UNIVERSAL WEAPON ZEROING TARGET

20170350678 · 2017-12-07

    Inventors

    Cpc classification

    International classification

    Abstract

    Before a person can use any weapon, such as a gun or a rifle, effectively, the sight must be aligned to the barrel through a zeroing process. An improved zero target is developed which is inexpensive and applicable to many different weapon sight scenarios. By making a universal zero target, users need only a single target eliminating the need for procuring and storing various targets. Additionally, the multi-sight target eliminates the need for field expedient zeroing solutions. The product saves both time and money and improves the results for weapon users.

    Claims

    1. A laminar target comprising: a first surface and a second surface bearing multiple pieces of film attached to a single device; each film having a first film surface and a second film surface; and the first film surface of each film having a different optical property, enabling calibration of a variety weapon sighting technologies, including a night vision sight, a thermal imaging sight, and an aiming laser sight, using the single device.

    2. The target of claim 1, wherein the multiple pieces of film are covered with adhesive on the second film surface and adhered to the first surface of the target such that the multiple pieces of film can be repositioned.

    3. The target of claim 1, wherein at least one of the pieces of film comprises a near infrared retro-reflective film for use with the night vision sight to identify a point of aim.

    4. The target of claim 1, wherein at least one of the pieces of film comprises a near infrared retro-reflective film for use with the aiming laser sight to position an aiming laser.

    5. The target of claim 1, wherein at least one of the pieces of film comprises a white light retro-reflective film for use with a visible aiming laser sight to position an aiming laser.

    6. The target of claim 1, wherein at least one of the pieces of film comprises a thermal reflecting film for use with the thermal weapon sights to identify a point of aim.

    7. The target of claim 1, wherein at least one of the pieces of film comprises a photo-luminescent film for use with the night vision sight to identify a point of aim without a use of an infrared illumination.

    8. The target of claim 2, wherein at least one of the pieces of film detectable with the thermal weapon sight has a triangular cross-section defining an angle with respect to the first surface of the laminar target.

    9. The target of claim 8, wherein the angle with respect to the first surface of the laminar target is within a range of approximately 5 degrees to 30 degrees.

    10. The target of claim 1, wherein the multiple pieces of film comprise a laminar member.

    11. The target of claim 8, wherein some of the multiple pieces of film comprises a laminar member and at least one of the multiple pieces of film comprises a non-laminar member.

    12. The target of claim 11, wherein the non-laminar member comprises multiple member structure including a thermally reflective film, a folded laminar member, and a space filling member.

    13. The target of claim 12, wherein the thermally reflective film is permanently adhered to the folded laminar member to form a hinge and the space filling member is configured to maintain the angle of the folded laminar member.

    14. A laminar target comprising: a first surface and a second surface including a plurality of quadrants and multiple pieces of film configured within a single device; and each quadrant having a piece of film with a different optical property, enabling calibration of a variety weapon sighting technologies, including a night vision sight, a thermal imaging sight, and an aiming laser sight, using the single device.

    15. The target of claim 14, wherein at least one of the pieces of film comprises a near infrared retro-reflective film for use with the night vision sight to identify a point of aim.

    16. The target of claim 14, wherein at least one of the pieces of film comprises a near infrared retro-reflective film for use with the aiming laser sight to position an aiming laser.

    17. The target of claim 14, wherein at least one of the pieces of film comprises a white light retro-reflective film for use with a visible aiming laser sight to position an aiming laser.

    18. The target of claim 14, wherein at least one of the pieces of film comprises a thermal reflecting film for use with the thermal weapon sights to identify a point of aim.

    19. The target of claim 14, wherein at least one of the pieces of film comprises a photo-luminescent film for use with the night vision sight to identify a point of aim without a use of an infrared illumination.

    20. The target of claim 14, wherein the multiple pieces of film comprise a near infrared retro-reflective film, a white light retro-reflective film, a thermal reflecting film, and a photo-luminescent film.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0020] The skilled artisan will understand that the drawings described below are for illustrative purposes only. The drawings are not intended to limit the scope of the present teachings in any way.

    [0021] FIG. 1 (prior art) depicts a typical 25-meter calibration target for use with visible sights.

    [0022] FIG. 2 is a front view of one embodiment of a target according to the present teachings.

