In a plasma display panel 3, the Y electrodes Yi and the X electrodes Xi form rows extending in parallel in a horizontal direction, and the address electrodes Aj form columns extending in a vertical direction. The Y electrodes Yi and the X electrodes Xi are disposed alternately in the vertical direction. The Y electrodes Yi and the address electrodes Aj form a two-dimensional matrix of i rows and j columns. A display cell Cij is formed by an intersection of the Y electrode Yi and the address electrode Aj and the X electrode Xi corresponding and adjacent to the intersection. This display cell Cij corresponds to a pixel, and the plasma display panel 3 is able to display a two-dimensional image.
In the address period Ta, scan pulses are sequentially scanned and applied to the Y electrodes Y1, Y2, and so on, and address pulses are applied to the address electrodes Aj corresponding to the scan pulses, to thereby select display pixels. When the address pulse of the address electrode Aj is generated corresponding to the scan pulse of the Y electrode Yi, the display cell of the Y electrode Yi and the X electrode Xi is selected. When the address pulse of the address electrode Aj is not generated corresponding to the scan pulse of the Y electrode Yi, the display cell of the Y electrode Yi and the X electrode Xi is not selected. When the address pulse is generated corresponding to the scan pulse, an address discharge between the address electrode Aj and the Y electrode Yi occurs to be a pilot frame, and a discharge between the X electrode Xi and the Y electrode Yi occurs, then a negative electric charge is accumulated at the X electrode Xi, and a positive electric charge is accumulated at the Y electrode Yi.
In the sustain discharge period Ts, sustain discharge pulses with opposite phases with each other are applied between the X electrodes Xi and the Y electrodes Yi, the sustain discharge is performed between the X electrode Xi and the Y electrode Yi of the selected display cell to perform a light-emission.
At the time t1, sustain discharge pulses of the X electrode Xodd and the X electrode Xeven have falling edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have rising edges. A potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and a light-emission by a discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs.
Next, at the time t2, the sustain discharge pulses of the X electrode Xodd and the X electrode Xeven have the rising edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs.
Next, at the time t3, the sustain discharge pulses of the X electrode Xodd and the X electrode Xeven have the falling edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the rising edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs.
Next, at the time t4, the sustain discharge pulses of the X electrode Xodd and the X electrode Xeven have the rising edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs.
At the times t1, t2, t3, and t4 of the sustain discharge period Ts, the phases of the edges of the sustain discharge pulses of the X electrodes and the Y electrodes are the same with each other. Accordingly, all of the display cells Cij emit lights simultaneously at the time of the sustain discharges DS, and discharge current flowing in the X electrodes and the Y electrodes becomes large. This discharge current depends on a line load. The discharge current changes depending on the line load, and luminance changes to thereby deteriorate a streaking. Namely, for example, the more the number of light-emitting pixels within the same line, the larger the discharge current becomes, the lower a discharge voltage becomes, and the lower the luminance becomes. As a result, a high luminance line and a low luminance line may occur within the same class value, to thereby generate a luminance step. This phenomenon is the streaking.
Besides, the sustain discharge pulses of the Y electrode Yodd and the X electrode Xeven have the potential difference, and therefore, a capacitance between the Y electrode Yodd and the X electrode Xeven appears, and a power consumption increases. Similarly, the sustain discharge pulses of the Y electrode Yeven and the X electrode Xodd have the potential difference, and therefore, a capacitance between the Y electrode Yeven and the X electrode Xodd appears, and the power consumption increases.
As stated above, the sustain discharges DS occur at all of the display cells Cij at the same time, and therefore, the discharge current flows in the X electrodes and the Y electrodes simultaneously to be very large. The discharge current becomes large, then the discharge voltage deteriorates caused by resistance of the electrodes of their own to lower the luminance. Besides, the discharge current depends on the number of light-emitting display cells Cij, and therefore, when a display rate within one line becomes large, the discharge current increases and the luminance is lowered. When the display rate becomes small, the discharge current decreases and the luminance increases. Consequently, the luminance step occurs depending on a display pattern such as a combination of a display with a low display rate and a display with a high display rate within one line, to be a factor to deteriorate the streaking.
In order to improve the streaking, the phases of the sustain discharge pulses of the X electrodes and the Y electrodes are to be displaced to thereby disperse timings of occurrences of the sustain discharges DS to reduce the discharge current. However, if the phases of the sustain discharge pulses are displaced, the phases of the sustain discharge pulses of the X electrode and the Y electrode adjacent at the opposite side are displaced, and thereby, the capacitance between the adjacent electrodes appears to increase the power consumption. For example, the capacitance appears between the Y electrode Yodd and the X electrode Xeven in which the discharge does not occur, and further, the capacitance appears between the Y electrode Yeven and the X electrode Xodd to thereby increase the power consumption.
