Rapid drying device for surface of alloy copper pipe

By adopting oscillation treatment and bellows ventilation technology in the alloy copper tube drying device, combined with the revolution and rotation design of the copper tube, the problem of high time consumption of existing drying devices is solved, and more efficient drying treatment and device operation efficiency is achieved.

CN222865430UActive Publication Date: 2025-05-13CHANGZHOU HUICHUN COPPER CO LTD
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Patent Information

Application Number
CN202421437922.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-22
Publication Date
2025-05-13
Estimated Expiration
2034-06-22

AI Technical Summary

Technical Problem

The existing alloy copper tube drying treatment device consumes a lot of time when drying the inner wall surface layer of the copper tube, which affects the drying efficiency and the working efficiency of the device.

Method used

A quick drying device for the surface of alloy copper tube is designed, and the residual water droplets on the surface are automatically separated by oscillation treatment, combined with the bellows and annular air guide frame for ventilation and drying. The rotation and rotation of the copper tube are realized through the drive bracket and the transmission auxiliary shaft to ensure uniform heating of multiple angles.

Benefits of technology

It significantly shortens the drying time, improves the drying efficiency of alloy copper tubes, and improves the working efficiency of the device in practical applications.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a quick drying device for the surface of an alloy copper pipe, which belongs to the technical field of drying of the alloy copper pipe, and aims to solve the problems that the drying efficiency of the alloy copper pipe is influenced and the working efficiency of the drying device in the practical application process is influenced due to the fact that more time is consumed when the copper pipe is dried. The drying treatment mechanism is arranged inside the drying box; the workbench is slidably arranged at the inner end of the drying box. The oscillation frame is arranged at the upper end of the inner side of the workbench; the oscillation auxiliary mechanism is arranged between the oscillation frame and the workbench; the supporting auxiliary frame is fixedly connected to the left side of the top end face of the oscillation frame. The drying auxiliary mechanism is arranged on the inner side of the supporting auxiliary frame; and the drying time during drying treatment of the copper pipe is shortened, the drying efficiency of the alloy copper pipe is improved, and the working efficiency of the drying device in the actual application process is further improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of alloy copper tube drying, and more specifically, particularly relates to a device for quickly drying the surface of an alloy copper tube. Background Art

[0002] During the manufacturing process of alloy copper tubes, in order to avoid the reaction between the copper tube surface and the air, which causes oxidation of the copper tube and affects the performance of the alloy tube in actual application, the blower and bellows are usually used to dry the copper tube surface. In the process of drying the total copper tube, the copper tube is often positioned by a fixed ring. After the fixed ring is positioned inside the drying oven, the bellows above the inner end of the drying oven and the rotation of the fixed ring are used to dry multiple alloy copper tubes.

[0003] As in the existing application number CN202320345670.1, a surface drying device for alloy copper tubes is provided, which relates to the technical field of surface drying of alloy copper tubes, and aims to solve the problem that the existing alloy copper tubes are randomly stacked during storage, resulting in a large amount of moisture adsorbed on the surface of the alloy copper tubes, and the moisture is easy to react with copper over time, affecting the surface quality of the alloy copper tubes. It includes a working box, and the left side of the working box is movably connected with a drying box, and the drying box and the working box are mutually abutted. Multiple groups of alloy copper tubes are movably arranged in the working box through a support frame, and then the drying box and the wind box cooperate to complete the air drying of multiple groups of alloy copper tubes. Compared with the conventional situation where the alloy copper tubes are directly stacked without drying the moisture on the surface of the alloy copper tubes, no hydrated oxide will appear on the surface of the alloy copper tubes during actual use, which does not affect the normal use of the alloy copper tubes and prolongs the service life of the alloy copper tubes.

