Multifunctional fusion telescope

By designing multi-specification bracket connection bases on multifunctional telescopes, and utilizing limiting mechanisms and L-shaped pins to achieve compatibility with various interface specifications, the problem of incompatibility of existing telescope interfaces is solved, connection stability and versatility are improved, usage costs are reduced, and the application range is expanded.

CN223870897UActive Publication Date: 2026-02-03YUNNAN ZHONGYANG OPTOELECTRONIC INSTRUMENT CO LTD
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Patent Information

Application Number
CN202520421992.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2026-02-03
Estimated Expiration
2035-03-12

AI Technical Summary

Technical Problem

The existing multi-functional telescopes have a simple design for the tripod connection base, which requires the purchase of additional adapters when the interfaces are incompatible. This affects the stability of the connection and increases the cost of use. Furthermore, it is difficult to meet the diverse needs of different users and limits the scope of application.

Method used

Design a multi-functional fusion telescope with a multi-specification bracket connecting the base, including a limiting seat and a multi-hole wheel. The limiting mechanism and L-shaped pin enable the adaptation of various interface specifications. The combination of limiting springs and anti-slip rubber blocks improves connection stability and ease of operation.

Benefits of technology

No additional adapters are required, reducing usage costs, improving connection stability and versatility, expanding the range of applications, and reducing inconvenience and limitations during use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multifunctional fusion telescope which comprises an infrared laser ranging telescope body, a multi-specification support connecting base is arranged on the surface of the bottom of the infrared laser ranging telescope body, and the multi-specification support connecting base comprises a limiting seat. The limiting base is fixedly installed on the bottom surface of the infrared laser ranging telescope body, a porous wheel disc is arranged on one side of the limiting base and rotationally connected with the bottom surface of the infrared laser ranging telescope body, and a plurality of connecting screw holes which are distributed in an annular array and are different in diameter specification are formed in the porous wheel disc. A limiting mechanism is arranged in the limiting seat, a multi-specification support is connected with the base, the tripod connecting device can be adapted to tripods with various different interface specifications, additional purchase of an adapter substitute is not needed, and the problem of unstable connection caused by the adapter substitute is avoided. The universality and practicability of the multifunctional telescope are improved, the application range of the multifunctional telescope is expanded, and inconvenience and limitation in the using process are reduced.
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Description

Technical Field

[0001] This utility model relates to the field of telescopes, and more specifically, to a multifunctional fusion telescope. Background Technology

[0002] With the continuous advancement of technology, multi-functional telescopes have been widely used in numerous fields such as military, scientific research, and outdoor exploration. These telescopes typically integrate multiple advanced functions, including infrared thermal imaging, visible light imaging, and laser rangefinders, to meet people's observation needs in various scenarios. However, existing multi-functional telescopes have significant shortcomings in their tripod connection base design. Most products only have a single-size tripod connection base, commonly such as a 1 / 4” or 3 / 8” interface. In actual use, this single-size connection base brings many inconveniences and limitations. For example, when the user's tripod interface size does not match the telescope base, a direct connection is impossible, requiring the purchase of an adapter. This not only increases usage costs but may also affect connection stability due to adapter quality issues. In some special situations, such as harsh outdoor environments or emergency missions, if suitable adapters cannot be found in time, the telescope may not be able to be mounted on a tripod, severely impacting work efficiency and mission execution. Furthermore, a single-size connection base cannot meet the diverse needs of different users for tripod types and functions, limiting the application range of multi-functional telescopes.

[0003] How to invent a multifunctional fusion telescope to improve these problems has become an urgent issue for those skilled in the art. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a multi-functional fusion telescope, which aims to improve the problem that the existing multi-functional telescopes only have a single-specification tripod connection base at the bottom, causing many inconveniences and limitations for users.

