Point type sighting telescope
By designing a thin-bottomed dot sight, the problem of existing sights obstructing the mechanical aiming mechanism was solved, enabling the use of the mechanical aiming mechanism to aim at targets even when it fails, thus improving the shooting experience.
Patent Information
- Application Number
- CN202423000786.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-12-05
AI Technical Summary
Existing scopes, when installed, obstruct the mechanical sights of the pistol, affecting the user experience, especially when the mechanical sights are malfunctioning or damaged, making it impossible to aim at targets.
Design a dot sight with a bottom thickness of less than or equal to 2.5mm. It is connected to the gun body by fasteners. The light source and battery mechanism are set on the side wall to ensure that the iron sights are not obstructed after installation. The front sight can be observed through the rear sight and optical channel.
Even when the scope fails, it can still aim at the target through the mechanical sight, maintaining shooting accuracy while ensuring the stability of the installation and the user experience.
Smart Images

Figure CN223470571U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of sights, and in particular relates to a point-type sight. Background Art
[0002] Pistols are one of the best choices for shooters in outdoor hunting, shooting, etc. due to their light weight, portability, and ability to accurately hit targets within a certain distance. In order to improve shooting accuracy, most pistols on the market are equipped with mechanical aiming mechanisms to facilitate the shooter's aiming.
[0003] For example, the utility model patent with the publication number CN217403266U discloses a red dot sight that is easy to adjust the trajectory. On the one hand, the light channel of the scope is closed by a reflective lens and a transparent baffle to prevent rainwater from entering the light channel and avoid water accumulation affecting the propagation of light. On the other hand, the trajectory adjustment pin is set on the top of the scope to avoid the adjustment tool blocking the field of view when adjusting the trajectory, which is convenient for the shooter's operation. Another example is a closed sight disclosed by the utility model patent with the publication number CN214701937U. In order to make the sight less susceptible to the influence of moisture, impurities, etc. in the environment, the technical solution of this patent places the light source in a sealed environment and fills it with nitrogen to protect the light source, so that the sight has the characteristics of high stability. The invention patent application 117537662A discloses an optical sight, which can seal the inside of the optical sight and connect the optical sight to an instrument by using a connecting component to pass through an avoidance hole and be sealed and installed in the mounting hole, and by using a sealing component to be installed in the avoidance hole. Compared with the prior art, the optical sight is installed to the instrument, thereby reducing the difficulty of installing the optical sight and thus improving the installation efficiency of the optical sight. Moreover, by using a connecting component and a sealing component to seal the inside of the optical sight, it is difficult for debris to enter between the two lenses of the optical sight, thereby improving the cleanliness of the lenses of the optical sight and thus improving the user experience of the optical sight.
[0004] However, most existing scopes are installed between the rear sight and the front sight of the mechanical aiming structure, and the height of the scope base is higher than the height of the center of the rear sight and the center of the front sight, which will block part or even all of the mechanical aiming mechanism. When the scope fails or is damaged and cannot be used, the shooter cannot use the mechanical aiming mechanism on the pistol to aim at the target, which seriously affects the shooter's user experience. Utility Model Content
[0005] The purpose of the utility model is to provide a dot sight, aiming to solve the technical problem in the prior art that the sight will block the mechanical aiming mechanism of the pistol after installation, affecting the user experience.
[0006] The utility model discloses a kind of point sighting telescope, including mirror body, first lens, light source mechanism and battery mechanism, the mirror body has bottom and side wall, the bottom and the side wall are enclosed into optical channel, the first lens is arranged in the optical channel, the light source mechanism is set on the side wall, the light source mechanism is used to emit light to the first lens, to provide sighting reference for user, the battery mechanism is set on the side wall, for electrically connected with the light source mechanism to power supply to the light source mechanism, the bottom of the mirror body is connected with gun body by fastener, the thickness of the bottom is less than or equal to 2.5mm, after the mirror body is installed, user can observe aiming dot through the optical channel and the light door.
[0007] In an alternative embodiment, a connecting plate is provided between the bottom of the mirror body and the gun body, the connecting plate is connected to the gun body by fastener, and the bottom of the mirror body is connected to the connecting plate and the gun body by fastener.
[0008] In an alternative embodiment, the fastener is fixed by fastening tool, and an avoiding structure is provided on the side wall for avoiding the fastening tool.
[0009] In an alternative embodiment, the side wall includes a top surface portion and a side surface portion, the top surface portion is opposite to and spaced apart from the bottom, and the side surface portion is connected between the top surface portion and the bottom, and the avoiding structure includes a first avoiding hole provided on the top surface portion, and the position of the first avoiding hole corresponds to the position of the fastener.
[0010] In an alternative embodiment, the avoiding structure further includes a second avoiding hole, and the second avoiding hole is provided on the side surface portion of the side wall.
[0011] In an alternative embodiment, a plugging member is further provided at the first avoiding hole, and the plugging member is used to plug the first avoiding hole when the mirror body is working.
[0012] In an alternative embodiment, a drain hole is provided on the bottom, and the drain hole is used to drain water accumulated in the optical channel to the outside of the mirror body.
[0013] In an alternative embodiment, the side wall includes a top surface portion and a side surface portion, the top surface portion is opposite to and spaced apart from the bottom, and the side surface portion is connected between the top surface portion and the bottom, and the avoiding structure includes a second avoiding hole provided on the side surface portion, and the position of the second avoiding hole matches the position of the fastener.
[0014] In an alternative embodiment, the light source mechanism comprises a light source, a mounting seat, a ballistic adjustment mechanism, and a windage adjustment mechanism, the mounting seat is movably arranged on the scope body, the light source is arranged on the mounting seat, the ballistic adjustment mechanism is arranged on the scope body, the ballistic adjustment mechanism is used to adjust the position of the mounting seat in a first direction, the windage adjustment mechanism is arranged on the scope body, the windage adjustment mechanism is used to adjust the position of the mounting seat in a second direction, and the first direction and the second direction are arranged at an included angle.
[0015] In an alternative embodiment, the ballistic adjustment mechanism comprises a ballistic slider, a ballistic driving part, and a first return-to-center group, the ballistic slider is slidingly arranged on the scope body, at least part of the ballistic slider abuts the mounting seat, and the ballistic driving part is arranged on the scope body, the ballistic driving part is used to drive the ballistic slider to move in the first direction, the first return-to-center group is arranged between the scope body and the mounting seat, and the first return-to-center group is used to apply a force to the mounting seat towards the ballistic slider to keep the mounting seat and the ballistic slider in abutment.
[0016] In an alternative embodiment, the ballistic driving part comprises a ballistic adjustment pin, the ballistic adjustment pin is rotationally arranged on the scope body, the axis of the ballistic adjustment pin is arranged in the first direction, the ballistic adjustment pin has a degree of freedom of rotation around its own axis relative to the scope body, and at least part of the ballistic adjustment pin is threadedly connected with at least part of the ballistic slider.
[0017] In an alternative embodiment, the windage adjustment mechanism comprises a windage slider, a windage driving part, and a second return-to-center group, the windage slider is slidingly arranged on the scope body, the windage driving part is arranged on the scope body, the windage driving part is used to drive the windage slider to move in the second direction, the second return-to-center group is arranged between the scope body and the mounting seat, the windage slider and the second return-to-center group respectively abut the mounting seat on both sides in the second direction, and the second return-to-center group is used to apply a force to the mounting seat towards the windage slider.
[0018] In an alternative embodiment, the windage driving part comprises a windage adjustment pin, the windage adjustment pin is rotationally arranged on the scope body, the axis of the windage adjustment pin is arranged in the second direction, the windage adjustment pin has a degree of freedom of rotation around its own axis relative to the scope body, and at least part of the windage adjustment pin is threadedly connected with at least part of the windage slider.
[0019] In an alternative embodiment, the point sight further comprises a second lens, the second lens is arranged at an interval with the first lens in the length direction of the optical channel.
[0020] In an optional embodiment, the periphery of the first lens is sealingly connected to the lens body, the periphery of the second lens is also sealingly connected to the lens body, and the first lens, the second lens and the inner wall of the optical channel at least partially surround a sealed cavity.
