Intelligent temperature control machine room cooling device
Through the directional cooling parts and multi-axis moving mechanism of the intelligent temperature-controlled computer room cooling device, the problem of unbalanced heat dissipation in the computer room is solved, precise fixed-point heat dissipation is achieved, and the equipment's heat dissipation efficiency and safety is improved.
Patent Information
- Application Number
- CN202510628904.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-08-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing machine room cooling device cannot perform fixed-point heat dissipation according to the heat generation of different equipment, resulting in unbalanced heat dissipation efficiency and affecting the normal operation of the equipment.
An intelligent temperature-controlled computer room cooling device is designed. Through directional cooling parts and multi-axis moving mechanisms, it can accurately dissipate heat according to the heat distribution of the equipment, including air intake parts, placement parts and directional cooling parts, and components such as fans, water storage boxes and condensate boxes can be used to achieve fixed-point heat dissipation.
It realizes fixed-point heat dissipation according to the heat production of the equipment, improves the heat dissipation efficiency and safety of different equipment in the computer room, and ensures the normal operation of the equipment.
Smart Images

Figure CN120456512A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cooling devices for computer rooms, and in particular to an intelligent temperature-controlled cooling device for computer rooms. Background Art
[0002] Computer room cooling is a key measure to ensure the normal operation of data centers and server equipment. Since servers and other IT equipment generate a lot of heat during operation, if the heat is not dissipated in a timely and effective manner, it may cause equipment overheating, performance degradation, or even damage.
[0003] The existing announcement number is CN219395408U, and its name is a communication room cooling mechanism, which includes a communication room, a thermal insulation board fixedly installed on the surface of the communication room, a door set on the front of the communication room, and an observation window fixedly installed on one side of the door. The communication room cooling mechanism, through the setting of the thermal insulation board, plays a role in absorbing heat and initially cooling the interior of the communication room. Through the coordinated setting of the servo motor, the transmission rod and the exhaust fan, when in use, the servo motor is connected to an external power supply to drive the transmission rod to rotate, and then the transmission rod drives the exhaust fan to rotate, thereby playing a role in secondary cooling of the communication room, thereby improving the working efficiency of the device. Through the coordinated setting of the fixing bolts, the frame and the connecting frame, when in use, the frame is placed on the surface of the connecting frame and then fixed by the fixing bolts, thereby facilitating the disassembly and maintenance of the device.
[0004] The existing announcement number is CN213244712U, and its name is a communication room cooling device, which includes a machine room, an air conditioner indoor unit, and an exhaust pump. The air conditioner indoor unit is connected to the top of one side of the machine room by bolts, and the air conditioner outdoor unit matching the air conditioner indoor unit is connected to the side of the machine room by bolts. A fan is connected to the inner wall of the machine room by bolts, and a shutter is connected to one side of the bottom of the machine room by a slot. The exhaust pump is connected to the side of the machine room opposite to the air conditioner outdoor unit by a slot. The beneficial effect is that the utility model can reasonably control the frequency of use of the air conditioner indoor unit by providing a fan, an exhaust pump, a shutter, and an air conditioner indoor unit, saving the standby time of the air conditioner indoor unit, reducing energy consumption, improving the energy conservation and environmental protection of the device, and having good use effect. At the same time, it ensures good air circulation in the machine room, achieving the effect of ventilation and cooling. The shutter can effectively prevent insects and rodents from entering, thereby improving the use effect of the device.
[0005] However, the above-mentioned computer room cooling devices all have fixed fans running through the walls of the computer room, and use the fans to force the air in the computer room to carry out heat discharge, thereby dissipating heat and cooling the equipment in the computer room. However, the equipment installed in the computer room is diverse, and the working conditions and power of different equipment are different, so the heat generation of different equipment is also different. The fan on a single wall generates air with a single flow rate, which has the same heat dissipation effect on different equipment. The computer room lacks a fixed heat dissipation device, which results in the inability to increase the heat dissipation treatment of different equipment according to the actual heat generation of different equipment in the computer room, affecting the heat dissipation efficiency of different equipment in the computer room. Summary of the Invention
[0006] The present invention solves the problems in the related art and provides an intelligent temperature-controlled cooling device for a computer room.
[0007] In order to solve the above technical problems, the present invention is achieved through the following technical solutions: an intelligent temperature-controlled computer room cooling device, comprising a computer room body, an air intake piece, a placement piece and a directional cooling piece. The front end face of the computer room body is opened, and a door is rotatably connected to the opening of the computer room body. The air intake piece is connected and assembled on the bottom surface of the computer room body. A directional cooling piece is provided on the upper inner side of the computer room body, and two placement pieces are symmetrically provided on both sides of the inner bottom surface of the computer room body. A fan is fixed through the top surface of the computer room body.
[0008] As a preferred solution, an air intake groove is opened through the bottom surface of the machine room body, and multiple air intake grooves are opened horizontally. A mesh is horizontally fixed on the upper side of the inner part of the air intake groove, and the lower side of the inner part of the air intake groove is filled with moisture-proof cotton blocks.
[0009] As a preferred solution, the air intake part includes a water storage box, which is arranged below the machine room body, and the top surface of the water storage box is opened, the interior of the water storage box is filled with coolant, and a mesh frame is vertically connected and fixed on the top surface of the water storage box, and multiple pillars are vertically fixed on the bottom surface of the water storage box, a support frame is vertically connected and fixed on the top surface of the mesh frame, and the top surface of the support frame is fixed on the bottom surface of the machine room body.
