A shipboard multi-laser thermal energy integrated recovery management and control liquid cooling system

By using a liquid cooling system and moisture-absorbing pad design, the problem of low heat dissipation efficiency of shipborne multi-laser was solved, achieving efficient heat dissipation and equipment safety, and extending service life.

CN120824622BActive Publication Date: 2026-02-13JIANGSU ZHONGTIAN DEFENSE EQUIP CO LTD
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Patent Information

Application Number
CN202511316326.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-16
Publication Date
2026-02-13
Estimated Expiration
2045-09-16

AI Technical Summary

Technical Problem

In existing technologies, shipborne multi-laser systems have low heat dissipation efficiency during operation, which cannot effectively match the instantaneous high heat output, resulting in decreased equipment performance and shortened service life.

Method used

The system employs a liquid cooling system, which consists of a coolant storage tank, a circulating pump, and delivery pipes. Combined with a high-speed fan and radiator, it achieves coolant circulation and efficient heat dissipation. It utilizes the principle of cold air sinking to expand the heat dissipation range, and improves the system's safety and stability through moisture-absorbing pads and a detachable design.

Benefits of technology

It achieves efficient heat dissipation and cooling, reduces equipment temperature, improves equipment stability and service life, while reducing coolant waste and ensuring equipment safety and reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of shipboard multi-laser heat energy integrated recovery pipe control liquid cooling system, it is related to shipboard equipment heat dissipation technical field, including liquid cooling mechanism, the side of the liquid cooling mechanism is provided with laser mechanism.The inside of cooling liquid storage tank is stored with cooling liquid for heat dissipation in the application, third delivery pipe is connected to the side of cooling liquid storage tank, and is communicated with upper circulating pump machine, so that the cooling liquid in the inside of cooling liquid storage tank is conveniently pumped out, then is transported to the position of second joint by fourth delivery pipe, the function of further transportation is realized by sixth delivery pipe connected by second joint, by the sixth delivery pipe is communicated with third circulating pipe, so that cooling circulates in third circulating pipe, the principle of cold air sinking is used to efficiently cool and heat dissipate the inside of shell, the second circulating pipe is connected on the one end of third circulating pipe by seventh delivery pipe, so that it is conveniently further cooled and heat dissipated by the second circulating pipe on the side.
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Description

TECHNICAL FIELD

[0001] The application relates to a shipborne multi-laser thermal energy integrated recovery and control liquid cooling system. BACKGROUND

[0002] With the continuous development of shipborne laser technology, multi-laser systems are increasingly widely applied to shipborne platforms. However, a large amount of heat is generated during the operation of the laser, and if the heat cannot be effectively dissipated in time, the performance, stability and service life of the laser will be seriously affected, and the laser may even be damaged.

[0003] The existing air cooling mode is limited by the low thermal conductivity and heat capacity characteristics of air medium, and the heat dissipation efficiency has a significant bottleneck. When a high-power laser is running, the heat exchange rate cannot match the instantaneous high heat output, resulting in a persistent poor heat dissipation effect, which is difficult to meet the temperature control requirements of stable operation of the equipment. In view of the above problems, a shipborne multi-laser thermal energy integrated recovery and control liquid cooling system is provided. SUMMARY

[0004] The purpose of the present application is to provide a shipborne multi-laser thermal energy integrated recovery and control liquid cooling system to solve the problem of the existing technology that the heat dissipation efficiency has a significant bottleneck when operating, and the heat exchange rate cannot match the instantaneous high heat output when a high-power laser is running, resulting in a persistent poor heat dissipation effect.

[0005] To achieve the above purpose, the present application provides the following technical scheme: a shipborne multi-laser thermal energy integrated recovery and control liquid cooling system, comprising a liquid cooling mechanism, a laser mechanism is arranged on the side of the liquid cooling mechanism, the liquid cooling mechanism comprises a cooling liquid storage tank, a third conveying pipe is fixedly connected to the side of the cooling liquid storage tank, the other end of the third conveying pipe is fixedly connected with a circulating pump machine, and the one end of the circulating pump machine is fixedly connected with a fourth conveying pipe; the other end of the fourth conveying pipe is connected with a second connector, a sixth conveying pipe, a third circulating pipe, a seventh conveying pipe, a second circulating pipe and a fifth conveying pipe in sequence, so that the cooling liquid is conveyed to a first connector after being subjected to heat dissipation treatment; a first conveying pipe is fixedly connected to the cooling liquid storage tank, the other end of the first connector is connected with a second conveying pipe, a first circulating pipe and the first conveying pipe in sequence, a heat dissipation device is arranged on the outer side of the first circulating pipe, and the other end of the circulating pump machine is provided with a high-speed fan.