[0021] In an optional embodiment, the connecting base plate has a threaded hole for cooperating with the fastener, the threaded hole is located on the side of the second lens away from the first lens and is spaced apart from the second lens, and the minimum distance between the inner wall of the threaded hole and the side of the second lens away from the first lens is 2mm to 5mm.
[0022] In an optional embodiment, the side wall is further provided with a power receiving assembly, the power receiving assembly is electrically connected to the battery mechanism, and the power receiving assembly is used to receive the electric energy output by the wireless power supply end to charge the battery mechanism.
[0023] In an optional embodiment, the connecting base plate is further provided with an engagement structure for positioning, and the engagement structure is used to position the mounting position of the lens body on the connecting base plate.
[0024] In an optional embodiment,
[0025] The engagement structure includes an engagement column, and the bottom of the lens body is provided with an engagement hole for cooperating with the engagement column, the number of the engagement columns is at least two, the number of the engagement holes matches the number of the engagement columns, and the connecting base plate is provided with at least two threaded holes for connecting the lens body;
[0026] Or, the engagement structure includes an engagement column, and the bottom of the lens body is provided with an engagement hole for cooperating with the engagement column, the number of the engagement columns is at least two, the number of the engagement holes matches the number of the engagement columns, and the connecting base plate is provided with one threaded hole for connecting the lens body;
[0027] Or, the engagement structure includes an engagement block, and the bottom of the lens body is provided with an engagement groove for cooperating with the engagement block, and the connecting base plate is provided with at least two threaded holes for connecting the lens body;
[0028] Or, the engagement structure includes an engagement block, and the bottom of the lens body is provided with an engagement groove for cooperating with the engagement block, and the connecting base plate is provided with one threaded hole for connecting the lens body.
[0029] The present invention provides the following technical advantages over the prior art: the bottom and side walls of the scope body enclose an optical channel, and the first lens is disposed within the optical channel. A light source mechanism and a battery mechanism are also disposed on the side walls of the scope body. The battery mechanism provides electrical energy to the light source mechanism, enabling the light source mechanism to emit light that illuminates the first lens, allowing the first lens to process and reflect the light, forming a specific aiming mark for easier aiming. Furthermore, the bottom of the scope body is connected to the gun body via a fastener, and the thickness of the bottom is less than or equal to 2.5 mm. Therefore, after the scope body is installed, the user can observe the front sight through the rear sight and the optical channel. Compared to existing scopes, during installation, by connecting the bottom of the scope body to the gun body or connecting base plate, and locating the light source mechanism and battery mechanism on the side walls of the scope body other than the bottom, the bottom thickness can be reduced. The bottom thickness is less than or equal to 2.5 mm, which is lower than the height of the mechanical aiming channel on the firearm. This prevents the bottom thickness of the scope body from being higher than the center of the rear sight and the center of the front sight after the scope is installed, thus preventing the bottom of the scope from obstructing the mechanical aiming mechanism. After the scope body is installed, the user can see the front sight through the rear sight and the optical channel. Therefore, if the scope fails, the shooter can still aim at the target through the mechanical aiming mechanism on the gun body, maintaining the accuracy of the pistol even when the scope fails, while also ensuring that the scope is securely installed. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments of the present invention or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0031] Figure 1 It is a structural diagram of a pistol in the prior art;
[0032] Figure 2 It is a schematic diagram of the structure of a scope installed on a pistol in the prior art;
[0033] Figure 3 It is a side view structural diagram of a sight mounted on a pistol in the prior art;
[0034] Figure 4 This is a schematic structural diagram of the installation state of the point-type sight provided by an embodiment of the utility model;
[0035] Figure 5 This is a schematic diagram of the structure of a point sight provided by an embodiment of the utility model. Figure 1 ;
[0036] Figure 6 is a structure schematic of the point type sighting telescope provided by the utility model one embodiment Figure 2 ;
[0037] Figure 7 is an explosion structure schematic of the point type sighting telescope provided by the utility model one embodiment
[0038] Figure 8 is Figure 7 the enlarged structure schematic view of A in the figure
[0039] Figure 9 is a side view structure schematic of the point type sighting telescope provided by the utility model one embodiment Figure 1 ;
[0040] Figure 10 is Figure 9 the cross section structure schematic view along B-B line in the figure
[0041] Figure 11 is a side view structure schematic of the point type sighting telescope provided by the utility model one embodiment Figure 2 ;
[0042] Figure 12 is Figure 11 the cross section structure schematic view along C-C line in the figure
[0043] Figure 13 is a structure schematic of the point type sighting telescope provided by the utility model another embodiment
[0044] Figure 14 is an explosion structure schematic of the point type sighting telescope provided by the utility model another embodiment Figure 1 ;
[0045] Figure 15 is an explosion structure schematic of the point type sighting telescope provided by the utility model another embodiment Figure 2 ;
[0046] Figure 16 is a structure schematic of the point type sighting telescope provided by the utility model still another embodiment
[0047] Figure 17 is an explosion structure schematic of the point type sighting telescope provided by the utility model still another embodiment
[0048] Figure 18 is a structure schematic of the point type sighting telescope provided by the utility model still another embodiment
[0049] Figure 19 is an explosion structure schematic of the point type sighting telescope provided by the utility model still another embodiment Figure 1 ;
[0050] Figure 20 This is a schematic diagram of the explosion structure of a point-type sight provided by another embodiment of the utility model. Figure 2 ;
[0051] Figure 21 This is a schematic diagram of the explosion structure of a point-type sight provided by another embodiment of the utility model. Figure 3 ;
[0052] Figure 22 This is a structural diagram of a point-type sight provided by another embodiment of the present invention;
[0053] Figure 23 This is a schematic structural diagram of a connecting base plate used in one embodiment of the present utility model;
[0054] Figure 24 This is a schematic structural diagram of a connecting base plate used in another embodiment of the present invention;
[0055] Figure 25 This is a schematic structural diagram of a connecting base plate used in another embodiment of the present invention;
[0056] Figure 26 It is a structural schematic diagram of a connecting base plate adopted in yet another embodiment of the present utility model.
[0057] Description of reference numerals:
[0058] 100, scope; 200, pistol; 300, front sight; 400, rear sight; 500, fastening tool; 600, mechanical aiming channel;
[0059] 1. Mirror body; 11. Bottom; 12. Side wall; 121. Top surface; 122. Side surface; 13. Optical channel; 14. Fixing structure; 141. Locking hole; 15. Avoidance structure; 151. First avoidance hole; 152. Second avoidance hole; 16. Drain hole; 17. Engagement hole; 2. First lens; 3. Light source mechanism; 31. Light source; 32. Mounting seat; 33. Trajectory adjustment mechanism; 331. Trajectory slider; 332. Trajectory drive unit; 3321. Trajectory adjustment pin; 333. First return group; 3331. First spring; 3 332. First return member; 334. Clamping ring; 34. Windage adjustment mechanism; 341. Windage sliding member; 342. Windage drive unit; 3421. Windage adjustment pin; 3422. Windage adjustment pin sleeve; 343. Second return group; 3431. Second spring; 3432. Second return member; 3433. Return fixing member; 4. Battery mechanism; 5. Sealing member; 6. Second lens; 7. Power receiving assembly; 8. Button assembly; 9. Connecting base plate; 91. Engaging column; 92. Engaging block; 93. Threaded hole; 10. Sealing ring; 101. Fastener. DETAILED DESCRIPTION
[0060] The embodiments of the present application are described below in detail, examples of which are shown in the drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by reference to the drawings are exemplary, and are intended to explain the present application, and cannot be understood as a limitation of the present application.
[0061] In the description of the present application, it is understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements indicated must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0062] In addition, the terms "first", "second" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.
