This application claims priority under 35 USC 119 from Japanese Patent Application No. 2003-150133, the disclosures of which are incorporated by reference herein.
1. Field of the Invention
The present invention relates to an image display device, and in particular, to an image display device having an image display means at which a plurality of image display media are arranged side-by-side.
2. Description of the Related Art
Liquid crystal display devices, which display images by simple matrix driving, have conventionally been known (refer to, for example, Patent Documents 1 through 3). The substrate of a simple matrix driving type image display medium is structured, for example, such that a display substrate 12, at which a plurality of linear row electrodes 161–16m as shown in
When an image is displayed on an image display medium having such a simple matrix structure, a predetermined voltage is successively applied to the row electrodes 161–16m, and synchronously therewith, a predetermined voltage is applied to the column electrodes 18 corresponding to the line image of the row-line to which voltage is applied, such that the image is displayed line-by-line.
Moreover, a technique is known in which a plurality of these image display media are arranged side-by-side, so as to create a large screen (see, for example, Patent Documents 1, 2, 4). When forming a large screen by arranging a plurality of image display media side-by-side, utilizing a plurality of the same image display media is effective in terms of costs. For example, in the case of forming a large screen of two rows and two columns by using four image display media 10 as shown in
However, the following problem arises when forming a large screen by using the same display substrate portions 40 and back surface substrate portions 52 as described above. Namely, because the order of driving the electrodes at the display substrate portions 40 and back surface substrate portions 52 is determined in advance, as shown in
Accordingly, the problem arises that, as shown in
Patent Document 1
Japanese Patent Application Laid-Open (JP-A) No. 11-133375
Patent Document 2
Japanese Patent Application Laid-Open (JP-A) No. 2001-242436
Patent Document 3
Japanese Patent Application Laid-Open (JP-A) No. 2001-66623
Patent Document 4
Japanese Patent Application Laid-Open (JP-A) No. 2002-139747
The present invention has been developed in order to overcome the above-described problem, and an object thereof is to provide an image display device which, when forming a large screen by using a plurality of the same image display media, can display images normally.
In order to achieve the above-described object, a first aspect of the present invention is an image display device comprising: (A) image display means at which a plurality of image display media are arranged side-by-side, the image display means including: (i) a display substrate portion having a display substrate at which a plurality of top-plane side electrodes are formed, and a top-plane side voltage applying means for applying voltage to the top-plane side electrodes; (ii) a back surface substrate portion having a back surface substrate at which a plurality of backplane side electrodes are formed, and a backplane side voltage applying means for applying voltage to the backplane side electrodes; and (iii) display bodies sealed between the display substrate and the back surface substrate; (B) control means for controlling the top-plane side voltage applying means and the backplane side voltage applying means of the plurality of image display media on the basis of image data; and (C) reference pixel position adjusting means for adjusting reference pixel positions such that the reference pixel positions match at the plurality of image display media, each of the reference pixel positions being determined by a reference top-plane side electrode, which is determined in advance from among the plurality of top-plane side electrodes, and a reference backplane side electrode, which is determined in advance from among the plurality of backplane side electrodes.
In accordance with the first aspect, the image display means has a structure in which a large screen is formed by arranging a plurality of the same image display media side-by-side. For example, as in a fifth aspect which will be described later, the image display means may be structured such that four of the image display media are arranged in two rows and two columns.
Or, as in a sixth aspect which will be described later, the plurality of top-plane side electrodes and the plurality of backplane side electrodes may be a simple matrix structure.
In the case of such a structure, it is preferable that all of the wires from the top-plane side electrodes and the backplane side electrodes are led-out from the outer edge portion of the image display means. However, with such an arrangement, the up/down, left/right orientations of the respective image display media differ, such that the orientations of the images are not normal.
Thus, the reference pixel position adjusting means carries out adjustment such that the reference pixel positions respectively match (i.e., are the same position) at the plurality of image display media. The reference pixel position is a position which is determined by a reference top-plane side electrode, which is determined in advance from among the plurality of top-plane side electrodes, and a reference backplane side electrode, which is determined in advance from among the plurality of backplane side electrodes. For example, the position in the upper left corner of the screen can be the reference pixel position.
In this way, due to the reference pixel positions being adjusted so as to respectively match at the plural image display media, the orientations of the images are all the same, and the images can be displayed normally.
