Antirust agent production feeding device

The automated conveying and pumping mechanism solves the problem of cumbersome manual feeding in rust inhibitor production, achieves stable raw material delivery and proportion control, and improves production efficiency.

CN224180796UActive Publication Date: 2026-05-01GUANGZHOU LUODE CHEM SCI & TRADING
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGZHOU LUODE CHEM SCI & TRADING
Filing Date
2025-04-29
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In the current rust inhibitor production process, manual feeding results in cumbersome raw material feeding steps and low production efficiency.

Method used

An automated conveying and pumping mechanism is adopted. The raw materials in the raw material barrel are sucked into the flow box through the conveying pipe, and the pumping mechanism is used to pressurize and convey them to the mixer. The raw material ratio is controlled by adjustable baffles, and the remaining raw materials are cleaned up by solenoid valves.

Benefits of technology

It achieves stable and accurate raw material delivery and proportioning, improves the efficiency of rust inhibitor production, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224180796U_ABST
    Figure CN224180796U_ABST
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Abstract

The utility model belongs to the technical field of antirust agent production equipment, particularly relates to a feeding device for antirust agent production, and aims to solve the problem that the production efficiency is low when an antirust agent is produced due to tedious raw material feeding steps caused by an existing manual feeding mode during feeding. A supporting frame and a mixing machine are fixedly installed on the top of the base respectively, the mixing machine is located on one side of the supporting frame, a plurality of raw material barrels are fixedly installed on the top of the supporting frame at equal intervals, the feeding device further comprises a conveying mechanism, and the conveying mechanism is connected with the inner walls of the bottoms of the raw material barrels respectively. According to the raw material feeding device, different raw materials can be pumped to the mixing machine at the same time by starting the conveying pump, so that the working efficiency can be effectively improved when the raw materials are fed, and the feeding ratio of the raw materials can be conveniently controlled in the raw material conveying process, so that the raw material feeding device has good use convenience.
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Description

Technical Field

[0001] This utility model relates to the technical field of rust inhibitor production equipment, and in particular to a rust inhibitor production feeding device. Background Technology

[0002] Rust inhibitor is a super-efficient synthetic penetrant that can powerfully penetrate rust, corrosion, and oil stains to easily remove rust and corrosion from screws and bolts. It has the properties of penetrating and removing rust, loosening and lubricating, resisting corrosion, and protecting metals. It can also form and store a lubricating film on the surface of parts, which can inhibit corrosion caused by moisture and many other chemical components.

[0003] Currently, in the production process of rust inhibitors, multiple raw materials need to be fed into the processing machine simultaneously or in batches. However, the current manual feeding method inevitably leads to cumbersome raw material feeding steps, resulting in low production efficiency in rust inhibitor production. Therefore, we propose a rust inhibitor production feeding device to solve the above-mentioned problems. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies where manual feeding inevitably leads to cumbersome material feeding steps and low production efficiency in rust inhibitor production. Therefore, this invention proposes a rust inhibitor production feeding device.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A rust inhibitor production feeding device includes a base, a support frame and a mixer fixedly mounted on the top of the base, with the mixer located on one side of the support frame. Multiple raw material barrels are fixedly mounted at equal intervals on the top of the support frame. The feeding device also includes:

[0007] The conveying mechanism is connected to the bottom inner wall of multiple raw material barrels. One side of the conveying mechanism passes through the inner wall of one side of the support frame and extends to the outside of the support frame.

[0008] The pumping mechanism is installed on the top of the base, with one end connected to the conveying mechanism and the other end extending into the mixer and connected to the inner wall of the top side of the mixer. The pumping mechanism is used to pressurize and convey the raw materials.

[0009] In one possible design, the conveying mechanism includes conveying pipes fixedly installed on the inner wall of the bottom of the raw material barrel. One end of each of the multiple conveying pipes passes through one side of the inner wall of the support frame and extends to the outside of the support frame. One end of the multiple conveying pipes is fixedly connected to the same flow box. One end of the pumping mechanism extends into the flow box and is connected to one side of the inner wall of the flow box.

