Exposed cone pulley adjusting structure for sighting telescope

Through the design of the exposed tower wheel adjustment structure, precise adjustment of the sight center and cleaning of the eyepiece are achieved, which solves the problem of the center deviation of the existing sight after long-term use, improves the shooting accuracy and the service life of the sight.

CN223470576UActive Publication Date: 2025-10-24NANTONG SHENMU MASCH CO LTD
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Patent Information

Application Number
CN202422817445.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-19
Publication Date
2025-10-24
Estimated Expiration
2034-11-19

AI Technical Summary

Technical Problem

After long-term use, the existing scopes become inaccurate in the crosshairs and the actual trajectory of the barrel, causing the fired bullets to deviate and fail to hit the target accurately.

Method used

An exposed tower wheel adjustment structure for a scope is designed, which includes components such as a mounting tube, an adjustment assembly, a knob, a pressure column, a calibration ring and a limit plate. The rotation of the knob drives the movement of the pressure column and the calibration ring to achieve precise adjustment of the center height and horizontal position. The eyepiece is cleaned with a cloth driven by a protective tube to maintain a clear field of view.

Benefits of technology

It achieves precise calibration and cleaning of the sight center, ensures shooting accuracy and clear vision of the sight, and extends its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of sighting telescopes, and discloses an exposed cone pulley adjusting structure for a sighting telescope, which comprises a mounting tube, an adjusting component used for adjusting the centering height is arranged at the top of the mounting tube, a knob I is fixedly connected to the top of the adjusting component, a pressing column II is in threaded connection with the front side of the knob I, and the pressing column II is in threaded connection with the top of the mounting tube. A second knob is fixedly connected to the front side of the second pressing column, a limiting plate is fixedly connected to the rear side of the interior of the mounting pipe, a calibration ring is arranged in the mounting pipe, a calibration mirror is fixedly connected to the interior of the calibration ring, and a mirror pipe is in threaded connection to the left side of the mounting pipe. According to the calibration device, the first knob is rotated to drive the first pressing column to press the calibration ring and adjust the height of the aim point of the calibration mirror, the second knob is rotated to drive the second pressing column to press the calibration ring, the aim point of the calibration mirror can be adjusted left and right, and then the aim point can be calibrated.
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Description

TECHNICAL FIELD

[0001] The utility model relates to sighting telescope technical field especially, relate to a sighting telescope with exposed type tower wheel adjusting structure. BACKGROUND

[0002] Sighting telescope is the key equipment of soldiers and snipers in military operations. Through the sighting telescope, soldiers can accurately lock the target in long-distance combat, improve the hit rate, reduce the error, on the battlefield, the sighting telescope can help the sniper to observe the enemy's movement, accurate aiming and shooting, realize the long-distance kill target. Especially in complex environment such as mountainous area, forest and so on, the sighting telescope can enlarge the field of vision, help the soldier to capture the long-distance target and make the shooting decision quickly, the sighting telescope is also widely used in hunting activities, helps the hunter to accurately aim at the prey, especially in the case of long distance. In different environments, the sighting telescope can help the hunter to observe and hit the fast-moving target.

[0003] However, after the long-time use of the existing part sighting telescope, the actual trajectory of the sighting telescope and the gun barrel is not accurate enough, so that the shot bullet will deviate, and then the shot bullet cannot hit the target, and then the sighting telescope needs to be adjusted, so that the sighting telescope and the actual trajectory are on the same line, and the sighting telescope with exposed type tower wheel adjusting structure is proposed to solve the above problems. UTILITY MODEL CONTENT

[0004] In order to make up for the above shortcomings, the utility model provides a sighting telescope with exposed type tower wheel adjusting structure, which aims at improving the problem that the sighting telescope cannot be calibrated in the prior art.

[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0006] A sighting telescope with exposed type tower wheel adjusting structure, including installation pipe, the top of the installation pipe is provided with the adjusting assembly for adjusting the height of the sighting center, the top of the adjusting assembly is fixedly connected with knob one, the front side of the installation pipe is screw connected with pressure column two, the front side of the pressure column two is fixedly connected with knob two, the inside rear side of the installation pipe is fixedly connected with the limit plate, the inside of the installation pipe is provided with the calibration ring, the inside of the calibration ring is fixedly connected with the calibration mirror, the left side of the installation pipe is screw connected with the mirror tube;

