Automatic winding device for water treatment winding tank production

By adopting extrusion barrel and support plate design in the water treatment winding tank production device, combining motor, cylinder and air cooling technology, the problems of winding accuracy and consistency are solved, production efficiency and product quality are improved, and tank production is adapted to different specifications.

CN223266253UActive Publication Date: 2025-08-26CANATURE HUAYU ENVIRONMENTAL PROD CO LTD
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Patent Information

Application Number
CN202422542090.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-21
Publication Date
2025-08-26
Estimated Expiration
2034-10-21

AI Technical Summary

Technical Problem

The existing automatic winding device for water treatment winding tank production is difficult to achieve high winding accuracy and consistency, resulting in poor process consistency of each batch of products, the inadequate extrusion nozzle cannot be adjusted and affects the inconsistency of the tank wall thickness, density and structure, and the natural cooling and mold release efficiency are low, which affects production efficiency and energy consumption.

Method used

The extrusion barrel and support plate design are adopted, and the component position is accurately adjusted through motor and cylinder control, the extrusion nozzle and heating ring are adjusted, and combined with air-cooling and cooling technology, the material is uniformly heated and cooled, ensuring winding accuracy and consistency, and adapting to tank production in different specifications.

Benefits of technology

It improves winding accuracy and consistency, enhances the adaptability and flexibility of the production line, reduces cooling time and energy consumption, and improves production efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of water treatment winding tank production, and discloses an automatic winding device for water treatment winding tank production, which comprises a bottom plate, one side of the bottom plate is provided with a first sliding groove, a first sliding block is arranged in the first sliding groove, and the first sliding block is in threaded connection with a first screw rod; a first motor is fixedly installed at one end of the bottom plate, a first sliding block is fixedly connected with a first supporting plate, a second sliding groove is formed in the first supporting plate, a first air cylinder is fixedly installed in the second sliding groove, a first telescopic rod is arranged on the first air cylinder, and a second sliding block is fixedly connected to the upper end of the first telescopic rod; and the second sliding block is fixedly connected with an extrusion barrel. Through the arrangement of the extrusion barrel and the first supporting plate, the extrusion speed and quantity of materials can be accurately controlled to ensure uniform extrusion of the materials, meanwhile, the precision during extrusion and winding is ensured, and stable production efficiency and product quality can be maintained.
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Description

Technical Field

[0001] The utility model relates to the technical field of production of water treatment wound tanks, in particular to an automatic winding device for the production of water treatment wound tanks. Background Art

[0002] Water treatment spiral wound tanks are specialized components used in the water treatment industry, primarily for storing or transporting treated water. These tanks typically utilize specialized manufacturing processes, such as spiral wound technology, to enhance their corrosion resistance, pressure resistance, and service life.

[0003] When using the existing automatic winding device for the production of water treatment wound tanks, it is difficult to achieve very high winding accuracy and consistency when winding particularly precise tank bodies, resulting in poor process consistency between each batch of products. In addition, due to the non-adjustability of the extrusion nozzle of the existing winding device, the wall thickness, density and structure of the wound tanks produced are inconsistent, which will directly affect the strength, durability and sealing of the finished product, and thus affect the overall performance and service life of the water treatment tank. Secondly, the existing winding device must wait for the product to naturally cool to a safe processing temperature before subsequent processing or demolding can be carried out, which directly affects production efficiency and increases energy consumption and time costs of the product.

[0004] Therefore, an automatic winding device for producing water treatment wound tanks is proposed. Utility Model Content

[0005] The main purpose of the utility model is to provide an automatic winding device for the production of water treatment wound cans, which can effectively solve the problem that it is difficult to achieve very high winding accuracy and consistency when winding particularly precise cans, resulting in poor process consistency between each batch of products, as well as the problem that the wall thickness, density and structure of the produced wound cans are inconsistent due to the non-adjustability of the extrusion nozzle, affecting the strength, durability and sealing of the finished product. Secondly, the natural cooling and demoulding cooling efficiency affects the production efficiency and increases the energy consumption and time cost of the product.

