Novel aiming device

By introducing laser rangefinding and red light conversion technology into the firing device, the problem of insufficient long-range aiming accuracy has been solved, achieving the effects of rapid aiming and cost reduction.

CN223856301UActive Publication Date: 2026-01-30ANDEBAO INTELLIGENT TECHNOLOGY (ZHONGSHAN) CO LTD
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Patent Information

Application Number
CN202520092166.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2026-01-30
Estimated Expiration
2035-01-15

AI Technical Summary

Technical Problem

Existing shooting devices cannot accurately identify the laser rangefinder illumination point when identifying distant targets, resulting in inaccurate shooting.

Method used

It employs a laser rangefinder and a red light emitting component, converting invisible nano-red light into visible nano-red light to display the aiming reticle and distance information, thus simplifying the aiming process.

Benefits of technology

It improved the aiming speed and accuracy of the firing device and reduced production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a novel sighting device which comprises a shell, a front observation window, a rear observation window, a front sighting device, a rear sighting device and a rear sighting device, wherein the front end and the rear end of the shell are provided with a front observation window and a rear observation window respectively; the laser ranging assembly is arranged in the shell so as to be suitable for acquiring the distance between the front end of the shell and a target object; the red light emitting assembly is arranged in the shell so as to be suitable for emitting invisible nanometer red light; the laser ranging assembly is arranged in the shell, the front observation window is arranged in the shell, the light splitting assembly is obliquely arranged in the shell, the light splitting assembly is located between the laser ranging assembly and the front observation window, the received invisible nanometer red light is converted into visible nanometer red light through the light splitting assembly, and therefore data information is displayed on the light splitting assembly. The structure is simple, rapid aiming is facilitated, the use experience of a user is further improved, and meanwhile the production cost of a product can be reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to sighting instrument technical field especially relates to a novel sighting device. BACKGROUND

[0002] In shooting projects such as shooting guns, bows and arrows and crossbows, configuring a sighting scope can significantly improve the sighting speed, precision and shooting hit rate of the weapon. In existing shooting devices, often only a laser range finder is configured, and the target point is sighted by the human eye and then the distance is measured. However, this sighting and ranging method is only suitable for short-distance ranging use, and the recognition distance is not large, only two or three tens of meters, and it is impossible to accurately identify the target point several hundred meters away, that is, it is impossible to accurately identify that the laser ranging irradiation point is the target point to be shot, so that accurate shooting on the target point cannot be performed. SUMMARY

[0003] The utility model aims at at least in a certain extent solve one of the problems existing in prior art related, for this, the utility model provides a novel sighting device, its simple structure is convenient for quick sighting, thereby further improve the user's use experience, also can reduce the production cost of product.

[0004] The above-mentioned purpose is realized by the following technical scheme:

[0005] A novel sighting device comprises:

[0006] A shell is provided with a front observation window and a rear observation window on the front and rear ends of the shell respectively;

[0007] A laser ranging assembly is arranged in the shell to obtain the distance between the front end of the shell and a target object;

[0008] A red light emitting assembly is arranged in the shell to emit invisible nanometer red light;

[0009] A light resolving assembly is arranged in the shell obliquely, and the light resolving assembly is located at the intermediate position between the laser ranging assembly and the front observation window, so that the received invisible nanometer red light is converted into visible nanometer red light through the light resolving assembly, and data information is displayed on the light resolving assembly.

[0010] In some embodiments, the red light emitting component includes a mounting base, an infrared light-emitting diode, a display panel, and a reticle. The mounting base is disposed within the housing, the infrared light-emitting diode is disposed on the mounting base to emit nano-red light, the display panel is disposed in front of the infrared light-emitting diode, and the reticle is disposed at the front end of the display panel. The data information is displayed on the light-emitting component through the coordinated operation of the infrared light-emitting diode, the display panel, and the reticle.

[0011] In some embodiments, a cutout area is provided on the reticle so that the display panel can display the data information to be displayed on the light-displaying component through the cutout area.

[0012] In some embodiments, the red light emitting assembly further includes a fixing plate disposed on the end of the reticle away from the display panel to fix the reticle and the display panel to the mounting base.

[0013] In some embodiments, the wavelength of the nano-red light emitted by the infrared light-emitting diode is 615 nm to 620 nm.