[0063] In the present application, unless otherwise specifically defined and limited, the terms "mounting", "connection", "connection", "fixing" and the like should be broadly understood, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship of two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0064] Please refer to Figure 1 , the existing gun, especially the pistol, can use the sight and the front sight on the gun to cooperate for aiming when in use. In order to improve the accuracy of shooting, a sighting scope can be installed on the gun to cooperate with aiming. Please refer to Figure 2 and Figure 3The existing sighting scope has the problem of large thickness of the bottom in order to ensure the stability of installation. Since the sighting scope is generally installed at the position between the sighting door and the aiming point, when the height of the bottom of the sighting scope is higher than the height of the center of the sighting door and the center of the aiming point, the sighting scope will block part or even all of the mechanical sighting mechanism of the firearm. When the sighting scope fails, is damaged or cannot be used, the firearm cannot be aimed by the mechanical sighting mechanism, which seriously affects the use experience of the firearm. In order to solve the problem that the firearm cannot be aimed when the sighting scope fails, the application provides a point-type sighting scope, and the specific scheme is as follows:
[0065] In order to make the purpose, technical scheme and advantages of the utility model more clear, the utility model is further described in detail below in combination with the drawings and examples.
[0066] Please refer to Figures 4 to 12 In the embodiment of the utility model, a point-type sighting scope is provided, which comprises a mirror body 1, a first lens 2, a light source mechanism 3 and a battery mechanism 4. The mirror body 1 has a bottom 11 and a side wall 12. The bottom 11 and the side wall 12 enclose an optical channel 13 which is open at both ends. The first lens 2 is arranged in the optical channel 13. The light source mechanism 3 is arranged on the side wall 12 and is used to emit light to the first lens 2 to provide a sighting reference for the user. The battery mechanism 4 is arranged on the side wall 12 and is used to be electrically connected with the light source mechanism 3 to supply power to the light source mechanism 3. The bottom 11 of the mirror body 1 is connected with the gun body by a fastener. The thickness of the bottom 11 of the mirror body 1 is less than or equal to 2.5 mm. After the mirror body 1 is installed, the user can observe the aiming point through the sighting door and the optical channel 13.
[0067] Specifically, the mirror body 1 refers to a shell-shaped component with a certain volume. The mirror body 1 as a whole can be an integrally formed structure, for example, formed by casting, die casting or machining, etc. The mirror body 1 can also be a split structure, and multiple components are combined by welding, fasteners or clamping, etc. The optical channel 13 refers to a channel structure with a certain length. In order to facilitate the propagation of light, the optical channel 13 can be arranged in a straight line direction. The bottom 11 and the side wall 12 both refer to the structure enclosing the optical channel 13. The bottom 11 and the side wall 12 can be plate-shaped structures with a certain thickness. In order to facilitate connection with the gun body, the bottom 11 can be a flat plate structure. The side wall 12 refers to other parts of the mirror body 1 except the bottom 11. The side wall 12 can be composed of multiple parts, for example, when the cross section of the mirror body 1 is rectangular, the bottom 11 refers to one side wall of the mirror body 1 adjacent to the gun body or the connecting plate 9. At this time, the side wall 12 refers to the sum of the other three side walls except the bottom 11, and the entire mirror body is enclosed by the side wall 12 and the bottom 11.
[0068] The first lens 2 refers to the structure of the mirror body 1 coated with one or more layers of light splitting film on the concave surface. This design enables the first lens 2 to process and reflect light, form a specific aiming mark to facilitate aiming. The first lens 2 can be a light splitting mirror. The light source mechanism 3 refers to a component that can emit light and adjust the starting position of the light. The light source mechanism 3 can emit light to the first lens 2. The battery mechanism 4 refers to a component that can store and output electrical energy. The battery mechanism 4 can provide electrical energy for the operation of the light source mechanism 3. When the battery mechanism 4 is installed, a groove structure can be provided on the side wall 12. By arranging the battery mechanism 4 in the groove structure, the installation of the battery mechanism 4 can be more convenient and secure.
[0069] The bottom 11 of the mirror body 1 and the side wall 12 form an optical channel 13, and the first lens 2 is arranged in the optical channel 13. The light source mechanism 3 and the battery mechanism 4 are also arranged on the side wall 12 of the mirror body 1. The battery mechanism 4 provides electrical energy for the light source mechanism 3, so that the light source mechanism 3 can emit light to the first lens 2, enabling the first lens 2 to process and reflect light, forming a specific aiming mark to facilitate aiming. The bottom 11 of the mirror body 1 is connected to the gun body through a fastener, and the thickness of the bottom 11 is less than or equal to 2.5 mm. After the mirror body 1 is installed, the user can observe the aiming point through the sighting gate and the optical channel 13. Compared with the prior art, the bottom 11 of the mirror body 1 is connected to the gun body or the connecting plate 9 during installation, and the light source mechanism 3 and the battery mechanism 4 are arranged on the side wall 12 of the mirror body 1 except the bottom 11. Therefore, the thickness of the bottom 11 can be smaller, and the thickness of the bottom 11 is less than or equal to 2.5 mm, which is lower than the height of the mechanical aiming channel on the gun. This avoids the thickness of the bottom 11 of the mirror body 1 being higher than the height of the center of the sighting gate and the center of the aiming point after the mirror body is installed, avoiding the bottom of the mirror body from blocking the mechanical aiming mechanism. After the mirror body is installed, the user can observe the aiming point through the sighting gate and the optical channel. When the sighting scope fails, the shooter can still aim at the target through the mechanical aiming mechanism on the gun body, so that the gun can still maintain accuracy when the sighting scope fails. The installation of the sighting scope is also firm.
[0070] It should be noted that the mirror body 1 in this embodiment adopts the above structure. When the bottom 11 of the mirror body 1 is connected to the connecting plate 9, the thickness of the bottom 11 of the mirror body 1 is less than or equal to 2.5 mm. This avoids the sighting scope from blocking the mechanical aiming mechanism of the gun after installation, improving the shooting experience.
[0071] In an optional embodiment, please refer to Figures 5 to 7The bottom 11 has a fixing structure 14 for fasteners to pass through the bottom 11, and the fasteners can be completely accommodated inside the fixing structure 14. Specifically, the fixing structure 14 can be locking through holes 141 arranged through the bottom 11, and the number of the locking through holes 141 can be multiple. When the scope 1 is installed, the locking through holes 141 can be passed through by using fasteners such as locking screws, and then the fasteners are screwed with the gun body or the connecting plate 9, and the gun body or the connecting plate 9 can be provided with threaded holes for cooperating with the fasteners, so as to realize the fixing and installation of the scope 1. Through the arrangement of the fixing structure 14, the installation and fixing of the scope 1 can be more firm and reliable under the premise of ensuring that the bottom 11 has a small thickness, and the risk of the scope falling off the gun body can be avoided.
[0072] In one embodiment, referring to Figures 3 to 5 The fasteners can be countersunk screws, and the locking through holes 141 can include a through hole part for accommodating a main body part of the countersunk screw, and a recess part for accommodating a head part of the countersunk screw, so that the head part of the countersunk screw is completely recessed into the locking through hole 141 after installation, and the head part of the countersunk screw does not protrude from the bottom 11 to affect the sighting.
[0073] When the scope 1 is installed or disassembled, a fastening tool such as a wrench or a screwdriver is inserted into the optical channel 13 through an opening of the optical channel 13, so that the tightening and loosening of the fasteners are more convenient.
[0074] In one embodiment, referring to 4 to Figure 9A connecting bottom plate 9 is arranged between the bottom 11 of the scope 1 and the gun body, the connecting bottom plate 9 is connected to the gun body by fasteners, and the bottom 11 of the scope 1 is connected to the connecting bottom plate 9 and the gun body by fasteners. Specifically, the connecting bottom plate 9 refers to a plate structure with a certain area, and the function of the connecting bottom plate 9 is to install the connecting bottom plate 9 on the gun body when the mounting position of the gun body is not flat, and then install the scope 1 on the connecting bottom plate 9. The connecting bottom plate 9 can be installed on the gun body by means of fasteners, for example, locking through holes for fasteners can be provided on the connecting bottom plate 9, and when the connecting bottom plate 9 is installed, the fasteners can be inserted into the locking through holes, and then screwed with the gun body to realize the installation and fixation of the connecting bottom plate 9 on the gun body. In addition, screw holes 93 for connecting the scope 1 can be provided on the connecting bottom plate 9, and the number of screw holes 93 can be one or more, so that the scope 1 can be connected to the connecting bottom plate 9 by fasteners. When the connecting bottom plate 9 is arranged between the bottom 11 of the scope 1 and the gun body, the thickness of the bottom is 1mm to 2.5mm, which can ensure that when the connecting bottom plate 9 exists, the height of the bottom of the scope 1 is still lower than the height of the mechanical sighting channel on the firearm after installation, and the user can observe the aiming point through the sighting door and the optical channel 13, avoiding the bottom of the scope from blocking the mechanical sighting mechanism on the firearm.
