The present specification generally relates to screen protector application systems and methods and, more specifically, to screen protector application systems and methods that create a bubble free surface between a screen protector and cover glass of an electronic device.
Screen protectors can be used on various electronic devices in order to protect a glass screen from cracking or chipping. However, the application of a screen protector can be tedious and often leads to bubbles forming between the screen protector and cover glass. Bubble formation is also a major concern for 3D shaped screens, such as those with a curved or beveled surface. Further, stronger adhesives are being explored in order to maintain a flush contact surface between the cover glass and screen protector following the initial application. But, increasingly complex cover glass and screen protector geometries in combination with stronger adhesives would make bubble removal by hand extremely difficult.
If someone attempts to apply a screen protector by hand, quite often the screen protector must be lifted one or more additional times in order to refine the alignment or eliminate trapped air bubbles. Multiple lifts of the screen protector after the initial application increases the application failure rate by providing additional opportunities for foreign material (airborne particles or fibers) to enter the space between mating surfaces, where they become trapped and create a visible defect.
Accordingly, a need exists for a system and method for applying a screen protector to the cover glass of an electronic device while minimizing bubble formation between the surfaces.
According to a first aspect, a method of applying a screen protector to a surface, including aligning a first mating surface with a second mating surface within a chamber, creating a vacuum within the chamber, inflating an airbag arranged within the chamber, contacting the first mating surface with the airbag, inflating the airbag to extend towards the perimeter of the first mating surface and second mating surface, and removing all air trapped between the first mating surface and the second mating surface.
According to any of the previous aspects, the first mating surface may further include an adhesive layer arranged between the first mating surface and second mating surface.
According to any of the previous aspects, the method may further include forcibly mating the first mating surface to the second mating surface.
According to any of the previous aspects, the fluid trapped between the first mating surface and the second mating surface is air.
According to any of the previous aspects, the airbag may initially contact the center of the first mating surface.
According to any of the previous aspects, the first mating surface and the second mating surface are glass.
According to any of the previous aspects, the adhesive layer may be applied to the second mating surface prior to the first mating surface.
According to any of the previous aspects, the airbag may be inflated via a pump.
According to any of the previous aspects the airbag may be inflated via atmospheric pressure.
According to any of the previous aspects, the airbag may be arranged above the first mating surface and second mating surface.
According to any of the previous aspects, the first mating surface and second mating surface may be held in place by an alignment fixture when contacted by the airbag.
According to a second aspect, a screen protector application system, including a chamber that can hold a vacuum, an extendable member arranged on the top surface of the chamber, and a pump arranged to apply a vacuum to the chamber, wherein when a vacuum is applied to the chamber via the pump, the extendable member extends downward into the chamber and contacts a first mating surface and a second mating surface, wherein the pressure from the extendable member forces any air arranged between the first mating surface and second mating surface out through the perimeter of the first mating surface.
According to any of the previous aspects, the extendable member may be an airbag.
According to any of the previous aspects, an adhesive layer may be arranged between the first mating surface and second mating surface.
According to any of the previous aspects, the system may further include a valve fluidly coupled to the airbag.
According to any of the previous aspects, the extendable member may apply a horizontal and vertical force to the first mating surface and second mating surface.
According to any of the previous aspects, the system may further include an alignment fixture to secure the first mating surface and second mating surface during contact with the extendable member.
According to any of the previous aspects, the system may further include a control unit communicatively connected with the pump and valve, and comprising a processor, a memory, and a computer readable and executable instruction set.
According to any of the previous aspects, the extendable member may initially contact the center of the first mating surface and moves outward towards the perimeter of the first mating surface.
According to a third aspect, a method of applying a screen protector to a surface, including sealing a chamber with electronic device arranged inside having a screen protector and/or adhesive layer arranged on a glass screen of the electronic device, evacuating the upper chamber, evacuating an airbag arranged within the upper chamber, maintaining a vacuum within the upper chamber, venting the airbag to atmospheric pressure or applying positive fluid pressure, contacting a center point of the screen protector and/or adhesive layer with the airbag, inflating the airbag until the airbag expands enough to reach the perimeter of the screen protector and/or adhesive layer, applying a vertical force across a top surface of the screen protector and/or adhesive layer to forcibly mate the screen protector and/or adhesive layer to the screen, venting the upper chamber to atmospheric pressure or applying positive pressure, venting the airbag to atmospheric pressure or applying vacuum, and breaking the seal of the upper chamber to remove the electronic device.
In some embodiments, the disclosed process relates to the automated or semi-automated application of a removable glass screen protector (SP) to a mobile device display (cover glass). A trend with modern mobile devices is to offer curved (3D) cover glass. This requires SP's having 3D shapes matching the mobile device cover glass. Various electronic devices having 3D cover glass include the Samsung S8, S8 Plus, Note8, S9 and S9 Plus, and the Apple i8, i8 Plus and iXS.
In some embodiments, the disclosed process includes the joining of a mobile device or cell phone with a screen protector, comprised of glass and a composite adhesive film of matching geometry, free from removable trapped air (bubbles). Examples of non-removable trapped air or bubbles may be those caused by screen protector misalignment with respect to the mobile device cover glass, or those caused by the presence of foreign material(s) between the screen protector adhesive and the mobile device cover glass.
In some embodiments, the disclosed process, when used in conjunction with an electro-pneumatic system designed to manage air pressures above and below a flat rubber membrane (airbag) over a short time period (<10 minutes), achieves bubble-free 3D screen protector applications.