[0006] The laser mechanism comprises an outer shell, the second circulating pipe is arranged on the side of the outer shell, and the third circulating pipe is arranged on the top of the outer shell.

[0007] Preferably, the top of the outer shell is provided with a top cover, the side of the top cover is movably penetrated and mounted with a mounting frame, the inner side of the mounting frame is provided with a moisture absorption pad, the moisture absorption pad is arranged on the inner side of the top cover, the top of the outer shell is provided with a notch, and the moisture absorption pad is arranged above the notch.

[0008] Preferably, the two ends of the mounting frame are slidably connected with sliding rails, and the sliding rails are symmetrically and fixedly installed at the two ends of the inner wall of the top cover.

[0009] Preferably, the mounting frame is uniformly provided with a plurality of connecting blocks on one side, and the connecting blocks are fixedly connected with side cover plates at one end.

[0010] Preferably, the front of the top cover is uniformly provided with a plurality of rotating shafts, one end of the rotating shaft is fixedly connected with a limiting block, and the side of the limiting block is rotatably connected with a rotating rod.

[0011] Preferably, the side of the rotating rod is fixedly installed with a U-shaped piece, the inner side of the U-shaped piece is movably penetrated with a limiting pin, the limiting pin penetrates the middle part of the rotating rod, the outer side of the limiting pin is sleeved with a spring piece, the outer wall of the limiting pin is fixedly installed with a push disc in the middle part, the push disc is arranged at one end of the spring piece, and the other end of the spring piece abuts against the inner side of the U-shaped piece.

[0012] Preferably, the outer shell is fixedly installed with a heat preservation shell on one side, and the heat preservation shell is sleeved on the outer side of the second circulating pipeline.

[0013] Preferably, the top of the cooling liquid storage tank is provided with a storage tank cover, the outer side of the cooling liquid storage tank is provided with an outer cover plate, one side of the cooling liquid storage tank is provided with a liquid level display window, the liquid level display window is embedded in the side of the outer cover plate, and one side of the outer cover plate is provided with a control switch.

[0014] Preferably, the bottom of the outer cover plate is fixedly installed with a bottom support seat at four corners, and a plurality of heat dissipation notches are uniformly and penetratively formed in one side of the outer cover plate.

[0015] Preferably, the bottom of the liquid cooling mechanism is provided with a bottom support mechanism, the bottom support mechanism comprises a bottom support frame, the inner side of the bottom support frame is provided with a bottom support mounting plate, the bottom of the bottom support frame is fixedly installed with a bottom support column at four corners, the bottom of the bottom support column is fixedly installed with a fixed frame body, and a plurality of fixed grooves are symmetrically and uniformly penetratively formed in the fixed frame body.

[0016] Compared with the prior art, the present application has the following advantages:

[0017] 1、The present application, by the cooling liquid storage tank inside the storage for heat dissipation of the cooling liquid, the third delivery pipeline is connected to the side of the cooling liquid storage tank, and is communicated with the upper circulating pump, so as to facilitate the cooling liquid storage tank inside the cooling liquid is pumped out, and then through the fourth delivery pipeline is transported to the position of the second joint, through the second joint connected to the sixth delivery pipeline realizes the function of further transport, through the sixth delivery pipeline is communicated with the third circulating pipeline, so that the cooling in the third circulating pipeline on the circulation flow, using the principle of cold air sinking to the shell inside the efficient heat dissipation cooling, through the seventh delivery pipeline is connected to the second circulating pipeline at one end of the third circulating pipeline, so as to facilitate the further heat dissipation cooling through the second circulating pipeline in the side, is advantageous to improve the range of cooling, improve the cooling efficiency, through the second circulating pipeline is connected to the fifth delivery pipeline at one end, so that the cooling liquid after heat dissipation to the first joint, through the first joint connected to the second delivery pipeline, convenient to input the cooling liquid after heat dissipation to the inside of the first circulating pipeline, through the radiator is distributed on the outside of the first circulating pipeline, and the circulating pump machine is provided with high speed fan, through the circulating pump machine drive high speed fan rotation, so that the fan produces strong wind blows to the radiator, is advantageous to the heat dissipation of the radiator exported quickly blow, and then realizes the high efficiency of heat dissipation cooling function, to ensure the cooling effect, then through the second delivery pipeline is connected to the first delivery pipeline at one end, can the cooling liquid after cooling treatment flows into the inside of the cooling liquid storage tank, so as to facilitate the provision of high efficiency heat dissipation at the same time to improve the effect of energy saving, reduces the cooling liquid waste situation occurs.

