Automatic spraying and cooling equipment for engineering PE plate

By designing automatic spray cooling equipment at the construction site of the engineering PE plate, and using temperature sensors and rotating mechanisms, automatic spray cooling is achieved based on temperature, solving the problem that existing equipment cannot be automatically adjusted, and improving the practicality and cooling efficiency of the equipment.

CN223138199UActive Publication Date: 2025-07-22ZHEJIANG QIANSHUI CONSTRUCTION CO LTD
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Patent Information

Application Number
CN202422358314.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2025-07-22
Estimated Expiration
2034-09-26

AI Technical Summary

Technical Problem

Existing cooling equipment cannot automatically spray and cool down according to the temperature, reducing its practicality.

Method used

An engineering PE plate automatic spray cooling equipment is designed, including an electronic control box, a pumping pump, a conveying pipe, a connecting pipe, a nozzle, a rotation mechanism and a temperature sensor. The temperature is monitored through the temperature sensor and the pumping pump and a rotation mechanism are controlled to achieve automatic spray cooling.

Benefits of technology

Automatic spray cooling is achieved according to temperature, improving the practicality of the equipment, and reasonable structure and low production cost.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses automatic spraying cooling equipment for an engineering PE plate, and relates to the technical field of cooling equipment. The conveying pipe is communicated with one connecting pipe, an inserting pipe is fixed to one end of each connecting pipe and inserted into the other end of the connecting pipe adjacent to the inserting pipe, a connecting screw pipe is connected to each connecting pipe in a screwed mode through threads, and the other side of each connecting screw pipe is connected to the other connecting pipe adjacent to the connecting pipe in a screwed mode through threads. The outer ends of the two connecting pipes on the outermost side are both in threaded connection with sealing covers. A spray pipe penetrates through the upper side wall of the fixed seat and is screwed through a bearing; a plurality of nozzles penetrate through the top end of the spray pipe at equal angles; the rotating mechanism is arranged in the fixed seat and is connected with the spray pipe and the shunt pipe; the temperature sensor is arranged on the upper side of the connecting screw pipe, the temperature sensor is connected to one ends of the two adjacent connecting pipes through a mounting mechanism, and the temperature sensor is connected with the pumping pump through the controller; and in the construction process, spraying cooling can be automatically carried out according to the height of the temperature, and the practicability is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of cooling equipment, in particular to an automatic spraying cooling equipment for engineering PE boards. Background Art

[0002] With the acceleration of the industrialization and urbanization processes, the construction industry has also developed rapidly. During the construction of building projects, most construction sites are used outdoors, and in hot weather, the ground of construction sites will generate relatively high temperatures, which will seriously affect the normal construction of workers if severe. Therefore, it is necessary to carry out cooling operations at the construction sites of building projects. However, the existing cooling equipment cannot automatically spray and cool according to the temperature, reducing the practicability. Content of the Utility Model

[0003] The purpose of the utility model is to provide an automatic spraying cooling equipment for engineering PE boards with reasonable design and convenient use, which can effectively solve the defects existing in the above-mentioned prior art.

[0004] To achieve the above purpose, the utility model adopts the following technical solutions: It includes an electric control box, a pumping and conveying pump, and a conveying pipe. The pumping and conveying pump is fixed on the outer bottom wall of the electric control box. The feed pipe of the pumping and conveying pump is connected to an external water source through a pipeline, and the discharge end of the pumping and conveying pump is connected to a conveying pipe. The electric control box is connected to the pumping and conveying pump; It further includes:

[0005] Connecting pipes, several of the connecting pipes are provided, and they are arranged end to end in sequence. The conveying pipe is communicated with one of the connecting pipes. One end of the connecting pipe is fixed with an insertion pipe, and the insertion pipe is inserted into the other end of the adjacent connecting pipe. A connecting screw pipe is screwed on the connecting pipe, and the other side of the connecting screw pipe is screwed on another adjacent connecting pipe. Sealing caps are screwed on the outer ends of the two outermost connecting pipes;

[0006] Fixed seats, several of the fixed seats are provided, and they are sleeved and fixed on the middle sections of the connecting pipes one by one. A spray pipe is penetrated and rotatably connected to the upper side wall of the fixed seat through a bearing, and several nozzles are penetrated and fixed at equal angles at the top end of the spray pipe;

