Stamping liquid application brush

CN224791867UActive Publication Date: 2026-09-25XIAORUN CHEMICAL TECHNOLOGY (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202521308696.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-25
Publication Date
2026-09-25
Estimated Expiration
2035-06-25

AI Technical Summary

Technical Problem

[0002]现有的冲压液涂抹刷在使用过程中是使冲压液均匀沿着毛刷流动,毛刷底端与输送到 工件钢板接触,进而将冲压液涂抹在工件钢板表面,上述方式在涂抹过程中, 由于毛刷的宽 度一定,而工件钢板的宽度为随机不同的,进而大导致在对小于其宽度的工件钢板涂抹时容 易造成冲压液浪费,而在对大于其宽度的工件钢板表面涂抹时需要改变钢板的位置才能实现 全面涂抹,导致其涂抹效率较低以及涂抹效果不佳, 因此,急需一种冲压液涂抹刷来解决上 述问题

Benefits of technology

本实用新型通过设置一组由双向螺杆、螺块、副毛刷组成的调节机构,在对工件钢板涂抹冲 压液时,可根据工件钢板的宽度转动双向螺杆转动,进而使螺块带动两组副毛刷移动, 同时 配合主毛刷可将涂抹宽度调节到与工件钢板一致的宽度,使主毛刷以及副毛刷同时对工件钢 板表面件涂抹,有效提高装置的适用性以及涂抹性能,使用性能高。

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Abstract

The utility model discloses a kind of stamping liquid daubing brushes, including main bearing shell, the guiding groove is installed on the side wall of main bearing shell, two-way screw rod is installed in the guiding groove, two groups of screw block matched with the inside diameter specification of the guiding groove are symmetrically set on two-way screw rod, the screw block bottom end is fixed with vice bearing shell, flow guide pipe is installed in the main bearing shell and the vice bearing shell. Advantageous effect lies in: the utility model is adjusted by setting a group of mechanism by two-way screw rod, screw block, vice brush, when stamping liquid is daubed to workpiece steel plate, two-way screw rod can be rotated according to the width of workpiece steel plate, and then make screw block drive two groups of vice brush to move, simultaneously cooperate main brush can be daubed width adjusted to consistent width with workpiece steel plate, make main brush and vice brush simultaneously daub on workpiece steel plate surface piece, effectively improve the applicability and daubing performance of device, and use performance is high.
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Description

Technical Field

[0001] This utility model relates to the technical field of stamping fluid coating equipment, specifically to a stamping fluid coating brush. Background Technology Stamping fluid is a metalworking oil formulated primarily with sulfurized lard, along with refined oiling agents, rust inhibitors, and various other additives. It is particularly suitable for high-intensity operations such as punching, stamping, tapping, and grooving. It is also highly suitable for plastic forming processes. It possesses excellent lubricity and extreme pressure properties, and provides good protection for molds. Before stamping, the stamping fluid should be applied to the workpiece surface using a brush.

[0002] Existing stamping fluid application brushes work by uniformly flowing the stamping fluid along the brush, with the bottom of the brush contacting the conveyed workpiece steel plate to apply the stamping fluid to its surface. However, this method suffers from several drawbacks. Since the brush width is fixed while the workpiece steel plate width varies, stamping fluid is easily wasted when applying to workpiece steel plates narrower than the brush. Furthermore, when applying to workpiece steel plates wider than the brush, the plate's position needs to be changed to achieve complete coverage. This results in low application efficiency and poor application results. Therefore, a new stamping fluid application brush is urgently needed to solve these problems. Utility Model Content

[0003] (a) Technical problems to be solved The technical problem to be solved by this utility model is to provide a stamping fluid coating brush in light of the current state of the technology.

[0004] (II) Technical Solution This utility model is achieved through the following technical solution: This utility model proposes a stamping fluid coating brush, including a main bearing shell. A guide groove is installed on one side wall of the main bearing shell. A bidirectional screw is installed in the guide groove. Two sets of screw blocks matching the inner diameter of the guide groove are symmetrically sleeved on the bidirectional screw. A secondary bearing shell is fixed to the bottom end of the screw blocks. A guide tube is installed in both the main bearing shell and the secondary bearing shell. A connecting hose is symmetrically arranged between the two sets of guide tubes. A valve is installed on the connecting hose. A through hole is opened on the bottom wall of the guide tube. A through cavity is opened on the bottom wall of both the main bearing shell and the secondary bearing shell. A main brush is installed on the bottom wall of the main bearing shell, and a secondary brush is installed on the bottom wall of the secondary bearing shell.

