An environmental monitoring data encryption transmission device
By combining the clamping and protective mechanism with the solar power supply mechanism, the problem of the environmental monitoring data encryption transmission device being easily damaged in harsh environments is solved. This achieves stable clamping of the equipment and line protection, improves the safety and stability of the device, adapts to diverse equipment, and reduces operating costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- HUANENG DONGGUAN GAS TURBINE THERMAL POWER CO LTD
- Filing Date
- 2025-10-09
- Publication Date
- 2026-05-08
AI Technical Summary
Existing environmental monitoring data encryption transmission devices lack limit fixing and connection line protection, making the devices susceptible to damage from external factors. Connection lines are prone to detachment or breakage, affecting stability and service life.
The device is secured within the protective chamber using a clamping and protective mechanism and an elastic clamping mechanism. A servo motor-driven bevel gear and lead screw system ensures stable clamping of the device, while the elastic clamping mechanism provides protection and organization of the wiring. Combined with a solar power supply mechanism, a stable power source is provided to ensure the device operates normally in harsh environments.
It effectively prevents damage to equipment and lines, improves the safety and stability of the device, extends its service life, adapts to different equipment sizes, reduces operating costs, and enhances the device's adaptability in complex environments.
Smart Images

Figure CN121173554B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of digital information transmission technology, specifically to an encrypted transmission device for environmental monitoring data. Background Technology
[0002] With global environmental issues becoming increasingly prominent, environmental monitoring has become a crucial link in protecting the ecological environment. As the core outcome of monitoring work, the security, stability, and compliance of environmental monitoring data transmission directly affect the scientific nature of environmental regulatory decisions, the fairness of law enforcement, and the protection of the public's environmental rights. Against this backdrop, the limitations of traditional environmental monitoring data transmission methods are becoming increasingly apparent, creating an urgent need for professional encrypted transmission devices.
[0003] Existing environmental monitoring data encryption transmission devices are typically used by installing the device in a designated location and then connecting it to the environmental monitoring equipment via a line, thereby encrypting and transmitting the data collected by the monitoring equipment.
[0004] However, existing environmental monitoring data encryption transmission devices have the following shortcomings:
[0005] Existing environmental monitoring data encryption transmission devices lack the ability to limit and fix the device itself and protect the connecting lines. As a result, in harsh environments, the device is susceptible to damage from external factors, and the connecting lines are prone to detachment, breakage, or bending. This is not conducive to the long-term use and stable operation of the device and makes it difficult to meet actual usage needs.
[0006] Therefore, we propose an encrypted transmission device for environmental monitoring data to address the problems mentioned above. Summary of the Invention
[0007] The purpose of this invention is to provide an encrypted transmission device for environmental monitoring data. By setting up a clamping and protective mechanism, the device can be fixed in the protective chamber in conjunction with an elastic clamping mechanism to prevent external factors from damaging the device. At the same time, the connecting lines are sorted and protected to effectively prevent the lines from falling off, bending or breaking, thereby solving the problems mentioned in the background art.
[0008] To achieve the above objectives, the present invention provides the following technical solution: an environmental monitoring data encryption transmission device, comprising a base mechanism.
[0009] A protective compartment is located on top of the base mechanism;
[0010] A clamping and protective mechanism is located inside the protective compartment;
[0011] An elastic clamping mechanism is disposed on the outside of the clamping and protective mechanism;
[0012] The data encryption transmission device is installed inside the protective compartment;
[0013] An energy storage mechanism is located on top of the protective chamber;
[0014] A platform mechanism is installed on top of the energy storage mechanism;
[0015] A solar power supply mechanism is located on top of the platform mechanism;
[0016] The clamping and protective mechanism includes a first servo motor, which is installed on one side of the protective chamber. The output end of the first servo motor movably passes through the protective chamber and is connected to a first bevel gear. A second bevel gear is meshed with the outer side of the first bevel gear. A first bidirectional lead screw is fixedly installed on the inner side of the second bevel gear. Both ends of the first bidirectional lead screw pass through the protective chamber and are connected to a third bevel gear. A fourth bevel gear is meshed with the outer side of each third bevel gear. A second bidirectional lead screw is fixedly installed on the inner side of each fourth bevel gear. Two protective frames are installed on the outer side of each second bidirectional lead screw. A first guide rod is installed at both ends of the protective chamber. One end of each pair of protective frames is slidably installed on the outer side of a corresponding first guide rod.
