Elevation and windage knobs have long been an important part of a rifle scope. The elevation knob causes the optical axis of the scope to point slightly downwardly, so that the shooter will point the rifle up, relative to how it would otherwise be pointed for the same position of the reticle on a field of view. The windage knob performs the same function for azimuth, so that a shooter can compensate for the presence of a cross-wind. These knobs, however, do present shooters with some difficulties.
First, there is the problem always inherent in a mechanical linkage, of inaccuracy introduced by imperfections in the train of parts leading from the knob to the pivotably mounted optical element that is moved to adjust elevation and windage angle (collectively, “optical axis pointing angle”). There is an inevitable tolerance in each part, and some looseness in the system, which introduces uncertainty and inaccuracy into the pointing angle of the scope. These inaccuracies tend to be greatest at the far ends of the adjustment range. U.S. Pat. No. 6,862,832 does address this problem by introducing a system in which the pointing angle of the optical element is measured by an optical sensor. But neither this sensor, nor its mode of use, appears to be further described. Accordingly, the measurement accuracy provided cannot be determined. Further, it cannot be that there is a thorough disclosure of implementation of a system with actual measurement of the optical element pointing angle.
Another problem encountered is that of knob over-rotation. Typically, both the elevation and windage knobs, in order to provide the shooter with both a full range and precision adjustment, can be fully rotated about three times. But this means that a shooter cannot determine, by simply viewing the knob, how far it has been rotated. Rather, he must remember how many rotations have been introduced. This can lead to a miss-adjustment, which that shooter might perceive only after missing a few shots.
Yet another problem is the need to leave shooting position to check pointing angle, either by removing one's eye from the scope ocular, or removing one's finger from the trigger to feel the knob position. Adjusting pointing angle is likely to cause an even greater interruption in the shot process.
The following embodiments and aspects thereof are described and illustrated in conjunction with systems, tools and methods which are meant to be exemplary and illustrative, not limiting in scope. In various embodiments, one or more of the above-described problems have been reduced or eliminated, while other embodiments are directed to other improvements.
In a first separate aspect the present invention may take the form of a rifle scope that includes a scope housing and an optical train, supported in the scope housing and defining an optical axis having a pointing direction. The optical train has an objective lens set, which accepts light into the optical train and defines a scope front; an erector tube pivotably mounted in the scope housing and having a front end; and an ocular portion, adapted to present an image of a field of view to a user and defining a scope back end. The scope also includes an elevation and windage angle adjustment assembly, including an elevation and windage angle adjustment user input assembly; an actuator assembly that changes the optical axis pointing direction in response to input from the user input assembly, by pivoting the erector tube; a sensing and computing assembly that includes a laser assembly that produces a laser beam that is directed through the erector tube and a mirror that reflects the laser beam to a two-axis positioning sensor, and a data processor that computes the optical angle pointing direction in response to input from the two-axis positioning sensor; and an ocular display assembly, communicatively connected to the sensor assembly, that displays the optical axis pointing direction as an image superimposed on the image of the field of view.
In a second separate aspect the present invention may take the form of a rifle scope that includes a scope housing and an optical train, supported in the scope housing and defining an optical axis having a pointing direction. The optical train has an objective lens set, which accepts light into the optical train and defines a scope front; an erector tube pivotably mounted in the scope housing and having a front end; and an ocular portion, adapted to present an image of a field of view to a user and defining a scope back end. The scope also includes an elevation and windage angle adjustment assembly, including an elevation and windage angle adjustment user input assembly; an actuator assembly that changes the optical axis pointing direction in response to input from the user input assembly, by pivoting the erector tube; a sensing and computing assembly that includes two orthogonally positioned hall effect sensors positioned to detect the position of the erector tube front end and that forms a determination of optical axis pointing direction from readings from the sensors; and an ocular display assembly, communicatively connected to the sensor assembly, that displays the optical axis pointing direction as an image superimposed on the image of the field of view.
In a third separate aspect the present invention may take the form of a rifle scope that includes a scope housing and an optical train, supported in the scope housing and defining an optical axis having a pointing direction. The optical train has an objective lens set, which accepts light into the optical train and defines a scope front; an erector tube pivotably mounted in the scope housing and having a front end; and an ocular portion, adapted to present an image of a field of view to a user and defining a scope back end. The scope also includes an elevation and windage angle adjustment assembly, including an elevation and windage angle adjustment user input assembly; an actuator assembly that changes the optical axis pointing direction in response to input from the user input assembly, by pivoting the erector tube; a sensing and computing assembly that includes two orthogonally positioned lasers and two orthogonally positioned laser detectors, positioned to detect the position of the erector tube front end and that forms a determination of optical axis pointing direction from readings from the detectors; and an ocular display assembly, communicatively connected to the sensor assembly, that displays the optical axis pointing direction as an image superimposed on the image of the field of view.