[0005] Furthermore, the bidirectional screw is rotatably mounted in the guide groove, and a knob is connected to one end of the bidirectional screw.

[0006] Furthermore, the screw block is threadedly connected to the bidirectional screw, and the screw block is slidably connected to the guide groove.

[0007] Furthermore, the guide pipe is fixed inside the main bearing shell and the secondary bearing shell respectively, the connecting hose is connected to the guide pipe by threads, and the valve is installed on the connecting hose by threads.

[0008] Furthermore, the through hole is formed on the guide tube, and the through cavity is formed on the main bearing shell and the secondary bearing shell respectively, with the through cavity located directly below the through hole.

[0009] Furthermore, both the main brush and the auxiliary brush are fixed in the two sets of through cavities by screws.

[0010] Furthermore, the guide tube located inside the main bearing shell has a T-shaped structure and a connection nozzle is reserved at one end.

[0011] (III) Beneficial Effects Compared with the prior art, this utility model has the following advantages: This invention features an adjustment mechanism consisting of a bidirectional screw, a screw block, and auxiliary brushes. When applying stamping fluid to a workpiece steel plate, the bidirectional screw can be rotated according to the width of the workpiece steel plate, causing the screw block to move two sets of auxiliary brushes. Simultaneously, in conjunction with the main brush, the application width can be adjusted to match the width of the workpiece steel plate, allowing both the main and auxiliary brushes to simultaneously apply the fluid to the surface of the workpiece steel plate. This effectively improves the applicability and application performance of the device, resulting in high performance. Attached Figure Description

[0012] Figure 1 is a structural schematic diagram of the stamping liquid application brush of the present invention; Figure 2 is a rear view of the stamping liquid application brush of the present invention; Figure 3 is a front cross-sectional view of the main bearing shell in the stamping fluid coating brush of this utility model.

[0013] The annotations in the attached figures are explained as follows: 1. Main bearing shell; 2. Main brush; 3. Secondary brush; 4. Secondary bearing shell; 5. Guide groove; 6. Bidirectional screw; 7. Screw block; 8. Knob; 9. Connecting hose; 10. Valve; 11. Guide tube; 12. Through hole; 13. Through cavity. Detailed Implementation

[0014] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0015] As shown in Figures 1-3, a stamping fluid coating brush in this embodiment includes a main support shell 1. A guide groove 5 is installed on one side wall of the main support shell 1. A bidirectional screw 6 is installed inside the guide groove 5. Two sets of screw blocks 7, matching the inner diameter of the guide groove 5, are symmetrically fitted on the bidirectional screw 6, which can drive the secondary brush 3 to move. A secondary support shell 4 is fixed to the bottom end of the screw block 7. Both the main support shell 1 and the secondary support shell 4 are equipped with guide pipes 11. Connecting hoses 9 are symmetrically arranged between the two sets of guide pipes 11 to guide the stamping fluid. A valve 10 is installed on the connecting hose 9 to control the opening and closing of the connecting hose 9. A through hole 12 is opened on the bottom wall of the guide pipe 11. The stamping fluid falls into the through cavity 13 through the through hole 12. The main support shell 1 and the secondary support shell 4 are both equipped with through cavities 13. The stamping fluid flows along the main brush 2 and the secondary brush 3 in the through cavity 13. A main brush 2 is installed on the bottom wall, and a secondary bearing shell 4 is installed on the bottom wall. A secondary brush 3 can be installed to apply stamping fluid to the surface of the workpiece steel plate.

[0016] As shown in Figures 1-3, in this embodiment, the bidirectional screw 6 is rotatably installed in the guide groove 5. One end of the bidirectional screw 6 is connected to a knob 8. The screw block 7 is threadedly connected to the bidirectional screw 6, and the screw block 7 is slidably connected to the guide groove 5. When applying stamping fluid to the workpiece steel plate, the bidirectional screw 6 can be rotated by turning the knob 8 according to the width of the workpiece steel plate. This causes the screw block 7 to drive the two sets of auxiliary brushes 3 to move. At the same time, in conjunction with the main brush 2, the coating width can be adjusted to be consistent with the width of the workpiece steel plate. This allows the main brush 2 and the auxiliary brushes 3 to coat the surface of the workpiece steel plate simultaneously, effectively improving the applicability and coating performance of the device, resulting in high performance.