[0010] As a preferred solution, the placement component includes a placement frame, which is vertically fixed on the inner bottom surface of the machine room body, and a placement mesh is horizontally fixed inside the placement frame, and multiple placement meshes are horizontally fixed along the vertical direction, and temperature sensors are vertically fixed through the ends of the multiple placement meshes.
[0011] As a preferred solution, the directional cooling member includes a first guide member, a second guide member, a movable member, a lifting member and an air outlet member. The first guide member is horizontally fixed on the inner top surface of the machine room body, and the second guide member is horizontally arranged below the first guide member, and the first guide member and the second guide member are arranged in a cross shape along the vertical direction. The movable member is arranged below the second guide member, and the lifting member is vertically arranged on the bottom surface of the movable member, and the air outlet member is horizontally assembled at the bottom end of the lifting member.
[0012] As a preferred solution, the first guide member includes a sliding rod frame and a movable screw rod. The sliding rod frame is horizontally arranged on the upper inner side of the machine room body, and fixed screw hole plates are respectively fixed at both ends of the sliding rod frame. The fixed screw hole plates are fixed to the wall of the machine room body through fixing bolts. A first motor is horizontally fixed at one end of the sliding rod frame, and the movable screw rod is horizontally rotatably connected to the two ends of the sliding rod frame, and one end of the movable screw rod is fixedly connected to the output end of the first motor. A lifting frame is horizontally fixed on the top surface of the sliding rod frame, and a lifting rod is vertically fixed on the top surface of the lifting frame, and a fixed disk is horizontally fixed at the top end of the lifting rod.
[0013] As a preferred solution, the second guide member includes a moving frame box, which is horizontally arranged below the slide frame, and a hole block is horizontally fixed on the top surface of the moving frame box, and the hole block is horizontally slidably connected to the slide frame, and sliding bars are horizontally fixed at both ends of the bottom surface of the moving frame box, and a rack is fixed on the bottom surface of the moving frame box, and a screw barrel plate is horizontally fixed on the top surface of the moving frame box, and the screw barrel plate is fitted with the thread of the moving screw.
[0014] As a preferred solution, the moving part includes a moving slide frame, which is slidably assembled on the slide bar, and a second motor is vertically fixed on the top surface of the moving slide frame, and a moving gear is horizontally fixed on the output end of the second motor, and the moving gear is engaged with the rack, and a steering motor is vertically fixed on the bottom surface of the moving slide frame, and a steering gear is horizontally fixed on the bottom output end of the steering motor.
[0015] As a preferred solution, the lifting component includes a steering frame, which is vertically arranged below the moving slide frame, and a rotating shaft is vertically fixed on the top surface of the steering frame, and the upper end of the rotating shaft is rotatably connected to a swivel seat, which is fixed on the bottom surface of the moving slide frame, and a driven gear is horizontally fixed on the outer side of the rotating shaft, and the driven gear is engaged with the steering gear, a lifting motor is vertically fixed on the bottom surface of the steering frame, and a lifting screw is vertically fixed at the output end of the lifting motor, a solenoid is vertically arranged below the lifting screw, and the solenoid is threadedly assembled with the lifting screw, a mounting plate is vertically fixed to the bottom end of the solenoid, and a guide rod is vertically fixed to the top surface of the mounting plate, a hole plate is fixed on the bottom surface of the steering frame, and the hole plate and the guide rod are slid through for assembly.
[0016] As a preferred solution, the air outlet part includes a cooling box, and fixing strips are horizontally fixed on the upper and lower end surfaces of the cooling box, and the fixing strips are fixed to the mounting plate by screws, and multiple fans are fixed through one end surface of the cooling box, and the other end surface of the cooling box is open, and a condensation water box is provided inside the cooling box, and guide pipes are fixed through the vertical end surfaces on both sides of the condensation water box, and the guide pipes pass through the side end surface of the cooling box and are connected with the water supply pipe, and multiple protrusions are fixed through the outer end surface of the condensation water box.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: in order to directionally cool down the data servers at different positions on the placement member during use of the present invention, the second guide member is started to translate along the X-axis direction on the first guide member, and then the movable member is started to translate along the Y-axis direction on the second guide member, thereby adjusting the horizontal position of the air outlet member from the placement member, and starting the lifting member to move vertically to drive the air outlet member to the data servers at different positions on the placement member, and starting the air outlet member to discharge air to dissipate heat for the data server, and starting the first motor at one end of the slide frame to drive the movable screw to rotate in the slide frame, and the movable screw is used to drive the second guide member to translate along the X-axis direction on the slide frame, so as to adjust the data server along the X-axis direction. The server is heat-sinked, the hole block on the top surface of the mobile frame box is sleeved on the slide frame, and the mobile screw rotates the thread to drive the screw barrel plate on the mobile frame box, driving the mobile frame box to move horizontally along the X-axis direction on the slide frame. When the rack and slide drive guide of the second guide member are guided in the Y-axis direction, the second motor is started to drive the mobile gear to rotate, and the mobile gear engages the rack to move horizontally in the Y-axis direction, driving the mobile slide frame to move horizontally on the slide of the mobile slide frame, thereby driving the mobile slide frame to move horizontally in the Y-axis direction, and adjusting the data server along the