Riflescope with Attachable Aiming Corrector and Method for Using Same
20190360780 ยท 2019-11-28
Assignee
Inventors
Cpc classification
F41G3/2655
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B23/16
PHYSICS
F41G3/2683
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G3/323
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41G3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B23/16
PHYSICS
Abstract
This invention discloses a riflescope wherein the point of aim is adjusted by attaching one or more corrector wedge prisms in front of the objective. Each wedge prism shifts the point of aim by a predetermined amount such as 5 cm at 100 m or 10 cm at 100 m, etc. A shooter can zero-in his rifle by first firing a set of test shots to determine how far off the bullets hit from the desired point of impact. He then selects one or more wedge prisms supplied with the riflescope and attaches them to its front side. The wedge prisms correct the riflescope's point of aim and bring it in alignment with the the rifle's point of impact.
The riflescope introduced in this invention has no moving parts, no turrets and no off-axis optical components. There is no possibility of it's point of aim shifting due to rifle's recoil force or other vibrations. Additionally, the riflescope has a streamlined body which is aesthetically pleasing and also suitable for adding auxiliary sights such as a reflector sight.
Claims
1-19. (canceled)
20. A riflescope, comprising: a. a housing, said housing having a front end, a rear end and a middle section, b. an objective lens that forms a first image of a target, said objective lens being mounted inside said housing at a front end of said housing, said objective lens having an optical axis and a focal plane; c. an image-erecting means for converting said first image of the target into an upright second image of the target, said image-erecting means being mounted inside said housing after said objective lens; d. an eyepiece lens that converts said second image of the target into a virtual image of the target viewable by a shooter, said eyepiece lens being mounted after said image-erecting means, said eyepiece lens being mounted inside said housing at a rear end of said housing, said eyepiece lens having a focal plane; e. a reticle that designates a point of aim, said reticle being mounted either at the focal plane of said objective lens or at the focal plane of said eyepiece lens, an image being superimposed on the virtual image of the target; f. a collection of wedge prisms, each said wedge prism in said collection including a deviation power of a certain amount, each said wedge prism in said collection having a deviation axis which is a hypothetical axis that points from an apex of said wedge prism towards a base of said wedge prism; g. a fastener means for attaching at least one wedge prism of the collection of wedge prisms to a front end of said housing such that i. the wedge prisms of the collection are positioned before said objective lens; ii. light rays that enter said objective lens pass through the wedge prisms of the collection; iii. the deviation axes of the collection of wedge prisms are orientable to a plurality of specified directions perpendicular to the optical axis of the objective lens; and iv. the wedge prisms of the collection are fixedly attached to said housing whereby the point of aim denotes the riflescope corrected to correspond to a point of impact of a rifle associated with the riflescope.
21. The riflescope of claim 20 further comprising said reticle is fixedly attached to said housing.
22. The riflescope of claim 20 further comprising each said wedge prism of said collection is installed in a mount having markings denoting the amount of deviation power.
23. The riflescope of claim 20 further comprising each said wedge prism of said collection is installed in a mount having markings denoting the deviation axis.
24. The riflescope of claim 20 further comprising the middle section of said housing having a streamlined cylindrical form with no attached turrets.
25. The riflescope of claim 20 further comprising said wedge prisms of said collection having the certain amount of the deviation power having a power amount selected from the group consisting of: 0.1 mil, 0.2 mil, 0.5 mil, 1 mil, 2 mil, 5 mil, and 10 mil.
26. The riflescope of claim 20 further comprising said wedge prisms of said collection having the certain amount of the deviation power having a power amount selected from the group consisting of: 0.5 MOA, 1 MOA, 2 MOA, 5 MOA, 10 MOA, 20 MOA, and 60 MOA.
