Embodiments of the present disclosure relate to a display module and a display device.
A display module includes a display panel and a backlight module. When the display module has a large amount of static electricity, the static electricity will result in circuit break of lines in a periphery of the display panel, and then result in abnormal display. Abnormal display, for instance, includes redness, blueness, display abnormally and even being unable to display. A touch display module includes a touch display panel and a backlight module. When the touch display module has a large amount of static electricity, the static electricity will burn out an integrated circuit (IC) of the touch display module or result in circuit break of lines in a periphery of the touch display panel, and will also result in abnormal display.
Embodiments of the present disclosure provide a display module and a display device, which are used for improving the antistatic effect of products and hence improving the use characteristics and the competitiveness of the products.
Embodiments of the present disclosure provide a display module, including: a protection cover, a display panel and an electrostatic conducting layer, wherein the electrostatic conducting layer is disposed on a side of the protection cover facing the display panel and configured to conduct static electricity produced by the display module.
Embodiments of the present disclosure further provide a display device, including any one of the display modules provided by embodiments of the present disclosure.
In order to clearly illustrate the technical solution of the embodiments of the disclosure, the drawings of the embodiments will be briefly described in the following; it is obvious that the described drawings are only related to some embodiments of the disclosure and thus are not limitative of the disclosure.
In order to make objects, technical details and advantages of the embodiments of the disclosure apparent, the technical solutions of the embodiments will be described in a clearly and fully understandable way in connection with the drawings related to the embodiments of the disclosure. Apparently, the described embodiments are just a part but not all of the embodiments of the disclosure. Based on the described embodiments herein, those skilled in the art can obtain other embodiment(s), without any inventive work, which should be within the scope of the invention.
Unless otherwise defined, all the technical and scientific terms used herein have the same meanings as commonly understood by one of ordinary skill in the art to which the present disclosure belongs. The terms “first,” “second,” etc., which are used in the description and the claims of the present application for invention, are not intended to indicate any sequence, amount or importance, but distinguish various components. Also, the terms such as “a,” “an,” etc., are not intended to limit the amount, but indicate the existence of at least one. The terms “include,” “including,” “include,” “including,” etc., are intended to specify that the elements or the objects stated before these terms encompass the elements or the objects and equivalents thereof listed after these terms, but do not preclude the other elements or objects. The phrases “connect”, “connected”, etc., are not intended to define a physical connection or mechanical connection, but can include an electrical connection, directly or indirectly. “On,” “under,” “right,” “left” and the like are only used to indicate relative position relationship, and when the position of the object which is described is changed, the relative position relationship can be changed accordingly.
The thickness of layers and the size and the shape of areas in the accompanying drawings do not reflect the true scale of the layers and are only intended to illustrate the content of the present disclosure.
As illustrated in
In general, the anti-ESD method adopted for the display module is as follows: conductive particles 17 are doped into the attaching adhesive 18 to prevent electro-static discharge (ESD), and the attaching adhesive 18 becomes a conductive attaching adhesive; the conductive attaching adhesive is electrically connected with a silver adhesive 16 and is connected with a ground wire in the IC (not shown in the figure) on a side of the array substrate 14 through the silver adhesive 16; and the static electricity is discharged through a conductive path from the conductive attaching adhesive to the silver adhesive, so that the anti-ESD effect can be achieved.
The above method not only has anti-ESD function on the display module but also has anti-ESD function on a touch display module. But in the actual application process, the upper polarizer 12 and the attaching adhesive 18 are susceptible to the external temperature and humidity environment. After being affected by the external temperature and humidity environment, the upper polarizer 12 and the attaching adhesive 18 will be shrunk. As illustrated in
Therefore, the anti-ESD effect can be reduced due to the susceptibility to external temperature and humidity environment in the actual application process when the conductive particles are doped into the attaching adhesive to prevent ESD.
Embodiments of the present disclosure provide a display module and a display device, which are used for improving the anti-static effect of products and hence improving the use characteristics and the competitiveness of the products.