Y-axis direction to dissipate heat, start the steering motor on the bottom surface of the mobile slide frame to drive the steering gear to rotate, and the steering gear engages the driven gear on the rotating shaft, driving the rotating shaft on the steering frame to move horizontally on the mobile slide The frame bottom surface rotates, and the direction of the air outlet heat dissipation of the data server is converted along the circumferential direction, the heat dissipation position of the data server is changed, and the heat dissipation effect of the data server is improved. Later, when the data servers at different heights in the placement parts are adjusted in the vertical direction for heat dissipation, the lifting motor in the steering frame is started to drive the lifting screw to rotate in the steering frame, and the lifting screw moves vertically in the solenoid tube of the mounting plate. The guide rod on the mounting plate slides vertically in the orifice plate, driving the guide mounting plate to slide vertically on the steering frame, and switching in the vertical direction. The data servers at different heights in the placement parts are adjusted in the vertical direction for heat dissipation. In order to make the air in the air outlet part blow out, the heat dissipation effect and efficiency around the data server are increased. Fix the fixing strips on the cooling box on the mounting plate, and pass the guide pipes at both ends of the condensed water box through the side end faces of the cooling box and connect them to the water supply pipes to guide the water into the condensed water box. Then start the multiple fans at one end of the cooling box to drive external air into the cooling box. The air flows through and contacts the outer end face of the condensed water box. The heat in the air contacts the outer wall of the condensed water box, and the heat enters the water in the condensed water box. The water carries the heat and flows out from the guide pipe, thereby cooling the air. The air is discharged from the opening of the cooling box, and the cold air contacts the data server to cool the data server. The computer room can strengthen the heat dissipation effect of different equipment according to the actual heat generation of different equipment, thereby ensuring the heat dissipation efficiency of different equipment in the computer room. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the overall structure of the intelligent temperature-controlled room cooling device;
[0019] Figure 2 This is a schematic diagram of the decomposed structure of the intelligent temperature-controlled computer room cooling device;
[0020] Figure 3 This is a structural diagram of the computer room body in a disassembled state in an embodiment of the intelligent temperature-controlled computer room cooling device;
[0021] Figure 4 This is a schematic structural diagram of the air intake component in the decomposed state in an embodiment of the intelligent temperature-controlled room cooling device;
[0022] Figure 5 This is a schematic diagram of the structure of the directional cooling component in the decomposed state in the embodiment of the intelligent temperature-controlled room cooling device;
[0023] Figure 6 This is a structural diagram of the first guide member in the embodiment of the intelligent temperature-controlled room cooling device in a disassembled state;
[0024] Figure 7 This is a schematic structural diagram of the second guide member in the decomposed state in the embodiment of the intelligent temperature-controlled room cooling device;
[0025] Figure 8 This is a schematic diagram of the structure of the moving parts in the decomposed state in the embodiment of the intelligent temperature control room cooling device;
[0026] Figure 9 This is a structural diagram of the lifting component in the disassembled state in the embodiment of the intelligent temperature-controlled room cooling device;
[0027] Figure 10 This is a schematic diagram of the structure of the air outlet component in the decomposed state in the embodiment of the intelligent temperature-controlled room cooling device;
[0028] Figure 11 This is a structural diagram of the placement components in the decomposed state in an embodiment of the intelligent temperature-controlled room cooling device.
[0029] In the figure: 1. Machine room body; 11. Air intake slot; 12. Mesh; 13. Moisture-proof cotton block; 14. Fan; 2. Air intake member; 21. Water storage box; 22. Pillar; 23. Mesh frame; 24. Support frame; 3. Door; 4. Placement member; 41. Placement frame; 42. Placement mesh plate; 43. Temperature sensor; 5. Directional cooling member; 51. First guide member; 511. Sliding rod frame; 512. First motor; 513. Moving screw; 514. Fixing screw hole plate; 515. Fixing bolt; 516. Lifting frame; 517. Lifting rod; 518. Fixing plate; 52. Second guide member; 521. Moving frame box; 522. Hole block; 523. Slide bar; 524. Rack; 525. Screw plate; 53. Moving part; 531. Moving slide frame; 532. Second motor; 533. Moving gear; 534. Steering motor; 535. Steering gear; 54. Lifting part; 541. Steering frame; 542. Rotating shaft; 543. Rotating seat; 544. Driven gear; 545. Lifting motor; 546. Lifting screw; 547. Orifice plate; 548. Solenoid; 549. Guide rod; 5481. Mounting plate; 55. Air outlet part; 551. Cooling box; 552. Fixing bar; 553. Condensate box; 554. Lug; 555. Guide pipe; 556. Fan. DETAILED DESCRIPTION
[0030] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, rather than all the embodiments. The following description of at least one exemplary embodiment is actually only illustrative and is in no way intended to limit the present invention and its application or use. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or combinations thereof.
[0032] Unless otherwise specifically stated, the relative arrangement of the parts and steps, the numerical expressions and the numerical values set forth in these embodiments do not limit the scope of the present invention. At the same time, it should be understood that, for ease of description, the sizes of the various parts shown in the drawings are not drawn according to the actual proportional relationship. The techniques, methods and equipment known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the techniques, methods and equipment should be considered as part of the authorization specification. In all examples shown and discussed here, any specific values should be interpreted as being merely exemplary and not as limiting. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that similar numbers and letters represent similar items in the following figures, and therefore, once an item is defined in one figure, it does not need to be further discussed in subsequent figures.