[0004] Based on the above, since the inner end of the copper tube is hollow, water droplets will remain on the inner wall of the copper tube during the production process of the copper tube. When the existing drying treatment device treats the surface of the inner wall of the copper tube, it mostly uses the heat conduction effect after the outer end of the copper tube is heated to achieve the drying treatment of the inner wall surface of the copper tube, resulting in a long time being consumed when drying the copper tube, affecting the drying efficiency of the alloy copper tube and the working efficiency of the drying device during actual application. Utility Model Content

[0005] In order to solve the above technical problems, the utility model provides a device for quickly drying the surface of an alloy copper tube, so as to solve the problem that due to the hollow inner end of the copper tube, water droplets will remain on the inner wall of the copper tube during the production process of the copper tube. When the existing drying treatment device treats the surface of the inner wall of the copper tube, it mostly uses the heat conduction effect of the outer end of the copper tube after being heated to achieve the drying treatment of the inner wall surface of the copper tube, resulting in a long time being consumed when drying the copper tube, affecting the drying efficiency of the alloy copper tube and the working efficiency of the drying device during actual application.

[0006] The purpose and effect of the alloy copper tube surface rapid drying device of the utility model are achieved by the following specific technical means:

[0007] A device for quickly drying the surface of an alloy copper tube comprises a drying box, a drying treatment mechanism, a workbench, an oscillation frame, an oscillation auxiliary mechanism, a support auxiliary frame and a drying auxiliary mechanism, wherein the drying treatment mechanism is arranged on the inner side of the drying box; the workbench is slidably arranged on the inner end of the drying box; the oscillation frame is arranged on the upper end of the inner side of the workbench; the oscillation auxiliary mechanism is arranged between the oscillation frame and the workbench; the oscillation auxiliary mechanism comprises: a driving shaft, the driving shaft is rotatably connected to the left side of the inner end of the workbench, and the outer end of the driving shaft is coaxially fixedly connected to the outer side of the driving motor shaft; the support auxiliary frame is fixedly connected to the left side of the top end surface of the oscillation frame; the drying auxiliary mechanism is arranged on the inner side of the support auxiliary frame; the drying auxiliary mechanism comprises: a driving bracket, the driving bracket is rotatably connected to the inner side of the supporting auxiliary frame, and the outer end of the driving bracket is coaxially fixedly connected to the outer side of the reduction motor shaft.

[0008] Furthermore, the drying treatment mechanism includes: a bellows main body and an annular air guide frame, the bellows main body is fixedly connected to the top end surface of the drying box; a blower is provided at the outer end of the bellows main body; the exhaust port in the blower is connected to the air guide port of the bellows main body; the annular air guide frame is fixedly connected to the right side of the inner end of the drying box, and the annular air guide frame and the bellows main body are connected by a ventilation pipe; a plurality of exhaust holes are evenly arranged on the inner side of the annular air guide frame and the bellows main body.

[0009] Furthermore, a driving cam is coaxially fixedly connected to the outer end of the driving shaft, and the outer side of the driving cam and the oscillation frame are pressed against each other;

[0010] The oscillation auxiliary mechanism also includes: a connecting bracket, wherein there are two connecting brackets, and the two connecting brackets are aligned front and back and hinged on the oscillation frame and the right side of the workbench.

[0011] Furthermore, the oscillation auxiliary mechanism also includes: a positioning auxiliary frame, there are two positioning auxiliary frames, and the two positioning auxiliary frames are hinged on the left side of the workbench in front and back alignment; a movable bracket is arranged above the positioning auxiliary frame, and the outer end of the movable bracket is hingedly connected to the oscillation frame; an elastic reset part is fixedly connected between the movable bracket and the positioning auxiliary frame on the same side of the front and back.

[0012] Furthermore, a plurality of limit brackets are fixedly connected to the outer end of the driving bracket in a circular array; and a transmission auxiliary shaft is rotatably connected to the inner end of the limit bracket.

[0013] Furthermore, a transmission gear is coaxially and fixedly connected to the outer side of the transmission auxiliary shaft;

[0014] A driving gear ring is coaxially fixedly connected to the inner side of the supporting auxiliary frame; the driving gear ring and the transmission gear are meshed with each other.

[0015] Furthermore, a clamping and controlling frame is slidably arranged on the upper and lower sides of the inner end of the transmission auxiliary shaft. The clamping and controlling frame is an arc-shaped frame structure, and the outer end of the clamping and controlling frame is an arc-shaped inclined plate structure inclined from the upper side of the outer end to the lower side of the inner end; the inner end of the transmission auxiliary shaft is fixedly connected to a resistance-increasing frame; the resistance-increasing frame and the transmission auxiliary shaft are fixedly connected by an elastic extrusion member.

