Embedded photoelectric sighting telescope device with infrared thermal imaging, intelligent ballistic calculation and optical video recording functions

Through embedded design, the infrared objective lens is integrated with the white-light objective lens, combined with the main control board group and other components, the problem of insufficient functions of the existing photoelectric scope is solved, and the miniaturized and multifunctional photoelectric scope is realized, which improves shooting accuracy and environmental adaptability.

CN120292948APending Publication Date: 2025-07-11YIWU YUBING OPTICAL INSTRUMENT CO LTD
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Patent Information

Application Number
CN202510523351.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

The existing optoelectronic sights do not have infrared thermal imaging, intelligent ballistic computing and optical recording functions, resulting in greater limitations in use.

Method used

An embedded photoelectric scope device with infrared thermal imaging, intelligent ballistic computing and optical recording functions was designed. By embedding the infrared objective into the white light objective, it integrates the design, and combines the main control board group, laser ranging module, micro camera and other components to achieve high integration.

Benefits of technology

It realizes the miniaturization and aestheticization of the device, and also has infrared thermal imaging, intelligent ballistic computing and optical recording functions, improving the accuracy of shooting and the ability to adapt to complex environments.

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Abstract

The invention relates to embedded photoelectric sighting telescope equipment with infrared thermal imaging, intelligent ballistic calculation and optical video recording functions, which comprises a main body, a white light objective lens is arranged on the left side of the main body, and an infrared objective lens is arranged in the white light objective lens. According to the embedded photoelectric sighting telescope equipment with the infrared thermal imaging, intelligent ballistic calculation and optical video recording functions, through the integrated design, the infrared objective lens is embedded into the white light objective lens, the size and weight of a main body are reduced, the equipment is more attractive, then through the arrangement of the infrared objective lens, the equipment can have the infrared thermal imaging function, and the equipment is more convenient to use. And meanwhile, the laser ranging module, the main control board group, the white light trajectory adjusting group and the white light windage yaw adjusting group are matched with the field lens group to adjust the trajectory, and then the micro camera plays an optical photographing function, so that the purposes of high integration, infrared thermal imaging, trajectory calculation and optical photographing functions are achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of optoelectronic sighting devices, and specifically to an embedded optoelectronic sighting device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions. Background Art

[0002] Relying on advanced optoelectronic technologies, optoelectronic sights can accurately capture and present target images in real time. Their digital imaging systems effectively break through the visual limitations of the human eye in complex environments such as day-night alternation and smoky dust, creating a clear and stable aiming field of view for users. While improving combat accuracy, they also significantly enhance the situational awareness and rapid response capabilities.

[0003] However, the structure of existing optoelectronic sights needs to be optimized, and they do not have infrared thermal imaging, ballistic calculation, and optical recording functions. As a result, the use of ordinary optoelectronic sights has certain limitations during actual use. Therefore, an embedded optoelectronic sighting device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions is proposed. Summary of the Invention

[0004] In view of the deficiencies of the prior art, the present invention provides an embedded optoelectronic sighting device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions, which has the advantages of high integration, infrared thermal imaging, ballistic calculation, and optical recording functions, etc., and solves the problem that the structure of existing optoelectronic sights needs to be optimized.

[0005] To achieve the above object, the present invention provides the following technical solution: An embedded optoelectronic sighting device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions, including a main body. A white light objective lens is arranged on the left side of the main body. An infrared objective lens is arranged inside the white light objective lens. A laser ranging module is fixedly installed on the outer surface of the white light objective lens. An infrared focusing lever is arranged on the top of the infrared objective lens. A battery pack is fixedly installed on the top of the main body. A main control board group is arranged on the front of the main body. A white light ballistic adjustment group is arranged on the top of the main body. A white light windage adjustment group is arranged on the back of the main body. An eyepiece group is arranged on the right side of the main body. A zoom ring and an induction group are arranged on the outer surface of the eyepiece group. A button group is fixedly installed on the top of the eyepiece group. A field lens group is arranged inside the main body.

