Flexible display panel, flexible display apparatus, and display control method thereof
11282424 · 2022-03-22
Assignee
Inventors
Cpc classification
H10K59/00
ELECTRICITY
G09G2340/0407
PHYSICS
G06F3/03
PHYSICS
G09G3/20
PHYSICS
International classification
G09G3/20
PHYSICS
G06F3/03
PHYSICS
G01B7/16
PHYSICS
Abstract
The present disclosure is related to a flexible display panel. The flexible display panel may include a display substrate, a plurality of pixel units arranged in an array on the display substrate, and at least a strain sensor on the display substrate. The strain sensor may be arranged corresponding to a region comprising at least one of the plurality of pixel units. The strain sensor may be configured to detect deformation in the region comprising at least one of the plurality of pixel units and to generate a detection signal.
Claims
1. A flexible display apparatus, comprising: a flexible display panel and a display controller, wherein the flexible display panel includes a display substrate, a plurality of pixel units arranged in an array on the display substrate, and a plurality of strain sensors on the display substrate; the display controller is coupled to the strain sensors, and the strain sensors are configured to detect deformation of the flexible display panel to generate a detection signal; each of the strain sensors corresponds to a region of the flexible display panel, and the region includes a preset number of rows of the pixel units; the display controller is configured to determine a region where the deformation occurs in the flexible display panel based on the detection signal, to determine a target display region based on the region where the deformation occurs in the flexible display panel, and to control display of the target display region; the display controller includes a gate line counter and the gate line counter determines a number of rows of the pixel units in the target display region based on the detection signal; the display controller is further configured to acquire information about the number of rows of the pixel units in the target display region, to generate a corresponding number of clock signals based on the number of rows of the pixel units in the target display region, and to control the target display region to display through the corresponding number of the clock signals; and the number of rows of the pixels units is equal to the corresponding number of clock signals.
2. The flexible display apparatus according to claim 1, wherein the target display region comprises at least one non-deformed region that is at one side of the region where the deformation occurs in the flexible display panel.
3. A display control method of the flexible display apparatus of claim 1, comprising: detecting deformation of the flexible display panel and generating the detection signal; determining the region where the deformation occurs in the flexible display panel based on the detection signal; determining the target display region based on the region where the deformation occurs in the flexible display panel, and controlling display of the target display region.
4. The display control method according to claim 3, wherein controlling display of the target display region comprises: acquiring information about the number of rows of pixel units in the target display region; generating the corresponding number of clock signals based on the number of rows of the pixel units in the target display region; and controlling the target display region to display through the corresponding number of the clock signals.
5. The flexible display panel according to claim 1, wherein the strain sensors are arranged in a non-display region along a first direction.
6. The flexible display apparatus according to claim 1, wherein the strain sensor is a resistive strain sensor.
7. The flexible display apparatus according to claim 6, wherein the resistive strain sensor comprises a repeatedly folded strain resistance wire along the first direction with a plurality of folding portions and the plurality of folding portions are arranged along a second direction.
8. The flexible display apparatus according to claim 7, wherein the strain sensors in the non-display region are configured to detect the deformation of the display panel along the second direction.
9. The flexible display apparatus according to claim 1, further comprising a signal acquisition circuit coupled to the strain sensors and configured to acquire the detection signal from the strain sensors.
10. The flexible display panel according to claim 9, wherein the signal acquisition circuit comprises a first resistor, a second resistor, a third resistor, and a voltage detector, and wherein the first resistor, the second resistor, the third resistor, and the strain sensor form a Wheatstone bridge, and an output terminal of the voltage detector outputs a voltage signal.
11. The flexible display apparatus according to claim 9, wherein the signal acquisition circuit comprises a first resistor, a second resistor, a third resistor, and a current detector, and wherein the first resistor, the second resistor, the third resistor, and the strain sensor form a Wheatstone bridge, and an output terminal of the current detector outputs a current signal.