[0006] To achieve the above-mentioned purpose, the technical solution adopted by the present invention is as follows: an automatic winding device for producing a water treatment winding tank comprises a bottom plate, a first slide groove is provided on one side of the bottom plate, a first slider is provided in the first slide groove, a first screw is connected to the inner thread of the first slider, one end of the bottom plate is fixedly installed with a first motor, an output shaft of the first motor is movably inserted through the bottom plate and fixedly connected to the first screw, the first screw is rotatably connected to the bottom wall of the first slide groove away from one end of the first motor, the first slider is slidably arranged in the first slide groove, a first support plate is fixedly connected on the first slider, a second slide groove is provided on the first support plate, a first cylinder is fixedly installed in the second slide groove, a first telescopic rod is provided on the first cylinder, an upper end of the first telescopic rod is fixedly connected to a second slider, the second slider is slidably arranged in the second slide groove, an extrusion barrel is fixedly connected on the second slider, a first rotating shaft is provided in the extrusion barrel, a second motor is fixedly installed on one end of the extrusion barrel, the output shaft of the second motor is movably inserted through the extrusion barrel and fixedly connected to the first rotating shaft, and a spiral blade is fixedly connected to the first rotating shaft;

[0007] The extrusion barrel is connected to a connecting pipe, and the connecting pipe is connected to a feeding barrel. Four heating rings are equidistantly arranged on the surface of the extrusion barrel. The extrusion barrel is connected to an extrusion nozzle at one end away from the second motor. There is a third chute on the extrusion nozzle, and two adjustment plates are equidistantly arranged in the third chute. The two adjustment plates are slidably arranged in the third chute, and one end of the two adjustment plates is fixedly connected to a fixed block. The upper and lower ends of the extrusion nozzle are rotatably connected to the second screw, and the two second screws are respectively threaded through the two fixed blocks. One end of the two second screws is fixedly connected to a runner.

[0008] Preferably, a fourth slide groove is provided on the bottom plate, a third slider is provided in the fourth slide groove, a second support plate is fixedly connected to the third slider, a first bearing is fixedly sleeved in the second support plate, a first shaft rod is rotatably connected in the first bearing, a third motor is fixedly installed on one side of the second support plate, an output end of the third motor is fixedly connected to the first shaft rod, and a first cross slide groove is provided on the first shaft rod.

[0009] Preferably, a second cylinder is provided on one side of the second support plate, the second cylinder is fixedly connected to the bottom plate, a second telescopic rod is provided at one end of the second cylinder, and one end of the second telescopic rod is fixedly connected to the second support plate.

[0010] Preferably, a third support plate is provided on one end of the base plate away from the second support plate, and the third support plate is fixedly connected to the base plate, a second bearing is fixedly sleeved on the third support plate, a second shaft rod is rotatably connected in the second bearing, and a second cross slot is provided on the second shaft rod.

[0011] Preferably, a mold barrel is provided between the third support plate and the second support plate, and a fixing frame is fixedly connected to both ends of the mold barrel, one end of each of the two fixing frames is fixedly connected to a fixed shaft, one end of each of the two fixed shafts is fixedly connected to a cross slider, and the two cross sliders are respectively slidably arranged in the first cross slide groove and the second cross slide groove.

[0012] The transmission mechanism that this second motor is used for the rotation of the steering wheel is fixedly mounted on the steering column, and the transmission mechanism that this second motor is used for the rotation of the steering wheel is fixedly mounted on the steering column, and the transmission mechanism that this second motor is used for the rotation of the steering wheel is fixedly mounted on the steering column.