[0006] Further, a white light fixed-focus objective lens group is arranged inside the white light objective lens, and a white light window is arranged on the left side of the white light objective lens.

[0007] Further, an infrared window is arranged on the left side of the infrared objective lens, and an infrared core unit is arranged inside the infrared objective lens.

[0008] Further, a laser ranging window is arranged on the left side of the laser ranging module.

[0009] Furthermore, the bottom of the infrared focusing lever is movably connected to the top of the infrared objective lens.

[0010] Furthermore, an external power supply battery is arranged inside the battery pack.

[0011] Furthermore, a dichroic prism group is arranged inside the eyepiece group, and a miniature camera is fixedly installed inside the eyepiece group.

[0012] Furthermore, an OLED group is disposed inside the eyepiece group, and a variable magnification lens group is disposed inside the eyepiece group.

[0013] Furthermore, the zoom ring and induction group include a zoom twist ring and a magnetic ring.

[0014] Beneficial Effects

[0015] Compared with the prior art, the technical solution of this application has the following beneficial effects:

[0016] This embedded optoelectronic sight device, which has infrared thermal imaging, intelligent ballistic calculation and optical recording functions, uses an integrated design to embed the infrared objective lens inside the white light objective lens, achieving a high degree of integration. This can reduce the overall size and weight of the device and make the outer surface of the device more beautiful.

[0017] This embedded optoelectronic sight device, which has infrared thermal imaging, intelligent ballistic calculation and optical recording functions, can focus the infrared objective lens by turning an external infrared focusing lever, giving the device the function of infrared thermal imaging.

[0018] This embedded optoelectronic sight device, which has infrared thermal imaging, intelligent ballistic calculation and optical recording functions, can drive the zoom lens group to change magnification by rotating the zoom knob, and adjust the resistance size on the internal magnetic ring variable resistor. After transmitting the value to the main board, the main board calculates the current magnification size, gives the ballistic point, displays it on the OLED group, and projects it to the human eye through the dichroic prism group, achieving the effect of ballistic calculation.

[0019] The embedded optoelectronic sight device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions can display infrared images through the OLED group, or only display the ballistic red dot, ranging value, and ranging indicator frame in a semi-transmissive state. When the bottom OLED group is lit, the dichroic prism group can turn the image to the human eye. When the bottom OLED group is turned off, the white light image can be directly seen through, or the white light image can be projected into the micro camera at the bottom for recording, thereby achieving the purpose of optical recording. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0021] Figure 2 Schematic diagram of the three-dimensional decomposition structure of the present invention;

[0022] Figure 3 Schematic diagram of the front structure of the present invention;

[0023] Figure 4 Schematic diagram of the front sectional structure of the present invention;

[0024] Figure 5 Schematic diagram of the left side view structure of the present invention.

[0025] In the figure: 1, main body; 2, white light objective lens; 201, white light fixed-focus objective lens group; 202, white light window; 3, infrared objective lens; 301, infrared window; 302, infrared core unit; 4, laser ranging module; 401, laser ranging window; 5, infrared focus adjustment lever; 6, battery pack; 601, power supply battery; 7, main control board group; 8, white light ballistic adjustment group; 9, white light windage adjustment group; 10, eyepiece group; 1001, beam splitter prism group; 1002, micro camera; 1003, OLED group; 1004, zoom lens group; 11, zoom ring and induction group; 1101, zoom twist ring; 1102, magnetic ring; 12, button group; 13, field lens group. Detailed implementation manners

[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. 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 making creative efforts shall fall within the protection scope of the present invention.

