Portable remote sensing exploration device
Through innovative design of portable carrying strap components and remote sensing probes, the problem of balancing portability and stability in traditional remote sensing equipment has been solved, achieving a balance of portability, comfort, and functionality, and improving the efficiency of geological exploration.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG INSTITUTE OF CARBON NEUTRALITY (SHAOGUAN)
- Filing Date
- 2025-07-02
- Publication Date
- 2026-05-01
AI Technical Summary
Traditional remote sensing equipment struggles to balance portability and stability, failing to meet the practical needs of geological exploration.
A portable carrying strap assembly was designed, including waist, chest, and shoulder straps, combined with silicone lining strips and damping hinges to enhance the stability and portability of the device, and to secure the remote sensing probe by silicone suction cups. The damping hinge between the support plate and the bracket enables angle adjustment.
It improves the portability and stability of the device, reduces shaking, enhances user comfort and ease of operation, adapts to different terrains and exploration needs, and improves the accuracy of data acquisition.
Smart Images

Figure CN224190259U_ABST
Abstract
Description
A portable remote sensing exploration device Technical Field
[0001] This utility model relates to the field of infrared remote sensing detector technology, specifically to a portable remote sensing exploration device. Background Technology
[0002] Remote sensing technology has become an indispensable tool in fields such as geological exploration, mineral prospecting, and geological environmental assessment. After years of development, remote sensing technology has continuously improved in terms of resolution, observation scale, and recognition accuracy. Especially driven by new sensor technologies such as drones and small satellites, its application scenarios continue to expand. However, traditional remote sensing equipment still has many limitations in practical applications.
[0003] Traditional remote sensing equipment is mostly designed as either fixed or handheld. Fixed equipment is bulky and inconvenient to move, making it difficult to adapt to complex terrain and field operations. While handheld equipment is easy to carry, prolonged handheld operation can lead to fatigue and compromises stability, affecting data acquisition accuracy. In geological exploration, the portability and stability of remote sensing equipment are crucial. Field environments are complex and variable, requiring equipment that is lightweight and easy to wear to reduce user burden and improve work efficiency. Simultaneously, the equipment needs a stable support structure to ensure stability in complex terrain, thereby acquiring accurate geological data. However, existing equipment struggles to balance portability and stability, failing to meet practical needs. Therefore, developing a portable remote sensing exploration device is essential to address these issues. Summary of the Invention
[0004] The purpose of this utility model is to provide a technical solution for a portable remote sensing exploration device to address the shortcomings mentioned in the background art. To overcome the drawbacks and defects described in the background art, this technical solution includes the following:
[0005] The device includes a portable carrying strap assembly, on the front side wall of which a remote sensing probe assembly is connected. The portable carrying strap assembly includes a waist strap that is fastened to the waist and abdomen, and a chest strap that is fastened to the chest. The waist strap and the chest strap are connected to each other by several connecting straps. A backpack buckle is fixed to both ends of the waist strap and the chest strap. Two shoulder straps are connected to the front and back of the upper surface of the chest strap, and shoulder buckles are connected to the front and back ends of the shoulder straps.
[0006] The remote sensing probe assembly includes a back plate fixed to the front surface of the chest strap and a support plate located in front of the back plate. A bracket is fixedly connected to the front end of the support plate, and an infrared remote sensing probe is fixedly connected inside the bracket. A silicone suction cup that adheres to the front surface of the back plate is fixedly connected to each of the four rear corners of the support plate.
[0007] As a preferred embodiment of this utility model: a layer of silicone inner lining strip is fixed to the inner surface of both the waist belt and the chest belt with an adhesive to increase the friction between the waist belt, the chest belt and the waist, abdomen and chest area.
[0008] As a preferred embodiment of this utility model, the backpack buckles at both ends of the waist belt and chest belt can be inserted and snapped together.
[0009] As a preferred embodiment of this utility model, the inner surface of the shoulder straps is in contact with both shoulders of the human body.
[0010] As a preferred embodiment of this utility model, the front surface of the back plate is adsorbed and connected to the adsorption end face of the silicone suction cup.
[0011] As a preferred embodiment of this utility model: a damping hinge is connected between the front end face of the support plate and the rear side wall of the bracket, which is used to allow the infrared remote sensing detector to rotate up and down and hover.
