Suspended red dot sighting telescope

By abolishing the inner cylinder structure, the light-resolving mirror is directly installed in the housing cavity of the main body shell, and the ballistic and wind bias adjustment components are used to precisely adjust the position of the suspension block, which solves the problem of narrow observation field of the red dot sight lens, achieving a larger observation field of view and higher shooting accuracy.

CN223204807UActive Publication Date: 2025-08-08GUANGZHOU GUANGYU XINGHUI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422220737.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-08-08
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

The observation field of existing red dot sights is narrow, resulting in the target search not being fast enough.

Method used

The inner cylinder structure is abolished, and the light-resolving mirror is directly installed in the housing cavity of the main body shell, and the position of the suspension block is precisely adjusted through the ballistic adjustment component and the wind bias adjustment component to increase the area of the light-resolving mirror to achieve a larger observation field of view and shooting accuracy.

Benefits of technology

With the same cross-sectional area, the light-resolving mirror area is larger, the observation field is wider, the target search is faster, and the shooting accuracy is higher.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of optical sighting telescope, and provides a suspension type red dot sighting telescope which comprises a main body shell, a beam splitter, a trajectory adjusting assembly, a windage yaw adjusting assembly, a suspension block, a light source, an eyepiece and a power module, the beam splitter is directly installed in a containing cavity of the main body shell, an inner barrel structure is omitted, and under the condition that the cross sectional area of the sighting telescope is the same, the suspension block is installed on the eyepiece. The area of the beam splitter can be set to be larger, so that a larger observation view field can be obtained, and target searching is faster; and the suspension block is assembled in the moving groove in a suspension mode, the position of a red dot on the beam splitter can be precisely adjusted up and down and left and right through the trajectory adjusting assembly and the windage yaw adjusting assembly, and the shooting precision is high.
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Description

Technical Field

[0001] The utility model belongs to the technical field of optical sights, in particular to a suspended red dot sight. Background Art

[0002] Red dot sights have been widely used in self-defense, law enforcement, and shooting competitions. They can be used on different types of firearms, such as pistols, submachine guns, rifles, etc., and can withstand the impact caused by the violent movement or vibration generated during the use of firearms and maintain stable performance.

[0003] Currently, red dot sights generally consist of a housing, an inner tube, a light analyzer, a light source, and an eyepiece assembly. For example, in the enclosed red dot sight described in CN214950885U, the inner tube is rotatably mounted within the housing, the light analyzer is mounted at the front end of the inner tube, the light source is mounted at the rear end of the housing, and the light source is directed toward the light analyzer. The eyepiece assembly is mounted at the rear end of the housing, and the user observes and uses the sight through the eyepiece assembly. However, this sight has the following disadvantages: because the inner tube occupies part of the interior space of the housing, and the light analyzer is mounted within the inner tube, the light analyzer has a smaller area than a sight with the same cross-sectional area, resulting in a narrow field of view and an inability to quickly search for targets.

[0004] Therefore, a suspended red dot sight is provided to solve the problem of the narrow observation field of the above-mentioned sight. Utility Model Content

[0005] In order to solve the above technical problems, the utility model provides a suspended red dot sight, comprising:

[0006] A main body shell is formed with a receiving cavity, and the receiving cavity penetrates the main body shell along the length direction of the main body shell;

[0007] A light-dividing mirror, wherein a first mounting seat is provided at the front end of the accommodating cavity, and the light-dividing mirror is mounted on the first mounting seat and closes the front end of the accommodating cavity;

[0008] The trajectory adjustment component is provided with a second mounting seat on the top surface of the main shell, the second mounting seat is in a boss shape, the second mounting seat is connected to the accommodating cavity, and the trajectory adjustment component is installed on the second mounting seat;

[0009] A windage adjustment component is provided on the first side of the main shell, wherein a third mounting seat is provided, the third mounting seat is in a boss shape, the third mounting seat is connected to the accommodating cavity, and the windage adjustment component is mounted on the third mounting seat;