The embodiments of the present disclosure provide a display module, which includes: a protection cover, a display panel and an electrostatic conducting layer. The electrostatic conducting layer is disposed on a side of the protection cover facing the display panel and configured to conduct the static electricity produced by the display module.
As illustrated in
For instance, the protection cover 10 is disposed on the display panel. The electrostatic conducting layer 31 is disposed on the protection cover 10 and disposed on a side of the protection cover 10 facing the opposing substrate 13. For instance, the electrostatic conducting layer 31 can entirely cover the protection cover. The conductive component 32 is configured to electrically connect the electrostatic conducting layer 31 with the terminal housing 33.
As illustrated in
For instance, the terminal housing 33 in the embodiment can be communicated with the outside, e.g., communicated with with the earth. The design of the terminal housing 33 can also refer to the conventional design. For instance, the terminal housing in the embodiment can be a middle bezel of a mobile phone, namely an A shell of the mobile phone.
For instance, the electrostatic conducting layer 31 in the embodiment covers the entire protection cover 10. When the display module provided by the embodiment produces static electricity, the static electricity will be discharged along a path from the electrostatic conducting layer 31, to the conductive component 32, and to the terminal housing 33. Compared with the general ESD path, the embodiment is unsusceptible to the external temperature and humidity environment in the case of discharging static electricity, and hence can improve the antistatic effect of products.
The electrostatic conducting layer in the embodiment covers the entirety of the protection cover. When the display module produces static electricity, the electrostatic conducting layer can play a better role in conducting static electricity. In addition, as the electrostatic conducting layer covers the entire protection cover, a pattern of the electrostatic conducting layer is not required to be formed by a patterning process, etc. Therefore, the electrostatic conducting layer has simple manufacturing process and low production cost, and meanwhile, the manufacturing process will not have a great impact on the entire display module, so that the yield of the display module can be guaranteed. Of course, the pattern of the electrostatic conducting layer can also be formed by a patterning process, etc. No limitation will be given here in the embodiment.
For instance, a material of the electrostatic conducting layer in the embodiment is a transparent conductive material. The transparent conductive material, for instance, includes but not limited to, metal and indium tin oxide (ITO). The electrostatic conducting layer has a square resistance in a range of 108Ω/□ to 1010Ω/□. The electrostatic conducting layer having the square resistance within this range can better conduct the static electricity produced by the display module in the actual manufacturing process. Moreover, when the electrostatic conducting layer which entirely covers the protection cover has the square resistance in the range of 108Ω/□ to 1010Ω/□, the display of the display module will not be affected. In the actual manufacturing process, the resistance of the electrostatic conducting layer can be set according to processes and actual demands. No limitation will be given to the resistance of the electrostatic conducting layer in the embodiment.
For instance, as illustrated in
For instance, the conductive component 32 in the embodiment is conductive foam or a conductive adhesive. Of course, the conductive component in the embodiment can also adopt other conductive materials. No limitation will be given here to the specific materials of the conductive component.
In the embodiment, the electrostatic conducting layer is disposed on a side of the protection cover facing the opposing substrate, and the conductive component is disposed between the protection cover and the terminal housing. During actual production, as the terminal housing is communicated with the outside, e.g., communicated with the earth, the static electricity produced by the display module provided by the embodiment will be discharged along a path from the electrostatic conducting layer, to the conductive component, and to the terminal housing. Compared with the general ESD path, the display module provided by the embodiment is unsusceptible to the external temperature and humidity environment in the case of discharging static electricity, and hence can improve the antistatic effect of products.
As illustrated in
As illustrated in
For instance, the electrostatic conducting layer 31 in the embodiment covers an entirety of the protection cover 10. When the display module produces static electricity, the electrostatic conducting layer can play a better role in conducting static electricity. In addition, as the electrostatic conducting layer covers the entirety of protection cover, a pattern of the electrostatic conducting layer is not required to be formed by a patterning process, etc. Therefore, the electrostatic conducting layer has simple manufacturing process and low production cost, and meanwhile, the manufacturing process will not have a great impact on the entire display module, so that the yield of the display module can be guaranteed.
