The present disclosure relates to the technical field of manufacturing a display device, and in particular, to a film coating apparatus and a film coating method.
The flexible touch display device has the advantages of thin, light, wide viewing angle, active illumination, flexible display, and simple and direct operation, and has been considered as a promising next-generation display technology.
In the related art, a substrate thin film is usually coated on a glass substrate by using a film coating apparatus, and then a touch structure layer is formed on the substrate thin film by using the glass substrate as a support. After the formation, the substrate thin film is separated from the glass substrate to obtain a flexible touch thin film.
The film coating apparatus generally includes a substrate adsorption device and an coating device located under the substrate adsorption device, wherein: the substrate adsorption device has a bearing surface facing towards the coating device, and the bearing surface has a first adsorption structure; the coating device includes a screen plate disposed opposite to the bearing surface, a negative pressure tank located under the screen plate, and a press roll disposed inside the negative pressure tank. Before the film coating, the substrate adsorption device adsorbs the glass substrate to the bearing surface, the glass substrate has a photoresist on a side thereof facing towards the screen plate, and the coating device adsorbs the substrate thin film on the screen plate; during the film coating, the press roll extrudes the screen plate and moves parallel to the bearing surface, so as to ensure the substrate thin film to closely adhere to the glass substrate by the photoresist
However, the related art has a drawback in that the press roll applies a certain amount of pressing and pulling against a thin film when coating the thin film, so that the thin film generates a tensile stress. In the subsequent process, the thin film tends to shrink along the direction that the press roll moves, which causes the glass substrate to warp, so that the thin film coated on the glass substrate is prone to the phenomenon such as abnormal vacuum absorption and abnormal flow, which seriously affects the product quality of the touch thin film.
The embodiments of the present disclosure provide a film coating apparatus and a film coating method to improve the adhesion of the thin film to the substrate, and thereby to improve the product quality of the flexible touch thin film.
An embodiment of the present disclosure provides a film coating apparatus for coating a thin film on a substrate, the film coating apparatus including a substrate fixing device, a thin film bearing device, and a press roll. The substrate fixing device has an arched surface for fixing the substrate; the thin film bearing device has a bearing surface opposite to the arched surface, the thin film bearing device is detachably disposed to the bearing surface; the press roll is located at a side of the thin film away from the substrate fixing device, and may move towards the substrate and roll from one end of the thin film to the other end.
In the film coating apparatus provided by the embodiment of the present disclosure, before coating the thin film, the substrate fixing device fixes the substrate on the arched surface, and the substrate is slightly arched downwards; during the process of coating the thin film, the press roll presses the thin film towards the arched surface, and rolls at a side of the thin film away from the arched surface, so that a portion of the thin film opposite to the press roll is closely adhered to the substrate, and at which time the thin film generates a tensile stress; after the thin film is coated, the substrate returns to an original state, and the thin film generates a compressive stress which is offset by the tensile stress. Compared with the related art, the film coating apparatus improves the shrinkage of the thin film and the adhesion of the thin film to the substrate, thereby improving the product quality of the touch thin film.
In one embodiment, a convexity d of the arched surface ridge and a thickness a of the substrate satisfy: d≤2a. The convexity of the arched surface takes a value within this range, so that a warpage of the substrate can be reduced, thereby improving the adhesion of the thin film to the substrate.
In one embodiment, the thin film bearing device further includes a screen plate disposed between the bearing surface and the thin film and opposite to the arched surface, the press roll being located at a side of the screen plate away from the thin film. The thin film bearing device fixes the thin film on the screen plate, which can reduce the wrinkling of the thin film, thereby improving the adhesion of the thin film to the substrate.
In one embodiment, the thin film bearing device further includes a first adsorption structure for adsorbing the thin film.
In one embodiment, the thin film bearing device further includes a screen plate having a plurality of meshes disposed between the bearing surface and the thin film, the first adsorption structure including a first suction pipe correspondingly disposed to a side of each mesh away from the thin film, and the first suction pipe being in communication with a corresponding mesh.
In one embodiment, the first adsorption structure includes a plurality of first adsorption pads disposed on the bearing surface, and corresponding to each of first adsorption pads, a first suction pipe disposed to a side of the first adsorption pad away from the thin film, the first suction pipe being in communication with the corresponding first adsorption pad.
In one embodiment, the substrate fixing device further includes a second adsorption structure for adsorbing the substrate, the second adsorption structure including a plurality of second adsorption pads disposed on the arched surface, and a second suction pipe disposed at a side of the second adsorption pad away from the thin film, the second suction pipe being in communication with the corresponding second adsorption pad. The second adsorption structure relatively closely adsorbs and fixes the substrate on the arched surface, thereby reducing the wrinkling of the substrate, and improving the adhesion of the thin film to the substrate.