In some embodiments, the disclosed process addresses air entrapment or bubble formation when applying screen protectors, comprised of glass and one, or more, adhesives and or anti-splinter film materials, to a mobile device cover glass. In some embodiments, the disclosed process employs the below referenced equipment and process to deform the screen protector interface material in such a way as to match or imprint (preform) the mating device cover glass surface low or high frequency uniaxial or biaxial distortion into the screen protector and cover glass interface material.
In some embodiments, the preform of the screen protector and cover glass interface material is accomplished by employing an adhesive protective barrier (film) that protects the adhesive integrity while simultaneously allowing for the deformation of the underlying interface material.
In some embodiments, once the imprint of the mating device cover glass waviness (low or high frequency uniaxial or biaxial distortion) has been imprinted into the screen protector and cover glass interface material, the protective film is removed and the screen protector is then realigned to the device cover glass, using the alignment fixture, and then put back into the applicator and subjected to a second process cycle.
In some embodiments, equipment includes a base with a hinged lid. The base has a rigid cavity or volume large enough to accommodate the largest mobile device to receive a screen protector application. The base also contains the electro-pneumatic components required for operation (vacuum pump, pressure pump, pneumatic valves and electronics). The hinged lid has a rigid frame, the rigid frame includes a seal mating with the base surrounding the base rigid cavity, and an airbag capable of distending into the base rigid cavity. With the lid closed, a sealed volume is created by the base rigid cavity, seal, and lid. The seal provided is capable of sealing a vacuum or positive pressure.
In some embodiments, the disclosed process solves the problem of air bubble entrapment by matching the low and or high level uniaxial or biaxial distortion frequency that exists in of both the cover glass and the screen protector interface. Matching of the surfaces reduces or eliminates the potential formation of air pockets between the interfaces.
In some embodiments, the disclosed process is the imprinting, or matching, of mating surfaces of a screen protector to a mobile device cover glass which in turn minimizes or eliminates mismatch in surface waviness and therefore the encapsulation or entrapment of air bubbles up adherence of screen protectors to mobile device cover glass.
In some embodiments, the disclosed process uses a multi-step process to finish the application of a pre-applied and properly aligned glass screen protector to a mobile device or cellphone in a bubble free manner. Additionally, the disclosed process applies 3D edge-to-edge laminated screen protectors to mobile devices with 3D cover glass design
In some embodiments, there are three basic stages of operation: 1.) A vacuum is applied above and below the airbag during an ambient pressure evacuation. A vacuum pump evacuates volume below the airbag surrounding the SP/device combination. The vacuum pump also evacuates the volume above the airbag to maintain static balance. Any airbag contact with the SP prior to reaching a desired evacuation level may entrap air, and therefore, should be avoided. 2.) The vacuum applied below the airbag is maintained while venting or positive pressure is applied above the airbag. The vacuum pump maintains the vacuum within the volume below the airbag surrounding the SP/device combination. The volume above the airbag is vented to the atmosphere and/or a pressure pump may be used to further pressurize the volume above the airbag. Atmospheric or positive pressure above the airbag is intended to slowly distend the airbag, resulting in forcible contact between the airbag and the SP, wherein forcible contact is initiated at or about the center of the rectangular SP and progresses outwardly from point of initial contact over time until ultimately reaching the SP perimeter. Forcible contact between the airbag and SP exterior surface ensures the SP adhesive side is forcibly mated with the mobile device cover glass. 3.) Applying positive pressure to the volume below the airbag, and vent the volume above the airbag to the atmosphere. The volume where the SP/device is arranged transitions from a vacuum to positive pressure. The volume above the airbag is vented to the atmosphere.
In some embodiments, residual bubbles may exist between the cover glass and screen protector adhesive after the mating of the screen protector to the cover glass. These bubbles may are referred to as low pressure bubbles. These low-pressure bubbles, especially if small, have the ability to self-dissipate over time once the mobile device is returned to ambient pressure. This self-dissipation phenomenon can more rapidly occur when the mobile device/screen protector combination is positively pressurized.
Additional features and advantages of the embodiments described herein will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from that description or recognized by practicing the embodiments described herein, including the detailed description which follows, the claims, as well as the appended drawings.
It is to be understood that both the foregoing general description and the following detailed description describe various embodiments and are intended to provide an overview or framework for understanding the nature and character of the claimed subject matter. The accompanying drawings are included to provide a further understanding of the various embodiments, and are incorporated into and constitute a part of this specification. The drawings illustrate the various embodiments described herein, and together with the description serve to explain the principles and operations of the claimed subject matter.
Reference will now be made in detail to embodiments of patient lift systems and methods of operating the same, examples of which are illustrated in the accompanying drawings. Whenever possible, the same reference numerals will be used throughout the drawings to refer to the same or like parts.
Embodiments of the system include a method of applying a screen protector to a surface, including aligning a first mating surface with a second mating surface within a chamber, creating a vacuum within the chamber, inflating an airbag arranged within the chamber, contacting the first mating surface with the airbag, inflating the airbag to extend towards the perimeter of the first mating surface and second mating surface, and removing all air trapped between the first mating surface and the second mating surface.
Various embodiments of screen protector application systems and methods for operating the same will be described herein with specific reference to the appended drawings.
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It will be apparent to those skilled in the art that various modifications and variations can be made to the embodiments described herein without departing from the spirit and scope of the claimed subject matter. Thus it is intended that the specification cover the modifications and variations of the various embodiments described herein provided such modification and variations come within the scope of the appended claims and their equivalents.
This application claims the benefit of priority under 35 U.S.C. § 119 of U.S. Provisional Application Ser. No. 62/779,212 filed on Dec. 13, 2018, the content of which is relied upon and incorporated herein by reference in its entirety.
Number | Date | Country | |
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62779212 | Dec 2018 | US |