[0014] In some embodiments, the light-dispersing component includes a light-dispersing mirror and a coating. The light-dispersing mirror is positioned between the laser ranging component and the front observation window. The coating is attached to a side wall of the light-dispersing mirror near the red light emitting component. The coating alters the wavelength of the nano-red light emitted by the red light emitting component, converting the received invisible nano-red light into visible nano-red light, thereby allowing the red light emitting component to display data information on the light-dispersing mirror.

[0015] In some embodiments, the wavelength of the coating near the end of the red light emitting component is smaller than the wavelength of the coating near the end of the light-dispersing mirror.

[0016] In some embodiments, the coating is positioned at a wavelength close to one end of the red light emitting component that is similar to that of the red light emitting component.

[0017] In some embodiments, the laser ranging component includes a laser emitter and a laser receiver, wherein a transmission window is provided at the bottom position of the front end of the housing, and the laser emitter and the laser receiver are respectively located at the rear end position of the transmission window. The distance between the front end of the housing and the target object is measured by the coordinated action of the laser emitter and the laser receiver.

[0018] In some implementations, the data to be displayed includes at least the aiming reticle and the distance between the front end of the housing and the target.

[0019] Compared with the prior art, the utility model at least has following beneficial effects:

[0020] 1, the utility model discloses sighting device, its simple structure is convenient for quick aiming, to further improve the user's use experience, still can reduce the production cost of product. BRIEF DESCRIPTION OF DRAWINGS

[0021] In order to more clearly illustrate the specific embodiment of the utility model or the technical scheme in prior art, the following will be briefly introduced to the drawing needed to be used in the specific embodiment or prior art description, obviously, the drawing in the following description is some embodiments of the utility model, for ordinary skilled person in the art, under the premise of not paying creative labor, other drawings can also be obtained according to these drawings.

[0022] Fig. 1 It is the structure schematic view of the gunsight in the embodiment of the utility model;

[0023] Fig. 2 It is the structure schematic view of the part structure of the gunsight in the embodiment of the utility model;

[0024] Fig. 3 It is the exploded schematic view of the gunsight in the embodiment of the utility model. DETAILED DESCRIPTION

[0025] In order to make the purpose, technical scheme and advantage of the utility model more clearly, the following will be combined with the embodiment of the utility model, and the technical scheme in the embodiment of the utility model is clearly and completely described, obviously, the described embodiment is a part of the embodiment of the utility model, rather than all the embodiment.The components of the embodiment of the utility model can be arranged and designed in various different configurations.

[0026] Therefore, the following detailed description of the embodiment of the utility model provided in the drawings is not intended to limit the scope of the claimed utility model, but only represents selected embodiments of the utility model.Based on the embodiment in the utility model, all other embodiments obtained by ordinary skilled person in the art without creative labor belong to the technical scheme range of the utility model claimed.

[0027] Embodiment:

[0028] As Figs. 1 to 3 Shown, the embodiment provides a novel sighting device, comprising:

[0029] Shell 1, is provided with front observation window 11 and rear observation window on the front and rear ends of shell 1 respectively;

[0030] A laser ranging assembly 2 is arranged in the shell 1 to obtain the distance between the front end of the shell 1 and the target object;

[0031] A red light emitting assembly 3 is arranged in the shell 1 to emit invisible nanometer red light.

[0032] A light analyzing assembly is arranged in the shell 1 in an inclined manner and is located at the intermediate position between the laser ranging assembly 2 and the front observation window 11, and the received invisible nanometer red light is converted into visible nanometer red light through the light analyzing assembly so as to display the data information on the light analyzing assembly.

[0033] In the embodiment, a hollow accommodating cavity is defined in the shell, the front and rear ends of the accommodating cavity are both arranged in an open manner, the front and rear observation windows are arranged on the front and rear ends of the shell 1 respectively, the laser ranging assembly 2 is arranged at the front end position in the shell 1, the laser ranging assembly 2 emits laser light to the target object, and then the time for emitting and receiving is calculated to obtain the distance between the front end of the shell 1 and the target object, meanwhile, the red light emitting assembly 3 and the light analyzing assembly are arranged in the shell 1 from the rear to the front in sequence, so that the light analyzing assembly is located at the intermediate position between the laser ranging assembly 2 and the front observation window 11, the red light emitting assembly 3 emits invisible nanometer red light to the light analyzing assembly, and the received invisible nanometer red light is converted into visible nanometer red light through the light analyzing assembly, so as to display the data information on the light analyzing assembly, since the required displayed data information at least includes the aiming scale and the distance between the front end of the shell 1 and the target object, the operator can complete aiming by aligning the aiming scale with the target object, so that the operator can obtain the current aiming condition of the target object through the rear observation window, the structure is simple, the rapid aiming is facilitated, the use experience of the user is further improved, and the production cost of the product is reduced.

