Fin type energy storage cooling pipeline

By setting up limit collars and transmission wheel blades in the fin-type energy storage cooling pipeline, combined with the motor control system, the problem of uncontrollable water transmission rate in the traditional fin-type energy storage cooling pipeline is solved, and efficient water-cooled transmission and maneuverability adjustment is achieved.

CN223138160UActive Publication Date: 2025-07-22ZHANGJIAGANG DONG NAN HENG LI AUTO PARTS CO LTD
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Patent Information

Application Number
CN202421993888.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-16
Publication Date
2025-07-22
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

Traditional fin-type energy storage cooling pipelines cannot effectively control the transmission rate of water, resulting in a reduced cooling efficiency.

Method used

A fin-type energy storage cooling pipeline is designed, by setting multiple limit collars around the main body transmission pipe and setting auxiliary transmission pipes within the limit collars, combining the shaft to drive the transmission wheel blades to stir the water body, accelerate water cooling transmission, and control the rotation speed through the motor controller and the control display to adjust the water body transmission rate.

Benefits of technology

The transmission rate and water cooling efficiency of the cooling device are improved, the maneuverability of the device is enhanced, and different water cooling needs are met.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223138160U_ABST
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Abstract

The utility model discloses a fin type energy storage cooling pipeline relates to fin type cooling pipeline technical field, including cooling conveyer and fin main part, one side of cooling conveyer is communicated with the main part transfer pipe, one side top end surface of main part transfer pipe is fixedly connected with the connecting arm, and the connecting arm is fixedly connected with the fin main part transfer pipe. The top end of one side of the connecting arm is fixedly connected with a limiting lantern ring, and a limiting buckle groove is formed in one side of the limiting lantern ring. Water-cooling transmission is conducted by arranging the main body transmission pipe, meanwhile, the multiple limiting lantern rings are arranged on the periphery of the main body transmission pipe, the multiple auxiliary transmission pipes are arranged in the limiting lantern rings, water-cooling transmission is conducted around the main body transmission pipe, the transmission rate of the device is increased, and meanwhile the water-cooling efficiency of the device is improved; a rotating shaft arranged in the cooling conveyor rotates to drive conveying wheel blades to stir the water body and accelerate conveying, so that the mixing rate of the water body is improved, and the water cooling rate of the device is further improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of finned cooling pipelines, in particular to a finned energy storage cooling pipeline. Background Art

[0002] A cooler is a kind of heat exchange equipment used to cool fluids, usually using water or air as coolants to remove heat. Currently, the main coolers include shell-and-tube coolers, spray coolers, jacket coolers, and coil coolers, etc., which are widely used in large electrical equipment such as high-power silicon rectifiers, induction furnaces, and medium-frequency furnaces as pure water, water-air, oil-air, and oil-water cooling devices for cooling and protecting auxiliary machines. The traditional finned energy storage cooling pipeline can only transfer at a fixed efficiency and cannot control the transmission rate of water, which will directly lead to a decrease in the cooling efficiency of the device. Therefore, we redesigned a finned energy storage cooling pipeline. Summary of the Utility Model

[0003] The purpose of the utility model is to provide a finned energy storage cooling pipeline.

[0004] To solve the above technical problems, the utility model provides the following technical solutions: A finned energy storage cooling pipeline, including a cooling conveyor and a fin body. One side of the cooling conveyor is connected to a main transmission pipe. The top surface of one side of the main transmission pipe is fixedly connected with a connecting arm. The top of one side of the connecting arm is fixedly connected with a limiting collar. The inside of one side of the limiting collar is provided with a limiting buckle groove. An auxiliary transmission pipe is detachably installed inside the limiting buckle groove. The top of one side of the cooling conveyor is connected to a water supply pipe, and a water supply control valve is arranged at the top of one side of the water supply pipe.

[0005] Preferably, the connection relationship between the fin body and the main transmission pipe is through fixed connection, and the connection relationship between the fin body and the auxiliary transmission pipe is through fixed connection.

[0006] Preferably, the number of the limiting collars is several, and several of the limiting collars are distributed in a circular pattern on the surface of the main transmission pipe.

[0007] Preferably, the cross-sectional diameter of the limiting buckle groove is larger than the cross-sectional diameter of the auxiliary transmission pipe, and the connection relationship between the limiting buckle groove and the auxiliary transmission pipe is movable socket connection.

[0008] Preferably, a power motor is fixedly installed at the top of the side of the cooling conveyor away from the water supply pipe. The bottom end inside the cooling conveyor is fixedly connected with an electric connection chassis. One side of the top of the electric connection chassis is rotatably connected with a rotating shaft. A transmission wheel blade is fixedly installed on the surface of one side of the rotating shaft. A top limiting disk is fixedly connected to the top of one side of the rotating shaft.

[0009] Preferably, a motor controller is fixedly installed on one side surface of the power motor. A power connection groove is provided on one side of the motor controller. A control display is fixedly installed on the front surface of the motor controller, and a control panel is arranged on one side of the front surface of the motor controller.