[0027] Please refer to Figures 1-5 , an embedded optoelectronic aiming device with infrared thermal imaging, intelligent ballistic calculation and optical video recording functions, including a main body 1, a white light objective lens 2 is arranged on the left side of the main body 1, an infrared objective lens 3 is arranged inside the white light objective lens 2, a laser ranging module 4 is fixedly installed on the outer surface of the white light objective lens 2, an infrared focus adjustment lever 5 is arranged on the top of the infrared objective lens 3, a battery pack 6 is fixedly installed on the top of the main body 1, a main control board group 7 is arranged on the front of the main body 1, a white light ballistic adjustment group 8 is arranged on the top of the main body 1, a white light windage adjustment group 9 is arranged on the back of the main body 1, an eyepiece group 10 is arranged on the right side of the main body 1, a zoom ring and induction group 11 is arranged on the outer surface of the eyepiece group 10, a button group 12 is fixedly installed on the top of the eyepiece group 10, and a field lens group 13 is arranged inside the main body 1.

[0028] Furthermore, a white light fixed-focus objective lens group 201 is provided inside the white light objective lens 2, a white light window 202 is provided on the left side of the white light objective lens 2, an infrared window 301 is provided on the left side of the infrared objective lens 3, an infrared core unit 302 is provided inside the infrared objective lens 3, a laser ranging window 401 is provided on the left side of the laser ranging module 4, an external power supply battery 601 is provided inside the battery pack 6, a beam splitting prism group 1001 is provided inside the eyepiece group 10, a micro camera 1002 is fixedly installed inside the eyepiece group 10, an OLED group 1003 is provided inside the eyepiece group 10, a variable magnification lens group 1004 is provided inside the eyepiece group 10, and the variable magnification ring and induction group 11 includes a variable magnification torsion ring 1101 and a magnetic ring 1102.

[0029] Specifically, as Figure 1 shown, a normal optoelectronic sight separates the white light objective lens 2 and the infrared objective lens 3 in design, while this device embeds and fixedly installs the white light objective lens 2 and the infrared objective lens 3 through an embedded setting, so that the infrared objective lens 3 is embedded on the top of the white light objective lens 2, achieving high integration, which can reduce the overall volume and weight of the device and make the outer surface of the device more beautiful.

[0030] Specifically, as Figure 4 shown, the infrared objective lens 3 can be focused by turning the external infrared focusing lever 5, and then the external power supply battery 601 supplies power to components such as the infrared objective lens 3, the laser ranging module 4, and the micro camera 1002 to work, and then through the set white light trajectory adjustment group 8, the knob is rotated to adjust the vertical position of the white light reticle.

[0031] Specifically, as Figure 4 shown, the key group 12 is used to operate functions such as the infrared objective lens 3, the laser ranging module 4, and ballistic calculation. The field lens group 13 includes a scale reticle. When the knobs of the white light trajectory adjustment group 8 and the white light windage adjustment group 9 are rotated, it can move up, down, left, and right to provide a aiming reticle.

[0032] Specifically, as Figure 2 shown, the knob of the white light windage adjustment group 9 is rotated to adjust the left and right position of the white light reticle. The main control board group 7 controls all electronic functions such as infrared display, the operation of the laser ranging module 4, the display of the laser ranging module 4, the white light video recording by the micro camera 1002, ballistic calculation, white light magnification reading, and ballistic point projection.

[0033] Specifically, as Figure 1As shown, the main body 1 is the support structure of the entire telescopic sight, responsible for connecting and fixing all other components. It is made of strong and durable materials to ensure stability and durability in harsh environments. The white light objective lens 2 is located on the left side of the main body 1, used to capture and focus visible light images. Inside, there is a white light fixed-focus objective lens group 201 for achieving clear focusing of the images. On the left side, there is a white light window 202 that allows visible light to enter the objective lens. The infrared objective lens 3 is embedded inside the white light objective lens 2, used to capture and focus infrared thermal images. On the left side, there is an infrared window 301 that allows infrared radiation to enter the objective lens. Inside, there is an infrared core 302 for processing and converting infrared image signals. The laser rangefinder module 4 is fixedly installed on the outer surface of the white light objective lens 2, used to measure the distance between the target and the telescopic sight. On the left side, there is a laser rangefinder window 401 for emitting and receiving laser beams. The infrared focus adjustment lever 5 is located on the top of the infrared objective lens 3, used to adjust the clarity of the infrared image. Its bottom is movably connected to the top of the infrared objective lens 3, allowing the user to make fine adjustments.