[0034] Further, the red light emitting assembly 3 comprises a mounting seat 31, an infrared light emitting diode 32, a display plate 33 and a scale plate 34, wherein the mounting seat 31 is arranged in the shell 1, the infrared light emitting diode 32 is arranged on the mounting seat 31 to emit nanometer red light, the display plate 33 is arranged at the front position of the infrared light emitting diode 32, and the scale plate 34 is arranged at the front end position of the display plate 33, and the infrared light emitting diode 32, the display plate 33 and the scale plate 34 are cooperated to display the data information on the light analyzing assembly.

[0035] Preferably, a hollow region is formed in the scale plate 34 so that the display plate 33 displays the required displayed data information on the light analyzing assembly through the hollow region.

[0036] Specifically, the red light emitting assembly 3 further comprises a fixing plate 35, which is arranged on the end of the reticle 34 away from the display plate 33 to fix the reticle 34 and the display plate 33 on the mounting seat 31.

[0037] Further, the wavelength of the invisible nanometer red light emitted by the infrared light emitting diode 32 is 615nm to 620nm.

[0038] Preferably, the light splitting assembly comprises the light splitting mirror 4 and a coating film, wherein the light splitting mirror 4 is arranged at the intermediate position between the laser ranging assembly 2 and the front observation window 11, and the coating film is attached to the side wall of the light splitting mirror 4 close to the red light emitting assembly 3, the wavelength of the invisible nanometer red light emitted by the red light emitting assembly 3 is changed by the coating film to convert the received invisible nanometer red light into visible nanometer red light, so that the red light emitting assembly 3 displays data information on the light splitting mirror 4.

[0039] Specifically, the wavelength of the coating film close to one end of the red light emitting assembly 3 is less than the wavelength of the coating film close to one end of the light splitting mirror 4.

[0040] Preferably, the wavelength of the coating film close to one end of the red light emitting assembly 3 is equal to the wavelength of the invisible nanometer red light emitted by the red light emitting assembly 3.

[0041] In particular, the laser ranging assembly 2 comprises a laser emitter and a laser receiver, wherein a transmitting window 12 is arranged at the bottom position of the front end of the shell 1, and the laser emitter and the laser receiver are arranged at the rear end position of the transmitting window 12, respectively, and the distance between the front end of the shell 1 and the target object is measured by the cooperation of the laser emitter and the laser receiver.

[0042] In this embodiment, a hollow cavity is defined in the mounting seat 31, the infrared light emitting diode 32 is arranged in the mounting seat 31 to emit invisible nanometer red light, the display plate 33 is arranged at the front position of the infrared light emitting diode 32, and the reticle 34 is arranged at the front end position of the display plate 33, wherein the reticle 34 is provided with a hollow area, more preferably, the reticle 34 is made of a metal opaque material, specifically, the reticle 34 is made of a nickel sheet material, of course, the reticle 34 can also be made of a reticle material commonly used in sighting products, so that the reticle has a light transmission area and a non-light transmission area by providing a hollow area on the reticle 34, thereby effectively limiting the display range of the display plate 33, and further enabling the display plate 33 to display the required data information on the light splitting assembly through the hollow area.

[0043] In addition, since the light splitting mirror 4 is arranged obliquely at the front position of the display panel 33, the light splitting mirror 4 is attached with the coating film on the side wall close to the display panel 33, first, the invisible nanometer red light emitted by the infrared light emitting diode 32 is projected on the light splitting mirror 4, the invisible nanometer red light passes through the display panel 33, and since the cooperation of the display panel 33 and the scale plate 34 makes the area of the required display data information be transparent, or the area of the non-required display data information be non-transparent, the invisible nanometer red light is projected on the coating film after passing through the hollow area of the display panel 33 and the scale plate 34 in turn, and in addition, the required display data information can be seen on the coating film in the strong light environment through the effect of the coating film.

[0044] More preferably, the wavelength of the coating film close to the red light emitting assembly 3 is less than the wavelength of the coating film close to the light splitting mirror 4, and the wavelength of the coating film close to the red light emitting assembly 3 is equal to the wavelength of the nanometer red light emitted by the infrared light emitting diode 32, so that the wavelength of the nanometer red light emitted by the infrared light emitting diode 32 is changed through the effect of the coating film to convert the received invisible nanometer red light into visible nanometer red light, and then the visible nanometer red light is projected on the light splitting mirror 4, so that the required display data information can be displayed on the light splitting assembly.