[0075] In one embodiment, referring to Figures 5 to 7 , the fasteners are fixed by a fastening tool, and the side wall 12 is provided with an avoiding structure 15 for avoiding the fastening tool. Specifically, the avoiding structure 15 can be a structure provided on the side wall 12 for passing through the side wall 12 into the optical channel 13, and the avoiding structure 15 can be a hole structure or a slotted structure. When the scope 1 is installed, the fasteners such as locking screws can be screwed with the gun body or the connecting bottom plate 9 through the locking through holes 141, and the gun body or the connecting bottom plate 9 can be provided with screw holes for cooperating with the fasteners, so as to realize the fixation and installation of the scope 1 by the fasteners. When the scope 1 is installed or disassembled, the fastening tool such as wrench or screwdriver can be inserted into the optical channel 13 through the avoiding structure 15, so that the fastening tool can contact the fasteners, thereby making the tightening and loosening of the fasteners more convenient and fast.
[0076] In one embodiment, referring to Figure 5 and Figure 7 , the side wall 12 includes a top portion 121 and a side portion 122, the top portion 121 is opposite to and spaced apart from the bottom 11, and the side portion 122 is connected between the top portion 121 and the bottom 11, and the avoiding structure 15 includes a first avoiding hole 151 provided on the top portion 121, and the position of the first avoiding hole 151 corresponds to the position of the fastener on the bottom 11.
[0077] Specifically, the top portion 121 and the side portion 122 each refer to a plate-shaped structure with a certain area, and the top portion 121, the side portion 122, and the bottom portion 11 can be a split structure, for example, connected by welding, fastener connection, or clamping, etc. The top portion 121, the side portion 122, and the bottom portion 11 can be an integral structure, which can be made by stamping, casting, or machining, etc. The first avoiding hole 151 refers to a hole structure arranged on the top portion 121, and the shape of the first avoiding hole 151 can be a round hole, a square hole, or an oblong hole, etc. The number of the first avoiding hole 151 can be multiple, and the number of the first avoiding hole 151 can be matched with the number of the locking through hole 141. By dividing the side wall 12 into the top portion 121 and the side portion 122, the top portion 121 is arranged opposite and spaced apart from the bottom portion 11, and the side portion 122 is connected between the top portion 121 and the bottom portion 11. The number of the side portion 122 can be two, and the bottom portion 11, the top portion 121, and the two side portions 122 can surround the rectangular optical channel 13.
[0078] By arranging the first avoiding hole 151 on the top portion 121 arranged opposite to the bottom portion 11, and the position of the first avoiding hole 151 corresponds to the position of the fixing structure 14, for example, when the fixing structure 14 adopts the locking through hole 141, the axis of the first avoiding hole 151 can be on the same straight line with the axis of the locking through hole 141, so that the tightening tool such as a wrench or a screwdriver can be moved along the straight line through the first avoiding hole 151 to contact the fastener, making the overall installation of the mirror body 1 more convenient and fast.
[0079] Based on the above-mentioned feature of the first avoiding hole 151, please refer to Figures 13 to 15 The avoiding structure 15 further includes a second avoiding hole 152, and the second avoiding hole 152 is arranged on the side portion 122 of the side wall 12. Specifically, the second avoiding hole 152 refers to a hole structure penetrating through the side portion 122, and the shape of the second avoiding hole 152 can be a round hole, a square hole, or an oblong hole, etc. Since the side portion 122 is adjacent to the bottom portion 11, the second avoiding hole 152 is arranged on the side portion 122. During the installation of the mirror body 1, the tightening tool such as a wrench or a screwdriver can be inserted into the optical channel 13 through the second avoiding hole 152 to contact the fastener, so that the tightening tool can move a short path to contact the fastener.
[0080] In one embodiment, please refer to Figures 13 to 15The first avoiding hole 151 is further provided with a blocking piece 5, which is used to block the first avoiding hole 151 when the scope 1 is working. Specifically, the blocking piece 5 refers to a sealing part with a certain volume, which can be made of rubber, polyurethane or plastic. Since the first avoiding hole 151 is arranged on the top surface portion 121 opposite to the bottom portion 11, the first avoiding hole 151 is mostly arranged towards the setting during the use of the firearm. Therefore, the blocking piece 5 is arranged at the first avoiding hole 151, which can block the first avoiding hole 151 to prevent the rain or other water from entering the optical channel 13 through the first avoiding hole 151, so that the optical channel 13 can always remain dry, and the use of the scope is safer.
[0081] In an optional embodiment, referring to Figure 13 and Figure 15 , the top surface portion 121 of the side wall 12 is further provided with a containing groove, and the first avoiding hole 151 is arranged on the bottom surface of the containing groove. The blocking piece 5 can include a main body portion and a columnar portion, and when the blocking piece 5 is installed, the main body portion can be installed in the containing groove, and the columnar portion is inserted into the first avoiding hole 151. By arranging the containing groove on the top surface portion 121 and dividing the blocking piece 5 into the main body portion and the columnar portion, the contact area between the blocking piece 5 and the side wall 12 after installation can be increased, and the sealing performance of the blocking piece 5 after installation is improved.
[0082] In an embodiment, referring to Figures 5 to 7 , the bottom portion 11 is provided with a drainage hole 16, which is used to drain the accumulated water in the optical channel 13 to the outside of the scope 1. Specifically, the drainage hole 16 refers to a hole structure arranged on the bottom portion 11, and the shape of the drainage hole 16 can be circular, square or a combination of various shapes. During the normal use of the firearm, the bottom portion 11 is usually located at the bottom of the entire scope 1, and at this time, the drainage hole 16 is arranged on the bottom portion 11, so that when there is accumulated water in the optical channel 13, the accumulated water can be drained to the outside of the optical channel 13 through the drainage hole 16, thereby avoiding the influence of the accumulated water on the use of the scope.
[0083] In an embodiment, referring to Figure 15 , the side wall 12 includes a top surface portion 121 and a side surface portion 122, the top surface portion 121 is arranged opposite to and spaced apart from the bottom portion 11, and the side surface portion 122 is connected between the top surface portion 121 and the bottom portion 11. The avoiding structure 15 includes a second avoiding hole 152 arranged on the side surface portion 122, and the position of the second avoiding hole 152 matches the position of the fastener on the bottom portion 11.
[0084] Specifically, the top portion 121 and the side portion 122 both refer to a plate-shaped structure with a certain area, and the top portion 121, the side portion 122, and the bottom portion 11 can be a split structure, for example, connected by welding, fastener connection, or clamping, etc. The top portion 121, the side portion 122, and the bottom portion 11 can be an integral structure, which can be made by stamping, casting, or machining, etc. The second avoiding hole 152 refers to a hole structure penetrating through the side portion 122, and the shape of the second avoiding hole 152 can be a round hole, a square hole, or an oblong hole, etc. Since the side portion 122 is adjacent to the bottom portion 11, the second avoiding hole 152 is provided on the side portion 122. When the scope 1 is installed, a tightening tool such as a wrench or a screwdriver can be inserted into the optical channel 13 through the second avoiding hole 152 to contact the fastener, so that the tightening tool can contact the fastener by moving a relatively short path, thereby improving the efficiency of disassembling and installing the scope.
