Spiral coil processing temperature control device
By introducing a vibration motor and connecting plate into the coiled screw processing device, the problem of coolant adhesion was solved, achieving efficient coolant cleaning and drying, and improving the overall efficiency of coiled screw processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI SHOUGANG DACHANG METAL MATERIALS CO LTD
- Filing Date
- 2024-02-05
- Publication Date
- 2026-05-05
AI Technical Summary
In the existing technology, coolant adheres to the outer wall of the coiled snail during processing, which is difficult to clean, resulting in low drying efficiency and affecting the drying efficiency of the coiled snail.
A temperature control device for spiral processing was designed, comprising a vibration motor, a connecting rod, and a connecting plate. By spraying coolant and using the vibration motor to drive the connecting plate to vibrate, the coolant adhering to the outer wall of the workpiece is cleaned. Combined with a drying device, the drying efficiency is improved.
Effectively cleaning the coolant from the outer wall of the workpiece improves the drying efficiency of the coiled screw and enhances the efficiency of the processing.
Smart Images

Figure CN224201990U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of spiral processing technology, specifically to a spiral processing temperature control device. Background Technology
[0002] Steel is generally divided into plates, sections, and wires. Coiled rebar is a type of wire rod. As the name suggests, coiled rebar is rebar coiled together like wire rod. Its bundling method is the same as that of ordinary wire rod, but it needs to be straightened when used. During the processing of coiled rebar, the temperature of the coiled rebar needs to be regulated by a cooling device.
[0003] Patent publication number CN214620281U discloses a cooling device for the production process of coiled steel, including a cooling box. Support legs are welded to the four corners of the bottom of the cooling box. A material inlet is opened on one inner wall of the cooling box, and a sealing cover is provided outside the material inlet. A placement mesh plate is welded to the bottom of the outer wall of the sealing cover near the cooling box, and guide wheels are installed at both ends of the bottom of the placement mesh plate. This invention utilizes continuously sprayed cold water to cool the coiled steel when it is placed on top of the placement mesh plate, achieving rapid cooling. The high-temperature steam generated when the hot coiled steel encounters water flows into the heating chamber. After the wastewater is discharged, the high-temperature steam, in conjunction with an air intake fan, heats the incoming air, thus performing hot air drying on the coiled steel. This prevents corrosion caused by moisture exposure and reduces energy waste through high-temperature steam drying. Alternatively, patent publication number CN216... 729341U discloses a cooling device for the production process of coiled rebar, including a cooling platform. A water storage tank is fixed to the lower side wall of the cooling platform, and a frame is fixed to the upper side wall. A nozzle is fixed to the inner wall of the frame. A hydraulic cylinder is fixed to the lower side wall of the cooling platform. The driving end of the hydraulic cylinder extends vertically upwards through the frame and has an arc-shaped filter screen fixed thereon. A telescopic rod is fixed to the outer wall of the frame, and a mounting plate is fixed to the driving end of the telescopic rod. A motor is fixed to the mounting plate, and an incomplete gear is fixed to the driving end of the motor. The advantage is that during the cooling process of the coiled rebar by water spraying, the intermittent contact between the impact rod and the filter screen causes the filter screen to vibrate, causing waste to flow downwards to the drain pipe, facilitating subsequent cleaning and water recirculation.
[0004] While existing technologies offer numerous advantages, they still suffer from the following drawbacks: the lack of a structure to clean the coolant adhering to the outer wall of the coiled snail results in low drying efficiency of the water droplets, thus affecting the overall drying efficiency of the coiled snail. Utility Model Content
[0005] The purpose of this invention is to provide a temperature control device for spiral processing to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a temperature control device for spiral processing, comprising a shell, a support plate, and a connecting plate. A connecting pipe is installed on one side of the upper end of the inner wall of the shell, and slide rails are installed on both sides of the inner wall of the shell. A support plate is installed on the outer wall of one side of the slide rail. The support plate has movable holes arranged in a rectangular array inside, and a connecting rod is movably installed inside the movable holes. A connecting plate is installed on the outer wall of the upper end of the connecting rod.
[0007] When using the coiled screw processing temperature control device in this technical solution, the operator places the coiled screw workpiece on the upper part of the connecting plate, and moves the support plate and connecting plate into the outer shell through the feed hole and slide rail. The door is then manually closed, and the coolant is evenly sprayed out through the inlet pipe, connecting pipe and nozzle, so that the coolant is sprayed on the outer wall of the workpiece, thereby cooling the workpiece and achieving the purpose of temperature regulation. Afterwards, the external drying device dries the workpiece, and the vibration motor drives the connecting plate to vibrate, thereby causing the coolant adhering to the outer wall of the workpiece to fall off.
[0008] Preferably, a drain pipe is inserted and installed on one side of the lower outer wall of the outer casing, and the drain pipe is connected to the inside of the outer casing.
[0009] Waste liquid inside the casing is discharged through a drain pipe to prevent waste liquid from accumulating.
[0010] Preferably, a material feeding port is provided on one side of the outer wall of the housing, and a door panel is rotatably installed on one side of the outer wall of the housing, with the door panel corresponding to the position of the material feeding port.
