Accurate aiming training device based on imitation gun

By adjusting the vertical groove and sliding plate, the U-shaped plate connecting structure, buffer, and angle adjustment mechanism, the problem that the simulated gun aiming training device cannot adapt to different heights and postures is solved, achieving a training effect of comfortable posture and accurate shooting.

CN224066012UActive Publication Date: 2026-03-31POLAR LIGHT (JIANGSU) INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing simulated gun aiming training devices cannot meet the comfort requirements of people of different heights when aiming in prone, semi-squatting, and standing positions, resulting in low training efficiency.

Method used

The height of the moving plate can be adjusted to accommodate different heights by adjusting the cooperation between the vertical groove and the sliding plate; the connection structure between the U-shaped plate and the second U-shaped plate, as well as the design of the connecting block, rotating handle and screw, are adapted to different simulated guns; the buffer box, buffer plate and buffer spring simulate recoil; the worm gear and worm wheel structure in the control box adjust the shooting angle to ensure stability.

Benefits of technology

It achieves the optimal shooting posture for people of different heights in various positions, enhances training effectiveness, is compatible with a variety of simulated guns, simulates a real shooting experience, improves shooting accuracy and training stability, and extends the life of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a precise sighting training device based on an imitation gun, which belongs to the technical field of sighting training and comprises a base, side plates are symmetrically and fixedly connected to the upper surface of the base, adjusting vertical grooves are formed in opposite sides of the two side plates, sliding plates are slidably connected to the lower portions of the interiors of the two adjusting vertical grooves, and the sliding plates are arranged on the upper surface of the base. The opposite sides of the two sliding plates are jointly and fixedly connected with a moving plate, and a first U-shaped plate is arranged at the center of the upper surface of the moving plate. The height of the movable plate can be flexibly adjusted through matching of the adjusting vertical grooves in the side plates and the sliding plates, the requirements of people with different heights for comfortable postures during crawling, semi-squatting and standing aiming are met, a trainer can reach the optimal shooting posture, the training effect is greatly improved, meanwhile, positioning round holes in the base are combined with ground nails, and the training effect is improved. The device can be stably fixed in a target range, it is guaranteed that the device cannot move in the training process, and the training stability and accuracy are guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of aiming training technology, and in particular to a precision aiming training device based on a simulated gun. Background Technology

[0002] With the development of military training, police law enforcement training and shooting sports, the training of precision aiming and shooting skills has become crucial. In traditional shooting training, although live-fire shooting can provide the most realistic training experience, it is difficult to achieve large-scale, high-frequency live-fire training due to its high risk, expensive ammunition costs and strict requirements for the venue. Therefore, simulated gun aiming training devices have emerged.

[0003] However, current simulated gun aiming training devices cannot meet the comfort requirements of people of different heights when performing prone, semi-squatting, and standing aiming postures, thus failing to achieve the optimal shooting posture and reducing training efficiency. Utility Model Content

[0004] Purpose of the utility model: The purpose of this utility model is to provide a solution to the problem that current simulated gun aiming training devices cannot meet the comfort requirements of people of different heights when performing crawling, semi-squatting, and standing aiming postures, thus preventing the achievement of the optimal shooting posture.

[0005] Technical solution: A precision aiming training device based on a simulated gun includes a base, side plates are symmetrically fixedly connected to the upper surface of the base, adjustment grooves are opened on the opposite sides of the two side plates, sliding plates are slidably connected to the lower part of the interior of the two adjustment grooves, and a moving plate is fixedly connected to the opposite sides of the two sliding plates. A U-shaped plate is provided at the center of the upper surface of the moving plate.

[0006] Both sliding plates are slidably connected to movable plates inside, and both movable plates are fixedly connected to plug-in blocks on opposite sides. Both adjusting vertical grooves have multiple fixing grooves on opposite sides inside, and the opposite sides of the two plug-in blocks extend into the interior of the two fixing grooves below.

[0007] Furthermore, the upper surface of the base is provided with multiple through-hole positioning holes, and each of the multiple positioning holes is provided with a ground nail.