[0033] In the description of the present invention, it should be understood that the directions or positional relationships indicated by directional words such as "front, back, up, down, left, right", "horizontal, vertical, perpendicular, horizontal" and "top, bottom" are usually based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description. Unless otherwise specified, these directional words do not indicate or imply that the device or element referred to must have a specific direction or be constructed and operated in a specific direction. Therefore, they cannot be understood as limiting the scope of protection of the present invention; the directional words "inside and outside" refer to the inside and outside relative to the outline of each component itself.
[0034] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.
[0035] In addition, it should be noted that the use of terms such as "first" and "second" to limit components is only for the convenience of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be understood as limiting the scope of protection of the present invention.
[0036] like Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, an intelligent temperature-controlled cooling device for a computer room comprises a computer room body 1, an air intake member 2, a placement member 4 and a directional cooling member 5. The front face of the computer room body 1 is opened, and a door 3 is rotatably connected to the opening of the computer room body 1. The air intake member 2 is connected and assembled on the bottom surface of the computer room body 1. A directional cooling member 5 is provided on the upper inner side of the computer room body 1, and two placement members 4 are symmetrically provided on both sides of the inner bottom surface of the computer room body 1. A fan 14 is fixed through the top surface of the computer room body 1. When in use, the door 3 at the opening of the computer room body 1 is opened, and multiple data servers are placed vertically in the placement member 4 in sequence, and then the data servers at different positions on the placement member 4 are detected later. When there is heat around, according to the amount of heat on the data server, the directional cooling component 5 is started to move horizontally and vertically to reach the data server with abnormal heat on the placement component 4, and the directional cooling component 5 is started to cool the data server with abnormal heat in a targeted manner, so that a fixed-point heat dissipation device for the data server with abnormal heat at different positions of the placement component 4 is set in the computer room body 1, so that the computer room body 1 can be moved to the appropriate data server with abnormal heat according to the actual heat generation of different equipment, and the equipment is cooled at a fixed point. The addition of the directional cooling component 5 ensures the heat dissipation efficiency of different equipment in the computer room and improves the safety of the heat dissipation of the equipment in the computer room body 1.
[0037] In one embodiment, Figure 2 and 3 As shown, an air intake slot 11 is provided on the bottom surface of the computer room body 1, and multiple air intake slots 11 are provided horizontally. A mesh 12 is horizontally fixed on the upper side of the inner part of the air intake slot 11, and a moisture-proof cotton block 13 is filled on the lower side of the inner part of the air intake slot 11. During use, the fan 14 on the top surface of the computer room body 1 is started to rotate. The rotation of the fan 14 forces the air in the computer room body 1 to be discharged upward into the computer room body 1. The air carries the heat generated by the data server and is discharged. The air outside the computer room body 1 enters from the air intake slot 11 on the bottom surface of the computer room body 1. The air passes through the mesh 12 and the moisture-proof cotton block 13 to filter and remove dust and moisture in the air, ensuring that the air entering the computer room body 1 is clean and dry, which is beneficial for the air to cool the data server.
[0038] In one embodiment, Figure 3 and 4As shown, the air inlet 2 includes a water storage box 21, which is arranged below the machine room body 1, and the top surface of the water storage box 21 is opened, the interior of the water storage box 21 is filled with coolant, and a mesh frame 23 is vertically connected and fixed on the top surface of the water storage box 21, and a plurality of pillars 22 are vertically fixed on the bottom surface of the water storage box 21, and a support frame 24 is vertically connected and fixed on the top surface of the mesh frame 23, and the top surface of the support frame 24 is fixed on the bottom surface of the machine room body 1. When in use, the air outside the machine room body 1 is affected by the negative pressure inside the machine room body 1, and the air outside the machine room body 1 The air flows in from the mesh frame 23 of the water storage box 21, and the inflowing air flows through the coolant inside the water storage box 21. The air contacts the coolant inside the water storage box 21. The heat in the air causes the coolant inside the water storage box 21 to evaporate and absorb the heat in the air, thereby cooling the air and improving the air's heat absorption capacity, so that the cooled air can enter the interior of the computer room body 1 later, thereby improving the heat dissipation effect of the data server inside the computer room body 1. The cooled air enters upward through the air intake slot 11 on the bottom surface of the computer room body 1 to cool the data server.
[0039] In one embodiment, Figure 2 and 11 As shown, the placement component 4 includes a placement frame 41, which is vertically fixed on the inner bottom surface of the computer room body 1, and a placement mesh plate 42 is horizontally fixed inside the placement frame 41, and multiple placement mesh plates 42 are horizontally fixed along the vertical direction, and the ends of the multiple placement mesh plates 42 are vertically penetrated and fixed with a temperature sensor 43 with model number MurataNCP15XH103F03RC. During use, the placement frame 41 in the placement component 4 is vertically fixed on the bottom surface of the computer room body 1, and then the multiple placement mesh plates 42 are horizontally fixed on the inner wall of the placement frame 41 along the vertical direction, and multiple types of different data servers are respectively inserted and placed on the placement mesh plates 42. The heat generated by the multiple types of different data servers during operation is detected by the temperature sensor 43 on the placement mesh plate 42, and the detected data is transmitted to the control system. The control system controls the directional cooling component 5 to cool the data servers on the different placement mesh plates 42 on the placement component 4, thereby accurately cooling the data servers with abnormal temperatures.
