Fluorine pump system all-in-one machine
By designing an all-in-one fluorine pump system, the problem of low cooling and heat dissipation efficiency of the indoor baseband processing unit was solved, a high-efficiency and low-cost cooling effect was achieved, the equipment structure was simplified and the floor space was reduced.
Patent Information
- Application Number
- CN202422735834.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-08
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-08
AI Technical Summary
Existing cooling and heat dissipation technologies for indoor baseband processing units have problems such as low heat dissipation efficiency, complex equipment, low integration, large floor space and high cost.
A fluorine pump system all-in-one is designed, including a frame, a liquid tank system, an inlet system, an outlet system and a supporting management system. By embedding the liquid tank system in the upper part of the frame, arranging the inlet and outlet systems in the lower part of the frame, and arranging the supporting management system in the first space, immersion liquid cooling is achieved, the structure is simplified, and the integration and heat dissipation efficiency are improved.
The heat dissipation efficiency is improved, the floor space and equipment cost are reduced, the structural design is simplified, and efficient cooling of the indoor baseband processing unit is achieved.
Smart Images

Figure CN223364444U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heat dissipation of indoor baseband processing units, in particular to an integrated fluorine pump system. Background Art
[0002] The indoor baseband processing unit (BBU) generates a lot of heat during use. In order to ensure the performance of the indoor baseband processing unit, the indoor baseband processing unit needs to be cooled and heat-dissipated.
[0003] To cool and dissipate heat from the indoor baseband processing unit, the traditional approach mainly uses a cold plate method, that is, the heat of the indoor baseband processing unit is transferred to a refrigerant (such as cooling water) through a fluorinated liquid, and the refrigerant transfers the heat to a distant place for further dissipation. Due to the non-contact and indirect heat dissipation, the heat dissipation efficiency is low, and there are many supporting equipment (such as water tanks and water pipes), resulting in a large footprint and high equipment costs. In order to overcome the shortcomings of the cold plate method, immersion liquid cooling technology is currently also used, that is, the indoor baseband processing unit is immersed in coolant, and the heat is discharged through the flow of coolant. However, the structural design of the existing immersion liquid cooling equipment is relatively complex, the integration level is low, and the supporting management system (passive wavelength division module and MPO component) of the indoor baseband processing unit is not integrated. Utility Model Content
[0004] The technical problem to be solved by the utility model is to overcome the deficiencies in the prior art and provide a fluorine pump system all-in-one with simple structural design, high integration, high heat dissipation efficiency, small footprint and low equipment cost.
[0005] The technical solution adopted by the utility model to solve its technical problems is: a fluorine pump system all-in-one machine, including a frame, an upper cover arranged at the top of the frame, a side door installed on the right side of the frame, a side panel installed on the left side of the frame and door frames installed on the front and rear sides of the frame respectively, and also including a liquid tank system, an inlet system, an outlet system and a supporting management system. The liquid tank system is embedded in the upper part of the frame, and the top of the liquid tank system is covered by the upper cover. A first space is formed between the right side of the frame and the side door, and a second space is formed between the left side of the frame and the side panel. The inlet system and the outlet system are both arranged in the lower part of the frame, one end of the inlet system and one end of the outlet system are respectively connected to the liquid tank system through the second space, and the supporting management system is arranged in the first space.
[0006] Furthermore, the liquid tank system includes a tank body, a baffle, a partition and a distribution pipe. The tank body is a hollow structure with an opening at the top. The baffle is arranged in the inner cavity of the tank body. There are two baffles, which form cavities with the front and rear side walls of the tank body respectively. A plurality of through holes are respectively opened on the opposite sides of the two baffles. There are several partitions, which are vertically arranged in the cavity to divide the cavity into several chambers. A waist hole is opened on the partition. The distribution pipe is horizontally arranged in the cavity and passes through the partition. Several openings corresponding to the chambers are opened on the distribution pipe, and the left end of the distribution pipe extends out of the tank body.
[0007] Furthermore, the inlet system includes an inlet pipeline, a first pressure transmitter, a first temperature transmitter, a first pump assembly, a first electric ball valve, a second pressure transmitter, a filter and a second temperature transmitter. The inlet pipeline is arranged at the lower part of the frame, one end of the inlet pipeline protrudes from the door frame on the rear side of the frame, and the other end extends into the second space and is connected to one of the distribution pipes. The first pressure transmitter, the first temperature transmitter, the first pump assembly, the first electric ball valve, the second pressure transmitter, the filter and the second temperature transmitter are installed on the inlet pipeline in sequence along the flow direction of the medium.
