Sighting telescope simulator with micro display module

By using micro-display modules and encoder components in the sight simulator, we can simulate multiple battlefield environments in virtual scenes, solving the problem of a single experience of traditional sight simulators, and improving training effect and safety.

CN223050546UActive Publication Date: 2025-07-01CHANGZHOU HANJI TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422409636.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-08
Publication Date
2025-07-01
Estimated Expiration
2034-10-08

AI Technical Summary

Technical Problem

The existing sight simulator cannot simulate the real battlefield environment and different battlefield environments, resulting in a single experience and cannot truly play the role of training and experience.

Method used

A micro-display module is used to replace traditional optical sights, display 3D virtual scenes through a micro-display, and receive mobile data in combination with an absolute value encoder and an optoelectronic encoder to realize the direction adjustment of the sight body and simulate various war environments and battlefield emergencies.

Benefits of technology

It realizes the real simulation of multiple battlefield environments in virtual scenes, improves experience efficiency and safety, reduces equipment losses, exercises practical combat capabilities and psychological endurance, and provides a cost-effective and efficient military simulation experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223050546U_ABST
    Figure CN223050546U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of sighting telescope simulators, in particular to a sighting telescope simulator with a micro-display module. Comprising a sighting telescope body, the sighting telescope body is connected with a micro-display module through a micro-display support, and the micro-display module comprises a micro-display and is suitable for displaying a 3D virtual scene; and the inclination angle box is suitable for receiving data generated by up-down and left-right movement of the micro-display and displaying the data in the micro-display. The encoder assembly comprises an absolute value encoder and is suitable for receiving movement data of the micro-display in the left-right direction and displaying the movement data in the micro-display; and the photoelectric encoder is suitable for receiving the movement data of the sighting telescope body in the front-back direction and displaying the movement data in the micro display. According to the utility model, a traditional optical sighting telescope is replaced by the micro-display module, so that people can experience in a virtual scene, the expenditure of scene arrangement is saved, and the loss of equipment can also be reduced; when experiencing in the virtual battlefield, the user cannot be injured due to errors, and the safety is better.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of sight simulators, in particular to a sight simulator with a microdisplay module. Background Art

[0002] At present, non-combat military entertainment projects are deeply loved by the public. Among them, using a sight to simulate actual combat situations for sniping is the most popular among the public. For example, the existing patent CN118500195A discloses a white light sight, which uses an optical lens to image, overlaps the target image and the aiming line on the same focal plane, and provides a clearer and more accurate aiming experience.

[0003] The above technology has the following defects: The optical lenses equipped with traditional sights cannot simulate a real battlefield environment, nor can they simulate different battlefield environments, which results in a very single experience for the public and fails to truly play the role of experience. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a sight simulator with a microdisplay module to solve the problems existing in the prior art.

[0005] To solve the above technical problems, the utility model provides the following technical solutions: A sight simulator with a microdisplay module, including a sight body, on which a microdisplay module is connected through a microdisplay bracket, and an encoder assembly is also provided on the sight body. The microdisplay module is communicatively connected with the encoder assembly. Among them, the microdisplay module includes a microdisplay, suitable for displaying a 3D virtual scene; and an inclination box, suitable for receiving data generated by the up, down, left, and right movement of the microdisplay and displaying it in the microdisplay.

[0006] Further, the upper end of the microdisplay bracket is an arc-shaped installation part suitable for installing the microdisplay, and the lower end is a connecting plate suitable for installing on the rotating shaft of the sight body.

[0007] Further, a groove is provided at one end of the connecting plate away from the microdisplay, and a photoelectric switch is installed at the top of the groove.

[0008] Further, the inside of the groove is suitable for installing the numerical control line of the microdisplay, and a card slot is also provided in the groove, which is suitable for matching a wire pressing clip buckle.

[0009] Further, the encoder assembly includes an absolute encoder, suitable for receiving the left and right movement data of the microdisplay and displaying it in the microdisplay; and an optical encoder, suitable for receiving the front and back movement data of the sight body and displaying it in the microdisplay.

[0010] Furthermore, the absolute encoder includes an absolute encoder body, an absolute encoder protective cover, and a fixing plate. The absolute encoder body is installed inside the absolute encoder protective cover. The top of the absolute encoder protective cover is provided with an opening. The fixing plate is fixed to the absolute encoder body by screws and is located at the opening at the top of the absolute encoder protective cover.