[0040] In one embodiment, Figure 2 and 5As shown, the directional cooling member 5 includes a first guide member 51, a second guide member 52, a moving member 53, a lifting member 54 and an air outlet member 55. The first guide member 51 is horizontally fixed on the internal top surface of the machine room body 1, and the second guide member 52 is horizontally arranged below the first guide member 51, and the first guide member 51 and the second guide member 52 are arranged in a cross shape along the vertical direction. The moving member 53 is arranged below the second guide member 52, and the lifting member 54 is vertically arranged on the bottom surface of the moving member 53. The bottom end of the lifting member 54 is horizontally arranged. An air outlet piece 55 is installed. During use, in order to carry out cooling treatment on data servers at different positions on the placement piece 4 in a targeted manner, the second guide piece 52 is started to translate along the X-axis direction on the first guide piece 51, and then the moving piece 53 is started to translate along the Y-axis direction on the second guide piece 52, thereby adjusting the horizontal position of the air outlet piece 55 from the placement piece 4 laterally, and the lifting piece 54 is started to move vertically to drive the air outlet piece 55 to the data servers at different positions on the placement piece 4, and the air outlet piece 55 is started to exhaust air to dissipate heat for the data servers.
[0041] In one embodiment, Figure 5 and 6 As shown, the first guide member 51 includes a sliding rod frame 511 and a movable screw rod 513. The sliding rod frame 511 is horizontally arranged on the upper inner side of the machine room body 1, and the two ends of the sliding rod frame 511 are respectively fixed with fixed screw hole plates 514, and the fixed screw hole plates 514 are fixed to the wall of the machine room body 1 through fixing bolts 515. One end of the sliding rod frame 511 is horizontally fixed with a first motor 512, and the movable screw rod 513 is horizontally rotatably connected to the two ends of the sliding rod frame 511, and one end of the movable screw rod 513 is fixedly connected to the output end of the first motor 512. A lifting frame 516 is horizontally fixed on the top surface of the sliding rod frame 511, and a lifting rod 517 is vertically fixed on the top surface of the lifting frame 516, and the lifting rod 517 is fixed to the top surface of the lifting frame 516. The top of the slide frame 511 is fixed with a fixed plate 518 horizontally. When installing the first guide member 51 during use, the top fixed plate 518 of the lifting rod 517 on the lifting frame 516 of the slide frame 511 is fixed to the inner top surface of the computer room body 1 through fixing nails. At the same time, the fixing screw hole plates 514 at both ends of the slide frame 511 are fixed to the wall of the computer room body 1 through fixing bolts 515 to complete the horizontal fixation of the slide frame 511. The first motor 512 at one end of the slide frame 511 is started to drive the moving screw 513 to rotate in the slide frame 511. The moving screw 513 is used to drive the second guide member 52 to translate along the X-axis direction on the slide frame 511, and the heat dissipation of the data server is adjusted along the X-axis direction.
[0042] In one embodiment, Figure 5 、 Figure 6 and Figure 7As shown, the second guide member 52 includes a moving frame box 521, which is horizontally arranged below the slide frame 511, and a hole block 522 is horizontally fixed on the top surface of the moving frame box 521. The hole block 522 is horizontally slidably connected to the slide frame 511. Slide bars 523 are horizontally fixed at both ends of the bottom surface of the moving frame box 521, and a rack 524 is fixed on the bottom surface of the moving frame box 521. A screw plate 525 is horizontally fixed on the top surface of the moving frame box 521, and the screw plate 525 is threadedly engaged with the moving screw 513. During use, the hole block 522 on the top surface of the mobile frame box 521 is sleeved on the slide frame 511, and the mobile screw 513 rotates the thread to drive the screw barrel plate 525 on the mobile frame box 521, driving the mobile frame box 521 to move horizontally along the X-axis direction on the slide frame 511. At the same time, the rack 524 and the slide 523 on the mobile frame box 521 are used to later drive the moving part 53 to move horizontally along the Y-axis direction under the driving guidance of the rack 524 and the slide 523 of the second guide part 52, and adjust the heat dissipation of the data server along the Y-axis direction.
[0043] In one embodiment, Figure 5 、 Figure 6 、 Figure 7 and Figure 8 As shown, the moving member 53 includes a moving slide frame 531, which is slidably assembled on the slide bar 523, and a second motor 532 is vertically fixed to the top surface of the moving slide frame 531, and a moving gear 533 is horizontally fixed to the output end of the second motor 532, and the moving gear 533 is meshed with the rack 524, and a steering motor 534 is vertically fixed to the bottom surface of the moving slide frame 531, and a steering gear 535 is horizontally fixed to the bottom output end of the steering motor 534. When in use, the rack 524 and the slide bar 523 of the second guide member 52 are driven and guided, when the second guide member 52 is translated along the Y-axis direction, the second motor 532 is started to drive the moving gear 533 to rotate, and the moving gear 533 engages the rack 524 and translates along the Y-axis direction, driving the moving slide frame 531 to move horizontally on the slide bar 523 of the moving slide frame 531, thereby driving the moving slide frame 531 to translate along the Y-axis direction, and adjusting the data server along the Y-axis direction for heat dissipation.