Specifically, in a second aspect of the present invention, the reference pixel position adjusting means has: a plurality of top-plane side reversing means provided respectively at a plurality of the display substrate portions, and reversing wiring connections between the plurality of top-plane side electrodes and the top-plane side voltage applying means; a plurality of top-plane side reversal switching switches provided in correspondence with the plurality of top-plane side reversing means respectively, for turning a reversal operation by the top-plane side reversing means on and off; a plurality of backplane side reversing means provided respectively at a plurality of the back surface substrate portions, and reversing wiring connections between the plurality of backplane side electrodes and the backplane side voltage applying means; and a plurality of backplane side reversal switching switches provided in correspondence with the plurality of backplane side reversing means respectively, for turning a reversal operation by the backplane side reversing means on and off.
In accordance with the second aspect, at each of the image display media, the wiring connections between the plural top-plane side electrodes and the top-plane side voltage applying means can be reversed due to the top-plane side reversal switching switch being on, and the wiring connections between the plural backplane side electrodes and the backplane side voltage applying means can be reversed due to the backplane side reversal switching switch being on.
Accordingly, by turning the top-plane side reversal switching switch and the backplane side reversal switching switch on appropriately on the basis of the arrangement of the image display media, the reference pixel positions of all of the image display media can be made to match.
In a third aspect of the present invention, the reference pixel position adjusting means can be structured to have an image data reversing means which reverses the image data on the basis of an arrangement of the plurality of image display media.
In accordance with the third aspect, the reference pixel positions of all of the image display media are made to match by reversing the image data. Therefore, the reversing means can be omitted.
In a fourth aspect of the present invention, the image display device further comprises position detecting means for detecting placed positions of the image display media, wherein, on the basis of the placed positions detected by the position detecting means, the reference pixel position adjusting means carries out adjustment such that the reference pixel positions match at the plurality of image display media.
In accordance with the fourth aspect, the placed positions of the image display media are automatically detected by the position detecting means. On the basis of the detected placed positions, the reference pixel positions of the plural image display media are made to match. Therefore, on/off operation of a reversal switching switch can be eliminated, and the convenience of the device can be improved.
Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.
(First Embodiment)
The present embodiment is a structure in which the present invention is applied to an image display device which displays images on a plurality of image display media by simple matrix driving. Note that portions which are the same as those described in the above description of the related art are denoted by the same reference numerals.
Sectional views of the image display medium 10 relating to the present embodiment are shown in
As shown in
An insulating layer 20 is formed at the row electrode 16 side, and an insulating layer 22 is formed at the column electrode 18 side. The insulating layers 20, 22 are formed of, for example, polycarbonate or the like.
In the present embodiment, the linear electrodes of the display substrate 12 are the row electrodes, and the linear electrodes of the back surface substrate 14 form the column electrodes. However, conversely, the column electrodes may be provided at the display substrate 12, and the row electrodes may be provided at the back surface substrate 14.
Black particles 24, which are charged positive, and white particles 26, which are charged negative, are filled between the display substrate 12 and the back surface substrate 14. The black particles 24 and the white particles 26 are particle groups having different charge characteristics. Further, gap members 28 are provided between the display substrate 12 and the back surface substrate 14. The space between the display substrate 12 and the back surface substrate 14 is thereby held at a constant interval.
When voltage, which is a predetermined voltage or more and which is for causing the particles to move between the substrates, is applied, the black particles 24 and the white particles 26 move between the substrates. Namely, when a predetermined positive voltage is applied between the column electrodes 18 and the row electrodes 16 with the column electrodes 18 being the reference (neutral), the black particles 24 at the display substrate 12 side move toward the back surface substrate 14 side, and the white particles 26 at the back surface substrate 14 side move toward the display substrate 12 side. On the other hand, when a predetermined negative voltage is applied between the column electrodes 18 and the row electrodes 16 with the column electrodes 18 being the reference (neutral), the white particles 26 at the display substrate 12 side move toward the back surface substrate 14 side, and the black particles 24 at the back surface substrate 14 side move toward the display substrate 12 side.
In the image display medium 10, a predetermined voltage is applied (scanned) successively to the row electrodes 16, and synchronously therewith, a predetermined voltage is successively applied to the column electrodes 18 corresponding to the line image of the row to which voltage is applied. In this way, the particles at the positions where voltage which is a predetermined voltage or more has been applied between the row electrode 16 and the column electrodes 18 move between the substrates, and an image is formed. In this simple matrix driving, the entire image is displayed by the line images being successively displayed and scanning being carried out until the final line.
