Continuous cooling device applied to plastic bucket production

The wind force is adjusted by driving the porous anti-fall plate and the electric articulated seat through the side cylinder, which solves the problem of heat accumulation in the production of plastic barrels and improves the cooling efficiency.

CN223354716UActive Publication Date: 2025-09-19HUBEI FUNAI PLASTICS CO LTD
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Patent Information

Application Number
CN202422683449.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-09-19
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

The existing continuous cooling device for plastic barrel production easily causes heat accumulation during the clamping process, affecting subsequent rapid processing.

Method used

The side cylinder is used to drive the porous anti-fall plate to fit the side of the product, and the electric articulated seat is used to adjust the wind output of the cooling component to improve the cooling efficiency.

Benefits of technology

It effectively prevents heat accumulation and improves the cooling efficiency of the plastic barrel cooling device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a continuous cooling device applied to plastic bucket production, which relates to the technical field of plastic bucket production and comprises a material conveying mechanism and a cooling component, and a heat removal gathering and adjusting component assembled by bolts is arranged on the outer side of the upper portion of the material conveying mechanism. Cooling parts sleeved by bolts are arranged above the two ends of the heat removal gathering and adjusting part, each cooling part comprises a refrigeration cabin, a connecting air inlet, a cabin connecting pipe, a diverting valve cabin, a bolt sleeve frame and a spraying fan, the refrigeration cabins are arranged above the two ends of the heat removal gathering and adjusting part, the connecting air inlets are formed in the input ends of the refrigeration cabins, and the connecting air inlets are formed in the output ends of the cooling cabins. A cabin connecting pipe is arranged at the output end of the refrigeration cabin; according to the utility model, after the side air cylinder outputs power to drive the output end to operate, the anti-falling plate with a porous structure is adaptively attached to the side of a product, and after the electric hinge seat outputs and operates, the gathering and adjusting plate gathers the wind power output by the cooling component, so that the cooling efficiency of equipment is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of plastic barrel production, in particular to a continuous cooling device used in the production of plastic barrels. Background Art

[0002] Plastic barrels are mostly used for the storage and transportation of various liquids. They are not easy to break, rust and light in weight, and are resistant to oil and strong corrosion. They are mostly used for packaging dangerous goods that require heat preservation, moisture resistance, pressure resistance and corrosion resistance. Plastic barrels are mostly made of plastics such as polyethylene and polypropylene through blow molding or injection molding. After the blow molding or injection molding of the plastic barrel is completed, due to the high temperature of the blow molding or injection molding process, it is necessary to cool it to prevent the deformation of the newly blow-molded or injection-molded plastic barrel.

[0003] When using an existing continuous cooling device, such as application number CN202222064830.3, which discloses a continuous cooling device for the production of plastic barrels, the device includes a base, the upper end of the base is fixedly connected to a protective shell, the upper side of the protective shell is provided with a lifting assembly, and the interior of the protective shell is movably connected to a cooling cylinder via the lifting assembly. The present invention adopts the above structure, and under the action of the positioning assembly, the lower clamping plate cooperates with the upper clamping plate to fit the inner wall of the plastic barrel. Since the clamping mechanism is provided with two groups, the plastic barrel is clamped, and then the second cylinder is activated to move the upper clamping plate to contact the top of the plastic barrel. However, in the above technology, after the plastic barrel is clamped, heat is easily accumulated, thereby affecting the subsequent rapid processing. Therefore, the present invention proposes a continuous cooling device for the production of plastic barrels to solve the problems existing in the prior art. Utility Model Content

[0004] In response to the above problems, the utility model proposes a continuous cooling device for the production of plastic barrels. The continuous cooling device for the production of plastic barrels mainly utilizes the output power of the side cylinder to drive the output end to operate, so that the anti-fall plate with a porous structure can adaptably fit the side of the product, so that the electric articulated seat outputs and operates, so that the focusing plate can focus the wind output by the cooling component to improve the cooling efficiency of the equipment.

[0005] To achieve the purpose of the utility model, the utility model is implemented through the following technical solutions: a continuous cooling device for plastic barrel production, comprising a material conveying mechanism and a cooling component, wherein a heat exhaust and gathering adjustment component assembled with bolts is provided on the upper outer side of the material conveying mechanism, and cooling components sleeved with bolts are provided above both ends of the heat exhaust and gathering adjustment component;

[0006] The cooling component includes a refrigeration cabin, an air inlet, a cabin connecting pipe, a diverter valve cabin, a bolt sleeve frame and a spray fan. The refrigeration cabin is arranged above both ends of the heat exhaust and gathering component. The input end of the refrigeration cabin is provided with an air inlet, the output end of the refrigeration cabin is provided with a cabin connecting pipe, and the output end of the cabin connecting pipe is provided with a diverter valve cabin, the outer side of the diverter valve cabin is provided with a bolt sleeve frame, and the output end of the diverter valve cabin is provided with a spray fan.