[0085] In one embodiment, referring to Figures 7 to 11 , the light source mechanism 3 includes a light emitting source 31, a mounting seat 32, a ballistic adjustment mechanism 33, and a windage adjustment mechanism 34. The mounting seat 32 is movably arranged on the scope 1, and the light emitting source 31 is arranged on the mounting seat 32. The ballistic adjustment mechanism 33 is arranged on the scope 1 and is used to adjust the position of the mounting seat 32 in the first direction. The windage adjustment mechanism 34 is arranged on the scope 1 and is used to adjust the position of the mounting seat 32 in the second direction, and the first direction and the second direction are arranged at an included angle. Specifically, the light emitting source 31 refers to a component that can convert electrical energy into light energy, and the light emitting source 31 can be an LED (Light-Emitting Diode) lamp bead, etc. The mounting seat 32 refers to a component with a certain volume, and the mounting seat 32 can be block-shaped, plate-shaped, or column-shaped, etc. The mounting seat 32 can also be composed of multiple shapes. The ballistic adjustment mechanism 33 and the windage adjustment mechanism 34 both refer to components that adjust the position of an object. The position of the mounting seat 32 in the first direction can be adjusted by the ballistic adjustment mechanism 33 to adjust the position of the light source, so that the aiming mark can be adjusted according to the ballistic trajectory. The position of the mounting seat 32 in the second direction can be adjusted by the windage adjustment mechanism 34 to adjust the position of the light source, so that the aiming mark can be adjusted according to the wind speed. The first direction can be in the vertical direction, and the second direction can be in the horizontal direction. When the light source mechanism 3 is used, light emitted by the light emitting source 31 can be irradiated onto the first lens 2, and the first lens 2 can process and reflect the light to form a specific aiming mark for aiming. At the same time, the position of the mounting seat 32 and the light emitting source 31 can be adjusted by the ballistic adjustment mechanism 33 and the windage adjustment mechanism 34, thereby adjusting the position of the aiming mark on the first lens 2.
[0086] It should be noted that in order to make the use of the light source mechanism 3 more convenient, the mounting seat 32 is generally movably arranged on the top surface portion 121 of the side wall 12, and the aerodynamic adjustment mechanism 33 can also be arranged on the top surface portion 121 of the side wall 12, and the wind deflection adjustment mechanism 34 can be arranged on the top surface portion 121 of the side wall 12, and the wind deflection adjustment mechanism 34 can also be arranged on the top surface portion 121 of the side wall 12 close to the light source 31 and the mounting seat 32, which will not be described here.
[0087] In an optional embodiment, referring to Figures 7 to 11 , the mounting seat 32 can be slidably arranged on the side wall 12 of the mirror body 1, and a containing space for sliding of the mounting seat 32 can be arranged on the side wall 12 of the mirror body 1. And a connecting channel for light passing between the containing space and the optical channel 13 is also arranged. This can make the installation of the light source mechanism 3 more secure and reliable, and also make it more convenient for the light emitted by the light source mechanism 3 to irradiate the first lens 2.
[0088] In an embodiment, referring to Figure 8 and Figure 10 , the aerodynamic adjustment mechanism 33 includes an aerodynamic slider 331, an aerodynamic driving part 332, and a first return spring set 333. The aerodynamic slider 331 is slidably arranged on the mirror body 1, at least a part of the aerodynamic slider 331 abuts against the mounting seat 32, the aerodynamic driving part 332 is arranged on the mirror body 1, and the aerodynamic driving part 332 is used to drive the aerodynamic slider 331 to move in a first direction, the first return spring set 333 is arranged between the mirror body 1 and the mounting seat 32, and the first return spring set 333 is used to apply a force to the mounting seat 32 towards the aerodynamic slider 331, so that the mounting seat 32 and the aerodynamic slider 331 remain in abutment.
[0089] Specifically, the aerodynamic slider 331 refers to a component with a certain volume, which can be block-shaped, plate-shaped or strip-shaped, or a combination of multiple shapes. The aerodynamic driving part 332 refers to a component or assembly that can adjust the position of an object, which can be a screw structure, a lever structure or a push block, etc. The first return spring set 333 refers to a component or assembly with a certain elasticity, which can be a spring, a rubber piece or a spring sheet, etc., or a structure composed of a rigid component and a spring, a rubber piece or a spring sheet, etc. By abutting at least a part of the aerodynamic slider 331 against the mounting seat 32, and arranging the first return spring set 333 between the mirror body 1 and the mounting seat 32, and using the first return spring set 333 to apply a force to the mounting seat 32 towards the aerodynamic slider 331, so that the mounting seat 32 and the aerodynamic slider 331 remain in abutment, the mounting seat 32 and the aerodynamic slider 331 can be prevented from disengaging.
[0090] When the position of the mounting seat 32 needs to be adjusted, the elastic sliding block 331 can be driven to move in the first direction by the elastic driving part 332. Since at least part of the elastic sliding block 331 abuts against the mounting seat 32, the mounting seat 32 will also move with the elastic sliding block 331 at this time. In addition, the first back-up group 333 is further arranged between the mirror body 1 and the mounting seat 32. By applying a force to the mounting seat 32 towards the elastic sliding block 331 through the first back-up group 333, the mounting seat 32 can still abut against the elastic sliding block 331 during movement, so that the position adjustment of the mounting seat 32 in the first direction is more convenient.
[0091] In one embodiment, referring to Figure 8 With Figure 10 , the elastic driving part 332 comprises an elastic adjusting pin 3321, which is rotationally arranged on the mirror body 1. The axis of the elastic adjusting pin 3321 is arranged in the first direction, and the elastic adjusting pin 3321 has a degree of freedom of rotation about its own axis relative to the mirror body 1. At least part of the elastic adjusting pin 3321 is threadedly connected with at least part of the elastic sliding block 331. Specifically, the elastic adjusting pin 3321 refers to a component with a certain length, which can be columnar or rod-shaped, etc. In order to facilitate the rotation of the elastic adjusting pin 3321, the cross section of the elastic adjusting pin 3321 can be circular. The elastic adjusting pin 3321 can be threadedly connected with the elastic sliding block 331 by being provided with a receiving hole thereon and inserting at least part of the elastic sliding block 331 into the receiving hole, and by being provided with threads on the outer wall of the part of the elastic sliding block 331 inserted into the receiving hole and on the inner wall of the receiving hole. Alternatively, the elastic adjusting pin 3321 can be provided with a receiving through hole, and the elastic adjusting pin 3321 is arranged in the receiving through hole. The elastic adjusting pin 3321 and the receiving through hole are threadedly connected by being provided with threads on the outer wall of the elastic adjusting pin 3321 and on the inner wall of the receiving through hole. The elastic adjusting pin 3321 has a degree of freedom of rotation about its own axis relative to the mirror body 1, which can be realized by arranging a clasp 334 between the elastic adjusting pin 3321 and the mirror body 1 to limit the movement of the elastic adjusting pin 3321 in the axial direction.
[0092] When the position of the elastic sliding block 331 needs to be adjusted, the elastic adjusting pin 3321 only needs to be rotated about its own axis to drive the elastic sliding block 331 to move in the axial direction of the elastic adjusting pin 3321, so that the position adjustment of the elastic sliding block 331 is more convenient, and the position adjustment of the mounting seat 32 and the light source 31 is more convenient.
[0093] It should be noted that the side wall 12 is provided with a mounting space for mounting the elastic adjusting pin 3321, and at least part of the elastic adjusting pin 3321 can be located outside the mirror body 1 to facilitate the rotation of the elastic adjusting pin 3321.
[0094] In one embodiment, please refer to Figure 8 With Figure 10 , the first back-up group 333 includes a first spring 3331 and a first back-up piece 3332, and the mounting seat 32 is further provided with a first back-up hole for mounting the first back-up piece 3332, the first end of the first back-up piece 3332 is movably arranged in the first back-up hole, and the first spring 3331 is arranged between the first end of the first back-up piece 3332 and the bottom surface of the first back-up hole, and the second end of the first back-up piece 3332 is in sliding abutment with the mirror body 1. The first back-up group 333 can be kept in abutment with the mirror body 1 without affecting the sliding of the mounting seat 32 in the second direction, making the first back-up group 333 more convenient to use, and the arrangement of the first back-up hole can also make the installation of the first back-up group 333 more stable.
