Shipborne server based on 5g and edge computing
By introducing dehumidification and waterproof components into the shipboard server, the problem of erosion of equipment by humid air and seawater is solved, ensuring the normal operation and reliability of the server.
Patent Information
- Application Number
- PCT/CN2025/087653
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-08
- Filing Date
- 2025-04-08
- Publication Date
- 2025-10-16
AI Technical Summary
When existing 5G-based edge computing shipborne servers are operating at sea, humid air can cause circuit short circuits, affecting the normal operation of the equipment.
Dehumidification components and waterproof components are used, including semiconductor cooling sheets, suction fans, humidity sensors, multi-stage electric telescopic rods, forward and reverse motors, etc., to protect the server through dehumidification and waterproofing measures to prevent the intrusion of humid air and seawater.
It effectively prevents the erosion of humid air and seawater on the server, ensures the normal operation of the equipment, and improves the system reliability and protection capabilities.
Smart Images

Figure CN2025087653_16102025_PF_FP_ABST
Abstract
Description
A shipborne server based on 5G edge computing TECHNICAL FIELD
[0001] The application relates to the technical field of shipborne servers, in particular to a shipborne server based on 5G edge computing. BACKGROUND
[0002] The shipborne server based on 5G edge computing is a server system combining 5G network technology and edge computing, which is used for efficient data processing and storage on ships. It can provide low-latency and high-bandwidth network connection and place computing power at the edge close to the data source to reduce data transmission delay and network congestion. The shipborne server can be used for various ship-related applications such as marine navigation, ship monitoring and ship automation control. Through edge computing, the shipborne server can process sensor data, image recognition data and other real-time data of the ship, and provide real-time data analysis, decision support and control instructions.
[0003] The existing shipborne server based on 5G edge computing has been running at sea for a long time, and the climate at sea is changeable. Because the sea contains a large amount of water, it is easy to cause the humidity of the ship gas to be too large. When water enters the internal part of the electrical equipment, it will form a conductive path between the circuit board or the connector, causing the current to bypass the predetermined path and cause a short circuit fault, which in turn causes the internal parts of the shipborne server based on 5G edge computing to be damaged, so that the shipborne server cannot operate normally.
[0004] Therefore, we propose a shipborne server based on 5G edge computing to solve the problems raised in the above. SUMMARY
[0005] The purpose of the present application is to provide a shipborne server based on 5G edge computing to solve the problem of entering a large amount of humid air into the internal part of the shipborne server based on 5G edge computing.
[0006] In order to achieve the above object, the present application provides the following technical scheme: A shipborne server based on edge computing of 5G, comprising: a fixed plate and a shipborne server body, a mounting groove is formed in the top of the fixed plate, a dehumidification assembly, the dehumidification assembly comprises a cooling bin, a semiconductor refrigeration fin is arranged between the opposite inner walls of the cooling bin, a communication bin is fixedly communicated with the top of the cooling bin, a bearing rod is fixedly arranged in the inside of the communication bin, a plurality of mounting holes are formed in the outer surface of the bearing rod, a plurality of reinforcing rods are fixedly arranged in the inside of the mounting holes, air suction fans are arranged on the outer surfaces of the reinforcing rods, an air outlet pipe is fixedly communicated with the top of the communication bin near one side edge, a first electromagnetic valve is arranged on the outer surface of the air outlet pipe, a conveying pipe is fixedly communicated with the top of the communication bin near the other side edge, a second electromagnetic valve is arranged on the outer surface of the conveying pipe, a protection bin is fixedly arranged on the top of the communication bin through an auxiliary plate, a drainage pipe is fixedly arranged on the inner bottom surface of the protection bin, two branch pipes are fixedly and communicatively arranged on the outer surface of the drainage pipe, a third electromagnetic valve is arranged on the outer surface of each of the two branch pipes, two compression bins are fixedly and embeddedly arranged in the inside of the protection bin, and air supply pipes are fixedly and communicatively arranged on the top of each of the two compression bins.