[0010] A suspension block, wherein the suspension block is in a frame structure, a movable groove is provided at the rear end of the accommodating cavity, a first spring is mounted on a first side of the suspension block, a second spring is mounted on a second side of the suspension block, the suspension block is inserted into the movable groove, a third side of the suspension block abuts against the trajectory adjustment component, and a fourth side of the suspension block abuts against the windage adjustment component, a bottom plate is configured on the bottom surface of the main body shell to enclose the accommodating cavity, the first spring abuts against the bottom plate, and the second spring abuts against an inner side of the movable groove, thereby being suspended in the movable groove;

[0011] A light source, wherein a light source seat is provided at the front end of the suspension block, the light source is mounted on the light source seat, and the light source faces the light analyzer;

[0012] An eyepiece, wherein the rear end of the accommodating cavity is provided with an eyepiece slot, and the eyepiece is mounted in the eyepiece slot and closes the rear end of the accommodating cavity;

[0013] A power supply module is provided on the first side of the main shell with a power supply seat, and the power supply module is installed on the power supply seat and electrically connected to the light source.

[0014] Optionally, a brightness adjustment module is further included, which is installed on the second side of the main shell. The brightness adjustment module includes a button assembly and a control panel. The button assembly is electrically connected to the control panel, and the control panel is electrically connected to the power module and the light source.

[0015] Optionally, a solar module is further included, wherein the solar module is installed on the top surface of the main body shell and is electrically connected to the control panel.

[0016] Optionally, the trajectory adjustment assembly includes a first base, a first adjustment pin, a first sealing ring, a first spring pin and a first turntable, the first base is mounted on the second mounting seat, the first adjustment pin is embedded in the bottom of the first base and abuts the third side surface of the suspension block, the first sealing ring is mounted on the lower end of the first base and closes the accommodating cavity, the first spring pin is mounted on the upper end of the first base, and the first turntable is sleeved on the upper end of the first base and engages with the first spring pin.

[0017] Optionally, the windage adjustment assembly includes a second base, a second adjustment pin, a second sealing ring, a second spring pin and a second turntable, the second base is mounted on the third mounting seat, the second adjustment pin is embedded in the bottom of the second base and abuts the fourth side surface of the suspension block, the second sealing ring is mounted on the lower end of the second base and closes the accommodating cavity, the second spring pin is mounted on the upper end of the second base, and the second turntable is sleeved on the upper end of the second base and engages with the second spring pin.

[0018] Optionally, the power module includes a battery compartment, a battery and a battery cover, the battery compartment is installed on the power base, the battery is buckled into the battery compartment, and the battery cover closes the battery compartment.

[0019] Optionally, the light analyzing mirror is in a spherical shell structure, and the first mounting seat is arranged in a stepped manner.

[0020] Optionally, the light source seat is arranged obliquely, and the light source seat is located at the midpoint of the frame of the suspension block.

[0021] Optionally, a first blind hole is provided on the first side of the suspension block, and a second blind hole is provided on the second side of the suspension block. The first spring is inserted into the first blind hole for installation, and the second spring is inserted into the second blind hole for installation.

[0022] Optionally, the bottom plate is provided with a limiting groove, the limiting groove is adapted for installation of the first spring, and the limiting groove limits the first spring from being separated from the limiting groove.

[0023] Compared with the prior art, the beneficial effects of the present invention are:

[0024] The utility model provides a suspended red dot sight, comprising a main body shell, a light analyzer, a ballistic adjustment component, a windage adjustment component, a suspension block, a light source, an eyepiece and a power module. The light analyzer is directly mounted in a receiving cavity of the main body shell, eliminating an inner tube structure. Under the condition that the cross-sectional area of the sight is the same, the area of the light analyzer can be set larger, thereby obtaining a larger observation field of view and searching for targets more quickly. The suspension block is suspended and assembled in a movable groove, and the position of the red dot on the light analyzer can be precisely adjusted up, down, left and right through the ballistic adjustment component and the windage adjustment component, thereby achieving high shooting accuracy. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a three-dimensional schematic diagram of the floating red dot sight of the present utility model;

[0026] Figure 2 This is a schematic diagram of an explosion of the suspended red dot sight of the present invention;

[0027] Figure 3 This is a front view schematic diagram of the floating red dot sight of the present invention;

[0028] Figure 4 for Figure 3 BB cross-sectional diagram;

[0029] Figure 5 is a three-dimensional schematic diagram of the suspended block;

[0030] Figure 6 This is another three-dimensional schematic diagram of the floating red dot sight of the present invention;

[0031] Figure 7 is a three-dimensional schematic diagram of the first turntable;

[0032] Figure 8 It is a three-dimensional schematic diagram of the first spring pin.