[0007] As a preferred embodiment of the present invention, the connecting cabin pipe has a bidirectional output structure.

[0008] As a preferred embodiment of the present invention, the material transmission mechanism includes a pad, a pad, an end support bar, a nacelle, a first motor, a first roller, a first conveyor belt, a first convex strip, a long nacelle, a second motor, a second roller, a second conveyor belt and a second convex strip, a pad is provided on the top side of the pad, and an end support bar assembled with bolts is provided on the top side of the pad, a nacelle is provided above both ends of the end support bar, and a first roller connected to the output end of the first motor is provided on the inner side of both ends of the nacelle, and the first roller is wrapped around the first conveyor belt with the first convex strip installed.

[0009] As a preferred embodiment of the present invention, a long cabin is provided above the middle part of the end support bar, and a second roller connected to the output end of the second motor is provided on the inner side of both ends of the long cabin, and a second conveyor belt with a second convex strip installed is wound around the second roller.

[0010] As a preferred embodiment of the present invention, the heat exhaust and focusing adjustment component includes an outer lifting frame, a side cylinder, an anti-fall plate, an electric articulated seat, an adjustment plate, a top plate, a movable bar, an entry and exit bar, a heat probe and a heat exhaust fan. The outer lifting frame is bolted to the outer side of the end support bar, a heat exhaust fan is arranged on the lower inner side of the outer lifting frame, a side cylinder is arranged on the outer side of the middle part of the outer lifting frame, and an anti-fall plate is arranged on the output end of the side cylinder, an electric articulated seat is arranged on the upper inner side of the outer lifting frame, and a focusing adjustment plate is arranged on one side of the electric articulated seat.

[0011] As a preferred embodiment of the present invention, a top plate assembled with bolts is provided at the top of the external lifting frame, and movable bars are provided below the four sides of the top plate, an entry and exit bar is provided on one side of the movable bar, and a thermal probe is provided on the inner bottom side of the movable bar.

[0012] The beneficial effects of the utility model are:

[0013] The utility model mainly utilizes the output power of the side cylinder to drive the output end to operate, so that the anti-fall plate with a porous structure can adaptably fit the side of the product, so that after the electric articulated seat output is running, the focusing plate can focus the wind output by the cooling component to perform wind focusing operation, thereby improving the cooling efficiency of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;

[0015] Figure 2 This is a bottom-up perspective structural diagram of the present invention;

[0016] Figure 3 This is a schematic diagram of the three-dimensional structure of the material transmission mechanism of the present utility model;

[0017] Figure 4 This is a schematic diagram of the three-dimensional structure of the cooling component of the present invention.

[0018] Among them: 1. Material transfer mechanism; 101. Pad; 102. Pad; 103. End support bar; 104. Short cabin; 105. First motor; 106. First roller; 107. First conveyor belt; 108. First ridge; 109. Long cabin; 1010. Second motor; 1011. Second roller; 1012. Second conveyor belt; 1013. Second ridge; 2. Heat dissipation and concentration adjustment component; 201 , external lifting frame; 202, side cylinder; 203, anti-fall plate; 204, electric articulated seat; 205, focusing plate; 206, top plate; 207, movable bar; 208, inlet and outlet bar; 209, thermal probe; 2010, heat exhaust fan; 3, cooling components; 301, refrigeration cabin; 302, connecting air inlet; 303, cabin pipe; 304, diverter valve cabin; 305, bolt sleeve frame; 306, spray fan. DETAILED DESCRIPTION

[0019] In order to deepen the understanding of the present invention, the present invention will be further described in detail below in conjunction with embodiments. The embodiments are only used to explain the present invention and do not constitute a limitation on the scope of protection of the present invention.

[0020] according to Figure 1-4 As shown, this embodiment proposes a continuous cooling device for plastic barrel production, comprising a material conveying mechanism 1 and a cooling component 3. A heat removal and concentration adjustment component 2 assembled with bolts is provided above the outer side of the material conveying mechanism 1, and cooling components 3 sleeved with bolts are provided above both ends of the heat removal and concentration adjustment component 2.

[0021] The cooling component 3 includes a refrigeration chamber 301, an air inlet 302, a chamber pipe 303, a diverter valve chamber 304, a bolt sleeve frame 305 and a spray fan 306. The refrigeration chamber 301 is arranged above both ends of the heat exhaust and gathering component 2. The input end of the refrigeration chamber 301 is provided with an air inlet 302, the output end of the refrigeration chamber 301 is provided with a chamber pipe 303, and the output end of the chamber pipe 303 is provided with a diverter valve chamber 304. The outer side of the diverter valve chamber 304 is provided with a bolt sleeve frame 305, and the output end of the diverter valve chamber 304 is provided with a spray fan 306.