[0011] The workpiece is placed on the upper part of the connecting plate, and the support plate and the connecting plate move inside the feed port via the slide rail until the workpiece moves into the housing. The door panel blocks the feed port to prevent the coolant inside the housing from spreading.
[0012] Preferably, an inlet pipe is inserted and installed on one side of the upper end of the inner wall of the outer shell, the inlet pipe is connected to the inside of the connecting pipe, and a circular array of nozzles is inserted and installed on the lower outer wall of the connecting pipe.
[0013] An external liquid pump pressurizes the coolant and introduces it into the inlet pipe and connecting pipe, so that the coolant is evenly sprayed out through the nozzle.
[0014] Preferably, springs are provided on both outer walls of the connecting rod, and two springs are distributed on the upper and lower sides of the support plate.
[0015] The spring maintains the positional stability of the connecting plate, and the connecting rod ensures the vibration positional stability of the connecting plate.
[0016] Preferably, filter plates are embedded on both sides of the connecting plate, and the filter plates have filter holes arranged in a rectangular array inside.
[0017] The filter plate can support the workpiece, and the waste liquid is discharged through the filter holes.
[0018] Preferably, a vibration motor is installed on one side of the lower outer wall of the connecting plate, and the vibration motor is located inside the support plate.
[0019] The vibration motor drives the connecting plate to vibrate, causing the coolant on the outer wall of the workpiece to fall off.
[0020] Compared with the prior art, the beneficial effects of this utility model are as follows: By setting up a vibration motor, connecting rod, and connecting plate, this utility model achieves the effect of improving the liquid cleaning efficiency of the outer wall of the workpiece. The operator places the coiled screw workpiece on the upper part of the connecting plate, and moves the support plate and connecting plate into the shell through the feed hole and slide rail. The door is then manually closed, and the coolant is evenly sprayed out through the inlet pipe, connecting pipe, and nozzle, so that the coolant is sprayed onto the outer wall of the workpiece, thereby cooling the workpiece and achieving the purpose of temperature regulation. Afterwards, the external drying device dries the workpiece, and the vibration motor drives the connecting plate to vibrate, thereby causing the coolant adhering to the outer wall of the workpiece to fall off, improving the cleaning efficiency of the coolant and the drying efficiency of the workpiece. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the outer shell structure of this utility model;
[0022] Figure 2 This is a cross-sectional view of the outer shell structure of this utility model;
[0023] Figure 3 This is an enlarged schematic diagram of the support plate structure of this utility model;
[0024] Figure 4 This is an enlarged schematic diagram of the connecting rod structure of this utility model;
[0025] Figure 5 This is an enlarged schematic diagram of the connecting pipe structure of this utility model.
[0026] In the diagram: 1. Outer shell; 11. Drain pipe; 12. Slide rail; 13. Liquid inlet pipe; 14. Connecting pipe; 15. Nozzle; 2. Support plate; 21. Movable hole; 22. Connecting rod; 23. Spring; 24. Connecting plate; 25. Vibration motor; 26. Filter plate. Detailed Implementation
[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0028] Please see Figures 1 to 5 The present invention provides six embodiments:
[0029] Example 1: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on the outer wall of one side of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the outer wall of the upper end of the connecting rod 22.
[0030] A drain pipe 11 is inserted and installed on one side of the lower outer wall of the outer casing 1, and the drain pipe 11 is connected to the inside of the outer casing 1. Waste liquid inside the outer casing 1 is discharged through the drain pipe 11 to prevent waste liquid from accumulating.
[0031] Example 2: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on one side of the outer wall of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the upper outer wall of the connecting rod 22.
[0032] A drain pipe 11 is inserted and installed on one side of the lower outer wall of the outer casing 1, and the drain pipe 11 is connected to the inside of the outer casing 1. Waste liquid inside the outer casing 1 is discharged through the drain pipe 11 to prevent waste liquid from accumulating.
[0033] An inlet pipe 13 is inserted and installed on one side of the upper inner wall of the outer casing 1. The inlet pipe 13 is connected to the internal part of the connecting pipe 14. A circular array of nozzles 15 is inserted and installed on the lower outer wall of the connecting pipe 14. An external liquid pump pressurizes the coolant and enters the inlet pipe 13 and the connecting pipe 14, so that the coolant is evenly sprayed out through the nozzles 15. The support plate 2 and the connecting plate 24 are moved into the outer casing 1 through the feed hole and the slide rail 12. The door is then manually closed. The coolant is evenly sprayed out through the inlet pipe 13, the connecting pipe 14 and the nozzles 15, so that the coolant is sprayed on the outer wall of the workpiece, thereby cooling the workpiece and achieving the purpose of temperature regulation.
[0034] Example 3: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on one side of the outer wall of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the upper outer wall of the connecting rod 22.