[0033] Illustration:

[0034] 1. Main housing; 2. Light analyzer; 3. Ballistic adjustment assembly; 4. Windage adjustment assembly; 5. Suspension block; 6. Light source; 7. Eyepiece; 8. Power module; 9. Accommodation chamber; 10. First mounting seat; 11. Moving slot; 12. Eyepiece slot; 13. First spring; 14. Second spring; 15. Bottom plate; 16. First blind hole; 17. Second blind hole; 18. Limiting slot; 19. Light source seat; 20. Second mounting seat; 21. First base; 22. First adjustment pin; 23. First sealing ring; 24. First spring pin; 25. First turntable; 26. First mounting hole; 27. Tooth socket; 28. Third mounting seat; 29. Second base

[0035] 30. Second adjustment pin; 31. Second sealing ring; 32. Second spring pin; 33. Second turntable; 34. Second mounting hole; 35. Power socket; 36. Battery compartment; 37. Battery; 38. Battery cover; 39. Button assembly; 40. Control panel; 41. Solar module; 42. Adapter slot; 43. Tension adjustment assembly; 44. Groove; 45. Tensioning screw; 46. Pressure block. DETAILED DESCRIPTION

[0036] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0037] In the description of the present invention, it should be noted that the terms "center", "up", "down", "left", "right", "vertical", "horizontal", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limitations on the present invention.

[0038] Furthermore, in the description of this utility model, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; internal connections between two components; wireless connections or wired connections. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.

[0039] In addition, the technical features involved in the different embodiments of the present invention described later can be combined with each other as long as they do not conflict with each other.

[0040] like Figure 1-8 An embodiment of the present invention provides a suspended red dot sight, comprising a main housing 1, a light analyzer 2, a trajectory adjustment assembly 3, a windage adjustment assembly 4, a suspension block 5, a light source 6, an eyepiece 7, and a power module 8. The light analyzer 2, the suspension block 5, and the eyepiece 7 are installed in the main housing 1, the trajectory adjustment assembly 3, the windage adjustment assembly 4, and the power module 8 are installed on the main housing 1, and the light source 6 is installed on the suspension block 5 and faces the light analyzer 2. Specifically, the main housing 1 has a rectangular structure, and the interior of the main housing 1 is formed into a receiving cavity 9, and the receiving cavity 9 penetrates the main housing 1 along the length direction of the main housing 1. A first mounting seat 10 is provided at the front end of the receiving cavity 9, and the first mounting seat 10 is arranged along the transverse direction of the receiving cavity 9. The light analyzer 2 is mounted on the first mounting seat 10 and closes the front end of the receiving cavity 9. The light analyzer 2 is used for imaging. A movable groove 11 is provided at the rear end of the receiving cavity 9, and the movable groove 11 is arranged along the transverse direction of the receiving cavity 9. The suspension block 5 is inserted into the movable groove 11 and is suspended. The rear end of the accommodating chamber 9 is also provided with an eyepiece slot 12, which runs transversely along the accommodating chamber 9. The eyepiece 7 can be securely mounted in the eyepiece slot 12 by adhesive, sealing the rear end of the accommodating chamber 9. The eyepiece 7 is used for aiming by the user. Preferably, the main housing 1 is a generally square cylindrical structure, meaning that the aspect ratio of the main housing 1 is close to 1. This design allows the area of the light analyzer 2 to be increased while maintaining the same lateral area of the sight, thereby further reducing the size of the suspended red dot sight and achieving a larger field of view, thereby enabling rapid target search.