12. The flexible display apparatus according to claim 1, further comprising: an amplifier circuit coupled to the signal acquisition circuit, and configured to receive and amplify the detection signal; and an AD converter circuit coupled to the amplified circuit and configured to convert the amplified detection signal to a digital signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other objects, features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(14) The present disclosure will be described in further detail with reference to the accompanying drawings and embodiments in order to provide a better understanding by those skilled in the art of the technical solutions of the present disclosure. Throughout the description of the disclosure, reference is made to
(15) A flexible display panel, a flexible display apparatus, and a display control method thereof according to embodiments of the present disclosure are described below with reference to the accompanying drawings.
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(17) In one embodiment, as shown in
(18) In one embodiment, the display substrate 100 may be made of a plastic film such as a polyimide (PI) film and the like, and is capable of being deformed. In one embodiment of the present disclosure, as shown in
(19) In one embodiment, the strain sensor 20 may be a resistive strain sensor. The resistive strain sensors are arranged respectively corresponding to a region including at least one of the plurality of pixel units 10. When a region including at least one of the plurality of pixel units 10 is deformed, the corresponding resistive strain sensor is also deformed. A resistance of the corresponding resistive strain sensor is changed accordingly. Therefore, when the corresponding resistive strain sensor generates a detection signal based on the change of the resistance, the region including at least one of the plurality of pixel units 10 that is deformed can be determined based on the detection signal.
(20) In one embodiment, the number of the strain sensors 20 may be multiple. A plurality of strain sensors 20 are arranged in different regions of the flexible display panel 1 to detect deformation in the plurality of regions of the flexible display panel 1 respectively.
(21) In one embodiment, as shown in
(22) Each of the gate lines in the flexible display panel is arranged corresponding to a row of pixel units. Each of the data lines in the flexible display panel is arranged corresponding to a column of pixel units. That is, in one embodiment of the present disclosure, the row direction is parallel to the direction of the gate lines. The column direction is parallel to the direction of the data lines. Since the strain sensors 20 are arranged in the column direction of the pixel units 10, in one embodiment, when the flexible display panel is folded, bent, or rolled along the gate lines, the strain sensors 20 are stretched and generate a detection signal. When the flexible display panel is folded, bent or rolled along the data lines, the strain sensors 20 do not generate a detection signal.
(23) Further, as shown in
(24) In one embodiment, as shown in
(25) It is generally difficult to directly quantify and obtain a change of resistance. In one embodiment, the detection signal generated according to the change of the resistance value can be converted through a signal acquisition apparatus 30 connected with the strain sensor 20 to a conversion signal.
(26) In one embodiment, as shown in
(27) Assuming that the resistances of the first resistor R1, the second resistor R2 and the third resistor R3 are R respectively, when the strain sensor 20 is not deformed, the resistance of the strain sensor 20 is Rs. When the strain sensor 20 is deformed, the amount of change of the resistance thereof is ΔRs. The voltage of the preset power supply is Vi. The voltage outputted by the voltage detector Vt can be calculated according to the above circuit structure of the signal acquisition apparatus 30, which is the voltage difference between the voltage of the node a and the voltage of the node b, that is, Vo=Va−Vb=½*(R−Rs−ΔRs)*Vi/(R+Rs+ΔRs). Since R, Rs and Vi are constants, the voltage output Vo of the voltage detector Vt is determined only by the amount of change of the resistance ΔRs when the strain sensor 20 deforms.
(28) In one embodiment, as shown in
(29) Similarly, the current Io outputted by the current detector At is determined only by the amount of change of the resistance of the strain sensor ΔRs when the strain sensor 20 deforms.
(30) Thus, with the Wheatstone bridge shown in
(31) After the conversion signal is obtained, in general, a display controller, such as a Time Control Register (TCON, timer/counter control register/logic board) is used to identify the conversion signal to finally determine the region where the deformation occurs. The current or voltage signal obtained by the conversion is generally very small. Therefore, in one embodiment, as shown in
(32) In one embodiment, each of the strain sensors 20 may be correspondingly provided with a signal acquisition apparatus 30, an amplifier 40, and an AD converter 50. In another embodiment, each of the strain sensors 20 may be correspondingly provided with a signal acquisition apparatus 30. The plurality of signal acquisition apparatuses 30 corresponding to the plurality of strain sensors 20 are connected to an amplifier 40. That is, the plurality of strain sensors 20 shares one amplifier 40 and one AD converter 50. The signal acquisition apparatuses 30, the amplifier 40 and the AD converter 50 may be disposed on the display substrate 100. In one embodiment, the signal acquisition apparatus 30, the amplifier 40, and the AD converter 50 may be integrated with the corresponding strain sensor 20, and are disposed in a non-display region of the display substrate together with the corresponding strain sensor 20. Thus, the display controller such as the TCON can determine the region where the deformation occurs in the flexible display panel 1 based on the received digital signal, thereby facilitating further display control of the flexible display panel 1.