[0007] Preferably, two limiting racks are fixedly arranged on the top of the shipborne server body, a fixing ring is fixedly and connectively arranged between the outer surfaces of the two limiting racks, a bearing rod is fixedly and mounted in the inside of the fixing ring, and an air supply fan is arranged on the bottom of the bearing rod.
[0008] Preferably, an exhaust pipe is fixedly and communicatively arranged on the top of the fixing ring, a retention bin is fixedly and communicatively arranged on the bottom end of the exhaust pipe, the top ends of the two air supply pipes are respectively fixedly and penetratively arranged in the inside of the retention bin, and a fourth electromagnetic valve is arranged on the outer surface of each of the two air supply pipes.
[0009] Preferably, the outer surface of the cooling bin is fixedly and connectively arranged with the outer surface of the shipborne server body near the bottom, the top end of the conveying pipe is fixedly and penetratively arranged in the inside of the protection bin, the bottom end of the drainage pipe is fixedly and penetratively arranged in the inside of the conveying pipe, the top ends of the two branch pipes are respectively fixedly and penetratively arranged in the insides of the two compression bins, and a barometer is arranged on the bottom of each of the two compression bins.
[0010] Preferably, a humidity sensor is arranged on the outer surface of the fixed plate, a waterproof assembly is arranged on the top of the fixed plate, the waterproof assembly comprises a lifting support plate, and the bottom of the lifting support plate is fixedly and connectively arranged with the top of the fixed plate.
[0011] Preferably, a multi-stage electric telescopic rod is arranged on the top of the fixed plate near the center, the top end of the multi-stage electric telescopic rod is fixedly and connectively arranged with the inner top surface of the lifting support plate, and the top end of the lifting support plate is fixedly and connectively arranged with the bottom of the shipborne server body.
[0012] Preferably, the inner bottom surface of the mounting groove is provided with a waterproof gasket, the top of the waterproof gasket is provided with a protective sleeve, the top of the protective sleeve is fixedly provided with two connecting frames, and the outer surfaces of the two connecting frames are fixedly provided with sliding blocks.
[0013] Preferably, the opposite outer surfaces of the shipborne server body are fixedly provided with mounting rods, the bottoms of the two mounting rods are fixedly provided with auxiliary frames, the inner bottom surfaces of the two auxiliary frames are provided with positive and negative motors, and the output shafts of the two positive and negative motors are fixedly connected with lead screws.
[0014] Preferably, the two ends of the two lead screws are movably penetrated into the opposite outer portions of the two mounting rods, the outer surfaces of the two lead screws are respectively screwed with the inner portions of the two sliding blocks, and the outer surfaces of the two sliding blocks are respectively slidably connected with the inner portions of the two mounting rods.
[0015] Preferably, the inner walls of the shipborne server body are provided with an air outlet plate near the bottom, the top of the shipborne server body is provided with an air inlet plate, the top of the shipborne server body is provided with a protection assembly, the protection assembly comprises a reinforcing frame, the bottom of the reinforcing frame is fixedly connected with the top of the shipborne server body, and the inner walls of the reinforcing frame are provided with a plurality of filter cloths.
[0016] Compared with the prior art, the application has the following beneficial effects:
[0017] 1. When the air inside the cabin is relatively humid, the semiconductor refrigerating sheet cools the inside of the cooling bin, the multiple air suction fans suck the gas into the inside of one of the compression bins, the air supply fan is opened, the gas is transported into the inside of the air inlet plate, the humidity of the air inside the shipborne server body is improved, and the problem that a large amount of humid air enters the inside of the shipborne server body in the prior art affects the normal operation of the equipment is solved.
[0018] 2. When a large amount of water flows into the ship due to extreme weather, when the humidity sensor detects that seawater appears around the fixed plate, the multiple-stage electric telescopic rods are started, the shipborne server body is driven to move upwards, and the seawater outside is effectively prevented from invading the inside of the shipborne server body and eroding the shipborne server body.