[0041] Furthermore, in this embodiment, the light distilling mirror 2 has a spherical shell structure, and the first mounting seat 10 is arranged in a stepped manner. The first mounting seat 10 is adapted to securely mount the light distilling mirror 2. Specifically, the light distilling mirror 2 can be fastened to the first mounting seat 10 by gluing. The stepped configuration of the first mounting seat 10 is designed to accommodate the spherical structure of the light distilling mirror 2. The function of the light distilling mirror 2 is to present a bright red spot on the mirror surface and reflect it to the user's eye. The user aims according to the position of the red spot, thereby achieving accurate shooting. It should be noted that the light distilling mirror 2 is a common application in optical sights and will not be further described here.

[0042] Furthermore, in this embodiment, the suspension block 5 has a frame structure. A first spring 13 is mounted on the first side of the suspension block 5, and a second spring 14 is mounted on the second side of the suspension block 5. The suspension block 5 is inserted into the movable slot 11. The third side of the suspension block 5 abuts the trajectory adjustment assembly 3, and the fourth side of the suspension block 5 abuts the windage adjustment assembly 4. A bottom plate 15 is provided on the bottom surface of the main housing 1 to enclose the accommodating chamber 9. The first spring 13 abuts the bottom plate 15, and the second spring 14 abuts one inner side of the movable slot 11, thereby suspending the suspension block 5 within the movable slot 11. The trajectory adjustment assembly 3 and the windage adjustment assembly 4 allow the suspension block 5 to be moved vertically, horizontally, and adjusted, thereby adjusting the position of the red dot on the light analyzer 2. Specifically, a first blind hole 16 is provided on the first side of the suspension block 5, and a second blind hole 17 is provided on the second side of the suspension block 5. The first spring 13 is inserted into the first blind hole 16 for installation, and the second spring 14 is inserted into the second blind hole 17 for installation. During installation, the second spring 14 is pre-compressed before the suspension block 5 is inserted into the movable slot 11. The bottom plate 15 is provided with a limiting groove 18, which is adapted for the installation of the first spring 13, and the limiting groove 18 limits the first spring 13 from being separated from the limiting groove 18. Preferably, the bottom plate 15 is a double-layer plate structure, and a through groove is machined on the first layer of the plate, and the through groove and the plate surface of the second layer of the plate form the limiting groove 18. It should be noted that the width of the limiting groove 18 should be such that the bottom of the first spring 13 just falls completely into the limiting groove 18. This embodiment uses a suspended block 5 to adjust the position of the red dot, eliminating the inner cylinder structure in the traditional technology, so that the area of the light analyzer 2 can be made larger and the observation field of view can be wider.

[0043] Furthermore, in this embodiment, the light source 6 is a red LED lamp so that the bright spot on the dichroic mirror 2 appears red. A light source seat 19 is provided at the front end of the suspension block 5. The light source seat 19 is located at the midpoint of the frame of the suspension block 5. The light source seat 19 is arranged at an angle so that the light source 6 is located on the main axis of the dichroic mirror 2, which is convenient for the user to aim horizontally. The light source 6 is installed on the light source seat 19 and faces the dichroic mirror 2. It should be noted that in other embodiments, the light source 6 can also be a lamp of other colors, such as a yellow light, and correspondingly, the bright spot on the dichroic mirror 2 is yellow. In particular, the position of the light source 6 in this embodiment is adjustable, while the light source 6 in the traditional technology is not adjustable. In this embodiment, the up, down, left, and right displacement of the light source 6 is adjusted by adjusting the up, down, left, and right displacement of the suspension block 5, thereby adjusting the displacement of the red dot on the dichroic mirror 2 to achieve the purpose of accurate shooting.