    [0023] FIG. 3 shows an instruction sheet that can be used with the target of FIG. 2.

    [0024] FIG. 4 illustrates an alternative embodiment of a thermal reflective member according to the present teachings.

    [0025] FIG. 5 depicts another exemplary embodiment of a target according to the present teachings.

    DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION

    [0026] In the following discussion that addresses a number of embodiments and applications of the present invention, reference is made to the accompanying drawings that form a part hereof, and in which is shown 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 changes may be made without departing from the scope of the present invention.

    [0027] Various inventive features are described below that can each be used independently of one another or in combination with other features. However, any single inventive feature may not address any of the problems discussed above or only address one of the problems discussed above. Further, one or more of the problems discussed above may not be fully addressed by any of the features described below.

    [0028] As used herein, the singular forms “a”, “an” and “the” include plural referents unless the context clearly dictates otherwise. “And” as used herein is interchangeably used with “or” unless expressly stated otherwise. As used herein, the term ‘about” mechanism +/−5% of the recited parameter. All embodiments of any aspect of the invention can be used in combination, unless the context clearly dictates otherwise.

    [0029] Unless the context clearly requires otherwise, throughout the description and the claims, the words ‘comprise’, ‘comprising’, and the like are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense; that is to say, in the sense of “including, but not limited to”. Words using the singular or plural number also include the plural and singular number, respectively. Additionally, the words “herein,” “wherein”, “whereas”, “above,” and “below” and words of similar import, when used in this application, shall refer to this application as a whole and not to any particular portions of the application.

    [0030] The description of embodiments of the disclosure is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. While the specific embodiments of, and examples for, the disclosure are described herein for illustrative purposes, various equivalent modifications are possible within the scope of the disclosure, as those skilled in the relevant art will recognize.

    [0031] An exemplary embodiment of a target 100 that can be used, for example, to zero or align a sight according to the present teachings is illustrated in FIG. 2. In the preferred embodiment, the target 100 can comprise multiple members. According to one preferred embodiment, the target 100 may consist of five laminar members 101, 102, 103, 104, 105 as depicted in FIG. 2. Laminar member 101 includes a first surface 106 and second surface 107 (FIG. 3). In various exemplary embodiments, such as, for example, in the exemplary embodiment of FIG. 2, the laminar member 101 can be a film, such as, for example, a polymer film or a paper. In the exemplary embodiments, the laminar member can be a paper approximately 8.5 inches by 11 inches and is resistant to water.

    [0032] In an embodiment, laminar member 102 includes a first surface and second surface. The first surface can be, for example, photo-luminescent such that it can absorb energy from the environment and then release the energy again. The second surface can be adhesive so that it can be affixed to an appropriate location on the first surface 106 of laminar member 101. The photo-luminescent surface can be advantageous when using a night vision sight. The photo-luminescent surface can be used with night vision sights to identify a point of aim without the user having to use infrared illumination. In use, laminar member 102 can be placed in the center of the target at the point of aim (POA), and then charged using a light source. The POA is then easily visible by the shooter trying to zero his weapon. Laminar member 102 can be fabricated from readily available rolls or sheets of photo-luminescent film. In the preferred embodiment, a product based on Strontium Aluminate is preferred over one based on Zinc Sulfide.

    [0033] In an embodiment, laminar piece 103 includes a first surface and second surface. The first surface is retro-reflective to near infrared energy (in a range of approximately 0.7 u to 3 u) only, such that it can retro-reflect incident near infrared energy and absorb visible light. The term “retro-reflection” should be understood to mean that incident energy is reflected back toward its source irrespective of the position of the reflector. The second surface has adhesive properties so that it can be affixed to an appropriate location on the first surface 106 of laminar member 101. This retro-reflective property provides another advantage when using a night vision sight. During use, laminar member 103 can be placed in the center of the target at the point of aim (POA). The shooter illuminates laminar member 103 with his infrared illuminator and then the POA is easily visible by the shooter trying to zero his weapon. Alternatively, laminar member 103 can be used with an infrared aiming laser to position the aiming laser. In such an embodiment, laminar member 103 is placed at a desired distance away from the POA such that, when the laser is focused exactly on laminar member 103, the weapon is aimed exactly at the POA. Laminar member 103 can be fabricated, for example, from readily available master rolls or sheets of infrared (IR) glow film, commonly known as, IR glint tape.

