The present invention relates to attachments for scopes and in particular, though not exclusively, for firearm scopes and spotting scopes.
The user of a telescopic sight on a firearm typically has to choose one specific optical power setting (fixed power) or a specific zoom range (variable power scope) thus limiting the application range of the telescopic sight to specific shooting distances. At the same time users need as much field-of-view as possible while maintaining a safe eye relief. In order to stretch the zooming range and/or field-of-view manufacturers have recently started to market riflescopes with stretched zooming range (so called super-zooms with 5-, 6-, 8- and 10-times zoom factor systems) and wide field-of-views. Such systems typically use more lens elements than conventional designs which also has the side effect of making the light path far more strained. This results in significantly heavier and far more costly products with reduced light transmission overall. Similar problems exists with non-firearm scopes such as observation optics, spotting scopes and the like.
What is required is a system and method for improving the adaptability of fixed power or variable power scope systems.
The various embodiments of the present invention may, but do not necessarily, achieve one or more of the following advantages:
the ability to modify the optical properties of a scope;
provide an ability to increase the magnification of a scope;
provide an ability to modify the field of view of a scope;
provide a wide field of view without significantly decreasing eye relief;
provide a holder for an optical component system that may be removably fitted to a scope without tools; and
provide a holder for an optical component that can be fitted to a range of scope sizes.
These and other advantages may be realized by reference to the remaining portions of the specification, claims, and abstract.
In one aspect, there is provided an optical device for improving the field of a scope. The optical device may include a wide angle lens system comprising one or more optical elements. The wide angle lens system may be mounted forward of an objective end of a scope by a mount.
In one aspect of the present invention, there is a provided an attachment for improving the field of view of a scope. The attachment may comprise a holder for mounting to an objective end of a scope. A wide angle lens system comprising one or more optical elements may be supported by the holder. The holder may attach to the objective end of a scope such that light entering the scope through the objective end is first altered by the wide angle lens system.
In one aspect of the present invention, there is a provided a holder for attaching an optical accessory onto a scope. The holder comprises a first ring comprising a variable internal dimension. The holder may also comprise a mount for mounting a lens system to the holder such that the lens system is placed in front of an objective end of the scope when the holder is attached to the scope.
The above description sets forth, rather broadly, a summary of one embodiment of the present invention so that the detailed description that follows may be better understood and contributions of the present invention to the art may be better appreciated. Some of the embodiments of the present invention may not include all of the features or characteristics listed in the above summary. There are, of course, additional features of the invention that will be described below and will form the subject matter of claims. In this respect, before explaining at least one preferred embodiment of the invention in detail, it is to be understood that the invention is not limited in its application to the details of the construction and to the arrangement of the components set forth in the following description or as illustrated in the drawings. The invention is capable of other embodiments and of being practiced and carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of description and should not be regarded as limiting.
In the following detailed description of the preferred embodiments, reference is made to the accompanying drawings, which form a part of this application. The drawings show, by way of illustration, specific embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the present invention.
In
On the inner surface 25 of the ring 22, there may be a plurality of circumference adjustment elements or locking elements 30. The locking elements 30 are disposed on the ring 22 to be able to move longitudinally. As the locking elements 30 move longitudinally from the front to the back, the locking elements also move towards the center of the ring 22, thereby reducing the effective inner circumference of the ring. In one embodiment, the locking elements 30 have a composite wedge profile. In one embodiment, three locking elements 30 are disposed evenly around the inner circumference of the holder ring 22, though any number of locking elements 30 may be used.
The holder 20 includes a locking ring 32. The locking ring 32 may have a knurled outer circumferential surface 36 that facilitates grip for the user to aid in rotation of the locking ring 32. The locking ring 32 may be secured onto the first ring 22 of the holder 20 towards the front edge 27 of the holder by a mutual thread engagement 38 formed on the outer surface 26 of the holder ring 22 and the inner surface of the locking ring 32. As the locking ring 32 is wound further onto the holder ring 22, the locking ring 32 presses against a front edge of the locking elements 30, thereby urging the locking elements 30 longitudinally toward the back of the holder 20 and, consequently, causing the locking elements 30 to reduce the effective inner circumference and/or diameter of the holder ring 22.