[0013] Preferably, an electric control box is fixedly installed on one side of the base plate, and the output ends of the electric control box are electrically connected to the input ends of the first motor, the first cylinder, the second motor, the heating ring, the second cylinder, the third motor, the fourth motor, the third cylinder, and the fifth motor.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] 1. The utility model can solve the problem of poor process consistency between each batch of products due to the difficulty in achieving very high winding accuracy when winding a particularly precise can body through the provision of the extrusion barrel and the first support plate. By controlling the first motor to operate, the first screw is rotated in the first chute, and the first slider is slid in the first chute, so that the first support plate can be moved. This design can accurately adjust the application scenario of the component position. By controlling the first cylinder to operate, the first telescopic rod drives the second slider to slide in the second chute, so that the extrusion barrel can be adjusted according to the use requirements. The provision of the feeding barrel facilitates the pouring of granular materials. After the granular materials are poured in, they are circulated through the connecting pipe. The granular material is put into the extrusion barrel and the second motor is controlled to work so that the first shaft drives the spiral blade to rotate in the extrusion barrel, so that the granular material is spirally extruded and transported. The granular material in the extrusion barrel can be evenly heated by controlling the work of the four heating rings to ensure that the melting state of the granular material is consistent during the extrusion process. The hot-melt material is extruded outward through the extrusion nozzle. This design can accurately control the extrusion speed and amount of the material, ensure uniform extrusion of the material, and ensure the accuracy of extrusion winding, so as to maintain stable production efficiency and product quality. It effectively solves the problem that it is difficult to achieve very high winding accuracy and consistency when winding particularly precise tanks, which will lead to poor process consistency between each batch of products.

[0016] 2. The utility model can solve the problem of the non-adjustability of the extrusion nozzle and the inconsistent wall thickness, density and structure of the produced winding cans, which affects the strength, durability and sealing of the finished product by setting two adjustment plates and the third chute. The hot-melt material is extruded outward through the extrusion nozzle. The second screw can be rotated by rotating the two wheels, and the fixed block can be moved, so that the two adjustment plates can be moved and adjusted in the third chute. Such an adjustable extrusion nozzle enables the equipment to adapt to the production of winding cans of different specifications and design requirements. Whether it is diameter, height or wall thickness, it can be achieved through adjustment, which greatly improves the adaptability and flexibility of the production line and effectively solves the problem of the non-adjustability of the extrusion nozzle and the inconsistent wall thickness, density and structure of the produced winding cans, which affects the strength, durability and sealing of the finished product.

[0017] 3. The utility model solves the problem of natural cooling demolding, affecting production efficiency and increasing energy consumption and time cost of products by arranging four fan blades and four support plates. By controlling the operation of the fourth motor, the third screw is rotated in the fifth slide groove, and the fourth slider slides in the fifth slide groove, so that the fourth support plate can be moved. This design can accurately adjust the application scenario of the component position. By controlling the operation of the third cylinder, the third telescopic rod drives the fifth slider at one end to slide in the sixth slide groove. The telescopic action of the third telescopic rod driven by the third cylinder can be used to quickly respond to changes in external conditions and make adjustments. Then, by controlling the operation of the fifth motor, the second rotating shaft and the four fan blades can be rotated. The rotation of the four fan blades stirs the air flow, and the surface of the mold barrel is cooled by air to improve the cooling efficiency. This design can also perform mobile cooling during the extrusion and winding process. Synchronous cooling helps to control the cooling rate of the material, prevent thermal deformation or internal stress concentration caused by uneven cooling, and effectively solves the problem of low natural cooling demolding efficiency, affecting production efficiency and increasing energy consumption and time cost of products.

[0018] The parts not involved in the device are the same as those in the prior art or can be implemented by using the prior art. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is a schematic diagram of the overall structure from a first perspective of the automatic winding device for producing water treatment wound tanks of the present invention.

[0020] Figure 2 This is a second perspective overall structural diagram of the automatic winding device for producing water treatment wound tanks of the present invention.

[0021] Figure 3 This is a schematic diagram of the extrusion barrel structure of the automatic winding device for producing water treatment winding tanks in the utility model.

[0022] Figure 4 This is a schematic diagram of the movement state of the adjustment plate of the extrusion barrel of the automatic winding device for the production of water treatment winding tanks in the utility model.

