Data center integrated fluorine pump double-circulation energy-saving device
By using a check valve and support structure in the integrated fluorine pump dual circulation unit for data centers, the problems of pipeline deformation and vibration were solved, achieving stable support and easy maintenance, reducing system vibration and noise, and improving equipment operation stability and maintenance efficiency.
Patent Information
- Application Number
- CN202520158578.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-01-23
AI Technical Summary
The piping of existing integrated refrigerant pump dual-circulation devices for data centers lacks effective support, which can easily lead to deformation, bending and breakage, affecting the cooling effect and causing vibration.
A one-way valve is used to ensure unidirectional refrigerant flow. The three-way pipe is fixed by clamps, rubber pads and rubber damping blocks in combination with the support structure. The cooling mode is intelligently adjusted by a solenoid valve. The support structure includes clamps, rubber pads, connecting plates, damping blocks and extension components, which provide stable support and absorb vibration.
It achieves stable support for pipelines, reduces vibration and noise, improves system stability and ease of installation and removal, and reduces system downtime and operating costs.
Smart Images

Figure CN223872624U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cooling equipment technology, specifically to an integrated fluorine pump dual-circulation energy-saving device for data centers. Background Technology
[0002] With the advent of the digital age, data centers are experiencing a surge in energy demand, making energy consumption and environmental impact critical issues. To reduce energy consumption during cooling, integrated refrigerant pump dual-cycle energy-saving devices for data centers are needed. These devices intelligently switch cooling modes based on different seasons and outdoor temperatures, fully utilizing natural cooling sources and reducing air conditioning energy consumption. This not only provides highly efficient cooling to meet the data center's requirements for stable temperature and humidity but also significantly reduces energy consumption and operating costs.
[0003] The existing equipment still has the following shortcomings: the lack of effective support for the pipeline makes it easy for the pipeline to deform, bend or even break due to its inability to bear its own weight, resulting in refrigerant leakage. This not only damages the cooling effect, but also easily causes vibration, affecting the stable flow of the medium inside the pipeline. Utility Model Content
[0004] This invention provides an integrated fluorine pump dual-cycle energy-saving device for data centers, which solves the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the technical solution of this utility model is as follows:
[0006] An embodiment of this utility model provides an integrated fluorine pump dual-cycle energy-saving device for data centers, including cooling pipes, and further comprising:
[0007] A one-way valve is installed in the middle section of the cooling pipeline;
[0008] The connector is fixed to one side of the cooling pipe;
[0009] A three-way pipe is fixed on the other side of the cooling pipe. A first guide pipe is fixedly connected to one side of the three-way pipe, and a first solenoid valve is installed in the middle section of the first guide pipe.
[0010] The second guide tube is fixedly connected to one side of the tee tube, and a second solenoid valve is installed in the middle section of the second guide tube.
[0011] A support structure is provided on the outside of the tee pipe. The support structure includes a clamp sleeved on the outside of the tee pipe, a rubber pad fixed on the inner wall of the clamp, a connecting plate fixed at the bottom end of the rubber pad, a rubber damping block fixed at the bottom end of the connecting plate, a support plate fixed at the bottom end of the rubber damping block, and an extension component provided at the bottom end of the support plate.
[0012] The controller is detachably mounted on top of the supporting structure;
[0013] A fixed structure, located on the outside of the controller, is used for mounting and dismounting the controller.
[0014] The above technical solution ensures that the refrigerant flows in one direction in the cooling pipeline through a one-way valve. The controller opens and closes the first and second solenoid valves according to the ambient temperature, adjusting the operation of the refrigerant pump and compressor, thus saving electricity. The support structure provides stable support for the three-way pipe, and the fixed structure facilitates the installation, removal and maintenance of the controller.
[0015] Furthermore, the extension assembly includes a screw fixed to the bottom end of the support plate, a screw cap threaded to the outside of the screw, a rotating seat installed at the bottom end of the screw cap, a support tube installed at the bottom end of the rotating seat, and a base plate fixed to the bottom end of the support tube.