[0007] Furthermore, the rotation of knob one drives the adjustment component to move up and down, thereby adjusting the height of the aiming center. Knob two is connected to pressure column two, so that pressure column two applies pressure to the calibration ring when rotating, thereby adjusting the horizontal position of the calibration mirror. The limit plate plays a stabilizing role inside the structure to prevent the calibration ring from moving out of place during the adjustment process. At the same time, the combination of the calibration ring and the calibration mirror enables the calibration mirror to achieve precise movement after being subjected to force, so as to ensure that the aiming center calibration of the sight is more accurate. In addition, the mirror tube drives the overall structure of the sight through the connection, thereby providing the shooter with a clear field of view and a stable aiming reference. The entire adjustment structure achieves precise control of the aiming center position of the sight through a series of motion transmission;

[0008] As a further description of the above technical solution:

[0009] The adjustment assembly includes a first pressing column, the external thread of the first pressing column is connected to the top of the mounting tube, the top of the first pressing column is fixedly connected to a first knob, and the bottom of the first pressing column contacts the top of the calibration ring;

[0010] Furthermore, the rotation of Knob 1 drives the upward and downward movement of Pressure Column 1, which in turn acts on the top of the calibration ring, causing it to shift accordingly. When the force is applied to the calibration ring, it adjusts its position as Pressure Column 1 moves, thereby achieving precise adjustment of the relevant components within the scope. Throughout this process, Knob 1 indirectly affects the movement of the calibration ring by driving the movement of Pressure Column 1, thus controlling the internal adjustment structure of the scope, allowing the calibration scope to be fine-tuned in height as needed to ensure aiming accuracy.

[0011] As a further description of the above technical solution:

[0012] An eyepiece is provided inside the mirror tube, a protective tube is threadedly connected to the left side of the outer portion of the mirror tube, a plurality of accommodating shells are fixedly connected to the left inner wall of the protective tube, a plurality of accommodating shells are sleeved on the outside of the plurality of accommodating shells, a force-bearing column is slidably connected to the inside of the accommodating shells, a force-bearing plate is fixedly connected to the right side of the plurality of force-bearing columns, and a wiping cloth is fixedly connected to the right side of the force-bearing plate;

[0013] Furthermore, the movement of the protective tube drives multiple containment shells to take effect. The movement of the containment shells further compresses the springs, which provide a reaction force during the force-bearing process, causing the force-bearing column to slide accordingly. The sliding of the force-bearing column pushes the force-bearing plate, which in turn drives the wiping cloth forward. During this process, the wiping cloth comes into contact with the surface of the eyepiece to perform a cleaning operation. Throughout the entire process, the operation of the protective tube triggers a series of motion transmissions, from the containment shells to the springs, and then to the force-bearing columns and force plates, ultimately allowing the wiping cloth to effectively act on the eyepiece, ensuring that the eyepiece is cleaned during the removal or installation of the protective tube, maintaining a clear field of view of the sight.

[0014] As a further description of the above technical solution:

[0015] The front side of the calibration ring is in contact with the rear side of the second pressure column, and the bottom rear side of the calibration ring is in contact with the outside of the limiting plate.

[0016] Further, the movement of the second pressure column drives the displacement of the front side of the calibration ring, and the calibration ring moves when subjected to pressure, and the force on the bottom rear side of the calibration ring is further transmitted to the limiting plate. The limiting plate plays a role in the movement of the calibration ring, limiting the excessive movement of the calibration ring, ensuring that it remains within the predetermined range. The whole process is triggered by the movement of the second pressure column, and the movement of the calibration ring is affected by the limiting plate, thereby ensuring the accurate and stable adjustment of the collimating mirror, preventing excessive displacement or disengagement during adjustment, and ensuring the accuracy and stability of the sighting structure;

[0017] As a further description of the above technical solution:

[0018] The rear side of the knob two is in contact with the front side of the mounting tube, and the bottom of the mounting tube is fixedly connected with a mounting handle.

[0019] Further, the movement of the knob two affects the components on its rear side, which is further transmitted to the mounting tube. The mounting tube plays a supporting and stabilizing role in the whole process, ensuring that the knob two operates more smoothly. The role of the mounting tube is not only to provide support, but also to realize stable connection with external equipment through the mounting handle at the bottom. The operation of the knob two is more accurately adjusted through the support of the mounting tube, while the mounting handle ensures the stability and reliability of the entire device during use, ensuring that the device remains fixed during adjustment, improving the accuracy of the operation;

[0020] As a further description of the above technical solution:

[0021] The right side of the mounting tube is fixedly connected with an objective lens, and the right side of the cloth is in contact with the left side of the ocular lens.