[0023] Figure 5 This is a cross-sectional view of the extrusion barrel of the automatic winding device for producing water treatment winding tanks according to the utility model.

[0024] Figure 6 This utility model is an automatic winding device for producing water treatment winding tanks Figure 5 A magnified view of center.

[0025] Figure 7 This is a schematic diagram of the bottom plate structure of the automatic winding device for producing water treatment winding tanks in the utility model.

[0026] Figure 8This is a structural schematic diagram of the first support plate and extrusion barrel of the automatic winding device for producing water treatment wound tanks of the utility model.

[0027] Figure 9 This is a schematic diagram of the second support plate structure of the automatic winding device for producing water treatment wound tanks in the utility model.

[0028] Figure 10 This is a schematic structural diagram of the third support plate of the automatic winding device for producing water treatment wound tanks of the present invention.

[0029] Figure 11 This is a schematic diagram of the mold barrel structure of the automatic winding device for producing water treatment winding tanks in the utility model.

[0030] Figure 12 This is a schematic structural diagram of the fourth support plate of the automatic winding device for producing water treatment wound tanks of the utility model.

[0031] In the figure: 1, bottom plate; 2, first chute; 3, first screw; 4, first motor; 5, first slider; 6, first support plate; 7, second chute; 8, first cylinder; 9, first telescopic rod; 10, second slider; 11, extrusion barrel; 12, first rotating shaft; 13, second motor; 14, spiral blade; 15, feeding barrel; 16, connecting pipe; 17, heating coil; 18, extrusion nozzle; 19, third chute; 20, adjusting plate; 21, fixing block; 22, second screw; 23, rotating wheel; 24, fourth chute; 25, second cylinder; 26, second telescopic rod; 27, third slider; 28, first Second support plate; 29, first bearing; 30, first shaft; 31, first cross slide; 32, third motor; 33, third support plate; 34, second bearing; 35, second cross slide; 36, second shaft; 37, mold barrel; 38, fixed frame; 39, fixed shaft; 40, cross slider; 41, fifth slide; 42, third screw; 43, fourth motor; 44, fourth slider; 45, fourth support plate; 46, sixth slide; 47, third cylinder; 48, third telescopic rod; 49, fifth slider; 50, fifth motor; 51, fan blade; 52, electric control box; 53, second rotating shaft. DETAILED DESCRIPTION

[0032] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0033] like Figure 1 - Figure 12As shown, an automatic winding device for the production of water treatment winding tanks includes a base plate 1, a first chute 2 is opened on one side of the base plate 1, a first slider 5 is arranged in the first chute 2, a first screw rod 3 is connected to the inner thread of the first slider 5, a first motor 4 is fixedly installed on one end of the base plate 1, an output shaft of the first motor 4 is movably inserted through the base plate 1 and fixedly connected to the first screw 3, and the first screw 3 is rotatably connected to the bottom wall of the first chute 2 at one end away from the first motor 4, the first slider 5 is slidably arranged in the first chute 2, a first support plate 6 is fixedly connected to the first slider 5, a second chute 7 is opened on the first support plate 6, a first cylinder 8 is fixedly installed in the second chute 7, a first telescopic rod 9 is arranged on the first cylinder 8, a second slider 10 is fixedly connected to the upper end of the first telescopic rod 9, the second slider 10 is slidably arranged in the second chute 7, and an extrusion barrel 11 is fixedly connected to the second slider 10;

