Auxiliary equipment for dam safety monitoring and its usage method

By designing auxiliary equipment for dam safety monitoring, the problems of fixed equipment structure and poor heat dissipation in server installation were solved, achieving convenient installation and efficient heat dissipation, and improving the efficiency and stability of the equipment.

CN116406122BActive Publication Date: 2025-11-14DATANG SHAANXI POWER GENERATION CO LTD +1
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Patent Information

Application Number
CN202310194676.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-03
Publication Date
2025-11-14
Estimated Expiration
2043-03-03

AI Technical Summary

Technical Problem

The existing server installation equipment structure is fixed, which means that only servers of specific specifications can be installed, resulting in serious waste of resources, cumbersome upgrades, and the equipment being susceptible to external environmental factors and having poor heat dissipation.

Method used

An auxiliary device for dam safety monitoring was designed, including a protective mechanism, a moving mechanism, and a placement mechanism. The height of the placement mechanism can be adjusted by rotating the positioning bolt to facilitate the installation of servers of different specifications. Combined with heat dissipation components and a power fan system, heat is efficiently dissipated to prevent the influence of the external environment.

Benefits of technology

It enables convenient installation and replacement of servers of different specifications, improves the versatility of equipment use and installation efficiency, ensures a clean internal environment, efficiently dissipates heat, prevents external influences, and ensures normal operation of equipment functions.

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Abstract

This invention discloses an auxiliary device for dam safety monitoring and its usage method, comprising: a protective mechanism, which includes a base frame, a heat dissipation component, and a cable winding component. An installation opening is provided on the inner surface of one side of the base frame. The heat dissipation component and the cable winding component are both mounted on the base frame. A moving mechanism includes a vehicle body that is slidably inserted into the base frame. Mounting blocks are fixedly connected to the top of the vehicle body near the four corners. Each mounting block has a mounting strip fixedly connected to its top by bolts. In use, the base frame is placed in the designated position. The number of mounting mechanisms can be increased or decreased according to the actual number of servers. The height of the mounting mechanism between the four mounting strips is effectively adjusted by rotating the positioning bolts according to the actual server specifications. The height of the mounting mechanism is then fixed by tightening the positioning bolts, and the position of the slider is adjusted by sliding.
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Description

Technical Field

[0001] This invention belongs to the field of monitoring auxiliary technology, specifically an auxiliary device for dam safety monitoring and its usage method. Background Technology

[0002] The hydropower station dam safety monitoring system project mainly includes deformation monitoring, stress-strain and temperature monitoring, seepage monitoring, slope deformation monitoring, and an automated monitoring system. The reliability and stability of the dam safety monitoring system directly affect the authenticity and accuracy of the dam's safe operation monitoring, and also impact the reporting of dam safety information. To ensure the stable and reliable implementation of the hydropower station dam safety monitoring system, the functions of the automated dam safety monitoring system need to be upgraded.

[0003] However, in existing technologies, a crucial aspect of system upgrades is server replacement. Existing server installations often have fixed structures, limiting their installation to specific server specifications. This can lead to resource constraints and waste. Furthermore, to ensure server security, existing server installations are typically placed in fixed locations, making the replacement process cumbersome. Additionally, the heat dissipation of existing server equipment makes it susceptible to external environmental influences, leading to the accumulation of foreign objects and ultimately resulting in suboptimal performance. Summary of the Invention

[0004] The purpose of this invention is to provide an auxiliary device for dam safety monitoring and its usage method that can be easily adjusted according to actual usage conditions, thereby enabling the device to meet the use of servers of different specifications, improving the device's practical applicability, facilitating server installation and replacement, improving actual replacement efficiency, and efficiently dissipating internal heat while ensuring a clean internal environment, so as to enable the device to efficiently perform its intended functions.

[0005] The technical solution adopted in this invention is as follows: An auxiliary device for dam safety monitoring includes a protective mechanism, which includes a base frame, a heat dissipation component, and a cable winding component. An installation opening is provided on the inner surface wall of one side of the base frame. The heat dissipation component is disposed on the base frame, and the cable winding component is also disposed on the base frame.