[0022] The connecting cabin pipe 303 is a two-way output structure.

[0023] In this embodiment, the refrigeration chamber 301 is then used to perform output operation, so that the spray fan 306 is performed to perform output operation, so that the refrigeration chamber 301, the air inlet 302, the chamber pipe 303, the directional valve chamber 304, and the spray fan 306 work together to output cold air to achieve cooling treatment for the product.

[0024] The material transmission mechanism 1 includes a pad 101, a pad 102, an end support bar 103, a nacelle 104, a first motor 105, a first roller 106, a first conveyor belt 107, a first ridge 108, a long nacelle 109, a second motor 1010, a second roller 1011, a second conveyor belt 1012 and a second ridge 1013. The pad 102 is provided on the top side of the pad 101, and the end support bar 103 assembled with bolts is provided on the top side of the pad 102. The nacelle 104 is provided above both ends of the end support bar 103, and the first roller 106 connected to the output end of the first motor 105 is provided on the inner side of both ends of the nacelle 104. The first roller 106 is wrapped around the first conveyor belt 107 with the first ridge 108 installed.

[0025] In this embodiment, when in use, the various components are spliced ​​together by the pad 101, the pad 102 and the end support bar 103 and placed at the processing site. Then, the first motor 105 is used to output power to drive the output end to operate, so that after the first motor 105 outputs power to operate, the first roller 106 on the nacelle 104 is output to operate, and the first conveyor belt 107 is operated, so that the first conveyor belt 107 drives the first protrusion 108 to move the material.

[0026] A long cabin 109 is provided above the middle of the end support bar 103, and a second roller 1011 connected to the output end of the second motor 1010 is provided on the inner side of both ends of the long cabin 109. The second roller 1011 is wrapped with a second conveyor belt 1012 with a second protruding strip 1013 installed.

[0027] In this embodiment, the output end of the second motor 1010 is then used to output the second roller 1011 on the long cabin 109, and the second ridge 1013 drives the second conveyor belt 1012 to output, so that the second conveyor belt 1012 cooperates with the second ridge 1013 to move the product at a slow speed.

[0028] The heat exhaust and focusing component 2 includes an external lifting frame 201, a side cylinder 202, an anti-fall plate 203, an electric articulated seat 204, an adjusting plate 205, a top plate 206, a movable bar 207, an entry and exit bar 208, a thermal probe 209 and a heat exhaust fan 2010. The external lifting frame 201 is bolted to the outer side of the end support bar 103. The heat exhaust fan 2010 is arranged on the lower inner side of the external lifting frame 201. The side cylinder 202 is arranged on the outer side of the middle part of the external lifting frame 201, and the anti-fall plate 203 is arranged on the output end of the side cylinder 202. The electric articulated seat 204 is arranged on the upper inner side of the external lifting frame 201, and the adjusting plate 205 is arranged on one side of the electric articulated seat 204.

[0029] In this embodiment, the exhaust fan 2010 on the inner side below the outer lifting frame 201 is then used to output power to extract air, and the side cylinder 202 outputs power to drive the output end to operate, so that the anti-fall plate 203 is adjusted to prevent the product from falling, and the electric articulated seat 204 outputs power to drive the output end to operate so that the focusing plate 205 adjusts the air outlet.

[0030] A top plate 206 assembled with bolts is provided at the top of the outer lifting frame 201, and movable bars 207 are provided below the four sides of the top plate 206. An entry and exit bar 208 is provided on one side of the movable bar 207, and a thermal probe 209 is provided on the inner bottom side of the movable bar 207.

[0031] In this embodiment, after the first conveyor belt 107 drives the first protruding strip 108 to move the material, the inlet and outlet bar 208 on one side of the movable bar 207 swings, and the material is input into the interior of the equipment, and the movable bar 207 swings again to close the inlet and outlet bar 208. After closing, the thermal probe 209 is used to observe the temperature.