[0035] A material feeding port is provided on one side of the outer wall of the outer casing 1. A door panel is rotatably installed on one side of the outer wall of the outer casing 1, and the door panel is positioned corresponding to the material feeding port. The workpiece is placed on the upper end of the connecting plate 24, and the support plate 2 and the connecting plate 24 move inside the material feeding port via the slide rail 12 until the workpiece moves into the interior of the outer casing 1. The door panel blocks the material feeding port to prevent the coolant inside the outer casing 1 from spreading. The operator places the coiled screw workpiece on the upper end of the connecting plate 24, and moves the support plate 2 and the connecting plate 24 into the interior of the outer casing 1 through the material feeding port and the slide rail 12.
[0036] Example 4: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on one side of the outer wall of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the upper outer wall of the connecting rod 22.
[0037] Springs 23 are provided on both outer walls of the connecting rod 22, with two springs 23 distributed on the upper and lower sides of the support plate 2. The springs 23 maintain the positional stability of the connecting plate 24 and ensure the vibration positional stability of the connecting plate 24 through the connecting rod 22.
[0038] Example 5: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on one side of the outer wall of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the upper outer wall of the connecting rod 22.
[0039] Filter plates 26 are embedded on both sides of the connecting plate 24. The filter plates 26 have filter holes arranged in a rectangular array inside. The filter plates 26 can support the workpiece, and waste liquid is discharged through the filter holes.
[0040] Example 6: A temperature control device for spiral processing includes a shell 1, a support plate 2, and a connecting plate 24. A connecting pipe 14 is installed on one side of the upper end of the inner wall of the shell 1. Slide rails 12 are installed on both sides of the inner wall of the shell 1. A support plate 2 is installed on one side of the outer wall of the slide rail 12. The support plate 2 has movable holes 21 arranged in a rectangular array inside. A connecting rod 22 is movably installed inside the movable holes 21. The connecting plate 24 is installed on the upper outer wall of the connecting rod 22.
[0041] A drain pipe 11 is inserted and installed on one side of the lower outer wall of the outer casing 1, and the drain pipe 11 is connected to the inside of the outer casing 1. Waste liquid inside the outer casing 1 is discharged through the drain pipe 11 to prevent waste liquid from accumulating.
[0042] Springs 23 are provided on both outer walls of the connecting rod 22, with two springs 23 distributed on the upper and lower sides of the support plate 2. The springs 23 maintain the positional stability of the connecting plate 24 and ensure the vibration positional stability of the connecting plate 24 through the connecting rod 22.
[0043] Filter plates 26 are embedded on both sides of the connecting plate 24. The filter plates 26 have filter holes arranged in a rectangular array inside. The filter plates 26 can support the workpiece, and waste liquid is discharged through the filter holes.
[0044] A vibration motor 25 is installed on one side of the lower outer wall of the connecting plate 24, and the vibration motor 25 is located inside the support plate 2. The vibration motor 25 drives the connecting plate 24 to vibrate, thereby causing the coolant on the outer wall of the workpiece to fall off. The external drying device dries the workpiece, and the vibration motor 25 drives the connecting plate 24 to vibrate, thereby causing the coolant adhering to the outer wall of the workpiece to fall off, improving the cleaning efficiency of the coolant and the drying efficiency of the workpiece.
[0045] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A temperature control device for processing coiled screws, comprising a housing (1), a support plate (2), and a connecting plate (24), characterized in that: A connecting pipe (14) is installed on one side of the upper end of the inner wall of the outer shell (1). Slide rails (12) are installed on both sides of the inner wall of the outer shell (1). A support plate (2) is installed on one side of the outer wall of the slide rail (12). The support plate (2) has movable holes (21) arranged in a rectangular array inside. A connecting rod (22) is movably installed inside the movable holes (21). A connecting plate (24) is installed on the upper outer wall of the connecting rod (22).
2. The temperature control device for spiral processing according to claim 1, characterized in that: A drain pipe (11) is inserted and installed on one side of the lower outer wall of the outer shell (1), and the drain pipe (11) is connected to the inside of the outer shell (1).
3. The coiled snail processing temperature control device according to claim 1, characterized in that: The outer wall of the outer shell (1) is provided with a material feeding port, and a door panel is rotatably installed on the outer wall of the outer shell (1), and the door panel is positioned corresponding to the material feeding port.
4. The coiled snail processing temperature control device according to claim 1, characterized in that: An inlet pipe (13) is inserted into one side of the upper end of the inner wall of the outer shell (1). The inlet pipe (13) is connected to the inside of the connecting pipe (14). A circular array of nozzles (15) is inserted into the outer wall of the lower end of the connecting pipe (14).
5. The coiled screw processing temperature control device according to claim 1, characterized in that: Springs (23) are provided on both outer walls of the connecting rod (22), and the two springs (23) are distributed on the upper and lower sides of the support plate (2).
6. The coiled snail processing temperature control device according to claim 1, characterized in that: The connecting plate (24) has filter plates (26) embedded on both sides inside, and the filter plates (26) have filter holes arranged in a rectangular array inside.
7. The coiled snail processing temperature control device according to claim 1, characterized in that: A vibration motor (25) is installed on one side of the lower outer wall of the connecting plate (24), and the vibration motor (25) is located inside the support plate (2).