[0012] As a preferred embodiment of this utility model, the bracket has an opening inside for embedding and fixing an infrared remote sensing detector.
[0013] The technical effects and advantages provided by this utility model in the above technical solution are as follows:
[0014] The portable carrying strap assembly features silicone inner lining strips on the inside of the waist and chest straps to increase friction with the body, ensuring a stable fit and reducing movement. The waist and chest straps are connected via backpack buckles for easy and quick donning and detachment. The shoulder straps are adjustable to accommodate users with different shoulder widths and offer comfortable contact with the shoulders. The remote sensing detector assembly attaches to the back plate via silicone suction cups, simplifying installation and removal. A damped hinge between the support plate and the bracket allows the infrared remote sensing detector to rotate and hover, facilitating angle adjustments to meet various exploration needs. The overall device has a rational structure, balancing portability, comfort, and functionality, making it easy for users to carry to different locations for remote sensing exploration work and improving work efficiency. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.
[0016] Figure 1 is a schematic diagram of the overall structure of the portable remote sensing exploration device;
[0017] Figure 2 is a schematic diagram of the portable shoulder strap assembly;
[0018] Figure 3 is a schematic diagram of an infrared remote sensing detector.
[0019] Explanation of reference numerals in the attached figures:
[0020] 1. Portable shoulder strap assembly; 11. Waist strap; 12. Connecting strap; 13. Chest strap; 14. Silicone inner lining strip; 15. Shoulder buckle; 16. Shoulder strap; 17. Backpack buckle; 2. Remote sensing detector assembly; 21. Back panel; 22. Support plate; 23. Bracket; 24. Infrared remote sensing detector; 25. Silicone suction cup. Detailed Implementation
[0021] To provide a clearer explanation and illustration of the technical solution and implementation of this utility model, several preferred specific embodiments for implementing the technical solution of this utility model are introduced below. The following description is merely exemplary and not intended to limit the scope, application, or use of this disclosure. It should be understood that in all these drawings, the same or similar reference numerals indicate the same or similar parts and features. The various drawings only schematically illustrate the concept and principles of the embodiments of this disclosure and do not necessarily show the specific dimensions and scale of each embodiment. Specific parts in particular drawings may be exaggerated to illustrate relevant details or structures of the embodiments of this disclosure. The disclosures of various publications, patents, and published patent specifications cited herein are incorporated herein by reference in their entirety. The technical solution of this utility model will be clearly and completely described below in conjunction with embodiments of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model.
[0022] Example 1: The portable remote sensing exploration device of this example includes a portable shoulder strap assembly 1 and a remote sensing exploration device assembly 2. In the portable shoulder strap assembly 1, the waist strap 11 is made of nylon material with a certain degree of elasticity and strength. A silicone inner lining strip 14 is fixed to its inner surface with adhesive. The silicone inner lining strip 14 has a fine texture to increase friction with the waist and abdomen. The chest strap 13 is also made of nylon material, and a silicone inner lining strip 14 is also fixed to its inner side to increase friction with the chest area. The waist strap 11 and the chest strap 13 are connected by three connecting straps 12, which are flat nylon straps with adjustable length. Both ends of the waist strap 11 and chest strap 13 are secured with backpack buckles 17. In use, the backpack buckles 17 at both ends of the waist strap 11 are inserted into each other to lock in place, and the backpack buckles 17 at both ends of the chest strap 13 are also inserted into each other to lock in place, thus binding the waist strap 11 around the waist and abdomen, and the chest strap 13 around the chest. Two shoulder straps 16 are connected to the upper surface of the chest strap 13, one at the front and one at the back. The shoulder straps 16 are approximately 5 cm wide nylon straps, with their inner surfaces contacting the shoulders. Shoulder buckles 15 are attached to the front and back ends of the shoulder straps 16, allowing adjustment of the length of the shoulder straps 16 to accommodate different user shoulder widths.