[0018] 2、The application, by setting the top cover on the top of the outer shell, a chute opening is formed on one side of the top cover, and slide rails are arranged at the inner two ends of the top cover, which facilitates the sliding installation of the mounting frame inside the top cover, i.e., below the third circulating pipeline. A moisture absorbing pad is arranged inside the mounting frame, which is beneficial to temperature guiding and moisture absorbing during cooling, avoids water vapor generated during cooling from falling on the laser equipment, effectively improves the safety during cooling, and the connecting blocks are distributed outside the mounting frame, and the side cover plates are fixedly connected to one end of the connecting blocks to block the side chute opening of the top cover, which can improve the sealing performance. A plurality of rotating shafts are distributed on the side of the top cover and connected to the limiting blocks, and the rotating rods are rotatably connected to the limiting blocks, which facilitates the manual shaking of the position of the rotating rod and facilitates the synchronous flipping function of the limiting blocks, thereby facilitating the removal of the limiting blocks when the moisture absorbing pad needs to be replaced and cleaned, and the moisture absorbing pad is removed, realizing efficient replacement. During installation, the limiting blocks are synchronously rotated by the rotating rods and are buckled on the side of the side cover plate, thereby realizing the effect of rapid installation and locking. A U-shaped piece is arranged on the side of the rotating rod, the limiting pin is penetrated by the U-shaped piece, and the spring piece is sleeved outside the limiting pin. The spring piece pushes the push disc on the limiting pin, so that the limiting pin is inserted into the inside of the side cover plate, thereby providing further fixing effect and improving the stability after installation. The moisture absorbing pad is beneficial to providing waterproof protection while ensuring the heat dissipation effect, and the moisture absorbing pad is replaced in a quick installation and disassembly manner, which is beneficial to long-term use. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a perspective view of a liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application;

[0020] Figure 2 It is another angle structure schematic view of a liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application;

[0021] Figure 3 It is a perspective view of a liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application; Figure 2 It is an enlarged structure schematic view of position A in the above-mentioned liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application;

[0022] Figure 4 It is an enlarged structure schematic view of position B in the above-mentioned liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application; Figure 2

[0023] Figure 5 It is a partial structure schematic view of a liquid cooling system for shipborne multi-laser thermal energy integrated recovery and control of the application;

[0024] Figure 6 ​This is a schematic diagram of the laser component structure of a liquid cooling system for integrated thermal energy recovery and control of multiple shipborne lasers according to the present invention.

[0025] Figure 7 This invention relates to a liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser systems. Figure 6 Enlarged structural diagram at point C;

[0026] Figure 8 This invention relates to a liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser systems. Figure 7 Enlarged structural diagram at point D;

[0027] Figure 9 This is a schematic diagram of the laser portion of a liquid cooling system for integrated thermal energy recovery and control of multiple shipborne lasers according to the present invention, taken from another angle.

[0028] Figure 10 This is a schematic diagram of a partial structure of a liquid cooling system for integrated thermal energy recovery and control of multiple shipborne lasers according to the present invention.

[0029] Figure 11 This invention relates to a liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser systems. Figure 10 Enlarged structural diagram at point E in the middle.