[0016] Compared with the prior art, the utility model has the following beneficial effects:

[0017] When the utility model is used, before drying the copper tube, the copper tube is first subjected to an oscillation treatment, so that the residual water droplets on the surface of the copper tube are automatically separated from the residual water droplets, and then the bellows body and the annular air guide frame perform ventilation and drying treatment on both sides of the copper tube, thereby shortening the drying time when drying the copper tube, improving the drying efficiency of the alloy copper tube, and further improving the working efficiency of the drying device in the actual application process;

[0018] When the utility model is in use, during the process of drying the copper tube, the copper tube is caused to rotate synchronously during the revolution, thereby achieving uniform heating of the copper tube at multiple angles, further improving the drying efficiency of the copper tube, as well as the use effect and work efficiency of the device in actual application. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is an overall isometric structural schematic diagram of the utility model.

[0020] Figure 2 It is a schematic diagram of the installation structure of the oscillation frame and the workbench of the utility model.

[0021] Figure 3 It is a schematic diagram of the installation structure of the vibration auxiliary mechanism and the vibration frame of the utility model.

[0022] Figure 4 It is a schematic diagram of the installation structure of the supporting auxiliary frame and the drying auxiliary mechanism of the utility model.

[0023] Figure 5 It is a structural schematic diagram of the drying auxiliary mechanism of the utility model.

[0024] Figure 6 The utility model is a schematic diagram of the cross-sectional structure of the connection between the transmission auxiliary shaft and the clamping control frame.

[0025] In the figure, the corresponding relationship between the component names and the figure numbers is as follows:

[0026] 1. Drying box; 2. Bellows body; 201. Blower; 202. Annular air guide frame; 203. Exhaust hole; 3. Workbench; 4. Oscillation frame; 401. Drive shaft; 4011. Drive cam; 402. Connecting bracket; 403. Positioning auxiliary frame; 404. Movable bracket; 405. Elastic reset member; 5. Support auxiliary frame; 6. Drive bracket; 601. Limit bracket; 602. Transmission auxiliary shaft; 603. Transmission gear; 604. Drive gear ring; 605. Clamping control frame; 606. Resistance increasing frame. DETAILED DESCRIPTION

[0027] The implementation of the utility model is further described in detail below in conjunction with the drawings and examples.

[0028] Embodiment 1:

[0029] As attached Figure 1 To Attachment Figure 3 As shown:

[0030] The utility model provides a device for quickly drying the surface of an alloy copper tube, comprising a drying box 1, a drying treatment mechanism, a workbench 3, an oscillation frame 4, an oscillation auxiliary mechanism, a supporting auxiliary frame 5 and a drying auxiliary mechanism, wherein the drying treatment mechanism is arranged on the inner side of the drying box 1; the workbench 3 is slidably arranged on the inner end of the drying box 1; the oscillation frame 4 is arranged on the upper end of the inner side of the workbench 3; the oscillation auxiliary mechanism is arranged between the oscillation frame 4 and the workbench 3; the oscillation auxiliary mechanism comprises: a driving shaft 401, the driving shaft 401 is rotatably connected to the left side of the inner end of the workbench 3, and the outer end of the driving shaft 401 is coaxially fixedly connected to the outer side of the driving motor shaft; the supporting auxiliary frame 5 is fixedly connected to the left side of the top end surface of the oscillation frame 4; the drying auxiliary mechanism is arranged on the inner side of the supporting auxiliary frame 5; the drying auxiliary mechanism comprises: a driving bracket 6, the driving bracket 6 is rotatably connected to the inner side of the supporting auxiliary frame 5, and the outer end of the driving bracket 6 is coaxially fixedly connected to the outer side of the reduction motor shaft.