[0010] In one possible design, a support baffle is fixedly installed inside the conveying pipe. Two first flow holes are symmetrically opened on the support baffle, and an adjusting shaft is rotatably connected through the central area of ​​the support baffle. A rotating baffle is fixedly installed at one end of the adjusting shaft inside the conveying pipe. The rotating baffle contacts one side of the support baffle. Two second flow holes are symmetrically opened on the rotating baffle. The first flow holes and the corresponding second flow holes are movably connected. One end of the adjusting shaft extends into the flow box and is fixedly installed with a connecting bevel gear. Multiple rotating shafts are rotatably connected through the top inner wall of the flow box at equal intervals. A drive bevel gear is fixedly installed at the bottom end of the rotating shaft. The drive bevel gear meshes with the corresponding connecting bevel gear. A wrench is fixedly installed at the top end of the rotating shaft.

[0011] In one possible design, multiple retaining rings are fixedly installed at equal intervals on the top of the flow box. Each retaining ring has two retaining grooves, which are set at a 90° angle. A rotating shaft passes through the retaining rings. A limit hole is provided on the wrench, and a limit rod is fixedly installed in the limit hole. A push plate is slidably sleeved on the limit rod. The top of the push plate extends above the wrench, and the bottom of the push plate extends below the wrench and is fixedly installed with a retaining plate. The retaining plate is movably engaged with the two retaining grooves. A compression spring is sleeved on the limit rod, and the two ends of the compression spring are fixedly connected to one side of the inner wall of the limit hole and one side of the push plate, respectively.

[0012] In one possible design, a recovery pipe is fixedly installed on the inner wall of one side of the bottom of the flow box, and the bottom end of the recovery pipe extends to the bottom of the flow box and is fixedly installed with a solenoid valve.

[0013] In one possible design, the pumping mechanism includes a conveying pump fixedly mounted on the top of the base, the suction end of the conveying pump extending into the flow box and fixedly connected to one side of the inner wall of the flow box, and a flow pipe fixedly mounted on the output end of the conveying pump, one end of the flow pipe extending into the mixer and fixedly connected to one side of the top inner wall of the mixer.

[0014] In this application, multiple raw materials for producing rust inhibitors are first sequentially added to multiple raw material barrels, and the first flow holes on the support baffles in multiple conveying pipes are kept in communication with the second flow holes on the corresponding rotating baffles. Then, a conveying pump can be started to generate a constant suction force, thereby drawing the raw materials from the multiple raw material barrels into the flow box through the corresponding conveying pipes. Afterwards, the raw materials are stably conveyed to the mixer through the flow pipes, thus ensuring a stable supply to the mixer. When one or more raw materials have been conveyed, the push plate on the corresponding wrench can be pulled. As the push plate moves, it displaces the clamping plate from its corresponding slot. Then, the wrench can be rotated 90°, driving the rotating shaft to rotate. When the rotating shaft rotates, it drives the drive bevel gear to rotate, i.e. Under the meshing transmission of the corresponding connecting bevel gear, the adjusting shaft can be driven to rotate, which in turn drives the rotating baffle to rotate. At this time, the positions of the two second flow holes can be adjusted so that the second flow holes and the first flow holes are not connected. Then, the push plate can be released, and the compressed spring under force can push the push plate to move, which can drive the clamping plate to move. Inserting one side of the clamping plate into the corresponding slot can position the wrench, thereby positioning the rotating baffle and blocking the flow of raw materials in the corresponding raw material barrel. This ensures that multiple raw materials are accurately proportioned when they are added to the mixer. After the raw materials are added, the remaining raw materials can be discharged from the recovery pipe by energizing the solenoid valve.