[0016] The above technical solution uses a combination of clamps and rubber pads to fix the position of the tee pipe, while the rubber damping block absorbs vibration and the torsion cap adjusts the height of the structure so that the base plate can contact the ground to support the device.
[0017] Furthermore, the rotating cap forms a rotating structure between the rotating seat and the support tube, and the surface of the rotating cap is provided with anti-slip texture.
[0018] The above technical solution allows the rotating cap to drive the screw to rise and fall, adjusting the height of the support. The anti-slip texture design increases the friction on the surface of the cap, making it less likely for the user to slip when rotating the cap.
[0019] Furthermore, the clamps are provided in two sets, and the two sets of clamps are symmetrically distributed on the vertical center line of the tee pipe.
[0020] The above technical solution, through symmetrically distributed clamps, can achieve uniform support for the tee pipe.
[0021] Furthermore, the fixing structure includes a limiting shell fixed to the top of the clamp, an outer shell fixed to one side of one set of limiting shells, a locking pin slidably connected inside the outer shell, a pull rod fixed to one side of the locking pin, a return spring sleeved on the outside of the pull rod and connected to the locking pin, and a sleeve fixed inside the controller.
[0022] With the above technical solution, pulling the lever will cause the locking pin to retract into the housing under tension, thereby releasing the fixed relationship between the controller and the limiting housing. Pulling the controller upwards will allow it to be disassembled.
[0023] Furthermore, the locking pin and the return spring form a telescopic structure with respect to the outer shell, and the limiting shell and the controller form a sliding structure.
[0024] The above technical solution enables the locking pin to quickly pop out and fix the controller when needed, and the limiting shell restricts the direction of the controller's movement so that it can be moved to a fixed area.
[0025] The above-described solution of this utility model has at least the following beneficial effects:
[0026] 1. This utility model uses a combination of clamps and rubber pads to fix the position of the tee pipe, while the rubber damping block absorbs vibration and the torsion cap adjusts the structural height. This realizes the pipeline support function of the device, which facilitates effective support and vibration reduction of the device, prevents the pipeline from deforming due to its own weight or fluid pressure, and significantly reduces the vibration and noise generated during pipeline operation.
[0027] 2. In this utility model, pulling the lever will cause the locking pin to retract into the outer shell under tension, thereby releasing the fixed relationship between the controller and the limiting shell. Pulling the controller upwards will allow it to be disassembled, thus realizing the easy installation and removal function of this device. When maintenance or replacement is required, the controller can be quickly replaced, shortening the system downtime and ensuring the continuous and stable operation of the equipment. Attached Figure Description
[0028] Figure 1 This is one of the structural schematic diagrams of this utility model;
[0029] Figure 2 This is the second schematic diagram of the structure of this utility model;
[0030] Figure 3 This is a schematic diagram of the cross-sectional structure of the support structure provided by this utility model;
[0031] Figure 4 This is a three-dimensional cross-sectional structural diagram of the fixed structure provided by this utility model.
[0032] Explanation of reference numerals in the attached figures:
[0033] 1. Cooling pipe; 2. Check valve; 3. Connector; 4. Support structure; 401. Support pipe; 402. Rotary seat; 403. Screw; 404. Clamp; 405. Rubber pad; 406. Connecting plate; 407. Rubber damping block; 408. Support plate; 409. Rotary cap; 410. Base plate; 5. Controller; 6. Fixing structure; 601. Limiting shell; 602. Sleeve; 603. Locking pin; 604. Outer shell; 605. Pull rod; 606. Return spring; 7. First guide pipe; 8. First solenoid valve; 9. Second guide pipe; 10. Second solenoid valve; 11. T-connector. Detailed Implementation
[0034] Exemplary embodiments of the present invention will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present invention are shown in the drawings, it should be understood that the present invention may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this invention will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
[0035] like Figures 1 to 4 As shown, an embodiment of this utility model provides an integrated data center fluorine pump dual-cycle energy-saving device, including a cooling pipe 1, and further comprising:
[0036] One-way valve 2 is installed in the middle section of cooling pipe 1;
[0037] Connector 3 is fixed to one side of cooling pipe 1;
[0038] A three-way pipe 11 is fixed on the other side of the cooling pipe 1, and a first guide pipe 7 is fixedly connected to one side of the three-way pipe 11. A first solenoid valve 8 is installed in the middle section of the first guide pipe 7.