[0006] The moving mechanism includes a vehicle body slidably inserted into the bottom frame. Mounting blocks are fixedly connected to the top of the vehicle body near each of its four corners, and a mounting strip is bolted to the top of each mounting block.

[0007] The placement mechanism comprises multiple sets, each set including a first substrate, a second substrate, and a loading component. There are two first substrates, each mounted on a corresponding mounting strip. There are also two second substrates, each mounted on a corresponding mounting strip. The loading component is mounted on the two first substrates and the two second substrates.

[0008] The heat dissipation component includes a heat-conducting plate, which is fixedly connected to the inside of the mounting port. Multiple heat-conducting strips are fixedly connected at equal intervals on one outer surface of the heat-conducting plate. An air guide frame is fixedly connected to one outer surface of the bottom frame. Two placement openings are opened on the bottom inside the air guide frame. A power fan is fixedly connected inside each placement opening. An air injection pipe runs through the top of the air guide frame near the two side edges. The inside of each air injection pipe is connected to the inside of the air guide frame.

[0009] The winding component is provided in two sets. Each set of winding components includes a placement frame. The placement frame is fixedly connected to the bottom surface inside the base frame. Multiple winding rods are fixedly connected at equal intervals on the inner surface wall of one side of the placement frame. Multiple limiting grooves are opened at equal intervals on the outer surface of each winding rod.

[0010] A top cover is inserted between the tops of the four mounting strips, and two flow guides are opened on one side edge of the top of the vehicle body. Multiple guide plates are fixedly connected at equal intervals on the inner surface of one side of each flow guide.

[0011] Each of the first substrates has a positioning bolt threaded to one side of its outer surface, a stop rod fixedly connected to one end of each first substrate, a first sliding groove opened at one end of each first substrate, a stop block fixedly connected to the bottom of each first substrate, and an adjustment port opened at the top of each first substrate.

[0012] Each of the second substrates has a positioning bolt threadedly connected to one side of its outer surface, a positioning piece rotatably connected to the outer surface of each positioning bolt, a stop rod fixedly connected to one end of each second substrate, a second sliding groove opened at one end of each second substrate, a stop block fixedly connected to the bottom of each second substrate, a limit block slidably inserted into one side of the outer surface of each stop block, a reset frame connected to one side of the outer surface of each stop block, and an adjustment port opened at the bottom of each second substrate.

[0013] Each of the reset frames is slidably embedded with a reset spring and a stop piece, and the outer surface of one side of each stop piece and the outer surface of the corresponding limiting block are fixedly connected.

[0014] Each set of the load-bearing components includes two sets of sliders, with two sliders in each set. Each slider is slidably inserted into a corresponding adjustment port. Each slider has a limit bolt threaded to its bottom. A load-bearing strip is fixedly connected between the outer surfaces of the two sliders in each set by bolts. Each load-bearing strip has a limit opening on its inner bottom surface. Multiple pulleys are equidistantly rotatably connected between the inner walls on both sides of each limit opening. A limit strip is fixedly connected to one outer surface of each load-bearing strip. Multiple mounting brackets slide through one inner wall of each limit strip at equal intervals. There are two mounting brackets in each set. An air guide frame is rotatably connected between the outer surfaces of the two mounting brackets in each set. A limit spring is slidably fitted onto the outer surface of each mounting bracket.

[0015] Each of the load-bearing strips has a heat dissipation frame fixedly connected to its inner bottom surface, a heat dissipation fan connected to one outer surface of each heat dissipation frame, an air guide hose connected to the other outer surface of each heat dissipation frame, and a pressure plate rotatably connected to one inner wall of each load-bearing strip.

[0016] A method for using auxiliary equipment for dam safety monitoring includes the following steps:

[0017] S1. Installation and Placement: Place the base frame in the designated position, then add or remove placement mechanisms according to the actual number of servers. According to the actual server specifications, adjust the height of the placement mechanism between the four mounting strips by rotating the positioning bolts, then tighten the positioning bolts to fix the height of the placement mechanism. Then adjust the placement position of the slider by sliding to ensure that the server can be stably placed between the corresponding two load strips. Then rotate the limit bolts to fix the placement position of the slider. At this time, insert the server between the corresponding two load strips through the side with the pressure plate. During the insertion of the server into the load strip, the pressure plate can squeeze the nearest air guide frame, thus ensuring that the server can easily enter between the two load strips. When the server is completely inserted between the two load strips, under the support and restriction of the position of the limit spring, the mounting frame can support the corresponding air guide frame to fit against both sides of the server, thus allowing the internal of the multiple air guide frames on the corresponding side to be connected and forming an effective closed space with the outer surface of the server.