[0011] Furthermore, the absolute encoder is connected to the sighting device body through a rotational connection assembly. The rotational connection assembly includes a moving plate, a connecting shaft, a synchronous pulley, a support column, a guiding bearing, a connecting ear plate, and a belt. The fixing plate is fixedly connected to the moving plate. The moving plate is provided with a slot for the sensing shaft of the absolute encoder body to extend out. The end of the sensing shaft of the absolute encoder body is sleeved with the connecting shaft, and the end of the connecting shaft is sleeved with the synchronous pulley. There are two support columns. The moving plate is also provided with two slots respectively suitable for rotatably connecting the support columns. The ends of the two support columns are both sleeved with guiding bearings. The belt is sleeved outside the synchronous pulley and the two guiding bearings. A connecting ear plate is fixedly installed between the tops of the two support columns, and the connecting ear plate is suitable for connecting to the sighting device body.

[0012] Furthermore, the photoelectric encoder includes a photoelectric encoder body, a photoelectric encoder protective cover, a gear mounting shell, and a photoelectric encoder gear. The photoelectric encoder body is installed inside the photoelectric encoder protective cover. The side of the photoelectric encoder protective cover is provided with an opening. The gear mounting shell is installed on the side of the photoelectric encoder body by screws and is located at the opening on the side of the photoelectric encoder protective cover. The sensing shaft of the photoelectric encoder body extends out from the side, and the photoelectric encoder gear is installed on the sensing shaft of the photoelectric encoder body. The side of the gear mounting shell is provided with an opening.

[0013] Furthermore, the absolute encoder and the photoelectric encoder are connected through a commutation connection block, a bottom plate, and a cover. One end of the commutation connection block is installed on the moving plate, and the other end is connected to the bottom plate. The middle of the bottom plate is provided with a slot suitable for connecting the photoelectric encoder protective cover, and the cover is installed at the slot of the bottom plate.

[0014] Furthermore, the sighting device body is also provided with a horizontal bubble suitable for observing whether the gun has a horizontal offset and a vertical bubble suitable for observing whether the gun has a front-back offset.

[0015] Compared with the prior art, the beneficial effects achieved by the present utility model are:

[0016] 1. The utility model replaces the traditional optical sight with a microdisplay module, enabling the public to experience in a virtual scenario. Besides saving the expenses of scene arrangement, it can also reduce the wear and tear of equipment, which is very economical. In addition, experiencing in a virtual battlefield will not cause injuries due to mistakes, and the safety is better.

[0017] 2. The utility model replaces the traditional optical sight with a microdisplay module, which can present infinite virtual scenes in front of the public, solving the problems of limited space and equipment. And it can be experienced repeatedly to improve the experience efficiency.

[0018] 3. The utility model replaces the traditional optical sight with a microdisplay module, which can simulate a variety of war environments and thousands of battlefield emergencies, reducing the difference from actual combat, with better authenticity. And to a certain extent, it exercises and improves the actual combat ability and psychological endurance of the experiencer.

[0019] 4. The utility model replaces the traditional optical sight with a microdisplay module, implementing large-scale experience at a small cost and in a short time, providing a new idea for military simulation experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The drawings are used to provide a further understanding of the utility model and constitute a part of the specification. Together with the embodiments of the utility model, they are used to explain the utility model and do not constitute a limitation to the utility model. In the drawings:

[0021] Figure 1 is the side view of the overall structure of Embodiment 1;

[0022] Figure 2 is the rear view of the overall structure of Embodiment 1;

[0023] Figure 3 is the structural diagram of the encoder assembly of Embodiment 1;

[0024] Figure 4 is the top view of the encoder assembly of Embodiment 1.

[0025] In the figure, 1 is the sight body; 11 is the horizontal spirit level; 12 is the direction handwheel; 13 is the insertion shaft; 14 is the vertical spirit level; 15 is the sight handwheel; 16 is the turbine; 2 is the microdisplay module; 21 is the microdisplay; 3 is the encoder assembly; 31 is the absolute encoder; 311 is the absolute encoder body; 312 is the absolute encoder protective cover; 313 is the fixing plate; 32 is the photoelectric encoder; 321 is the photoelectric encoder body; 322 is the photoelectric encoder protective cover; 323 is the gear mounting housing; 324 is the photoelectric encoder gear; 325 is the commutation connection block; 326 is the base plate; 327 is the cover; 33 is the rotating connection assembly; 331 is the moving plate; 332 is the connecting shaft; 333 is the synchronous pulley; 334 is the support column; 335 is the guide bearing; 336 is the connecting ear plate; 337 is the belt; 4 is the microdisplay bracket; 41 is the arc-shaped mounting portion; 42 is the connecting plate; 43 is the wire pressing clip buckle; 44 is the photoelectric switch. Detailed implementation mode

