel along a direction (Y-axis direction) crossing the axis direction (X-axis direction) and the insertion direction of the outer lead 18c with respect to the insertion path 25 (Z-axis direction). Further, in the first position, the restricting portion 327 is arranged adjacent to and outside of the connector housing 323 in the axis direction. With this configuration, the restricting portion 327 is not arranged between adjacent cold cathode tubes 18 in the first state, and therefore the restricting portion 327 is less likely to interfere with the adjacent cold cathode tubes 18. In other words, it is possible to freely set the interval between the adjacent cold cathode tubes 18 regardless of the restricting portion 327 and increase freedom in optical design of the backlight unit 12.
Next, the reference example will be explained using
As illustrated in
The present invention is not limited to the above embodiments explained by the above description and figures. The following embodiments may be included in the technical scope of the present invention, for example.
(1) In the above first embodiment, a guide surface is provided in a connector housing and a slope surface parallel along the guide surface is also provided in a restricting portion. The guide surface on the connector housing side or the slope surface on the restricting portion side may not be provided. Even in such a case, the movement of the restricting portion to a direction inclined to the Z-axis direction is guided.
(2) In the first embodiment, the movement of a restricting portion is guided by a guide protrusion and a guide groove portion in addition to the guide surface of the connector housing and the slope surface of the restricting portion. The movement of the restricting portion may be guided only by the guide protrusion and the guide groove portion and the guide surface and slope surface may not be provided. The movement of the restricting portion may be guided by the guide surface or the slope surface and the guide protrusion and the guide groove portion may not be provided.
(3) In the first embodiment, the restricting portion separated from the connector housing is configured with a pair of restricting pieces. The restricting portion may be provided as one component. The restricting portion may be configured with three or more components.
(4) In the first embodiment, the pair of restricting pieces has a symmetrical shape (identical shape). The pair of restricting pieces may b have an asymmetrical shape (non-identical shape).
(5) In the first embodiment, the movement direction of the restricting portion is inclined to an insertion direction of an outer lead. The restricting portion may be moved in two stages, that is, it is moved along the insertion direction (Z-axis direction) of the outer lead in the first stage and moved along a direction (Y-axis direction) orthogonal to the insertion direction of the outer lead in the second stage.
(6) In the first embodiment, the restricting portion moves approximately linearly. The restricting portion may be moved curvilinearly. In this case, it is preferable that a curvilinear surface along the movement direction of the restricting portion is provided as a guide surface.
(7) In the third embodiment, the pair of restricting pieces integrally formed with the connector housing has a symmetrical shape (identical shape). The pair of restricting pieces may have an asymmetrical shape (non-identical shape).
(8) In the second to fourth embodiments, a restricting portion is integrally formed with a connector housing by a hinge. For example, the restricting portion may be separated from the connector housing and the restricting portion may be formed integrally with the connector housing by a hinge brace so as to be rotatable.
(9) In the above embodiments, a connection terminal has a pair of elastic contact parts sandwiching an outer lead. For example, only one elastic contact part may be provided and an receiving portion facing the elastic contact part may be provided such that an outer lead is sandwiched between the elastic contact part and the receiving portion.
(10) In the above embodiments, an end part of an inverter board may be inserted to and extracted from a connector. For example, it may be possible to pull out a lead wire from the connector to the rear side of a chassis and directly or indirectly connect the lead wire to the inverter board.
(11) In the above embodiments, a cold cathode tube has an outer lead projecting to an end part of a glass tube and the outer lead is connected to a connection terminal of a connector. For example, the end part of the glass tube may be provided with an external ferrule connected to the outer lead and the ferrule may be connected to the connection terminal.
(12) In the above embodiments, a straight cold cathode tube is used. For example, a horseshoe-shaped cold cathode tube or a curve-shaped cold cathode tube may be used.
(13) In the above embodiments, a cold cathode tube is used as a linear light source. Other kinds of discharge tubes such as a hot cathode tube may be used.
(14) In addition to the above embodiments, the number of light sources to be used may be adequately changed.
(15) In the above embodiments, a liquid crystal panel and a chassis are in a vertically-placed state in which their short side direction matches a vertical direction. The crystal panel and the chassis may be in a vertically-placed state in which their long side direction matches the vertical direction.
(16) In the above embodiments, TFT is used as a switching component of a liquid crystal display deice. The present technology is also applicable to a liquid crystal display device using switching components (such as a thin-film diode (TFD)) other than TFT. In addition, the present technology is applicable not only to a liquid crystal display device of colored display, but also to a liquid crystal display device of monochrome display.
(17) The above embodiments illustrate an example of a liquid crystal display device using a liquid crystal panel as a display panel. The present technology is also applicable to a display device using a display panel of a different type.
(18) The above embodiments illustrate an example of a television receiver having a tuner. The present technology is also applicable to a display device without a tuner.
Number | Date | Country | Kind |
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2010-018575 | Jan 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/072762 | 12/17/2010 | WO | 00 | 7/10/2012 |