[0018] S2. Heat Dissipation: By controlling the start of the cooling fan, the cooling fan can effectively draw and transport the excess heat generated by the server operation to one side of the heat conduction plate through the heat sink frame and air duct. The excess heat can then be transferred to the inside of the air guide frame through the heat conduction strip and heat conduction plate. By controlling the start of the power fan, the power fan can continuously inject low-temperature airflow into the inside of the air guide frame through the air injection pipe. The airflow can then dissipate the excess heat, ensuring heat dissipation while preventing the external environment from affecting the internal functional components of the equipment.

[0019] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0020] In this invention, during use, the base frame is placed in the designated position. The number of placement mechanisms is adjusted according to the actual number of servers. Based on the actual server specifications, the height of the placement mechanism between the four mounting strips is effectively adjusted by rotating the positioning bolts. The height is then fixed by tightening the positioning bolts. The sliding adjustment slider position ensures the server can be stably placed between the corresponding two load strips. The limiting bolt is then rotated to fix the slider position. At this point, the server is inserted between the corresponding two load strips through the side with the pressure plate. During insertion, the pressure plate effectively compresses the nearest air guide frame, ensuring easy entry of the server between the two load strips. When the server is fully inserted between the two load strips, the limiting springs support and restrict the mounting frame, allowing the mounting bracket to... The system supports the corresponding air guide frames to fit against both sides of the server, allowing multiple air guide frames on one side to connect internally and form an effective enclosed space with the server's outer surface. This facilitates easy server installation. Controlling the activation of the cooling fan allows it to effectively draw excess heat generated by the server's operation through the heatsink frame and air guide hoses, transferring it to the heatsink plate. The excess heat is then effectively transferred to the air guide frame via the heatsink strips and heatsink plate. Controlling the activation of the power fan allows it to continuously inject low-temperature airflow into the air guide frame through the air duct. This airflow effectively dissipates excess heat, ensuring heat removal while preventing external environmental influences on the internal components, enabling the equipment to efficiently perform its intended functions. Attached Figure Description

[0021] Figure 1 This is a frontal perspective view of the present invention;

[0022] Figure 2 This is a rear perspective view of the present invention;

[0023] Figure 3 This is a frontal sectional perspective view of the present invention;

[0024] Figure 4 This is a side sectional view of the protective mechanism of the present invention, unfolded perspective view;

[0025] Figure 5 This is a front view of the unfolded perspective of the moving mechanism of the present invention;

[0026] Figure 6 For the present invention Figure 5 Enlarged view of point A in the middle;

[0027] Figure 7This is a frontal sectional view of the placement mechanism of the present invention, unfolded perspective view;

[0028] Figure 8 For the present invention Figure 7 Enlarged view at point B in the middle;

[0029] Figure 9 For the present invention Figure 7 Enlarged view at point C;

[0030] Figure 10 For the present invention Figure 7 Enlarged view of point D in the middle.

[0031] The diagram shows the following markings: 1. Protective mechanism; 101. Base frame; 102. Placement frame; 103. Winding rod; 104. Heat-conducting plate; 105. Heat-conducting strip; 106. Air guide frame; 107. Power fan; 2. Moving mechanism; 201. Vehicle body; 202. Guide plate; 203. Mounting strip; 204. Top cover; 3. Placement mechanism; 301. First base plate; 302. Stop block; 303. Support rod; 304. Positioning bolt; 305. Positioning plate; 306. Second base plate; 307. Air guide hose; 308. Limiting block; 309. Reset frame; 310. Slider; 311. Loading strip; 312. Limiting strip; 313. Mounting bracket; 314. Limiting spring; 315. Air guide support frame; 316. Limiting bolt; 317. Pulley; 318. Heat dissipation frame; 319. Cooling fan. Detailed Implementation

[0032] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.