[0008] Furthermore, a second U-shaped plate is internally connected to the first U-shaped plate. A transverse groove is formed on both the left and right sides of the inner wall of the first U-shaped plate. Connecting blocks are slidably connected inside both transverse grooves. The opposite sides of the two connecting blocks are fixedly connected to the left and right sides of the second U-shaped plate, respectively. A rotating handle is provided on the opposite sides of each of the two connecting blocks. A screw is fixedly connected to the center of the opposite sides of each of the two rotating handles. The opposite ends of the two screws extend to the inner side of the second U-shaped plate and are rotatably connected to a stock clamp via a pivot.

[0009] Furthermore, the upper surface of the movable plate is provided with actuating grooves on the left and right sides of the U-shaped plate. The left and right sides of the two actuating grooves are fixedly connected to a limiting slide rod. The outer walls of the two limiting slide rods are slidably connected with actuating plates. The opposite sides of the two actuating plates are fixedly connected to the opposite sides of the two movable plates with pull rods. The outer walls of the two limiting slide rods are fitted with return springs. The two ends of the two return springs are fixedly connected to the opposite sides of the two actuating plates and the opposite sides of the two actuating grooves, respectively.

[0010] Furthermore, buffer boxes are fixedly connected to the inner front surfaces of both transverse grooves, buffer plates are slidably connected inside both buffer boxes, support rods are fixedly connected to the center of the rear surfaces of both buffer plates, the rear ends of the two support rods extend to the rear of the two buffer boxes respectively, and abutment plates are fixedly connected to both, the rear surfaces of the two abutment plates contact the front surfaces of the two connecting blocks respectively, and multiple buffer springs are fixedly connected to the inner rear surfaces of the two buffer boxes respectively.

[0011] Furthermore, a control box is fixedly connected to the lower surface of the movable plate. A second rotating handle is provided on the front surface of the control box. A worm gear is fixedly connected to the center of the rear surface of the second rotating handle. The rear surface of the worm gear is rotatably connected to the inner rear surface of the control box via a rotating shaft. An adjusting rod is fixedly connected to the center of the lower surface of the U-shaped plate. The bottom end of the adjusting rod is rotatably connected to the inner lower surface of the control box via a rotating shaft. A worm wheel is fixedly connected to the outer side wall of the adjusting rod. The outer side wall of the worm wheel is meshed with the outer side wall of the worm gear.

[0012] Furthermore, a T-shaped groove is formed on the lower inner surface of the first U-shaped plate, and a T-shaped block is fixedly connected to the lower surface of the second U-shaped plate. The outer wall of the T-shaped block is slidably connected to the interior of the T-shaped groove.

[0013] Furthermore, the inner front and inner rear surfaces of the two adjusting vertical grooves are provided with limiting vertical grooves, and the front and rear surfaces of the two sliding plates are fixedly connected with limiting sliders. The outer walls of the multiple limiting sliders are respectively slidably connected to the interior of the multiple limiting vertical grooves.

[0014] Beneficial effects: The height of the movable plate can be flexibly adjusted by the combination of the adjustable vertical groove and the sliding plate on the side plate, which can meet the needs of people of different heights for comfortable posture when aiming in a crawling, semi-squatting and standing position. This allows trainees to achieve the best shooting posture and greatly improves the training effect. At the same time, the positioning round hole on the base combined with the ground nail can firmly fix the device in the shooting range, ensuring that the device will not move during training and guaranteeing the stability and accuracy of training.

[0015] Through the unique connection structure of U-shaped plate one and U-shaped plate two, as well as the design of connecting block, rotating handle one, screw and stock clamp, it can be adjusted and firmly clamped according to the size of different simulated gun stocks, adapting to a variety of firearms. During shooting, the buffer structure composed of buffer box, buffer plate, support rod, contact plate and buffer spring effectively simulates and buffers recoil, enhancing the realism of training.