[0026] Next, in combination with the embodiments of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0027] Embodiment 1

[0028] As Figure 1 - Figure 2 shown, Embodiment 1 of the present invention discloses a sight simulator with a microdisplay module, which mainly includes a sight body 1, a microdisplay module 2 and an encoder assembly 3. The microdisplay module 2 is connected to the sight body 1 through a microdisplay bracket 4. The microdisplay module 2 includes a microdisplay 21 and an inclination box (not shown in the figure). The microdisplay 21 is suitable for displaying a 3D virtual scene, and the inclination box is suitable for receiving the data generated by the up, down, left and right movement of the microdisplay 21 and displaying it in the microdisplay 21. The sight body 1 is provided with a horizontal spirit level 11, a direction handwheel 12, an insertion shaft 13 and a vertical spirit level 14. The horizontal spirit level 11 is suitable for observing whether the gun has a horizontal offset, the direction handwheel 12 is suitable for adjusting the left and right directions of the microdisplay 21, the insertion shaft 13 is suitable for connecting with the gun, and the vertical spirit level 14 is suitable for observing whether the gun has a front and back offset. The encoder assembly 3 includes an absolute encoder 31 and a photoelectric encoder 32. The absolute encoder 31 is suitable for receiving the movement data of the microdisplay 21 in the left and right directions and displaying it in the microdisplay 21, and the photoelectric encoder 32 is suitable for receiving the movement data of the sight body 1 in the front and back directions and displaying it in the microdisplay 21.

[0029] Based on practical applications, such as Figure 1 andFigure 2 As shown, the upper end of the microdisplay bracket 4 is an arc-shaped mounting portion 41 suitable for mounting the microdisplay 21. The arc-shaped mounting portion 41 is connected to the connecting ear of the microdisplay 21 by bolts. The lower end of the microdisplay bracket 4 is a connecting plate 42, and the bottom of the connecting plate 42 is mounted on the original rotating shaft of the sight body 1 for connecting the optical lens group, so that the microdisplay 21 can observe the scene freely up, down, left and right. One end of the connecting plate 42 away from the microdisplay 21 is provided with a groove, and an optoelectronic switch 44 is installed at the top of the groove. The optoelectronic switch 44 is used to control the on and off of the microdisplay module 2: when the experiencer is close within a distance of 0 - 30 cm, the microdisplay module 2 automatically powers on; when the experiencer leaves, the microdisplay module 2 automatically powers off and shuts down. The inside of the groove is used to install the numerical control line of the microdisplay 21, and a card slot is also provided in the groove. After the numerical control line is placed, a wire pressing clip buckle 43 can be inserted into the card slot to fix the numerical control line. The microdisplay 21 is purchased from a commercially available mature microdisplay. The microdisplay 21 is connected to a computer through a numerical control line such as an HDMI line, and the set scene is transmitted into the microdisplay 21 through the computer, so that the public can experience in different scenes. After adding the microdisplay 21, the public can see a highly realistic combat scene, which can simulate various environmental factors such as weather, terrain, and enemy status, making the experience closer to actual combat conditions. The microdisplay module provides a risk-free and safe virtual environment, and the experience content can be updated and repeated at any time, enabling players to be familiar with various combat situations, continuously improve their own skills, and reach a higher combat level.

[0030] Based on practical applications, such as Figure 3 As shown, the absolute encoder 31 includes an absolute encoder body 311, an absolute encoder protective cover 312, and a fixing plate 313. The absolute encoder body 311 is installed inside the absolute encoder protective cover 312. The top of the absolute encoder protective cover 312 is provided with an opening, and the fixing plate 313 is fixed to the absolute encoder body 311 by screws and is located at the opening at the top of the absolute encoder protective cover 312.