[0031] Among them, the drying processing mechanism includes: a bellows main body 2 and an annular air guide frame 202, the bellows main body 2 is fixedly connected to the top end surface of the drying box 1; a blower 201 is arranged at the outer end of the bellows main body 2; the exhaust port in the blower 201 is connected to the air guide port of the bellows main body 2; the annular air guide frame 202 is fixedly connected to the right side of the inner end of the drying box 1, and the annular air guide frame 202 and the bellows main body 2 are connected by a ventilation pipe; a plurality of exhaust holes 203 are evenly arranged on the inner side of the annular air guide frame 202 and the bellows main body 2.

[0032] The outer end of the driving shaft 401 is coaxially fixedly connected with a driving cam 4011, and the outer side of the driving cam 4011 and the oscillation frame 4 are pressed against each other;

[0033] The oscillation auxiliary mechanism also includes: a connecting bracket 402, there are two connecting brackets 402, and the two connecting brackets 402 are hinged to the oscillation frame 4 and the right side of the workbench 3 in a front-to-back alignment.

[0034] Among them, the oscillation auxiliary mechanism also includes: a positioning auxiliary frame 403, there are two positioning auxiliary frames 403, the two positioning auxiliary frames 403 are aligned front and back and hinged on the left side of the workbench 3; a movable bracket 404 is arranged above the positioning auxiliary frame 403, and the outer end of the movable bracket 404 is hingedly connected to the oscillation frame 4; an elastic reset part 405 is fixedly connected between the movable bracket 404 on the same side of the front and back and the positioning auxiliary frame 403.

[0035] The specific usage and function of this embodiment are as follows:

[0036] When the utility model is used, after the total copper tube is set on the outside of the supporting auxiliary frame 5, the workbench 3 is pushed to the inside of the drying box 1, and the driving shaft 401 rotates when the driving motor is started. During the rotation of the driving shaft 401, the driving cam 4011 pushes and assists the oscillation frame 4, so that the left end of the oscillation frame 4 slides up and down quickly. The positioning auxiliary frame 403 and the movable bracket 404 realize the guide limit when the left end of the oscillation frame 4 slides up and down. During the up and down sliding of the left end of the oscillation frame 4, the automatic separation of the residual water droplets on the surface of the alloy copper tube and the copper tube is realized. After the residual water droplets are automatically separated from the alloy copper tube, the bellows main body 2 and the annular air guide frame 202 realize the drying treatment of the inner and outer ends of the copper tube.

[0037] Embodiment 2:

[0038] On the basis of the first embodiment, Figures 4 to 6 As shown:

[0039] Among them, a plurality of limit brackets 601 are fixedly connected in a circular array at the outer end of the driving bracket 6; and a transmission auxiliary shaft 602 is rotatably connected at the inner end of the limit bracket 601 .

[0040] The transmission gear 603 is coaxially fixedly connected to the outer side of the transmission auxiliary shaft 602;

[0041] A driving gear ring 604 is coaxially fixedly connected to the inner side of the supporting auxiliary frame 5 ; the driving gear ring 604 and the transmission gear 603 are meshed with each other.

[0042] Among them, a clamping and operating frame 605 is slidably arranged on the upper and lower sides of the inner end of the transmission auxiliary shaft 602. The clamping and operating frame 605 is an arc-shaped frame structure, and the outer end of the clamping and operating frame 605 is an arc-shaped inclined plate structure inclined from the upper side of the outer end to the lower side of the inner end; the inner end of the transmission auxiliary shaft 602 is fixedly connected with a resistance-increasing frame 606; the resistance-increasing frame 606 and the transmission auxiliary shaft 602 are fixedly connected by an elastic extrusion member.

[0043] The specific usage and function of this embodiment are as follows:

[0044] When the utility model is in use, after the copper tube is pushed between the two clamping and operating frames 605, the automatic clamping and positioning of the copper tube is realized; in the process of drying the copper tube, the support auxiliary frame 5 rotates when the reduction motor is started, and in the process of rotation of the support auxiliary frame 5, the limit bracket 601 pushes the transmission auxiliary shaft 602 and the copper tube to revolve around the support auxiliary frame 5, and in the process of the transmission auxiliary shaft 602 and the copper tube revolving around the support auxiliary frame 5, the driving gear ring 604 pushes the transmission gear 603, so that the transmission auxiliary shaft 602 and the copper tube synchronously rotate during the revolution, and in the process of the transmission auxiliary shaft 602 and the copper tube revolving and rotating around the support auxiliary frame 5, the copper tube is evenly heated at multiple angles.