Note that, in
The row electrodes 161–16m are driven by a top-plane side driving portion 30. The top-plane side driving portion 30 is structured by the row electrode driving circuit 32, a reversing portion 34, and a reversing switch 36. The row electrode driving circuit 32 is connected to an unillustrated power source, and applies a predetermined voltage to the row electrodes 161–16m in accordance with an instruction from a control section which is not illustrated.
When the reversing switch 36 is on, the reversing portion 34 reverses the relationships of connection between the row electrode driving circuit 32 and the row electrodes 161–16m. Specifically, when the reversing switch 36 is off, wires 381˜38m, which connect the row electrode driving circuit 32 and the reversing portion 34, are connected to the row electrodes 161–16m respectively. However, when the reversing switch 36 is on, the state of connection is changed such that the wires 381˜38m are connected to the row electrodes 16m–161 respectively. Namely, the wire 381 is connected to the row electrode 16m, the wire 382 is connected to the row electrode 16m-1, . . . the wire 38m-1 is connected to the row electrode 162, and the wire 38m is connected to the row electrode 161.
The reversing switch 36 is structured, for example, by a dip switch or the like so as to be easily operated by, for example, the person who sets up the image display medium 10. Note that the display substrate portion 40 is structured by the top-plane side driving portion 30 and the display substrate 12.
The column electrodes 181–18n are driven by a backplane side driving portion 42. The backplane side driving portion 42 is structured by the column electrode driving circuit 44, a reversing portion 46, and a reversing switch 48. The column electrode driving circuit 44 is connected to an unillustrated power source, and applies a predetermined voltage to the column electrodes 181–18n in accordance with an instruction from a control section which is not illustrated.
When the reversing switch 48 is on, the reversing portion 46 reverses the relationships of connection between the column electrode driving circuit 44 and the column electrodes 181–18n. Specifically, when the reversing switch 48 is off, wires 501˜50n, which connect the column electrode driving circuit 44 and the reversing portion 46, are connected to the column electrodes 181–18n respectively. However, when the reversing switch 48 is on, the state of connection is changed such that the wires 501˜50n are connected to the column electrodes 18n–181 respectively. Namely, the wire 501 is connected to the column electrode 18n, the wire 502 is connected to the column electrode 18n-1, . . . the wire 50n-1 is connected to the column electrode 182, and the wire 50n is connected to the column electrode 181. Note that the back surface substrate portion 52 is structured by the backplane side driving portion 42 and the back surface substrate 14.
As shown in
A large screen can be formed by utilizing a plurality of the display substrate portions 40 and the back surface substrate portions 52 illustrated in
As shown in
On the basis of inputted image data, the control section 62 controls, by the above-described simple matrix driving, the row electrode driving circuit 32 of the top-plane side driving portion 30A and the column electrode driving circuit 44 of the backplane side driving portion 42A, the row electrode driving circuit 32 of the top-plane side driving portion 30B and the column electrode driving circuit 44 of the backplane side driving portion 42B, the row electrode driving circuit 32 of the top-plane side driving portion 30C and the column electrode driving circuit 44 of the backplane side driving portion 42C, and the row electrode driving circuit 32 of the top-plane side driving portion 30D and the column electrode driving circuit 44 of the backplane side driving portion 42D.
Note that, when an image is displayed by using all of the image display media 10A–10D as a single screen, the control section 62 generates image data of divisional images obtained by dividing the image to be displayed into four, and respectively controls the row electrode driving circuits 32 of the top-plane side driving portions 30A–30D and the column electrode driving circuits 44 of the backplane side driving portions 42A˜42D on the basis of the generated image data.
In this way, by using the same display substrate portions 40 and back surface substrate portions 52, a large screen can be formed inexpensively. However, as shown in the previously described
Namely, when the reference pixel position is (1, 1), the position of the pixel at the upper left corner of the image display medium 10A is reference pixel position 64A, the position of the pixel at the lower left corner of the image display medium 10B is reference pixel position 64B, the position of the pixel at the upper right corner of the image display medium 10C is reference pixel position 64C, and the position of the pixel at the lower right corner of the image display medium 10D is reference pixel position 64D. Accordingly, as shown in
In such a case, the reversing switch 36 of the top-plane side driving portion 30B corresponding to the image display medium 10B is turned on, the reversing switch 48 of the backplane side driving portion 42C corresponding to the image display medium 10C is turned on, and the reversing switch 36 of the top-plane side driving portion 30D and the reversing switch 48 of the backplane side driving portion 42D corresponding to the image display medium 10D are turned on. This operation of the reversing switches is carried out by, for example, the person who sets up the image display device or the like.
