The invention relates to adjustable eyeglasses capable of quickly transitioning from bifocal to magnification usage and folding lenses for general use.
Various mechanisms are known for modifying eyeglasses from one use to another. For example, various clip-ons having optical density are provided as protection against sunlight glare. Also, a second lens may ride on a mechanical lens support to be brought in front of an existing lens to provide magnification. In addition arrangements are known to continuously vary the optical properties of lenses by sliding one part over another or to employ liquid based focus adjustment. What is not known however is a quick way to take a bifocal and use the upper portion to increase the magnification of the lower portion.
Eyeglasses are disclosed having a frame retaining a lower lens portion in a fixed position and an upper lens portion connected by a hinge, living hinge or a transparent film layer and may include a spring arranged to snap the upper portion into an erect position or a lowered position. The upper lens portion may be made of a flexible material arranged so that the upper lens portion snaps into its erect and lowered positions. The glasses may also have the lower lens connected by the nose bridge at the center, and the temples at the sides.
The upper lens portion and the lower lens portion are normally in essentially the same plane. The two lens portions each have an optical axis, which align when the upper lens position is snapped onto the lower position either by flipping the upper portion in front of or behind the lower portion
The folding lens may be used without incorporation into eyeglasses, for example in cameras, telescopes, microscopes, etc. The glasses can be operated independently for the two eyes of the wearer. Thus one eye can have the bifocal view for distance and reading, while the other eye has the view for magnification.
The present invention provides a unique lens that may be incorporated into eyeglasses 1 that provide three different diopter views. In a first position the glasses are similar to standard bifocal eyeglasses. That is they have an upper part 3 for distance viewing and a lower part 5 for reading. In addition however the present invention provides for a magnification option in which the upper part is brought into position in front of or behind the lower part as in
The effect of providing one thin lens substantially in tandem contact with another is to combine their diopter power by simply adding their values. That may be seen as follows:
The relationship between s, s′ and f is known as Gauss' thin lens formula and is a consequence of Snell's law of refraction at the essentially spherical surfaces of the thin lens.
1/s+1/s′=1/f. (1)
Because of the presence of reciprocals, it is more convenient to use the diopter, which is just the reciprocal of the focal length measured in meters. Thus a lens with a focal length of ½ meter is a 2 diopter lens. If the lens is biconcave instead of biconvex the focal points are interchanged and the diopter value is negative.
Where there are two thin lenses in close contact, the situation resembles
1/s+1/s′=1/fL. (2)
However, the image from the leftmost lens acts as a virtual image 31 for the rightmost lens. As shown in
−1/s′+1/s″=1/fR. (3).
Adding equations (2) and (3) yields
1/s+1/s″=1/fL+1/fR. (4)
Thus the two lens system has a focal length 1/fL+1/fR=1/fLR, where fLR is the focal length of the combination. Since the reciprocals simply add, so too do the diopter values of the lenses. The diopter value of two thin lenses in contact is the sum of the diopter values of the lenses.
As shown in
The two positions of the upper lens portion are a first position where the upper lens portion and the lower lens portion are in the essentially the same plane as shown in
The diopter values for the lenses are for example in a general diopter range of +1.0 to +1.5 for the upper lens portion for distance viewing, and +2 to +3 diopter for the lower lens portion for reading. Thus, in the second position the glasses have a diopter value between +3 and +4.5, which is suitable for magnification.
The glasses can be operated independently for the two eyes of the wearer. Thus one eye can have the bifocal view for distance and reading, while the other eye has the view for magnification.
Although embodiments of the invention have been described, other variants that would be apparent to persons of skill are intended to be covered. The scope of the invention is described in detail in the claims that follow.
This patent application claims benefit under 35 U.S.C. § 119 to U.S. Provisional Patent Application No. 62/393,483, filed on Sep. 12, 2016, which is hereby incorporated by reference in its entirety as part of the present disclosure.
Number | Name | Date | Kind |
---|---|---|---|
3305294 | Alvarez | Feb 1967 | A |
3498701 | Miller | Mar 1970 | A |
5118178 | Tuckman | Jun 1992 | A |
5598232 | Pronesti | Jan 1997 | A |
6027214 | Graham | Feb 2000 | A |
20070171360 | Parikumar | Jul 2007 | A1 |
20080151184 | Spivey | Jun 2008 | A1 |
20100165288 | Shim | Jul 2010 | A1 |
Entry |
---|
McAllister Franklin Bifocals, Gilbert Cohen Collection, http://gilbertcohencollection.com/selected-items/mcallister-franklin-bifocals-tinted-side-lenses-solid-gold; Nov. 30, 2013. |
Antique Spectacles, http://www.antiquespectacles.com/; downloaded Aug. 8, 2016. |
Rakuten Global Market, double-lens sunglasses; http://global.rakuten.com/en/store/diva-closet/item/qpintrade-32348857940/, downloaded Aug. 8, 2016. |
Multi Focus Advanced Reading Glasses, Foster Grant; http://www.multifocusreader.com/, downloaded Aug. 8, 2016. |
Adlens Adjustables, Aldens Ltd., http://www.protecfarma.com/media/adlens/Adjustables-Brochure-US-WEB.pdf, 2014. |
Alvarez Dual Lens, Aldens Ltd., https://adlens.com/technology/alvarez-lens/, downloaded Aug. 8, 2016. |
Number | Date | Country | |
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62393483 | Sep 2016 | US |