[0034] A first rotating shaft 12 is provided in the extrusion barrel 11, a second motor 13 is fixedly installed at one end of the extrusion barrel 11, an output shaft of the second motor 13 movably passes through the extrusion barrel 11 and is fixedly connected to the first rotating shaft 12, a spiral blade 14 is fixedly connected to the first rotating shaft 12, a connecting pipe 16 is connected to the extrusion barrel 11, a feeding barrel 15 is connected to the connecting pipe 16, four heating rings 17 are equidistantly provided on the surface of the extrusion barrel 11, an extrusion nozzle 18 is connected to the end of the extrusion barrel 11 away from the second motor 13, and a third chute 19 is provided on the extrusion nozzle 18 , two adjustment plates 20 are equidistantly arranged in the third chute 19, and the two adjustment plates 20 are slidably arranged in the third chute 19, and one end of the two adjustment plates 20 is fixedly connected to a fixed block 21, and the upper and lower ends of the extrusion nozzle 18 are rotatably connected to the second screw 22, and the two second screws 22 are respectively threadedly connected to the two fixed blocks 21, and one end of the two second screws 22 is fixedly connected to a runner 23. By adopting the above technical solution: by controlling the first motor 4 to work, the first screw 3 is rotated in the first chute 2, so that the first slider 5 is in the first slide The first support plate 6 moves by sliding in the groove 2. By controlling the operation of the first cylinder 8, the first telescopic rod 9 drives the second slider 10 to slide in the second slide 7, so that the extrusion barrel 11 can be adjusted. The feeding barrel 15 is provided to facilitate the pouring of granular materials. After the granular materials are poured, they flow into the extrusion barrel 11 through the connecting pipe 16. The second motor 13 is controlled to work so that the first rotating shaft 12 drives the spiral blade 14 to rotate in the extrusion barrel 11, so that the granular materials are spirally extruded and transported. By controlling the operation of the four heating rings 17, the granular materials in the extrusion barrel 11 can be uniformly heated to ensure that the melting state of the granular materials is consistent during the extrusion process. The hot-melt material is extruded outward through the extrusion nozzle 18. By rotating the two runners 23, the second screw 22 can be rotated, which can move the fixed block 21 and move the two adjustment plates 20 in the third slide 19. The adjustable extrusion nozzle 18 enables the equipment to adapt to the production of winding cans with different specifications and design requirements. Whether it is diameter, height or wall thickness, it can be achieved through adjustment, which greatly improves the adaptability and flexibility of the production line.

[0035] like Figure 1 - Figure 9As shown, a fourth slide groove 24 is provided on the base plate 1, and a third slider 27 is provided in the fourth slide groove 24. The third slider 27 is fixedly connected to the second support plate 28, and a first bearing 29 is fixedly sleeved in the second support plate 28. The first shaft rod 30 is rotatably connected in the first bearing 29. A third motor 32 is fixedly installed on one side of the second support plate 28, and the output end of the third motor 32 is fixedly connected to the first shaft rod 30. A first cross slide groove 31 is provided on the first shaft rod 30. By adopting the above technical solution: the third slider 27 can slide in the fourth slide groove 24, and the second support plate 28 can fix the first bearing 29. The first cross slide groove 31 is provided on the first shaft rod 30 in the first bearing 29 to facilitate the clamping of components, and the first shaft rod 30 can be rotated by controlling the operation of the third motor 32.

[0036] like Figure 1 - Figure 7 As shown, a second cylinder 25 is provided on one side of the second support plate 28, and the second cylinder 25 is fixedly connected to the base plate 1. A second telescopic rod 26 is provided at one end of the second cylinder 25, and one end of the second telescopic rod 26 is fixedly connected to the second support plate 28. By adopting the above technical solution: the second cylinder 25 is controlled to work, so that the second telescopic rod 26 drives the second support plate 28 to move.

[0037] like Figure 1 - Figure 10 As shown, a third support plate 33 is provided on the base plate 1 at one end away from the second support plate 28, and the third support plate 33 is fixedly connected to the base plate 1, and a second bearing 34 is fixedly sleeved on the third support plate 33, and a second shaft rod 36 is rotatably connected in the second bearing 34, and a second cross groove 35 is provided on the second shaft rod 36. By adopting the above technical solution: the third support plate 33 can fix the second bearing 34, and the second cross groove 35 is provided on the second shaft rod 36 in the second bearing 34 to facilitate the clamping of components.