[0016] The angle adjustment structure, consisting of the rotating handle, worm gear, adjusting rod, and worm wheel inside the control box, allows for convenient and precise adjustment of the firing angle of the simulated gun. The self-locking characteristic of the worm gear ensures the stability of the adjusted angle. The connection between U-shaped plate 1 and U-shaped plate 2 via T-slots and T-blocks, as well as the cooperation between the limiting vertical groove and the limiting slider within the adjusting vertical groove, further enhance the stability and accuracy of each component during movement, extending the service life of the device. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is a partial front view structural diagram of the cross-section of the side plate, sliding plate and movable plate of this utility model;

[0019] Figure 3 This is a side sectional view of the buffer box of this utility model;

[0020] Figure 4 This is a partial side view of the cross-section of the movable plate and control box of this utility model;

[0021] Figure 5 This is the utility model Figure 1 A magnified structural diagram of point A in the middle.

[0022] In the diagram: 1. Base; 2. Side plate; 3. Adjustment vertical groove; 4. Sliding plate; 5. Moving plate; 6. U-shaped plate one; 7. Movable plate; 8. Insertion block; 9. Fixing groove; 10. Positioning round hole; 11. Ground nail; 12. U-shaped plate two; 13. Horizontal groove; 14. Connecting block; 15. Rotating handle one; 16. Screw; 17. Buttstock clamp; 18. Actuating groove; 19. Limiting slide rod; 20. Actuating plate; 21. Pull rod; 22. Return spring; 23. Buffer box; 24. Buffer plate; 25. Support rod; 26. Abutment plate; 27. Buffer spring; 28. Control box; 29. ​​Rotating handle two; 30. Worm gear; 31. Adjusting rod; 32. Worm wheel; 33. T-slot; 34. T-block; 35. Limiting vertical groove; 36. Limiting slider. Detailed Implementation

[0023] To make the technical solution of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0024] Example

[0025] like Figure 1 As shown, the upper surface of the base 1 has multiple through-holes 10, and each of the multiple through-holes 10 has a ground nail 11 inside.

[0026] Multiple positioning holes 10 are evenly distributed above the base 1. The through-hole design allows the ground spike 11 to completely pass through the base 1 and go deep into the ground, which not only ensures a tight connection between the ground spike 11 and the base 1, but also enhances the pull-out resistance and stability of the entire fixing structure, ensuring the accuracy of the shooting.

[0027] like Figure 1 , Figure 4 and Figure 5 As shown, a U-shaped plate 12 is connected inside the U-shaped plate 16. A transverse groove 13 is provided on the left and right sides of the inner wall of the U-shaped plate 16. A connecting block 14 is slidably connected inside the two transverse grooves 13. The opposite sides of the two connecting blocks 14 are fixedly connected to the left and right sides of the U-shaped plate 12, respectively. A rotating handle 15 is provided on the opposite sides of the two connecting blocks 14. A screw 16 is fixedly connected at the center of the opposite sides of the two rotating handles 15. The opposite ends of the two screws 16 extend to the inside of the U-shaped plate 12 and are rotatably connected to the stock plate 17 through a rotating shaft.

[0028] During shooting training, rotating the rotating handle 15 drives the screw 16 to rotate, causing the buttstock clamp 17 to move closer to or further away from the simulated gun butt. After placing the simulated gun in a suitable position, rotating the rotating handles 15 on both sides causes the buttstock clamp 17 to gradually clamp the buttstock under the push of the screw 16, stabilizing the simulated gun from the outside. This clamping effect of the two buttstock clamps 17 enhances the stability of the simulated gun during training, reduces aiming deviation caused by gun shaking, and allows trainees to focus more on aiming, thereby improving shooting accuracy. Furthermore, this fixing structure can be flexibly adjusted according to the shape and size of different simulated gun butts, making it widely applicable. This, in turn, helps cultivate correct shooting posture and force application habits, further improving shooting skills.