[0007] Rotating mechanisms, several of the rotating mechanisms are provided, and they are arranged in the fixed seats one by one. The rotating mechanisms are connected to the spray pipe and a shunt pipe;

[0008] Temperature sensors, several of the temperature sensors are provided, and they are arranged on the upper sides of the connecting screw pipes one by one. The temperature sensors are connected to one ends of two adjacent connecting pipes through a mounting mechanism, and the temperature sensors are connected to the pumping and conveying pump through a controller;

[0009] Through the above technical solution, according to the area that needs to be cooled, an appropriate number of connecting pipes are selected, and the head and tail are inserted and connected through the insertion pipes. Then, the adjacent two connecting pipes are positioned through the connecting screw pipes. Then, the temperature sensor is installed at the ends of the adjacent two connecting pipes through the installation mechanism. At this time, the surrounding temperature is monitored by the temperature sensor. When the temperature is relatively high, the temperature sensor starts the pumping pump through the controller. The pumping pump pumps the external water source into the delivery pipe and then into several connecting pipes. At this time, the rotating mechanism is started, and the rotating mechanism drives the nozzle pipe to rotate. During the rotation of the nozzle pipe, water is sprayed out through the nozzles.

[0010] As a further improvement of the present utility model, the rotating mechanism includes:

[0011] A rotating motor, the rotating motor is embedded and fixed on one side inside the fixed seat. A rotating rod is fixed on the output shaft of the rotating motor. The rotating rod is rotationally connected in the fixed seat through a bearing. The rotating rod is connected to the lower end of the nozzle pipe through a worm and worm gear pair;

[0012] A communicating pipe, the lower end of the communicating pipe communicates with and is fixedly connected to the connecting pipe. The convex pipe at the upper end of the communicating pipe is rotationally connected and inserted into the nozzle pipe through a sealing bearing;

[0013] Through the above technical solution, when the rotating motor is started, the rotating motor drives the rotating rod to rotate. The rotating rod drives the nozzle pipe to rotate through the worm and worm gear pair. After the clear water enters the connecting pipe and then enters the communicating pipe, it then enters the nozzle pipe, thus not affecting the rotation of the nozzle pipe.

[0014] As a further improvement of the present utility model, the installation mechanism includes:

[0015] An installation plate, the installation plate is suspended on the upper side of the connecting screw pipe. The temperature sensor is fixed on the installation plate. A bidirectional lead screw is rotationally connected in the installation plate through a bearing. The middle end of the bidirectional lead screw is connected to the output shaft of the installation motor through a bevel gear pair. The installation motor is embedded and fixed in the installation plate;

[0016] Insertion plates, there are two insertion plates, and they are symmetrically arranged on the left and right and movably arranged in the installation plate. The insertion plates on both sides are respectively screwed to the two ends of the bidirectional lead screw through threads;

[0017] Installation blocks, there are two installation blocks, and they are respectively sleeved on the ends of the insertion plates located outside the installation plate. The connecting rings on the lower sides of the installation blocks are rotationally connected and sleeved on the adjacent two connecting pipes on both sides. The lower sides of the outer walls of the connecting rings on the lower sides of the installation blocks are all fixed with insertion rods;

[0018] Through the above technical solution, during installation, the installation motor is started. The installation motor is connected to the bidirectional lead screw through a bevel gear pair. During the rotation of the bidirectional lead screw, the insertion plate is driven to move towards the side away from the center of the installation plate until the insertion plate is inserted into the corresponding installation block, and the insertion rod at the bottom of the installation block is inserted into the gap between the corresponding steel bars or into the soil, thereby positioning the installation block and the installation plate.

[0019] As a further improvement of the present utility model, a limiting block is fixed on the bottom wall of the installation plate, and the limiting block is inserted into the outer ring wall of the adjacent connecting screw pipe;

[0020] Through the above technical solution, it is convenient to limit the connecting screw pipe and avoid the phenomenon of the connecting screw pipe loosening.

[0021] As a further improvement of the present utility model, a baffle is suspended above the temperature sensor, and the four corners of the baffle are respectively connected to the installation plate through support rods;

[0022] Through the above technical solution, it is possible to prevent the cooling clear water from being sprayed onto the temperature sensor, thereby avoiding errors in the temperature monitoring by the temperature sensor.

[0023] Compared with the prior art, the beneficial effects of the present utility model are as follows: For an automatic spraying and cooling device for engineering PE boards of the present utility model, during construction, it can automatically spray and cool according to the temperature, improving the practicability. The present utility model has the advantages of reasonable setting and low manufacturing cost. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a structural schematic diagram of the present utility model.