[0044] In one embodiment, Figure 8 and 9As shown, the lifting member 54 includes a steering frame 541, which is vertically arranged below the moving slide frame 531, and a rotating shaft 542 is vertically fixed on the top surface of the steering frame 541, and the upper end of the rotating shaft 542 is rotatably connected to a rotating seat 543, and the rotating seat 543 is fixed to the bottom surface of the moving slide frame 531, and a driven gear 544 is horizontally fixed on the outer side of the rotating shaft 542, and the driven gear 544 is engaged with the steering gear 535, and a lifting motor is vertically fixed on the bottom surface of the steering frame 541. 545, and the output end of the lifting motor 545 is vertically fixed with a lifting screw 546, and a screw tube 548 is vertically provided below the lifting screw 546, and the screw tube 548 is threadedly assembled and connected to the lifting screw 546, and the bottom end of the screw tube 548 is vertically fixed with a mounting plate 5481, and a guide rod 549 is vertically fixed on the top surface of the mounting plate 5481, and a hole plate 547 is fixed on the bottom surface of the steering frame 541, and the hole plate 547 and the guide rod 549 are slidably assembled. In order to rotate the steering frame 541 during use, The steering motor 534 on the bottom of the movable sliding frame 531 is started to drive the steering gear 535 to rotate. The steering gear 535 engages the driven gear 544 on the rotating shaft 542, driving the rotating shaft 542 on the steering frame 541 to rotate on the bottom of the movable sliding frame 531, and converting the heat dissipation direction of the data server along the circumferential direction, changing the heat dissipation position of the data server, and improving the heat dissipation effect of the data server. Later, when adjusting the data servers at different heights in the placement component 4 for heat dissipation in the vertical direction, the lifting motor 545 in the steering frame 541 is started to drive the lifting screw 546 to rotate in the steering frame 541. The lifting screw 545 moves vertically in the solenoid 548 of the mounting plate 5481, and the guide rod 549 on the mounting plate 5481 slides vertically in the orifice plate 547, driving the guide mounting plate 5481 to slide vertically on the steering frame 541, and switching in the vertical direction to adjust the data servers at different heights in the placement component 4 for heat dissipation.
[0045] In one embodiment, Figure 9 and 10As shown, the air outlet member 55 includes a cooling box 551, and fixing bars 552 are horizontally fixed on the upper and lower end surfaces of the cooling box 551, and the fixing bars 552 are fixed to the mounting plate 5481 by screws, and a plurality of fans 556 are fixed through one end surface of the cooling box 551, and the other end surface of the cooling box 551 is open, and a condensation water box 553 is provided inside the cooling box 551, and a guide pipe 555 is fixed through the vertical end surfaces of both sides of the condensation water box 553, and the guide pipe 555 passes through the side end surface of the cooling box 551 and is connected to the water supply pipe, and a plurality of fins 554 are fixed through the outer end surface of the condensation water box 553, so that the air in the air outlet member 55 can be blown out to increase the heat dissipation effect around the data server. To improve the effect and efficiency, the fixing strip 552 on the cooling box 551 is fixed on the mounting plate 5481, and the guide pipes 555 at both ends of the condensed water box 553 are passed through the side end faces of the cooling box 551 and connected with the water supply pipe to guide the water into the condensed water box 553. Then, the multiple fans 556 at one end of the cooling box 551 are started to drive the external air into the cooling box 551. The air flows through and contacts the outer end face of the condensed water box 553, and the heat in the air contacts the outer wall of the condensed water box 553. The heat enters the water in the condensed water box 553, and the water carries the heat out from the guide pipe 555, thereby cooling the air. The air is discharged from the opening of the cooling box 551, and the cold air contacts the data server to cool the data server.
[0046] In this embodiment, during use, the door 3 at the opening of the computer room body 1 is opened, the placement frame 41 in the placement member 4 is vertically fixed on the bottom surface of the computer room body 1, and then multiple placement mesh panels 42 are horizontally fixed on the inner wall of the placement frame 41 along the vertical direction, and multiple types of different data servers are respectively inserted and placed on the placement mesh panels 42. The heat generated by the multiple types of different data servers during operation is detected by the temperature sensor 43 on the placement mesh panels 42, and the detected data is transmitted to the control system. The control system controls the directional cooling member 5 to cool the data servers on the different placement mesh panels 42 on the placement member 4, and starts the fan 14 on the top surface of the computer room body 1 to rotate. The rotation of the fan 14 forces the air in the computer room body 1 to be discharged upward from the computer room body 1. In the process, the air outside the computer room body 1 flows in from the mesh frame 23 of the water storage box 21, and the inflowing air flows through the coolant inside the water storage box 21. The air contacts the coolant inside the water storage box 21. The heat in the air causes the coolant inside the water storage box 21 to evaporate and absorb the heat in the air, thereby cooling the air and improving the air's heat absorption capacity. The air carries the heat generated by the data server and is discharged. The air outside the computer room body 1 enters from the air intake groove 11 on the bottom surface of the computer room body 1. The air passes through the mesh 12 and the moisture-proof cotton block 13 to filter and remove dust and moisture in the air. Then, when the heat around the data servers at different positions on the placement piece 4 is detected later, according to the amount of heat on the data servers, in order to direct the data servers at different positions on the placement piece 4 during use, The server is cooled, the second guide member 52 is started to translate along the X-axis on the first guide