(33) In conclusion, according to the embodiment of the present disclosure, by arranging strain sensors on the display substrate, the deformed region of the flexible display panel can be conveniently and effectively detected.
(34) Another example of the present disclosure is a flexible display apparatus. The flexible display apparatus includes the flexible display panel 1 provided according to one embodiment of the present disclosure.
(35) In one embodiment, as shown in
(36) After the flexible display panel is deformed, especially when a large-amplitude of deformation occurs, such as the panel being folded, it is difficult for the complete display region of the flexible display panel to be presented to the user at the same time. Therefore, after the flexible display panel is deformed, the region of the flexible display panel that can be presented to the user is considered as a target display region.
(37) In one embodiment, the target display region may include at least a region that is not deformed at a side of the region where deformation occurs in the flexible display panel.
(38) After the target display region is determined, the display controller 2 can obtain the number of rows of pixel units in the target display region, generate a corresponding number of clock signals based on the number of rows of pixel units in the target display region, and control the target display region to display through the corresponding number of clock signals. As such, the preset number of pixel units in the deformed region can be controlled not to display, the plurality of rows of pixel units at one side of the deformed region is controlled to display, and the plurality of rows of pixel units at the other side of the deformed region is controlled not to display.
(39) In one embodiment, as shown in
(40) In one embodiment, as shown in
(41) In the flexible display apparatus according to one embodiment of the present disclosure, a strain sensor 20 is arranged on the display substrate to conveniently and effectively detect the region where the deformation occurs in the flexible display panel. A display controller is then utilized to determine a target display region based on the region where the deformation occurs so that a part of the flexible display panel can be controlled to display after the deformation, thereby meeting actual viewing demands of the user and reducing electric energy consumption simultaneously.
(42) Based on the above embodiment, a display control method of the flexible display apparatus is further provided according to one embodiment of the present disclosure.
(43) As shown in
(44) In step S1, the region where the deformation occurs in the flexible display panel is determined based on the detection signal.
(45) In one embodiment, the flexible display panel may include a plurality of deformable regions. Each deformable region comprises a corresponding preset number of rows of pixel units. A strain sensor is arranged corresponding to the preset number of rows of pixel units.
(46) In one embodiment, the strain sensor may be a resistive strain sensor. When a certain deformable region deforms, the corresponding resistive strain sensor deforms and the resistance of the resistive strain sensor changes accordingly. Therefore, when the resistive strain sensor generates a detection signal based on the change of the resistance, the corresponding deformable region that deforms can be determined based on the detection signal.
(47) As shown in
(48) In one embodiment, as shown in
(49) It is generally difficult to directly quantify and obtain the amount of change of the resistance. Therefore, a detection signal generated based on the change of the resistance can be converted to a conversion signal. In one embodiment, the Wheatstone bridge shown in
(50) After the conversion signal is obtained, a display controller such as a TCON or the like generally identifies the conversion signal to finally determine the region where the deformation occurs. The current signal or the voltage signal obtained by the conversion is generally very small. Therefore, in one embodiment, the conversion signal can be subjected to amplification and AD conversion. The obtained digital signal can be transmitted to the display controller such as a TCON. As such, the TCON or other display controllers can determine the region that deforms in the flexible display panel based on the received digital signals.
(51) In step S2, a target display region is determined based on the region where the deformation occurs in the flexible display panel, and a display control signal of the target display region is generated.
(52) After the flexible display panel is deformed, especially when a large-amplitude of deformation occurs, such as the panel being folded, it is difficult for the complete display region of the flexible display panel to be presented to the user at the same time. Therefore, after the flexible display panel is deformed, the region of the flexible display panel that can be presented to the user is considered as a target display region. A display control signal of the target display region is generated to control the target display region to display. The display of other regions of the flexible display panel that cannot be presented to the user after being deformed can be controlled to be turned off to save electrical energy.