[0029] like Figure 1 and Figure 2 As shown, a precision aiming training device based on a simulated gun is provided, including a base 1. Side plates 2 are symmetrically fixedly connected to the upper surface of the base 1. Adjustment grooves 3 are formed on opposite sides of the two side plates 2. Sliding plates 4 are slidably connected to the lower part of each of the two adjustment grooves 3. Moving plates 5 are fixedly connected to opposite sides of the two sliding plates 4. A U-shaped plate 6 is provided at the center of the upper surface of the moving plate 5. Movable plates 7 are slidably connected to the inside of each of the two sliding plates 4. Insertion blocks 8 are fixedly connected to opposite sides of each of the two movable plates 7. Multiple fixing grooves 9 are formed on opposite sides of each of the two adjustment grooves 3. The opposite sides of the two insertion blocks 8 are respectively... Extending into the interior of the two fixed slots 9 below, the upper surface of the movable plate 5 and located on the left and right sides of the U-shaped plate 6 are provided with actuating slots 18. The left and right sides of the interior of the two actuating slots 18 are fixedly connected to the limiting slide rods 19. The outer walls of the two limiting slide rods 19 are slidably connected to the actuating plates 20. The opposite sides of the two actuating plates 20 are fixedly connected to the opposite sides of the two movable plates 7 with pull rods 21. The outer walls of the two limiting slide rods 19 are fitted with return springs 22. The two ends of the two return springs 22 are fixedly connected to the opposite sides of the two actuating plates 20 and the opposite sides of the interior of the two actuating slots 18, respectively.

[0030] By simultaneously pulling the two movable plates 7 relative to each other, the two plug-in blocks 8 are pulled out from the two fixed slots 9 at corresponding heights. At this time, the movable plate 5 can be moved freely. At the same time, when the actuating plate 20 is pulled, the return spring 22 is compressed. After being released, the return spring 22 can make the plug-in blocks 8 automatically insert back into the fixed slots 9, thereby fixing the movable plate 5. This can accommodate trainees of different heights. Whether tall or short, people can adjust the movable plate 5 to a suitable height and find a comfortable training posture, avoiding posture errors or physical fatigue caused by unsuitable height, and ensuring training effectiveness. At the same time, for different training postures, such as standing and squatting, the height of the movable plate 5 can also be adjusted to adapt to different postures, so that trainees can carry out effective and accurate aiming training in various postures, improve the comprehensiveness and flexibility of training, and better simulate actual shooting scenarios.

[0031] like Figure 2 As shown, the inner front and inner rear surfaces of the two adjusting vertical grooves 3 are provided with limiting vertical grooves 35, and the front and rear surfaces of the two sliding plates 4 are fixedly connected with limiting sliders 36. The outer walls of the multiple limiting sliders 36 are respectively slidably connected to the interior of the multiple limiting vertical grooves 35.

[0032] When the sliding plate 4 moves up and down within the adjusting vertical groove 3 to adjust the height of the moving plate 5, the limiting slider 36 slides along the limiting vertical groove 35 to ensure that the sliding plate 4 can only move smoothly in the vertical direction. This avoids instability in adjustment caused by shaking or offset, greatly improves the accuracy of the adjustment process, and thus ensures the stability of the fixed position of the simulation gun, providing a reliable foundation for precise aiming training.

[0033] like Figure 3 and Figure 5 As shown, buffer boxes 23 are fixedly connected to the inner front surfaces of the two transverse grooves 13, buffer plates 24 are slidably connected inside the two buffer boxes 23, support rods 25 are fixedly connected to the center of the rear surfaces of the two buffer plates 24, the rear ends of the two support rods 25 extend to the rear of the two buffer boxes 23 respectively, and are fixedly connected to abutment plates 26. The rear surfaces of the two abutment plates 26 contact the front surfaces of the two connecting blocks 14 respectively, and multiple buffer springs 27 are fixedly connected to the inner rear surfaces of the two buffer boxes 23 respectively.