[0038] like Figure 1 - Figure 11 As shown, a mold barrel 37 is arranged between the third support plate 33 and the second support plate 28, and a fixing frame 38 is fixedly connected to both ends of the mold barrel 37, and one end of the two fixing frames 38 is fixedly connected to a fixed shaft 39, and one end of the two fixed shafts 39 is fixedly connected to a cross slider 40, and the two cross sliders 40 are respectively slidably arranged in the first cross slide 31 and the second cross slide 35. By adopting the above technical solution: the two fixing frames 38 can fix the mold barrel 37, and the cross slider 40 connected to one end of the two fixed shafts 39 can be slid and clamped in the first cross slide 31 and the second cross slide 35 by the two cross sliders 40, so that the mold barrel 37 can be fixed.

[0039] like Figure 1- Figure 12 As shown, a fifth slide groove 41 is provided on the side of the bottom plate 1 away from the first slide groove 2, and a fourth slider 44 is provided in the fifth slide groove 41. The fourth slider 44 is threadedly connected to the third screw 42, and a fourth motor 43 is fixedly installed at one end of the bottom plate 1. The output shaft of the fourth motor 43 movably passes through the bottom plate 1 and is connected to the third screw 42. The third screw 42 is rotatably connected to the bottom wall of the fifth slide groove 41 at one end away from the fourth motor 43. The fourth slider 44 is slidably provided in the fifth slide groove 41, and a fourth support plate 45 is fixedly connected to the fourth slider 44. A sixth slide groove 46 is provided on the fourth support plate 45, and a third cylinder 47 is fixedly installed in the sixth slide groove 46. A third telescopic rod 48 is provided on the third cylinder 47, and a fifth slider 49 is fixedly connected to the third telescopic rod 48. The fifth slider 49 is slidably provided In the sixth slide 46, a fifth motor 50 is fixedly installed at one end of the fifth slider 49, and the output shaft of the fifth motor 50 movably passes through the fifth slider 49 and is fixedly connected to the second rotating shaft 53. Four fan blades 51 are equidistantly installed on the surface of one end of the second rotating shaft 53. By adopting the above technical solution: by controlling the fourth motor 43 to work, the third screw 42 rotates in the fifth slide 41, and the fourth slider 44 slides in the fifth slide 41, the fourth support plate 45 can be moved, and by controlling the third cylinder 47 to work, the third telescopic rod 48 drives one end of the fifth slider 49 to slide in the sixth slide 46, and then by controlling the fifth motor 50 to work, the second rotating shaft 53 and the four fan blades 51 can be rotated. This design can move cooling, and synchronous cooling helps to control the cooling rate of the material.

[0040] An electric control box 52 is fixedly installed on one side of the base plate 1, and the output ends of the electric control box 52 are electrically connected to the input ends of the first motor 4, the first cylinder 8, the second motor 13, the heating coil 17, the second cylinder 25, the third motor 32, the fourth motor 43, the third cylinder 47, and the fifth motor 50.

[0041] It should be noted that the present invention is an automatic winding device for the production of water treatment winding tanks. When in use, the device is first placed in a designated position, and the first motor 4, the first cylinder 8, the second motor 13, the heating coil 17, the second cylinder 25, the third motor 32, the fourth motor 43, the third cylinder 47, the fifth motor 50 and the electric control box 52 are connected to an external power supply;