[0045] In the embodiment, the light-transmitting emission window 12 is arranged at the bottom position of the front end of the shell 1, the laser emitter and the laser receiver are arranged in the shell 1 respectively, and the laser emitter and the laser receiver are located at the rear end position of the emission window 12, the laser is emitted to the target object by the laser emitter, the laser reaches the target object and returns to be received by the laser receiver, the distance between the front end of the shell 1 and the target object is measured by calculating the time length from emission to reception and the speed of the laser, and then the distance between the front end of the shell 1 and the target object is obtained.

[0046] More preferably, the infrared light emitting diode 32, the light splitting mirror 4, the laser emitter and the laser receiver are coaxially arranged in the front-rear direction.

[0047] The above only describes some embodiments of the present application. Those skilled in the art can make some modifications and improvements without departing from the inventive concept of the present application, and these all belong to the protection scope of the present application.

Claims

1. A novel sighting device characterized in that, The application relates to a laser ranging device, which comprises the following components: a shell (1) provided with a front observation window (11) and a rear observation window on the front and rear ends of the shell (1) respectively; a laser ranging assembly (2) arranged in the shell (1) and adapted to obtain the distance between the front end of the shell (1) and a target object; a red light emitting assembly (3) arranged in the shell (1) and adapted to emit invisible nanometer red light; a light analyzing assembly arranged in the shell (1) and located at the middle position between the laser ranging assembly (2) and the front observation window (11), which is used for converting the received invisible nanometer red light into visible nanometer red light so as to display data information on the light analyzing assembly.

2. A novel sighting device according to claim 1, characterized in that The red light emitting assembly (3) comprises a mounting seat (31), an infrared light emitting diode (32), a display plate (33) and a scale plate (34), wherein the mounting seat (31) is arranged in the shell (1), the infrared light emitting diode (32) is arranged on the mounting seat (31) and adapted to emit nanometer red light, the display plate (33) is arranged at the front position of the infrared light emitting diode (32), and the scale plate (34) is arranged at the front end of the display plate (33), and the infrared light emitting diode (32), the display plate (33) and the scale plate (34) are cooperatively used for displaying data information on the light analyzing assembly.

3. A novel sighting device according to claim 2, characterized in that A hollow region is formed in the scale plate (34) so that the display plate (33) displays the required data information on the light analyzing assembly through the hollow region.

4. A novel sighting device according to claim 2, characterized in that The red light emitting assembly (3) further comprises a fixing plate (35) arranged on the end of the scale plate (34) away from the display plate (33) and used for fixing the scale plate (34) and the display plate (33) on the mounting seat (31).

5. A novel sighting device as claimed in claim 2, wherein, The wavelength of the nanometer red light emitted by the infrared light emitting diode (32) is 615-620 nm.

6. A novel sighting device as claimed in claim 1, wherein, The light analyzing assembly comprises a light analyzing mirror (4) and a coating, wherein the light analyzing mirror (4) is arranged at the middle position between the laser ranging assembly (2) and the front observation window (11), the coating is arranged on the side wall of the light analyzing mirror (4) close to the red light emitting assembly (3), the wavelength of the nanometer red light emitted by the red light emitting assembly (3) is changed through the coating so that the received invisible nanometer red light is converted into visible nanometer red light, and the red light emitting assembly (3) displays data information on the light analyzing mirror (4).

7. A novel sighting device according to claim 6, characterized in that The wavelength of the coating close to one end of the red light emitting assembly (3) is smaller than the wavelength of the coating close to one end of the light analyzing mirror (4).

8. A novel sighting device according to claim 7, characterized in that The wavelength of the coating close to one end of the red light emitting assembly (3) is equal to the wavelength of the nanometer red light emitted by the red light emitting assembly (3).

9. A novel sighting device as claimed in claim 1, wherein, The laser ranging assembly (2) comprises a laser transmitter and a laser receiver, wherein a transmitting window (12) is arranged at a bottom position of the front end of the housing (1), the laser transmitter and the laser receiver are arranged at a rear end position of the transmitting window (12) respectively, and the distance between the front end of the housing (1) and a target object is measured through the cooperation of the laser transmitter and the laser receiver.

10. A novel sighting device according to any one of claims 1 to 9, characterized in that The data information required to be displayed at least includes a sighting scale and the distance between the front end of the housing (1) and a target object.