[0017] Preferably, the elastic clamping mechanism includes two sliding seats, both of which are mounted on the outside of the first bidirectional lead screw. Each sliding seat has a connecting frame connected to its top and bottom, and one end of each connecting frame is connected to a fixing frame. The protective chamber has two second guide rods installed inside. One end of each pair of fixing frames is slidably mounted on the outside of a corresponding second guide rod. Two fixing rods are fixedly mounted between each pair of fixing frames. Two limiting frames are fixedly mounted on the outside of each pair of fixing rods. Two clamping frames are slidably mounted on the outside of each pair of fixing rods. Two springs are sleeved on the outside of each fixing rod.
[0018] Preferably, the solar power supply mechanism includes a second servo motor, the output end of which movably passes through the frame mechanism and is connected to a turntable. A solar photovoltaic panel is installed on the top of the turntable, and photosensitive elements are installed at both ends of the top of the turntable. Both photosensitive elements are connected to the second servo motor through internal wires.
[0019] Preferably, the energy storage mechanism includes a battery compartment, which is fixedly installed on the top of the protective compartment. The battery compartment has four anti-slip frames installed inside, and a battery is installed between the four anti-slip frames.
[0020] Preferably, the platform mechanism includes four mounting seats, which are respectively fixedly installed at both ends of the battery compartment. Each mounting seat is provided with an L-shaped frame on its top. Each L-shaped frame and the mounting seat are fixedly installed by fastening bolts. A mounting plate is installed on the top of the four L-shaped frames.
[0021] Preferably, the base mechanism includes a metal ring, with multiple supports fixedly mounted on the top of the metal ring, and a fixed platform fixedly mounted on the top of the multiple supports.
[0022] Preferably, two cooling fans are installed on one side of the protective compartment, and each cooling fan has a dust cover installed at one end.
[0023] Preferably, two hinges are installed on one side of the protective compartment, and one end of the two hinges is connected to a compartment door, the surface of which is equipped with a handle.
[0024] Preferably, the top of the metal ring is equipped with a plurality of anti-slip pads, each anti-slip pad has an installation bolt installed at one end of its top, and a reserved screw hole is provided through the other end of each anti-slip pad.
[0025] Preferably, a protective door is provided at one end of the battery compartment, and the solar photovoltaic panel is connected to the battery through internal wires.
[0026] Compared with the prior art, the beneficial effects of the present invention are:
[0027] 1. This invention, by setting up a clamping and protective mechanism, can fix the equipment in the protective chamber in conjunction with the elastic clamping mechanism, thereby preventing external factors from damaging the equipment. At the same time, it can organize and protect the connecting lines, effectively preventing the lines from falling off, bending or breaking, and can also prevent the lines from falling off due to external pulling, achieving a certain physical encryption effect. This improves the safety and stability of the device during use, extends the service life of the device, and can meet the actual use needs.
[0028] 2. By setting up an elastic clamping mechanism, the present invention can clamp and fix the equipment under the drive of the clamping and protective mechanism, so that the equipment can be installed in the protective chamber, effectively avoiding damage to the equipment from external adverse factors. It can also be applied to the installation of equipment of different sizes, has better versatility, and can meet diverse usage needs.