[0017] As shown in Figures 1-3, in this embodiment, the guide tube 11 is fixed inside the main bearing shell 1 and the secondary bearing shell 4, respectively. The connecting hose 9 is threadedly connected to the guide tube 11. The valve 10 is threadedly installed on the connecting hose 9. The through hole 12 is formed on the guide tube 11, and the through cavity 13 is formed on the main bearing shell 1 and the secondary bearing shell 4, respectively. The through cavity 13 is located directly below the through hole 12. The main brush 2 and the secondary brush 3 are both fixed in the two sets of through cavities 13 by screws. The guide tube located inside the main bearing shell 1... 11 has a T-shaped structure and a pre-installed connection nozzle at one end. During use, it is connected to an external liquid supply mechanism through the external nozzle. After the auxiliary brush 3 is adjusted, the valve 10 is opened. The stamping fluid flows through the guide pipe 11 in the main bearing shell 1 and the connecting hose 9 into the guide pipe 11 in the auxiliary bearing shell 4. During the flow of the stamping fluid in the two sets of guide pipes 11, the stamping fluid will fall into the through cavity 13 through the through hole 12 and flow along the main brush 2 and the auxiliary brush 3. Finally, it is coated on the surface of the workpiece steel plate by the main brush 2 and the auxiliary brush 3.

[0018] The specific implementation process of this embodiment is as follows: First, the device is installed and fixed, and then connected to an external liquid supply mechanism through an external connector. The bidirectional screw 6 is rotated according to the width of the workpiece steel plate, which causes the screw block 7 to drive the two sets of auxiliary brushes 3 to move. At the same time, the coating width can be adjusted to be consistent with the width of the workpiece steel plate in conjunction with the main brush 2. After the auxiliary brushes 3 are adjusted, the valve 10 is opened, and the stamping fluid flows through the guide pipe 11 in the main bearing shell 1 and the connecting hose 9 into the guide pipe 11 in the auxiliary bearing shell 4. During the flow of the stamping fluid in the two sets of guide pipes 11, the stamping fluid will fall into the through cavity 13 through the through hole 12 and flow along the main brush 2 and auxiliary brushes 3. Finally, it is coated on the surface of the workpiece steel plate by the main brush 2 and auxiliary brushes 3, so that the main brush 2 and auxiliary brushes 3 coat the surface of the workpiece steel plate at the same time, which effectively improves the applicability and coating performance of the device and has high performance.

[0019] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A stamping fluid application brush, characterized in that: The system includes a main bearing shell (1), a guide groove (5) installed on one side wall of the main bearing shell (1), a bidirectional screw (6) installed in the guide groove (5), two sets of screw blocks (7) symmetrically fitted on the bidirectional screw (6) and matching the inner diameter of the guide groove (5), a secondary bearing shell (4) fixed at the bottom of the screw block (7), a guide pipe (11) installed in both the main bearing shell (1) and the secondary bearing shell (4), a connecting hose (9) symmetrically arranged between the two sets of guide pipes (11), a valve (10) installed on the connecting hose (9), a through hole (12) opened on the bottom wall of the guide pipe (11), a through cavity (13) opened on the bottom wall of both the main bearing shell (1) and the secondary bearing shell (4), a main brush (2) installed on the bottom wall of the main bearing shell (1), and a secondary brush (3) installed on the bottom wall of the secondary bearing shell (4).

2. The stamping fluid application brush according to claim 1, characterized in that: The bidirectional screw (6) is rotatably installed in the guide groove (5), and a knob (8) is connected to one end of the bidirectional screw (6).

3. The stamping fluid application brush according to claim 1, characterized in that: The screw block (7) is connected to the bidirectional screw (6) by a thread, and the screw block (7) is slidably connected to the guide groove (5).

4. The stamping fluid application brush according to claim 1, characterized in that: The guide pipe (11) is fixed inside the main bearing shell (1) and the secondary bearing shell (4) respectively. The connecting hose (9) is connected to the guide pipe (11) by a thread. The valve (10) is installed on the connecting hose (9) by a thread.

5. The stamping fluid application brush according to claim 4, characterized in that: The through hole (12) is formed on the guide tube (11), and the through cavity (13) is formed on the main bearing shell (1) and the secondary bearing shell (4) respectively. The through cavity (13) is located directly below the through hole (12).

6. The stamping fluid application brush according to claim 5, characterized in that: The main brush (2) and the secondary brush (3) are respectively fixed in the two sets of through cavities (13) by screws.

7. The stamping fluid application brush according to claim 6, characterized in that: The guide pipe (11) located inside the main bearing shell (1) has a T-shaped structure and a connection nozzle is reserved at one end.