[0023] In the remote sensing detector assembly 2, the back plate 21 is made of rigid plastic and is fixed to the front surface of the chest strap 13 by sewing. The support plate 22 is also made of rigid plastic, and its front end face is connected to the rear side wall of the bracket 23 by a damping hinge. The bracket 23 is made of metal and has an opening inside for the infrared remote sensing detector 24 to be embedded and fixed. The infrared remote sensing detector 24 is fixed in the opening by screws. A silicone suction cup 25 is fixedly connected to each of the four rear corners of the support plate 22. In use, the support plate 22 is placed in front of the back plate 21, so that the silicone suction cups 25 are attached to the front surface of the back plate 21, thereby fixing the remote sensing detector assembly 2 to the portable shoulder strap assembly 1. The user can rotate and hover the infrared remote sensing detector 24 up and down as needed by using the damping hinge to adjust the detection angle of the infrared remote sensing detector 24.
[0024] Example 2: In this embodiment of the portable remote sensing exploration device, the waist strap 11 of the portable shoulder strap assembly 1 is made of canvas, and the silicone inner lining strip 14 fixed inside is relatively thick, further increasing the friction with the waist and abdomen. The chest strap 13 is made of leather, and the surface of the silicone inner lining strip 14 inside has raised particles to increase friction with the chest area. The waist strap 11 and the chest strap 13 are connected by four connecting straps 12, which are elastic rubber straps to better adapt to the user's body movements. The backpack buckle 17 is made of metal with a rust-proof surface. After the backpack buckles 17 at both ends of the waist strap 11 and the chest strap 13 are inserted and snapped together, the connection is more secure. The shoulder straps 16 are made of cotton, with a soft inner surface, which is more comfortable when in contact with the human shoulder. The length can be flexibly adjusted by the shoulder buckle 15.
[0025] The backplate 21 of the remote sensing probe assembly 2 is made of aluminum alloy and is adhered to the front surface of the chest strap 13 with strong adhesive. The support plate 22 is made of carbon fiber, which is lightweight and high-strength. The damping hinge between the support plate 22 and the bracket 23 has adjustable damping, making the infrared remote sensing probe 24 more stable when rotating and hovering. The edges of the internal openings of the bracket 23 have rubber pads to protect the infrared remote sensing probe 24 from damage. The silicone suction cups 25 at the four rear corners of the support plate 22 have strong adsorption force, ensuring that the remote sensing probe assembly 2 is firmly fixed to the portable shoulder strap assembly 1.
[0026] Example 3: In this embodiment of the portable remote sensing exploration device, the waist strap 11 and chest strap 13 of the portable shoulder strap assembly 1 are both made of high-strength polyester fiber. The inner silicone lining strip 14 is detachable for easy cleaning and replacement. The waist strap 11 and chest strap 13 are connected by two wide connecting straps 12, which have reflective strips to improve the user's safety during nighttime activities. The backpack buckle 17 is made of plastic, which is lightweight and durable. After inserting the two backpack buckles 17 into each other, the device can be quickly put on. The shoulder straps 16 are made of breathable mesh fabric with an anti-slip texture on the inner surface. The shoulder buckles 15 can be quickly adjusted in length to meet the needs of different users.
[0027] The backplate 21 of the remote sensing probe assembly 2 is made of a plastic and metal composite material, ensuring strength while reducing weight. It is fixed to the front surface of the chest strap 13 with Velcro for easy disassembly and installation. The support plate 22 is made of engineering plastic with a frosted surface to increase friction. The damping hinge between the support plate 22 and the bracket 23 allows for precise adjustment at multiple angles, enabling the infrared remote sensing probe 24 to adapt to various complex detection needs. The bracket 23 has a positioning protrusion inside the opening for quick positioning of the infrared remote sensing probe 24. The silicone suction cups 25 at the four rear corners of the support plate 22 are replaceable. When the suction force decreases, the silicone suction cups 25 can be replaced in time to ensure the stable fixation of the remote sensing probe assembly 2.
[0028] Based on the above preferred technical solution, the workflow of this technical solution is described as follows:
[0029] The user wraps the waist strap 11 around the waist and abdomen, inserting the buckles 17 at both ends of the waist strap 11 into each other to secure it firmly in place. The inner surface of the waist strap 11 has a silicone lining strip 14 fixed with adhesive, increasing friction with the waist and abdomen to prevent it from slipping. Next, the chest strap 13 is wrapped around the chest, with the buckles 17 at both ends of the chest strap 13 also inserted into each other. The inner side of the chest strap 13 also has a silicone lining strip 14, increasing friction with the chest area to ensure a secure fit. At this point, the waist strap 11 and chest strap 13 are connected by several connecting straps 12, which serve to connect and adjust the tightness to accommodate different user body shapes. Then adjust the shoulder straps 16. There are two shoulder straps 16 connected to the front and back of the upper surface of the chest strap 13. Adjust the shoulder buckles 15 on the front and back of the shoulder straps 16 so that the length of the shoulder straps 16 is suitable for the user's shoulder width and the inner surface of the shoulder straps 16 is in contact with the shoulders of the human body, providing the user with a comfortable wearing experience.
