Handheld portable monitoring device for water and soil conservation
By designing the adjustable belt structure and multi-function support system of the handheld soil and water conservation monitoring device, the problems of inconvenience and stable placement of existing equipment are solved, the portability and efficiency of the equipment are improved, and the accuracy of monitoring data is enhanced.
Patent Information
- Application Number
- CN202421839692.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-31
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-07-31
AI Technical Summary
现有的水土监测设备体积较大,携带不便,且在野外使用时容易因环境原因导致提握不便,降低了设备的使用效率。
A handheld, easy-to-portable soil and water conservation monitoring device is designed, adopting an adjustable belt structure and a multi-functional support system, including a sliding frame, a receiving shaft, a pull belt, a curved plate, a slider and an inner groove. By pulling the pull belt and the slider, the length extension of the pull belt is achieved for easy portability; at the same time, through the combination of the bottom shaft block, winding ring, a bottom plate and a support block, the stable placement and angle adjustment of the equipment are achieved.
It improves the portability and use efficiency of the equipment, solves the problems of inconvenience and stable placement of traditional equipment when used in the field, and enhances the accuracy of monitoring data and the versatility of the equipment.
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Figure CN222912769U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of soil and water monitoring equipment, in particular to a handheld and portable monitoring device for soil and water conservation. Background Technique
[0002] This kind of soil and water conservation device is an innovative equipment for preventing soil erosion and protecting soil and water resources. It adopts a handheld design, with excellent portability. The innovative carrying strap structure allows length adjustment, improving the carrying comfort. The device's multi-functional support system can be stably placed on various terrains and can be automatically adjusted to adapt to different surfaces. Its flexibility is reflected in that the rotating mechanism allows the device to be placed at different angles to meet various monitoring needs, and it can also be placed vertically for easy observation and operation. In terms of durability, the structural design takes into account safety factors such as anti-detachment. The operation is simple, and no complex training is required to adjust the position and angle of the device. The integrated design reduces the need for additional accessories, and its strong adaptability enables it to cope with various field environments, improving the efficiency of monitoring work. The stable support system helps to improve the accuracy of monitoring data. As a soil and water conservation device, its design concept meets the requirements of environmental protection and has potential versatility, possibly applicable to other field scientific research activities. The innovation of this kind of soil and water conservation device lies in the ingenious combination of portability, stability and flexibility, achieving complex functions through simple and ingenious mechanical design. It not only solves many problems of traditional monitoring equipment in field use, but also has the potential to significantly improve the efficiency and accuracy of soil and water conservation monitoring work, which is of great significance to environmental protection and resource management work.
[0003] Generally, soil and water monitoring equipment is composed of electronic components. However, many monitoring devices are large in volume and very inconvenient to carry. When many staff members monitor soil and water, due to the external use environment, it is extremely easy to make the monitoring device inconvenient to hold, which will greatly reduce the use efficiency of the device.
[0004] Therefore, in view of this, in view of the existing deficiencies, research and improvement are carried out, and a handheld and portable monitoring device for soil and water conservation is proposed. Content of the Utility Model
[0005] The purpose of the utility model is to provide a handheld and portable monitoring device for soil and water conservation to solve the problems raised in the above background technique.
[0006] To achieve the above purpose, the utility model provides the following technical solution: A handheld and portable monitoring device for soil and water conservation, including: a monitoring machine body, side grooves are opened in the middle of both sides of the monitoring machine body, and carrying strap structures are arranged on both sides of the bottom end of the monitoring machine body;
[0007] An auxiliary structure is provided at the middle of the bottom end of the monitoring machine body.
[0008] Furthermore, the carrying strap structure includes a sliding frame, a receiving shaft, a pulling strap, an arc plate, a slider and an inner groove. Arc plates are provided on both sides of the bottom end of the monitoring machine body. An inner groove is formed on the inner side of the arc plate. A pulling strap extends from the inner side to the outer side of the inner groove. One end of the pulling strap is provided with a receiving shaft. A slider is provided at the outer end of the receiving shaft. A sliding frame is provided on the back of the slider. A sliding structure is formed between the sliding frame and the slider, facilitating the slider to drive the receiving shaft and the pulling strap to move inside the sliding frame.
[0009] Furthermore, the receiving shaft and the pulling strap are snap-connected, facilitating the installation of the pulling strap.
[0010] Furthermore, the pulling strap is made of a soft material, facilitating the staff to hold the pulling strap.