[0034] When the simulated gun is fixed inside the U-shaped plate 12 and fires, generating recoil, the recoil pushes the U-shaped plate 12 and connecting block 14 backward. The connecting block 14 presses against the contact plate 26, which in turn causes the support rod 25 to drive the buffer plate 24 to slide within the buffer box 23. At this time, multiple buffer springs 27 between the rear of the buffer plate 24 and the rear surface inside the buffer box 23 are compressed, thus effectively buffering the recoil when the simulated gun is fired. This simulates a recoil experience that is closer to real shooting, allowing trainees to better feel and adapt to the impact of recoil on shooting posture and aiming stability. This helps to better control the gun in actual shooting scenarios. At the same time, it reduces the impact of recoil on the entire training device structure, reduces the risk of component wear and damage caused by long-term exposure to recoil, extends the service life of the device, and the stable recoil buffering effect makes the trainee's experience more consistent in each shooting training session. This helps trainees to more accurately summarize and improve shooting skills, and improve the accuracy and effectiveness of training.

[0035] like Figure 5 As shown, a T-shaped groove 33 is provided on the lower inner surface of U-shaped plate 16, and a T-shaped block 34 is fixedly connected to the lower surface of U-shaped plate 212. The outer wall of the T-shaped block 34 is slidably connected to the inside of the T-shaped groove 33.

[0036] When recoil is generated during simulated shooting, the structure of the T-slot 33 and T-block 34 prevents the U-shaped plate 12 from shifting laterally due to recoil, ensuring that the stock remains in a stable position. This allows the trainee to aim accurately and further improves the stability of the simulated gun during training, providing the trainee with more stable support when aiming and shooting, improving shooting accuracy, and cultivating correct shooting habits.

[0037] like Figure 1 and Figure 4 As shown, a control box 28 is fixedly connected to the lower surface of the movable plate 5. A rotating handle 29 is provided on the front surface of the control box 28. A worm gear 30 is fixedly connected to the center of the rear surface of the rotating handle 29. The rear surface of the worm gear 30 is rotatably connected to the inner rear surface of the control box 28 through a rotating shaft. An adjusting rod 31 is fixedly connected to the center of the lower surface of the U-shaped plate 6. The bottom end of the adjusting rod 31 is rotatably connected to the inner lower surface of the control box 28 through a rotating shaft. A worm wheel 32 is fixedly connected to the outer wall of the adjusting rod 31. The outer wall of the worm wheel 32 is meshed with the outer wall of the worm gear 30.

[0038] When the trainee turns the rotating handle 29, it drives the worm gear 30 to rotate, which in turn drives the meshing worm wheel 32 to rotate, thereby causing the adjusting rod 31 to rotate. Since the U-shaped plate 6 is connected to the adjusting rod 31, the angle of the U-shaped plate 6 changes with the rotation of the adjusting rod 31. Because the U-shaped plate 12 is connected to the U-shaped plate 6 and is used to fix the stock of the simulated gun, the shooting angle of the simulated gun can be adjusted. On the one hand, the trainee can easily adjust the shooting angle to adapt to different training scenarios and target positions, improving the flexibility and targeting of the training. On the other hand, the worm wheel 32 and the worm gear 30 have self-locking characteristics. When the shooting angle is adjusted to a suitable position, the worm wheel 32 will not rotate in the opposite direction due to the vibration, recoil, or other factors generated by the shooting of the simulated gun when no external force is applied to the rotating handle 29. This ensures the stability of the shooting angle of the simulated gun, allowing the trainee to maintain a stable aiming state during continuous shooting training, greatly improving the training effect and helping to cultivate accurate shooting skills.

[0039] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A simulation gun based precision aiming training device comprising a base (1) characterised in that: The upper surface of the base (1) is symmetrically connected with side plates (2), and adjusting vertical grooves (3) are arranged on the opposite sides of the two side plates (2). The lower part of the inside of the two adjusting vertical grooves (3) is slidably connected with sliding plates (4), and the opposite sides of the two sliding plates (4) are fixedly connected with a moving plate (5). The upper surface center of the moving plate (5) is provided with a U-shaped plate one (6). The inside of the two sliding plates (4) is slidably connected with movable plates (7), and the opposite sides of the two movable plates (7) are fixedly connected with plug-in blocks (8). The opposite sides of the two plug-in blocks (8) extend into the inside of the two fixing grooves (9) below.