[0029] 3. By setting up a solar power supply mechanism, this invention provides a stable power supply to the device, ensuring its normal operation, saving on the cost of using the device, and enabling it to cope with different and harsh operating environments, thus optimizing the actual user experience. Attached Figure Description
[0030] Figure 1 This is a perspective view of the main structure of an environmental monitoring data encryption transmission device according to the present invention;
[0031] Figure 2 This is a side view perspective of the structure of an environmental monitoring data encryption transmission device according to the present invention;
[0032] Figure 3 This is a perspective view of the internal structure of an environmental monitoring data encryption transmission device according to the present invention;
[0033] Figure 4 This is an enlarged perspective view of a partial structure of an environmental monitoring data encryption transmission device according to the present invention;
[0034] Figure 5 This is an enlarged perspective view of a portion of the structure of an environmental monitoring data encryption transmission device according to the present invention;
[0035] Figure 6 This is an enlarged perspective view of the clamping and protective mechanism in an environmental monitoring data encryption transmission device of the present invention;
[0036] Figure 7 This is an enlarged perspective view of the elastic clamping mechanism in an environmental monitoring data encryption transmission device of the present invention;
[0037] Figure 8 This is an enlarged perspective view of the solar power supply mechanism in an environmental monitoring data encryption transmission device of the present invention.
[0038] In the diagram: 1. Base mechanism; 101. Metal ring; 102. Bracket; 103. Fixed platform; 2. Protective chamber; 3. Clamping and protective mechanism; 301. First servo motor; 302. First bevel gear; 303. Second bevel gear; 304. First bidirectional lead screw; 305. Third bevel gear; 306. Fourth bevel gear; 307. Second bidirectional lead screw; 308. Protective frame; 309. First guide rod; 4. Elastic clamping mechanism; 401. Sliding seat; 402. Connecting frame; 403. Fixed frame; 404. Second guide rod; 405. Fixed rod; 406. Limiting frame; 4 7. Clamping frame; 408. Spring; 5. Data encryption transmission equipment; 6. Energy storage mechanism; 601. Battery compartment; 602. Anti-slip frame; 603. Battery; 7. Stand mechanism; 701. Mounting base; 702. L-shaped frame; 703. Fastening bolt; 704. Mounting platform; 8. Solar power supply mechanism; 801. Second servo motor; 802. Turntable; 803. Solar photovoltaic panel; 804. Photosensitive element; 9. Cooling fan; 10. Dust cover; 11. Hinge; 12. Compartment door; 13. Handle; 14. Anti-slip pad; 15. Mounting bolt; 16. Reserved screw holes. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] Please see the appendix Figure 1 -Appendix Figure 8 As shown, the present invention provides a technical solution: an environmental monitoring data encryption transmission device, including a base mechanism 1,
[0041] Protective compartment 2 is located on top of base mechanism 1;
[0042] The clamping and protective mechanism 3 is installed inside the protective compartment 2;
[0043] The elastic clamping mechanism 4 is located on the outside of the clamping and protective mechanism 3;
[0044] Data encryption transmission device 5 is installed inside the protective compartment 2;
[0045] Energy storage mechanism 6 is located on top of protective chamber 2;
[0046] The platform mechanism 7 is located on top of the energy storage mechanism 6;
[0047] The solar power supply mechanism 8 is located on top of the platform mechanism 7;
[0048] The clamping and protective mechanism 3 includes a first servo motor 301, which is mounted on one side of the protective chamber 2. The output end of the first servo motor 301 movably passes through the protective chamber 2 and is connected to a first bevel gear 302. A second bevel gear 303 is meshed with the outer side of the first bevel gear 302. A first bidirectional lead screw 304 is fixedly mounted on the inner side of the second bevel gear 303. Both ends of the first bidirectional lead screw 304 pass through the protective chamber 2 and are connected to a third bevel gear 305. A fourth bevel gear 306 is meshed with the outer side of each third bevel gear 305. A second bidirectional lead screw 307 is fixedly mounted on the inner side of each fourth bevel gear 306. Two protective frames 308 are mounted on the outer side of each second bidirectional lead screw 307. A first guide rod 309 is mounted on both ends of the protective chamber 2. One end of each pair of protective frames 308 is slidably mounted on the outer side of a corresponding first guide rod 309. The clamping and protective mechanism 3 works in synergy with the elastic clamping mechanism 4 to securely fix the equipment within the protective chamber 2. This dual clamping mechanism not only effectively prevents physical damage to the equipment caused by external factors such as vibration and impact, but also systematically organizes and protects the equipment's connecting lines. Specifically, this design ensures that the lines are arranged in an orderly manner in a fixed position, avoiding the risk of lines falling off due to messy tangling. At the same time, it effectively prevents excessive bending or breakage of the lines through buffer protection. In addition, the mechanism can resist the impact of external pulling on the stability of the line connection, achieving a certain degree of encrypted protection at the physical level. This comprehensive protection measure significantly improves the safety performance and operational stability of the device during use, while extending the overall service life of the device by reducing mechanical damage, fully meeting the usage needs of various practical application scenarios.