[0042] By pouring the granular material into the feeding barrel 15, the granular material flows into the extrusion barrel 11 through the connecting pipe 16 after being poured in, and the second motor 13 is operated by operating the electric control box 52, so that the first rotating shaft 12 drives the spiral blade 14 to rotate in the extrusion barrel 11, so that the granular material is spirally extruded and transported, and the granular material in the extrusion barrel 11 can be uniformly heated by controlling the operation of the four heating rings 17 to ensure that the melting state of the granular material is consistent during the extrusion process, and the hot-melt material is extruded outward through the extrusion nozzle 18. At this time, the third motor 32 on the second support plate 28 is controlled to work, so that the first shaft 30 can rotate in the first bearing 29, and the two cross slides 40 are respectively clamped in the first cross slot 31 and the second cross slot 35, so that the two fixed shafts 39 drive the two fixed frames 38 and the mold The mold barrel 37 rotates, and at the same time, the second shaft 36 rotates in the second bearing 34 on the third support plate 33, so that the hot-melt material adheres to the mold barrel 37. By controlling the first motor 4 to work, the first screw 3 rotates in the first chute 2, and the first slider 5 slides in the first chute 2, driving the first support plate 6 to move, and at the same time driving the upper extrusion barrel 11 to move horizontally to evenly wrap the hot-melt material around the surface of the mold barrel 37. Then, by controlling the fourth motor 43 to work, the third screw 42 rotates in the fifth chute 41, and the fourth slider 44 slides in the fifth chute 41, so that the fourth support plate 45 can be moved. At this time, the fifth motor 50 is controlled to work, so that the second rotating shaft 53 and the four fan blades 51 can be rotated. This design can be moved for cooling, and synchronous cooling helps to control the cooling rate of the material.

[0043] When the extrusion nozzle 18 needs to be adjusted, the second screw 22 can be rotated by rotating the two wheels 23, which can move the fixed block 21 and the two adjustment plates 20 can be moved and adjusted in the third chute 19. The adjustable extrusion nozzle 18 enables the equipment to adapt to the production of wrapping cans with different specifications and design requirements. Whether it is diameter, height or wall thickness, it can be achieved through adjustment, which greatly improves the adaptability and flexibility of the production line.

[0044] By driving the first telescopic rod 9 to extend and retract through the first cylinder 8, it is possible to quickly respond to changes in external conditions, so that the second slider 10 can slide and adjust in the second slide groove 7, so that the extrusion barrel 11 can be adjusted according to usage requirements; the third cylinder 47 is set to drive the third telescopic rod 48 to extend and retract, so that the fifth slider 49 can slide and adjust in the sixth slide groove 46; the second cylinder 25 set on the base plate 1 drives the second telescopic rod 26 to extend and retract, which can drive the third slider 27 at the lower end of the second support plate 28 to move and adjust in the fourth slide groove 24, so that the mold barrel 37 can be easily loaded and unloaded.

[0045] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.

Claims

1. An automatic winding device for producing a water treatment winding tank, comprising a bottom plate (1), characterized in that: A first slide groove (2) is provided on one side of the bottom plate (1), a first slider (5) is provided in the first slide groove (2), and the first slider (5) is connected to the first screw rod (3) through the inner thread, and a first motor (4) is fixedly installed on one end of the bottom plate (1), and the output shaft of the first motor (4) is movably inserted through the bottom plate (1) and fixedly connected to the first screw rod (3), and the end of the first screw rod (3) away from the first motor (4) is rotatably connected to the bottom wall of the first slide groove (2), and the first slider (5) is slidably provided in the first slide groove (2), and a first support plate (6) is fixedly connected to the first slider (5), and a second slide groove (7) is provided on the first support plate (6). A first cylinder (8) is fixedly installed in the second chute (7), a first telescopic rod (9) is provided on the first cylinder (8), a second slider (10) is fixedly connected to the upper end of the first telescopic rod (9), the second slider (10) is slidably provided in the second chute (7), an extrusion barrel (11) is fixedly connected to the second slider (10), a first rotating shaft (12) is provided in the extrusion barrel (11), a second motor (13) is fixedly installed at one end of the extrusion barrel (11), an output shaft of the second motor (13) movably passes through the extrusion barrel (11) and is fixedly connected to the first rotating shaft (12), and a spiral blade (14) is fixedly connected to the first rotating shaft (12); The extrusion barrel (11) is connected to a connecting pipe (16), and the connecting pipe (16) is connected to a feeding barrel (15). Four heating rings (17) are equidistantly arranged on the surface of the extrusion barrel (11). The end of the extrusion barrel (11) away from the second motor (13) is connected to an extrusion nozzle (18). A third chute (19) is provided on the extrusion nozzle (18). Two adjustment plates (20) are equidistantly arranged in the third chute (19). The two adjustment plates (20) are slidably arranged in the third chute (19). One end of the two adjustment plates (20) is fixedly connected to a fixed block (21). The upper and lower ends of the extrusion nozzle (18) are rotatably connected to a second screw (22), and the two second screws (22) are respectively threadedly connected to the two fixed blocks (21). One end of the two second screws (22) is fixedly connected to a rotating wheel (23).