[0019] 3. When seawater enters the cabin, in order to prevent the waves from splashing on the surface of the shipborne server body and causing water to enter the inside of the shipborne server body, the two positive and negative motors are started first, the connecting frames are driven to move upwards, the protective sleeve is stretched to a height higher than the height of the seawater entering the cabin, and the cabin outside is effectively prevented from being affected by the splashing of the seawater and affecting the normal operation of the server. BRIEF DESCRIPTION OF DRAWINGS
[0020] Fig. 1 is a front perspective view of a shipborne server based on 5G edge computing according to the application;
[0021] Fig. 2 is a fixed plate part of a shipborne server based on 5G edge computing according to the present application;
[0022] Fig. 3 is a waterproof assembly part of a shipborne server based on 5G edge computing according to the present application;
[0023] Fig. 4 is a connecting frame part of a shipborne server based on 5G edge computing according to the present application;
[0024] Fig. 5 is a lifting support plate part of a shipborne server based on 5G edge computing according to the present application;
[0025] Fig. 6 is a mounting rod part of a shipborne server based on 5G edge computing according to the present application;
[0026] Fig. 7 is an enlarged view of A in Fig. 6 according to the present application;
[0027] Fig. 8 is a shipborne server body part of a shipborne server based on 5G edge computing according to the present application;
[0028] Fig. 9 is a dehumidification assembly part of a shipborne server based on 5G edge computing according to the present application;
[0029] Fig. 10 is a protection bin part of a shipborne server based on 5G edge computing according to the present application;
[0030] Fig. 11 is a communication bin part of a shipborne server based on 5G edge computing according to the present application;
[0031] Fig. 12 is another angle view of a communication bin part of a shipborne server based on 5G edge computing according to the present application;
[0032] Fig. 13 is a compression bin part of a shipborne server based on 5G edge computing according to the present application;
[0033] Fig. 14 is a reinforcing frame part of a shipborne server based on 5G edge computing according to the present application.
[0034] Fig.:
[0035] 1, fixed plate; 2, mounting groove; 3, shipborne server body; 4, humidity sensor; 5, waterproof assembly; 501, lifting support plate; 502, multi-stage electric telescopic rod; 503, waterproof gasket; 504, protective sleeve; 505, connecting frame; 506, sliding block; 507, mounting rod; 508, auxiliary frame; 509, forward and reverse motor; 510, screw; 6, air outlet plate; 7, air inlet plate; 8, dehumidification assembly; 801, cooling bin; 802, semiconductor refrigeration piece; 803, communication bin; 804, bearing rod; 805, mounting hole; 806, reinforcing rod; 807, air suction fan; 808, air outlet pipe; 809, first electromagnetic valve; 810, conveying pipe; 811, second electromagnetic valve; 812, protection bin; 813, drainage pipe; 814, shunt pipe; 815, third electromagnetic valve; 816, compression bin; 817, air supply pipe; 818, fourth electromagnetic valve; 819, retention bin; 820, exhaust pipe; 821, limiting frame; 822, fixing ring; 823, bearing rod; 824, air supply fan; 825, barometer; 9, protection assembly; 901, reinforcing frame; 902, filter cloth. DETAILED DESCRIPTION
[0036] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0037] Referring to FIGS. 1-14, the present application provides a technical scheme: a shipborne server based on 5G edge computing, comprising: a fixed plate 1 and a shipborne server body 3, the top of the fixed plate 1 is provided with a mounting groove 2, a dehumidification assembly 8, the dehumidification assembly 8 comprises a cooling bin 801, semiconductor refrigeration fins 802 are arranged between the opposite inner walls of the cooling bin 801, a communication bin 803 is fixedly communicated with the top of the cooling bin 801, a bearing rod 804 is fixedly arranged in the communication bin 803, a plurality of mounting holes 805 are formed in the outer surface of the bearing rod 804, a plurality of reinforcing rods 806 are fixedly arranged in the plurality of mounting holes 805, air suction fans 807 are arranged on the outer surfaces of the plurality of reinforcing rods 806, an air outlet pipe 808 is fixedly communicated with the top of the communication bin 803 near one side edge, a first electromagnetic valve 809 is arranged on the outer surface of the air outlet pipe 808, a conveying pipe 810 is fixedly communicated with the top of the communication bin 803 near the other side edge, a second electromagnetic valve 811 is arranged on the outer surface of the conveying pipe 810, a protection bin 812 is fixedly arranged on the top of the communication bin 803 through an auxiliary plate, a drainage pipe 813 is fixedly arranged on the inner bottom surface of the protection bin 812, two shunt pipes 814 are fixedly and communicatively arranged on the outer surface of the drainage pipe 813, third electromagnetic valves 815 are arranged on the outer surfaces of the two shunt pipes 814, two compression bins 816 are fixedly and embeddedly arranged in the protection bin 812, and air supply pipes 817 are fixedly and communicatively arranged on the top of the two compression bins 816.