27. The riflescope of claim 20 wherein the wedge prisms are achromatic.
Description
V. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The foregoing aspects and many of the attendant advantages of this invention will become more readily apparent with reference to the following detailed description of the invention, when taken in conjunction with the appended claims and accompanying drawings, wherein:
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VI. DETAILED DESCRIPTION OF THE INVENTION
A. Principle of Operation
[0037] This invention uses the principle of light refraction by thin wedge prisms. When a ray of light enters a transparent material, the ray's direction is deflected, based on both the entrance angle (typically measured relative to the normal to the surface) and the material's refractive index (Snell's Law). A beam passing through a wedge prism is deflected twice: once entering, and again when exiting. The sum of these two deflections is called the deviation angle (
[0038] It follows from Snell's Law that for a wedge prism, the beam deviation angle depends on the incidence angle:
?=????sin.sup.?1(?{square root over (n.sup.2?sin.sup.2?)}?sin ??sin ?cos ?).(1)
[0039] In the above formula ? is the beam deviation angle, is the apex angle of the prism, ? is the incidence angle of the incoming beam and n is the index of refraction of the glass material used for making the prism. When the incident light is close to normal to the prism surface (i.e. ??0) and for a thin prism (i.e. ??6?), the formula (1) reduces to
??(n?1)?.(2)
[0040] Therefore, for thin wedge prisms the deviation angle ? is practically independent of the incidence angle and is solely determined by the prism's apex angle and glass type. In this invention, the deviation angle ? is also called deviation power or deviation magnitude associated with a thin wedge prism. For the purposes of this invention, the wedge prisms will be designed such that their deviation powers ?.sub.i will be a fraction of a degree. Example values are 1 MOA, 2 MOA, and 5 MOA.
[0041] A wedge prism deflects light towards its base. Therefore, we define a hypothetical axis which connects the apex of the prism to its base, as its deviation axis. The deviation direction or deviation orientation ? of the prism is defined as the angle between the prism's deviation axis and the vertical axis (x axis as shown in
[0042] If two or more thin wedge prisms are stacked together, their deviation powers will be additive.
[0043] In three dimensional space, it is possible to orient a thin wedge prism such that its deviation axis points to any direction in the x?y plane. In this case, the total deviation provided by the prisms will be the vector sum of the deviation provided by each individual prism. With reference to
a=a.sub.1?a.sub.2.(3)
[0044] Calculating the total deviation power ? and the deviation direction ? strictly from the polar coordinates (?.sub.1, ?.sub.1) and (?.sub.1, ?.sub.1) requires complicated trigonometric formulas. However, this calculation is greatly simplified if the two wedge prisms are oriented such that their deviation axes are parallel, i.e ?.sub.1=?.sub.2. In this case the deviation power of the prisms are simply added together:
?=?.sub.1=?.sub.2(4)
?=?.sub.1=?.sub.2(5)
B. First Preferred Embodiment of the Invention
[0045] A first preferred embodiment of the invention is illustrated in
[0046] An erector lens group 16 is positioned after the objective focal plane 4 to convert the first image of the target formed by the objective lens into an upright and laterally correct second image. An eyepiece lens 5 is positioned after the erector lens group 16 at the rear end of the housing 30. The eyepiece lens 5 magnifies the second image of the target formed by the erector lens group and converts it into a virtual image for the shooter to see. The eyepiece lens has a focal plane 8.
[0047]
[0048] For the purpose of this invention, the erector lens group 16 and the erector prism 17 constitute an image-erecting means for converting the reverse first image of the target formed by the objective lens into an upright second image. Therefore, the configurations shown in
[0049] The riflescope according to the present invention further includes a reticle or cross hairs 20 to designate the point of aim. In
[0050] In the riflescope according to this invention the reticle 20 is centered on the optical axis 50 and fixedly attached to the housing 30. The image-erecting means (whether implemented by the erector lens group 16 or by the erector prism 17) is also centered on the optical axis and fixedly attached to the housing 30. The reader would appreciate that the features described here differ from the prior art riflescopes wherein the reticle and the erector lens group are mounted in a tillable inner tube and their lateral position is adjustable by the user.