In a fourth separate aspect the present invention may take the form of a A rifle scope that includes a scope housing and an optical train, supported in the scope housing and defining an optical axis having a pointing direction. The optical train has an objective lens set, which accepts light into the optical train and defines a scope front; an erector tube pivotably mounted in the scope housing and having a front end; and an ocular portion, adapted to present an image of a field of view to a user and defining a scope back end. The scope also includes an elevation and windage angle adjustment assembly, including an elevation and windage angle adjustment user input assembly; an actuator assembly that changes the optical axis pointing direction in response to input from the user input assembly, by pivoting the erector tube; an actuator assembly that includes a cam set about the front end of the erector tube, and being responsive to the user input assembly, so that when the cam is rotated the erector tube pointing angle is changed, thereby changing the optical axis pointing direction in response to input from the user input assembly, by pivoting the erector tube; a sensing and computing assembly that forms a determination of optical axis pointing direction; and an ocular display assembly, communicatively connected to the sensor assembly, that displays the optical axis pointing direction as an image superimposed on the image of the field of view.
In addition to the exemplary aspects and embodiments described above, further aspects and embodiments will become apparent by reference to the drawings and by study of the following detailed descriptions.
Exemplary embodiments are illustrated in referenced drawings. It is intended that the embodiments and figures disclosed herein are to be considered illustrative rather than restrictive.
Referring to
There are a number of benefits to scope 10, relative to other scopes. First, a user need not remove his eye from the eyepiece 20, as he adjusts the elevation knob 16 or the windage knob 18, or both. Although some scope users may be adept enough to adjust elevation or windage or both to a desired angle, simply by feel, any large adjustment made using such a technique could be dangerously uncertain. The user with pointing angle feedback, directly in his field of view, has no need to take his eye off of the eyepiece 20, and can, as a result, adjust the elevation and windage angles while maintaining a bead on his quarry. This greatly reduces the amount of time needed to adjust the scope for a shot, thereby enhancing the possibility of shooting success.
Additionally, the mechanical linkages used to communicate positions of knobs 16 and 18 (according to standard prior art practice) introduce an error in adjustment from knob position to actual elevation and windage angles. For small adjustments, close to zero, these errors are relatively small, but for larger adjustments, the errors become larger as well. For scope 10, however, this does not matter, because the actual knob position does not matter. The angle is read directly by sensor 36, and this is what the user sees projected at eyepiece 20, and it is the figure to which he adjusts the knob. As this figure should be highly repeatable, the accuracy between the angle reported to the shooter and the actual angle differs only by measurement error, which is comparatively small relative to the mechanical error of the knobs 16 and 18 and the associated actuation train.
An alternative preferred embodiment of a rifle scope 48 is shown in
In an alternative preferred embodiment shown in
Referring now to
Similar to scope 10, the user of scope 110 does not have to remove his eye from the eyepiece in order to adjust windage and elevation angle. Moreover, in a preferred embodiment, the user can depress one of buttons 116 or 118 constantly to make an adjustment to the windage and elevation angles, an operation that is somewhat easier than turning a knob. In a preferred embodiment, buttons 116 and 118 may be depressed simultaneously. In one preferred embodiment a short press to a button 116 or 118 changes the direction of angle adjustment.
Referring to
Because the first image plane is inverted, moving the reticle to the right, will cause the image of the reticle to move to the left, causing a the scope and rifle to move to the right, relative to where it would have been without reticle adjustment, when the crosshair intersection 250 is aimed at a particular point. Actuators 242 and 244, collectively with data processing unit 220, a display mechanism 260 and a mirror 262, form a windage and elevation detection and reporting assembly. Display mechanism 260 and mirror 262 superimpose the windage and elevation angles 264 (
While a number of exemplary aspects and embodiments have been discussed above, those possessed of skill in the art will recognize certain modifications, permutations, additions and sub-combinations, thereof. It is therefore intended that the following appended claims and claims hereafter introduced are interpreted to include all such modifications, permutations, additions and sub-combinations as are within their true spirit and scope.
This application is a continuation of application serial number PCT/US/70930, filed on Nov. 20, 2013, which is incorporated herein by reference as if fully set forth herein, and which, in turn, claims priority from provisional application Ser. No. 61/728,520, filed Nov. 20, 2012, which is also incorporated by reference as if fully set forth herein.
Number | Date | Country | |
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61728520 | Nov 2012 | US |
Number | Date | Country | |
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Parent | PCT/US13/70930 | Nov 2013 | US |
Child | 14307437 | US |