[0015] Beneficial effects: In this utility model, the rust inhibitor production feeding device can maintain suction in the flow box by activating the pump mechanism through the conveying mechanism. At this time, different raw materials in multiple raw material barrels can be sucked into the flow box through the corresponding conveying pipes. After being conveyed by the pump mechanism, the raw materials can be transported to the mixer for processing.

[0016] In this utility model, the rust inhibitor production feeding device, through the pump mechanism, can generate a constant suction force by starting the conveying pump, thereby drawing the raw materials from multiple raw material barrels into the flow box through the corresponding conveying pipes, and then conveying them through the flow pipes to stably deliver the raw materials into the mixer, thereby enabling a stable supply of materials into the mixer.

[0017] In the production of rust inhibitors, this invention allows for the simultaneous pumping of different raw materials to a mixer by starting a delivery pump. This effectively improves work efficiency when adding raw materials and allows for convenient control of the material ratio during the delivery process, thus providing excellent ease of use. Attached Figure Description

[0018] Figure 1This is a first-view three-dimensional structural schematic diagram of a rust inhibitor production feeding device proposed in this utility model.

[0019] Figure 2 This is a two-dimensional structural diagram of a rust inhibitor production feeding device proposed in this utility model from a second perspective.

[0020] Figure 3 A three-dimensional schematic diagram of the connection structure of the conveying pipe, support baffle, adjusting shaft, rotating baffle and wrench of the rust inhibitor production feeding device proposed in this utility model;

[0021] Figure 4 This is a three-dimensional schematic diagram of the connection structure of the wrench, retaining ring, rotating shaft, drive bevel gear and adjusting shaft of the rust inhibitor production feeding device proposed in this utility model.

[0022] Figure 5 This is a three-dimensional schematic diagram of the connection structure of the wrench, clamping plate, and retaining ring of a rust inhibitor production feeding device proposed in this utility model.

[0023] In the diagram: 1. Base; 2. Support frame; 3. Raw material barrel; 4. Conveying pipe; 5. Flow box; 6. Recovery pipe; 7. Solenoid valve; 8. Conveying pump; 9. Flow pipe; 10. Mixer; 11. Support baffle; 12. Adjusting shaft; 13. Rotating baffle; 14. Connecting bevel gear; 15. Rotating shaft; 16. Drive bevel gear; 17. Wrench; 18. Limiting rod; 19. Push plate; 20. Clamping plate; 21. Compression spring; 22. Clamping ring; 23. Clamping groove. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0025] Example 1: Refer to Figure 1-5 A feeding device, the main structure of which includes a base 1, a support frame 2 and a mixer 10 are firmly mounted on the top of the base 1. The mixer 10 is placed on one side of the support frame 2 to facilitate the mixing of raw materials. On the top of the support frame 2, a plurality of raw material barrels 3 are fixedly installed at equal intervals. These raw material barrels 3 are used to store different raw materials required for the production of rust inhibitors.

[0026] To achieve automated material conveying, the device also includes a conveying mechanism and a pumping mechanism. The conveying mechanism is connected to the bottom inner wall of each raw material barrel 3, with one side penetrating one side inner wall of the support frame 2 and extending to the outside of the support frame 2. Specifically, the conveying mechanism consists of conveying pipes 4 installed on the bottom inner wall of the raw material barrel 3. One end of each of these conveying pipes 4 passes through the support frame 2 and converges into a common flow box 5.

[0027] The pumping mechanism is installed on the top of the base 1, with one end connected to the flow box 5 and the other end extending into the mixer 10 and connected to the inner wall of the top side of the mixer 10. The main function of the pumping mechanism is to pressurize and transport the raw materials, ensuring that the raw materials can smoothly enter the mixer 10 for processing. In this embodiment, the pumping mechanism is specifically a conveying pump 8, whose suction end extends into the flow box 5, and whose output end is connected to the mixer 10 through the flow pipe 9.