[0030] In the picture:

[0031] 1. Liquid cooling mechanism; 101. Coolant storage tank; 102. Storage tank cover; 103. Outer cover plate; 104. First connector; 105. Second connector; 106. Liquid level display window; 107. Control switch; 108. First delivery pipe; 109. Radiator; 110. First circulation pipe; 111. Second delivery pipe; 112. Base support; 113. Heat dissipation slot; 114. Circulation pump; 115. High-speed fan; 116. Third delivery pipe; 117. Fourth delivery pipe; 2. Laser mechanism; 201. Outer casing; 202. Fifth delivery pipe; 20 3. Second circulation pipe; 204. Sixth conveying pipe; 205. Insulation shell; 206. Third circulation pipe; 207. Seventh conveying pipe; 208. Top cover; 209. Mounting frame; 210. Moisture-absorbing pad; 211. Sliding track; 212. Connecting block; 213. Side cover plate; 214. Rotating shaft; 215. Limiting block; 216. Rotating rod; 217. U-shaped part; 218. Limiting pin; 219. Spring part; 3. Bottom support mechanism; 301. Bottom support frame; 302. Bottom support mounting plate; 303. Bottom support column; 304. Fixed frame; 305. Fixed groove. Detailed Implementation

[0032] 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 some embodiments of the present invention, and not all embodiments. 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.

[0033] Example 1: As Figures 1-11 As shown, the present invention provides a technical solution: a liquid cooling system for integrated heat recovery and control of multiple shipborne lasers, including a liquid cooling mechanism 1, a laser mechanism 2 disposed on the side of the liquid cooling mechanism 1, the liquid cooling mechanism 1 including a coolant storage tank 101, a third conveying pipe 116 fixedly connected to the side of the coolant storage tank 101, a circulating pump 114 fixedly connected to the other end of the third conveying pipe 116, a fourth conveying pipe 117 fixedly connected to one end of the circulating pump 114; the other end of the fourth conveying pipe 117 is connected to a second connector 105 and a sixth conveying pipe. 204, the third circulation pipe 206, the seventh delivery pipe 207, the second circulation pipe 203, and the fifth delivery pipe 202 are connected in sequence, so that the coolant is delivered to the first connector 104 after heat dissipation treatment; the first delivery pipe 108 is fixedly connected to the coolant storage tank 101, and the other end of the first connector 104 is connected to the second delivery pipe 111, the first circulation pipe 110, and the first delivery pipe 108 in sequence; a radiator 109 is provided on the outside of the first circulation pipe 110, and a high-speed fan 115 is provided on the other end of the circulation pump 114;

[0034] The laser mechanism 2 includes a housing 201, a second circulation pipe 203 distributed on the side of the housing 201, and a third circulation pipe 206 distributed on the top of the housing 201.

[0035] In the embodiment, the cooling liquid in the cooling liquid storage tank 101 is stored for heat dissipation, the third conveying pipe 116 is connected to the side of the cooling liquid storage tank 101 and communicates with the circulating pump 114, so that the cooling liquid in the cooling liquid storage tank 101 is easily pumped out, then conveyed to the position of the second joint 105 through the fourth conveying pipe 117, and further conveyed through the sixth conveying pipe 204 connected to the second joint 105, and communicated with the third circulating pipe 206, so that the cooling liquid is circulated in the third circulating pipe 206, and the principle of cold air sinking is used to efficiently cool the inside of the shell 201. At one end of the third circulating pipe 206, the second circulating pipe 203 is connected through the seventh conveying pipe 207, so that the cooling liquid is further cooled on the side through the second circulating pipe 203, which is beneficial to improve the cooling range and efficiency. The fifth conveying pipe 202 is connected at one end of the second circulating pipe 203, so that the cooling liquid is conveyed to the first joint 104 after heat dissipation. The second conveying pipe 111 is connected to the first joint 104, so that the cooling liquid after heat dissipation is easily input into the first circulating pipe 110. The heat dissipation device 109 is distributed outside the first circulating pipe 110, and the high-speed fan 115 is arranged on the circulating pump 114. The high-speed fan 115 is driven to rotate by the circulating pump 114, so that the fan generates strong wind to blow to the heat dissipation device 109, which is beneficial to quickly blow away the heat generated by the heat dissipation device 109, thereby realizing efficient heat dissipation and cooling function to ensure the cooling effect. Then, the first conveying pipe 108 is connected at one end of the second conveying pipe 111, so that the cooled cooling liquid is easily recovered and flows into the cooling liquid storage tank 101, which is beneficial to provide efficient heat dissipation and improve energy saving effect, and reduce the waste of cooling liquid.