[0044] Furthermore, in this embodiment, the trajectory adjustment assembly 3 is used to adjust the vertical displacement of the red dot on the light analyzer 2 to compensate for the trajectory deviation caused by the distance. Specifically, a second mounting seat 20 is provided on the top surface of the main housing 1. The second mounting seat 20 protrudes from the top surface of the main housing 1 in the shape of a boss. The bottom of the second mounting seat 20 is connected to the accommodating chamber 9, and the trajectory adjustment assembly 3 is mounted on the second mounting seat 20. More specifically, a precision internal thread is provided on the inner side of the upper portion of the second mounting seat 20. The trajectory adjustment assembly 3 includes a first base 21, a first adjustment pin 22, a first sealing ring 23, a first spring pin 24, and a first turntable 25. The first base 21 is mounted on the second mounting seat 20. The first adjustment pin 22 is embedded in the bottom of the first base 21 and abuts the third side surface of the suspension block 5. The first sealing ring 23 is sleeved on the lower end of the first base 21 and seals the accommodating chamber 9. A first mounting hole 26 is provided at the upper end of the first base 21, and a first spring pin 24 is installed in the first mounting hole 26. The first turntable 25 is mounted on the upper end of the first base 21 and engages with the first spring pin 24. The outer surface of the first turntable 25 is provided with a precision external thread adapted to the second mounting seat 20. A plurality of tooth grooves 27 are evenly distributed on the inner side of the first turntable 25. The first turntable 25 is mounted on the second mounting seat 20 via a threaded connection. Driving the first turntable 25 to rotate can adjust the first base 21 up and down. The first adjustment pin 22 is linked to the first base 21 to achieve the adjustment of the red dot's up and down displacement. Preferably, each time the first turntable 25 rotates through one tooth groove 27, the trajectory is corrected by one MOA, that is, the groove pitch of the tooth groove 27 is a 1 MOA correction coefficient. The user can make trajectory compensation adjustments based on the estimated distance through the trajectory adjustment component 3. It should be noted that the trajectory adjustment component 3 is a conventional technology in the field of optical sights. Its basic principle is to calculate the distance between the object and the observer when the height or width of the object is known. One MOA represents the height of an object at a distance of 100 yards, which is about 1 inch.

[0045] Formula: L = 100*H / a, ... (1)

[0046] In the formula: L represents the distance from the observer to the target (yards),

[0047] H represents the width or height of the target displayed on the red dot (inches).

[0048] a represents the target elevation angle or target width angle (MOA) measured on the objective lens of a rifle scope;

[0049] From formula (1), we can know that as long as we know the width or height of the target, we can use the size of the red dot displayed on the light analyzer 2 to calculate the distance L from the observer to the target.

[0050] Based on the above principle, the actual height or width of the target can be estimated. The user can then measure the MOA size based on the height of the target, or based on the horizontal width of the target, and then substitute it into formula (1) to obtain the distance L of the target.

[0051] When using the scope of this embodiment, when a target is found no more than 100 yards away, aim at the red dot on the light analyzing mirror 2 and shoot directly; when the target is at a distance of 100-300 yards, without considering the influence of wind speed, the first turntable 25 is adjusted by 2 MOA, the floating block 5 is moved up by 2 MOA, and then aim at the red dot on the light analyzing mirror 2, and the target is accurately hit when shooting.

