Curing agent load-bearing proportioning device

By designing a curing agent load-bearing ratio device for supporting disks, rotary load rings and lifting base plates, the problem of difficulty in removing experimental blocks and cleaning containers is solved, and efficient removal and cleaning of experimental blocks is achieved.

CN223233752UActive Publication Date: 2025-08-19GUANGDONG HUAGU SAND POWDER TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422302036.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-08-19
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

During the curing agent rationing process, it is difficult to remove the experimental block and clean the container, and the efficiency is inefficient.

Method used

A curing agent load-bearing ratio device is designed, including a support plate, a rotary load ring, a six-leg support frame and a lifting base plate. It is convenient for the removal of the experimental block through the rotating and lifting structure, and the residues in the inner wall of the container are cleaned through the scraper.

Benefits of technology

The removal process of experimental blocks is simplified, the cleaning range and time is reduced, and the cleaning efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of curing agent proportioning, and particularly relates to a curing agent bearing proportioning device which comprises a supporting disc, a curing agent storage box is fixedly connected to one side of the supporting disc, a cover plate is arranged at the top end of the curing agent storage box, and an agent injection pipe is arranged on the side, close to the supporting disc, of the curing agent storage box. The inner wall of the supporting disc is rotationally connected with a rotating carrying ring, the inner wall of the rotating carrying ring is fixedly connected with six-foot supporting frames, and the inner walls of the six-foot supporting frames are slidably connected with lifting bottom plates. The lifting bottom plate is controlled to ascend and descend in the notch of the six-foot supporting frame, the depth is adjusted and controlled, when the lifting bottom plate ascends, the lifting bottom plate lifts the experiment block, the experiment block can be conveniently taken out, the experiment block can be clamped without stretching in a tool, the inner wall of the notch in the six-foot supporting frame is scraped and cleaned, the range needing to be cleaned is reduced, and meanwhile the experiment block can be conveniently taken out. The lifting bottom plate, the six-foot supporting frame, the rotary carrying ring and the top of the supporting disc are flush, and the scraping rods conduct scraping and cleaning on the supporting disc.
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Description

Technical Field

[0001] The utility model belongs to the technical field of curing agent proportioning, and particularly relates to a curing agent load-bearing proportioning device. Background Art

[0002] A curing agent is a chemical substance that transforms a substance from a liquid or soft state to a solid, hardened state. The curing agent load-bearing ratio generally refers to the ratio between the curing agent and other materials (such as resin, concrete, etc.) to achieve the required load-bearing performance in a specific application scenario.

[0003] When carrying out the load-bearing ratio of the curing agent, the material is first placed in a container. Multiple containers can be set up to place the same and equal amounts of materials. Then, unequal amounts or different curing agents are added to each container so that the curing agent can react with the material. After the reaction is completed, the experimental block is taken out for a load-bearing test. After the experimental block is taken out, the container needs to be cleaned to prevent residues from affecting subsequent experimental use. However, it is difficult to clean several containers and it takes a lot of time and energy, so the cleaning efficiency is not high. Utility Model Content

[0004] The utility model provides a curing agent load-bearing proportioning device, which has the characteristics of being convenient for taking out experimental blocks and cleaning containers.

[0005] The utility model provides the following technical solution: it includes a support plate, one side of the support plate is fixedly connected to a curing agent storage box, the top of the curing agent storage box is provided with a cover plate, the side of the curing agent storage box close to the support plate is provided with an injection tube, the inner wall of the support plate is rotatably connected to a rotating carrier ring, the inner wall of the rotating carrier ring is fixedly connected to a six-legged support frame, several inner walls of the six-legged support frames are slidably connected to a lifting base plate, the support plate is flush with the rotating carrier ring and the top of the six-legged support frame, the top of the support plate is fixedly connected to a scraper rod, and the scraper rod is slidably connected to the rotating carrier ring, the six-legged support frame and the top of the lifting base plate.

[0006] Among them, a shielding cover is hinged on one side of the support plate, and a V-shaped clearance gap and a strip-shaped gap are provided on the shielding cover. The position and size of the V-shaped clearance gap correspond to the gap of the six-legged support frame. The injection tube does not contact the shielding cover, and the scraper rod is engaged and connected in the strip-shaped gap.

[0007] Wherein, the side wall of the rotating carrier ring is fixedly connected to a limiting ring, and the limiting ring is rotatably connected to the inner wall of the supporting disk.