[0028] To precisely control the delivery of raw materials, a support baffle 11 is installed inside each delivery pipe 4. Two first flow holes are symmetrically formed on the support baffle 11. Simultaneously, an adjusting shaft 12 is rotatably connected through the central area of ​​the support baffle 11. A rotating baffle 13 is fixedly installed at one end of the adjusting shaft 12, and two second flow holes are also symmetrically formed on the rotating baffle 13. By rotating the adjusting shaft 12, the rotating baffle 13 can be rotated, thereby changing the communication state between the second and first flow holes and achieving selective delivery of the raw materials.

[0029] To adjust the position of the rotating baffle 13, multiple rotating shafts 15 are rotatably connected at equal intervals on the top inner wall of the flow box 5. Each rotating shaft 15 has a driving bevel gear 16 fixedly installed at its bottom end, and the driving bevel gear 16 meshes with the corresponding connecting bevel gear 14 (fixedly installed at one end of the adjusting shaft 12). A wrench 17 is fixedly installed at the top end of the rotating shaft 15. By rotating the wrench 17, the rotating shaft 15 and the driving bevel gear 16 can be rotated, which in turn drives the adjusting shaft 12 and the rotating baffle 13 to rotate through the connecting bevel gear 14.

[0030] To ensure the wrench 17 remains stable after adjustment, multiple retaining rings 22 are fixedly installed at equal intervals on the top of the flow box 5. Each retaining ring 22 has two retaining grooves 23 at a 90° angle. A limiting hole is provided on the wrench 17, and a limiting rod 18 is fixedly installed within it. A push plate 19 is slidably fitted onto the limiting rod 18. The top of the push plate 19 extends above the wrench 17, and the bottom extends below it, where a retaining plate 20 is fixedly installed. The retaining plate 20 can be movably engaged with one of the two retaining grooves 23. Simultaneously, a compression spring 21 is fitted onto the limiting rod 18, with both ends of the spring fixedly connected to one side of the inner wall of the limiting hole and one side of the push plate 19, respectively. When the rotating wrench 17 adjusts the rotating baffle 13, the push plate 19 is released. The elastic force of the compressed spring 21 will push the push plate 19 to move, thereby causing the locking plate 20 to be inserted into the corresponding locking slot 23, thus achieving the positioning of the wrench 17 and the rotating baffle 13.

[0031] This application can be used in the field of rust inhibitor production equipment technology, or in other fields applicable to this application.

[0032] Example 2: Reference Figure 1-2 An improvement upon Embodiment 1: A rust inhibitor production feeding device, applied in the field of rust inhibitor production equipment technology, includes a recovery pipe 6 fixedly installed on the inner wall of one side of the bottom of the flow box 5 to facilitate the cleaning of remaining raw materials after processing. The bottom end of the recovery pipe 6 extends to the bottom of the flow box 5 and is fixedly installed with a solenoid valve 7. When it is necessary to clean up the remaining raw materials, simply energize the solenoid valve 7 to open it, and the remaining raw materials can be discharged through the recovery pipe 6.

[0033] When using the rust inhibitor production feeding device, firstly, select the raw material barrel 3 to be conveyed according to production needs, and adjust the position of the rotating baffle 13 by turning the corresponding wrench 17 to connect the second flow hole with the first flow hole. Then, start the conveying pump 8 to generate suction to draw the raw material from the raw material barrel 3 into the flow box 5 through the conveying pipe 4. Next, under the pressure of the conveying pump 8, the raw material is stably conveyed to the mixer 10 for processing through the flow pipe 9. After production is completed, turn off the conveying pump 8 and open the solenoid valve 7 to discharge the remaining raw material in the flow box 5 for cleaning.

[0034] However, as is well known to those skilled in the art, the working principles and wiring methods of the solenoid valve 7 and the delivery pump 8 are commonplace and are all conventional methods or common knowledge. They will not be described in detail here. Those skilled in the art can make any selections according to their needs or convenience.