[0022] Further, the objective lens affects the imaging effect of the entire optical structure through the driving of the right side components, ensuring the clear field of view of the sighting scope. At the same time, the cloth closely adheres to the left surface of the ocular lens when subjected to force, thereby cleaning the ocular lens. This process ensures that the ocular lens can always remain clean during use or maintenance, thereby avoiding the influence of dust or dirt on the sighting accuracy. The stability of the objective lens and the cleaning effect of the cloth on the ocular lens work together to ensure that the sighting scope can provide a clear and accurate field of view in different environments, improving the accuracy and reliability of shooting;

[0023] As a further description of the above technical solution:

[0024] One end of the spring is fixedly connected to the right inner wall of the protective tube, and the other end of the spring is fixedly connected to the left side of the stress plate;

[0025] Further, the spring is compressed or stretched when stressed, and the right inner wall of the protective tube is affected by the stress at one end of the spring, and the elastic force of the other end is transmitted to the stress plate to push the stress plate to displace. When the spring is acted on by an external force, its elastic deformation drives the stress plate to move in a specified direction, thereby triggering further action of related components. This process achieves force transmission through compression and release of the spring, ensuring that the stress plate can obtain sufficient pushing force when working to achieve its function and maintain the stability and continuity of movement in the structure;

[0026] Further description of the above technical solution:

[0027] The outer part of the stress plate is in contact with the inner wall of the mirror tube, and the outer part of the cloth is in contact with the inner wall of the mirror tube;

[0028] Further, the stress plate interacts with the inner wall of the mirror tube during movement, and the stress is transmitted through the contact of the outer part, ensuring the stability and accuracy of the stress plate during movement. At the same time, the outer part of the cloth is also in close contact with the inner wall of the mirror tube, effectively wiping and cleaning the inside of the mirror tube through contact. The movement of the stress plate drives the cloth to slide on the inner wall of the mirror tube, thereby cleaning the surface of the ocular lens, ensuring that the sighting telescope maintains a clear field of view during long-term use. This design maintains the stability of the structure through the contact and movement of the stress plate and the cloth, and ensures the cleaning effect of the ocular lens, improving the performance and service life of the sighting telescope.

[0029] The utility model has the advantages of:

[0030] 1. In the utility model, rotating knob one can drive pressure column one to press the calibration ring, thereby adjusting the center height of the calibration mirror. Rotating knob two can drive pressure column two to press the calibration ring, thereby adjusting the center of the calibration mirror horizontally, and then calibrating the center.

[0031] 2. In the utility model, rotating the protective tube can install it outside the mirror tube, thereby protecting the mirror tube. When the protective tube is installed outside the mirror tube or removed from the outside of the mirror tube, the cloth can clean the outside of the ocular lens, thereby preventing the center from being blurred due to the dirtiness of the mirror tube after long-term use. BRIEF DESCRIPTION OF DRAWINGS

[0032] Figure 1The utility model provides a kind of stereogram of sighting telescope exposed type cone pulley adjusting structure's schematic diagram;

[0033] Figure 2 The utility model provides a kind of sighting telescope exposed type cone pulley adjusting structure's sighting telescope's structural schematic diagram;

[0034] Figure 3 The utility model provides a kind of sighting telescope exposed type cone pulley adjusting structure's mounting pipe's structural schematic diagram;

[0035] Figure 4 For Figure 3 The enlarged view of A.

[0036] Legend:

[0037] 1, mounting pipe;2, knob one;3, press column one;4, knob two;5, press column two;6, limit plate;7, calibration ring;8, objective lens;9, mirror tube;10, mounting handle;11, calibration mirror;12, eyepiece;13, protective tube;14, containing shell;15, spring;16, force column;17, force plate;18, cloth. Specific embodiments

[0038] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.

[0039] With reference to Figures 1 to 3 The utility model provides an embodiment: a kind of sighting telescope exposed type cone pulley adjusting structure, including mounting pipe 1, the top of mounting pipe 1 is provided with the adjusting assembly for adjusting the height of alignment heart, so that mounting pipe 1 can provide support for adjusting assembly, the top of adjusting assembly is fixedly connected with knob one 2, and then rotating knob one 2 can make knob one 2 drive adjusting assembly to move, the front side of mounting pipe 1 is threadedly connected with press column two 5, then mounting pipe 1 can provide support for press column two 5, the front side of press column two 5 is fixedly connected with knob two 4, so that rotating knob two 4 can make knob two 4 drive press column two 5 to rotate, the rear side of knob two 4 and the front side of mounting pipe 1 are in contact, then mounting pipe 1 can make the rotation of knob two 4 more stable.

