Efficient machine room power device of oversized plant
By optimizing the water flow direction and pipe layout, and using components such as oblique tees and butterfly valves, the problem of low energy efficiency in traditional refrigeration rooms has been solved, achieving efficient power transmission and stable pipe connections, thereby reducing power consumption and enterprise costs.
Patent Information
- Application Number
- CN202422979453.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-04
AI Technical Summary
Traditional refrigeration rooms have low overall energy efficiency. The energy loss caused by water flow collision and pipe resistance increases motor power consumption and increases the economic burden on enterprises.
The design incorporates components such as slanted tees, butterfly valves, check valves, and diffusion filters to optimize water flow direction, reduce resistance, and improve delivery efficiency by using layered and directional piping to avoid pipe collisions.
Reduce water flow resistance, improve conveying efficiency, enhance system operating efficiency, reduce power consumption, strengthen pipeline connection stability, prevent backflow, and improve performance.
Smart Images

Figure CN223499339U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of high-efficiency computer room technology, and more specifically, to a high-efficiency computer room power device for ultra-large factories. Background Technology
[0002] In the face of increasingly severe global climate change, energy conservation and emission reduction are urgent needs for large energy-consuming enterprises. Therefore, reducing the power consumption of refrigeration systems, improving the operating efficiency of power systems, and recovering and reusing heat energy have become the primary issues for panel factory operations. Against this backdrop, investing in the construction of high-efficiency computer rooms with excellent refrigeration and high-efficiency power systems to continuously save energy and reduce consumption for enterprises in the long term has gradually become the mainstream.
[0003] Traditional refrigeration rooms typically have a COP (Coefficient of Performance) below 4.0. Rooms with a COP above 5.0 are considered high-efficiency rooms. Traditional room piping connections are straight and do not fully consider the energy loss caused by water flow collision and pipe resistance during the refrigeration system circulation. This increases motor power consumption and the economic burden on enterprises. Therefore, a high-efficiency power unit for ultra-large factories is proposed. Utility Model Content
[0004] In order to overcome the above-mentioned defects of the prior art, this utility model provides a high-efficiency power unit for a large factory room to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a high-efficiency power unit for a super-large factory room, comprising an equipment base plate and a main pipe, wherein a shock-absorbing base is provided on the top of the equipment base plate, a water pump is provided on the top of the shock-absorbing base, the output end of the water pump is connected to a reducer, and both the end of the reducer away from the water pump and the input end of the water pump are connected to flexible pipes, and one end of each of the two flexible pipes is respectively connected to a check valve and a filter;
[0006] One end of the check valve is connected to a first elbow, one end of the first elbow is connected to a butterfly valve, one end of the filter is connected to a main pipe, one end of the main pipe is connected to a second elbow, and the other end is provided with a flange plug. One end of the second elbow is connected to a slanted tee, the slanted tee is fixedly connected to the main pipe, and the top of the main pipe is provided with multiple other parallel pipes.
[0007] The bottom of the other parallel pipes is provided with a common support.
[0008] Preferably, the connection points between the water pump inlet and outlet pipes and the main pipe are all provided with oblique tees, and the inlet and outlet pipes of the multiple water pumps are arranged in a tree-like pattern.
[0009] Preferably, the first bends of the horizontal pipes and vertical pipe sections at both ends of the water pump are 1.5D standard bends.
[0010] Preferably, the insertion direction of the oblique tee to the main pipe is consistent with the water flow direction inside the main pipe.
[0011] Preferably, the main pipe and other parallel pipes are arranged in layers and directions, the cross-section of the common support is set in a U-shape, and the main pipe is located at the bottom of the other parallel pipes and the mother pipe.
[0012] Preferably, the filter is a diffusion filter, and pressure gauges are installed before and after the filter. The common bracket is fixed to a pre-embedded steel plate on the side of the column or beam.
[0013] The technical effects and advantages of this utility model are as follows:
[0014] 1. This utility model firstly uses a water pump to directly transport the liquid inside the main pipe through an oblique tee, which avoids water flow collision and ensures that the water flow is always in the same direction, reducing water flow resistance and improving transport efficiency. The first elbow further reduces the resistance of pipeline transport and improves transport efficiency, thereby improving the system's operating efficiency and achieving the effect of improving energy efficiency. At the same time, the common support is set to realize the layered and directional arrangement of the main pipe and other parallel pipes, and to support other parallel pipes, avoiding collision between the piping of different systems and improving the use effect.