    [0034] In the preferred embodiment, laminar member 104 includes a first surface and second surface. The first surface is retroreflective to white light. As defined above, retro-reflection means that incident energy is reflected back toward its source irrespective of the position of the reflector. The second surface has adhesive properties so that it can be affixed to an appropriate location on the first surface 106 of laminar member 101. Having a surface that is retroreflective to white light provides an additional advantage when using a night vision sight. The white light retro-reflective film can be used with a visible aiming laser to position the aiming laser. When in use, laminar member 104 can be placed in the center of the target at the point of aim (POA). The shooter illuminates laminar member 104 with his infrared illuminator and then the POA is easily visible by the shooter trying to zero his weapon. Alternatively, target 100 having a laminar member 104 with a surface that is retroreflective to white light can be used with an infrared aiming laser. In such an exemplary embodiment, laminar member 104 is placed at a desired distance away from the POA such that when the laser is focused exactly on laminar member 104, the weapon is aimed exactly at the POA. In an example, laminar member 104 can be readily fabricated, for example, from master rolls or sheets of retroreflective film.

    [0035] In an embodiment, laminar piece 105 includes a first surface and second surface. The first surface is reflective to thermal energy (in a range of approximately 3 u to 12 u) and also has the characteristic of very low emissivity (emissivity value of about 0.4 or less). The second surface has adhesive properties so that it can be affixed to an appropriate location on first surface 106 of laminar member 101. This thermal reflective attribute provides an advantage using a thermal sight. The thermal reflecting film can be used with thermal weapon sights to identify the point of aim (POA). In use, laminar member 105 can be placed in the center of the target at the POA. When viewed with the thermal sight, the POA will then appear to exhibit a different temperature than the surrounding paper, providing a convenient way to find the POA. In an exemplary embodiment, laminar member 105 can be readily fabricated from master rolls or sheets of no power film, such as, for example, AKA thermal film, thermal target film, or low emissivity film.

    [0036] In various embodiments, laminar members 102, 103, 104, 105, having adhesive release properties, such as stickers, can initially be placed on a certain area of first surface 106 of laminar member 101. This adhesive property allows the laminar members to be easily removed and placed permanently in the appropriate locations.

    [0037] Namely, in various embodiments a laminar target 101 is provided having a first surface 106 and a second surface 107 bearing multiple pieces of film 102-105, each having first and second surfaces and various optical properties, enabling the user to calibrate a variety weapon sighting technologies, including night vision, thermal imaging, and aiming lasers, using a single device. The multiple pieces of film 102-105 are covered with adhesive on the second surface and adhered to the first surface of the target such that they can be repositioned.

    [0038] In some embodiments of the zeroing process, not all laminar members 102-105 may be used for each zeroing operation. In some embodiments, one laminar member or a combination of selective laminar members may be employed for a specific application.

    [0039] As depicted in FIGS. 2-3, first surface 106 and second surface 107 can be positioned below the target grid and printed to include an instruction sheet listing instructions and data for the user to aid them in how to use the target and where to place the appropriate components.

    [0040] In various embodiments, laminar member 101 can be made using standard printing arts including screen printing, digital printing, and offset printing. The inks do not require any special characteristics compared to the most commonly used black inks. A design consisting of words, graphics, or any other creation can be printed on the first surface 106, the second surface 107 or a combination thereof. For example, on the first surface 106, a 25 Meter Zeroing Target or any other object or pattern of interest may be printed. An exemplary sample target appears in FIGS. 1 and 2. The printing has the characteristic of being the proper thickness and type such that design on the printed locations on the surface(s) when viewed through a variety of sight devices will be readily apparent. Using this invention, any conceivable design can be created using traditional printing means, such as a silk screening. It should be understood that any technology used to print and any design falls within the scope of this patent.

    [0041] In an alternate embodiment, one or more of laminar members 102-105 may be eliminated from target 100 if any of these laminar members are not required for certain applications.