[0031] Such as Figure 3 and Figure 4As shown in the figure, the absolute encoder 31 is connected to the sight body 1 through a rotating connection assembly 33. The rotating connection assembly 33 includes a moving plate 331, a connecting shaft 332, a synchronous pulley 333, support columns 334, guide bearings 335, connecting ear plates 336, and a belt 337: A fixed plate 313 is fixedly connected to the moving plate 331. The moving plate 331 is provided with a slot for the sensing shaft of the absolute encoder body 311 to extend out. The end of the sensing shaft of the absolute encoder body 311 is sleeved with the connecting shaft 332, and the end of the connecting shaft 332 is sleeved with the synchronous pulley 333; There are two support columns 334. The moving plate 331 is also provided with two slots for respectively rotatably connecting the support columns 334. The ends of the two support columns 334 are sleeved with guide bearings 335; The belt 337 is sleeved outside the synchronous pulley 333 and the two guide bearings 335; A connecting ear plate 336 is fixedly installed between the tops of the two support columns 334. The connecting ear plate 336 is suitable for connecting to the sight body 1. The rotating connection assembly 33 is used to tighten the belt 337. First, pull the moving plate 331 backward to tighten the belt 337, and finally assemble and lock the guide bearing 335 and the connecting ear plate 336. There is a component of a turbine 16 and a worm (not shown in the figure) in the sight body 1. One end of the belt 337 is connected to the turbine 16 inside the sight body 1. When the component of the turbine 16 and the worm rotates, it drives the belt 337 to move.

[0032] As Figure 3 shown in the figure, the photoelectric encoder 32 includes a photoelectric encoder body 321, a photoelectric encoder protective cover 322, a gear mounting shell 323, and a photoelectric encoder gear 324. The photoelectric encoder body 321 is installed inside the photoelectric encoder protective cover 322. The side of the photoelectric encoder protective cover 322 is provided with an opening. The gear mounting shell 323 is installed on the side of the photoelectric encoder body 321 by screws and is located at the opening on the side of the photoelectric encoder protective cover 322. The sensing shaft of the photoelectric encoder body 321 extends out from the side. The photoelectric encoder gear 324 is installed on the sensing shaft of the photoelectric encoder body 321. The side of the gear mounting shell 323 is provided with an opening. The front end of the sight body 1 is provided with a rear sight handwheel 15. The rear sight handwheel 15 is provided with teeth that mesh with the photoelectric encoder gear 324. Rotating the rear sight handwheel 15 can drive the photoelectric encoder gear 324 to rotate.

[0033] As Figure 3 shown in the figure, the absolute encoder 31 and the photoelectric encoder 32 are connected through a commutation connection block 325, a bottom plate 326, and a cover 327. One end of the commutation connection block 325 is installed on the moving plate 331, and the other end is connected to the bottom plate 326. The middle of the bottom plate 326 is provided with a slot for connecting the photoelectric encoder protective cover 322. The cover 327 is installed at the slot of the bottom plate 326.

[0034] The operating principle of this embodiment is as follows: During installation, first install the microdisplay module on the microdisplay bracket, then assemble the whole on the sight body, and then install the encoder assembly and others on the sight body. Then assemble the sight body with the barrel through the insertion shaft. During use, the experiencer can experience the virtual scene through the microdisplay of the microdisplay module.

[0035] When the user needs to adjust the microdisplay module 2 in the left - right direction, the direction handwheel 12 will be rotated. At this time, the components of the worm and worm gear 16 in the sight body 1 rotate in cooperation. The worm gear 16 is connected to the belt 337 to drive the synchronous wheel 333 to rotate, and the angular information of the left - right movement is transmitted to the absolute encoder 31. The absolute encoder 31 transmits the data to the tilt box of the microdisplay module 2.

[0036] When the user needs to adjust the microdisplay module 2 in the up - down direction, the tangent sight handwheel 15 will be rotated. The tangent sight handwheel 15 meshes with the optical encoder gear 324 of the optical encoder 32. When the tangent sight handwheel 15 rotates, the optical encoder gear 324 also rotates, and then the angular data of the rotation of the optical encoder gear 324 is transmitted to the tilt box of the microdisplay module 2.

[0037] The tilt box receives the data generated by the up - down and left - right movements and displays them in the microdisplay 21 for the experiencer to refer to.

[0038] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above - mentioned exemplary embodiments, and without departing from the spirit or basic characteristics of the present utility model, the present utility model can be implemented in other specific forms. Therefore, in any regard, the embodiments should be regarded as exemplary and non - restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes within the meaning and scope of the equivalent elements of the claims in the present utility model. Any reference signs in the claims should not be regarded as limiting the claimed rights.

Claims

1. A sight simulator with a micro-display module, comprising a sight body (1), characterized in that: The sight body (1) is connected to a micro-display module (2) via a micro-display bracket (4), and an encoder assembly (3) is also provided on the sight body (1). The micro-display module (2) is communicatively connected to the encoder assembly (3), wherein the micro-display module (2) comprises A micro display (21) is suitable for displaying a 3D virtual scene; and a tilt box is suitable for receiving data generated by the up, down, left, and right movements of the micro display (21) and displaying the data on the micro display (21).