[0030] After putting on the portable shoulder strap assembly 1, install the remote sensing detector assembly 2. Place the support plate 22 on the front side of the back plate 21, which is fixed to the front surface of the chest strap 13. A silicone suction cup 25 is fixedly connected to each of the four rear corners of the support plate 22, allowing the suction cups 25 to adhere to the front surface of the back plate 21, thus fixing the remote sensing detector assembly 2 to the portable shoulder strap assembly 1. When it is necessary to adjust the detection angle of the infrared remote sensing detector 24, a damping hinge connects the front end face of the support plate 22 to the rear side wall of the bracket 23, allowing the user to manually rotate the infrared remote sensing detector 24. The infrared remote sensing detector 24 is fixedly connected inside the bracket 23, which has an opening for embedding and fixing the infrared remote sensing detector 24. Under the action of the damping hinge, the infrared remote sensing detector 24 can rotate up and down and hover at the desired angle for remote sensing detection in different directions and at different heights. During use, if it is necessary to disassemble the remote sensing probe assembly 2, simply pull the support plate 22 off the back plate 21 with a little force to separate the silicone suction cup 25 from the back plate 21; if it is necessary to remove the portable shoulder strap assembly 1, first unfasten the shoulder buckle 15, loosen the shoulder strap 16, and then unfasten the backpack buckles 17 at both ends of the waist strap 11 and the chest strap 13 respectively, and remove the waist strap 11 and the chest strap 13 from the body.
[0031] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A portable remote sensing exploration device, comprising a portable carrying strap assembly (1), characterized in that: The portable shoulder strap assembly (1) is connected to the front side wall of the remote sensing probe assembly (2); the portable shoulder strap assembly (1) includes a waist strap (11) that is fastened to the waist and abdomen, and a chest strap (13) that is fastened to the chest. The waist strap (11) and the chest strap (13) are connected to each other by several connecting straps (12). Both ends of the waist strap (11) and the chest strap (13) are fixed with backpack buckles (17). The upper surface of the chest strap (13) is connected to two shoulder straps (16) at the front and back. The shoulder strap (16) is connected to a shoulder buckle (15) at one end near the front and back. The remote sensing probe assembly (2) includes a back plate (21) fixed to the front surface of the chest strap (13) and a support plate (22) located in front of the back plate (21). A bracket (23) is fixedly connected to the front end of the support plate (22). An infrared remote sensing probe (24) is fixedly connected inside the bracket (23). A silicone suction cup (25) that is adsorbed to the front surface of the back plate (21) is fixedly connected to each of the four rear corners of the support plate (22).
2. The portable remote sensing exploration device according to claim 1, characterized in that: The inner surfaces of the waist belt (11) and chest belt (13) are each fixed with a layer of silicone inner lining strip (14) by adhesive to increase the friction between the waist belt (11), chest belt (13) and the waist, abdomen and chest area.
3. The portable remote sensing exploration device according to claim 1, characterized in that: The bag buckles (17) on both ends of the waist belt (11) and chest belt (13) can be inserted into each other.
4. The portable remote sensing exploration device according to claim 1, characterized in that: The inner surfaces of the shoulder straps (16) are in contact with the shoulders of the human body.
5. A portable remote sensing exploration device according to claim 1, characterized in that: The front surface of the back plate (21) is adsorbed and connected to the adsorption end face of the silicone suction cup (25).
6. A portable remote sensing exploration device according to claim 1, characterized in that: A damping hinge is connected between the front end face of the support plate (22) and the rear side wall of the bracket (23) to allow the infrared remote sensing detector (24) to rotate up and down and hover.
7. A portable remote sensing exploration device according to claim 1, characterized in that: The bracket (23) has an opening inside for the infrared remote sensing detector (24) to be embedded and fixed.