[0039] The second guide pipe 9 is fixedly connected to one side of the three-way pipe 11, and a second solenoid valve 10 is installed in the middle section of the second guide pipe 9.
[0040] Support structure 4 is provided on the outside of the tee pipe 11. The support structure 4 includes a clamp 404 sleeved on the outside of the tee pipe 11, a rubber pad 405 fixed on the inner side wall of the clamp 404, a connecting plate 406 fixed at the bottom of the rubber pad 405, a rubber damping block 407 fixed at the bottom of the connecting plate 406, a support plate 408 fixed at the bottom of the rubber damping block 407, and an extension component provided at the bottom of the support plate 408.
[0041] The controller 5 is detachably mounted on the top of the support structure 4;
[0042] The fixing structure 6 is located on the outside of the controller 5 and is used for loading and unloading the controller 5.
[0043] In this embodiment of the invention, the first guide pipe 7 is connected to the refrigerant pump, the second guide pipe 9 is connected to the compressor, and the cooling pipe 1 is connected to the main pipeline of the refrigeration unit. A one-way valve 2 ensures that the refrigerant flows in one direction in the cooling pipe 1 to prevent backflow. The controller 5 opens and closes the first solenoid valve 8 and the second solenoid valve 10 according to the ambient temperature measured by the refrigeration unit. When the outdoor temperature is lower than the set point of the controller 5, the controller 5 controls the first solenoid valve 8 to open and the second solenoid valve 10 to close, and the refrigerant flows through the first guide pipe 7 to the refrigerant pump for cyclic cooling, reducing the power consumption of the refrigeration unit and entering the power-saving mode. When the outdoor temperature is higher than the set point, the second solenoid valve 10 opens and the first solenoid valve 8 closes, and the refrigerant flows through the second guide pipe 9 to the compressor for cooling, which is the normal refrigeration cycle. The support structure 4 provides stable support for the three-way pipe 11. The controller 5 is detachably installed on the top of the support structure 4, which facilitates the installation, removal and maintenance of the controller 5.
[0044] like Figure 3 As shown, the extension assembly includes a screw 403 fixed to the bottom of the support plate 408, a screw cap 409 threaded to the outside of the screw 403, a rotating seat 402 installed at the bottom of the screw cap 409, a support tube 401 installed at the bottom of the rotating seat 402, and a base plate 410 fixed to the bottom of the support tube 401. The screw cap 409 forms a rotating structure with the support tube 401 through the rotating seat 402. The surface of the screw cap 409 is provided with anti-slip texture. Two sets of clamps 404 are provided, and the two sets of clamps 404 are symmetrically distributed on the vertical center line of the tee pipe 11.
[0045] In this embodiment of the utility model, the position of the three-way pipe 11 is fixed by the combination of the clamp 404 and the rubber pad 405, which reduces vibration transmission. At the same time, the rubber damping block 407 further absorbs vibration to ensure the stable operation of the system. By twisting the nut 409, the nut 409 pushes the screw 403 upward through the thread engagement, adjusting the height of the clamp 404 so that the base plate 410 can contact the ground to support the device.