[0025] Figure 2 It is an exploded view of the connecting pipe, the insertion pipe, and the connecting screw pipe in the present utility model.

[0026] Figure 3 It is Figure 2 the enlarged view of part A in

[0027] Figure 4 It is an exploded view of the spray pipe and the rotating mechanism in the present utility model.

[0028] Figure 5 It is an exploded view of the connecting screw pipe, the installation mechanism, and the temperature sensor in the present utility model.

[0029] Figure 6 It is Figure 5 the enlarged view of part B in

[0030] Description of the reference numerals:

[0031] Electric control box 1, pumping and conveying pump 2, conveying pipe 3, connecting pipe 4, insertion pipe 5, connecting screw pipe 6, sealing cover 7, fixed seat 8, spray pipe 9, nozzle 10, rotating mechanism 11, rotating motor 11-1, rotating rod 11-2, communicating pipe 11-3, temperature sensor 12, mounting mechanism 13, mounting plate 13-1, bidirectional lead screw 13-2, mounting motor 13-3, insertion plate 13-4, mounting block 13-5, insertion rod 13-6, limiting block 14, baffle 15. Detailed implementation mode

[0032] The following will combine the attached drawings to clearly and completely describe the technical solutions in the present utility model. Only the preferred embodiments in the description are taken as examples. All other embodiments obtained by those skilled in the art without creative efforts belong to the protection scope of the present utility model.

[0033] Embodiment 1:

[0034] As Figures 1-6 shown, this embodiment includes an electric control box 1, a pumping and conveying pump 2 and a conveying pipe 3. The pumping and conveying pump 2 is fixed on the outer bottom wall of the electric control box 1 by bolts. The feed pipe of the pumping and conveying pump 2 is connected to an external water source through a pipeline. The discharge end of the pumping and conveying pump 2 is connected to a conveying pipe 3. The electric control box 1 is connected to the pumping and conveying pump 2; it further includes:

[0035] Connecting pipes 4, several of the connecting pipes 4 are arranged with their heads and tails connected in sequence. The conveying pipe 3 is communicated with one of the connecting pipes 4. The right end of the connecting pipe 4 is welded and fixed with an insertion pipe 5. The insertion pipe 5 is inserted into the left end of the adjacent connecting pipe 4. A connecting screw pipe 6 is screwed on the connecting pipe 4. The right side of the connecting screw pipe 6 is screwed on another adjacent connecting pipe 4. Sealing covers 7 are screwed on the outer ends of the two outermost connecting pipes 4;

[0036] Fixed seats 8, several of the fixed seats 8 are sleeved and fixed on the middle parts of the connecting pipes 4 in one-to-one correspondence. The upper side wall of the fixed seat 8 is penetrated and rotatably connected with a spray pipe 9 through a bearing. The top end of the spray pipe 9 is penetrated and fixed with several nozzles 10 at equal angles;

[0037] Rotating mechanisms 11, several of the rotating mechanisms 11 are arranged in the fixed seats 8 in one-to-one correspondence. The rotating mechanisms 11 are connected to the spray pipe 9 and the shunt pipe;

[0038] Temperature sensors 12, several of the temperature sensors 12 are arranged on the upper sides of the connecting screw pipes 6 in one-to-one correspondence. The temperature sensors 12 are connected to one ends of two adjacent connecting pipes 4 through a mounting mechanism 13. The temperature sensors 12 are connected to the pumping and conveying pump 2 through a controller.

[0039] Embodiment 2:

[0040] Refer to Figure 4 As shown, on the basis of Embodiment 1, the rotation mechanism 11 includes:

[0041] A rotation motor 11-1, which is embedded and fixed by bolts on the left side inside the fixed seat 8. A rotating rod 11-2 is fixed on the output shaft of the rotation motor 11-1. The rotating rod 11-2 is rotatably connected in the fixed seat 8 through a bearing. The rotating rod 11-2 is connected to the lower end of the spray pipe 9 through a worm and worm gear pair;

[0042] A communicating pipe 11-3, the lower end of the communicating pipe 11-3 communicates with and is welded and fixed to the connecting pipe 4. The convex pipe at the upper end of the communicating pipe 11-3 is rotatably inserted into the spray pipe 9 through a sealed bearing.