    [0042] In another alternate embodiment as illustrated in FIG. 4, laminar member 105 can be replaced with a non-laminar member 111 that is configured having, for example, a triangular shape. In this example, the non-laminar member 111 is depicted as a triangular shape, but it is clear that any shape can be used, such as rectangular, square, and the like. Non-laminar member 111 is comprised of members 108, 109, and 110. Member 108 is a thermally reflective film, similar to laminar member 105. Member 108 is permanently adhered to member 109, which is a laminar that is folded over to form a hinge. In the preferred embodiment, member 109 is a folded paper or polymer film. Member 110 is a space filling component configured to maintain an angle in member 109. For example, in the preferred embodiment, member 109 may be configured to maintain an angle approximately within a range of 5 degrees to 30 degrees. In some embodiments, even more preferable, member 109 may be configured to maintain an angle approximately within a range of 10 degrees to 20 degrees. In one embodiment, member 110 is a compressible elastic material that allows member 111 to compress to be flat for packaging, and expand at a predetermined angle during use. In various embodiments, member 110 is an elastomeric foam with adhesive provided on two surfaces.

    [0043] Member 111 is configured to be superior to laminar member 105 in its ability to provide greater thermal difference in comparison to first surface 106. In yet a further additional alternate embodiment, member 110 may be omitted from the target. In such an embodiment, the user may adjust member 109 to an optimal angle during use. For example, in the preferred embodiment, member 109 may be configured to maintain an angle approximately within a range of 5 degrees to 30 degrees. In some embodiments, even more preferable, member 109 may be configured to maintain an angle approximately within a range of 10 degrees to 20 degrees.

    [0044] Namely, in various embodiments, a laminar target is provided having a first and second surface bearing multiple pieces of film, each having first and second surfaces and various optical properties, enabling the user to calibrate a variety weapon sighting technologies, including night vision, thermal imaging, and aiming lasers, using a single device. The multiple pieces of film are covered with adhesive on the second surface and adhered to the first surface of the target such that they can be repositioned. The piece of film detectable with thermal weapon sight has a triangular cross-section causing its first surface to sit at an angle with respect to the first surface of the laminar target.

    [0045] In an example prepared according to the present teachings, a target was printed on Rite in the Rain paper having a standard letter size of 8½ inches wide by 11 inches long. The photo-luminescent member was cut from Jessup Manufacturing part 7560. The IR retro-reflective member was cut from IR.Tools film. The white light reflective member was cut from Orafol retroreflective film. The thermal film part member was cut from IR. Tools film CID-THRM-T4166. Each of the film members was adhered to the target using a glue dot between its release liner and the target.

    [0046] In another embodiment, a universal target 200 that can be used to zero a variety of sights, such as, for example, laser sights, night vision sights, and thermal imaging sights, is illustrated in FIG. 5. Target 200 is preferably a laminar member 201 having various optical properties that are divided into four quadrants 202, 203, 204, 205. Each quadrant is designed having a different optical property so that each quadrant is associated with one optical property. By way of example, quadrant 202 is configured similar to laminar member 102 having a photo-luminescent film that can be used with night vision sights to identify a point of aim without using infrared illumination by the shooter. Quadrant 203 is configured similar to laminar member 103 having a near infrared retro-reflective film that can be used with night vision sights to identify a point of aim and with infrared (IR) aiming laser to position aiming lasers. Quadrant 204 is configured similar to laminar member 104 having a white light retro-reflective film that can be used with visible aiming laser to position aiming lasers. Quadrant 205 is configured similar to laminar member 105 having a thermal reflecting film that can be used with thermal weapon sights to identify a point of aim.

    [0047] By way of example with respect to quadrant 202 and laminar member 102, in operation, the shooter uses a light source to charge laminar member 102, which may be provided, for example, at a center location or any other location within quadrant 202 at the point of aim. The point of aim is then easily visible within quadrant 202 by the shooter trying to zero his weapon. Those having skill in the art would recognize that laminar member 202 may be divided into quadrants having more or less than the four quadrants as depicted in FIG. 5.

    [0048] It will be apparent to those skilled in the art that various modifications and variations can be made to the system and method of the present disclosure without departing from the scope its teachings.

    [0049] Other embodiments of the disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the teachings disclosed herein. It is intended that the specification and examples be considered as exemplary only.