[0010] Preferably, the connection relationship between the power motor and the power connection chassis is a power transmission connection, and the connection relationship between the power motor and the rotating shaft is a transmission connection.

[0011] Preferably, the transmission wheel blades are circumferentially distributed on the surface of the rotating shaft, and the cross-sectional diameter of the top limiting disc is larger than the cross-sectional diameter of the rotating shaft.

[0012] Compared with the related art, the finned energy storage cooling pipeline provided by the present invention has the following beneficial effects:

[0013] 1. The present invention provides a finned energy storage cooling pipeline. The main transmission pipe is set for water-cooling transmission. At the same time, a plurality of limiting collar rings are arranged around the main transmission pipe, and a plurality of auxiliary transmission pipes are arranged inside the limiting collar rings to conduct water-cooling transmission around the main transmission pipe, improving the transmission rate of the device and the water-cooling efficiency of the device. The rotation of the rotating shaft in the cooling transmission machine drives the transmission wheel blades to stir the water body to accelerate the transmission, improving the mixing rate of the water body and further improving the water-cooling rate of the device.

[0014] 2. The present invention provides a finned energy storage cooling pipeline. The rotation speed of the transmission wheel blades is controlled by the motor controller on the power motor. The rotation speed is set by using the control panel, and the rotation speed of the device is intuitively displayed through the control display to control the rotation speed, thereby controlling the water transmission rate and improving the maneuverability of the device according to the actual water-cooling requirements of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is a three-dimensional structural schematic diagram of the present invention;

[0016] Figure 2 is a front side view structural schematic diagram of the device of the present invention;

[0017] Figure 3 is a distribution structural schematic diagram of the main transmission pipe and the auxiliary transmission pipe of the present invention;

[0018] Figure 4 is an internal structural schematic diagram of the cooling transmission machine of the present invention.

[0019] Reference numerals in the figure: 1, cooling conveyor; 2, fin body; 3, main transmission pipe; 4, connecting arm; 5, limiting collar; 6, limiting buckle groove; 7, auxiliary transmission pipe; 8, water filling pipe; 9, water filling control valve; 10, power motor; 11, power connection chassis; 12, rotating shaft; 13, transmission wheel blade; 14, top limiting disc; 15, motor controller; 16, power connection groove; 17, control display; 18, control panel. Detailed implementation manner

[0020] Embodiment 1:

[0021] Please refer to Figures 1 - 4 , the present utility model provides a technical solution: a fin type energy storage cooling pipeline, including a cooling conveyor 1 and a fin body 2. One side of the cooling conveyor 1 is communicated with a main transmission pipe 3. The top surface of one side of the main transmission pipe 3 is fixedly connected with a connecting arm 4. The top of one side of the connecting arm 4 is fixedly connected with a limiting collar 5. A limiting buckle groove 6 is opened inside one side of the limiting collar 5. An auxiliary transmission pipe 7 is detachably installed inside the limiting buckle groove 6. The top of one side of the cooling conveyor 1 is communicated with a water filling pipe 8. A water filling control valve 9 is arranged at the top of one side of the water filling pipe 8. The connection relationship between the fin body 2 and the main transmission pipe 3 is a through and fixed connection. The connection relationship between the fin body 2 and the auxiliary transmission pipe 7 is a through and fixed connection. The number of the limiting collars 5 is several, and several limiting collars 5 are distributed in a circular shape on the surface of the main transmission pipe 3. The cross-sectional diameter of the limiting buckle groove 6 is larger than the cross-sectional diameter of the auxiliary transmission pipe 7. The connection relationship between the limiting buckle groove 6 and the auxiliary transmission pipe 7 is a movable socket connection.

[0022] In the implementation scheme, the main transmission pipe 3 is set to conduct the transmission of water cooling. At the same time, a plurality of limiting collars 5 are arranged around the main transmission pipe 3, and a plurality of auxiliary transmission pipes 7 are arranged inside the limiting collars 5 to conduct the transmission of water cooling around the main transmission pipe 3, improving the transmission rate of the device and the water cooling efficiency of the device. The rotation of the rotating shaft 12 arranged inside the cooling conveyor 1 drives the transmission wheel blade 13 to stir the water body to accelerate the transmission, improving the mixing rate of the water body and further improving the water cooling rate of the device.