[0034] Specifically, as Figure 2 shown, the main control board group 7 is the "brain" of the entire telescopic sight device. It is located on the front of the main body 1 and is responsible for coordinating and controlling all electronic functions. The main control board group 7 adopts advanced microprocessor technology, with high-speed data processing capabilities and low power consumption characteristics. It integrates a variety of sensor interfaces, communication interfaces, and control circuits, and can receive data from various sensors in real-time, such as the distance data measured by the laser rangefinder module 4, the infrared image data captured by the infrared objective lens 3, etc., and perform rapid processing. Under the control of the main control board group 7, the device can intelligently perform ballistic calculations based on the measured data and preset parameters, providing accurate aiming points for shooters. At the same time, it is also responsible for controlling the display content of the OLED group 1003, such as infrared images, ballistic information, ranging values, etc., to ensure that shooters can intuitively obtain the required information. In addition, the main control board group 7 also supports communication with external devices, such as connecting to smartphones, tablets, etc. via Bluetooth or Wi-Fi to achieve data synchronization and remote control.

[0035] Specifically, as Figure 2 shown, the white light ballistic adjustment group 8 is located on the top of the main body 1 and is a key component for adjusting the vertical position of the white light reticle. It adopts a precise mechanical structure design to ensure the accuracy and stability of the adjustment process. Shooters can change the vertical position of the white light reticle by rotating the adjustment knob to match different ballistic requirements. During shooting, as the shooting distance changes, the ballistic will also change accordingly. The white light ballistic adjustment group 8 allows shooters to make fine adjustments to the white light reticle according to factors such as distance and target height to ensure the accuracy of aiming. At the same time, it also has a memory function and can save multiple commonly used ballistic settings, facilitating shooters to quickly switch in different scenarios.

[0036] Specifically, asFigure 2 As shown, the white light windage adjustment group 9 is located on the back of the main body 1 and is used to adjust the left - right position of the white light reticle to compensate for the influence of wind direction and speed on the ballistic trajectory. Similar to the white light ballistic adjustment group 8, the white light windage adjustment group 9 also adopts a precise mechanical structure design to ensure the accuracy and stability of the adjustment process. During shooting, wind direction and speed are important factors affecting the ballistic trajectory. The white light windage adjustment group 9 allows the shooter to make left - right fine - adjustments to the white light reticle according to changes in wind direction and speed to correct ballistic deviations. This adjustment method not only improves the shooting accuracy but also enhances the shooter's adaptability in complex environments.

[0037] Specifically, as Figure 2 shown, the eyepiece group 10 is the window through which the shooter observes the image of the sight. It is located on the right side of the main body 1. It is made of optical glass materials with high light transmittance and low dispersion to ensure the clarity and color reproduction of the image. The eyepiece group 10 integrates a variety of optical components, such as a beam - splitting prism group 1001, a micro - camera 1002, an OLED group 1003, and a zoom lens group 1004, etc., which jointly realize functions such as image separation, display, and magnification. The beam - splitting prism group 1001 is used to separate light of different wavelengths and project it into the human eye, enabling the shooter to simultaneously observe the white light image and the infrared image. The micro - camera 1002 is used to record the white light image, facilitating the shooter's training and analysis. The OLED group 1003 is used to display the infrared image or ballistic information, providing an intuitive aiming reference for the shooter. The zoom lens group 1004 allows the shooter to adjust the magnification of the image according to needs to adapt to different shooting distances and target sizes.

[0038] Specifically, as Figure 4 shown, the zoom ring and induction group 11 is an important component for adjusting the image magnification. It consists of two parts: a zoom twist ring 1101 and a magnetic ring 1102. The zoom twist ring 1101 adopts an anti - slip design, facilitating the shooter's rotation adjustment. The magnetic ring 1102 is used to sense the rotation of the zoom twist ring 1101 and transmit signals to the main control board group 7. When the shooter rotates the zoom twist ring 1101, the magnetic ring 1102 will rotate accordingly and change the magnetic field distribution inside it. The main control board group 7 detects the change in the magnetic field to identify the rotation angle and speed of the zoom twist ring 1101 and adjusts the magnification of the zoom lens group 1004 accordingly. This induction adjustment method not only improves the accuracy and stability of the adjustment but also reduces the operation difficulty and complexity.