[0049] according to Figure 3 , Figure 4 , Figure 5 and Figure 7As shown, the elastic clamping mechanism 4 includes two sliding seats 401, both of which are mounted on the outside of the first bidirectional lead screw 304. Each sliding seat 401 has a connecting frame 402 connected to its top and bottom, and a fixing frame 403 connected to one end of each connecting frame 402. Two second guide rods 404 are installed inside the protective chamber 2. One end of each pair of fixing frames 403 is slidably mounted on the outside of a corresponding second guide rod 404. Two fixing rods 405 are fixedly installed between each pair of fixing frames 403, and two limiting frames 406 are fixedly installed on the outside of each pair of fixing rods 405. Two clamping frames 407 are slidably mounted on the outer side of every two fixed rods 405, and two springs 408 are sleeved on the outer side of each fixed rod 405. Through the elastic clamping mechanism 4, under the driving action of the protective mechanism 3, it can achieve stable clamping and reliable fixation of various equipment. This innovative clamping method not only ensures that the equipment can be safely and securely installed inside the protective chamber 2, but more importantly, it forms a comprehensive protective barrier, effectively isolating and resisting potential damage to the equipment caused by adverse factors such as vibration, impact, dust, and moisture in the external environment. The elastic clamping mechanism 4 adopts an adjustable structural design. Through its unique elastic deformation characteristics, it can adapt to the shape of equipment of different specifications and sizes, achieving good clamping effects for both small precision instruments and larger equipment components. This design significantly improves the applicability and compatibility of the entire system, enabling it to flexibly cope with diverse application scenarios and constantly changing installation requirements.
[0050] according to Figure 1 , Figure 2 , Figure 3 and Figure 8 As shown, the solar power supply mechanism 8 includes a second servo motor 801. The output end of the second servo motor 801 is movably connected through the frame mechanism 7 and connected to a turntable 802. A solar photovoltaic panel 803 is installed on the top of the turntable 802. Two photosensitive elements 804 are installed at both ends of the top of the turntable 802. Both photosensitive elements 804 are connected to the second servo motor 801 through internal wires. Through the solar power supply mechanism 8, a sufficient and stable energy supply can be continuously provided to the entire device, ensuring the normal operation of various functional modules and system stability. This green and environmentally friendly power supply method not only significantly reduces the long-term operating cost of the device and avoids the high electricity costs of traditional grid power supply, but also has excellent environmental adaptability, maintaining reliable operation under various harsh conditions such as high temperature, low temperature, humidity, and dust. At the same time, the intelligent energy management system further optimizes the actual user experience, significantly improving the working efficiency and user satisfaction of the entire device through functions such as automatic adjustment of charging and discharging strategies and real-time monitoring of energy status.
[0051] according to Figure 1, Figure 2 , Figure 3 and Figure 8 As shown, the energy storage mechanism 6 includes a battery compartment 601, which is fixedly installed on top of the protective compartment 2. Four anti-slip brackets 602 are installed inside the battery compartment 601, and a battery 603 is installed between the four anti-slip brackets 602. Through the arrangement of the energy storage mechanism 6, safe and stable storage of electrical energy can be achieved, ensuring a high storage capacity. This design not only provides a continuous and stable power supply to the entire system, ensuring stable operation of the device during long-term operation, but also significantly improves the system's operational reliability. Simultaneously, this optimized energy storage scheme can effectively reduce energy loss during equipment operation, significantly reduce equipment maintenance frequency and subsequent operation and maintenance costs, thereby improving the overall economy and efficiency of the device.