[0038] As shown in FIGS. 1, 8-10 and 13, the top of the shipborne server body 3 is fixedly provided with two limiting frames 821, the outer surfaces of the two limiting frames 821 are fixedly connected with a fixed ring 822, a bearing rod 823 is fixedly arranged in the inner portion of the fixed ring 822, and an air supply fan 824 is arranged on the bottom of the bearing rod 823. The arrangement of the two limiting frames 821 ensures the stability of the fixed ring 822, wherein the air supply fan 824 downwardly transports the external dry gas.
[0039] As shown in FIGS. 1, 9-11 and 13, the top of the fixed ring 822 is fixedly and communicatively provided with an exhaust pipe 820, the bottom end of the exhaust pipe 820 is fixedly and communicatively provided with a retention bin 819, the top ends of the two air supply pipes 817 are respectively fixedly and penetratively arranged in the inner portion of the retention bin 819, fourth electromagnetic valves 818 are arranged on the outer surfaces of the two air supply pipes 817, the gas enters the inner portion of one of the air supply pipes 817, finally enters the inner portion of the retention bin 819, and then enters the inner portion of the exhaust pipe 820, wherein the fixed ring 822 supports and limits the bearing rod 823.
[0040] As shown in FIG. 1 and FIG. 8-13, the outer surface of the cooling bin 801 is fixedly connected with the outer surface of the shipborne server body 3 near the bottom, the top end of the conveying pipe 810 is fixedly penetrated into the inside of the protection bin 812, the bottom end of the drainage pipe 813 is fixedly penetrated into the inside of the conveying pipe 810, the top end of the two shunt pipes 814 is respectively penetrated into the inside of the two compression bins 816, the bottom of the two compression bins 816 is respectively provided with a gas pressure gauge 825, the gas enters into the inside of the protection bin 812 through the conveying pipe 810, and finally enters into the inside of the drainage pipe 813, the gas enters into the inside of the two compression bins 816 through the two shunt pipes 814, and the gas pressure in the inside of the two compression bins 816 can be monitored through the gas pressure gauges 825.
[0041] As shown in FIG. 1-3 and FIG. 5, the outer surface of the fixed plate 1 is provided with a humidity sensor 4, and the top of the fixed plate 1 is provided with a waterproof assembly 5, which comprises a lifting support plate 501, the bottom of which is fixedly connected with the top of the fixed plate 1, and the humidity of the external gas is detected through the humidity sensor 4, wherein the lifting support plate 501 plays a supporting role for the shipborne server body 3.
[0042] As shown in FIG. 1-3, FIG. 5 and FIG. 8-9, a multi-stage electric telescopic rod 502 is arranged on the top of the fixed plate 1 near the center, the top end of the multi-stage electric telescopic rod 502 is fixedly connected with the inner top surface of the lifting support plate 501, and the top end of the lifting support plate 501 is fixedly connected with the bottom of the shipborne server body 3, the multi-stage electric telescopic rod 502 is started to be elongated, driving the top of the lifting support plate 501 to move upwards, and then driving the shipborne server body 3 to move upwards, thereby effectively preventing the external seawater from invading into the inside of the shipborne server body 3 and causing erosion to the shipborne server body 3.