[0015] 2. This utility model also features a filter and pressure gauges on both sides of the filter, which facilitate the detection of filtration pressure and the determination of liquid flow efficiency. This allows for timely cleaning of filtered impurities, improving conveying efficiency. The shock-absorbing base provides shock absorption and buffering for the water pump. Furthermore, the flexible connecting pipe ensures that the stability of the pipe connection is not affected by the vibration of the water pump after the pipe is installed and fixed, improving the safety and tightness of the connection. The butterfly valve and check valve facilitate closure while preventing backflow, thus improving the performance.
[0016] In summary, through the interaction of the above-mentioned multiple functions, water flow collisions can be avoided, ensuring that the water flow is always in the same direction, reducing water flow resistance, and improving transmission efficiency. At the same time, by setting up the pipeline in layers and directions, collisions between the piping of different systems can be avoided, thus improving the performance. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0018] Figure 2 This is a schematic diagram of the connection structure between the water pump and the main pipe of this utility model.
[0019] Figure 3This is a schematic diagram illustrating the connection process between multiple water pumps and the main pipe of this utility model.
[0020] The attached diagram is labeled as follows: 1. Main pipe; 2. Main pipe; 3. Water pump; 4. Reducer; 5. Flexible connector; 6. Check valve; 7. First elbow; 8. Butterfly valve; 9. Filter; 10. Second elbow; 11. Angled tee; 12. Common support; 13. Flange plug; 14. Equipment base plate; 15. Vibration damping base; 16. Other parallel pipes. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] As attached Figure 1-3 The diagram shows a high-efficiency power unit for a large factory room, including an equipment base plate 14 and a main pipe 1. A shock-absorbing base 15 is installed on the top of the equipment base plate 14 to improve the stability of the water pump 3. The water pump 3 is installed on the top of the shock-absorbing base 15 to realize the power supply or output of cooling liquid inside the machine room. The output end of the water pump 3 is connected to a reducer 4 to increase the output flow rate and reduce the flow velocity. The end of the reducer 4 away from the water pump 3 and the input end of the water pump 3 are both connected to flexible pipes 5. The flexible pipes 5 can prevent the vibration of the water pump 3 from affecting the stability of the pipe connection after the pipe is installed and fixed, thus improving the safety and tightness of the connection. One end of each of the two flexible pipes 5 is connected to a check valve 6 and a filter 9, respectively. The filter 9 filters the incoming liquid, and the check valve 6 prevents the liquid from flowing back and affecting the performance of the water pump 3.
[0023] One end of the check valve 6 is connected to the first elbow 7, and one end of the first elbow 7 is connected to the butterfly valve 8. One end of the filter 9 is connected to the main pipe 2, and one end of the main pipe 2 is connected to the second elbow 10. The other end is equipped with a flange plug 13. One end of the second elbow 10 is connected to the inclined tee 11, which is fixedly connected to the main pipe 1. The top of the main pipe 2 is equipped with multiple other parallel pipes 16. The butterfly valve 8 facilitates the control of the switch, and the first elbow 7 reduces the water flow impact at the bend, improving the conveying effect. The liquid conveyed by the main pipe 1 can be simultaneously conveyed by multiple water pumps 3 through the main pipe 2. The cooperation of the inclined tee 11 and the second elbow 10 reduces the water flow resistance and improves the conveying efficiency. At the same time, the common support 12 can facilitate the separation of the main pipe 1 and the main pipe 2, so that the other parallel pipes 16 do not overlap with the main pipe 2, avoiding collisions between the piping of each system and playing a role in separation and support.
[0024] The bottom of other parallel pipes 16 is provided with a common support 12. The common support 12 can conveniently support other parallel pipes 16 while preventing the pipes of each system from colliding with each other, thus playing a role in separation and support.
[0025] As attached Figure 1-3 As shown, the inlet and outlet pipes of the water pump 3 are all equipped with oblique tees 11 at the connection points with the main pipe 1. The inlet and outlet pipes of multiple water pumps 3 are arranged in a tree-like pattern, which can avoid water flow collision, ensure that the water flow is always in the same direction, reduce water flow resistance, improve transmission efficiency, and improve system operating efficiency.
[0026] As attached Figure 1-3 As shown, the first bend 7 of the horizontal pipes and vertical pipe sections at both ends of the water pump 3 are both 1.5D standard bends, which can further reduce the water flow resistance, improve the conveying efficiency, and make the water flow direction change smoothly.