[0052] according to Figure 1 , Figure 2 , Figure 3 and Figure 8 As shown, the support frame 7 includes four mounting bases 701, which are fixedly installed at both ends of the battery compartment 601. Each mounting base 701 has an L-shaped frame 702 on its top, and each L-shaped frame 702 and mounting base 701 are fixedly installed by fastening bolts 703. A mounting platform 704 is installed on the top of the four L-shaped frames 702. The support frame 7 provides a solid and reliable foundation for the solar power supply mechanism 8. This support structure not only ensures the structural stability of the entire device during operation but also effectively resists various adverse effects from the external environment. Especially under severe weather conditions such as strong winds, rain, and snow, the stable support of the support frame 7 is particularly important, significantly reducing the risk of tilting or damage to the device, thereby greatly improving the safety of the device under various complex environmental conditions. Furthermore, this support design ensures that the solar power supply mechanism 8 is always at the optimal operating angle, further improving the energy conversion efficiency and service life of the entire system.
[0053] according to Figure 1 , Figure 2 and Figure 3As shown, the base mechanism 1 includes a metal ring 101, with multiple supports 102 fixedly mounted on the top of the metal ring 101. A fixed platform 103 is fixedly mounted on the top of each support 102. The base mechanism 1 provides a solid and reliable support platform for the entire device system. Made of high-strength, corrosion-resistant materials, its structural design fully considers load-bearing stability and environmental adaptability. It not only evenly distributes the overall load of the device but also effectively resists interference from external environmental factors. Furthermore, the performance of the base mechanism 1 has undergone rigorous testing. Its unique waterproof design completely blocks the penetration of ground moisture, preventing corrosion or short circuits in the internal precision components of the device due to a humid environment. This dual protection mechanism significantly improves the safety factor of the device operation. Simultaneously, by reducing the erosion of the equipment by environmental factors, it greatly extends the service life and maintenance intervals of the device, thereby reducing overall maintenance costs and bringing higher economic benefits and usage value to users.
[0054] according to Figure 2 As shown, two cooling fans 9 are installed on one side of the protective chamber 2. Each cooling fan 9 has a dust cover 10 installed at one end. By setting up the cooling fans 9 and the dust cover 10, the heat dissipation performance of the device can be improved, while preventing external dust from entering the device and causing damage to the equipment, thus further extending the service life of the device.
[0055] according to Figure 1 As shown, two hinges 11 are installed on one side of the protective chamber 2. One end of the two hinges 11 is connected to the chamber door 12. A handle 13 is installed on the surface of the chamber door 12. Through the setting of hinges 11, chamber door 12 and handle 13, the equipment inside the device can be well protected. At the same time, it is easier for manual maintenance of the equipment inside the device, effectively reducing maintenance difficulty and saving labor and time costs.
[0056] according to Figure 1 , Figure 2 , Figure 3 As shown, the top of the metal ring 101 is equipped with multiple anti-slip pads 14. Each anti-slip pad 14 has a mounting bolt 15 installed at one end, and a pre-drilled screw hole 16 is provided at the other end. The anti-slip pads 14, mounting bolts 15, and pre-drilled screw holes 16 effectively increase friction and prevent the device from shaking after installation. At the same time, the pre-drilled screw holes 16, in conjunction with bolts or rivets, can fix the device in harsh operating environments, further improving the safety and stability of the device.
[0057] according to Figure 1 , Figure 2 , Figure 3 and Figure 8As shown, a protective door is provided at one end of the battery compartment 601. The solar photovoltaic panel 803 is connected to the battery 603 through internal wires. The protective door and the connection of the wires can provide good protection for the energy storage equipment inside the device. At the same time, it can store the electrical energy absorbed and converted by the solar power supply mechanism 8, ensuring that the device can operate stably for a long time.