2. The automatic winding device for producing water treatment wound tanks according to claim 1, characterized in that: A fourth slide groove (24) is provided on the bottom plate (1), a third slider (27) is provided in the fourth slide groove (24), a second support plate (28) is fixedly connected to the third slider (27), a first bearing (29) is fixedly sleeved in the second support plate (28), a first shaft (30) is rotatably connected in the first bearing (29), a third motor (32) is fixedly installed on one side of the second support plate (28), an output end of the third motor (32) is fixedly connected to the first shaft (30), and a first cross slide groove (31) is provided on the first shaft (30).

3. The automatic winding device for producing water treatment wound tanks according to claim 2, characterized in that: A second cylinder (25) is provided on one side of the second support plate (28), the second cylinder (25) is fixedly connected to the bottom plate (1), a second telescopic rod (26) is provided at one end of the second cylinder (25), and one end of the second telescopic rod (26) is fixedly connected to the second support plate (28).

4. The automatic winding device for producing water treatment wound tanks according to claim 3, characterized in that: A third support plate (33) is provided on one end of the base plate (1) away from the second support plate (28), and the third support plate (33) is fixedly connected to the base plate (1). A second bearing (34) is fixedly sleeved on the third support plate (33), and a second shaft (36) is rotatably connected in the second bearing (34). A second cross slot (35) is provided on the second shaft (36).

5. The automatic winding device for producing water treatment wound tanks according to claim 4, characterized in that: A mold barrel (37) is provided between the third support plate (33) and the second support plate (28), and a fixing frame (38) is fixedly connected to each end of the mold barrel (37), and one end of each of the two fixing frames (38) is fixedly connected to a fixing shaft (39), and one end of each of the two fixing shafts (39) is fixedly connected to a cross slide (40), and the two cross slides (40) are slidably provided in the first cross slide groove (31) and the second cross slide groove (35), respectively.

6. The automatic winding device for producing water treatment wound tanks according to claim 5, characterized in that: A fifth slide groove (41) is provided on the side of the bottom plate (1) away from the first slide groove (2), a fourth slider (44) is provided in the fifth slide groove (41), the fourth slider (44) is connected to the third screw (42) through the inner thread, a fourth motor (43) is fixedly installed on one end of the bottom plate (1), the output shaft of the fourth motor (43) is movably passed through the bottom plate (1) and connected to the third screw (42), the end of the third screw (42) away from the fourth motor (43) is rotatably connected to the bottom wall of the fifth slide groove (41), the fourth slider (44) is slidably provided in the fifth slide groove (41), the fourth slider (44) is fixedly connected to the fourth support plate (4 5), a sixth slide groove (46) is provided on the fourth support plate (45), a third cylinder (47) is fixedly installed in the sixth slide groove (46), a third telescopic rod (48) is provided on the third cylinder (47), a fifth slider (49) is fixedly connected to the third telescopic rod (48), the fifth slider (49) is slidably provided in the sixth slide groove (46), a fifth motor (50) is fixedly installed at one end of the fifth slider (49), an output shaft of the fifth motor (50) is movably inserted through the fifth slider (49) and is fixedly connected to a second rotating shaft (53), and four fan blades (51) are equidistantly installed on the surface of one end of the second rotating shaft (53).

7. The automatic winding device for producing water treatment wound tanks according to claim 6, characterized in that: An electric control box (52) is fixedly mounted on one side of the base plate (1), and the output end of the electric control box (52) is electrically connected to the input ends of the first motor (4), the first cylinder (8), the second motor (13), the heating coil (17), the second cylinder (25), the third motor (32), the fourth motor (43), the third cylinder (47), and the fifth motor (50).