[0095] In an optional embodiment, please refer to Figure 8 With Figure 10 , a sealing ring 10 can also be arranged between the ballistic adjustment pin 3321 and the mirror body 1, the sealing ring 10 is sleeved on the circumference of the ballistic adjustment pin 3321, and when the clamping ring 334 exists outside the ballistic adjustment pin 3321, the sealing ring 10 can be located outside the clamping ring 334. The arrangement of the sealing ring 10 can keep the sealing of the installation of the ballistic adjustment pin 3321 while the ballistic adjustment pin 3321 is rotating, avoid the entry of sundries into the installation space through the gap between the ballistic adjustment pin 3321 and the mirror body 1, and make the use of the entire sighting scope more secure.
[0096] In one embodiment, please refer to Figure 8 With Figure 12 , the windage adjustment mechanism 34 includes a windage sliding piece 341, a windage driving part 342, and a second back-up group 343, the windage sliding piece 341 is slidingly arranged on the mirror body 1, the windage driving part 342 is arranged on the mirror body 1, the windage driving part 342 is used to drive the windage sliding piece 341 to move in the second direction, the second back-up group 343 is arranged between the mirror body 1 and the mounting seat 32, the windage sliding piece 341 and the second back-up group 343 are respectively abutted on both sides of the mounting seat 32 in the second direction, and the second back-up group 343 is used to apply a force to the mounting seat 32 towards the windage sliding piece 341.
[0097] Specifically, the windage slide 341 refers to a component with a certain volume, which can be block-shaped, column-shaped or strip-shaped, and can also be a combination of multiple shapes. The windage driving part 342 refers to a component or assembly that can adjust the position of an object, which can be a screw structure, a lever structure or a push block, etc. The second backstop group 343 refers to a component or assembly with a certain elasticity, which can be a spring, a rubber piece or a spring sheet, etc., and can also be a structure composed of a rigid component combined with a spring, a rubber piece or a spring sheet, etc. By abutting the windage slide 341 and the second backstop group 343 on both sides of the mounting seat 32 along the second direction respectively, and by driving the windage slide 341 to move along the second direction by the windage driving part 342, and by the second backstop group 343 applying a force to the mounting seat 32 towards the windage slide 341, so that the mounting seat 32 and the windage slide 341 can be kept in abutment. When the position of the mounting seat 32 needs to be adjusted along the second direction, the windage slide 341 can be driven to move along the second direction by the windage driving part 342, and since the windage slide 341 abuts on the side surface of the mounting seat 32, the mounting seat 32 will also move with the windage slide 341 at this time. At the same time, the second backstop group 343 can apply a force to the mounting seat 32 on the other side of the mounting seat 32 towards the windage slide 341, so that the mounting seat 32 can still be in abutment with the windage slide 341 during movement along the second direction, thereby making the position adjustment of the mounting seat 32 along the second direction more convenient, and further making the position adjustment of the light emitting source 31 more convenient.
[0098] In an optional embodiment, please refer to Figure 8 With Figure 12 The ballistic slide 331 is provided with two first contact surfaces arranged at an angle between them and parallel to the second direction. One of the two first contact surfaces is perpendicular to the first direction or arranged at an angle. The mounting seat 32 is also provided with two second contact surfaces for abutting with the two first contact surfaces respectively, and the positions and angles of the two second contact surfaces match those of the first contact surfaces. By providing the first contact surfaces on the ballistic slide 331 and the second contact surfaces on the mounting seat 32, it can be ensured that the movement of the mounting seat 32 along the first direction by the ballistic slide 331 will not affect the sliding of the mounting seat 32 along the second direction by the windage driving part 342.
[0099] In an embodiment, please refer to Figure 8 With Figure 12The wind deflection driving part 342 comprises a wind deflection adjusting peg 3421, the wind deflection adjusting peg 3421 is rotationally arranged on the mirror body 1, the axis of the wind deflection adjusting peg 3421 is arranged along the second direction, the wind deflection adjusting peg 3421 has the freedom of rotation around its own axis relative to the mirror body 1, and at least part of the wind deflection adjusting peg 3421 is threadedly connected with at least part of the wind deflection sliding part 341. Specifically, the wind deflection adjusting peg 3421 refers to a component with a certain length, and the wind deflection adjusting peg 3421 can be columnar or rod-shaped, etc. In order to facilitate the rotation of the wind deflection adjusting peg 3421, the cross section of the wind deflection adjusting peg 3421 can be circular. The wind deflection adjusting peg 3421 can be threadedly connected with the wind deflection sliding part 341 by being provided with a receiving hole on itself, and by inserting at least part of the wind deflection sliding part 341 into the receiving hole, and by providing threads on the outer wall of the part of the wind deflection sliding part 341 inserted into the receiving hole and on the inner wall of the receiving hole. The wind deflection adjusting peg 3421 can also be provided with a receiving via on the wind deflection sliding part 341, and the wind deflection adjusting peg 3421 is arranged in the receiving via, and the wind deflection adjusting peg 3421 is threadedly connected with the wind deflection sliding part 341 by providing threads on the outer wall of the wind deflection adjusting peg 3421 and on the inner wall of the receiving via. When it is necessary to adjust the position of the wind deflection sliding part 341, it is only necessary to rotate the wind deflection adjusting peg 3421 around its own axis, which can drive the wind deflection sliding part 341 to move along the axis direction of the wind deflection adjusting peg 3421, so that the position adjustment of the wind deflection sliding part 341 is more convenient, and thus the position adjustment of the mounting seat 32 and the light emitting source 31 is more convenient.
[0100] It should be noted that the side wall 12 is provided with a mounting space for mounting the wind deflection adjusting peg 3421, and at least part of the wind deflection adjusting peg 3421 can be located outside the mirror body 1 to facilitate the rotation of the wind deflection adjusting peg 3421. The wind deflection adjusting peg 3421 sleeve can also be arranged in the mounting space, the wind deflection adjusting peg 3421 sleeve is fixedly arranged in the mounting space, the wind deflection adjusting peg 3421 is arranged in the wind deflection adjusting peg 3421 sleeve, and the wind deflection adjusting peg 3421 sleeve has only the freedom of rotation around its own axis relative to the wind deflection adjusting peg 3421. By arranging the wind deflection adjusting peg 3421 sleeve, the mounting of the wind deflection adjusting peg 3421 sleeve can be more stable and accurate, so that the adjustment of the wind deflection driving part 342 is more accurate.
[0101] In one embodiment, please refer to Figure 8 and Figure 12The second back-up group 343 comprises a second spring 3431, a second back-up piece 3432 and a back-up fixing piece 3433. The mirror body 1 is further provided with a second back-up hole for accommodating the second back-up piece 3432, a first end of the second back-up hole being in communication with the accommodating space where the mounting seat 32 is located, and a second end of the second back-up hole being in communication with the outside of the mirror body 1. During installation, the second back-up piece 3432 can be installed into the second back-up hole from the second end of the second back-up hole, and one end of the second back-up piece 3432 is abutted against the side surface of the mounting seat 32, then the back-up fixing piece 3433 is blocked at the second end of the second back-up hole, and the second spring 3431 is arranged between the back-up fixing piece 3433 and the second back-up piece 3432. The second back-up group 343 adopts the above structure and cooperates with the second back-up hole, so that the installation of the second back-up group 343 is more convenient.
[0102] In an optional embodiment, referring to Figure 8 With Figure 12 The mirror body 1 is provided with a windage hole for installing the windage adjustment pin 3421, and a sealing ring 10 can be further arranged between the windage adjustment pin 3421 and the inner wall of the windage hole. The sealing ring 10 is sleeved on the outer periphery of the windage adjustment pin 3421 and abuts against the inner wall of the windage hole. The sealing ring 10 can keep the sealing of the installation of the windage adjustment pin 3421 while the windage adjustment pin 3421 rotates, so that foreign matters cannot enter the installation space through the gap between the windage adjustment pin 3421 and the mirror body 1, and the use of the entire sighting scope is safer.