[0046] like Figures 3 to 4 As shown, the fixing structure 6 includes a limiting shell 601 fixed to the top of the clamp 404, an outer shell 604 fixed to one side of one set of limiting shells 601, a locking pin 603 slidably connected inside the outer shell 604, a pull rod 605 fixed to one side of the locking pin 603, a return spring 606 sleeved on the outside of the pull rod 605 and connected to the locking pin 603, and a sleeve 602 fixed inside the controller 5. The locking pin 603, the return spring 606 and the outer shell 604 form a telescopic structure, and the limiting shell 601 and the controller 5 form a sliding structure.
[0047] In this embodiment of the invention, when the controller 5 needs to be installed, the controller 5 is slid along the limiting shell 601 to the designated position, and the pull rod 605 is pulled to retract the locking pin 603 into the outer shell 604. The return spring 606 maintains the tension of the locking pin 603. When the controller 5 reaches the predetermined position, the pull rod 605 is released, and the locking pin 603 pops out under the action of the return spring 606 and locks into the sleeve 602, completing the fixation. For disassembly, the above operation can be repeated.
[0048] The above are preferred embodiments of this utility model. It should be noted that, for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.
Claims
1. A dual-cycle energy-saving device for an integrated fluorine pump in a data center, comprising a cooling pipeline (1), characterized in that, Also includes: A one-way valve (2) is installed in the middle section of the cooling pipe (1); Connector (3) is fixed to one side of cooling pipe (1); A three-way pipe (11) is fixed on the other side of the cooling pipe (1). A first guide pipe (7) is fixedly connected to one side of the three-way pipe (11), and a first solenoid valve (8) is installed in the middle section of the first guide pipe (7). The second guide pipe (9) is fixedly connected to one side of the three-way pipe (11), and a second solenoid valve (10) is installed in the middle section of the second guide pipe (9). A support structure (4) is provided on the outside of the tee pipe (11). The support structure (4) includes a clamp (404) sleeved on the outside of the tee pipe (11), a rubber pad (405) fixed on the inner wall of the clamp (404), a connecting plate (406) fixed at the bottom of the rubber pad (405), a rubber damping block (407) fixed at the bottom of the connecting plate (406), a support plate (408) fixed at the bottom of the rubber damping block (407), and an extension component provided at the bottom of the support plate (408). The controller (5) is detachably mounted on the top of the support structure (4); A fixed structure (6) is set on the outside of the controller (5) for loading and unloading the controller (5).
2. The data center integrated fluorine pump dual-cycle energy-saving device according to claim 1, characterized in that, The extension assembly includes a screw (403) fixed to the bottom end of the support plate (408), a screw cap (409) threaded to the outside of the screw (403), a rotating seat (402) installed at the bottom end of the screw cap (409), a support tube (401) installed at the bottom end of the rotating seat (402), and a base plate (410) fixed to the bottom end of the support tube (401).
3. The data center integrated fluorine pump dual-cycle energy-saving device according to claim 2, characterized in that, The rotating cap (409) forms a rotating structure between the rotating seat (402) and the support tube (401), and the surface of the rotating cap (409) is provided with anti-slip texture.
4. The data center integrated fluorine pump dual-circulation energy-saving device according to claim 2, characterized in that, Two sets of clamps (404) are provided, and the two sets of clamps (404) are symmetrically distributed on the vertical center line of the tee pipe (11).
5. The integrated fluorine pump dual-cycle energy-saving device for data centers according to claim 1, characterized in that, The fixing structure (6) includes a limiting shell (601) fixed to the top of the clamp (404), an outer shell (604) fixed to one side of one of the limiting shells (601), a locking pin (603) slidably connected inside the outer shell (604), a pull rod (605) fixed to one side of the locking pin (603), a return spring (606) sleeved on the outside of the pull rod (605) and connected to the locking pin (603), and a sleeve (602) fixed inside one side of the controller (5).
6. The data center integrated fluorine pump dual-circulation energy-saving device according to claim 5, characterized in that, The locking pin (603) and the return spring (606) form a telescopic structure with respect to the outer shell (604), and the limiting shell (601) and the controller (5) form a sliding structure.