[0008] Among them, a synchronous lifting plate is provided at the bottom of the hexapod support frame, and the synchronous lifting plate is fixedly connected to the bottom ends of several lifting base plates. The bottom end of the hexapod support frame is rotatably connected to a screw rod, and the screw rod is threadedly connected to the inner wall of the synchronous lifting plate. A motor for rotating and driving the screw rod is installed in the hexapod support frame.

[0009] Among them, two guide slide bars are fixedly connected to the bottom end of the six-legged support frame, and the two guide slide bars both pass through the bottom end of the synchronous lifting plate.

[0010] The beneficial effects of the utility model are as follows: by controlling the lifting base plate to rise and fall in the notch of the six-legged support frame, the depth and size can be adjusted, thereby facilitating the handling of different types of experiments; when the lifting base plate rises, the lifting base plate lifts the experimental block, which is convenient for taking out the experimental block and can be clamped without inserting tools; and the inner wall of the notch on the six-legged support frame is scraped and cleaned, thereby reducing the range required for cleaning; at the same time, the lifting base plate, the six-legged support frame, the rotating carrier ring and the top of the support plate are in a flush state, and the scraper scrapes and cleans them, so that the dirt remaining in each storage space can be collected at the scraper rod position, the cleaning process is simple and convenient, and the efficiency is improved;

[0011] By controlling the rotation of the six-legged support frame, several storage spaces can be rotated to a certain angle, so that when placing materials and curing agents, personnel only need to place them at a fixed point and control the rotation of the six-legged support frame. There is no need to move the placement location, reducing placement time, physical strength or energy consumption.

[0012] The parts not involved in the device are the same as those in the prior art or can be implemented by using the prior art. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;

[0014] Figure 2 This is a schematic diagram of the top view of the structure of the utility model;

[0015] Figure 3 This is a schematic diagram of a three-dimensional enlarged exploded structure of components such as a rotating carrier ring in the present invention;

[0016] Figure 4 for Figure 3 Enlarged schematic diagram of part A in the middle.

[0017] In the figure: 1. Support plate; 14. Scraper rod; 15. Shielding cover; 151. V-shaped clearance notch; 152. Strip notch; 2. Curing agent storage box; 21. Cover plate; 22. Injection tube; 3. Rotating carrier ring; 31. Six-legged support frame; 311. Screw; 312. Guide slide; 32. Lifting base plate; 33. Limiting ring; 34. Synchronous lifting plate. DETAILED DESCRIPTION

[0018] See also Figure 1-Figure 4 The utility model provides the following technical solutions: it includes a support plate 1, a curing agent storage box 2 is fixedly connected to one side of the support plate 1, a cover plate 21 is provided on the top of the curing agent storage box 2, and an injection tube 22 is provided on the side of the curing agent storage box 2 close to the support plate 1. The inner wall of the support plate 1 is rotatably connected to a rotating carrier ring 3, and the inner wall of the rotating carrier ring 3 is fixedly connected to a six-legged support frame 31. The inner walls of several six-legged support frames 31 are all slidably connected to a lifting base plate 32. The support plate 1 is flush with the rotating carrier ring 3 and the top of the six-legged support frame 31. The top of the support plate 1 is fixedly connected to a scraper rod 14, and the scraper rod 14 is slidably connected to the top of the rotating carrier ring 3, the six-legged support frame 31 and the lifting base plate 32.