[0058] Working principle: First, the entire device is moved and transported to the designated installation location. Different installation strategies are adopted according to the surrounding environment. When the surrounding environment is relatively normal, the installation bolts 15 are tightened and the bolts are inserted into the reserved screw holes 16 to install and fix the device. The metal ring 101, together with the bracket 102 and the fixed platform 103, provides stable support for the device. When the surrounding environment is relatively harsh, the installation bolts 15 are tightened and the rivets are inserted into the reserved screw holes 16 to anchor the device in the current position for fixed installation. Next, the external power supply equipment is connected to the internal electrical equipment of the device to test whether the device can operate stably. After the test is completed, the battery 603 is placed in the battery compartment 601 to provide power to the device.
[0059] During the equipment installation phase, firstly, the data encryption transmission device 5 is placed in the protective compartment 2, and the external lines to be connected are sequentially inserted into the sockets on both sides of the data encryption transmission device 5. Next, the first servo motor 301 is started, which drives the first bevel gear 302 to rotate the second bevel gear 303. At the same time, the first bidirectional lead screw 304 rotates synchronously with the second bevel gear 303. At this time, the two sliding seats 401 slide on the first bidirectional lead screw 304, driving the corresponding fixing frame 403 to slide synchronously. When the end of the clamping frame 407 contacts the data encryption transmission device 5, its end corner is subjected to squeezing force, causing the clamping frame 407 to slide on the fixing rod 405 and compress the spring 408 to retract. When the clamping frame 407 is completely attached to both sides of the data encryption transmission device 5, the data encryption transmission device 5 can be clamped and fixed.
[0060] During the line sorting stage, firstly, while the elastic clamping mechanism 4 clamps and fixes the data encryption transmission device 5, the lines connected to the data encryption transmission device 5 are sorted, and lines in the same column are sorted into a group. At this time, the third bevel gear 305 drives the fourth bevel gear 306 and the second bidirectional lead screw 307 to rotate, so that the two protective frames 308 on the same side slide close together. Then, each group of sorted lines is placed in the corresponding protective cavity, which can effectively prevent the lines from falling off, bending or breaking.
[0061] In the solar power supply stage, firstly, the solar photovoltaic panel 803 is installed and fixed on the turntable 802, and the solar photovoltaic panel 803 is connected to the storage battery 603 using wires. Then, on a normal sunny day, the solar photovoltaic panel 803 absorbs solar energy and converts it into electrical energy to power the electrical equipment in the device, ensuring the normal operation of the device. At the same time, a portion of the electrical energy is transmitted to the storage battery 603 through the wires for storage, ensuring the normal operation of the device under inclement weather. Meanwhile, during the operation of the solar photovoltaic panel 803, the photosensitive element 804 detects and analyzes the direct direction of sunlight, and controls the second servo motor 801 to start based on the analysis results. The second servo motor 801 drives the turntable 802 to rotate, so that the solar photovoltaic panel 803 adjusts according to the direct angle of sunlight, thereby improving the efficiency and stability of solar power generation.
[0062] During the operation and maintenance phase of the device, firstly, pull the handle 13 to cause the hinge 11 to rotate and open the compartment door 12, so that the operation status of the data encryption transmission device 5 can be inspected. Secondly, by pulling the easy-pull groove on the protective door, the battery compartment 601 can be opened to check the working status of the battery 603. Finally, by using external equipment to test and clean the solar photovoltaic panel 803 to confirm its normal operation, the operation and maintenance work of the device can be completed.
[0063] By following the steps outlined above, you can complete the use of the environmental monitoring data encryption transmission device.