[0032] The working principle of the continuous cooling device used in the production of plastic barrels is as follows: when in use, the various components are spliced ​​together through the pad 101, the pad 102 and the end support bar 103 and placed at the processing site, and then the first motor 105 is used to output power to drive the output end to operate, so that after the first motor 105 outputs power to operate, the first roller 106 on the nacelle 104 is output and operated, and the first conveyor belt 107 is operated, so that the first conveyor belt 107 drives the first convex bar 108 to run the material, and when the first conveyor belt 107 drives the first convex bar 108 to run the material, the inlet and outlet bar 208 on one side of the movable bar 207 is swung, and the material is input into the interior of the equipment, and the movable bar 207 is swung again to close the inlet and outlet bar 208, and after closing, the temperature is observed using the thermal probe 209, and then the output end of the second motor 1010 is used to output After the output operation, the second roller 1011 on the long cabin 109 is output and operated, so that the second convex strip 1013 drives the second conveyor belt 1012 to output and operate, so that the second conveyor belt 1012 cooperates with the second convex strip 1013 to move the product at a slow speed, and then the heat exhaust fan 2010 on the inner side of the lower side of the outer lifting frame 201 is used to output power to extract air, and the side cylinder 202 outputs power to drive the output end to operate, so that the anti-fall plate 203 is adjusted to prevent the product from falling, and the electric articulated seat 204 outputs power to drive the output end to operate, so that the focusing plate 205 adjusts the air outlet, and then the refrigeration cabin 301 is used to output and operate, so that the spray fan 306 is output and operated, so that the refrigeration cabin 301, the air inlet 302, the cabin pipe 303, the diversion valve cabin 304, and the spray fan 306 cooperate to output cold air to achieve cooling treatment of the product.

[0033] 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. A continuous cooling device for use in the production of plastic barrels, comprising a material conveying mechanism (1) and a cooling component (3), characterized in that: A heat dissipation and concentration adjustment component (2) assembled with bolts is provided on the upper outer side of the material transmission mechanism (1), and cooling components (3) sleeved with bolts are provided above both ends of the heat dissipation and concentration adjustment component (2); The cooling component (3) comprises a refrigeration chamber (301), an air inlet (302), a chamber connecting pipe (303), a diverter valve chamber (304), a bolt sleeve frame (305) and a spray fan (306). The refrigeration chamber (301) is arranged above both ends of the heat exhaust and gathering component (2). The input end of the refrigeration chamber (301) is provided with an air inlet (302), the output end of the refrigeration chamber (301) is provided with a chamber connecting pipe (303), and the output end of the chamber connecting pipe (303) is provided with a diverter valve chamber (304). The outer side of the diverter valve chamber (304) is provided with a bolt sleeve frame (305), and the output end of the diverter valve chamber (304) is provided with a spray fan (306).

2. The continuous cooling device for plastic barrel production according to claim 1, characterized in that: The connecting cabin pipe (303) has a bidirectional output structure.

3. The continuous cooling device for plastic barrel production according to claim 1, characterized in that: The material transmission mechanism (1) comprises a pad (101), a pad (102), an end support bar (103), a nacelle (104), a first motor (105), a first roller (106), a first conveyor belt (107), a first convex strip (108), a long nacelle (109), a second motor (1010), a second roller (1011), a second conveyor belt (1012) and a second convex strip (1013), wherein the pad (101) is provided with a pad (102) on the top side, and the pad (102) is provided with an end support bar (103) assembled with bolts on the top side, and nacelles (104) are provided above both ends of the end support bar (103), and the first roller (106) connected to the output end of the first motor (105) is provided inside both ends of the nacelle (104), and the first conveyor belt (107) on which the first convex strip (108) is installed is wound around the first roller (106).

4. The continuous cooling device for plastic barrel production according to claim 3, characterized in that: A long cabin (109) is provided above the middle of the end support bar (103), and a second roller shaft (1011) connected to the output end of the second motor (1010) is provided on the inner side of both ends of the long cabin (109), and a second conveyor belt (1012) on which a second convex strip (1013) is installed is wound around the second roller shaft (1011).

5. The continuous cooling device for plastic barrel production according to claim 3, characterized in that: The heat exhaust and heat concentration adjustment component (2) comprises an outer lifting frame (201), a side cylinder (202), an anti-falling plate (203), an electric articulated seat (204), an adjustment plate (205), a top plate (206), a movable bar (207), an inlet and outlet bar (208), a heat probe (209) and a heat exhaust fan (2010). The outer lifting frame (201) is bolted to the outer side of the end support bar (103). The heat exhaust fan (2010) is arranged on the inner side of the lower side of the outer lifting frame (201). The side cylinder (202) is arranged on the outer side of the middle part of the outer lifting frame (201), and the anti-falling plate (203) is arranged at the output end of the side cylinder (202). The electric articulated seat (204) is arranged on the inner side of the upper side of the outer lifting frame (201), and the adjustment plate (205) is arranged on one side of the electric articulated seat (204).

6. The continuous cooling device for plastic barrel production according to claim 5, characterized in that: The top of the outer lifting frame (201) is provided with a top plate (206) assembled with bolts, and movable bars (207) are provided below the four sides of the top plate (206), one side of the movable bar (207) is provided with an entry and exit bar (208), and the inner bottom side of the movable bar (207) is provided with a thermal probe (209).

Citation Information

Patent Citations

  • Continuous cooling device for plastic bucket production

    CN218256217U