[0019] In this embodiment: the support disk 1 supports each component of the device, the rotating carrier ring 3 supports the six-legged support frame 31, and the rotating carrier ring 3 drives the six-legged support frame 31 to rotate and adjust inside the support disk 1. Several storage spaces are formed between the six-legged support frame 31 and the rotating carrier ring 3. Materials are placed in these storage spaces. By controlling the rotation of the rotating carrier ring 3, the motor inside the support disk 1 can drive the rotating carrier ring 3 to rotate through existing technical methods such as gears, transmission belts, and transmission chains. This is not an improvement point for this practical application, and its triggering principle will not be repeated here. The rotating carrier ring 3 drives the six-legged support frame 31 to rotate, so that several storage spaces can be rotated to a certain angle, thereby allowing personnel to place materials. When feeding, it is only necessary to feed at a fixed point and control the rotation of the six-legged support frame 31. There is no need to transfer the feeding location, which reduces the feeding time, physical strength or energy consumption. The storage space on the six-legged support frame 31 rotates alternately to the position below the injection tube 22, and the curing agent storage box 2 stores the curing agent. The curing agent storage box 2 adds curing agent or cleans the inside of the curing agent storage box 2 by opening the cover 21. The injection tube 22 is responsible for feeding the curing agent stored in the curing agent storage box 2. The curing agent storage box 2 releases different amounts of curing agent from the storage space on the six-legged support frame 31 through the injection tube 22. By rotating the six-legged support frame 31, the pause time of the injection tube 22 is shortened, which improves the quality of the product. High work efficiency, the lifting base plate 32 blocks and limits the bottom of the storage space on the six-legged support frame 31, and the lifting base plate 32 carries the materials and curing agent. The lifting base plate 32 can rise and fall, so that the lifting base plate 32 can adjust the depth and size of the storage space on the six-legged support frame 31, which is convenient for dealing with different types of experiments. The outer layer of the lifting base plate 32 and the six-legged support frame 31 is provided with an anti-sticking layer to prevent the material and curing agent from adhering, which is convenient for removing and cleaning. When the experimental block is completed, it is taken out from the six-legged support frame 31. At this time, several lifting base plates 32 are controlled to lift upward, and the lifting base plate 32 lifts the experimental block, which is convenient for taking out the experimental block without the need for tools. The lifting base plate 32 is clamped, and the inner wall of the notch on the hexapod support frame 31 is scraped and cleaned during the rising process of the lifting base plate 32, thereby reducing the scope of cleaning required. At the same time, after the lifting base plate 32 is flush with the top of the hexapod support frame 31, the lifting base plate 32, the hexapod support frame 31, the rotating carrier ring 3 and the top of the support plate 1 are all flush, which is convenient for the staff to clean them. By controlling the rotation of the rotating carrier ring 3, the rotating carrier ring 3, the hexapod support frame 31 and the lifting base plate 32 rotate synchronously, and the scraper rod 14 scrapes and cleans the rotating carrier ring 3, the hexapod support frame 31 and the lifting base plate 32, so that the dirt remaining in each storage space can be collected at the position of the scraper rod 14, and the cleaning process is simple and convenient, and the efficiency is improved.

[0020] A shielding cover 15 is hinged on one side of the support plate 1, and a V-shaped gap 151 and a strip gap 152 are provided on the shielding cover 15. The V-shaped gap 151 corresponds to the position and size of the gap of the six-legged support frame 31. The injection tube 22 does not contact the shielding cover 15, and the scraper 14 is connected to the strip gap 152. When the material is placed in the storage space on the six-legged support frame 31, the shielding cover 15 is turned over, and the shielding cover 15 is docked and locked with the support plate 1. 5. Several storage spaces on the six-legged support frame 31 are shielded to prevent material leakage. The V-shaped notch 151 makes way for the injection tube 22, so that the injection tube 22 will not block the flipping of the shielding cover 15, and the injection tube 22 can normally and stably inject the curing agent into the storage space of the six-legged support frame 31. The strip notch 152 makes way for the scraper rod 14, so that the shielding cover 15 can remain flush with the top of the support plate 1 to ensure tightness.

[0021] The side wall of the rotating carrier ring 3 is fixedly connected to a limit ring 33, and the limit ring 33 is rotatably connected to the inner wall of the support plate 1; the support plate 1 supports and limits the rotating carrier ring 3 through the limit ring 33, so that the position of the rotating carrier ring 3 in the support plate 1 can be kept stable, preventing the rotating carrier ring 3 from moving away.

[0022] A synchronous lifting plate 34 is provided at the bottom of the hexapod support frame 31, and the synchronous lifting plate 34 is fixedly connected to the bottom ends of several lifting base plates 32. The bottom end of the hexapod support frame 31 is rotatably connected to a screw 311, and the screw 311 is threadedly connected to the inner wall of the synchronous lifting plate 34. A motor for rotating and driving the screw 311 is installed in the hexapod support frame 31; the synchronous lifting plate 34 connects several lifting base plates 32 together, and the synchronous lifting plate 34 supports the bottom ends of several lifting base plates 32. The hexapod support frame 31 supports the screw 311. The motor inside the hexapod support frame 31 drives the screw 311 to rotate. When the screw 311 rotates, it drives the synchronous lifting plate 34 in the up and down directions, and the synchronous lifting plate 34 drives several lifting base plates 32 to achieve lifting.