[0039] Specifically, as Figure 4As shown, the field lens group 13 is a key component for providing aiming reticles. It is made of high-precision optical glass materials and undergoes precise grinding and coating processes to ensure image clarity and contrast. The field lens group 13 contains multiple scale reticles inside, which are used to indicate the shooting direction and target position. When the shooter rotates the knobs of the white light ballistic adjustment group 8 and the white light windage adjustment group 9, the field lens group 13 can move up, down, left, and right accordingly to match different aiming requirements. At the same time, the field lens group 13 also has characteristics such as anti-reflection and anti-glare, which can reduce the interference of reflection and glare on aiming in strong light environments. This design not only improves the accuracy of aiming but also enhances the combat ability of shooters in complex environments.

[0040] In summary, for the embedded optoelectronic aiming device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions, through an integrated design, the infrared objective lens 3 is embedded inside the white light objective lens 2, which reduces the volume and weight of the main body 1 and makes it more aesthetically pleasing. Then, through the setting of the infrared objective lens 3, the device can have the function of infrared thermal imaging. At the same time, through the cooperation of the laser ranging module 4, the main control board group 7, the white light ballistic adjustment group 8, the white light windage adjustment group 9, and the field lens group 13, the ballistic is adjusted. Then, through the micro camera 1002, the optical recording function is achieved, thus achieving the purpose of being highly integrated and having the functions of infrared thermal imaging, ballistic calculation, and optical recording.

[0041] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including", or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article, or device including a series of elements not only includes those elements but also includes other elements not explicitly listed, or further includes elements inherent to such process, method, article, or device. Without further limitations, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article, or device including the said element.

[0042] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions, including a main body (1), characterized in that: A white light objective lens (2) is provided on the left side of the main body (1). An infrared objective lens (3) is provided inside the white light objective lens (2). A laser ranging module (4) is fixedly installed on the outer surface of the white light objective lens (2). An infrared focusing lever (5) is provided on the top of the infrared objective lens (3). A battery pack (6) is fixedly installed on the top of the main body (1). A main control board group (7) is provided on the front of the main body (1). A white light trajectory adjustment group (8) is provided on the top of the main body (1). A white light windage adjustment group (9) is provided on the back of the main body (1). An eyepiece group (10) is provided on the right side of the main body (1). A zoom ring and induction group (11) is provided on the outer surface of the eyepiece group (10). A button group (12) is fixedly installed on the top of the eyepiece group (10). A field lens group (13) is provided inside the main body (1).

2. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions according to claim 1, wherein: A white light fixed-focus objective lens group (201) is provided inside the white light objective lens (2). A white light window (202) is provided on the left side of the white light objective lens (2).

3. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: An infrared window (301) is provided on the left side of the infrared objective lens (3). An infrared core (302) is provided inside the infrared objective lens (3).

4. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: A laser ranging window (401) is provided on the left side of the laser ranging module (4).

5. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: The bottom of the infrared focusing lever (5) is movably connected to the top of the infrared objective lens (3).

6. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: An external power supply battery (601) is provided inside the battery pack (6).

7. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation, and optical recording functions according to claim 1, wherein: A beam splitting prism group (1001) is provided inside the eyepiece group (10). A micro camera (1002) is fixedly installed inside the eyepiece group (10).

8. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: An OLED group (1003) is provided inside the eyepiece group (10). A zoom lens group (1004) is provided inside the eyepiece group (10).

9. The embedded optoelectronic aiming scope device with infrared thermal imaging, intelligent ballistic calculation and optical recording functions according to claim 1, characterized in that: The zoom ring and induction group (11) includes a zoom twist ring (1101) and a magnetic ring (1102).