[0027] As attached Figure 1-3 As shown, the insertion direction of the oblique tee 11 to the main pipe 1 is consistent with the water flow direction inside the main pipe 1, which can avoid water flow collision, keep the water flow in the same direction, reduce water flow resistance, improve the energy efficiency of transportation, and improve the system operating efficiency.
[0028] As attached Figure 1-3 As shown, the main pipe 2 and other parallel pipes 16 are arranged in layers and directions. The cross-section of the common support 12 is set as U-shaped. The main pipe 2 is set at the bottom of the other parallel pipes 16 and the main pipe 1, which facilitates the support of the other parallel pipes 16 while avoiding collision between the piping of each system, and plays the role of separation and support.
[0029] As attached Figure 1-3As shown, filter 9 is a diffusion filter. Pressure gauges are installed before and after filter 9. The common bracket 12 is fixed on the pre-embedded steel plate on the side of the column or beam to facilitate the detection of filtration pressure, facilitate timely cleaning, improve conveying efficiency, and improve filtration effect.
[0030] The working principle of this utility model is as follows: When in use, the liquid inside the main pipe 2 is directly transported through the inclined tee 11 by the water pump 3, which can avoid water flow collision and keep the water flow in the same direction, reduce water flow resistance, and improve the transport efficiency. By setting the first elbow 7 at the connection between the horizontal pipe and the vertical pipe, the resistance of pipeline transport can be further reduced and the transport efficiency can be improved, thereby improving the system operating efficiency and achieving the effect of improving energy efficiency.
[0031] Starting the water pump 3 allows the liquid transported by the main pipe 1 to be filtered through the filter 9 and its flow rate increased by the reducer 4, thus achieving the function of power transmission. At the same time, with the cooperation of the flexible connecting pipe 5, the vibration of the water pump 3 can be prevented from affecting the sealing strength of the pipe connection. The butterfly valve 8 and check valve 6 facilitate closure while preventing backflow, thus improving the performance. Furthermore, the common bracket 12 supports other parallel pipes 16, preventing the piping of each system from colliding with each other, thus improving the performance.
[0032] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A high-efficiency power unit for a super-large factory building, comprising an equipment base plate (14) and a main pipe (1), characterized in that: The equipment base plate (14) is provided with a shock-absorbing base (15) on top, and a water pump (3) is provided on top of the shock-absorbing base (15). The output end of the water pump (3) is connected to a reducer (4). The end of the reducer (4) away from the water pump (3) and the input end of the water pump (3) are both connected to a flexible pipe (5). One end of the two flexible pipes (5) is connected to a check valve (6) and a filter (9) respectively. One end of the check valve (6) is connected to a first elbow (7), one end of the first elbow (7) is connected to a butterfly valve (8), one end of the filter (9) is connected to a main pipe (2), one end of the main pipe (2) is connected to a second elbow (10), and the other end is provided with a flange plug (13). One end of the second elbow (10) is connected to a slanted tee (11), and the slanted tee (11) is fixedly connected to the main pipe (1). The top of the main pipe (2) is provided with multiple other parallel pipes (16). The bottom of the other parallel pipes (16) is provided with a common support (12).
2. The high-efficiency power unit for a super-large factory room according to claim 1, characterized in that: The inlet and outlet pipes of the water pump (3) are all equipped with oblique tees (11) at the connection points with the main pipe (1), and the inlet and outlet pipes of the multiple water pumps (3) are arranged in a tree-like pattern.
3. The high-efficiency power unit for a super-large factory room according to claim 1, characterized in that: The first bend (7) of the horizontal pipes and vertical pipe sections at both ends of the water pump (3) are all 1.5D standard bends.
4. The high-efficiency power unit for a super-large factory room according to claim 1, characterized in that: The insertion direction of the oblique tee (11) to the main pipe (1) is consistent with the water flow direction inside the main pipe (1).
5. The high-efficiency power unit for a super-large factory room according to claim 1, characterized in that: The main pipe (2) and other parallel pipes (16) are arranged in layers and directions. The cross-section of the common support (12) is set in a U shape. The main pipe (2) is located at the bottom of the other parallel pipes (16) and the main pipe (1).
6. The high-efficiency power unit for a super-large factory room according to claim 1, characterized in that: The filter (9) is configured as a diffusion filter, and pressure gauges are installed before and after the filter (9). The common bracket (12) is fixed on the pre-embedded steel plate on the side of the column or beam.