[0051] The riflescope according to the present invention is supplied with a set of corrector wedge prisms. Each corrector wedge prism in the set has a pre-determined deviation power between 0.05 mil and 10 mil. For example, a set of five wedge prisms with deviation powers of 0.1 mil, 0.2 mil, 0.5 mil, 1 mil and 5 mil maybe supplied with the riflescope. The wedge prisms maybe mounted in a suitable mount such that they can be attached to other prisms and to the front end of the riflescope housing. In
[0052] With reference to
[0053] With reference to
[0054] A distinct feature of the riflescope according to the present invention is that it is turretless. As shown in
C. Second Preferred Embodiment of the Invention
[0055] A second preferred embodiment of the invention is illustrated in
D. Third Preferred Embodiment of the Invention
[0056] A third preferred embodiment of the invention is illustrated in
[0057] In
E. Using Achromatic Prisms
[0058] A wedge prism deviates light beams of different color at slightly different angles. This is because the refraction index n in (1) depends on the wavelength of the light ray being refracted by the prism. One can obtain the value of n for standard red (C=656 nm), green (e=546 nm) and blue (F=486 nm) wavelengths from glass manufacturers such as Schott AG of Mainz, Germany. Since the exact amount of deviation produced by a wedge prism is wavelength dependent, a certain amount of color dispersion or chromatic error will be introduced when prisms are used for deviating natural light.
[0059] With reference to
[0060] Since the wedge prisms used in the present invention have very small deviation power, the chromatic error will be negligible. Nonetheless, chromatic error can be further reduced if an achromatic prism is used. With reference to
[0061] Achromatic prisms are well-known. Hence persons skilled in the art can easily design achromatic prisms suitable for use in the present invention.
VII. METHOD FOR ZEROING-IN A RIFLESCOPE USING ATTACHABLE WEDGE PRISMS
[0062] To use the riflescope disclosed in the present invention, the user should first mount it on his rifle. The riflescope should be mounted on top of the receiver (or barrel) such that its optical axis is in line with the axis of the barrel. Due to the dimensional variations in the mounts, the optical axis of the riflescope is rarely exactly in line with the barrel. The fact that the trajectory of a bullet does not coincide with the line of sight (which is always straight) necessitates additional corrections as well. Therefore, the user should determine if there is any correction required to align the point of aim shown by the riflescope with the actual point of impact of the rifle.
[0063] This misalignment between the point of aim and the point of impact (also called aiming error) can be determined by shooting a group of three shots at a test target located 100 m away (see
[0064] After attaching the wedge prisms, the user may fire another group of three shots at the test target to verify that his rifle shoots to the desired point of impact. If any fine tuning is needed, the user can add more corrector prisms or adjust the orientation of the attached prisms slightly. Once the rifle's zero is verified, the shooter can take his rifle to the field and use it for hunting or target shooting. The rifle will maintain its zero forever as there are no moving parts in the riflescope that can shift due to recoil or other vibrations.
[0065] The examples below further illustrate the method of zeroing-in the riflescope according to the present invention. The first example shows how to correct the point of aim of the riflescope using just a single wedge prism.
[0066] Example 1 Consider that a hunter purchases the riflescope described in the present invention and mounts it on his rifle. In the weekend, the hunter goes to the shooting range and test-fires his rifle at 100 m. He examines the point of impact on the target and determines that a correction of 15 cm along a direction of 30? measured clockwise from the vertical axis is required to zero-in the rifle (
[0067] The next example shows how the aiming correction can be performed using two corrector prisms oriented along x or y coordinates.
[0068] Example 2 Assume that a hunter using the riflescope according to this invention determines the aiming error of his rifle in Cartesian coordinates as shown in
[0069] The hunter first selects a wedge prism with deviation power of 10 cm at 100 m (1 mil) and attaches it to the riflescope such that the deviation axis of the prism points in the x direction (vertical). He then chooses a wedge prisms with deviation power of 5 cm at 100 m (0.5 mil) and attaches it to the riflescope such that the deviation axis of the prism points in thr y direction. The riflescope is now zeroed-in. The hunter can fire a second group of three shots to verify his zero. The bullets should now hit near the center of the target.
[0070] While it is easy to use Cartesian coordinates, it is usually more efficient to zero-in the riflescope in polar coordinates. The next example shows how to zero-in the riflescope using two corrector prisms whose deviation axes are kept aligned.