In this way, the relationships of connection between the row electrode driving circuit 32 and the row electrodes 161–16m of the image display medium 10B are reversed, the relationships of connection between the column electrode driving circuit 44 and the column electrodes 181–18n of the image display medium 10C are reversed, and the relationships of connection between the row electrode driving circuit 32 and the row electrodes 161–16m and the relationships of connection between the column electrode driving circuit 44 and the column electrodes 181–18n of the image display medium 10D, are reversed.
Accordingly, as shown in
In this way, in the present embodiment, the reversing portion 34, which is for reversing the relationships of connection between the row electrode driving circuit 32 and the row electrodes 161–16m of the image display medium 10, is provided at the top-plane side driving portion 30. Further, the reversing portion 46, which is for reversing the relationships of connection between the column electrode driving circuit 44 and the column electrodes 181–18n, is provided at the backplane side driving portion 42. The reversing portion 34 and the reversing portion 46 can be easily made to reverse the relationships of connection by the reversing switches 36, 48. In this way, because the reference pixel positions can all be made to match, images can be displayed normally even when a large screen is formed by using a plurality of the same image display media.
Note that, in the present embodiment, description is given of a case in which a large screen is created by combining four of the display substrate portions 40 and four of the back surface substrate portions 52. In this case, as shown in
Thus, the display substrate portion 40 and the back surface substrate portion 52 may be structured so as to be integral in the present embodiment. In this case, by disposing the top-plane side driving portion 30 and the backplane side driving portion 42 on the same substrate, the image display device 60 can be made to be more compact and can be made to be thinner.
(Second Embodiment)
Next, a second embodiment of the present invention will be described. In the present embodiment, description will be given of a case in which the reference pixel positions are made to match by automatically detecting the reference pixel positions of the respective image display media. Note that portions which are the same as those in the above-described embodiment are denoted by the same reference numerals, and detailed description thereof is omitted.
The points of the display substrate portion 40A relating to
Moreover, the points of the back surface substrate portion 52A relating to
As shown in
The gravitational direction sensor 70 is provided, for example, on the substrate at which the top-plane side driving portion 30 is provided. The gravitational direction sensor 70 is mounted such that, when the display substrate portion 40 is disposed vertically, the pendulum 76 swings in the direction of gravity around the portion marked P as the fulcrum, in the drawing. Accordingly, when the distal end of the pendulum 76 contacts the contact A, as shown in
Similarly, the gravitational direction sensor 72 is provided, for example, on the substrate at which the backplane side driving portion 42 is provided. The gravitational direction sensor 72 is mounted such that, when the back surface substrate portion 52 is disposed vertically, the pendulum 76 swings in the direction of gravity around the portion marked P as the fulcrum, in the drawing. Accordingly, when the distal end of the pendulum 76 contacts the contact A, as shown in
On the basis of the sensing signals from the respective gravitational direction sensors 70, the control section 62 outputs reversing signals to the reversing portions 34 or the reversing portions 46. Specifically, when the control section 62 recognizes that the image display medium is positioned at the left side due to the sensing signal from the gravitational direction sensor 70 provided at the display substrate portion 40 (i.e., when the pendulum 76 is contacting the contact B), the control section 62 does not output a reversing signal to the reversing portion 34, and does not reverse the relationships of connection between the row electrode driving circuit 32 and the row electrodes. When the control section 62 recognizes that the image display medium is positioned at the right side (i.e., when the pendulum 76 is contacting the contact A), the control section 62 outputs a reversing signal to the reversing portion 34, and causes the relationships of connection between the row electrode driving circuit 32 and the row electrodes to be reversed.