[0008] Furthermore, the inlet system also includes a spare pipeline, one end of which is connected to the inlet pipeline between the first temperature transmitter and the first pump assembly, and the other end of which is connected to the inlet pipeline between the first electric ball valve and the second pressure transmitter, and the second pump assembly and the second electric ball valve are installed in sequence on the spare pipeline along the medium flow direction.
[0009] Furthermore, the inlet system further includes a bypass line, one end of which is connected to the inlet line between the second pressure transmitter and the filter, and the other end of which is connected to the inlet line between the filter and the second temperature transmitter.
[0010] Furthermore, the outlet system includes an outlet pipe and a manual valve. The outlet pipe is arranged at the lower part of the frame. One end of the outlet pipe protrudes from the door frame on the rear side of the frame, and the other end extends into the second space and is connected to another distribution pipe. The manual valve is installed on the outlet pipe.
[0011] Furthermore, the supporting management system includes a passive wavelength division module and an MPO component, and the passive wavelength division module and the MPO component are both installed on the right side of the frame, and the passive wavelength division module is arranged above the MPO component.
[0012] Furthermore, four corners of the bottom end of the frame are respectively installed with Forma wheels, and a decorative cover is installed on the right part of the top end.
[0013] Furthermore, the rear side of the upper cover is connected to the door frame on the rear side of the frame through a hinge, and the front side is connected to the door frame on the front side of the frame through a quick release part, and a handle is installed in the middle of the front side of the upper cover.
[0014] Furthermore, a disassembly door is installed on the door frame.
[0015] The beneficial effects of the utility model are:
[0016] (1) The utility model improves the integration of the equipment by embedding the liquid tank system in the upper part of the frame, the inlet system and the outlet system in the lower part of the frame, and the supporting management system is arranged in the first space, thereby realizing the integration of the supporting management system of the indoor baseband processing unit, reducing the occupied area, and reducing the cost.
[0017] (2) The utility model realizes immersion liquid cooling of the indoor baseband processing unit through the coordinated arrangement of the liquid tank system, the inlet system and the outlet system. The structural design is simple, the heat dissipation efficiency is improved, and the floor space and equipment cost are further reduced. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described below with reference to the accompanying drawings and implementation examples.
[0019] Figure 1 It is a front side schematic diagram of the present utility model;
[0020] Figure 2 It is a schematic diagram of the rear side of the utility model;
[0021] Figure 3 It is a schematic diagram of the frame in the utility model;
[0022] Figure 4 It is a schematic diagram of the liquid tank system in the utility model;
[0023] Figure 5 It is a schematic diagram of the tank body in the utility model;
[0024] Figure 6 It is a schematic diagram of the baffle in the utility model;
[0025] Figure 7 It is a schematic diagram of the partition in the utility model;
[0026] Figure 8 This is a schematic diagram of the import system in this utility model Figure 1 ;
[0027] Figure 9 This is a schematic diagram of the import system in this utility model Figure 2 ;
[0028] Figure 10It is a schematic diagram of the outlet system in the utility model.
[0029] In the figure: 100, frame; 200, upper cover; 300, side door; 400, side panel; 500, door frame; 600, liquid tank system; 610, tank body; 620, baffle; 621, through hole; 630, partition; 631, waist hole; 640, distribution pipe; 641, opening; 650, cavity; 700, inlet system; 710, inlet pipeline; 720, first pressure transmitter; 730, first temperature transmitter; 740, first pump assembly; 750, first electric Moving ball valve; 760, second pressure transmitter; 770, filter; 780, second temperature transmitter; 790, spare pipeline; 791, bypass pipeline; 800, outlet system; 810, outlet pipeline; 820, manual valve; 900, supporting management system; 910, passive wavelength division module; 920, MPO component; 1000, Forma wheel; 1100, decorative cover; 1200, hinge; 1300, quick-release parts; 1400, handle; 1500, disassembly door. DETAILED DESCRIPTION
[0030] The present invention will now be further described with reference to the accompanying drawings, which are simplified schematic diagrams illustrating the basic structure of the present invention in a schematic manner, and thus only show components related to the present invention.
