The present disclosure relates to a portable self-adhering optical lens and, more particularly, to a lens that is portable and adherable to a mirror for improving visibility by magnifying a reflection in the mirror while a user is applying cosmetics and/or tending to their eye or another portion of their face.
For a variety of reasons, such as aging or diseased eyes, some people have difficulty clearly seeing objects or images located relatively near to their eyes and require some type of reading lens to see clearly. One approach for addressing this issue is to wear reading glasses. This approach, however, has drawbacks. One cannot easily wear reading glasses while tending to their face or eyes because the glasses obstruct the area over and near the eyes and ears and thus interfere with the application of eye makeup, the trimming of eyebrows, the insertion or removal of contact lenses, facial hair shaving, or any other type of tending to the region of the face in and around the eyes and ears. Another approach for addressing the above-identified issue is to utilize a makeup mirror. This approach also suffers from drawbacks, as makeup mirrors tend to be bulky, not travel friendly, and often require batteries or another electrical power source to properly function.
The present disclosure provides an optical lens configured to adhere to a mirror and magnify a reflection in the mirror. According to one example, the optical lens comprises a conical concave surface located on a first side of the optical lens and a conical convex surface located on a second side of the optical lens opposite the first side. An optical axis of the optical lens is formed along a central portion of the conical concave surface and a central portion of the conical convex surface. The conical concave surface has a first radius of curvature and the conical convex surface has a second radius of curvature greater in magnitude than the first radius of curvature. At least a portion of the conical concave surface is self-adherable to a mirror. When at least the portion of the conical concave surface is self-adhered to the mirror, the optical lens is configured to magnify mirror images viewed through the optical lens and the mirror.
In some examples, at least the portion of the conical concave surface is formed of micro-suction material configured to self-adhere to the mirror.
In other examples, the optical lens is formed of optical grade plastic material, high refractive index material, high-plastic material, or polycarbonate material.
The optical lens, in another aspect, is formed of pliable suction cup material configured to enable at least the portion of the conical concave surface to self-adhere to the mirror.
In yet another aspect, when at least the portion of the conical concave surface is self-adhered to the mirror, at least the portion of the conical concave surface self-adheres substantially flush to the mirror with an air gap located in between the mirror and the central portion of the conical concave surface.
In one aspect, the optical lens further includes a beveled edge adjoining perimeters of the conical concave surface and the conical convex surface.
In a further example, the first radius of curvature and the second radius of curvature are configured to yield an optical power for the optical lens in a range from 0.25 to 3 diopters.
In some examples, the optical lens further includes a frame positioned around perimeters of the conical concave surface and the conical convex surface, the frame being formed of material different from a material of which the conical concave surface and conical convex surface are formed.
In other examples, the conical concave surface has a first conical constant and the conical convex surface has a second conical constant greater in magnitude than the first conical constant.
In yet another aspect, a shape of the optical lens viewed along the optical axis is circular, oval, rectangular, or square.
In accordance with another aspect of the disclosure, an apparatus for magnifying a reflection in a mirror is provided. The apparatus includes an optical lens and an adhesive material. The optical lens includes a conical concave surface located on a first side of the optical lens, and a conical convex surface located on a second side of the optical lens opposite the first side. An optical axis of the optical lens is formed along a central portion of the conical concave surface and a central portion of the conical convex surface. The conical concave surface has a first radius of curvature and the conical convex surface has a second radius of curvature greater in magnitude than the first radius of curvature. The adhesive material is affixed to at least a portion of the conical concave surface causing at least the portion of the conical concave surface to be self-adherable to a mirror. When at least the portion of the conical concave surface is self-adhered to the mirror, the optical lens is configured to magnify mirror images viewed through the optical lens and the mirror.
In some examples, the adhesive material includes micro-suction material configured to self-adhere to the mirror, the micro-suction material being different from a material of which the optical lens is formed.
In another example, the micro-suction material is affixed to an outer portion of the conical concave surface and the central portion of the conical concave surface lacks the micro-suction material.
The optical lens, in a further aspect, is formed of optical grade plastic material, high refractive index material, high-plastic material, or polycarbonate material.
In yet another aspect, when at least the portion of the conical concave surface is self-adhered to the mirror, at least the portion of the conical concave surface self-adheres substantially flush to the mirror with an air gap located in between the mirror and the central portion of the conical concave surface.
In a further example, the optical lens further includes a beveled edge adjoining perimeters of the conical concave surface and the conical convex surface.
The first radius of curvature and the second radius of curvature, in another aspect, are configured to yield an optical power for the optical lens in a range from 0.25 to 3 diopters.
In some examples, the apparatus further includes a frame positioned around a perimeter of the optical lens, the frame being formed of material different from a material of which the optical lens is formed.
The conical concave surface has a first conical constant and the conical convex surface has a second conical constant greater in magnitude than the first conical constant, in one aspect.
A shape of the optical lens viewed along the optical axis may be, for example, circular, oval, rectangular, or square.
The above and other objects and advantages of the disclosure will be apparent upon consideration of the following detailed description, taken in conjunction with the accompanying drawings, in which like reference characters refer to like parts throughout, and in which:
In order to address the above-noted and other shortcomings, the present disclosure provides various pliable, self-adhering reading lenses, which may have optical powers in a range from 0.25 to 3.00 diopters, for example, and are adherable to any suitable mirror, and assist in the application of makeup, tweezing of eyebrows, contact lens application, facial hair shaving, removal of ear hair, nose hair, administration of eye drops/medication, and/or the like. The lenses described herein may be formed of, by way of example without limitation, optical grade plastic CR-39, Trivex®, high index 1.74/1.67, high-plastic, and/or polycarbonate materials, optionally having an anti-scratch coating. The lenses described herein overcome the above-noted and other shortcomings at least by being pliable, easily portable, conveniently adherable to any mirror, and operable without requiring battery or other electrical power. The rear portion of the lens is self-adhesive, for instance, by including a self-adhesive material such as a micro-suction adhesive material. The lenses may be of various sizes, shapes (e.g., rectangular, oval, round, or square or any combination thereof), and styles. The lenses in some aspects, may be borderless or may include a border formed of any suitable material (e.g., rigid plastic) that frames the lens.
where c represents the curvature (the reciprocal of the radius), r represents the radial coordinate in mm, and k represents the conic constant. Table (1) below provides an illustrative set of values of radiuses, conic constants (k), and curvatures (c) for conical concave surface 302 and conical convex surface 304 in accordance with an example embodiment herein.
At least a portion of conical concave surface 302 is self-adherable to a mirror (not shown in
In one example, at least a portion 410 of conical concave surface 412 of optical lens 406 is formed of an adhesive material, which may be micro-suction material configured to self-adhere to a mirror (not shown in
The apparatuses and optical lenses discussed above are intended to be illustrative and not limiting. More generally, the above disclosure is meant to be exemplary and not limiting. Only the claims that follow are meant to set bounds as to what the present disclosure includes. Furthermore, it should be noted that the features and limitations described in any one embodiment may be applied to any other embodiment herein, and flowcharts or examples relating to one embodiment may be combined with any other embodiment in a suitable manner, done in different orders, or done in parallel.
The present application claims the benefit under 35 U.S.C. § 119(e) of copending U.S. Provisional Patent Application No. 63/124,631, filed on Dec. 11, 2020, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | |
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63124631 | Dec 2020 | US |