The holder 20 further includes a mount 34 for securing a lens system, filter or other optical component to the holder 20 such that the lens system is secured forward of an objective end of the scope. In one embodiment, the mount includes a screw thread formed on an inner front surface of the holder 22, e.g. on an inner front surface of the locking ring 32. Alternative mounts may include clip on lens mounts, bayonet fittings, etc.
As is shown in the assembled device of
In one embodiment, the lens system may be a wide angle lens system. An example wide angle lens system is depicted generally at 40 in
In one embodiment, the lens or lens system may be coated for normal visible light use (400-700 Nm) yet at the same time be enhanced in transmission beyond the visible light spectrum thus allowing for a more than 80% light transmission ratio per air-to-glass surface.
In one embodiment, the lens or lens systems may be optimized by one or more coatings or selection of lens materials for night vision use, e.g the non-visible infrared wavelength range from approx 850 nm to approx 1050 nm.
In one embodiment, the lens or lens system may be configured to work with telescopic zoom-products with 1-times, 1.1-times, 1.5-times, 2-times, 2.5-times, 3-times minimum magnification. For spotting applications, the lens or lens systems may be configured to work with spotting scopes or similar products with magnification in the order of 8-times, 10-times, 15-times, 20-times and greater.
In one embodiment, the lens or lens system may be calculated for fixed power telescopes in the magnification range of 1.1-power to 12-power and up to of the order of 30 power for spotting applications.
In one embodiment, the lens or lens system may be calculated for non-telescopic optical devices such as red-dot sights with an approximate 0.7-power to 1.1-power magnification.
In one embodiment, the lens or lens system may be configured with an entry pupil of 19 mm to 73 mm.
In one embodiment, the lens or lens system may utilize one or more non-glass material lenses such as plastic lenses used in the photographic industry.
The presently described embodiments demonstrate how to convert a fixed power scope into a lower-power product with a wider field-of-view or into a higher-power product by means of a lens element or a lens group mounted onto the objective bell. Accordingly the present innovation allows for shifting the zooming range of a variable power scope either downwards towards lower magnification and wider field-of-views or upwards towards higher magnification and higher shooting precision.
The holder 20 can be used to reduce the magnification of optical products while enhancing the field-of-view. By attaching the holder 20 with a suitable wide angle lens 42 fitted to the mount 34, the user is able to ‘convert’ any 3-9×40 scope into a e.g. 2-7×40 scope with a ca. 30% wider field-of-view than before.
The holder 20 is able to provide precise centering of the optical elements thereby reducing any tracking out error of the reticle versus the impact point (optical shift). The precise centering also reduces the optical deterioration effect caused by the lens components in terms of aberration, Coma and other optical performance parameters.
The holder concept solves the problem of diverse objective size and thread standards by allowing for attachment onto entire product classes such as 40 mm to 42 mm-standard riflescopes (or 30 mm to 32 mm, etc.). The holder concept allows for fast and simple attachment of other accessory such as filters, hand lamps, laser-pointers, etc. onto any rotational symmetric optical product.
Because common filter thread solutions are not standardized across the various manufacturers or product lines, dealers have to carry a large number of different brand-fit solutions on stock to support the large number of different outer diameter or filter thread standards. The present concept works with any—for example—40 mm and even 42 mm (30/32 etc.) objective with a tolerance of several millimeters in variance.
While the invention has been described herein with particular reference to riflescopes other embodiments are contemplated. In one alternative embodiment, the scope enhancement device may be used in conjunction with a spotting scope. Spotting scopes typically have higher powers than riflescopes, such as in the range of 10×-30× and even greater. Such scopes are particularly suitable for the field of view enhancements offered by the present invention.
Although the description above contains many specifications, these should not be construed as limiting the scope of the invention but as merely providing illustrations of some of the embodiments of this invention. Thus, the scope of the invention should be determined by the appended claims and their legal equivalents rather than by the examples given.
Number | Date | Country | |
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61907135 | Nov 2013 | US |