A paint proportioning raw material storage structure

CN224767532UActive Publication Date: 2026-09-18TIANJIN ZHANYUE ELECTRONICS TECH CO LTD
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Patent Information

Application Number
CN202522420927.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-14
Publication Date
2026-09-18
Estimated Expiration
2035-11-14

AI Technical Summary

Technical Problem

[0002]在涂料生产及实验室配比过程中,通常需要使用多种不同的液体原料,传统的存放和取用方式存在以下问题,原料通常存放在独立、分散的容器中,取料时需要人工搬运至称重设备上进行称量,过程繁琐,劳动强度大,生产效率低,人工转移和称量容易造成误差,影响最终涂料产品的配比精确度和质量稳定性,多个容器杂乱摆放,占用大量地面空间,且管理不便,多种原料外观相似时,若标识不清,在取用过程中极易发生混淆,导致生产事故,对于粘稠的液体原料,从传统容器中倾倒时容易挂壁,造成原料浪费和取料量不准

Benefits of technology

[0008] This utility model provides a material storage structure for coating formulation, which has the following advantages: By setting a mass sensor on the base, the weight change of each material tank can be monitored in real time, and weighing can be completed without moving the container. This realizes the measurement of the weight difference before and after material removal, as well as the mass ratio of the raw materials, which greatly improves the accuracy of the ratio and the efficiency of operation. The supporting storage structure integrates multiple cylindrical storage tanks on one platform, which is compact and saves ground space, making the working environment cleaner and more standardized. Each storage tank is equipped with a guide pipe and a solenoid valve at the bottom, which can realize quantitative and controllable material discharge. Operators only need to control the solenoid valve to easily remove materials, reducing the trouble and error of manual dumping. The bottom of the cylindrical storage tank is designed as a "cone", which is conducive to the viscous liquid raw materials flowing to the outlet under the action of gravity, reducing the residue of raw materials on the tank wall and reducing waste.

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Abstract

The utility model discloses a kind of coating proportioning raw material storage structures, including base, four positioning grooves are evenly provided with at base top end equidistance, four The inside of positioning groove is embedded with mass sensor, and the base top end is equipped with supporting storage structure;The utility model relates to the technical field of coating production storage device, the beneficial effect of the case is that: by setting mass sensor at base, the weight change of each raw material tank can be monitored in real time, weighing can be completed without moving container, realizes the weight difference measurement before and after taking material, and realizes the mass proportioning of raw material, greatly improves proportioning accuracy and operation efficiency, by supporting storage structure, multiple cylindrical storage tanks are integrated on a platform, compact structure, save ground space, so that working environment is more neat and standard.
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Description

Technical Field

[0001] This utility model relates to the technical field of paint production and storage devices, specifically a structure for storing paint mixing raw materials. Background Technology

[0002] In the process of paint production and laboratory mixing, a variety of different liquid raw materials are usually required. Traditional storage and handling methods have the following problems: raw materials are usually stored in independent, dispersed containers, requiring manual handling to weigh them, which is cumbersome, labor-intensive, and inefficient. Manual transfer and weighing are prone to errors, affecting the accuracy and quality stability of the final paint product. Multiple containers are haphazardly placed, occupying a lot of floor space and making management inconvenient. When multiple raw materials look similar, unclear labeling can easily lead to confusion during handling, causing production accidents. For viscous liquid raw materials, they tend to stick to the sides when poured from traditional containers, resulting in material waste and inaccurate dispensing. Therefore, while existing technologies may already offer solutions to these problems, this invention aims to provide an alternative or replacement technical solution. Summary of the Invention

[0003] To achieve the above objectives, this utility model is implemented through the following technical solution: a coating mixing raw material storage structure, including a base, four positioning grooves are evenly spaced at the top of the base, a mass sensor is embedded in each of the four positioning grooves, and a support storage structure is provided at the top of the base; The supporting storage structure includes: six supporting columns, a supporting plate, four placement holes, four label placement frames, and four raw material storage components; The six support columns are respectively installed at the four corners and the center of the side of the base. The support plate is installed on the top of the six support columns. The four placement holes are opened through the top of the support plate. The four label placement frames are installed at equal intervals on the front end face of the support plate. The four raw material storage components are movably embedded in the support plate through the four placement holes. Preferably, each of the four raw material storage components includes: a cylindrical storage tank, a limiting ring, a feeding hole, a screw cap, a guide pipe, and a solenoid valve; The cylindrical storage tanks are movably embedded inside the support plate through the four placement holes. The limiting ring is welded to the lower outer side of the cylindrical storage tank. The feeding hole is opened through the center of the top of the cylindrical storage tank. The spiral cap is installed at the center of the top of the cylindrical storage tank and fitted onto the top of the feeding hole. The guide pipe is installed through the bottom of the cylindrical storage tank. The solenoid valve is installed on the outside of the guide pipe. Preferably, reinforcing ribs are provided between the six supporting columns.

[0004] Preferably, the bottom of the cylindrical storage tank is conical and is inverted and embedded inside the support plate.