[0043] As shown in FIG. 2-4 and FIG. 6-7, a waterproof gasket 503 is arranged on the inner bottom surface of the mounting groove 2, a protective sleeve 504 is arranged on the top of the waterproof gasket 503, two connecting frames 505 are fixedly arranged on the top of the protective sleeve 504, and sliding blocks 506 are fixedly arranged on the outer surfaces of the two connecting frames 505, when seawater enters the cabin, in order to prevent the splashing of waves from hitting the surface of the shipborne server body 3 to cause water to enter the inside thereof and thus cause damage to the internal parts, the inner cross section of the mounting rod 507 matches the cross section of the sliding block 506, and the purpose is to limit the sliding block 506, and the movement of the two sliding blocks 506 drives the connecting frames 505 to move upwards, thereby elongating the protective sleeve 504.
[0044] As shown in Figures 1, 3 and 6-7, the opposite outer surfaces of the ship-borne server body 3 are fixedly connected with mounting rods 507, the bottoms of the two mounting rods 507 are fixedly connected with auxiliary frames 508, the inner bottom surfaces of the two auxiliary frames 508 are provided with positive and negative motors 509, the output shafts of the two positive and negative motors 509 are fixedly connected with lead screws 510, the two positive and negative motors 509 are started first to drive the two lead screws 510 to rotate, thereby driving the two sliding blocks 506 to move upwards, wherein the two auxiliary frames 508 support the two positive and negative motors 509.
[0045] As shown in Figures 3 and 6-7, the two ends of the two lead screws 510 are movably penetrated into the opposite outer portions of the two mounting rods 507, the outer surfaces of the two lead screws 510 are respectively screwed with the inner portions of the two sliding blocks 506, and the outer surfaces of the two sliding blocks 506 are respectively slidably connected with the inner portions of the two mounting rods 507, by penetrating the lead screws 510 into the outer portions of the two mounting rods 507, the stability of the lead screws 510 is ensured, and the rotation of the two lead screws 510 drives the two sliding blocks 506 to move.
[0046] As shown in Figures 1, 8-9 and 14, the inner walls of the ship-borne server body 3 are provided with an air outlet plate 6 near the bottom, the top of the ship-borne server body 3 is provided with an air inlet plate 7, and the top of the ship-borne server body 3 is provided with a protection assembly 9, the protection assembly 9 comprises a reinforcing frame 901, the bottom of the reinforcing frame 901 is fixedly connected with the top of the ship-borne server body 3, and a plurality of filter cloths 902 are arranged between the inner walls of the reinforcing frame 901, the hot air in the ship-borne server body 3 enters the inside of the cooling bin 801 through the air outlet plate 6, the air outside enters the inside of the ship-borne server body 3 through the air inlet plate 7, the gas in the exhaust pipe 820 is downwardly conveyed by the airflow generated by the air supply fan 824, and the air supply fan 824 has small air power, the air power enters the inside of the air inlet plate 7 through the plurality of filter cloths 902, wherein the arrangement of the plurality of filter cloths 902 effectively prevents the gas in the environment from entering the inside of the ship-borne server body 3 for long-term accumulation to affect the normal operation of the ship-borne server body 3.