[0036] Embodiment 2: as Figure 1 , Figures 6-11As shown, the top of the outer shell 201 is provided with a top cover 208, the side of the top cover 208 is movably penetrated and mounted with a mounting frame 209, the inner side of the mounting frame 209 is provided with a moisture absorption pad 210, the moisture absorption pad 210 is arranged on the inner side of the top cover 208, the top of the outer shell 201 is provided with a slot, the moisture absorption pad 210 is arranged above the slot, the two ends of the mounting frame 209 are slidably connected with sliding rails 211, the sliding rails 211 are symmetrically and fixedly installed on the two ends of the inner wall of the top cover 208, a plurality of connecting blocks 212 are uniformly distributed on one side of the mounting frame 209, one end of the connecting block 212 is fixedly connected with a side cover plate 213, a plurality of rotating shafts 214 are uniformly distributed on the front of the top cover 208, one end of the rotating shaft 214 is fixedly connected with a limiting block 215, the side of the limiting block 215 is rotatably connected with a rotating rod 216, the side of the rotating rod 216 is fixedly installed with a U-shaped piece 217, the inner side of the U-shaped piece 217 is movably penetrated with a limiting pin 218, the limiting pin 218 penetrates the middle part of the rotating rod 216, the outer side of the limiting pin 218 is sleeved with a spring piece 219, the outer wall middle part of the limiting pin 218 is fixedly installed with a push disc, the push disc is arranged on one end of the spring piece 219, the other end of the spring piece 219 abuts against the inner side of the U-shaped piece 217, one side of the outer shell 201 is fixedly installed with a heat preservation shell 205, the heat preservation shell 205 is sleeved on the outer side of the second circulating pipeline 203.

[0037] In the embodiment, by setting the top cover 208 on the top of the outer shell 201, a sliding groove opening is formed on one side of the top cover 208, and sliding rails 211 are arranged at the inner two ends of the top cover 208, which facilitates the sliding installation of the mounting frame 209 inside the top cover 208, i.e. below the third circulating pipeline 206. The moisture absorbing pad 210 is arranged inside the mounting frame 209, which is beneficial to temperature guiding and moisture absorbing during cooling, avoiding water vapor generated during cooling from falling on the laser equipment, effectively improving the safety during cooling. The connecting blocks 212 are distributed outside the mounting frame 209, and the side cover plates 213 are fixedly connected to one end of the connecting blocks 212 to block the side sliding groove opening of the top cover 208, which can improve the sealing performance. The rotating shafts 214 are distributed on the side of the top cover 208 and are connected to the limiting blocks 215, and the rotating rods 216 are rotatably connected to the limiting blocks 215, so that the position of the rotating rod 216 can be conveniently manually shaken, which is beneficial to driving the limiting blocks 215 to realize synchronous overturning function, thereby facilitating the removal of the limiting blocks 215 when the moisture absorbing pad 210 needs to be replaced and cleaned, and facilitating the removal of the moisture absorbing pad 210, realizing efficient replacement work. During installation, the limiting blocks 215 are synchronously rotated by the rotating rod 216 and are buckled on the side of the side cover plate 213, thereby realizing the effect of rapid installation and locking. The U-shaped piece 217 is arranged on the side of the rotating rod 216, penetrates the limiting pin 218, and is sleeved with the spring piece 219 outside the limiting pin 218. The spring piece 219 pushes the pushing disc on the limiting pin 218, so that the limiting pin 218 is inserted into the inside of the side cover plate 213, thereby providing further fixing effect, which is beneficial to improve the stability after installation. By adopting the moisture absorbing mode of the moisture absorbing pad 210, it is beneficial to provide waterproof protection while ensuring the heat dissipation effect, and the moisture absorbing pad 210 adopts the quick installation, disassembly and replacement mode, which is beneficial to long-term guarantee of use effect.