[0033] Example 1

[0034] Reference Figures 1-10A type of auxiliary equipment for dam safety monitoring includes: a protective mechanism 1, a moving mechanism 2, and a placement mechanism 3. The protective mechanism 1 includes a base frame 101, a heat dissipation component, and a cable winding component. The base frame 101 provides a mounting foundation for other functional components of the equipment and allows the equipment to be stably placed in the designated location. An installation opening is provided on the inner wall of one side of the base frame 101 to facilitate the installation of a heat-conducting plate 104. The heat dissipation component and the cable winding component are also located on the base frame 101. The moving mechanism 2 includes a vehicle body 201, which facilitates the movement and relocation of the server placement location. The vehicle body 201 is slidably inserted into the base frame 101. Mounting blocks are fixedly connected to the top of the vehicle body 201 near the four corners. The installation of the mounting strips 203 facilitates the installation of the mounting blocks. Each mounting block is fixed to the top of the mounting strip 203 by bolts. The mounting strips 203 facilitate the movement and adjustment of the placement mechanism 3. There are multiple sets of placement mechanisms 3. Each set of placement mechanisms 3 includes a first base plate 301, a second base plate 306, and a load-bearing component. The first base plate 301, together with the second base plate 306, facilitates the installation of other functional components of the equipment. There are two first base plates 301, and both first base plates 301 are set on the corresponding mounting strips 203. There are also two second base plates 306, and both second base plates 306 are set on the corresponding mounting blocks 203. The load-bearing component is set on the two first base plates 301 and the two second base plates 306.