In one embodiment, the thin film bearing device further includes a first driving device connected to the press roll for driving the press roll to press the thin film against the arched surface and roll at a side of the thin film away from the arched surface.
In one embodiment, the substrate fixing device further includes a rotating shaft disposed at a side of the arched surface away from the thin film bearing device, the rotating shaft having a first rotational position for making the arched surface facing towards the thin film bearing device, and a second rotational position for making the arched surface facing away from the thin film bearing device. The rotating shaft rotates the substrate fixing device to the first rotational position during fixing of the substrate; and the rotating shaft rotates the substrate fixing device to the second rotational position after the substrate is fixed, so as to facilitate fixing of the substrate on the arched surface.
An embodiment of the present disclosure further provides a film coating method applied to the film coating apparatus according to the foregoing technical solutions, including:
fixing the substrate on an arched surface of a substrate fixing device;
placing a thin film on a bearing surface of a thin film bearing device;
controlling a press roll to press the thin film towards the arched surface and roll from one end of the thin film to the other end, so that a portion of the thin film opposite to the press roll is coated to the substrate.
In one embodiment, a convexity d of the arched surface and a thickness a of the substrate satisfy: d≤2a.
In an embodiment, the method further includes: providing a screen plate between the bearing surface and the thin film and opposite to the arched surface, and providing the press roll at a side of the screen plate away from the thin film, controlling the press roll to press the screen plate and the thin film against the arched surface and roll from one end of the screen plate to the other end, so that a portion of the thin film opposite to the press roll is coated on the substrate.
In an embodiment, the method further includes: providing a first adsorption structure for adsorbing the thin film on the thin film bearing device.
In an embodiment, the method further includes: providing a screen plate between the bearing surface of the thin film bearing device and the thin film, wherein the first absorbing structure includes a first suction pipe correspondingly disposed to a side of each mesh away from the thin film, and the first suction pipe is in communication with a corresponding mesh.
In one embodiment, the first adsorption structure includes a plurality of first adsorption pads disposed on the bearing surface, and corresponding to each of first adsorption pads, a first suction pipe disposed to a side of the first adsorption pad away from the thin film, the first suction pipe being in communication with the corresponding first adsorption pad.
In an embodiment, the method further includes: providing a second adsorption structure for adsorbing the substrate on the substrate fixing device, the second adsorption structure including a plurality of second adsorption pads disposed on the arched surface, and a second suction pipe disposed at a side of the second adsorption pad away from the thin film, the second suction pipe being in communication with the corresponding second adsorption pad.
In one embodiment, the method further includes: providing, on the thin film bearing device, a first driving device connected to the press roll for driving the press roll to press the thin film against the arched surface and roll at a side of the thin film away from the arched surface.
In one embodiment, the method further includes: providing a rotating shaft at a side of the arched surface away from the thin film bearing device, the rotating shaft having a first rotational position for rotating the arched surface towards the thin film bearing device, and a second position for rotating the arched surface away from the thin film bearing device.
In the film coating method provided by the embodiment of the present disclosure, before coating the thin film, the substrate fixing device fixes the substrate on the arched surface, and the substrate is slightly arched downwards; during the process of coating the thin film, the press roll presses the thin film towards the arched surface, and rolls at a side of the thin film away from the arched surface, so that a portion of the thin film opposite to the press roll is closely adhered to the substrate, and at which time the thin film generates a tensile stress; after coating the thin film, the substrate returns to an original state, and the thin film produces a pressure stress which is offset by the tensile stress. Compared with the related art, the film coating method improves the shrinkage of the thin film and the adhesion of the thin film to the substrate, thereby improving the product quality of the touch thin film.
Example embodiments will now be described more fully with reference to the accompanying drawings. However, the example embodiments can be embodied in a variety of forms, and should not be construed as being limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and the concepts of the example embodiments will be fully given to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and thus their detailed descriptions will be omitted.
Although the relative terms such as “on”, “below”, “upper” and “lower” are used in the specification to describe the relative relationship of one component to another component, these terms are used in this specification for convenience only, for example, a direction in the example according to the accompanying drawings. It should be understood that if the device is turned upside down, the “upper” component described above will become a “lower” component. When a structure is “on” another structure, it is possible that the structure is integrally formed on another structure, or that the structure is “directly” disposed on another structure, or that the structure is “indirectly” disposed on the other structure through other structures.
The terms “a”, “an”, “the”, “said” are used to indicate the presence of one or more elements/components. The terms “comprise”, “include”, “have”, “contain” and their variants are used to be open-type and are meant to include additional elements/components, etc., in addition to the listed elements/components/etc.; the terms “first”, “second”, etc. are only used as marks, rather than limitation of the number of objects.
In order to improve the adhesion of the thin film and the substrate, and further improve the product quality of the flexible touch thin film, embodiments of the present disclosure provide a film coating apparatus and a film coating method.
