The subject matter herein generally relates to human interface devices.
Tablet computers and smart phones usually have both display and touch functions.
A conventional touch display device having the above functions includes a display module together with a touch module assembled with the display module. While the display module and the touch module cooperate to realize display function and touch function, each module can only perform its own function. However, the above-mentioned conventional touch display device needs both a display module and a touch module, so the touch display device has many integral components. This works against miniaturization, and against devices being less costly. There is room for improvement in the art.
Implementations of the present disclosure will now be described, by way of embodiment, with reference to the attached figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein may be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features of the present disclosure.
The term “coupled” is defined as connected, whether directly or indirectly through intervening components, and is not necessarily limited to physical connections. The connection can be such that the objects are permanently connected or releasably connected. The term “comprising” when utilized, means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series, and the like.
Referring to
The touch display device 10 includes a substrate 12, a plurality of light emitting elements 13, and a driving circuit 14. The light emitting elements 13 and the driving circuit 14 are all located on the substrate 12. The driving circuit 14 includes a scanning circuit module 141, a data circuit module 142, and a touch control module 143.
A portion of the substrate 12 is located in the display area 121, and the other portion of the substrate 12 is located in the non-display area 122. All of the light emitting elements 13 are arranged in an array in the display area 121 of the substrate 12. Each of the sub-pixel units 11 is provided with one light emitting element 13. In the present embodiment, the light emitting elements 13 are Micro Light Emitting Diodes (μLEDs, also known as Micro-LEDs) or Mini Light Emitting Diodes (Mini LEDs). The μLEDs refers to LEDs having size of less than 100 microns, and the Mini LEDs refers to LEDs having size of about 100 microns or more, between the size of conventional LEDs and the size of Micro LEDs.
The driving circuit 14 is located in the non-display area 122 of the substrate 12. The touch display device 10 operates in display periods and touch periods, each display period alternating with one touch period. During each display period, the driving circuit 14 drives the light emitting elements 13 to emit light for image display. During each touch period, the driving circuit 14 applies touch scan signals to the light emitting elements 13 and reads self-capacitance values of each light emitting element 13 for calculating a touch position. A pre-stored algorithm calculates the touch position. A touch operation of a user can be identified according to the touch position to execute an instruction.
It can be understood that several adjacent sub-pixel units 11 constitute one pixel, and the light emitting elements 13 in the sub-pixel units 11 constituting one pixel can emit light of different colors. In the present embodiment, three sub-pixel units 11 constitute one pixel, and the three light emitting elements 13 located in the three sub-pixel units 11 emit red light, green light, and blue light, respectively.
Referring to
In the present embodiment, the touch display device 10 further includes a plurality of multiplexers 16 located on the substrate 12. The multiplexers 16 are connected one-to-one to the touch units 15 in a one-to-one manner.
Referring to
The touch display device 10 further includes a timing control circuit 17 and a common voltage control circuit 18. The control terminal a0 of each switch T0 is electrically connected to the timing control circuit 17, and the timing control circuit 17 outputs a clock signal to control conduction and disconnection between the first terminal b0 and the second terminal c0 of the switch T0. The first terminal b0 of each switch T0 is connected to the touch control module 143 for receiving a touch scan signal Vsense outputted by the touch control module 143. The second terminal c0 of the switch T0 is connected to anode p of the light emitting element 13. The common voltage control circuit 18 is connected to cathode n of one light emitting element 13 for outputting a common voltage Vcom to the cathode n of the light emitting element 13.
The touch display device 10 further includes a plurality of first transistors T1 and a plurality of second transistors T2. One first transistor T1 and one second transistor T2 are located in each sub-pixel unit 11. Each of the plurality of first transistors T1 includes a first control terminal a1, a first connection terminal b1 and a second connection terminal c1, and each of the plurality of second transistors T2 includes a second control terminal a2, a first connection terminal b2, and a second connection terminal c2. In one sub-pixel unit 11, the second connection terminal c1 of the first transistor T1 is connected to the second control terminal a2 of the second transistor T2, and the second connection terminal c1 of the first transistor T1 is connected to the first connection terminal b2 of the second transistor T2. A charging capacitor C1 is connected between the second connection terminal c1 of the first transistor T1 and the first connection terminal b2 of the second transistor T2. In the present embodiment, the plurality of first transistors T1 and the plurality of second transistors T2 are thin film transistors.