[0023] Embodiment 2:

[0024] Please refer to Figures 1 - 4, the present utility model provides a technical solution: a finned energy storage cooling pipeline, including a power motor 10 fixedly installed at the top end on the side of the cooling conveyor 1 away from the water adding pipe 8, a power connection chassis 11 fixedly connected to the bottom end inside the cooling conveyor 1, a rotating shaft 12 rotatably connected to the top end on one side of the power connection chassis 11, a transmission wheel blade 13 fixedly installed on the surface of one side of the rotating shaft 12, a top limit disk 14 fixedly connected to the top end on one side of the rotating shaft 12, a motor controller 15 fixedly installed on the surface of one side of the power motor 10, a power connection slot 16 opened on one side of the motor controller 15, a control display 17 fixedly installed on the front of the motor controller 15, a control panel 18 arranged on one side of the front of the motor controller 15. The connection relationship between the power motor 10 and the power connection chassis 11 is a power transmission connection, the connection relationship between the power motor 10 and the rotating shaft 12 is a transmission connection, the transmission wheel blades 13 are distributed in a circular pattern on the surface of the rotating shaft 12, and the cross-sectional diameter of the top limit disk 14 is greater than the cross-sectional diameter of the rotating shaft 12.

[0025] In the implementation scheme, by controlling the motor controller 15 on the power motor 10, the rotation speed of the transmission wheel blades 13 is set by using the control panel 18, and the rotation speed of the device is directly displayed through the control display 17 to control the rotation speed, thereby controlling the water transmission rate, and improving the maneuverability of the device according to the actual water cooling requirements of the device.

[0026] Working principle:

[0027] By arranging the main transmission pipe 3 for water cooling transmission, and at the same time arranging a plurality of limiting collar rings 5 around the main transmission pipe 3, and arranging a plurality of auxiliary transmission pipes 7 inside the limiting collar rings 5 to conduct water cooling transmission around the main transmission pipe 3, the transmission rate of the device is improved, and at the same time the water cooling efficiency of the device is improved. The rotation of the rotating shaft 12 arranged inside the cooling conveyor 1 drives the transmission wheel blades 13 to stir and accelerate the water transmission, improving the mixing rate of the water, and further improving the water cooling rate of the device;

[0028] By controlling the motor controller 15 on the power motor 10, the rotation speed of the transmission wheel blades 13 is set by using the control panel 18, and the rotation speed of the device is directly displayed through the control display 17 to control the rotation speed, thereby controlling the water transmission rate, and improving the maneuverability of the device according to the actual water cooling requirements of the device.

Claims

1. A finned energy storage cooling pipeline, comprising a cooling conveyor (1) and a fin body (2), wherein one side of the cooling conveyor (1) is communicated with a main conveyor pipe (3), and is characterized in that: One side of the top surface of the main body transfer pipe (3) is fixedly connected with a connecting arm (4). The top of one side of the connecting arm (4) is fixedly connected with a limiting collar (5). The inside of one side of the limiting collar (5) is provided with a limiting buckle groove (6). The auxiliary transfer pipe (7) is detachably installed inside the limiting buckle groove (6). One side of the top of the cooling transfer machine (1) is communicated with a water adding pipe (8). A water adding control valve (9) is arranged at the top of one side of the water adding pipe (8).

2. The finned energy storage cooling pipeline according to claim 1, wherein, The connection relationship between the fin body (2) and the main body transfer pipe (3) is through and fixed connection. The connection relationship between the fin body (2) and the auxiliary transfer pipe (7) is through and fixed connection.

3. The finned energy storage cooling pipeline according to claim 1, wherein The number of the limiting collars (5) is several, and several of the limiting collars (5) are distributed in a circular pattern on the surface of the main body transfer pipe (3).

4. The finned energy storage cooling pipeline according to claim 1, wherein The cross-sectional diameter of the limiting buckle groove (6) is larger than the cross-sectional diameter of the auxiliary transfer pipe (7). The connection relationship between the limiting buckle groove (6) and the auxiliary transfer pipe (7) is movable sleeving.

5. The finned energy storage cooling pipeline according to claim 1, wherein, A power motor (10) is fixedly installed at the top of one side of the cooling transfer machine (1) away from the water adding pipe (8). The bottom end inside the cooling transfer machine (1) is fixedly connected with a power connection chassis (11). A rotating shaft (12) is rotatably connected to the top of one side of the power connection chassis (11). A transfer wheel blade (13) is fixedly installed on the surface of one side of the rotating shaft (12). A top limiting disc (14) is fixedly connected to the top of one side of the rotating shaft (12).

6. The finned energy storage cooling pipeline according to claim 5, characterized in that, A motor controller (15) is fixedly installed on the surface of one side of the power motor (10). A power connection groove (16) is opened on one side of the motor controller (15). A control display (17) is fixedly installed on the front of the motor controller (15). A control panel (18) is arranged on one side of the front of the motor controller (15).

7. The finned energy storage cooling pipeline according to claim 5, characterized in that, The connection relationship between the power motor (10) and the power connection chassis (11) is power transmission connection. The connection relationship between the power motor (10) and the rotating shaft (12) is transmission connection.

8. The finned energy storage cooling pipeline according to claim 5, characterized in that, The transfer wheel blades (13) are distributed in a circular pattern on the surface of the rotating shaft (12). The cross-sectional diameter of the top limiting disc (14) is larger than the cross-sectional diameter of the rotating shaft (12).