[0064] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An environmental monitoring data encryption transmission device, characterized in that: Including the base mechanism (1), The protective compartment (2) is located on top of the base mechanism (1); A clamping and protective mechanism (3) is installed inside the protective compartment (2); An elastic clamping mechanism (4) is disposed on the outside of the clamping and protective mechanism (3); A data encryption transmission device (5) is installed inside the protective compartment (2); An energy storage mechanism (6) is installed on top of the protective chamber (2); A platform mechanism (7) is disposed on top of the energy storage mechanism (6); A solar power supply mechanism (8) is installed on top of the platform mechanism (7); The clamping and protective mechanism (3) includes a first servo motor (301), which is installed on one side of the protective chamber (2). The output end of the first servo motor (301) extends through the protective chamber (2) and is connected to a first bevel gear (302). A second bevel gear (303) is meshed with the outer side of the first bevel gear (302). A first bidirectional lead screw (304) is fixedly installed on the inner side of the second bevel gear (303). Both ends of the first bidirectional lead screw (304) extend through the protective chamber (2). It is connected to a third bevel gear (305), and a fourth bevel gear (306) is meshed with the outer side of each third bevel gear (305). A second double-acting screw (307) is fixedly installed on the inner side of each fourth bevel gear (306). Two protective frames (308) are installed on the outer side of each second double-acting screw (307). A first guide rod (309) is installed at both ends of the protective chamber (2). One end of each pair of protective frames (308) is slidably installed on the outer side of a corresponding first guide rod (309). The elastic clamping mechanism (4) includes two sliding seats (401), both of which are installed on the outside of the first bidirectional lead screw (304). Each sliding seat (401) has a connecting frame (402) connected to its top and bottom. Each connecting frame (402) has a fixed frame (403) connected to one end. The protective chamber (2) has two second guide rods (404) installed inside. One end of each pair of fixed frames (403) is slidably installed on the outside of a corresponding second guide rod (404). Two fixed rods (405) are fixedly installed between each pair of fixed frames (403). Two limiting frames (406) are fixedly installed on the outside of each pair of fixed rods (405). Two clamping frames (407) are slidably installed on the outside of each pair of fixed rods (405). Two springs (408) are sleeved on the outside of each fixed rod (405).
2. The environmental monitoring data encryption transmission device according to claim 1, characterized in that: The solar power supply mechanism (8) includes a second servo motor (801), the output end of which is movably inserted through the frame mechanism (7) and connected to a turntable (802). A solar photovoltaic panel (803) is installed on the top of the turntable (802), and photosensitive elements (804) are installed at both ends of the top of the turntable (802). Both photosensitive elements (804) are connected to the second servo motor (801) through internal wires.
3. The environmental monitoring data encryption transmission device according to claim 2, characterized in that: The energy storage mechanism (6) includes a battery compartment (601), which is fixedly installed on the top of the protective compartment (2). Four anti-slip frames (602) are installed inside the battery compartment (601), and a battery (603) is installed between the four anti-slip frames (602).
4. The environmental monitoring data encryption transmission device according to claim 3, characterized in that: The platform mechanism (7) includes four mounting seats (701), which are fixedly installed at both ends of the battery compartment (601). Each mounting seat (701) has an L-shaped frame (702) on its top. Each L-shaped frame (702) and the mounting seat (701) are fixedly installed by fastening bolts (703). The top of the four L-shaped frames (702) is equipped with a mounting plate (704).
5. The environmental monitoring data encryption transmission device according to claim 4, characterized in that: The base mechanism (1) includes a metal ring (101), and a plurality of brackets (102) are fixedly installed on the top of the metal ring (101), and a fixed platform (103) is fixedly installed on the top of the plurality of brackets (102).
6. The environmental monitoring data encryption transmission device according to claim 5, characterized in that: Two cooling fans (9) are installed on one side of the protective chamber (2), and a dust cover (10) is installed at one end of each cooling fan (9).
7. The environmental monitoring data encryption transmission device according to claim 6, characterized in that: Two hinges (11) are installed on one side of the protective compartment (2), and one end of the two hinges (11) is connected to a compartment door (12). A handle (13) is installed on the surface of the compartment door (12).
8. The environmental monitoring data encryption transmission device according to claim 7, characterized in that: The top of the metal ring (101) is equipped with a plurality of anti-slip pads (14), and each anti-slip pad (14) has an installation bolt (15) installed at one end of its top, and a reserved screw hole (16) is provided through the other end of each anti-slip pad (14).
9. The environmental monitoring data encryption transmission device according to claim 8, characterized in that: A protective door is provided at one end of the battery compartment (601), and the solar photovoltaic panel (803) is connected to the storage battery (603) through internal wires.
Citation Information
Patent Citations
Electric power monitoring device for energy storage power station
CN119627709A
Intelligent monitoring device for gardens
CN221196653U