[0035] Reference Figures 3-10The heat dissipation components include a heat-conducting plate 104. The heat-conducting plate 104, in conjunction with heat-conducting strips 105, effectively transfers heat to the interior of the air guide frame 106. The heat-conducting plate 104 is fixedly connected to the interior of the mounting port. Multiple heat-conducting strips 105 are equidistantly fixedly connected to one outer surface of the heat-conducting plate 104. The air guide frame 106 is fixedly connected to one outer surface of the bottom frame 101. The air guide frame 106 forms an effective enclosed space, facilitating airflow and the installation of other functional components. Two placement openings are provided on the bottom surface of the air guide frame 106, facilitating the installation of a power fan 107. A power fan 107 is fixedly connected to each placement opening, providing the necessary power for equipment operation. The airflow is controlled by air injection pipes that penetrate the top of the air guide frame 106 near the two side edges. These pipes allow low-temperature outside air to effectively enter the air guide frame 106. Each air injection pipe is connected to the interior of the air guide frame 106. Two sets of winding components are provided, each including a placement frame 102. The placement frame 102 facilitates the installation of the winding rods 103. The placement frame 102 is fixedly connected to the bottom surface inside the base frame 101. Multiple winding rods 103 are equidistantly fixed to the inner wall of one side of the placement frame 102. The winding rods 103 facilitate the arrangement and planning of the wiring. Multiple limiting grooves are equidistantly provided on the outer surface of each winding rod 103, effectively limiting the position of the wiring. Four mounting strips 2... A top cover 204 is inserted between the top and bottom of the 03. The top cover 204 effectively prevents external objects from affecting the internal server of the equipment. Two air guides are opened near one edge of the top of the vehicle body 201. The air guides can effectively discharge the airflow generated by the cooling fan 319. Multiple guide plates 202 are fixedly connected at equal intervals on the inner surface of one side of each air guide. The guide plates 202 can effectively prevent foreign objects from entering the equipment. A positioning bolt 304 is threaded to one side of the outer surface of each first bottom plate 301. A stop rod 303 is fixedly connected to one end of each first bottom plate 301. The stop rod 303 cooperates with the first slide groove and the second slide groove to make the first bottom plate 301 and the second bottom plate 306 stably achieve their intended functions. Each first base plate 301 has a first sliding groove at one end. A stop block 302 is fixedly connected to the bottom of each first base plate 301. The stop block 302 facilitates the installation of other functional components of the equipment. Each first base plate 301 has an adjustment port at the top, facilitating the installation of the slider 310. Each second base plate 306 also has a positioning bolt 304 threadedly connected to one side of its outer surface. The positioning bolt 304 effectively fixes and restricts the position of the positioning piece 305. A positioning piece 305 is rotatably connected to the outer surface of each positioning bolt 304. The positioning piece 305 effectively and securely positions the placement mechanism 3 in the corresponding position on the mounting strip 203. Each second base plate 306 also has a stop rod 303 fixedly connected to one end.Each second substrate 306 has a second sliding groove at one end, and a stop block 302 is fixedly connected to the bottom of each second substrate 306. A limiting block 308 is slidably inserted into one side of the outer surface of each stop block 302. The limiting block 308, in conjunction with the stop block 302, effectively prevents the first substrate 301 and the second substrate 306 from accidentally separating. A reset frame 309 is connected to one side of the outer surface of each stop block 302. The reset frame 309 facilitates the installation of other functional components of the equipment. Each second substrate 306 also has an adjustment port at its bottom. A reset spring and a stop piece are slidably embedded inside each reset frame 309. The reset spring effectively supports and limits the position of the stop piece, and the stop piece effectively limits its position. The position of the positioning block 308 is supported and limited. The outer surface of one side of each abutment piece and the outer surface of the corresponding positioning block 308 are fixedly connected. Each set of loading components includes two sets of sliders 310. The sliders 310 facilitate the installation of the loading strip 311. Each set of sliders 310 has two sliders. Each slider 310 is slidably inserted into the corresponding adjustment port. The bottom of each slider 310 is threaded with a limit bolt 316. The limit bolt 316 can effectively fix and limit the position of the slider 310. The outer surfaces of the two sliders 310 in each set are fixedly connected to the loading strip 311 by bolts. The loading strip 311 facilitates the installation of other functional components of the equipment. The bottom surface of each loading strip 311 has an opening. The limiting ports facilitate the installation of pulleys 317. Multiple pulleys 317 are equidistantly rotatably connected between the inner surfaces of each limiting port and its two sides. The pulleys 317 facilitate the installation and movement of the server. A limiting strip 312 is fixedly connected to one outer surface of each load bar 311. The limiting strip 312 facilitates the installation of other functional components of the equipment. Multiple sets of mounting brackets 313 slide equidistantly through one inner surface of each limiting strip 312. The mounting brackets 313 facilitate the installation of air guide frames 315. Each set of mounting brackets 313 has two brackets, and an air guide frame 315 is rotatably connected between the outer surfaces of each pair of mounting brackets 313. The air guide frame 315 allows for the placement of the server. The mounting brackets 313 are clamped and fixed in position, while also effectively transferring heat. Each mounting bracket 313 has a slidably fitted limit spring 314 on its outer surface, which effectively supports and restricts the position of the mounting bracket 313. Each load bar 311 has a heat dissipation frame 318 fixedly connected to its inner bottom surface. The heat dissipation frame 318 facilitates the installation of other functional components of the equipment. A cooling fan 319 is connected to one outer surface of each heat dissipation frame 318, effectively transferring heat. A flexible air duct 307 is connected to the other outer surface of each heat dissipation frame 318, effectively transferring heat from inside the air-conducting frame 315 to inside the heat dissipation frame 318.Each load strip 311 has a pressure plate rotatably connected to the inner wall on one side.

[0036] The following provides a detailed description of the method of using an auxiliary device for dam safety monitoring provided in an embodiment of the present invention. The method of use includes the following steps:

[0037] Step 1: Installation and Placement: Place the base frame 101 in the designated location. Adjust the placement mechanism 3 according to the number of servers. Adjust the height of the placement mechanism 3 between the four mounting strips 203 by rotating the positioning bolt 304 according to the server specifications. Tighten the positioning bolt 304 to fix the height of the placement mechanism 3. Adjust the position of the slider 310 by sliding it to ensure the server is stably placed between the corresponding two load strips 311. Rotate the limiting bolt 316 to fix the position of the slider 310. Then, place the server through the side with the pressure plate. When the server is inserted between the two corresponding load bars 311, the pressure plate can effectively squeeze the nearest air guide frame 315 during the process of inserting the server into the load bar 311, thereby ensuring that the server can easily enter between the two load bars 311. When the server is fully inserted between the two load bars 311, under the position support and restriction of the limit spring 314, the mounting bracket 313 can support the corresponding air guide frame 315 to fit against both sides of the server, thereby allowing the interior of multiple air guide frames 315 on the corresponding side to be connected and forming an effective closed space with the outer surface of the server, so that the device can be conveniently installed and placed on the server.