[0005] This utility model is implemented as follows: A multifunctional fusion telescope includes an infrared laser ranging telescope body. A multi-specification bracket connecting base is provided on the bottom surface of the infrared laser ranging telescope body. The multi-specification bracket connecting base includes a limiting seat, which is fixedly installed at the central axis of the bottom surface of the infrared laser ranging telescope body. A multi-hole wheel is provided on one side of the limiting seat. The multi-hole wheel is rotatably connected to the bottom surface of the infrared laser ranging telescope body via a rotating shaft. The multi-hole wheel has several connecting screw holes arranged in a circular array with varying diameters. A semi-open slot is provided on the outer wall of the limiting seat facing the multi-hole wheel. A portion of the multi-hole wheel is located in the semi-open slot. A positioning hole is provided through the bottom inner wall of the semi-open slot. The positioning hole is coaxially aligned with one of the connecting screw holes. A cavity is provided on the top inner wall of the semi-open slot, and a limiting mechanism that can cooperate with the multi-hole wheel is provided in the cavity.

[0006] In a preferred embodiment of this utility model, the limiting mechanism includes an L-shaped pin disposed in the cavity and a plurality of limiting pin holes evenly distributed in a ring on the surface of the multi-hole disc, each corresponding to a connecting screw hole. One end of the L-shaped pin is slidably connected in a mounting groove, which is located on the inner wall of one side of the cavity and communicates with the outside of the limiting seat. The other end of the L-shaped pin is inserted into one of the limiting pin holes. A limiting spring is also fixedly connected between the L-shaped pin and the inner wall at the top of the cavity.

[0007] In a preferred embodiment of this utility model, the L-shaped pin extends outward from the mounting groove at one end and is fixedly connected to a lever plate.

[0008] In a preferred embodiment of this utility model, a groove is provided on the upper surface of the porous wheel, and a plurality of limiting pin holes are provided on the inner wall of the bottom of the groove and extend to the bottom surface of the porous wheel.

[0009] In a preferred embodiment of this utility model, each of the limiting pin holes is an inverted trapezoidal structure with a larger upper part and a smaller lower part, and its inner walls form guide slopes. The two sides of one end of the L-shaped pin are provided with a mating slope structure, and the opening width at the bottom of each limiting pin hole is consistent with the width of one end of the L-shaped pin.

[0010] In a preferred embodiment of this utility model, the middle part of the L-shaped pin is integrally formed into an annular protrusion corresponding to the positioning hole, the bottom end of the limiting spring is fixedly connected to the upper surface of the annular protrusion, and the top end of the limiting spring is fixedly connected to the inner wall of the top of the cavity.

[0011] In a preferred embodiment of this utility model, the bottom surface of the annular protrusion forms an upward-facing receiving groove.

[0012] In a preferred embodiment of this utility model, a plurality of anti-slip rubber blocks are provided on the outer wall of the porous wheel in a ring-shaped uniform distribution.

[0013] The beneficial effects of this utility model are as follows: The multi-functional fusion telescope obtained through the above design effectively solves the shortcomings of existing products by using a multi-specification bracket connection base. The multi-specification connection screw holes can accommodate various tripods with different interface specifications, eliminating the need to purchase additional adapters, reducing usage costs, and avoiding connection instability problems caused by adapters. This improves the versatility and practicality of the multi-functional telescope, expands its application range, and reduces inconvenience and limitations during use. Attached Figure Description

[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.

[0015] Figure 1 This is a schematic perspective view of the overall structure provided by the embodiment of this utility model;

[0016] Figure 2 A perspective view of the overall structure on another side, provided for an embodiment of this utility model;

[0017] Figure 3 A three-dimensional cross-sectional view of the overall structure of the multi-specification bracket connecting base provided for the embodiments of this utility model;

[0018] Figure 4 A perspective view of the overall structure of the limiting seat provided for an embodiment of this utility model;

[0019] Figure 5 A perspective view of the overall structure of the L-shaped pin provided for an embodiment of this utility model;

[0020] Figure 6 A three-dimensional schematic diagram of the overall structure of the porous wheel provided for an embodiment of this utility model.