As illustrated in
As illustrated in
For instance, a material of the electrostatic conducting layer in the embodiment can be a transparent conductive material. The electrostatic conducting layer has a square resistance in a range of 108Ω/□ to 1010Ω/□. Of course, in the actual manufacturing process, the resistance of the electrostatic conducting layer can be set according to processes and actual demands. No limitation will be given to the specific resistance of the electrostatic conducting layer in the embodiment.
The display module provided by the embodiment can be a touch display module having touch function. Description will be given below to the discharge process of the static electricity, produced by the touch display module provided by the embodiment, with reference to the accompanying drawings.
As illustrated in
The static electricity produced by the touch display module provided by the example can be discharged along a path from the electrostatic conducting layer 31, to the conductive component 32, and to the terminal housing 33. Compared with the general ESD path, the touch display module provided by the embodiment is unsusceptible to the external temperature and humidity environment in the case of discharging static electricity, and hence can improve the antistatic effect of products.
For instance, as illustrated in
When the touch electrodes are mutual-capacitance touch electrodes, both driving electrodes and sensing electrodes can be disposed on a side of the array substrate facing the opposing substrate; or both the driving electrodes and the sensing electrodes can be disposed on a side of the opposing substrate facing the array substrate; or the driving electrodes can be disposed on a side of the array substrate facing the opposing substrate, and the sensing electrodes can be disposed on a side of the opposing substrate facing the array substrate. The mutual-capacitance touch electrodes can refer to conventional design. No further description will be given here.
As illustrated in
And then, the static electricity produced by the touch display module provided by the example can be discharged along a path from the electrostatic conducting layer 31, to a GND line on the button FPC 41, and to a GND line on the module FPC 35. Compared with the general ESD path, the touch display module provided the embodiment is unsusceptible to the external temperature and humidity environment in the case of discharging static electricity, and hence can improve the antistatic effect of products.
In addition, the touch display module provided by the embodiment can further include a conductive component 32 disposed between the protection cover 10 and the terminal housing 33. The conductive component 32 can be as illustrated in
The embodiment provides a display device, which includes the foregoing display module. The display device can be a liquid crystal display (LCD) panel, an LCD, an LCD TV, an organic light-emitting diode (OLED) panel, an OLED display, an OLED TV, e-paper, etc.
In summary, the embodiments provide a display module, which includes: a protection cover and a display panel, and further include an electrostatic conducting layer. The electrostatic conducting layer is disposed on a side of the protection cover facing the display panel and configured to conduct static electricity produced by the display module. As the electrostatic conducting layer is disposed on a side of the protection cover facing the display panel in the embodiment of the present disclosure, and the electrostatic conducting layer is configured to conduct the static electricity produced by the display module, the static electricity produced by the display module provided by the embodiments can be discharged through the electrostatic conducting layer. Compared with the case of discharging static electricity through the conductive attaching adhesive and the silver adhesive in conventional design, the display module provided by the embodiments can improve the anti-ESD effect of products as the electrostatic conducting layer is unsusceptible to the external temperature and humidity environment in the case of discharging static electricity, and hence can improve the use characteristics and the competitiveness of the products.
In the embodiments of the present disclosure, the same reference numerals denote the same elements/components unless otherwise defined, and the features in different embodiments or different features in the same embodiments can be combined without conflict.
What have been described above are only specific implementations of the present disclosure, the protection scope of the present disclosure is not limited thereto. Any changes or substitutions easily occur to those skilled in the art within the technical scope of the present disclosure should be covered in the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be based on the protection scope of the claims.
This application claims the benefit of priority from Chinese patent application No. 201610232550.5, filed on Apr. 14, 2016, the disclosure of which is incorporated herein in its entirety by reference as a part of the present application.
Number | Date | Country | Kind |
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201610232550.5 | Apr 2016 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/100359 | 9/27/2016 | WO | 00 |