[0023] Two guide slides 312 are fixedly connected to the bottom end of the hexapod support frame 31, and the two guide slides 312 pass through the bottom end of the synchronous lifting plate 34; the hexapod support frame 31 supports the two guide slides 312, and the guide slides 312 do not contact the lifting base plate 32. When the synchronous lifting plate 34 slides up and down, the two guide slides 312 guide and limit the synchronous lifting plate 34 to prevent the synchronous lifting plate 34 from rotating on its own, thereby improving the stability of the screw 311 driving the synchronous lifting plate 34.

[0024] The working principle and use process of the present invention are as follows: when the device is used, the shielding cover 15 is opened, and the materials are placed into several storage spaces on the six-legged support frame 31 at a time, and then the shielding cover 15 is closed, and the curing agent storage box 2 is controlled to release different amounts of curing agent into the storage space on the six-legged support frame 31 through the injection tube 22, and then the rotating carrier ring 3 is controlled to rotate, and the rotating carrier ring 3 drives the six-legged support frame 31 to rotate, and the storage space on the six-legged support frame 31 rotates under the injection tube 22 in turn, so that the pause time of the injection tube 22 is shortened, thereby improving work efficiency. When the experimental block is completed, the six-legged support frame is controlled to be opened. The motor in the frame 31 drives the screw 311 to rotate, and the screw 311 drives the synchronous lifting plate 34 to rise, and the synchronous lifting plate 34 drives several lifting base plates 32 to rise. The lifting base plate 32 lifts the experimental block, which is convenient for taking out the experimental block and can be clamped without reaching in with tools. In addition, during the rising process of the lifting base plate 32, the inner wall of the notch on the hexapod support frame 31 is scraped and cleaned, reducing the scope of cleaning required. At the same time, after the lifting base plate 32 is flush with the top of the hexapod support frame 31, the lifting base plate 32, the hexapod support frame 31, the rotating carrier ring 3 and the top of the support plate 1 are all flush, which is convenient for the staff to clean them.

Claims

1. A curing agent load-bearing proportioning device, characterized in that: The invention comprises a support plate (1), one side of the support plate (1) is fixedly connected to a curing agent storage box (2), the top of the curing agent storage box (2) is provided with a cover plate (21), the side of the curing agent storage box (2) close to the support plate (1) is provided with an injection tube (22), the inner wall of the support plate (1) is rotatably connected to a rotating carrier ring (3), the inner wall of the rotating carrier ring (3) is fixedly connected to a six-legged support frame (31), the inner walls of several six-legged support frames (31) are slidably connected to a lifting base plate (32), the support plate (1) is flush with the rotating carrier ring (3) and the top of the six-legged support frame (31), the top of the support plate (1) is fixedly connected to a scraper rod (14), and the scraper rod (14) is slidably connected to the top of the rotating carrier ring (3), the six-legged support frame (31) and the lifting base plate (32).

2. A curing agent load-bearing proportioning device according to claim 1, characterized in that: A shielding cover (15) is hingedly connected to one side of the support plate (1), and a V-shaped clearance notch (151) and a strip-shaped notch (152) are provided on the shielding cover (15). The V-shaped clearance notch (151) corresponds to the position and size of the notch of the six-legged support frame (31). The injection tube (22) does not contact the shielding cover (15), and the scraper rod (14) is snap-connected to the inner wall of the strip-shaped notch (152).

3. A curing agent load-bearing proportioning device according to claim 1, characterized in that: The side wall of the rotating carrier ring (3) is fixedly connected to a limiting ring (33), and the limiting ring (33) is rotatably connected to the inner wall of the supporting plate (1).

4. A curing agent load-bearing proportioning device according to claim 1, characterized in that: A synchronous lifting plate (34) is provided at the bottom of the hexapod support frame (31), and the synchronous lifting plate (34) is fixedly connected to the bottom ends of the plurality of lifting base plates (32). A screw rod (311) is rotatably connected to the bottom end of the hexapod support frame (31), and the screw rod (311) is threadedly connected to the inner wall of the synchronous lifting plate (34). A motor for rotating and driving the screw rod (311) is installed in the hexapod support frame (31).

5. A curing agent load-bearing proportioning device according to claim 4, characterized in that: The bottom end of the hexapod support frame (31) is fixedly connected to two guide slide bars (312), and the two guide slide bars (312) both pass through the bottom end of the synchronous lifting plate (34).