[0040] The bottom of the installation pipe 1 is fixedly connected with a mounting handle 10, and then the mounting handle 10 can be used to stably mount the installation pipe 1 outside the barrel. The rear side of the inside of the installation pipe 1 is fixedly connected with a limiting plate 6, so that the installation pipe 1 can provide support for the limiting plate 6. The inside of the installation pipe 1 is provided with a calibration ring 7. The front side of the calibration ring 7 is in contact with the rear side of the pressure column two 5. When the pressure column two 5 moves, the calibration ring 7 will also move. The bottom rear side of the calibration ring 7 is in contact with the outside of the limiting plate 6. Then the limiting plate 6 can limit the calibration ring 7, so as to prevent the calibration ring 7 from falling off during adjustment. The adjusting assembly includes a pressure column one 3. The outside of the pressure column one 3 is screw-connected to the top of the installation pipe 1, so that the installation pipe 1 can provide support for the pressure column one 3. The top of the pressure column one 3 is fixedly connected with a knob one 2. Then rotating the knob one 2 can make the knob one 2 drive the pressure column one 3 to move. The bottom of the pressure column one 3 is in contact with the top of the calibration ring 7. Then the pressure column one 3 will press the calibration ring 7 when it moves. The inside of the calibration ring 7 is fixedly connected with a calibration mirror 11, so that the calibration ring 7 will drive the calibration mirror 11 to move when it moves. The left side of the installation pipe 1 is screw-connected with a mirror pipe 9, so that the installation pipe 1 can provide support for the mirror pipe 9.

[0041] Referring to Figure 3 and Figure 4 The inside of the mirror pipe 9 is provided with an ocular lens 12, so that the mirror pipe 9 can provide support for the ocular lens 12. The outside left side of the mirror pipe 9 is screw-connected with a protective pipe 13. Then through the screw connection of the protective pipe 13 and the mirror pipe 9, the protective pipe 13 can be easily installed and removed. The left side inner wall of the protective pipe 13 is fixedly connected with a plurality of containing shells 14. Then the protective pipe 13 can provide support for the plurality of containing shells 14. The outside of the plurality of containing shells 14 is sleeved with a spring 15, so that the containing shell 14 can provide support for the spring 15. The inside of the containing shell 14 is slidingly connected with a stress column 16. Then the containing shell 14 can provide support for the stress column 16. The right side of the plurality of stress columns 16 is fixedly connected with a stress plate 17. Then the stress plate 17 will press the stress column 16 when it moves.

[0042] One end of the spring 15 is fixedly connected to the right inner wall of the protective tube 13, and the other end of the spring 15 is fixedly connected to the left side of the stress plate 17, so that the stress plate 17 moves to compress the spring 15. The right side of the stress plate 17 is fixedly connected with the cloth 18, so that the cloth 18 is pressed to press the stress plate 17. The outside of the stress plate 17 is in contact with the inner wall of the mirror tube 9, and the outside of the cloth 18 is in contact with the inner wall of the mirror tube 9. The right side of the mounting tube 1 is fixedly connected with the objective lens 8, and the right side of the cloth 18 is in contact with the left side of the ocular lens 12, so that the cloth 18 is in contact with the outside of the ocular lens 12 more closely under the support of the spring 15, and the cloth 18 is wiped on the outside of the ocular lens 12 when the protective tube 13 is disassembled or assembled.

[0043] Working principle: first, the user rotates knob one 2, which drives the pressing column one 3 to move downward. The pressing column one 3 is in contact with the top of the calibration ring 7, so that the calibration ring 7 moves during the downward pressing of the pressing column one 3. The movement of the calibration ring 7 affects the position of the calibration mirror 11, thereby accurately adjusting the center of the sight. Through this structure design, the user can conveniently adjust the center of the sight in the vertical direction to adapt to different shooting angles and target heights.

[0044] Then, the user rotates knob two 4, which drives the pressing column two 5 to move. The front end of the pressing column two 5 is in contact with the rear end of the calibration ring 7, so that the calibration ring 7 moves horizontally during the rotation of the pressing column two 5. This horizontal movement can effectively adjust the left and right positions of the calibration mirror 11, so that the center of the sight can be accurately calibrated in the horizontal direction, ensuring that the center of the sight is aligned with the shooting target.

[0045] During the above adjustment operation, the mounting tube 1 provides stable support for the entire adjustment assembly. The limiting plate 6 is located at the bottom rear side of the calibration ring 7 and is in contact with the outside thereof, thereby limiting the excessive movement of the calibration ring 7. This limiting design can effectively prevent the calibration ring 7 from falling off during adjustment, ensuring the stability and safety of adjustment.