member 51, and then the moving member 53 is started to translate along the Y-axis on the second guide member 52, thereby adjusting the horizontal position of the air outlet member 55 from the placement member 4, and the lifting member 54 is started to move vertically to drive the air outlet member 55 to the data servers at different positions on the placement member 4, and the air outlet member 55 is started to discharge air to dissipate heat for the data server, and the first motor 512 at one end of the slide frame 511 is started to drive the moving screw 513 to rotate in the slide frame 511, and the moving screw 513 is used to drive the second guide member 52 to translate along the X-axis on the slide frame 511, and adjust the heat dissipation of the data server along the X-axis direction, and move the frame box 521 on the top surface. The hole block 522 is sleeved on the slide frame 511, and the moving screw 513 rotates the thread to drive the screw plate 525 on the moving frame box 521, driving the moving frame box 521 to move horizontally along the X-axis direction on the slide frame 511. When the rack 524 and the slide bar 523 of the second guide member 52 are driven and guided to move horizontally along the Y-axis direction, the second motor 532 is started to drive the moving gear 533 to rotate, and the moving gear 533 engages the rack 524 and moves horizontally along the Y-axis, driving the moving slide frame 531 to move horizontally on the slide bar 523 of the moving slide frame 531, thereby driving the moving slide frame 531 to move horizontally along the Y-axis direction. The data server is adjusted along the Y-axis direction to perform heat dissipation treatment, and the steering motor 534 on the bottom surface of the moving slide frame 531 is started to drive the steering gear 535 to rotate.The steering gear 535 engages with the driven gear 544 on the rotating shaft 542, driving the rotating shaft 542 on the steering frame 541 to rotate on the bottom surface of the movable sliding frame 531, converting the exhaust heat dissipation direction of the data server along the circumferential direction, changing the heat dissipation position of the data server, and improving the heat dissipation effect of the data server. Later, when adjusting the data servers at different heights in the placement component 4 for heat dissipation in the vertical direction, the lifting motor 545 in the steering frame 541 is started to drive the lifting screw 546 to rotate in the steering frame 541, and the lifting screw 545 moves vertically in the solenoid 548 of the mounting plate 5481. The guide rod 549 on the mounting plate 5481 slides vertically in the orifice plate 547, driving the guide mounting plate 5481 to slide vertically on the steering frame 541, and switching in the vertical direction to adjust the different heights of the placement component 4 in the vertical direction. To dissipate heat from the data servers, and to blow out the air in the air outlet 55 to increase the heat dissipation effect and efficiency around the data servers, the fixing strips 552 on the cooling box 551 are fixed to the mounting plate 5481. At the same time, the guide pipes 555 at both ends of the condensed water box 553 are passed through the side end faces of the cooling box 551 and connected to the water supply pipe, directing water into the condensed water box 553. Then, multiple fans 556 at one end of the cooling box 551 are started to drive external air into the cooling box 551. The air flows through and contacts the outer end face of the condensed water box 553. The heat in the air contacts the outer wall of the condensed water box 553, and the heat enters the water in the condensed water box 553. The water carries the heat and flows out of the guide pipes 555, thereby dissipating heat from the air. The air is then discharged from the opening of the cooling box 551, and the cold air contacts the data servers, dissipating heat from the data servers.
[0047] The above are preferred embodiments of the present invention. Those skilled in the art to which the present invention belongs can also change and modify the above embodiments. Therefore, the present invention is not limited to the above specific embodiments. Any obvious improvements, replacements or modifications made by those skilled in the art on the basis of the present invention fall within the scope of protection of the present invention.
Claims
1. An intelligent temperature-controlled cooling device for a computer room, characterized in that: The invention comprises a machine room body (1), an air intake member (2), a placement member (4) and a directional cooling member (5); the front end face of the machine room body (1) is provided with an opening, and a door (3) is rotatably connected to the opening of the machine room body (1); the air intake member (2) is connected and assembled on the bottom surface of the machine room body (1); the directional cooling member (5) is provided on the upper inner side of the machine room body (1), and two placement members (4) are symmetrically provided on both sides of the inner bottom surface of the machine room body (1); and a fan (14) is fixedly passed through the top surface of the machine room body (1).
2. The intelligent temperature-controlled cooling device for a computer room according to claim 1, characterized in that: An air intake slot (11) is provided on the bottom surface of the machine room body (1), and a plurality of air intake slots (11) are provided transversely therethrough. A mesh (12) is horizontally fixed on the upper side of the interior of the air intake slot (11), and a moisture-proof cotton block (13) is filled on the lower side of the interior of the air intake slot (11).
3. The intelligent temperature-controlled cooling device for a computer room according to claim 2, characterized in that: The air inlet member (2) includes a water storage box (21), the water storage box (21) is arranged below the machine room body (1), and the top surface of the water storage box (21) is opened, the interior of the water storage box (21) is filled with cooling liquid, and a mesh frame (23) is vertically connected and fixed on the top surface of the water storage box (21), and a plurality of pillars (22) are vertically fixed on the bottom surface of the water storage box (21), a support frame (24) is vertically connected and fixed on the top surface of the mesh frame (23), and the top surface of the support frame (24) is fixed on the bottom surface of the machine room body (1).