The electrode Xeven (for example X2) is adjacent to the electrode Yodd (for example Y1). The electrode Yeven (for example Y2) is adjacent to the electrode Xeven (for example X2) at an opposite side of the electrode Yodd (for example Y1), and it is the electrode to perform the sustain discharge with the electrode Xeven (for example X2). The electrode Xodd (for example X3) is adjacent to the electrode Yeven (for example Y2) at the opposite side of the electrode Xeven (for example X2), and it is the electrode to perform the sustain discharge with the electrode Yodd (for example Y3).
At the time t1, a sustain discharge pulse of the X electrode Xodd has a falling edge, and the sustain discharge pulses of the Y electrode Yodd and the X electrode Xeven have rising edges. A potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and a light-emission by a discharge DS occurs. For example, the discharge DS occurs between the X electrode X1 and the Y electrode Y1.
Next, at the time t2, the sustain discharge pulse of the Y electrode Yeven has the falling edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs. For example, the discharge DS occurs between the X electrode X2 and the Y electrode Y2.
Next, at the time t3, the sustain discharge pulse of the X electrode Xodd has the rising edge, and the sustain discharge pulses of the Y electrode Yodd and the X electrode Xeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xodd and Y electrode Yodd, and the light-emission by the discharge DS occurs.
Next, at the time t4, the sustain discharge pulse of the Y electrode Yeven has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yeven, and the light-emission by the discharge DS occurs.
As stated above, one cycle TT includes the times t1 to t4, and it is from the time t1 to the next time t1. In the sustain discharge period Ts, this cycle TT is executed repeatedly.
Phases of the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the X electrode Xeven are the same with each other. Accordingly, a capacitance between the Y electrode Yodd and the X electrode Xeven does not appear, and the power consumption can be reduced.
On the contrary, the phases of the edges of the sustain discharge pulses of the Y electrode Yeven and the edges of the sustain discharge pulses of the X electrode Xodd are different from each other. Accordingly, all of the above-stated four discharges DS occur at the different times t1, t2, t3, and t4, and therefore, a discharge current becomes small and a streaking can be prevented. Namely, a luminance step between lines can be prevented.
According to the present embodiment, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
At the time t1, sustain discharge pulses of the X electrode Xeven and the X electrode Xodd have falling edges, and sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have rising edges. A potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and a light-emission by a discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t2, the sustain discharge pulses of the X electrode Xeven and the X electrode Xodd have the rising edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t3, the sustain discharge pulses of the X electrode Xeven and the X electrode Xodd have the falling edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the rising edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t4, the sustain discharge pulses of the X electrode Xeven and the X electrode Xodd have the rising edges, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs. Besides, the potential difference of 2×Vs also occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
The potentials of the sustain discharge pulses of the adjacent Y electrode Yodd and Y electrode Yeven are the same, and therefore, a capacitance between the Y electrode Yodd and the Y electrode Yeven does not appear, and the power consumption can be reduced. Similarly, the potentials of the sustain discharge pulses of the adjacent X electrode Xodd and X electrode Xeven are the same, and therefore, a capacitance between the X electrode Xodd and the X electrode Xeven does not appear, and the power consumption can be reduced.
However, all of display cells Cij perform discharges DS at the same time, and a large discharge current flows in the X electrodes and the Y electrodes, to thereby deteriorate a streaking.
The electrode Yeven (for example Y2) is adjacent to the electrode Yodd (for example Y1). The electrode Xodd (for example X3) is adjacent to the electrode Yeven (for example Y2) at an opposite side of the electrode Yodd (for example Y1), and it is the electrode to perform the sustain discharge with the electrode Yeven (for example Y2). The electrode Xeven (for example X4) is adjacent to the electrode Xodd (for example X3) at the opposite side of the electrode Yeven (for example Y2), and it is the electrode to perform the sustain discharge with the electrode Yodd (for example Y3).
At the time t1, a sustain discharge pulse of the X electrode Xeven has a falling edge, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have rising edges. A potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and a light-emission by a discharge DS occurs. For example, the discharge DS occurs between the X electrode X2 and the Y electrode Y1.
Next, at the time t2, the sustain discharge pulse of the X electrode Xodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs. For example, the discharge DS occurs between the Y electrode Y2 and the X electrode X3.
Next, at the time t3, the sustain discharge pulses of the Y electrodes Yodd and Yeven have the falling edges, and the sustain discharge pulse of the X electrode Xodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t4, the sustain discharge pulse of the X electrode Xeven has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
Next, at the time t5, the sustain discharge pulse of the Y electrode Yeven has the rising edge.