[0052] Furthermore, in this embodiment, the windage adjustment assembly 4 has the same structure as the trajectory adjustment assembly 3. The windage adjustment assembly 4 is used to adjust the left-right displacement of the red dot on the light analyzer 2 to compensate for trajectory deviation caused by wind. Specifically, a third mounting seat 28 is provided on the first side of the main housing 1. The third mounting seat protrudes from the first side of the main housing 1 in a boss-like shape. The bottom of the third mounting seat 28 is connected to the accommodating chamber 9, and the windage adjustment assembly 4 is mounted on the third mounting seat 28. More specifically, the inner side of the outer end of the third mounting seat 28 is provided with a precision internal thread. The windage adjustment assembly 4 includes a second base 29, a second adjustment pin 30, a second sealing ring 31, a second spring pin 32, and a second rotating disk 33. The second base 29 is mounted on the third mounting seat 28. The second adjustment pin 30 is embedded in the bottom of the second base 29 and abuts the fourth side of the suspension block 5. The second sealing ring 31 is mounted on the lower end of the second base 29 and seals the accommodating chamber 9. A second mounting hole 34 is provided at the upper end of the second base 29, into which a second spring pin 32 is mounted. A second rotating disk 33 is mounted on the upper end of the second base 29 and engages with the second spring pin 32. The outer surface of the second rotating disk 33 is provided with a precision external thread that mates with the third mounting seat 28. Several tooth grooves 27 are evenly distributed on the inner side of the second rotating disk 33. The second rotating disk 33 is threadedly mounted on the third mounting seat 28. Rotating the second rotating disk 33 adjusts the second base 29 left and right. The second adjustment pin 30 is coupled to the second base 29 to adjust the red dot's displacement left and right. Preferably, each rotation of the second rotating disk 33 through one tooth groove 27 corrects the windage by one MOA. In other words, the pitch of the tooth groove 27 is a 1 MOA correction factor. The user can adjust the windage compensation based on the estimated wind force using the windage adjustment assembly 4. It should be noted that the windage adjustment assembly 4 is conventional in the field of optical sights and will not be described in detail here.

[0053] Furthermore, in this embodiment, a power module 8 can provide electrical energy to the light source 6. Specifically, a power socket 35 is provided on the first side of the main housing 1. The power module 8 is mounted on the power socket 35 and electrically connected to the light source 6. The power module 8 includes a battery compartment 36, a battery 37, and a battery cover 38. The battery compartment 36 is mounted on the power socket 35, the battery 37 is snap-fitted to the battery compartment 36, and the battery cover 38 seals the battery compartment 36. Preferably, the battery 37 is a button battery, which helps reduce the size of the riflescope.

[0054] Furthermore, in this embodiment, the floating red dot sight also includes a brightness adjustment module, which is installed on the second side of the main shell 1. The brightness adjustment module includes a button assembly 39 and a control board 40. The control board 40 is a control circuit board. The button assembly 39 is electrically connected to the control board 40. The control board 40 is electrically connected to the power module 8 and the light source 6. The brightness adjustment module is used to adjust the brightness of the light source 6, and then the display brightness of the red dot can be adjusted.

[0055] Furthermore, in this embodiment, the floating red dot sight also includes a solar module 41, which can also provide power to the light source 6. Specifically, the solar module 41 is mounted in a groove 44 on the top surface of the main housing 1 and is electrically connected to the control board 40. When the solar module 41 has sufficient power to power the light source 6, the control board 40 will preferentially use the solar module 41 to power the light source 6. Furthermore, in the presence of sunlight, the solar module 41 can also be continuously charged, thereby extending the battery life of the sight.

[0056] Furthermore, in this embodiment, the suspended red dot sight also includes an adapter slot 42 and a tension adjustment assembly 43. The tension adjustment assembly 43 includes a tensioning screw 45 and a pressure block 46. The adapter slot 42 is used for the scope to be adapted and installed on the firearm, and the tension adjustment assembly 43 can disassemble or install the scope.

[0057] The suspended red dot sight of the present invention eliminates the inner tube structure. When the cross-sectional area of the sight is the same, the area of the light analyzer 2 can be set larger, thereby obtaining a larger observation field of view and searching for targets more quickly. The suspended block 5 is suspended and assembled in the movable groove 11, and the position of the red dot on the light analyzer 2 can be precisely adjusted up, down, left, and right through the ballistic adjustment component 3 and the windage adjustment component 4, thereby achieving high shooting accuracy.

[0058] The above-mentioned embodiments are only preferred embodiments of the present invention and cannot be used to limit the scope of protection of the present invention. Any non-substantial changes and replacements made by technicians in this field on the basis of the present invention fall within the scope of protection required by the present invention.