[0071] Example 3 Assume that a hunter purchases the riflescope described in this invention and mounts it on his new high-quality hunting rifle. Next, he takes the rifle to the shooting range and using a steady bench rest fires three shots aiming at the center of a target located 100 m away. Upon examining the target, he determines that a hypothetical vector connecting his point of aim to the the centroid of the holes (which indicate the rifle's point of impact) is 15 cm long and has a 30 degree angle measured clockwise from the vertical axis. With reference to
[0072] Once the magnitude and the direction of required correction is determined, the hunter selects two wedge prisms with deviation power of 0.5 mil (5 cm at 100 m) and 1 mil (10 cm at 100 m) from the collection of wedge prisms supplied with the riflescope. He stacks these prisms together making sure that their deviation axes are aligned. This way, the deviation power of the prisms will be simply added to create a total deviation power of 15 cm at 100 m which is the required correction magnitude. The hunter then attaches the two prisms to the front of his riflescope such that the deviation axis of the prisms is oriented at 30 degrees clockwise from the vertical axis as shown in
[0073] The riflescope is now zeroed-in! The hunter can fire another group of three shots to verify that his rifle's point of aim is aligned with point of impact.
[0074] Example 4 Consider the scenario described in Example 3 but assume that the distance between the point of impact and the point of aim was slightly shorter. That is, let ?=13 cm and ?=30?. The hunter may still use the two wedge prisms with ?.sub.1=10 cm and ?.sub.2=5 cm as used in Example 3 but he should now orient the deviation axes of the prisms such that ?.sub.1 is slightly more than 30? and ?.sub.2 is slightly less than 30? as shown in
[0075] The methods described in the examples above illustrate how the riflescope according to this invention can be zeroed-in with as few as a single wedge prism. In general, the deviation power of thin wedge prisms follow the vector addition rule described in subsection VI-A. In most practical cases, a user should be able to zero-in his rifle using one or two wedge prisms following the well-known rules of vector algebra.
VIII. ADVANTAGES OVER THE PRIOR ART
[0076] The riflescope introduced in this invention has several significant advantages over the prior art: [0077] 1. H
IX. CONCLUSION, RAMIFICATIONS, AND SCOPE
[0083] The foregoing disclosure is believed to be sufficient to enable an ordinary person skilled in the art to build and use the invention. In addition, the description of specific embodiments will so fully reveal the general nature of the invention that others can, by applying current knowledge, readily modify and/or adapt for various applications such specific embodiments without undue experimentation and without departing from the generic concept. For example: [0084] 1. The corrector wedge prisms of the present invention can be combined with previous mechanisms and techniques proposed by the present author for adjusting the point of aim in a riflescope. This includes the mechanisms and techniques disclosed in U.S. Pat. No. 8,749,887 issued on Jun. 10, 2014, U.S. Pat. No. 9,164,269 issued on Oct. 20, 2015, and U.S. Pat. No. 9,644,620 issued on May 9, 2017. For instance, one may use the teachings disclosed in the present invention to make large adjustments (more than 5 MOA) to the point of aim if required. The mechanisms disclosed in the patents mentioned above could then be reserved for making fine adjustments (less than 5 MOA). Limiting those mechanisms to small adjustments would simplify their design and reduce unwanted optical abberations. [0085] 2. It is possible to use gradient-index (also called graded-index) optical elements to provide a deviating optical device similar to a wedge prism. For the purposes of this invention, a gradient-index prism will be considered equivalent to a conventional wedge prism and maybe used as a substitute. [0086] 3. The methods of zeroing-in a riflescope described in Section VII can be adapted to any optical weapon sight that superimposes a reticle pattern on an image of the target. This includes various types of reflex (reflector) sights such as red-dot sights and holographic sights. [0087] 4. The steps required to perform the methods of zeroing-in a riflescope described in Section VII can be performed by a human user or by a machine (i.e. robotic device). For example, a robotic device used in an assembly line can mount the telescopic device on a rifle, measure its aiming error using an optical bore sighter and attach a required number of prisms to correct the riflescope's point of aim.
[0088] Therefore, such adaptations and modifications should and are intended to be comprehended within the meaning and range of equivalents of the disclosed embodiments.
[0089] It is to be understood that the phraseology or terminology herein is for the purpose of description and not of limitation, such that the terminology or phraseology of the present specification is to be interpreted by the skilled artisan in light of the teachings and guidance presented herein, in combination with the knowledge of one of ordinary skill in the art. Thus, the scope of the invention should be determined by the appended claims and their legal equivalents, as opposed to the embodiments illustrated.