2. The aiming simulator with a micro display module according to claim 1, characterized in that: The upper end of the micro-display bracket (4) is an arc-shaped mounting portion (41) suitable for mounting the micro-display (21), and the lower end is a connecting plate (42) suitable for mounting on the rotating shaft of the sight body (1).

3. The aiming simulator with a micro display module according to claim 2, characterized in that: A groove is provided at one end of the connecting plate (42) away from the micro display (21), and a photoelectric switch (44) is installed at the top of the groove.

4. The aiming simulator with a micro display module according to claim 3, characterized in that: The interior of the groove is suitable for installing a numerical control line of a micro display (21), and a card slot is also provided in the groove, and the card slot is suitable for matching a wire pressing clamp buckle (43).

5. The aiming simulator with a micro display module according to claim 4, characterized in that: The encoder assembly (3) comprises an absolute value encoder (31) adapted to receive movement data of the microdisplay (21) in the left-right direction and display the data on the microdisplay (21); and a photoelectric encoder (32) adapted to receive movement data of the sight body (1) in the front-back direction and display the data on the microdisplay (21).

6. The aiming simulator with a micro display module according to claim 5, characterized in that: The absolute value encoder (31) comprises an absolute value encoder body (311), an absolute value encoder protection cover (312) and a fixing plate (313); the absolute value encoder body (311) is installed inside the absolute value encoder protection cover (312); an opening is provided at the top of the absolute value encoder protection cover (312); and the fixing plate (313) is fixed to the absolute value encoder body (311) by screws and is located at the opening at the top of the absolute value encoder protection cover (312).

7. The aiming simulator with a micro display module according to claim 6, characterized in that: The absolute value encoder (31) is connected to the sight body (1) via a rotating connection assembly (33), wherein the rotating connection assembly (33) comprises a moving plate (331), a connecting shaft (332), a synchronous wheel (333), a support column (334), a guide bearing (335), a connecting ear plate (336) and a belt (337): the fixed plate (313) is fixedly connected to the moving plate (331), the moving plate (331) is provided with a slot for the sensing shaft of the absolute value encoder body (311) to extend out, and the end of the sensing shaft of the absolute value encoder body (311) is sleeved with a connecting rod (337). A shaft (332), the end of the connecting shaft (332) is sleeved with a synchronous wheel (333); two support columns (334) are provided, and the movable plate (331) is also provided with two slots suitable for rotating the connecting support columns (334) respectively, and the ends of the two support columns (334) are sleeved with guide bearings (335); the belt (337) is sleeved on the outer sides of the synchronous wheel (333) and the two guide bearings (335); a connecting ear plate (336) is fixedly installed between the tops of the two support columns (334), and the connecting ear plate (336) is suitable for connecting to the sight body (1).

8. The aiming simulator with a micro display module according to claim 7, characterized in that: The photoelectric encoder (32) comprises a photoelectric encoder body (321), a photoelectric encoder protection cover (322), a gear mounting shell (323) and a photoelectric encoder gear (324); the photoelectric encoder body (321) is mounted in the photoelectric encoder protection cover (322); an opening is provided on a side of the photoelectric encoder protection cover (322); the gear mounting shell (323) is mounted on a side of the photoelectric encoder body (321) by means of screws and is located at the opening on the side of the photoelectric encoder protection cover (322); an induction shaft of the photoelectric encoder body (321) extends from a side; the photoelectric encoder gear (324) is mounted on the induction shaft of the photoelectric encoder body (321); and an opening is provided on a side of the gear mounting shell (323).

9. The aiming simulator with a micro display module according to claim 8, characterized in that: The absolute value encoder (31) and the photoelectric encoder (32) are connected via a commutation connection block (325), a bottom plate (326) and a cover (327); one end of the commutation connection block (325) is mounted on the movable plate (331), and the other end is connected to the bottom plate (326); a groove is opened in the middle of the bottom plate (326) for connecting a photoelectric encoder protective cover (322); and the cover (327) is installed at the groove of the bottom plate (326).

10. The aiming simulator with a micro display module according to claim 9, characterized in that: The sight body (1) is also provided with a transverse bubble (11) for observing whether the gun has horizontal deviation, and a longitudinal bubble (14) for observing whether the gun has front-back deviation.