[0047] The method of using and working principle of the device: the shipborne server body 3 is mainly installed in the cabin part of the ship body. The shipborne server based on 5G edge computing can provide stronger network connection for the ship, support data exchange and cooperation between multiple sensors and devices, and finally reduce delay, reduce network congestion and improve overall system reliability. When the shipborne server body 3 is used on the ship, when a large amount of water flows into the ship due to extreme weather, in order to prevent seawater from entering the shipborne server body 3 and causing damage, when water appears in the cabin, first, the humidity sensor 4 detects that seawater appears around the fixed plate 1, the humidity sensor 4 measures humidity by using the sensitivity of substances to humidity. There is a layer of humidity-sensitive material inside the sensor. The material will absorb or release water with the change of environmental humidity. Start the multi-stage electric telescopic rod 502 to make it elongate, drive the top of the lifting support plate 501 to move upwards, and then drive the shipborne server body 3 to move upwards, thereby effectively preventing external seawater from invading the inside of the shipborne server body 3 and causing erosion. When seawater enters the cabin, in order to prevent spray from hitting the surface of the shipborne server body 3 and causing water to enter the inside, thereby causing damage to the internal parts, first start two positive and negative motors 509 to drive two lead screws 510 to rotate, thereby driving two sliders 506 to move upwards. As shown in Figure 7, the cross section of the installation rod 507 matches the size of the cross section of the slider 506, which is to limit the movement of the slider 506. The movement of the two sliders 506 drives the connecting frame 505 to move upwards, thereby elongating the protective sleeve 504. As shown in Figure 4, the protective sleeve 504 is a hollow folding structure made of waterproof PVC material, which is convenient for the expansion and contraction of the protective sleeve 504. When one end of the protective sleeve 504 is raised to a height greater than the height of the waves entering the cabin, the two positive and negative motors 509 can be turned off. In order to further ensure the protection of the shipborne server body 3, the waterproof gasket 503 is used to ensure the sealing of the connection between the protective sleeve 504 and the inner bottom surface of the installation groove 2. The waterproof gasket 503 is made of rubber, which has good elasticity and can return to its original shape. This allows the rubber gasket to recover to its original shape after being compressed or deformed, providing long-lasting sealing performance and effectively preventing water leakage. The waterproof assembly 5 effectively prevents the server from being affected by the impact of waves in the cabin. Since the shipborne server body 3 releases heat outward during operation, the gas inside is evaporated, forming dry gas, which is discharged outward through the air outlet plate 6. When the air in the cabin is relatively humid, first connect the cooling bin 801 with the outer surface of the air outlet plate 6, so that the hot air in the air outlet plate 6 enters the inside of the cooling bin 801, and then electrically connect the semiconductor refrigeration sheet 802 with the external power supply. The semiconductor refrigeration sheet 802 uses the thermoelectric effect,The temperature difference between the cold and hot ends is realized by the current passing through the P-N structure, thereby realizing the refrigeration effect. The cold surface of the semiconductor refrigeration sheet 802 faces the inside of the cooling bin 801. When the hot air in the shipborne server body 3 enters the inside of the cooling bin 801 through the air outlet plate 6, it first contacts the surface of the semiconductor refrigeration sheet 802, thereby cooling the hot air. Then, the plurality of suction fans 807 are opened, so that the cooled hot air enters the inside of the communication bin 803 under the suction of the plurality of suction fans 807. The suction fan 807 is a device that sucks air and generates airflow. Then, the second electromagnetic valve 811 is opened, so that the gas in the communication bin 803 enters the inside of the flow guide pipe 813 through the conveying pipe 810. Then, one of the third electromagnetic valves 815 is opened, so that the gas in the communication bin 803 enters the inside of one of the compression bins 816. When the air pressure gauge 825 on the surface of the communication bin 803 detects that the air pressure in the compression bin 816 reaches a certain degree, the air pressure gauge 825 is a device for measuring the pressure of gas or liquid. By reading the pressure reading displayed by the device, the air pressure in the compression bin 816 can be understood. The third electromagnetic valve 815 is closed, and another third electromagnetic valve 815 is opened, so that the gas enters the inside of the other compression bin 816. The collection continues. When one of the third electromagnetic valves 