[0103] In an embodiment, referring to Figure 10 The point sighting scope further comprises a second lens 6, and the second lens 6 is arranged in the length direction of the optical channel 13. Specifically, the second lens 6 is a transparent component with a certain thickness, and the second lens 6 can be made of glass, acrylic or other materials with good light transmission. By arranging the second lens 6 in the optical channel 13 and arranging the second lens 6 and the first lens 2 in the length direction of the optical channel 13, the first lens 2 can be protected, and the influence of rainwater or stains on the use of the first lens 2 can be avoided.
[0104] In an embodiment, referring to Figure 10The periphery of the first lens 2 is sealingly connected with the mirror body 1, the periphery of the second lens 6 is also sealingly connected with the mirror body 1, and the first lens 2, the second lens 6 and the inner wall of the at least partial optical channel 13 form a sealed cavity. Specifically, the periphery of the first lens 2 is sealingly connected with the mirror body 1, the periphery of the second lens 6 is also sealingly connected with the mirror body 1, and the first lens 2, the second lens 6 and the inner wall of the at least partial optical channel 13 form a sealed cavity. When the sighting telescope is used, nitrogen or other inert gas can be filled into the sealed cavity to prevent water vapor from entering the space and causing the first lens 2 to fog, thereby improving shooting accuracy.
[0105] In one embodiment, referring to Figure 10 The connecting bottom plate 9 is provided with a threaded hole 93 for cooperating with the fastener 101. The threaded hole 93 is located on the side of the second lens 6 away from the first lens 2 and is spaced apart from the second lens 6. The minimum distance between the inner wall of the threaded hole 93 and the side of the second lens 6 away from the first lens 2 is 2mm to 5mm. Specifically, during use of the sighting telescope, the light source mechanism 3 is usually arranged at the top of the mirror body 1 near the eye side. The light emitted by the light source mechanism 3 passes through the optical channel above the mirror body and is incident on the first lens 2 at an angle. After being reflected by the first lens 2, the light passes through the second lens 6 and enters the human eye. Through existing assembly tests, while ensuring that the second lens 6 does not block the optical channel above, the position at which the fastener 101 connects the mirror body 1 and the connecting bottom plate 9 should be as close to the second lens 6 as possible, so as to ensure that the force between the mirror body 1 and the connecting bottom plate 9 is more balanced. In this embodiment, by setting the minimum distance between the inner wall of the threaded hole 93 and the side of the second lens 6 away from the first lens 2 to be 2mm to 5mm, the strength of the connecting bottom plate 9 and the mirror body 1 can be ensured while ensuring that the force between the mirror body 1 and the connecting bottom plate 9 is balanced, so that the mirror body 1 is more firmly installed.
[0106] In one embodiment, referring to Figures 16 to 21 The side wall 12 is also provided with a power receiving assembly 7, which is electrically connected with the battery mechanism 4. The power receiving assembly 7 is used to receive the electric energy output by the wireless power supply end to charge the battery mechanism 4. Specifically, the power receiving assembly 7 refers to an assembly that can receive the electric energy output by the wireless power supply end. The power receiving assembly 7 can be an inductor coil or the like. By providing the power receiving assembly 7 on the mirror body 1 and adopting a wireless charging mode, the power receiving assembly 7 on the sighting telescope serves as a power receiving device, and a portable wireless charging device serves as a power transmitting device. When the power receiving assembly 7 of the sighting telescope is attached to the charging surface of the power transmitting device, the power receiving assembly 7 in the charging set receives the electric energy transmitted by the power transmitting device and transmits the electric energy to the battery mechanism 4 to achieve charging, thereby maintaining normal electric energy supply in the sighting telescope.
[0107] In an alternative embodiment, referring to Figures 16 to 21 , the power receiving component 7 can be arranged on one of the side portions 122 of the side wall 12, and the battery mechanism 4 can be arranged on the top portion 121 of the side wall 12 or the other side portion 122 of the side wall 12.
[0108] In an embodiment, referring to Figures 16 to 21 , the mirror body 1 is further provided with a button component 8 arranged on the side wall 12, which is used to adjust the brightness of the light source 31. Referring to Figure 22 , the button component 8 can be arranged on the top portion 121 of the side wall 12, and the battery mechanism 4 can be arranged on the side portion 122 of the side wall 12. Figure 21 , the button component 8 can be arranged on the side portion 122 of the side wall 12, and the battery mechanism 4 can be arranged on the top portion 121 of the side wall 12, which can make the external structure of the mirror body 1 more reasonable. It should be noted that, referring to Figure 21 , when the power receiving component 7, the button component 8 and the battery mechanism 4 all exist, the battery mechanism 4 can be arranged on the top portion 121 of the side wall 12, and the button component 8 and the power receiving component 7 can be arranged on the two side portions 122 of the side wall 12, respectively, which can make the structure of the mirror body 1 more reasonable.
[0109] In an embodiment, referring to Figure 7On the side of the connecting bottom plate 9 in contact with the mirror body 1, an engaging structure is further provided, and on the bottom 11, an engaging hole 17 is further provided to cooperate with the engaging structure. The engaging structure can be a column or a block, etc. When the mirror body 1 and the connecting bottom plate 9 are fixed to each other, the engaging structure can be inserted into the engaging hole 17 on the side wall 12, so that the installation of the mirror body 1 and the connecting bottom plate 9 is more firm. The engaging column 91 and the engaging hole 17 can be inserted into each other to play a positioning role, so as to ensure the accurate position of the bottom 11 on the connecting bottom plate 9 and the accurate position of the sighting scope. In an embodiment, please refer to 23, the engaging structure includes an engaging column 91, and the bottom 11 of the mirror body 1 is provided with an engaging hole 17 for cooperating with the engaging column 91. The number of the engaging column 91 is at least two, the number of the engaging hole 17 matches the number of the engaging column 91, and the connecting bottom plate 9 is provided with at least two threaded holes 93 for connecting with the mirror body 1. Specifically, the engaging column 91 refers to a columnar part with a certain height size, and the cross section of the engaging column 91 is usually circular. The engaging column 91 can be an integral molding structure with the connecting bottom plate 9. The threaded hole 93 refers to a hole structure with a certain depth, and a threaded structure is provided on the inner wall. The number of the engaging column 91 is at least two, and the two engaging columns 91 can be distributed in the area close to the first end of the connecting bottom plate 9, or in the area close to the second end of the connecting bottom plate 9. One can be arranged in the area close to the first end of the connecting bottom plate 9 and the other can be arranged in the area close to the second end of the connecting bottom plate 9, which can be freely arranged according to the design requirements, so that the connection of the mirror body 1 and the connecting bottom plate 9 is more convenient and firm.
[0110] In an embodiment, please refer to 24, the engaging structure includes an engaging column 91, and the bottom 11 of the mirror body 1 is provided with an engaging hole 17 for cooperating with the engaging column 91. The number of the engaging column 91 is at least two, the number of the engaging hole 17 matches the number of the engaging column 91, and the connecting bottom plate 9 is provided with one threaded hole 93 for connecting with the mirror body 1. The engaging column 91 refers to a columnar part with a certain height size, and the cross section of the engaging column 91 is usually circular. The engaging column 91 can be an integral molding structure with the connecting bottom plate 9. The threaded hole 93 refers to a hole structure with a certain depth, and a threaded structure is provided on the inner wall. The number of the engaging column 91 is at least two, and the two engaging columns 91 can be distributed in the area close to the first end of the connecting bottom plate 9, or in the area close to the second end of the connecting bottom plate 9. One can be arranged in the area close to the first end of the connecting bottom plate 9 and the other can be arranged in the area close to the second end of the connecting bottom plate 9, which can be freely arranged according to the design requirements.
[0111] In one embodiment, please refer to 25, the joint structure comprises joint blocks 92, the bottom 11 of the mirror body 1 is provided with joint grooves for cooperating with the joint blocks 92, and the connecting bottom plate 9 is provided with at least two threaded holes 93 for connecting the mirror body. Specifically, the joint block 92 refers to a block-shaped component with a certain height, the shape of the joint block 92 is not limited here, and can be set according to the actual situation, and the joint block 92 can be an integral molding structure with the connecting bottom plate 9. The two joint blocks 92 can be distributed in the area close to the first end of the connecting bottom plate 9, or can be distributed in the area close to the second end of the connecting bottom plate 9, and can be freely set according to the design requirements.