Next, at the time t6, the sustain discharge pulses of the X electrodes Xeven and Xodd have the falling edges. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t7, the sustain discharge pulse of the Y electrode Yodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
Next, at the time t8, the sustain discharge pulse of the Y electrode Yeven has the falling edge.
Next, at the time t9, the sustain discharge pulses of the X electrodes Xeven and Xodd have the rising edges. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
Next, at the time t10, the sustain discharge pulse of the Y electrode Yodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
As stated above, one cycle includes the times t1 to t10, and it is from the time t1 to the next time t1. In the sustain discharge period Ts, this cycle is performed repeatedly.
At the times t1 and t3, phases of the edges of the sustain discharge pulses of the Y electrodes Yodd and Yeven are the same with each other. Accordingly, a capacitance between the Y electrodes Yodd and Yeven does not appear, and the power consumption can be reduced.
Besides, at the times t6 and t9, the phases of the edges of the sustain discharge pulses of the X electrodes Xodd and Xeven are the same with each other. Accordingly, the capacitance between the X electrodes Xodd and Xeven does not appear, and the power consumption can be reduced.
On the contrary, at the times t1, t2, t3, and t4, the phases of the edges of the sustain discharge pulses of the X electrodes Xodd and Xeven are different from each other. Besides, at the times t5, t7, t8, and t10, the phases of the edges of the sustain discharge pulses of the Y electrodes Yodd and Yeven are different from each other. Accordingly, all of the above-stated eight discharges DS occur at the different times t1, t2, t3, t4, t6, t7, t9, and t10, and therefore, a discharge current becomes small and a streaking can be prevented. Namely, a luminance step between lines can be prevented.
The edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven have the edges of which phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same within one cycle in the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven.
Similarly, the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven have the edges of which phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same within one cycle in the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven.
According to the present embodiment, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
At the time t1, the sustain discharge pulse of the X electrode Xeven has the falling edge, and the sustain discharge pulses of the Y electrode Yodd and the Y electrode Yeven have the rising edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs. For example, the discharge DS occurs between the X electrode X2 and the Y electrode Y1.
At the time t2, the sustain discharge pulse of the X electrode Xodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs. For example, the discharge DS occurs between the Y electrode Y2 and the X electrode X3.
At the time t3, the sustain discharge pulses of the Y electrodes Yodd and Yeven have the falling edges, and the sustain discharge pulse of the X electrode Xodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t4, the sustain discharge pulse of the X electrode Xeven has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t5, the sustain discharge pulses of the Y electrodes Yodd and Yeven have the rising edges, and the sustain discharge pulse of the X electrode Xodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t6, the sustain discharge pulse of the X electrode Xeven has the falling edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t7, the sustain discharge pulse of the X electrode Xeven has the rising edge, and the sustain discharge pulses of the Y electrodes Yodd and Yeven have the falling edges. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t8, the sustain discharge pulse of the X electrode Xodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t9, the sustain discharge pulses of the X electrodes Xeven and Xodd have the falling edges, and the sustain discharge pulse of the Y electrode Yodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t10, the sustain discharge pulse of the Y electrode Yeven has the rising edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t11, the sustain discharge pulses of the X electrodes Xeven and Xodd have the rising edges, and the sustain discharge pulse of the Y electrode Yodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t12, the sustain discharge pulse of the Y electrode Yeven has the falling edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t13, the sustain discharge pulses of the X electrodes Xeven and Xodd have the falling edges, and the sustain discharge pulse of the Y electrode Yeven has the rising edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t14, the sustain discharge pulse of the Y electrode Yodd has the rising edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
At the time t15, the sustain discharge pulses of the X electrodes Xeven and Xodd have the rising edges, and the sustain discharge pulse of the Y electrode Yeven has the falling edge. The potential difference of 2×Vs occurs between the adjacent Y electrode Yeven and X electrode Xodd, and the light-emission by the discharge DS occurs.
At the time t16, the sustain discharge pulse of the Y electrode Yodd has the falling edge. The potential difference of 2×Vs occurs between the adjacent X electrode Xeven and Y electrode Yodd, and the light-emission by the discharge DS occurs.
As stated above, one cycle includes the times t1 to t16, and it is from the time t1 to the next time t1. In the sustain discharge period Ts, this cycle is performed repeatedly.
At the times t1, t3, t5 and t7, the phases of the edges of the sustain discharge pulses of the Y electrodes Yodd and Yeven are the same with each other. Accordingly, the capacitance between the Y electrodes Yodd and Yeven does not appear, and the power consumption can be reduced.
Besides, at the times t9, t11, t13 and t15, the phases of the edges of the sustain discharge pulses of the X electrodes Xodd and Xeven are the same with each other. Accordingly, the capacitance between the X electrodes Xodd and Xeven does not appear, and the power consumption can be reduced.