Referring to
During each display period, the plurality of first transistors T1 and the plurality of second transistors T2 are used to collectively drive the plurality of light emitting elements 13 to emit light for image display. During each touch period, the light emitting elements 13 do not emit light.
The following describes the operating process of the touch display device 10 provided by the present embodiment:
The touch display device 10 operates in a plurality of display periods and a plurality of touch periods, and each display period alternates with one touch period. One display period and one touch period adjacent constitute an operating cycle, and operation of the touch display device 10 is basically the same in each operating cycle. Operation of each sub-pixel unit 11 is basically the same, so the operation of one sub-pixel unit 11 in one operating cycle will be exemplified below.
Referring to
Referring to
In each touch unit 15 of the present embodiment, four sub-pixel units 11 are included, that is, the touch unit 15 includes four light emitting elements 13. One touch unit 15 is connected to one multiplexer 16, and one multiplexer 16 includes four switches T0. Each switch T0 is connected to one light emitting element 13, and each switch T0 is connected to the timing control circuit 17. The timing control circuit 17 outputs four clock signals CLK for controlling the four switches T0 in a one-to-one manner. The four clock signals CLK are in a high level in a time division manner. Each of the four clock signals CLK controls one of the four switches T0 to be turned on or off, so that the touch scan signals Vsense are outputted to the light emitting elements 13 in a time division manner. The time division manner, that is, at one time, a touch scan signal Vsense is applied to one light emitting element 13, and at another time, a touch scan signal is applied to another light emitting element.
In the present embodiment, the light emitting elements 13 are μLEDs. Referring to
The touch display device 10 of the present embodiment includes the substrate 12, the plurality of light emitting elements 13, and the driving circuit 14 located on the substrate 12. The touch display device 10 operates in a plurality of display periods and a plurality of touch periods, and each display period alternates with one touch period. During each display period, the driving circuit 14 drives the plurality light emitting elements 13 to emit light to realize image display. During each touch period, the light emitting elements 13 do not emit light, the driving circuit 14 applies the touch scan signals to the plurality of light emitting elements 13 to obtain the self-capacitance value of the plurality of light emitting elements 13 for calculating the touch position and to identify user's touch operation. Therefore, the touch display device 10 provided by the present embodiment of the present invention realizes display function and touch function at the same time without additional structure to support the touch function, thereby saving cost and making the touch display device 10 thinner and lighter.
Referring to
It should be understood that the intelligent device 20 provided by the present embodiment achieves all the functions described in the first embodiment.
Referring to
block S1, driving the plurality of light emitting elements to emit light for image display during each of the plurality of display periods;
block S2, applying the plurality of light emitting elements with touch scan signals and reading self-capacitance value of each light emitting element, and calculating a touch position according to the self-capacitance value of each light emitting element during each of the plurality of display periods.
Referring to
block S21, during each touch period, outputting the touch scan signals and the clock signal, and outputting the touch scan signals to each light emitting element in a time division manner according to the clock signal;
block S22, reading the self-capacitance value of each light emitting element, and calculating the touch position according to the sum of self-capacitance values of all the light emitting elements in each of the touch units.
Details of the touch display device can be found in the related description in the first embodiment.
The driving method provided by the present embodiment calculates the touch position by reading the self-capacitance value of each light emitting element to identify the touch operation of a user, so as to realize display function and touch function in the same display device 10 without additional structure to separately support touch function, and save the overall cost of the touch display device 10 and allow the touch display device 10 to be thinner and lighter.
It is to be understood, even though information and advantages of the present embodiments have been set forth in the foregoing description, together with details of the structures and functions of the present embodiments, the disclosure is illustrative only. Changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the present embodiments to the full extent indicated by the plain meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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201910131039.X | Feb 2019 | CN | national |