[0011] Furthermore, the outer shape of the arc plate is arc-shaped, facilitating the installation of the arc plate.
[0012] Furthermore, the auxiliary structure includes a bottom shaft block, a support block, a winding ring and a bottom plate. A bottom shaft block is fixedly provided at the middle of the bottom end of the monitoring machine body. A winding ring is sleeved on the outer side of the bottom shaft block. Bottom plates are provided on both sides of the winding ring. A support block is fixedly provided on the front surface of the bottom plate. The diameter of the front end of the outer side of the bottom shaft block is smaller than the diameter of the rear end of the outer side of the bottom shaft block, preventing the winding ring from detaching from the bottom shaft block.
[0013] Furthermore, a rotating structure is formed between the winding ring and the bottom shaft block, facilitating the winding ring to change the direction of the bottom plate.
[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0015] 1. By pulling the pulling strap in the present utility model, one end of the pulling strap extends out from the inner groove on the inner side of the arc plate, and the slider is moved. The slider drives the other end of the pulling strap to move inside the sliding frame. At this time, the space between the pulling strap and the monitoring machine body will increase. In this way, the staff can hold the pulling strap for carrying, and the pulling strap cooperates with the sliding frame and the arc plate for length extension;
[0016] 2. By vertically placing the monitoring machine body on an external platform in the present utility model, the support block abuts against the external platform. The support block drives the bottom plate to move upward. The bottom plate drives the winding ring to move on the outer side of the bottom shaft block. When the bottom plate abuts against the arc plate, the support block will help the monitoring machine body to stand upright on the external platform. In this way, it is convenient to place the monitoring machine body. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the first external structure of the present utility model;
[0018] Figure 2 This is the second external structure schematic diagram of the present utility model;
[0019] Figure 3 This is the third external structure schematic diagram of the present utility model;
[0020] Figure 4 This is the fourth external structure schematic diagram of the present utility model;
[0021] Figure 5 This is the fifth external structure schematic diagram of the present utility model;
[0022] Figure 6 This is the sixth external structure schematic diagram of the present utility model;
[0023] Figure 7 This is the seventh external structure schematic diagram of the present utility model;
[0024] Figure 8 This is the eighth external structure schematic diagram of the present utility model.
[0025] In the figure: 1, the monitoring machine body; 2, the carrying belt structure; 201, the sliding frame; 202, the receiving shaft; 203, the pulling belt; 204, the arc plate; 205, the slider; 206, the inner groove; 3, the auxiliary structure; 301, the bottom shaft block; 302, the support block; 303, the winding ring; 304, the bottom plate; 4, the side groove. Specific embodiments
[0026] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0027] As Figures 1 - 8 shown, a hand-held and portable monitoring device for soil and water conservation includes: a monitoring machine body 1, side grooves 4 are opened at the middle positions on both sides of the monitoring machine body 1, and carrying belt structures 2 are provided on both sides of the bottom end of the monitoring machine body 1;
[0028] An auxiliary structure 3 is provided at the middle position of the bottom end of the monitoring machine body 1.
[0029] As Figures 1 - 8As shown in the figure, a portable handheld monitoring device for soil and water conservation, the carrying strap structure 2 includes a sliding frame 201, a receiving shaft 202, a pulling strap 203, an arc plate 204, a slider 205 and an inner groove 206. Arc plates 204 are provided on both sides of the bottom end of the monitoring machine body 1. An inner groove 206 is opened on the inner side of the arc plate 204. A pulling strap 203 extends from the inner side to the outer side of the inner groove 206. One end of the pulling strap 203 is provided with a receiving shaft 202. A slider 205 is provided at the outer end of the receiving shaft 202. A sliding frame 201 is provided on the back of the slider 205. A sliding structure is formed between the sliding frame 201 and the slider 205. By pulling the pulling straps 203 on both sides of the monitoring machine body 1, one end of the pulling strap 203 extends in the inner groove 206 on the inner side of the arc plate 204, and the other end of the pulling strap 203 drives the slider 205 and the receiving shaft 202 to slide inside the sliding frame 201. At this time, the length of the pulling strap 203 will be extended, and the staff can hold the pulling strap 203 to carry the monitoring machine body 1:
[0030] Among them, the following main effects and novel technical points are brought:
[0031] Improved portability: Through the combined design of the pulling strap 203, the slider 205 and the sliding frame 201, the pulling strap 203 can be extended, which is convenient for the staff to carry the equipment. This retractable design increases the portability of the equipment.