(53) In one embodiment, the target display region can be composed of at least one region that is not deformed at a side of the region that is deformed in the flexible display panel.
(54) After the target display region is determined, the number of rows of pixel units in the target display region can be obtained, and a corresponding number of clock signals are generated based on the number of rows of pixel units in the target display region. The target display region is controlled to display through the corresponding number of the clock signals. Therefore, the preset number of pixel units in the deformed region can be controlled not to display. A plurality of rows of pixel units at one side of the deformed region is controlled to display, and a plurality of rows of pixel units at the other side of the deformed region is controlled not to display.
(55) In one embodiment, the change of the resistance of the resistive strain sensor 20 can be determined based on the digital signals so as to determine the region where deformation occurs in the flexible display panel. After the region where deformation occurs is determined, the number of the gate lines n in the region that does not deform at one side of the region where deformation occurs can be further obtained, that is, the number of rows of the pixel units n in the target display region. Then, n clock signals are outputted correspondingly, as shown in
(56) In one embodiment, as shown in
(57) In the display control method of the flexible display apparatus according to one embodiment of the disclosure, the region where the deformation occurs in the flexible display panel is determined based on the detection signal. The target display region is determined based on the region where the deformation occurs, so that a part of the flexible display panel can be controlled to display after the flexible display panel deforms, thereby meeting actual viewing demands of the user and reducing electric energy consumption simultaneously.
(58) In the description of the present disclosure, the terms “center,” “horizontal,” “vertical,” “length,” “width,” “thickness,” “upper,” “lower,” “front,” “back,” “left,” “right,” “vertical,” “horizontal,” “top,” “bottom,” “inner,” “outer,” “a clockwise direction,” “an anticlockwise direction,” “an axial direction,” “a radial direction,” “a circumferential direction,” or the like are based on the orientation or positional relationship shown in the drawings. They are used merely for convenience of description and simplifying the description of the present invention, but not to indicate or imply that the indicated apparatus or element must have a specific orientation, or be constructed and operated in a specific orientation, therefore cannot be construed as a limitation of the present disclosure.
(59) In addition, the terms “first” and “second” are for illustration purposes only and are not to be construed as indicating or implying relative importance or implied reference to the quantity of indicated technical features. Thus, features defined by the terms “first” and “second” may explicitly or implicitly include one or more of the features. In the description of the present disclosure, the meaning of “plural” is two or more unless otherwise specifically and specifically defined.
(60) In the present invention, the terms “mounted,” “connected,” “fixed,” and the like should be broadly understood unless expressly stated and limited otherwise. For example, they can be construed as fixedly connected or detachably connected or integrally connected. They can be mechanically connected or electrically connected and can be directly connected or indirectly connected through an intermediate medium. There can also be an internal connection between two elements. A person of ordinary skill in the art would understand the specific meaning of the terms in the disclosure in specific situations.
(61) In the disclosure, unless explicitly stated and defined otherwise, when the first feature is “above” the second feature or “below” the second feature, the two features can be in direct contact or indirect contact through an intermediate medium. Also, that the first feature is “above” the second feature can be that the first feature is above or obliquely above the second feature, or only a height of the first feature is higher than that of the second feature. That the first feature is “below” the second feature can be that the first feature is below or obliquely below the second feature, or only indicates that a height of the first feature is smaller than that of the second feature.
(62) In the description of the specification, references made to the term “one embodiment,” “some embodiments,” and “exemplary embodiments,” “example,” and “specific example,” or “some examples” and the like are intended to refer that specific features and structures, materials or characteristics described in connection with the embodiment or example that are included in at least one embodiment or example of the present disclosure. The schematic expression of the terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be included in any suitable manner in any one or more embodiments or examples.
(63) The descriptions of the various embodiments of the present disclosure have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to best explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others of ordinary skill in the art to understand the embodiments disclosed herein.
(64) Description of Symbols in the Drawings:
(65) 1: flexible display panel
(66) 2: display controller
(67) 100: display substrate
(68) 10: pixel unit
(69) 20: strain sensor
(70) 30: signal acquisition apparatus
(71) 40: amplifier
(72) 50: AD converter