815 is closed, the fourth electromagnetic valve 818 matched therewith is opened, so that the gas enters the inside of the air supply pipe 817 connected with the compression bin 816. Finally, the gas enters the inside of the exhaust pipe 820 through the retention bin 819. Then, the air supply fan 824 is opened, so that the air supply fan 824 transports the gas in the exhaust pipe 820 downward. The air supply fan 824 is a device driven by an electric motor. Airflow is generated by rotating blades to realize air convection. Through the rotation of the blades, the airflow generated by the air supply fan 824 transports the gas in the exhaust pipe 820 downward. The air supply fan 824 has small air power. The air power enters the inside of the air inlet plate 7 through the plurality of filter cloths 902. The plurality of filter cloths 902 are arranged to effectively prevent the gas in the environment from entering the inside of the shipborne server body 3 and affecting the normal operation of the shipborne server body 3. The filter cloth 902 is composed of a fibrous mesh structure. The spacing between the fibers is small, forming a fine mesh layer. This fine structure can block the entry of larger particulate matter, thereby playing a filtering role. Through the action of the dehumidification assembly 8, the humidity in the shipborne server body 3 can be comprehensively replaced with the humidity in the device. The dry gas has a low humidity level. When it enters the inside of the device, it will mix with the air carrying humidity. This mixing process helps to reduce the humidity of the air in the device, thereby effectively protecting the parts in the shipborne server body 3. The problem of the prior art that a large amount of humid air enters the 5G shipborne server and affects the normal operation of the device is solved.
[0048] The wiring diagram of the shipborne server body 3, the humidity sensor 4, the multi-stage electric telescopic rod 502, the positive and negative motor 509, the semiconductor refrigeration piece 802, the air suction fan 807, the first electromagnetic valve 809, the second electromagnetic valve 811, the third electromagnetic valve 815, the fourth electromagnetic valve 818, the air supply fan 824 and the air pressure gauge 825 in the application belongs to the common knowledge in the art, and the working principle is the known technology, and the model is selected according to the actual use; therefore, the control mode and the wiring arrangement of the shipborne server body 3, the humidity sensor 4, the multi-stage electric telescopic rod 502, the positive and negative motor 509, the semiconductor refrigeration piece 802, the air suction fan 807, the first electromagnetic valve 809, the second electromagnetic valve 811, the third electromagnetic valve 815, the fourth electromagnetic valve 818, the air supply fan 824 and the air pressure gauge 825 are not explained in detail.
[0049] Although the application has been described in detail with reference to the foregoing embodiments, technical solutions recorded in the foregoing embodiments can be modified or some technical features can be replaced by equivalent ones by those skilled in the art, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the application shall be included in the protection scope of the application.
Claims
1. A 5G-based edge computing shipboard server, characterized in that: include: A fixing plate (1) and a ship-borne server body (3), wherein a mounting groove (2) is provided on the top of the fixing plate (1); A dehumidification component (8), wherein the dehumidification component (8) includes a cooling chamber (801), semiconductor refrigeration plates (802) are arranged between the opposite inner walls of the cooling chamber (801), the top of the cooling chamber (801) is fixedly connected to a connecting chamber (803), a bearing rod (804) is fixed inside the connecting chamber (803), a plurality of mounting holes (805) are opened on the outer surface of the bearing rod (804), a plurality of reinforcing rods (806) are fixed inside the plurality of mounting holes (805), an air intake fan (807) is arranged on the outer surface of the plurality of reinforcing rods (806), an air outlet pipe (808) is fixedly connected to the top of the connecting chamber (803) near one side edge, and the outer surface of the air outlet pipe (808) is provided with a first A solenoid valve (809); a delivery pipe (810) is fixedly connected to the top of the communication chamber (803) near the other side edge; a second solenoid valve (811) is provided on the outer surface of the delivery pipe (810); a protective chamber (812) is fixed to the top of the communication chamber (803) through an auxiliary plate; a drainage pipe (813) is fixed to the inner bottom surface of the protective chamber (812); two diversion pipes (814) are fixedly connected to the outer surface of the drainage pipe (813); a third solenoid valve (815) is provided on the outer surface of the two diversion pipes (814); two compression chambers (816) are fixedly embedded in the interior of the protective chamber (812); and the tops of the two compression chambers (816) are fixedly connected to the air supply pipe (817).