[0043] Embodiment 3:

[0044] Refer to Figure 1 、 Figures 5-6 As shown, on the basis of Embodiment 1, the installation mechanism 13 includes:

[0045] An installation plate 13-1, which is suspended above the connecting screw pipe 6. The temperature sensor 12 is fixed to the installation plate 13-1 by bolts. A bidirectional lead screw 13-2 is rotatably connected inside the installation plate 13-1 through a bearing. The middle end of the bidirectional lead screw 13-2 is connected to the output shaft of the installation motor 13-3 through a bevel gear pair. The installation motor 13-3 is embedded and fixed to the installation plate 13-1 by bolts; A limiting block 14 is welded and fixed to the bottom wall of the installation plate 13-1. The limiting block 14 is inserted into the outer ring wall of the adjacent connecting screw pipe 6, which can facilitate the limitation of the connecting screw pipe 6 and prevent the connecting screw pipe 6 from loosening;

[0046] A baffle 15 is suspended above the temperature sensor 12. The four corners of the baffle 15 are respectively connected to the installation plate 13-1 through support rods, which can prevent the cooling clear water from spraying onto the temperature sensor 12 and causing errors in the temperature monitoring by the temperature sensor 12;

[0047] There are two insertion plates 13-4, and they are symmetrically and movably arranged on the left and right inside the installation plate 13-1. The two sides of the insertion plates 13-4 are respectively screwed to the two ends of the bidirectional lead screw 13-2;

[0048] There are two installation blocks 13-5, and they are respectively sleeved on one end of the insertion plates 13-4 located outside the installation plate 13-1. The connecting rings on the lower sides of the installation blocks 13-5 are rotatably sleeved on the adjacent two sides of the connecting pipe 4 through bearings. The lower sides of the outer ring walls of the connecting rings on the lower sides of the installation blocks 13-5 are all welded and fixed with insertion rods 13-6.

[0049] When using the present utility model, according to the area to be cooled, select an appropriate number of connecting pipes 4, and connect the head and tail through the insertion pipe 5. Then, position two adjacent connecting pipes 4 through the connecting screw pipe 6. Next, start the installation motor 13-3. The installation motor 13-3 is connected to the bidirectional lead screw 13-2 through a bevel gear pair. During the rotation of the bidirectional lead screw 13-2, the insertion plate 13-4 is driven to move towards the side away from the center of the mounting plate 13-1 until the insertion plate 13-4 is inserted into the corresponding mounting block 13-5, and the insertion rod 13-6 at the bottom of the mounting block 13-5 is inserted into the gap between the corresponding steel bars or into the soil, so as to position the mounting block 13-5 and the mounting plate 13-1. At this time, the temperature sensor 12 monitors the surrounding temperature. When the temperature is high, the temperature sensor 12 starts the pumping pump 2 through the controller. The pumping pump 2 pumps the external water source to the delivery pipe 3 and then into several connecting pipes 4. At this time, start the rotating motor 11-1. The rotating motor 11-1 drives the rotating rod 11-2 to rotate. The rotating rod 11-2 drives the spray pipe 9 to rotate through a worm and worm gear pair. After the clear water enters the connecting pipe 4 and then into the communicating pipe 11-3, it enters the spray pipe 9, thus not affecting the rotation of the spray pipe 9. During the rotation of the spray pipe 9, water is sprayed through the nozzle 10.

[0050] Compared with the prior art, the beneficial effects of the present specific embodiment are as follows:

[0051] 1. During the construction process, the pumping pump 2 can be controlled by the temperature sensor 12 according to the temperature, so as to automatically perform spray cooling, improving the practicability.

[0052] 2. The temperature sensor 12 can be installed on the upper side of two adjacent connecting pipes 4 through the installation mechanism 13, so as to facilitate the selection and installation of an appropriate number of temperature sensors 12 according to the area to be cooled, and the operation is simple.

[0053] 3. The spray pipe 9 is connected to the connecting pipe 4 through the rotating mechanism 11, and during the spraying process, the spray pipe 9 can be driven to rotate by the rotating mechanism 11, thus increasing the cooling area.