[0021] In the diagram: 1-Infrared laser rangefinder telescope body; 2-Multi-specification bracket connecting base; 201-Limiting seat; 202-Multi-hole wheel; 203-Connecting screw hole; 204-Semi-open slot; 205-Positioning hole; 206-Cavity; 207-L-shaped pin; 208-Mounting slide; 209-Limiting pin hole; 210-Groove; 211-Limiting spring; 212-Guide slope; 213-Matching slope; 214-Pulley; 215-Annular protrusion; 216-Receiving groove; 217-Rotating shaft; 218-Anti-slip rubber block. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0023] Please see Figures 1 to 6 This utility model provides a technical solution: a multifunctional fusion telescope, including an infrared laser ranging telescope body 1. A multi-specification bracket connecting base 2 is provided on the bottom surface of the infrared laser ranging telescope body 1. The multi-specification bracket connecting base 2 includes a limiting seat 201, which is fixedly installed at the central axis of the bottom surface of the infrared laser ranging telescope body 1. A perforated wheel 202 is provided on one side of the limiting seat 201. The perforated wheel 202 is rotatably connected to the bottom surface of the infrared laser ranging telescope body 1 via a rotating shaft 217. The upper part has several connecting screw holes 203 arranged in a ring array with different diameters. The outer wall of the limiting seat 201 facing the multi-hole wheel 202 has a semi-open groove 204. A part of the multi-hole wheel 202 is located in the semi-open groove 204. The bottom inner wall of the semi-open groove 204 has a positioning hole 205. The positioning hole 205 is coaxially arranged with one of the connecting screw holes 203. The top inner wall of the semi-open groove 204 has a cavity 206 opening upward. The cavity 206 is provided with a limiting mechanism that can cooperate with the multi-hole wheel 202.

[0024] It should be noted that the infrared laser ranging telescope body 1 integrates multiple advanced functions. It has a built-in positioning module, employing a BD+GPS positioning mode, achieving a horizontal positioning accuracy (CEP) of 5m and an elevation positioning accuracy (PE) of 10m, enabling precise determination of its own position. It is also equipped with an electronic compass module, with an azimuth measurement range of 0°-360° and a measurement accuracy of 1° (RMS), an elevation angle measurement range of -90° to +90° and an accuracy of 1° (RMS), and a tilt angle measurement range of -180° to +180° and an accuracy of 1° (RMS), accurately measuring angular information. In terms of imaging, the infrared thermal imaging resolution is 640x512, with a pixel size of 12µm, an operating wavelength of 8-14µm, and an electronic zoom of 6.2X; the visible light imaging resolution reaches 4.6 million pixels, with an electronic zoom of 8.2X; and the low-light imaging resolution is 750×600, with an electronic zoom of 5.5X. In addition, it features laser ranging with a human eye-safe wavelength of 1535nm, a maximum measurement range of ≥6km, a ranging accuracy of 2m, and a laser pointing function with an 830nm wavelength and Class I IA safety level. It supports image fusion and can realize functions such as day and night observation, target search, photo and video recording, and information uploading, meeting the needs of various scenarios.

[0025] Please see Figures 2 to 6 The limiting mechanism includes an L-shaped pin 207 disposed in the cavity 206 and several limiting pin holes 209 evenly distributed in a ring on the surface of the multi-hole wheel 202, which correspond one-to-one with each connecting screw hole 203. One end of the L-shaped pin 207 is slidably connected in the mounting groove 208, which is opened on the inner wall of one side of the cavity 206 and communicates with the outside of the limiting seat 201. The other end of the L-shaped pin 207 is inserted into one of the limiting pin holes 209. A limiting spring 211 is also fixedly connected between the L-shaped pin 207 and the top inner wall of the cavity 206.

[0026] An L-shaped pin 207 is installed inside the cavity 206, with one end slidably connected to the mounting groove 208. The mounting groove 208 communicates with the outside of the limiting seat 201, facilitating the operation of the L-shaped pin 207. Limiting pin holes 209, corresponding one-to-one with the connecting screw holes 203, are formed on the surface of the multi-hole disc 202. When the other end of the L-shaped pin 205 is inserted into one of the limiting pin holes 209, the position of the multi-hole disc 202 is fixed. A limiting spring 211 connects the L-shaped pin 207 to the inner top wall of the cavity 206, providing a continuous insertion force for the L-shaped pin 207 and ensuring a tight fit with the limiting pin hole 209. This accurately locks the rotational position of the multi-hole disc 202, ensuring the stability of the connecting screw hole 203 when connected to the tripod. The limiting spring 211 makes the fixing of the L-shaped pin 207 more reliable, less prone to loosening due to vibration or external force, and improves the stability and reliability of the entire connection structure.

[0027] Furthermore, the L-shaped pin 207 extends outward from the limiting seat 201 at one end of the mounting groove 208 and is fixedly connected to the lever 214.