[0038] Step 2, Heat Dissipation: By controlling the start of the cooling fan 319, the cooling fan 319 can effectively draw and transport the excess heat generated by the server operation to one side of the heat conduction plate 104 through the heat dissipation frame 318 and the air guide hose 307. Then, the excess heat can be effectively transferred to the inside of the air guide frame 106 through the heat conduction strip 105 and the heat conduction plate 104. Then, by controlling the start of the power fan 107, the power fan 107 can effectively inject low-temperature airflow into the inside of the air guide frame 106 through the air injection pipe. Then, the airflow can effectively dissipate the excess heat, ensuring that the heat is dissipated while effectively preventing the influence of the external environment on the internal functional components of the equipment, so that the equipment can efficiently perform its intended functions.

[0039] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An auxiliary device for dam safety monitoring, characterized in that, include: The protective mechanism (1) includes a base frame (101), a heat dissipation component and a wire take-up component. An installation opening is provided on the inner surface wall of one side of the base frame (101). The heat dissipation component is disposed on the base frame (101), and the wire take-up component is also disposed on the base frame (101). A moving mechanism (2), comprising a vehicle body (201) slidably inserted into a base frame (101), wherein mounting blocks are fixedly connected to the top of the vehicle body (201) near the four corners, and mounting strips (203) are fixedly connected to the top of each mounting block by bolts; and The placement mechanism (3) is provided in multiple sets. Each set of the placement mechanism (3) includes a first base plate (301), a second base plate (306), and a loading component. There are two first base plates (301), each set on a corresponding mounting strip (203). There are two second base plates (306), each set on a corresponding mounting strip (203). Each second base plate (306) is slidably connected to a corresponding first base plate (301). Each first base plate (301) has an adjustment port at its top, and each second base plate (306) has an adjustment port at its bottom. The loading component is provided with... The heat dissipation component, placed on two first base plates (301) and two second base plates (306), includes a heat-conducting plate (104) fixedly connected to the inside of the mounting port. Multiple heat-conducting strips (105) are fixedly connected at equal intervals on one side of the outer surface of the heat-conducting plate (104). A guide frame (106) is fixedly connected to one side of the outer surface of the base frame (101). Two placement openings are provided on the bottom surface inside the guide frame (106), and a power fan (107) is fixedly connected inside each placement opening. An air injection pipe passes through the top of the guide frame (106) near both sides, and the interior of each air injection pipe is connected to the interior of the guide frame (106). Each set of the load-bearing components includes two sets of sliders (3...). 10) Each group of sliders (310) has two sliders (310). Each slider (310) is slidably inserted into the corresponding adjustment port. Each slider (310) has a limit bolt (316) threaded to its bottom. Each group of two sliders (310) has a load strip (311) fixedly connected to its outer surface by bolts. Each load strip (311) has a limit opening on its inner bottom surface. Multiple pulleys (317) are equidistantly rotatably connected to the inner surface walls on both sides of each limit opening. Each load strip (311) has a limit strip (312) fixedly connected to one side of its outer surface. Multiple sets of mounting brackets (313) slide through one side of the inner surface wall of each limit strip (312) at equal distances. Two mounting brackets (313) are provided. A guide frame (315) is rotatably connected between the outer surfaces of the two mounting brackets (313) in each group. A limiting spring (314) is slidably sleeved on the outer surface of each mounting bracket (313). A heat dissipation frame (318) is fixedly connected to the bottom surface inside each load bar (311). A cooling fan (319) is connected to one side of the outer surface of each heat dissipation frame (318). A guide hose (307) is connected to the other side of the outer surface of each heat dissipation frame (318). One end of each guide hose (307) extends into the corresponding guide frame (315). A pressure plate is rotatably connected to one side of the inner wall of each load bar (311).