[0054] For those skilled in the art, they can modify the technical solutions recorded in the foregoing embodiments and perform equivalent substitution of some technical features. Any modification, equivalent substitution, improvement, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. An automatic spray cooling device for engineering PE boards, characterized in that: It includes an electric control box (1), a pumping pump (2) and a conveying pipe (3). The pumping pump (2) is fixed on the outer bottom wall of the electric control box (1). The feed pipe of the pumping pump (2) is connected to an external water source through a pipeline. The discharge end of the pumping pump (2) is connected to the conveying pipe (3), and the electric control box (1) is connected to the pumping pump (2). It further includes: Connecting pipes (4), several of the connecting pipes (4) are arranged with their heads and tails connected to each other in pairs. The conveying pipe (3) is communicated with one of the connecting pipes (4). One end of the connecting pipe (4) is fixed with an insertion pipe (5), and the insertion pipe (5) is inserted into the other end of the adjacent connecting pipe (4). A connecting screw pipe (6) is screwed onto the connecting pipe (4) through a thread, and the other side of the connecting screw pipe (6) is screwed onto another adjacent connecting pipe (4). Sealing caps (7) are screwed onto the outer ends of the two outermost connecting pipes (4); Fixed seats (8), several of the fixed seats (8) are sleeved and fixed on the middle parts of the connecting pipes (4) in one-to-one correspondence. A spray pipe (9) is penetrated and rotatably connected to the upper side wall of the fixed seat (8) through a bearing. Several nozzles (10) are penetrated and fixed at equal angles at the top end of the spray pipe (9); Rotating mechanisms (11), several of the rotating mechanisms (11) are arranged in the fixed seats (8) in one-to-one correspondence, and the rotating mechanisms (11) are connected to the spray pipe (9) and the shunt pipe; Temperature sensors (12), several of the temperature sensors (12) are arranged on the upper side of the connecting screw pipe (6) in one-to-one correspondence. The temperature sensors (12) are connected to one end of two adjacent connecting pipes (4) through an installation mechanism (13), and the temperature sensors (12) are connected to the pumping pump (2) through a controller.

2. The automatic spray cooling device for engineering PE board according to claim 1, wherein: The rotating mechanism (11) includes: A rotating motor (11-1), the rotating motor (11-1) is embedded and fixed on one side inside the fixed seat (8). A rotating rod (11-2) is fixed on the output shaft of the rotating motor (11-1). The rotating rod (11-2) is rotatably connected in the fixed seat (8) through a bearing, and the rotating rod (11-2) is connected to the lower end of the spray pipe (9) through a worm and gear pair; A communicating pipe (11-3), the lower end of the communicating pipe (11-3) is communicated and fixedly connected to the connecting pipe (4), and the convex pipe at the upper end of the communicating pipe (11-3) is rotatably inserted into the spray pipe (9) through a sealing bearing.

3. An automatic spray cooling device for engineering PE boards according to claim 1, characterized in that: The installation mechanism (13) includes: An installation plate (13-1), the installation plate (13-1) is suspended on the upper side of the connecting screw pipe (6). The temperature sensor (12) is fixed on the installation plate (13-1). A bidirectional lead screw (13-2) is rotatably connected in the installation plate (13-1) through a bearing. The middle end of the bidirectional lead screw (13-2) is connected to the output shaft of an installation motor (13-3) through a bevel gear pair, and the installation motor (13-3) is embedded and fixed in the installation plate (13-1); Plugboard (13 - 4), there are two of the plugboards (13 - 4), and they are symmetrically and movably arranged on the left and right inside the mounting plate (13 - 1). The plugboards (13 - 4) on both sides are respectively screwed to the two ends of the bidirectional lead screw (13 - 2); Mounting blocks (13 - 5), there are two of the mounting blocks (13 - 5), and they are respectively sleeved on one end of the plugboard (13 - 4) located outside the mounting plate (13 - 1). The connecting ring on the lower side of the mounting block (13 - 5) is rotatably sleeved on the adjacent connecting pipes (4) on both sides through a bearing. The lower sides of the outer wall of the connecting ring on the lower side of the mounting block (13 - 5) are all fixed with insertion rods (13 - 6).

4. An automatic spraying and cooling device for engineering PE boards according to claim 3, characterized in that: A limiting block (14) is fixed on the bottom wall of the mounting plate (13 - 1), and the limiting block (14) is inserted into the outer wall of the adjacent connecting screw pipe (6).

5. An automatic spray cooling device for engineering PE boards according to claim 3, characterized in that: A baffle (15) is suspended above the temperature sensor (12), and the four corners of the baffle (15) are respectively connected to the mounting plate (13 - 1) through support rods.