When the control section 62 recognizes that the image display medium is positioned at the upper side due to the sensing signal from the gravitational direction sensor 72 provided at the back surface substrate portion 52 (i.e., when the pendulum 76 is contacting the contact B), the control section 62 does not output a reversing signal to the reversing portion 46, and does not reverse the relationships of connection between the column electrode driving circuit 44 and the column electrodes. When the control section 62 recognizes that the image display medium is positioned at the lower side (i.e., when the pendulum 76 is contacting the contact A), the control section 62 outputs a reversing signal to the reversing portion 46, and causes the relationships of connection between the column electrode driving circuit 44 and the column electrodes to be reversed.
As a result, in the same way as in the first embodiment, the reference pixel positions of all of the image display media match, and the orientations of the images can be displayed normally.
In this way, in the present embodiment, the top, bottom, left, right positions of the display substrate portions 40 and the back surface substrate portions 52 are automatically sensed, and control is carried out such that the reference pixel positions of all of the image display media match. Therefore, it is possible to do away with operation of the reversing switches at the time of assembling the device or the time of dismantling the device, and the convenience of the device can be improved.
Note that, in the present embodiment, the gravitational direction sensors are used to sense the positions of the respective substrate portions. However, it suffices for the sensors to be able to sense the positions of the substrate portions, and, for example, other sensors such as pressure sensors, gyro sensors, or the like, may be used.
(Third Embodiment)
Next, a third embodiment of the present invention will be described. In the present embodiment, description will be given of a case in which an image is displayed normally by reversing the image data.
The structure of the image display medium relating to the present embodiment is similar to that illustrated in
As shown in
Thus, the control section 62 reverses the image data for driving the image display media 10B–10D. The control section 62 controls the row electrode driving circuit 32 and the column electrode driving circuit 44 of the image display medium 10A on the basis of the usual image data. For the image display media 10B–10D, the control section 62 controls the row electrode driving circuits 32 and the column electrode driving circuits 44 corresponding to the image display media 10B˜10D on the basis of reversed image data.
Specifically, as shown in
By controlling the row electrode driving circuits 32 and the column electrode driving circuits 44 of the respective image display media on the basis of the image data generated in this way, the reference pixel positions all become positions in the upper left corner, and as shown in
Note that, when an image is displayed by using all of the image display media 10A˜10D as a single screen, it suffices for the control section 62 to generate image data of divisional images formed by dividing the image to be displayed into four, and to carry out the above-described reversing operations on the generated divisional image data.
In this way, in the present embodiment, by reversing the image data by the control section 62, the orientations of the images are displayed normally. Therefore, there is no need to provide reversing portions at the display substrate portions 40 and the back surface substrate portions 52, and the device can be structured inexpensively.
Note that, although the images are displayed with normal orientations by reversing the image data, the order of scanning, i.e., the order in which voltage is applied to the row electrodes, does not change. Therefore, as shown in
In such a case, this problem can be overcome by using the image display device 60A described in the second embodiment. Namely, the reversing signal is outputted to the reversing portions 34 of the display substrate portions 40 corresponding to the image display media 10B, 10D, and the relationships of connection between the row electrode driving circuits 32 and the row electrodes are reversed. In this way, the scanning directions can be made to match at all of the image display media, and it is possible to prevent a person viewing the image from experiencing a sense of lack of harmony.
Note that, in each of the above-described embodiments, description is given of an image display device using four image display media in two lines and two columns. However, the number of lines and the number of columns is not limited to the same, and can be selected arbitrarily. Further, in the above embodiments, description is given of cases using image display media displaying images by movement of particles. However, the present invention can also be applied to image display media using liquid crystals. In addition, cases of single matrix driving type image display devices are described in the above embodiments. However, the present invention can also be applied to active matrix driving type image display devices.
As described above, in accordance with the present invention, there is obtained the excellent effect that, when a large screen is formed by utilizing a plurality of the same image display media, an image can be displayed normally.
Number | Date | Country | Kind |
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2003-150133 | May 2003 | JP | national |
Number | Name | Date | Kind |
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6262696 | Seraphim et al. | Jul 2001 | B1 |
6285424 | Yoshida | Sep 2001 | B1 |
20030075733 | Yamazaki et al. | Apr 2003 | A1 |
20050270456 | Iijima | Dec 2005 | A1 |
Number | Date | Country |
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A 11-133375 | May 1999 | JP |
A 2001-66623 | Mar 2001 | JP |
A 2001-242436 | Sep 2001 | JP |
A 2002-139747 | May 2002 | JP |
Number | Date | Country | |
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20040239666 A1 | Dec 2004 | US |