[0038] Embodiment 3: as Figures 2-5As shown, the top of the cooling liquid storage tank 101 is provided with a storage tank cover 102, the outer side of the cooling liquid storage tank 101 is provided with an outer cover plate 103, one side of the cooling liquid storage tank 101 is provided with a liquid level display window 106, the liquid level display window 106 is embedded in the side of the outer cover plate 103, one side of the outer cover plate 103 is provided with a control switch 107, the bottom of the outer cover plate 103 is fixedly installed with a bottom support seat 112, a plurality of heat dissipation slots 113 are uniformly and penetratingly provided on one side of the outer cover plate 103, the bottom of the liquid cooling mechanism 1 is provided with a bottom support mechanism 3, the bottom support mechanism 3 comprises a bottom support frame 301, the inner side of the bottom support frame 301 is provided with a bottom support mounting plate 302, the bottom of the bottom support frame 301 is fixedly installed with a bottom support column 303, the bottom of the bottom support column 303 is fixedly installed with a fixed frame 304, and a plurality of fixed slots 305 are symmetrically and uniformly penetratingly provided on the fixed frame 304.

[0039] In this embodiment, the storage tank cover 102 is arranged on the top of the cooling liquid storage tank 101, which facilitates the addition of cooling liquid to the inside of the cooling liquid storage tank 101, and the outer cover plate 103 is arranged on the outer side of the cooling liquid storage tank 101 and the radiator 109, which is conducive to providing the effect of installation in protection and improving the stability of use. The liquid level display window 106 facilitates quick viewing of the liquid level height of the cooling liquid inside the cooling liquid storage tank 101 to ensure sufficient cooling. The control switch 107 facilitates switching control and improves the convenience of use. The bottom support seat 112 is distributed on the bottom corners of the outer cover plate 103, which facilitates the provision of installation support and the reduction of the influence of vibration, and is conducive to improving the stability of equipment operation. The heat dissipation slots 113 are provided on one side of the outer cover plate 103, which is conducive to ensuring the heat dissipation effect of the radiator 109 and avoiding the problem of insufficient heat dissipation effect caused by excessive heat.

[0040] The bottom support frame 301 provides installation support and cooperates with the bottom support mounting plate 302 to provide a mounting position, which facilitates the installation of the liquid cooling device and the laser, and forms an integrated device, which facilitates the realization of the function of heat energy recovery. The bottom support column 303 is used for heightening, which is conducive to providing a space for heat dissipation at the bottom, thereby improving the efficiency of heat dissipation. The fixed frame 304 is arranged at the bottom and provided with a plurality of fixed slots 305, which facilitates the provision of stable effect and improves the stability of installation.

[0041] In the application, the liquid cooling system for controlling and recycling the heat energy of the ship-borne multi-laser in use first stores the cooling liquid for heat dissipation in the inside of the cooling liquid storage tank 101. The third conveying pipe 116 is connected to the side of the cooling liquid storage tank 101 and communicates with the circulating pump 114, so as to facilitate the extraction of the cooling liquid in the inside of the cooling liquid storage tank 101, and then the cooling liquid is conveyed to the position of the second joint 105 through the fourth conveying pipe 117, realizes the function of further conveying through the sixth conveying pipe 204 connected by the second joint 105, communicates with the third circulating pipe 206 through the sixth conveying pipe 204, makes the cooling liquid circulate in the third circulating pipe 206, utilizes the principle of cold air sinking to efficiently cool and heat dissipate the inside of the shell body 201, connects the second circulating pipe 203 through the seventh conveying pipe 207 at one end of the third circulating pipe 206, so as to facilitate further cooling and heat dissipation on the side through the second circulating pipe 203, is conducive to improving the cooling range and improving the cooling efficiency, connects the fifth conveying pipe 202 through one end of the second circulating pipe 203, makes the cooling liquid after heat dissipation treatment conveyed to the first joint 104, connects the second conveying pipe 111 through the first joint 104, facilitates the input of the cooling liquid after heat dissipation to the inside of the first circulating pipe 110, distributes the heat dissipation device 109 outside the first circulating pipe 110, and the circulating pump 114 is provided with a high-speed fan 115, drives the high-speed fan 115 to rotate through the circulating pump 114, makes the fan produce strong wind power to blow to the heat dissipation device 109, is conducive to quickly blowing away the heat dissipated by the heat dissipation device 109, and realizes the high-efficiency heat dissipation and cooling function, so as to ensure the cooling effect. The cooling liquid after cooling treatment can flow into the inside of the cooling liquid storage tank 101 through the second conveying pipe 111 connected to one end of the first conveying pipe 108, so as to be conducive to providing high-efficiency heat dissipation and improving the energy-saving effect, and reducing the waste of cooling liquid.