[0031] like Figures 1-4As shown, a fluorine pump system integrated machine includes a frame 100, an upper cover 200 arranged at the top of the frame 100, a side door 300 installed on the right side of the frame 100, a side panel 400 installed on the left side of the frame 100, and door frames 500 respectively installed on the front and rear sides of the frame 100, and also includes a liquid tank system 600, an inlet system 700, an outlet system 800 and a supporting management system 900. The liquid tank system 600 is embedded in the upper part of the frame 100, and its top is covered by the upper cover 200. A first space is formed between the right side of the frame 100 and the side door 300, and a second space is formed between the left side and the side panel 400. The inlet system 700 and the outlet system 800 are both arranged in the lower part of the frame 100. One end of the inlet system 700 and one end of the outlet system 800 are respectively connected to the liquid tank system 600 through the second space, and the supporting management system 900 is arranged in the first space. By embedding the liquid tank system 600 within the upper portion of the frame 100, the inlet system 700 and the outlet system 800 within the lower portion of the frame 100, and locating the supporting management system 900 within the first space, the device's integration is improved, enabling integration of the supporting management system 900 for the indoor baseband processing unit, reducing floor space and costs. Furthermore, the coordinated arrangement of the liquid tank system 600, the inlet system 700, and the outlet system 800 enables immersion liquid cooling of the indoor baseband processing unit, resulting in a simple structural design, improved heat dissipation efficiency, and further reduced floor space and equipment costs.
[0032] Specifically, the frame 100 is in the shape of an "I"; the rear side of the upper cover 200 is connected to the door frame 500 on the rear side of the frame 100 through a hinge 1200, and its front side is connected to the door frame 500 on the front side of the frame 100 through a quick-release part 1300, which is convenient for opening and closing the upper cover 200. A handle 1400 is installed in the middle of the front side of the upper cover 200, and the quick-release part 1300 is a prior art; a touch screen is installed on the side door 300; a disassembly door 1500 is installed on the door frame 500, which is convenient for maintenance inside the equipment; the supporting management system 900 includes a passive wavelength division module 910 and an MPO component 920, which are both installed on the right side of the frame 100, and the passive wavelength division module 910 is arranged above the MPO component 920. The supporting management system 900 is a prior art.
[0033] like Figure 3-Figure 7As shown, the liquid tank system 600 includes a tank body 610, a baffle 620, a partition 630 and a distribution pipe 640. The tank body 610 is a hollow structure with an opening at the top. The baffle 620 is arranged in the inner cavity of the tank body 610. The baffle 620 is composed of two pieces, which respectively form a cavity 650 with the front and rear side walls of the tank body 610. A plurality of through holes 621 are respectively provided on the opposite sides of the two baffles 620. The partition 630 is composed of several pieces, which are vertically arranged in the cavity 650 to divide the cavity 650 into several chambers. The partition 630 is provided with a waist hole 631 to realize the connection between adjacent chambers. The distribution pipe 640 is horizontally arranged in the cavity 650 and passes through the baffle 630. The distribution pipe 640 is provided with several openings 641 corresponding to the chambers, and the left end of the distribution pipe 640 extends out of the tank body 610. Specifically, the indoor baseband processing unit is installed within the inner cavity of the tank 610 and positioned between two baffles 620. Two distribution pipes 640 are provided: the distribution pipe 640 on the front side of the tank 610 is located at the top of the cavity 650 and communicates with the inlet system 700, while the distribution pipe 640 on the rear side of the tank 610 is located at the bottom of the cavity 650 and communicates with the outlet system 800. The arrangement of the baffles 620, partitions 630, and distribution pipes 640 ensures that the coolant flows uniformly within the tank 610, thereby achieving uniform contact with the indoor baseband processing unit, thereby ensuring effective cooling and heat dissipation.