As shown in
the substrate fixing device 1 has an arched surface 11 for fixing a substrate 3;
the thin film bearing device 2 has a bearing surface 20 opposite to the arched surface 11 for bearing a thin film 4;
the press roll 22 is located at a side of the thin film 4 away from the substrate fixing device 1, and when the press roll 22 presses the thin film 4 against the arched surface 11 and rolls at a side of the thin film 4 away from the arched surface 11, a portion of the thin film 4 opposite to the press roll 22 is coated to the substrate 3.
In the film coating apparatus provided by the embodiment of the present disclosure, before coating the thin film 4, the substrate fixing device 1 fixes the substrate 3 on the arched surface 11, and the substrate 3 is slightly drooped under the action of gravity. As seen from the broken line in
In the embodiment of the present disclosure, a convexity d of the arched surface 11 and a thickness a of the base substrate 3 satisfy: d≤2a. The convexity of the arched surface 11 takes a value within this range, and the warpage of the substrate 3 can be reduced, thereby improving the adhesion of the thin film 4 to the substrate 3.
As shown in
Referring to
As shown in
As shown in
In the present embodiment, the thin film bearing device 2 further includes a first driving device connected to the press roll 22 for driving the press roll 22 to press the thin film 4 against the arched surface 11 and to roll at a side of the thin film 4 away from the arched surface 11.
As shown in
In this embodiment, the film coating apparatus further includes a control device connected to the first driving device for controlling the first driving device to drive the press roll 22 to press the thin film 4 against the arched surface 11 and roll at a side of the thin film 4 away from the arched surface 11 after the thin filming apparatus is activated, so that a portion of the first adsorption structure 23 opposite to the press roll 22 is separated from the thin film 4, and so that a portion of the thin film 4 opposite to the press roll 22 is closely adhered to the substrate 3. With the design of this structure, the control device drives the press roll 22 by controlling the first driving device to automatically coat the thin film 4.
In an embodiment, the film coating apparatus further includes a second driving device for driving the rotating shaft 12, and the second driving device is connected to the control device. The control device controls the second driving device to drive the rotating shaft 12 so that the substrate fixing device 1 rotates to the first rotational position to face towards the thin film bearing device 2 during fixing of the substrate 3; the control device controls the second driving device to drive the rotating shaft 12 so that the substrate fixing device 1 rotates to the second rotational position facing away from the thin film bearing device 2 after the substrate 3 is fixed.
The control device is further connected to a first vacuuming device and a second vacuuming device, respectively, for controlling the first vacuuming device to vacuum the first adsorption structure 23 and controlling the second vacuuming device to vacuum the second adsorption structure 13 after the film coating device is activated.
As shown in
step 101: fixing a substrate on an arched surface of a substrate fixing device;
step 102: placing a film on a bearing surface of a thin film bearing device;
step 103: controlling a press roll to press the thin film towards the arched surface and roll at a side of the thin film away from the arched surface, so that a portion of the thin film opposite to the press roll is coated to the substrate.
In the film coating method provided by the embodiment of the present disclosure, before coating the thin film 4, the substrate fixing device 1 absorbs and fixes the substrate 3 on the arched surface 11, and the substrate 3 is slightly arched downwards; during the process of coating the thin film 4, the press roll 22 presses the thin film 4 towards the arched surface 11, and rolls at a side of the thin film 4 away from the arched surface 11, so that a portion of the thin film 4 opposite to the press roll 22 is closely adhered to the substrate 3, and at which time the thin film 4 generates a tensile stress; after coating the thin film 4, the substrate 3 returns to an original state, and the thin film 4 produces a pressure stress which is offset by the tensile stress. Compared with the related art, the film coating method improves the shrinkage of the thin film 4 and the adhesion of the thin film 4 to the substrate 3, thereby improving the product quality of the touch thin film.
It will be apparent to those skilled in the art that various modifications and changes can be made in the present disclosure without departing from the spirit and scope of the disclosure. Thus, the present invention is intended to cover the modifications and the modifications which belong to the scope of the claims and their equivalents.
The above description is only the specific embodiment of the present disclosure, but the scope of the present disclosure is not limited thereto, and those skilled in the art can easily conceive of changes or substitutions within the technical scope of the present disclosure. Those changes or substitutions should be covered within the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be determined by the scope of the claims.
Number | Date | Country | Kind |
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201710464893.9 | Jun 2017 | CN | national |
The present disclosure is based on International Application No. PCT/CN2018/076311, filed on Feb. 11, 2018, which is based on and claims priority to Chinese Patent Application No. 201710464893.9, filed on Jun. 19, 2017 and titled “FILM COATING APPARATUS AND METHOD FOR THE SAME”, the entire contents thereof are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/076311 | 2/11/2018 | WO | 00 |