[0042] By setting the top cover 208 on the top of the outer shell 201, a sliding slot is opened on one side of the top cover 208, and slide rails 211 are arranged at the inner sides of the two ends of the top cover 208, which facilitates the sliding installation of the mounting frame 209 inside the top cover 208, i.e. below the third circulating pipeline 206. A moisture absorbing pad 210 is arranged inside the mounting frame 209, which is beneficial to temperature guiding and moisture absorbing during cooling, avoiding water vapor generated by cooling from falling on the laser equipment, effectively improving the safety during cooling. Connection blocks 212 are distributed outside the mounting frame 209, and side cover plates 213 are fixedly connected to one end of the connection blocks 212 to block the side sliding slot of the top cover 208, which can improve the sealing performance. A plurality of rotating shafts 214 are distributed on the side of the top cover 208 and connected to upper limit blocks 215, and rotating rods 216 are rotatably connected to the limit blocks 215, which facilitates the manual shaking of the position of the rotating rod 216 and helps to drive the limit block 215 to realize synchronous flipping, thereby facilitating the removal of the limit block 215 when the moisture absorbing pad 210 needs to be replaced or cleaned, and facilitating the removal of the moisture absorbing pad 210, realizing efficient replacement. During installation, the limit block 215 is synchronously rotated by the rotating rod 216 and buckled on the side of the side cover plate 213, thereby realizing quick installation and locking. A U-shaped piece 217 is arranged on the side of the rotating rod 216, the limit pin 218 is penetrated through the U-shaped piece 217, and the spring piece 219 is sleeved outside the limit pin 218. The limit pin 218 is inserted into the inside of the side cover plate 213 by pushing the pushing disc on the limit pin 218 with the spring piece 219, thereby providing further fixing effect and improving the stability after installation. The moisture absorbing pad 210 is beneficial to providing waterproof protection while ensuring heat dissipation effect, and the moisture absorbing pad 210 is replaced in a quick installation and disassembly manner, which is beneficial to long-term use. The storage tank cover 102 is arranged on the top of the cooling liquid storage tank 101, which facilitates the addition of cooling liquid into the cooling liquid storage tank 101. The outer cover plate 103 is arranged outside the cooling liquid storage tank 101 and the radiator 109, which is beneficial to providing installation and protection effect and improving the stability of use. The liquid level display window 106 is convenient for quickly checking the liquid level height of the cooling liquid in the cooling liquid storage tank 101, so as to ensure sufficient cooling. The control switch 107 facilitates switching control and improves the convenience of use. The bottom support 112 is distributed at the bottom corners of the outer cover plate 103, which facilitates the installation support and reduces the influence of vibration, and is beneficial to improving the stability of equipment operation. The heat dissipation slot 113 is opened on one side of the outer cover plate 103, which is beneficial to ensuring the heat dissipation effect of the radiator 109 and avoiding the problem of insufficient heat dissipation effect caused by high heat.

[0043] The installation support is provided through the bottom support frame 301, and the erection installation position is provided in cooperation with the bottom support plate 302, so that the liquid cooling device is provided with the installation position of the laser, and an integrated device is formed, the function of heat energy recovery is realized, the height is raised through the bottom support column 303, the space for heat dissipation is provided at the bottom, and the heat dissipation efficiency is improved, the fixed frame body 304 is arranged at the bottom and is provided with a plurality of fixed grooves 305, so that the stable effect is provided, and the stability of installation is improved.