Claims

1. Suspended red dot sight, characterized by: include: A main body shell is formed with a receiving cavity, and the receiving cavity penetrates the main body shell along the length direction of the main body shell; A light-dividing mirror, wherein a first mounting seat is provided at the front end of the accommodating cavity, and the light-dividing mirror is mounted on the first mounting seat and closes the front end of the accommodating cavity; The trajectory adjustment component is provided with a second mounting seat on the top surface of the main shell, the second mounting seat is in a boss shape, the second mounting seat is connected to the accommodating cavity, and the trajectory adjustment component is installed on the second mounting seat; A windage adjustment component is provided on the first side of the main shell, wherein a third mounting seat is provided, the third mounting seat is in a boss shape, the third mounting seat is connected to the accommodating cavity, and the windage adjustment component is mounted on the third mounting seat; A suspension block, wherein the suspension block is in a frame structure, a movable groove is provided at the rear end of the accommodating cavity, a first spring is mounted on a first side of the suspension block, a second spring is mounted on a second side of the suspension block, the suspension block is inserted into the movable groove, a third side of the suspension block abuts against the trajectory adjustment component, and a fourth side of the suspension block abuts against the windage adjustment component, a bottom plate is configured on the bottom surface of the main body shell to enclose the accommodating cavity, the first spring abuts against the bottom plate, and the second spring abuts against an inner side of the movable groove, thereby being suspended in the movable groove; A light source, wherein a light source seat is provided at the front end of the suspension block, the light source is mounted on the light source seat, and the light source faces the light analyzer; An eyepiece, wherein the rear end of the accommodating cavity is provided with an eyepiece slot, and the eyepiece is mounted in the eyepiece slot and closes the rear end of the accommodating cavity; A power supply module is provided on the first side of the main shell with a power supply seat, and the power supply module is installed on the power supply seat and electrically connected to the light source.

2. The suspended red dot sight according to claim 1, characterized in that: It also includes a brightness adjustment module, which is installed on the second side of the main shell. The brightness adjustment module includes a button assembly and a control board. The button assembly is electrically connected to the control board, and the control board is electrically connected to the power module and the light source.

3. The suspended red dot sight according to claim 2, characterized in that: The invention also includes a solar module, which is installed on the top surface of the main body shell and is electrically connected to the control board.

4. The suspended red dot sight according to claim 1, characterized in that: The trajectory adjustment assembly includes a first base, a first adjustment pin, a first sealing ring, a first spring pin and a first turntable. The first base is mounted on the second mounting seat. The first adjustment pin is embedded in the bottom of the first base and abuts the third side surface of the suspension block. The first sealing ring is mounted on the lower end of the first base and closes the accommodating cavity. The first spring pin is mounted on the upper end of the first base. The first turntable is sleeved on the upper end of the first base and engages with the first spring pin.

5. The suspended red dot sight according to claim 1, characterized in that: The windage adjustment assembly includes a second base, a second adjustment pin, a second sealing ring, a second spring pin and a second turntable. The second base is mounted on the third mounting seat. The second adjustment pin is embedded in the bottom of the second base and abuts the fourth side surface of the suspension block. The second sealing ring is mounted on the lower end of the second base and closes the accommodating cavity. The second spring pin is mounted on the upper end of the second base. The second turntable is sleeved on the upper end of the second base and engages with the second spring pin.

6. The suspended red dot sight according to claim 1, characterized in that: The power module includes a battery compartment, a battery and a battery cover. The battery compartment is installed on the power base, the battery is buckled in the battery compartment, and the battery cover closes the battery compartment.

7. The suspended red dot sight according to claim 1, characterized in that: The light-dividing mirror is in a spherical shell structure, and the first mounting seat is arranged in a stepped shape.

8. The suspended red dot sight according to claim 1, characterized in that: The light source seat is arranged in an inclined manner and is located at the midpoint of the frame of the suspension block.

9. The suspended red dot sight according to claim 1, characterized in that: A first blind hole is provided on the first side of the suspension block, and a second blind hole is provided on the second side of the suspension block. The first spring is inserted into the first blind hole for installation, and the second spring is inserted into the second blind hole for installation.

10. The suspended red dot sight according to claim 9, characterized in that: The bottom plate is provided with a limiting groove, the limiting groove is adapted for installation of the first spring, and the limiting groove limits the first spring from being separated from the limiting groove.