[0028] Users can easily move the L-shaped pin 207 within the mounting groove 208 by simply moving the lever 214, thus separating or engaging the L-shaped pin 207 with the limiting pin hole 209. The design of the lever 214 makes operation more convenient for users, allowing them to easily switch the connecting screw hole 203 without the need for other tools, thereby improving operational efficiency. At the same time, the lever 214 also reduces the risk of damaging the limiting mechanism due to improper operation.

[0029] Furthermore, a groove 210 is provided on the upper surface of the porous wheel 202, and several limiting pin holes 209 are provided on the inner wall of the bottom of the groove 210 and extend to the bottom surface of the porous wheel 202.

[0030] A groove 210 is formed on the upper surface of the perforated wheel 202, and a limiting pin hole 209 is formed on the inner bottom wall of the groove 210 and extends to the bottom surface of the perforated wheel 202. In this way, without reducing the depth of the connecting screw hole 203 to ensure the stability of the tripod connection, the depth of the limiting pin hole 209 is shortened, thereby reducing the sliding stroke of the L-shaped pin 207. This makes it easier and less strenuous for the user to rotate the perforated wheel 202 to change the connecting screw hole 203, improving the convenience of operation. At the same time, the design of the groove 210 also reduces the weight of the perforated wheel 202 to a certain extent, making the telescope lighter overall.

[0031] Furthermore, each limiting pin hole 209 has an overall inverted trapezoidal structure that is larger at the top and smaller at the bottom, and its inner walls form a guide slope 212. The two sides of one end of the L-shaped pin 207 are provided with a mating slope 213 structure, and the bottom opening width of each limiting pin hole 209 is consistent with the width of one end of the L-shaped pin 207.

[0032] When the L-shaped pin 207 is inserted into the limiting pin hole 209, the guide slope 212 and the mating slope 213 cooperate to guide the L-shaped pin 207 accurately and quickly into the limiting pin hole 209. This simplifies the mating process between the L-shaped pin 207 and the limiting pin hole 209, allowing for smooth insertion even with imprecise alignment, thus improving the convenience and accuracy of operation. Simultaneously, the tightly fitting slope structure also enhances the connection stability between the L-shaped pin 207 and the limiting pin hole 209.

[0033] Furthermore, the middle part of the L-shaped pin 207 is integrally formed into an annular protrusion 215 corresponding to the position of the positioning hole 205. The bottom end of the limiting spring 211 is fixedly connected to the upper surface of the annular protrusion 215, and the top end of the limiting spring 211 is fixedly connected to the inner wall of the top of the cavity 206.

[0034] The annular protrusion 215 provides a larger connection area for the limit spring 211, making its installation more secure. The enhanced connection strength ensures that the limit spring 211 is not easily detached or displaced during long-term use, thereby ensuring the stable operation of the limit mechanism and further improving the reliability of the entire connection structure.

[0035] Furthermore, a receiving groove 216 is formed on the bottom surface of the annular protrusion 215.

[0036] When tripod screws of different lengths are threaded through positioning holes 205 and connected to connecting screw holes 203, if the screws extend a certain length beyond the connecting screw holes 203, the receiving groove 216 can accommodate the screw tips, preventing them from pushing against the L-shaped pin 207. The design of the receiving groove 216 effectively solves the problem of instability in the limit position that may be caused by excessively long tripod screws, improves the stability and reliability of the connection structure, and ensures that the telescope will not shake or shift due to connection problems during use.

[0037] Furthermore, the outer wall of the porous wheel 202 is provided with a number of anti-slip rubber blocks 218 evenly distributed in a ring.

[0038] When the user rotates the perforated wheel 202, their hand contacts the anti-slip rubber block 218, increasing friction and making the rotation easier and more stable. This improves the convenience and comfort of user operation, especially in wet or sweaty conditions, ensuring stable rotation of the perforated wheel 202 and preventing operational errors due to slippage.