[0046] When it is necessary to clean the sighting telescope, the user can install the protective tube 13 on the outside of the mirror tube 9 by rotating it. The protective tube 13 is connected with the mirror tube 9 through threads, and the installation and disassembly are very convenient. During the installation or disassembly of the protective tube 13, the cloth 18 inside the protective tube 13 is in contact with the outside of the ocular lens 12. Since the cloth 18 is connected with the stress plate 17, and the stress plate 17 is ensured to be in close contact with the outside of the ocular lens 12 by the elastic force of the spring 15, the surface of the ocular lens 12 is wiped.

[0047] A plurality of accommodating shells 14 are fixedly connected to the left inner wall of the protective tube 13, and a stress column 16 is movably installed in each of the accommodating shells 14.

[0048] During the cleaning of the scope, the cloth 18 can be rotated through the protective tube 13 to clean the outside of the ocular lens 12. The spring 15 not only provides elastic support during the disassembly and assembly of the protective tube 13, but also ensures that the cloth 18 has a certain pressure when cleaning the outside of the ocular lens 12, thereby avoiding the situation that the aiming center is blurred due to dust accumulation after long-term use of the ocular lens 12. This design not only improves the cleaning efficiency of the scope, but also effectively prolongs the service life of the scope.

[0049] The bottom of the mounting tube 1 is fixedly connected with a mounting handle 10, which can stably fix the mounting tube 1 to the outside of the barrel, ensuring that the scope will not deviate due to vibration during shooting. In addition, the right side of the mounting tube 1 is fixedly connected with an objective lens 8, which is connected with a mirror tube 9 to provide good optical support for the entire scope, ensuring clear vision during shooting.

[0050] Finally, it should be noted that the above description is only a preferred embodiment of the present application and is not intended to limit the present application. Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or equivalently replace some of the technical features, as long as they are within the spirit and principles of the present application. Any modification, equivalent replacement, improvement, etc. shall be included in the protection scope of the present application.

Claims

1. An exposed type turret adjusting structure for a riflescope, comprising a mounting tube (1), characterized in that: The top of the installation pipe (1) is provided with an adjusting assembly for adjusting the height of the alignment, the top of the adjusting assembly is fixedly connected with a knob one (2), the front side of the installation pipe (1) is threadedly connected with a pressing column two (5), the front side of the pressing column two (5) is fixedly connected with a knob two (4), the inside rear side of the installation pipe (1) is fixedly connected with a limiting plate (6), the inside of the installation pipe (1) is provided with a calibration ring (7), the inside of the calibration ring (7) is fixedly connected with a calibration mirror (11), and the left side of the installation pipe (1) is threadedly connected with a mirror pipe (9).

2. The exposed turret adjustment structure for a riflescope of claim 1, wherein: The adjusting assembly comprises a pressing column one (3), the outside of the pressing column one (3) is threadedly connected with the top of the installation pipe (1), the top of the pressing column one (3) is fixedly connected with the knob one (2), and the bottom of the pressing column one (3) is in contact with the top of the calibration ring (7).

3. The exposed turret adjustment structure for a riflescope of claim 1, wherein: The inside of the mirror pipe (9) is provided with an ocular lens (12), the outside left side of the mirror pipe (9) is threadedly connected with a protective pipe (13), the left side inner wall of the protective pipe (13) is fixedly connected with a plurality of containing shells (14), the outside of the containing shells (14) is sleeved with a spring (15), the inside of the containing shell (14) is slidably connected with a stress column (16), the right side of the stress column (16) is fixedly connected with a stress plate (17), and the right side of the stress plate (17) is fixedly connected with a cloth (18).

4. The exposed turret adjustment structure for a riflescope of claim 1, wherein: The front side of the calibration ring (7) is in contact with the rear side of the pressing column two (5), and the bottom rear side of the calibration ring (7) is in contact with the outside of the limiting plate (6).

5. The exposed turret adjustment structure for a riflescope of claim 1, wherein: The rear side of the knob two (4) is in contact with the front side of the installation pipe (1), and the bottom of the installation pipe (1) is fixedly connected with a mounting handle (10).

6. The exposed turret adjustment structure for a riflescope of claim 3, wherein: The right side of the installation pipe (1) is fixedly connected with an objective lens (8), and the right side of the cloth (18) is in contact with the left side of the ocular lens (12).

7. The exposed turret adjustment structure for a riflescope of claim 3, wherein: One end of the spring (15) is fixedly connected to the right side inner wall of the protective pipe (13), and the other end of the spring (15) is fixedly connected to the left side of the stress plate (17).

8. The exposed turret adjustment structure for a riflescope of claim 3, wherein: The outside of the stress plate (17) is in contact with the inner wall of the mirror pipe (9), and the outside of the cloth (18) is in contact with the inner wall of the mirror pipe (9).