[0034] like Figure 4 、 Figure 8 and Figure 9As shown, the inlet system 700 includes an inlet pipeline 710, a first pressure transmitter 720, a first temperature transmitter 730, a first pump assembly 740, a first electric ball valve 750, a second pressure transmitter 760, a filter 770 and a second temperature transmitter 780. The inlet pipeline 710 is arranged at the lower part of the frame 100, one end of the inlet pipeline 710 protrudes from the door frame 500 on the rear side of the frame 100, and the other end thereof extends into the second space and is connected to one of the distribution pipes 640. The first pressure transmitter 720, the first temperature transmitter 730, the first pump assembly 740, the first electric ball valve 750, the second pressure transmitter 760, the filter 770 and the second temperature transmitter 780 are installed on the inlet pipeline 710 in sequence along the medium flow direction. The first pressure transmitter 720, the first temperature transmitter 730, the second pressure transmitter 760, and the second temperature transmitter 780 are configured to monitor and adjust the pressure and temperature of the coolant in the inlet pipeline 710. The filter 770 is configured to filter the coolant entering the tank 610 to ensure cleanliness. Specifically, manual valves are installed on the inlet pipeline 710 between the first temperature transmitter 730 and the first pump assembly 740, between the first pump assembly 740 and the first pump assembly 740, between the first pump assembly 740 and the first electric ball valve 750, between the first electric ball valve 750 and the second pressure transmitter 760, between the second pressure transmitter 760 and the filter 770, and between the filter 770 and the second temperature transmitter 780.
[0035] like Figure 8 As shown, the inlet system 700 also includes a backup line 790. One end of the backup line 790 is connected to the inlet line 710 between the first temperature transmitter 730 and the first pump assembly 740, and the other end is connected to the inlet line 710 between the first electric ball valve 750 and the second pressure transmitter 760. A second pump assembly and a second electric ball valve are sequentially installed on the backup line 790 along the flow direction of the medium. The provision of the backup line 790 provides a backup function and improves the reliability of the equipment. Specifically, the backup line 790 is also equipped with a manual valve.
[0036] like Figure 8 As shown, inlet system 700 also includes a bypass line 791. One end of bypass line 791 is connected to inlet line 710 between second pressure transmitter 760 and filter 770, and the other end is connected to inlet line 710 between filter 770 and second temperature transmitter 780. Bypass line 791 serves as a backup when filter 770 needs to be replaced, ensuring continuous cooling operation. Specifically, bypass line 791 is equipped with a manual valve.
[0037] like Figure 4 and Figure 10As shown, the outlet system 800 includes an outlet pipe 810 and a manual valve 820. The outlet pipe 810 is arranged at the lower part of the frame 100. One end of the outlet pipe 810 protrudes from the door frame 500 on the rear side of the frame 100, and the other end extends into the second space and is connected to another distribution pipe 640. The manual valve 820 is installed on the outlet pipe 810.
[0038] like Figure 1 As shown, the frame 100 has four corners with formwork wheels 1000 mounted on them, and a decorative cover 1100 mounted on the top right. The formwork wheels 1000 facilitate movement of the device and provide a leveling function; the decorative cover 1100 enhances the aesthetics of the entire device.
[0039] During operation, coolant flows from inlet system 700 into distribution pipe 640 at the front of tank body 610, then into cavity 650 at the front of tank body 610. It then enters the interior of tank body 610 through through-hole 621, where it comes into contact with the indoor baseband processing unit. It then enters cavity 650 at the rear of tank body 610, passes through distribution pipe 640 at the rear of tank body 610, and enters outlet system 800, where it is finally delivered to the cooling area. According to actual calculations, this equipment reduces floor space by 40%, reduces piping costs by 30%, optimizes construction costs by 30%, and reduces equipment costs by 10%.
[0040] The above-mentioned implementation mode is only for illustrating the technical concept and features of the utility model. Its purpose is to enable people familiar with this technology to understand the content of the utility model and implement it. It cannot be used to limit the scope of protection of the utility model. Any equivalent changes or modifications made according to the spirit of the utility model should be included in the scope of protection of the utility model.
Claims
1. A fluorine pump system integrated machine, comprising a frame (100), an upper cover (200) arranged at the top of the frame (100), a side door (300) installed on the right side of the frame (100), a side plate (400) installed on the left side of the frame (100), and door frames (500) installed on the front and rear sides of the frame (100), characterized in that: The invention also includes a liquid tank system (600), an inlet system (700), an outlet system (800) and a supporting management system (900). The liquid tank system (600) is embedded in the upper part of the frame (100), and its top end is covered by the upper cover (200). A first space is formed between the right side of the frame (100) and the side door (300), and a second space is formed between the left side and the side plate (400). The inlet system (700) and the outlet system (800) are both arranged in the lower part of the frame (100). One end of the inlet system (700) and one end of the outlet system (800) are respectively connected to the liquid tank system (600) through the second space. The supporting management system (900) is arranged in the first space.