[0039] Working Principle: The infrared laser ranging telescope body 1 integrates multiple functions. It can accurately determine its own position and measure angle information using its built-in positioning module and electronic compass module. Through infrared thermal imaging, visible light imaging, and low-light imaging functions, it meets the observation needs in different environments. It can also use laser ranging and laser pointing functions to achieve target ranging and pointing, as well as perform day and night observation, target search, photography and video recording, and information uploading. The multi-specification bracket connecting base 2 is responsible for the stable connection between the telescope body and the tripod. During use, if it is necessary to switch the connecting screw hole 203 to adapt to different tripods, the user moves the lever 214, causing the L-shaped pin 207 to slide within the mounting groove 208, separating it from the current limiting pin hole 209. At this time, the multi-hole wheel 202 can be rotated. During rotation, the design of the guide slope 212 and the mating slope 213 allows the L-shaped pin 207 to quickly and accurately insert into the new limiting pin hole 209. The groove 210 reduces the sliding stroke of the L-shaped pin 207, making operation easier. When the top screw of the tripod passes through the positioning hole 205 and connects to the connecting screw hole 203, if the screw is too long, the receiving groove 216 can accommodate the top of the screw to prevent it from pushing the L-shaped pin 207, thus ensuring a stable connection and guaranteeing the stability and functionality of the telescope during use.

[0040] It should be noted that the specific model and specifications of the infrared laser ranging telescope body 1 need to be selected and determined according to the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be described in detail.

[0041] The power supply and principle of the infrared laser ranging telescope body 1 are clear to those skilled in the art and will not be described in detail here.

[0042] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A multifunctional fusion telescope, characterized in that, The device includes an infrared laser ranging telescope body. A multi-specification bracket connecting base is provided on the bottom surface of the infrared laser ranging telescope body. The multi-specification bracket connecting base includes a limiting seat, which is fixedly installed at the central axis of the bottom surface of the infrared laser ranging telescope body. A multi-hole wheel is provided on one side of the limiting seat. The multi-hole wheel is rotatably connected to the bottom surface of the infrared laser ranging telescope body via a rotating shaft. The multi-hole wheel has several connecting screw holes of different diameters arranged in a circular array. A semi-open slot is provided on the outer wall of the limiting seat facing the multi-hole wheel. A portion of the multi-hole wheel is located in the semi-open slot. A positioning hole is provided through the bottom inner wall of the semi-open slot. The positioning hole is coaxially aligned with one of the connecting screw holes. A cavity is provided on the top inner wall of the semi-open slot, and a limiting mechanism that can cooperate with the multi-hole wheel is provided in the cavity.

2. The multifunctional fusion telescope as described in claim 1, characterized in that: The limiting mechanism includes an L-shaped pin disposed in the cavity and several limiting pin holes evenly distributed in a ring on the surface of the multi-hole disc, each corresponding to a connecting screw hole. One end of the L-shaped pin is slidably connected in a mounting groove, which is located on the inner wall of one side of the cavity and communicates with the outside of the limiting seat. The other end of the L-shaped pin is inserted into one of the limiting pin holes. A limiting spring is also fixedly connected between the L-shaped pin and the inner wall at the top of the cavity.

3. The multifunctional fusion telescope as described in claim 2, characterized in that: The L-shaped pin extends outward from the mounting groove at one end and is fixedly connected to a lever plate.

4. The multifunctional fusion telescope as described in claim 2, characterized in that: The upper surface of the perforated wheel is provided with a groove, and several limiting pin holes are all opened on the inner wall of the bottom of the groove and extend to the bottom surface of the perforated wheel.

5. The multifunctional fusion telescope as described in claim 2, characterized in that: Each of the limiting pin holes has an inverted trapezoidal structure that is larger at the top and smaller at the bottom, with guide slopes forming on its inner walls. The two sides of one end of the L-shaped pin are provided with a mating slope structure, and the opening width at the bottom of each limiting pin hole is the same as the width of one end of the L-shaped pin.

6. The multifunctional fusion telescope as described in claim 2, characterized in that: The L-shaped pin is integrally formed into an annular protrusion at the position corresponding to the positioning hole. The bottom end of the limiting spring is fixedly connected to the upper surface of the annular protrusion, and the top end of the limiting spring is fixedly connected to the inner wall of the top of the cavity.

7. The multifunctional fusion telescope as described in claim 6, characterized in that: The bottom surface of the annular protrusion forms a receiving groove facing upwards.

8. The multifunctional fusion telescope as described in claim 1, characterized in that: The porous wheel has several anti-slip rubber blocks evenly distributed in a ring on its outer circumference.