On the contrary, at the times t1, t2, t3, t4, t5, t6, t7 and t8, the phases of the edges of the sustain discharge pulses of the X electrodes Xodd and Xeven are different from each other. Besides, at the times t9, t10, t11, t12, t13, t14, t15 and t16, the phases of the edges of the sustain discharge pulses of the Y electrodes Yodd and Yeven are different from each other. Accordingly, all of the above-stated 16 discharges DS occur at the different times, and therefore, the discharge current becomes small and the streaking can be prevented. Namely, the luminance step between lines can be prevented.
The edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven have the edges of which phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same within one cycle, in the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven.
Similarly, the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven have the edges of which phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same within one cycle, in the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven.
According to the present embodiment, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
A first cycle pattern T1 includes the times from t1 to t8. In the first cycle pattern T1, the phases of the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven are the same with each other, and the phases of the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven are different from each other. In the sustain discharge period Ts, only the first cycle pattern T1 may be executed repeatedly without using a second cycle pattern T2. Also in that case, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
Besides, the second cycle pattern T2 includes the times from t9 to t16. In the second cycle pattern T2, the phases of the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven are the same with each other, and the phases of the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven are different from each other. In the sustain discharge period Ts, only the second cycle pattern T2 may be executed repeatedly without using the first cycle pattern T1. Also in that case, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
Besides, in the sustain discharge period Ts, the first cycle pattern T1 and the second cycle pattern T2 may be executed in an arbitrary combination. Also in that case, it is possible to prevent the luminance step between the lines, and to reduce the power consumption.
The sustain discharge pulses of the first cycle pattern Ti and the subsequent second cycle pattern T2 are supplied to the X electrodes and the Y electrodes. During the period of the first cycle pattern T1 and the second cycle pattern T2, the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven have the edges of which the phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, during the period of the first cycle pattern Ti and the second cycle pattern T2, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same, in the edges of the sustain discharge pulses of the Y electrode Yodd and the edges of the sustain discharge pulses of the Y electrode Yeven.
Similarly, during the period of the first cycle pattern T1 and the second cycle pattern T2, the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven have the edges of which phases are the same with each other and the edges of which phases are different from each other. Concretely speaking, during the period of the first cycle pattern T1 and the second cycle pattern T2, the number of edges of which phases are the same with each other and the number of edges of which phases are different from each other are the same, in the edges of the sustain discharge pulses of the X electrode Xodd and the edges of the sustain discharge pulses of the X electrode Xeven.
As stated above, according to the first to third embodiments, it is possible to make half of the phases of the edges of the sustain discharge pulses the same, and make the rest half of the phases different. If timings of the sustain discharges DS are simply displaced, all of the phases of the edges of the sustain discharge pulses are displaced to thereby enlarge the power consumption. Besides, if all of the phases of the edges of the sustain discharge pulses are simply made the same, the timings of the sustain discharges DS become the same, to thereby generate the luminance step between the lines.
When all of the phases of the edges of the sustain discharge pulses are displaced, the power consumption is doubled compared to the case when all of the phases of the edges of the sustain discharge pulses are the same. On the contrary, when the half of the phases of the edges of the sustain discharge pulses are the same and the rest half of the phases are different as in the first to the third embodiments, the power consumption can be suppressed to be 1.5 times compared to the case when all of the phases of the edges of the sustain discharge pulses are the same, and further, the luminance step between the lines can be prevented.
It is possible to reduce a deterioration of a discharge voltage by dispersing the light-emitting timings of the sustain discharges DS and eliminating the discharge current flowing at one time, and to improve a streaking by eliminating the luminance step. On the other hand, an adjacent capacitance of the X electrodes and/or the Y electrodes appears to increase the power consumption by displacing the phases of the rising edges and/or the falling edges of the sustain discharge pulses. However, the half of the phases of the rising edges and/or the falling edges are matched, and thereby, it becomes possible to suppress the increase of the power consumption and to disperse the light-emitting timings of the sustain discharges DS. It is possible to improve the streaking by dispersing the timings of the sustain discharges DS, and to suppress the increase of the power consumption by displacing the phases of the edges of the sustain discharge pulses.
An AC type plasma display device of the present embodiment can be used for a flat television, and a display for shop window.
It is possible to prevent the luminance step by making the phases of the edges of the sustain discharge pulses of the adjacent electrodes different. Besides, it is possible to reduce the power consumption by making the phases of the edges of the sustain discharge pulses of the adjacent electrodes the same. Accordingly, it becomes possible to prevent the luminance step, and to reduce the power consumption.
The present embodiments are to be considered in all respects as illustrative and no restrictive, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. The invention may be embodied in other specific forms without departing from the spirit or essential characteristics thereof.
Number | Date | Country | Kind |
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2006-224996 | Aug 2006 | JP | national |