[0032] Flexible adjustment: The length of the pulling strap 203 can be adjusted according to needs to meet the requirements of different users and different carrying methods.
[0033] Innovative structure: Using components such as the arc plate 204, the inner groove 206, and the sliding frame 201, a novel carrying strap structure 2 system is formed, which can achieve length extension while maintaining compactness.
[0034] Material selection: The pulling strap 203 is made of soft material, which improves the comfort of use.
[0035] Convenient installation: The receiving shaft 202 and the pulling strap 203 are connected by snap fit, which is convenient for disassembly, installation and maintenance.
[0036] Appearance design: The arc plate 204 is designed in an arc shape, which is not only beautiful but also convenient for installation, and may also help to reduce the friction between the equipment and the environment.
[0037] Simple operation: The pulling strap 203 can be extended by a simple pulling action without complex operations.
[0038] Stable structure: The design of the slider 205 and the sliding frame 201 ensures the stability of the carrying strap during use.
[0039] Bilateral design: The carrying strap structure 2 is provided on both sides of the bottom of the monitoring machine body 1, which may provide better balance and multiple carrying methods.
[0040] Compact storage: When not in use, the drawstring 203 can be stored in the inner groove 206 of the arc plate 204, maintaining the integrity and aesthetics of the device.
[0041] The novelty of this design lies in its ingenious combination of multiple simple mechanical structures, creating a practical and flexible portable system that is particularly suitable for soil and water conservation monitoring work that requires frequent movement. It solves the problems that may exist with traditional fixed carrying straps, such as insufficient or excessive length, while maintaining the simplicity and reliability of the structure.
[0042] As Figures 1 - 8 shown, a handheld and portable monitoring device for soil and water conservation, the auxiliary structure 3 includes a bottom shaft block 301, a support block 302, a winding ring 303 and a bottom plate 304. A bottom shaft block 301 is fixedly arranged at the middle of the bottom end of the monitoring machine body 1. A winding ring 303 is sleeved outside the bottom shaft block 301. Bottom plates 304 are arranged on both sides of the winding ring 303. A support block 302 is fixedly arranged on the front surface of the bottom plate 304. The diameter of the front end of the outside of the bottom shaft block 301 is smaller than the diameter of the rear end of the outside of the bottom shaft block 301. The bottom end of the monitoring machine body 1 presses the bottom plate 304, and the support block 302 at the bottom end of the bottom plate 304 drives the winding ring 303 to move upward outside the bottom shaft block 301. When the bottom plate 304 abuts against the bottom end of the arc plate 204, the monitoring machine body 1 will be placed stably, and the winding ring 303 is rotated. The winding ring 303 rotates outside the bottom shaft block 301, so that the winding ring 303 drives the bottom plate 304 and the support block 302 to change directions:
[0043] Among them, the following effects and novel technical points are brought:
[0044] Multi-functional support system: Through the combination of the bottom shaft block 301, the winding ring 303, the bottom plate 304 and the support block 302, a multi-functional system that can stably support the device is created.
[0045] Adaptive adjustment: When the monitoring machine body 1 is placed, the bottom plate 304 and the support block 302 can automatically adjust their positions to ensure the stability of the device.
[0046] Rotation function: The winding ring 303 can rotate outside the bottom shaft block 301, allowing the bottom plate 304 and the support block 302 to change directions, increasing the flexibility of device use.
[0047] Anti-disengagement design: The bottom shaft block 301 is designed with a smaller diameter at the front end than at the rear end to prevent the winding ring 303 from disengaging, improving the safety and stability of the structure.
[0048] Vertical placement function: The support block 302 can help the monitoring machine body 1 to be vertically placed on the platform, facilitating observation and operation.
[0049] Compact design: The entire auxiliary structure 3 is compactly designed and does not significantly increase the volume of the device.
[0050] Automatic adjustment mechanism: When the device is placed, the bottom plate 304 will automatically move up to contact the arc plate 204 to ensure stability.
[0051] Multi-angle support: By rotating the ring 303, the device can be supported at different angles to adapt to various working environments.
[0052] Integrated design: The auxiliary structure 3 is integrated with the bottom of the monitoring machine body 1 and does not require additional support fittings.
[0053] Easy to operate: The stable placement and angle adjustment of the device can be achieved without complex operations.
[0054] Structural innovation: The ingenious combination of the rotating mechanism ring 303 and the support structure bottom plate 304 support block 302 realizes multi-functional integration.