2. The precise aiming training device based on the simulation gun according to claim 1, characterized in that: The upper surface of the base (1) is provided with a plurality of through-type positioning round holes (10), and the inside of the plurality of positioning round holes (10) is provided with ground nails (11).

3. The precise aiming training device based on the simulation gun according to claim 1, characterized in that: The inside of the U-shaped plate one (6) is connected with a U-shaped plate two (12). The left side and the right side of the inner side wall of the U-shaped plate one (6) are provided with horizontal grooves (13). The inside of the two horizontal grooves (13) is slidably connected with connecting blocks (14). The opposite sides of the two connecting blocks (14) are fixedly connected with the left side and the right side of the U-shaped plate two (12), respectively. The opposite sides of the two connecting blocks (14) are provided with rotating handles one (15). The opposite sides of the two rotating handles one (15) are fixedly connected with screw rods (16) at the center. The opposite ends of the two screw rods (16) extend to the inner side of the U-shaped plate two (12) and are rotatably connected with butt clamping plates (17) through rotating shafts.

4. The precise aiming training device based on a simulation gun according to claim 1, characterized in that: The upper surface of the moving plate (5) and the left side and the right side of the U-shaped plate one (6) are provided with a plurality of pulling grooves (18). The inside left side and the inside right side of the two pulling grooves (18) are fixedly connected with limiting sliding rods (19). The outer side walls of the two limiting sliding rods (19) are slidably connected with pulling plates (20). The opposite sides of the two pulling plates (20) are fixedly connected with pulling rods (21) through the opposite sides of the two movable plates (7). The outer side walls of the two limiting sliding rods (19) are sleeved with return springs (22). The opposite sides of the two pulling plates (20) and the opposite sides of the two pulling grooves (18) are fixedly connected with the two return springs (22).

5. The precise aiming training device based on the simulation gun according to claim 3, characterized in that: The inner front surface of two transverse grooves (13) is fixedly connected with a buffer box (23), the interior of two buffer boxes (23) is slidably connected with a buffer plate (24), the rear surface center of two buffer plates (24) is fixedly connected with a support rod (25), the rear end of two support rods (25) respectively extends to the rear of two buffer boxes (23), and is fixedly connected with a contact plate (26), the rear surface of two contact plates (26) respectively contacts with the front surface of two connecting blocks (14), and the rear surface of two buffer plates (24) is fixedly connected with a plurality of buffer springs (27) respectively.

6. The precise aiming training device based on a simulation gun according to claim 1, characterized in that: The lower surface of the moving plate (5) is fixedly connected with a control box (28), the front surface of the control box (28) is provided with a rotating handle two (29), the rear surface center of the rotating handle two (29) is fixedly connected with a worm (30), the rear surface of the worm (30) is rotatably connected with the rear surface of the control box (28) through a rotating shaft, the lower surface center of the U-shaped plate one (6) is fixedly connected with an adjusting rod (31), the bottom end of the adjusting rod (31) is rotatably connected with the lower surface of the control box (28) through a rotating shaft, and the outer side wall of the adjusting rod (31) is fixedly connected with a worm wheel (32). The outer side wall of the worm wheel (32) is meshedly connected with the outer side wall of the worm (30).

7. The precise aiming training device based on the simulation gun according to claim 3, characterized in that: The lower surface of the U-shaped plate two (12) is fixedly connected with a T-shaped block (34), and the outer side wall of the T-shaped block (34) is slidably connected with the T-shaped groove (33).

8. The precise aiming training device based on a simulation gun according to claim 1, characterized in that: The inner front surface and the inner rear surface of two adjusting vertical grooves (3) are provided with a limiting vertical groove (35), and the front surface and the rear surface of two sliding plates (4) are fixedly connected with a limiting sliding block (36). The outer side wall of a plurality of limiting sliding blocks (36) is slidably connected with the inner side wall of a plurality of limiting vertical grooves (35).