Claims

1. A device for rapidly drying the surface of an alloy copper tube, comprising a drying box, a drying treatment mechanism, a workbench, an oscillation frame, an oscillation auxiliary mechanism, a support auxiliary frame and a drying auxiliary mechanism, wherein the drying treatment mechanism is arranged inside the drying box; the workbench is slidably arranged at the inner end of the drying box; and the characteristics are: The oscillation frame is arranged at the upper end of the inner side of the workbench; the oscillation auxiliary mechanism is arranged between the oscillation frame and the workbench; the oscillation auxiliary mechanism includes: a driving shaft, the driving shaft is rotatably connected to the left side of the inner end of the workbench, and the outer end of the driving shaft is coaxially fixedly connected to the outer side of the driving motor shaft; the supporting auxiliary frame is fixedly connected to the left side of the top end surface of the oscillation frame; the drying auxiliary mechanism is arranged on the inner side of the supporting auxiliary frame; the drying auxiliary mechanism includes: a driving bracket, the driving bracket is rotatably connected to the inner side of the supporting auxiliary frame, and the outer end of the driving bracket is coaxially fixedly connected to the outer side of the reduction motor shaft.

2. The device for rapid drying the surface of an alloy copper tube as claimed in claim 1, characterized in that: The drying treatment mechanism includes: a bellows main body and an annular air guide frame, the bellows main body is fixedly connected to the top end surface of the drying box; a blower is arranged at the outer end of the bellows main body; the exhaust port in the blower is connected to the air guide port of the bellows main body; the annular air guide frame is fixedly connected to the right side of the inner end of the drying box, and the annular air guide frame and the bellows main body are connected by a ventilation pipe; a plurality of exhaust holes are evenly arranged on the inner sides of the annular air guide frame and the bellows main body.

3. The device for rapid drying the surface of an alloy copper tube as claimed in claim 1, characterized in that: The outer end of the driving shaft is coaxially fixedly connected with a driving cam, and the outer side of the driving cam and the oscillation frame are pressed against each other; The oscillation auxiliary mechanism also includes: two connecting brackets, which are hinged on the oscillation frame and the right side of the workbench in a front-to-back alignment.

4. The device for rapid drying the surface of an alloy copper tube as claimed in claim 1, characterized in that: The oscillation auxiliary mechanism also includes: two positioning auxiliary frames, which are hinged on the left side of the workbench in front and back alignment; a movable bracket is arranged above the positioning auxiliary frame, and the outer end of the movable bracket is hingedly connected to the oscillation frame; an elastic reset part is fixedly connected between the movable bracket and the positioning auxiliary frame on the same side of the front and back.

5. The device for rapid drying the surface of an alloy copper tube as claimed in claim 1, characterized in that: The outer end of the driving bracket is fixedly connected to a plurality of limit brackets in a circular array; the inner end of the limit bracket is rotatably connected to a transmission auxiliary shaft.

6. A device for rapid drying the surface of an alloy copper tube as claimed in claim 5, characterized in that: A transmission gear is coaxially and fixedly connected to the outer side of the transmission auxiliary shaft; A driving gear ring is coaxially fixedly connected to the inner side of the supporting auxiliary frame; the driving gear ring and the transmission gear are meshed with each other.

7. A device for rapid drying the surface of an alloy copper tube as claimed in claim 6, characterized in that: A clamping and controlling frame is slidably arranged on the upper and lower sides of the inner end of the transmission auxiliary shaft. The clamping and controlling frame is an arc-shaped frame structure, and the outer end of the clamping and controlling frame is an arc-shaped inclined plate structure inclined from the upper side of the outer end to the lower side of the inner end; a resistance-increasing frame is fixedly connected to the inner end of the transmission auxiliary shaft; the resistance-increasing frame and the transmission auxiliary shaft are fixedly connected by an elastic extrusion piece.

Citation Information

Patent Citations

  • Alloy copper pipe surface drying equipment

    CN219551062U