[0044] Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art can make modifications to the technical solutions recorded in the foregoing embodiments, or make equivalent replacements to part of the technical features, and any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. A liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser systems, characterized in that: The system includes a liquid cooling mechanism (1), a laser mechanism (2) is provided on the side of the liquid cooling mechanism (1), the liquid cooling mechanism (1) includes a coolant storage tank (101), a third delivery pipe (116) is fixedly connected to the side of the coolant storage tank (101), a circulating pump (114) is fixedly connected to the other end of the third delivery pipe (116), and a fourth delivery pipe (117) is fixedly connected to one end of the circulating pump (114); the other end of the fourth delivery pipe (117) is connected to the second connector (105), the sixth delivery pipe (204), the third circulation pipe (206), and the third... The seventh delivery pipe (207), the second circulation pipe (203), and the fifth delivery pipe (202) are connected in sequence, so that the coolant is delivered to the first connector (104) after heat dissipation treatment; the first delivery pipe (108) is fixedly connected to the coolant storage tank (101), and the other end of the first connector (104) is connected to the second delivery pipe (111), the first circulation pipe (110), and the first delivery pipe (108) in sequence. A radiator (109) is provided on the outside of the first circulation pipe (110), and a high-speed fan (115) is provided on the other end of the circulation pump (114). The laser mechanism (2) includes a housing (201), the second circulation pipe (203) is distributed on the side of the housing (201), and the third circulation pipe (206) is distributed on the top of the housing (201); The top of the outer shell (201) is provided with a top cover (208), and a mounting frame (209) is movably installed through the side of the top cover (208). A moisture-absorbing pad (210) is provided on the inner side of the mounting frame (209). The moisture-absorbing pad (210) is located on the inner side of the top cover (208). A slot is opened on the top of the outer shell (201), and the moisture-absorbing pad (210) is located above the slot. The top cover (208) has several rotating shafts (214) evenly distributed on its front side. One end of each rotating shaft (214) is fixedly connected to a limiting block (215), and a rotating rod (216) is rotatably connected to the side of the limiting block (215). A U-shaped component (217) is fixedly installed on the side of the rotating rod (216). A limiting pin (218) is movably passed through the inner side of the U-shaped component (217). The limiting pin (218) passes through the middle of the rotating rod (216). A spring component (219) is sleeved on the outer side of the limiting pin (218). A pusher plate is fixedly installed in the middle of the outer wall of the limiting pin (218). The pusher plate is located at one end of the spring component (219), and the other end of the spring component (219) abuts against the inner side of the U-shaped component (217).

2. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser as described in claim 1, characterized in that: The mounting frame (209) is slidably connected to two ends of a sliding track (211), which is symmetrically fixedly installed on both ends of the inner wall of the top cover (208).

3. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser as described in claim 2, characterized in that: A number of connecting blocks (212) are evenly distributed on one side of the mounting frame (209), and a side cover plate (213) is fixedly connected to one end of the connecting block (212).

4. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser according to claim 1, characterized in that: An insulation shell (205) is fixedly installed on one side of the outer shell (201), and the insulation shell (205) is sleeved on the outside of the second circulation pipe (203).

5. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser according to claim 1, characterized in that: The coolant storage tank (101) is provided with a storage tank cover (102) on the top, an outer cover plate (103) is provided on the outside of the coolant storage tank (101), a liquid level display window (106) is provided on one side of the coolant storage tank (101), the liquid level display window (106) is embedded in the side of the outer cover plate (103), and a control switch (107) is provided on one side of the outer cover plate (103).

6. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser according to claim 5, characterized in that: The bottom four corners of the outer cover plate (103) are fixedly installed with bottom support bases (112), and a number of heat dissipation slots (113) are evenly opened through one side of the outer cover plate (103).

7. The liquid cooling system for integrated thermal energy recovery and control of shipborne multi-laser according to claim 1, characterized in that: The liquid cooling mechanism (1) is provided with a bottom support mechanism (3) at the bottom. The bottom support mechanism (3) includes a bottom support frame (301). A bottom support mounting plate (302) is provided on the inner side of the bottom support frame (301). Bottom support pillars (303) are fixedly installed at the four corners of the bottom of the bottom support frame (301). A fixed frame (304) is fixedly installed at the bottom of the bottom support pillar (303). Fixed grooves (305) are symmetrically and evenly opened through the fixed frame (304).

Citation Information

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