2. The 5G-based edge computing shipborne server according to claim 1, characterized in that: Two limiting frames (821) are fixed on the top of the shipborne server body (3); a fixing ring (822) is fixedly connected between the outer surfaces of the two limiting frames (821); a load-bearing rod (823) is fixedly installed inside the fixing ring (822); and a supply fan (824) is provided at the bottom of the load-bearing rod (823).
3. The 5G-based edge computing shipborne server according to claim 2, characterized in that: The top of the fixed ring (822) is fixedly connected to an exhaust pipe (820), and the bottom end of the exhaust pipe (820) is fixedly connected to a retention bin (819). The top ends of the two air supply pipes (817) are respectively fixedly passed through the interior of the retention bin (819), and a fourth solenoid valve (818) is provided on the outer surface of the two air supply pipes (817).
4. The 5G-based edge computing shipborne server according to claim 3, characterized in that: The outer surface of the cooling chamber (801) is fixedly connected to the outer surface of the ship-borne server body (3) near the bottom, the top end of the delivery pipe (810) is fixedly passed through the interior of the protection chamber (812), the bottom end of the drainage pipe (813) is fixedly passed through the interior of the delivery pipe (810), and the top ends of the two diversion pipes (814) are respectively passed through the interiors of the two compression chambers (816), and a barometer (825) is provided at the bottom of each of the two compression chambers (816).
5. The 5G-based edge computing shipborne server according to claim 4, characterized in that: A humidity sensor (4) is provided on the outer surface of the fixing plate (1), a waterproof component (5) is provided on the top of the fixing plate (1), and the waterproof component (5) includes a lifting support plate (501), and the bottom of the lifting support plate (501) is fixedly connected to the top of the fixing plate (1).
6. The 5G-based edge computing shipborne server according to claim 5, characterized in that: A multi-stage electric telescopic rod (502) is provided near the center of the top of the fixed plate (1); the top end of the multi-stage electric telescopic rod (502) is fixedly connected to the inner top surface of the lifting support plate (501); and the top end of the lifting support plate (501) is fixedly connected to the bottom of the ship-borne server body (3).
7. The 5G-based edge computing shipborne server according to claim 6, characterized in that: A waterproof gasket (503) is provided on the inner bottom surface of the installation groove (2), a protective cover (504) is provided on the top of the waterproof gasket (503), two connecting frames (505) are fixed on the top of the protective cover (504), and sliders (506) are fixedly installed on the outer surfaces of the two connecting frames (505).
8. The 5G-based edge computing shipborne server according to claim 7, characterized in that: Mounting rods (507) are fixed to opposite outer surfaces of the shipborne server body (3); auxiliary frames (508) are fixed to the bottoms of the two mounting rods (507); forward and reverse motors (509) are provided on the inner bottom surfaces of the two auxiliary frames (508); and the output shafts of the two forward and reverse motors (509) are fixedly connected to screw rods (510).
9. The 5G-based edge computing shipborne server according to claim 8, characterized in that: The two ends of the two screw rods (510) are movably connected to the opposite outsides of the two mounting rods (507), the outer surfaces of the two screw rods (510) are respectively connected to the internal threads of the two sliders (506), and the outer surfaces of the two sliders (506) are respectively connected to the inner sliding parts of the two mounting rods (507).
10. The 5G-based edge computing shipborne server according to claim 9, characterized in that: An air outlet plate (6) is provided between the inner walls of the shipborne server body (3) near the bottom, an air inlet plate (7) is provided on the top of the shipborne server body (3), a protective component (9) is provided on the top of the shipborne server body (3), and the protective component (9) includes a reinforcement frame (901), the bottom of the reinforcement frame (901) is fixedly connected to the top of the shipborne server body (3), and a plurality of filter cloths (902) are provided between the inner walls of the reinforcement frame (901).
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