2. The auxiliary equipment for dam safety monitoring as described in claim 1, characterized in that: The take-up components are provided in two sets. Each set of take-up components includes a placement frame (102). The placement frame (102) is fixedly connected to the bottom surface inside the bottom frame (101). Multiple winding rods (103) are fixedly connected at equal intervals on the inner surface wall of one side of the placement frame (102). Multiple limiting grooves are provided at equal intervals on the outer surface of each winding rod (103).

3. The auxiliary equipment for dam safety monitoring as described in claim 2, characterized in that: A top cover (204) is inserted between the tops of the four mounting strips (203). Two flow guides are opened on the top of the vehicle body (201) near one side edge. Multiple guide plates (202) are fixedly connected at equal intervals on the inner surface wall of one side of each flow guide.

4. The auxiliary equipment for dam safety monitoring as described in claim 3, characterized in that: Each of the first substrates (301) has a positioning bolt (304) threaded on one side of its outer surface, a stop rod (303) fixedly connected to one end of each of the first substrates (301), a first sliding groove opened at one end of each of the first substrates (301), and a stop block (302) fixedly connected to the bottom of each of the first substrates (301).

5. The auxiliary equipment for dam safety monitoring as described in claim 4, characterized in that: Each of the second base plates (306) is also threaded with a positioning bolt (304) on one side of its outer surface. Each positioning bolt (304) is rotatably connected with a positioning piece (305) on its outer surface. Each of the second base plates (306) is also fixedly connected with a stop rod (303) at one end. Each of the second base plates (306) is provided with a second sliding groove at one end. Each of the second base plates (306) is also fixedly connected with a stop block (302) at its bottom. Each stop block (302) is slidably inserted with a limiting block (308) on one side of its outer surface. Each stop block (302) is also connected with a reset frame (309) on one side of its outer surface.

6. The auxiliary equipment for dam safety monitoring as described in claim 5, characterized in that: Each of the reset frames (309) is slidably embedded with a reset spring and a stop piece, and the outer surface of one side of each stop piece and the outer surface of the corresponding limiting block (308) are fixedly connected.

7. A method for using auxiliary equipment for dam safety monitoring, characterized in that, The auxiliary equipment for dam safety monitoring described in claim 6 includes the following steps: S1. Installation and Placement: Place the base frame (101) in the designated location. Adjust the number of placement mechanisms (3) according to the actual number of servers. Adjust the height of the placement mechanism (3) between the four mounting strips (203) by rotating the positioning bolt (304) according to the actual server specifications. Fix the height of the placement mechanism (3) by tightening the positioning bolt (304). Adjust the placement position of the slider (310) by sliding to ensure that the server can be stably placed between the corresponding two load strips (311). Fix the placement position of the slider (310) by rotating the limit bolt (316). At this time, place the server... The device inserts the side with the pressure plate between the two corresponding load strips (311). During the process of inserting the server into the load strip (311), the pressure plate can squeeze the nearest air guide frame (315), thereby ensuring that the server can easily enter between the two load strips (311). When the server is fully inserted between the two load strips (311), under the position support and restriction of the limiting spring (314), the mounting bracket (313) can support the corresponding air guide frame (315) to fit against both sides of the server, thereby allowing the interior of the multiple air guide frames (315) on the corresponding side to communicate and form an effective closed space with the outer surface of the server. S2. Heat Dissipation: By controlling the start of the cooling fan (319), the cooling fan (319) can effectively draw and transport the excess heat generated by the server operation to the side of the heat conduction plate (104) through the heat dissipation frame (318) and the air guide hose (307). The excess heat can then be transferred to the inside of the air guide frame (106) through the heat conduction strip (105) and the heat conduction plate (104). By controlling the start of the power fan (107), the power fan (107) can continuously inject low-temperature airflow into the inside of the air guide frame (106) through the air injection pipe. The excess heat can then be dissipated through the airflow, ensuring that the heat is dissipated while preventing the external environment from affecting the internal functional components of the equipment.

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