[0055] Adaptive mechanism: The device can automatically adjust the support structure according to the placed surface, improving adaptability.
[0056] Anti-disengagement design: Through the ingenious shape design of the bottom shaft block 301, both the rotation function is ensured and the components are prevented from disengaging.
[0057] Multi-functional integration: Multiple functions such as support, rotation, and anti-disengagement are integrated in a compact structure.
[0058] This design solves the problem of stable placement of field monitoring devices in different environments, and at the same time provides the flexibility of angle adjustment, greatly improving the practicality and adaptability of the device. Its innovation lies in achieving complex functions through a simple mechanical structure, ensuring the stability of the device without affecting its portability.
[0059] Working principle: When using the portable monitoring device for soil and water conservation, first pull the pulling belts 203 on both sides of the monitoring machine body 1. One end of the pulling belt 203 extends in the inner groove 206 inside the arc plate 204, and the other end of the pulling belt 203 drives the slider 205 and the bearing shaft 202 to slide inside the sliding frame 201. At this time, the length of the pulling belt 203 will be extended, and the staff can hold the pulling belt 203 to drive the monitoring machine body 1 for carrying. When the monitoring machine body 1 is to be placed on an external platform, the bottom end of the monitoring machine body 1 presses the bottom plate 304, and the supporting block 302 at the bottom end of the bottom plate 304 drives the winding ring 303 to move upward on the outside of the bottom shaft block 301. When the bottom plate 304 abuts against the bottom end of the arc plate 204, the monitoring machine body 1 will be placed stably, and then rotate the winding ring 303. The winding ring 303 rotates on the outside of the bottom shaft block 301, so that the winding ring 303 will drive the bottom plate 304 and the supporting block 302 to change directions. This is the working principle of the portable monitoring device for soil and water conservation.
[0060] The embodiments of the present utility model are given for purposes of illustration and description, and are not exhaustive or limit the present utility model to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are chosen and described in order to better explain the principles of the present utility model and its practical applications, and to enable those of ordinary skill in the art to understand the present utility model so as to design various embodiments with various modifications suitable for specific purposes.
Claims
1. A portable handheld monitoring device for soil and water conservation, comprising: The monitoring machine body (1) is characterized in that side grooves (4) are provided in the middle of both sides of the monitoring machine body (1), and carrying strap structures (2) are provided on both sides of the bottom end of the monitoring machine body (1); An auxiliary structure (3) is provided in the middle of the bottom end of the monitoring machine body (1).
2. A portable handheld monitoring device for soil and water conservation according to claim 1, characterized in that: The lifting strap structure (2) comprises a sliding frame (201), a receiving shaft (202), a pulling strap (203), an arc plate (204), a sliding block (205) and an inner groove (206); arc plates (204) are arranged on both sides of the bottom end of the monitoring machine body (1); an inner groove (206) is provided on the inner side of the arc plate (204); a pulling strap (203) extends outward from the inner side of the inner groove (206); a receiving shaft (202) is arranged at one end of the pulling strap (203); a sliding block (205) is arranged at one end outside the receiving shaft (202); a sliding frame (201) is arranged on the back side of the sliding block (205); a sliding structure is formed between the sliding frame (201) and the sliding block (205).
3. A portable handheld monitoring device for soil and water conservation according to claim 2, characterized in that: The receiving shaft (202) and the drawstring (203) are in a snap-fit connection.
4. A portable handheld monitoring device for soil and water conservation according to claim 2, characterized in that: The drawstring (203) is made of soft material.
5. A portable handheld monitoring device for soil and water conservation according to claim 2, characterized in that: The arc plate (204) has an arc shape.
6. A portable handheld monitoring device for soil and water conservation according to claim 1, characterized in that: The auxiliary structure (3) comprises a bottom shaft block (301), a support block (302), a ring (303) and a bottom plate (304); the bottom shaft block (301) is fixedly arranged in the middle of the bottom end of the monitoring machine body (1); the ring (303) is sleeved on the outer side of the bottom shaft block (301); the bottom plate (304) is arranged on both sides of the ring (303); the support block (302) is fixedly arranged on the front side of the bottom plate (304); the diameter of the outer front end of the bottom shaft block (301) is smaller than the diameter of the outer rear end of the bottom shaft block (301).
7. A portable handheld monitoring device for soil and water conservation according to claim 6, characterized in that: The winding ring (303) and the bottom shaft block (301) form a rotating structure.