[0035] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A rust inhibitor production feeding device, comprising a base (1), a support frame (2) and a mixer (10) respectively fixedly installed on the top of the base (1), wherein the mixer (10) is located on one side of the support frame (2), and a plurality of raw material barrels (3) are fixedly installed at equal intervals on the top of the support frame (2), characterized in that, The feeding device also includes: The conveying mechanism is connected to the bottom inner wall of multiple raw material barrels (3). One side of the conveying mechanism passes through the inner wall of one side of the support frame (2) and extends to the outside of the support frame (2). The pumping mechanism is installed on the top of the base (1), and one end of the pumping mechanism is connected to the conveying mechanism. The other end of the pumping mechanism extends into the mixer (10) and is connected to the inner wall of the top of one side of the mixer (10). The pumping mechanism is used to pressurize and convey the raw materials. The conveying mechanism includes conveying pipes (4) fixedly installed on the inner wall of the bottom of the raw material barrel (3). One end of each of the multiple conveying pipes (4) passes through the inner wall of one side of the support frame (2) and extends to the outside of the support frame (2). One end of each of the multiple conveying pipes (4) is fixedly connected to the same flow box (5). One end of the pumping mechanism extends into the flow box (5) and is connected to the inner wall of one side of the flow box (5). A support baffle (11) is fixedly installed inside the conveying pipe (4). Two first flow holes are symmetrically opened on the support baffle (11). An adjusting shaft (12) is rotatably connected through the central area of ​​the support baffle (11). A rotating baffle (13) is fixedly installed at one end of the adjusting shaft (12) inside the conveying pipe (4). The rotating baffle (13) is in contact with one side of the support baffle (11). Two second flow holes are symmetrically opened on the rotating baffle (13). The first flow hole is movably connected to the corresponding second flow hole. One end of the adjusting shaft (12) extends into the flow box (5) and is fixedly installed with a connecting bevel gear (14). Multiple rotating shafts (15) are rotatably connected through the top inner wall of the flow box (5) at equal intervals. An active bevel gear (16) is fixedly installed at the bottom end of the rotating shaft (15). The active bevel gear (16) meshes with the corresponding connecting bevel gear (14). A wrench (17) is fixedly installed at the top end of the rotating shaft (15).

2. The rust inhibitor production feeding device according to claim 1, characterized in that, Multiple retaining rings (22) are fixedly installed at equal intervals on the top of the flow box (5). Two retaining grooves (23) are opened on the retaining rings (22), and the two retaining grooves (23) are set at a 90° angle. The rotating shaft (15) passes through the retaining rings (22). A limit hole is opened on the wrench (17), and a limit rod (18) is fixedly installed in the limit hole. A push plate (19) is slidably sleeved on the limit rod (18). The top of the push plate (19) extends to the top of the wrench (17), and the bottom of the push plate (19) extends to the bottom of the wrench (17) and a retaining plate (20) is fixedly installed. The retaining plate (20) is movably engaged with the two retaining grooves (23) respectively. A compression spring (21) is sleeved on the limit rod (18). The two ends of the compression spring (21) are fixedly connected to one side of the inner wall of the limit hole and one side of the push plate (19) respectively.

3. The rust inhibitor production feeding device according to claim 2, characterized in that, A recovery pipe (6) is fixedly installed on the inner wall of one side of the bottom of the flow box (5). The bottom end of the recovery pipe (6) extends to the bottom of the flow box (5) and is fixedly installed with a solenoid valve (7).

4. The rust inhibitor production feeding device according to claim 1, characterized in that, The pumping mechanism includes a conveying pump (8) fixedly installed on the top of the base (1). The suction end of the conveying pump (8) extends into the flow box (5) and is fixedly connected to the inner wall of one side of the flow box (5). A flow pipe (9) is fixedly installed on the output end of the conveying pump (8). One end of the flow pipe (9) extends into the mixer (10) and is fixedly connected to the inner wall of the top side of the mixer (10).