[0112] In one embodiment, please refer to 26, the joint structure comprises joint blocks 92, the bottom 11 of the mirror body 1 is provided with joint grooves for cooperating with the joint blocks 92, and the connecting bottom plate 9 is provided with one threaded hole 93 for connecting the mirror body. The joint block 92 refers to a block-shaped component with a certain height, the shape of the joint block 92 is not limited here, and can be set according to the actual situation, and the joint block 92 can be an integral molding structure with the connecting bottom plate 9. The two joint blocks 92 can be distributed in the area close to the first end of the connecting bottom plate 9, or can be distributed in the area close to the second end of the connecting bottom plate 9, and can be freely set according to the design requirements.
[0113] The above is only a preferred embodiment of the present application, and only the technical principle of the present application is specifically described, and these descriptions are only for explaining the principle of the present application, and cannot be explained as the limitation of the protection scope of the present application in any way. Based on the explanation here, any modification, equivalent replacement and improvement within the spirit and principle of the present application, and other specific embodiments of the present application that can be thought by those skilled in the art without creative labor, should be included in the protection scope of the present application.
Claims
1. A point sight, characterized in that The mirror body, the first lens, the light source mechanism and the battery mechanism, the mirror body has a bottom and a side wall, the bottom and the side wall surround an optical channel, the first lens is arranged in the optical channel, the light source mechanism is arranged on the side wall, the light source mechanism is used for emitting light to the first lens to provide a sighting reference for the user, the battery mechanism is arranged on the side wall and is electrically connected with the light source mechanism to supply power to the light source mechanism, the bottom of the mirror body is connected with the gun body through a fastener, the thickness of the bottom is less than or equal to 2.5mm, and the user can observe the aiming dot through the sighting aperture and the optical channel after the mirror body is installed.
2. The point sight of claim 1, wherein, A connecting bottom plate is arranged between the bottom of the mirror body and the gun body, the connecting bottom plate is connected with the gun body through a fastener, and the bottom of the mirror body is connected with the connecting bottom plate and the gun body through a fastener.
3. The point sight of claim 1 or 2, wherein, The fastener is fixed by a fastening tool, and an avoiding structure is arranged on the side wall to avoid the fastening tool.
4. The point sight of claim 3 wherein, The side wall comprises a top surface part and a side surface part, the top surface part is opposite to and spaced from the bottom, and the side surface part is connected between the top surface part and the bottom, and the avoiding structure comprises a first avoiding hole arranged on the top surface part, and the position of the first avoiding hole corresponds to the position of the fastener.
5. The point sight of claim 4 wherein, The avoiding structure further comprises a second avoiding hole, and the second avoiding hole is arranged on the side surface part of the side wall.
6. The point sight of claim 5 wherein, A plugging piece is arranged at the first avoiding hole, and the plugging piece is used for plugging the first avoiding hole when the mirror body works.
7. The spotter scope of claim 6, wherein, A drain hole is arranged on the bottom, and the drain hole is used for draining water accumulated in the optical channel to the outside of the mirror body.
8. The spotter scope of claim 3 wherein, The side wall comprises a top surface part and a side surface part, the top surface part is opposite to and spaced from the bottom, and the side surface part is connected between the top surface part and the bottom, the avoiding structure comprises a second avoiding hole arranged on the side surface part, and the position of the second avoiding hole matches the position of the fastener.
9. The point sight of claim 1 or 2, wherein, The light source mechanism comprises a light emitting source, a mounting seat, a ballistic adjustment mechanism and a windage adjustment mechanism, the mounting seat is movably arranged on the mirror body, the light emitting source is arranged on the mounting seat, the ballistic adjustment mechanism is arranged on the mirror body, the ballistic adjustment mechanism is used for adjusting the position of the mounting seat in a first direction, the windage adjustment mechanism is arranged on the mirror body, the windage adjustment mechanism is used for adjusting the position of the mounting seat in a second direction, and the first direction and the second direction are arranged at an included angle.
10. The spotter scope of claim 9, wherein, The trajectory adjustment mechanism comprises a trajectory slider, a trajectory driving part and a first backstop assembly. The trajectory slider is slidingly arranged on the scope body, at least a part of the trajectory slider abuts against the mounting seat, the trajectory driving part is arranged on the scope body, the trajectory driving part is configured to drive the trajectory slider to move in the first direction, the first backstop assembly is arranged between the scope body and the mounting seat, and the first backstop assembly is configured to apply a force to the mounting seat towards the trajectory slider so as to keep the mounting seat in abutment with the trajectory slider.
11. The spotter scope of claim 10, wherein, The trajectory driving part comprises a trajectory adjustment pin, the trajectory adjustment pin is rotationally arranged on the scope body, an axis of the trajectory adjustment pin is arranged in the first direction, the trajectory adjustment pin has a degree of freedom of rotation about its own axis relative to the scope body, and at least a part of the trajectory adjustment pin is threadedly connected with at least a part of the trajectory slider.
12. The spotter scope of claim 9, wherein, The windage adjustment mechanism comprises a windage slider, a windage driving part and a second backstop assembly. The windage slider is slidingly arranged on the scope body, the windage driving part is arranged on the scope body, the windage driving part is configured to drive the windage slider to move in the second direction, the second backstop assembly is arranged between the scope body and the mounting seat, the windage slider and the second backstop assembly abut against two sides of the mounting seat in the second direction respectively, and the second backstop assembly is configured to apply a force to the mounting seat towards the windage slider.
13. The spotter scope of claim 12, wherein, The windage driving part comprises a windage adjustment pin, the windage adjustment pin is rotationally arranged on the scope body, an axis of the windage adjustment pin is arranged in the second direction, the windage adjustment pin has a degree of freedom of rotation about its own axis relative to the scope body, and at least a part of the windage adjustment pin is threadedly connected with at least a part of the windage slider.
14. The spotter scope of claim 2, wherein, The point sight further comprises a second lens, the second lens is arranged in a spaced manner with the first lens in a length direction of the optical channel.
15. The spotter scope of claim 14, wherein, A periphery of the first lens is sealingly connected with the scope body, a periphery of the second lens is also sealingly connected with the scope body, and the first lens, the second lens and an inner wall of at least part of the optical channel surround to form a sealed cavity.
16. The spotter scope of claim 14, wherein, The connecting bottom plate is provided with a threaded hole for cooperating with the fastener, the threaded hole is arranged on a side of the second lens away from the first lens and is spaced from the second lens, and a minimum distance between an inner wall of the threaded hole and a side of the second lens away from the first lens is 2mm to 5mm.
17. The point sight of claim 1 or 2, wherein, The side wall is further provided with a power receiving assembly, the power receiving assembly is electrically connected with the battery mechanism, and the power receiving assembly is configured to receive electric energy output by a wireless power supply end to charge the battery mechanism.
18. The spotter scope of claim 2 wherein, The connecting bottom plate is provided with an engagement structure, the engagement structure is configured to position an installation position of the scope body on the connecting bottom plate.
19. The point sight of claim 18, wherein The joint structure comprises joint columns, and the bottom of the mirror body is provided with joint holes for cooperating with the joint columns, the number of the joint columns is at least two, the number of the joint holes matches the number of the joint columns, and the connecting bottom plate is provided with at least two threaded holes for connecting the mirror body; Or, the joint structure comprises joint columns, and the bottom of the mirror body is provided with joint holes for cooperating with the joint columns, the number of the joint columns is at least two, the number of the joint holes matches the number of the joint columns, and the connecting bottom plate is provided with one threaded hole for connecting the mirror body; Or, the joint structure comprises joint blocks, and the bottom of the mirror body is provided with joint grooves for cooperating with the joint blocks, and the connecting bottom plate is provided with at least two threaded holes for connecting the mirror body; Or, the joint structure comprises joint blocks, and the bottom of the mirror body is provided with joint grooves for cooperating with the joint blocks, and the connecting bottom plate is provided with one threaded hole for connecting the mirror body.
Citation Information
Patent Citations
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