4. The intelligent temperature-controlled cooling device for a computer room according to claim 1, characterized in that: The placement member (4) includes a placement frame (41), the placement frame (41) is vertically fixed on the inner bottom surface of the machine room body (1), and a placement mesh plate (42) is horizontally fixed inside the placement frame (41), and multiple placement mesh plates (42) are horizontally fixed along the vertical direction, and temperature sensors (43) are vertically penetrated and fixed at the ends of the multiple placement mesh plates (42).
5. The intelligent temperature-controlled cooling device for a computer room according to claim 1, characterized in that: The directional cooling element (5) comprises a first guide element (51), a second guide element (52), a moving element (53), a lifting element (54) and an air outlet element (55), wherein the first guide element (51) is horizontally fixed on the inner top surface of the machine room body (1), and the second guide element (52) is horizontally arranged below the first guide element (51), and the first guide element (51) and the second guide element (52) are arranged in a cross shape along the vertical direction, the moving element (53) is arranged below the second guide element (52), and the lifting element (54) is vertically arranged on the bottom surface of the moving element (53), and the air outlet element (55) is horizontally assembled at the bottom end of the lifting element (54).
6. The intelligent temperature-controlled cooling device for a computer room according to claim 5, characterized in that: The first guide member (51) includes a slide frame (511) and a movable screw rod (513). The slide frame (511) is horizontally arranged on the upper inner side of the machine room body (1), and fixed screw hole plates (514) are respectively fixed at both ends of the slide frame (511). The fixed screw hole plates (514) are fixed to the wall of the machine room body (1) through fixing bolts (515). A first motor (512) is horizontally fixed at one end of the slide frame (511). The movable screw rod (513) is horizontally rotatably connected to both ends of the slide frame (511), and one end of the movable screw rod (513) is fixedly connected to the output end of the first motor (512). A lifting frame (516) is horizontally fixed on the top surface of the slide frame (511), and a lifting rod (517) is vertically fixed on the top surface of the lifting frame (516), and a fixed disk (518) is horizontally fixed at the top end of the lifting rod (517).
7. The intelligent temperature-controlled cooling device for a computer room according to claim 6, characterized in that: The second guide member (52) includes a movable frame box (521), the movable frame box (521) is horizontally arranged below the slide frame (511), and a hole block (522) is horizontally fixed on the top surface of the movable frame box (521), and the hole block (522) is horizontally slidably connected to the slide frame (511), both ends of the bottom surface of the movable frame box (521) are horizontally fixed with a slide bar (523), and a rack (524) is fixed on the bottom surface of the movable frame box (521), and a screw barrel plate (525) is horizontally fixed on the top surface of the movable frame box (521), and the screw barrel plate (525) is threadedly fitted with the movable screw rod (513).
8. The intelligent temperature-controlled cooling device for a computer room according to claim 7, characterized in that: The movable member (53) includes a movable sliding frame (531), the movable sliding frame (531) is slidably assembled on the slide bar (523), and a second motor (532) is vertically fixed on the top surface of the movable sliding frame (531), and a movable gear (533) is horizontally fixed on the output end of the second motor (532), and the movable gear (533) is meshed with the rack (524), and a steering motor (534) is vertically fixed on the bottom surface of the movable sliding frame (531), and a steering gear (535) is horizontally fixed on the bottom output end of the steering motor (534).
9. The intelligent temperature-controlled cooling device for a computer room according to claim 8, characterized in that: The lifting member (54) includes a steering frame (541), which is vertically arranged below the movable sliding frame (531), and a rotating shaft (542) is vertically fixed on the top surface of the steering frame (541), and the upper end of the rotating shaft (542) is rotatably connected to a rotating seat (543), and the rotating seat (543) is fixed to the bottom surface of the movable sliding frame (531), and a driven gear (544) is horizontally fixed on the outer side of the rotating shaft (542), and the driven gear (544) is engaged with the steering gear (535). The bottom surface of the steering frame (541) is vertically fixed to the rotating shaft (542). A lifting motor (545) is fixed, and a lifting screw (546) is vertically fixed to the output end of the lifting motor (545), a screw tube (548) is vertically arranged below the lifting screw (546), and the screw tube (548) and the lifting screw (546) are threadedly assembled and connected, a mounting plate (5481) is vertically fixed to the bottom end of the screw tube (548), and a guide rod (549) is vertically fixed on the top surface of the mounting plate (5481), a hole plate (547) is fixed on the bottom surface of the steering frame (541), and the hole plate (547) and the guide rod (549) are assembled by sliding through.
10. The intelligent temperature-controlled cooling device for a computer room according to claim 9, characterized in that: The air outlet member (55) includes a cooling box (551), and fixing strips (552) are horizontally fixed on both upper and lower end surfaces of the cooling box (551), and the fixing strips (552) are fixed to the mounting plate (5481) by screws, and a plurality of fans (556) are fixed through one end surface of the cooling box (551), and the other end surface of the cooling box (551) is open, and a condensation water box (553) is provided inside the cooling box (551), and a guide pipe (555) is fixed through the vertical end surfaces on both sides of the condensation water box (553), and the guide pipe (555) passes through the side end surface of the cooling box (551) and is connected to the water supply pipe, and a plurality of protrusions (554) are fixed through the outer end surface of the condensation water box (553).
Citation Information
Patent Citations
Communication machine room cooling device
CN213244712U
Cooling mechanism for communication machine room
CN219395408U