2. The fluorine pump system according to claim 1, characterized in that: The liquid tank system (600) includes a tank body (610), a baffle (620), a partition (630) and a distribution pipe (640). The tank body (610) is a hollow structure with an open top. The baffle (620) is arranged in the inner cavity of the tank body (610). The baffle (620) is composed of two pieces, forming a cavity (650) with the front and rear side walls of the tank body (610). The opposite sides of the two baffles (620) are respectively provided with a plurality of through holes (621). ), the partition (630) is composed of several pieces, which are vertically arranged in the cavity (650) to divide the cavity (650) into several chambers, and the partition (630) is provided with a waist hole (631). The distribution pipe (640) is horizontally arranged in the cavity (650) and passes through the partition (630). The distribution pipe (640) is provided with several openings (641) corresponding to the chambers, and the left end of the distribution pipe (640) extends out of the trough body (610).
3. The integrated fluorine pump system according to claim 2, characterized in that: The inlet system (700) includes an inlet pipeline (710), a first pressure transmitter (720), a first temperature transmitter (730), a first pump assembly (740), a first electric ball valve (750), a second pressure transmitter (760), a filter (770) and a second temperature transmitter (780). The inlet pipeline (710) is arranged at the lower part of the frame (100). One end of the inlet pipeline (710) protrudes from the door frame (500) at the rear side of the frame (100), and the other end extends into the second space and is connected to one of the distribution pipes (640). The first pressure transmitter (720), the first temperature transmitter (730), the first pump assembly (740), the first electric ball valve (750), the second pressure transmitter (760), the filter (770) and the second temperature transmitter (780) are installed on the inlet pipeline (710) in sequence along the flow direction of the medium.
4. The integrated fluorine pump system according to claim 3, characterized in that: The inlet system (700) further includes a spare pipeline (790), one end of which is connected to the inlet pipeline (710) between the first temperature transmitter (730) and the first pump assembly (740), and the other end of which is connected to the inlet pipeline (710) between the first electric ball valve (750) and the second pressure transmitter (760). The second pump assembly and the second electric ball valve are sequentially installed on the spare pipeline (790) along the flow direction of the medium.
5. The integrated fluorine pump system according to claim 3, characterized in that: The inlet system (700) further includes a bypass line (791), one end of which is connected to the inlet line (710) between the second pressure transmitter (760) and the filter (770), and the other end of which is connected to the inlet line (710) between the filter (770) and the second temperature transmitter (780).
6. The integrated fluorine pump system according to claim 2, characterized in that: The outlet system (800) includes an outlet pipe (810) and a manual valve (820). The outlet pipe (810) is arranged at the lower part of the frame (100). One end of the outlet pipe (810) protrudes from the door frame (500) at the rear side of the frame (100), and the other end extends into the second space and is connected to another distribution pipe (640). The manual valve (820) is installed on the outlet pipe (810).
7. The integrated fluorine pump system according to claim 1, characterized in that: The supporting management system (900) comprises a passive wavelength division module (910) and an MPO component (920), wherein the passive wavelength division module (910) and the MPO component (920) are both installed on the right side of the frame (100), and the passive wavelength division module (910) is arranged above the MPO component (920).
8. The integrated fluorine pump system according to claim 1, characterized in that: The four corners of the bottom end of the frame (100) are respectively installed with forma wheels (1000), and a decorative cover (1100) is installed at the right part of the top end.
9. The integrated fluorine pump system according to claim 1, characterized in that: The rear side of the upper cover (200) is connected to the door frame (500) on the rear side of the frame (100) via a hinge (1200), and the front side thereof is connected to the door frame (500) on the front side of the frame (100) via a quick-release member (1300). A handle (1400) is installed in the middle of the front side of the upper cover (200).
10. The integrated fluorine pump system according to claim 1, characterized in that: A disassembly door (1500) is installed on the door frame (500).