[0005] Preferably, the diameter of each of the four placement holes matches the diameter of the cylindrical storage tank.

[0006] Preferably, the diameter of the limiting retaining ring is larger than the diameter of the placement hole.

[0007] Preferably, the discharge port of the feed tube is connected to a flexible hose. Beneficial effects

[0008] This utility model provides a material storage structure for coating formulation, which has the following advantages: By setting a mass sensor on the base, the weight change of each material tank can be monitored in real time, and weighing can be completed without moving the container. This realizes the measurement of the weight difference before and after material removal, as well as the mass ratio of the raw materials, which greatly improves the accuracy of the ratio and the efficiency of operation. The supporting storage structure integrates multiple cylindrical storage tanks on one platform, which is compact and saves ground space, making the working environment cleaner and more standardized. Each storage tank is equipped with a guide pipe and a solenoid valve at the bottom, which can realize quantitative and controllable material discharge. Operators only need to control the solenoid valve to easily remove materials, reducing the trouble and error of manual dumping. The bottom of the cylindrical storage tank is designed as a "cone", which is conducive to the viscous liquid raw materials flowing to the outlet under the action of gravity, reducing the residue of raw materials on the tank wall and reducing waste. Attached Figure Description

[0009] Figure 1 This is a first front-view three-dimensional structural diagram of a coating formulation raw material storage structure according to the present invention.

[0010] Figure 2 This is a second main perspective structural diagram of the coating formulation raw material storage structure described in this utility model.

[0011] Figure 3 This is a front view schematic diagram of the coating formulation raw material storage structure described in this utility model.

[0012] Figure 4 This is a partial cross-sectional view of the raw material storage structure for coating formulation according to the present invention.

[0013] In the diagram: 1. Base, 2. Positioning groove, 3. Mass sensor, 4. Support column, 5. Support plate, 6. Placement hole, 7. Label placement frame, 8. Cylindrical storage tank, 9. Limiting ring, 10. Feeding hole, 11. Screw cap, 12. Guide pipe, 13. Solenoid valve, 14. Reinforcing rib, 15. Hose. Detailed Implementation

[0014] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0015] Example: Please refer to Figures 1-4 A coating formulation raw material storage structure includes a base 1, four positioning slots 2 are evenly spaced at the top of the base 1, each of the four positioning slots 2 is equipped with a mass sensor 3, and a support storage structure is provided at the top of the base 1. The supporting storage structure includes: six supporting columns 4, a supporting plate 5, four placement holes 6, four label placement frames 7, and four raw material storage components; Six support columns 4 are respectively installed at the four corners and the center of the side of the base 1. The support plate 5 is installed on the top of the six support columns 4. Four placement holes 6 are opened through the top of the support plate 5. Four label placement frames 7 are installed at equal intervals on the front end face of the support plate 5. Four raw material storage components are movably embedded in the support plate 5 through the four placement holes 6. In use, first assemble and install the main body of the device, then electrically connect the quality sensor 3 to the corresponding power supply and controller. Through the positioning slot 2, when taking raw materials, tools such as material buckets can be placed in the positioning slot 2 for corresponding material taking. The quality sensor 3 is installed in the slot to weigh the taken raw materials, so as to achieve accurate raw material ratio. The support column 4 and support plate 5 in the support structure can support the four raw material storage components. Through the four placement holes 6, the four raw material storage components can be quickly positioned and placed. The front end face of the support plate 5 is also equipped with four label placement frames 7, which correspond one-to-one with the four raw material storage components. Labels or tags can be placed inside them to mark the different raw materials stored in the four raw material storage components.

[0016] In the specific implementation process, the four raw material storage components include: cylindrical storage tank 8, limit retaining ring 9, feeding hole 10, screw cap 11, guide pipe 12, and solenoid valve 13. The cylindrical storage tanks 8 are movably embedded inside the support plate 5 through four placement holes 6. The limiting ring 9 is welded to the lower outer side of the cylindrical storage tank 8. The feeding hole 10 is opened through the center of the top of the cylindrical storage tank 8. The screw cap 11 is installed at the center of the top of the cylindrical storage tank 8 and is fitted on the top of the feeding hole 10. The guide pipe 12 is installed through the bottom of the cylindrical storage tank 8. The solenoid valve 13 is installed on the outside of the guide pipe 12. In use, each of the four raw material storage groups can hold different types of paint raw materials, and all are labeled and identified using the label placement frame 7. A limit stop is welded to the outside of the cylindrical storage tank 8. The cylindrical storage tank 8 is assembled and hoisted using the support plate 5 and placement holes 6. A feeding hole 10 is located at the top of the cylindrical storage tank 8, and a screw cap 11 is fitted onto the outside of the feeding hole. Filling operations can be performed through the feeding hole 10. The screw cap 11 seals the inside of the cylindrical storage tank 8 after filling. A guide pipe 12 is installed at the bottom of the cylindrical storage tank 8, and a guide pipe 12 is installed on the outside of the guide pipe 12. Equipped with a solenoid valve 13, the material inside the cylindrical storage tank 8 can be guided out through the feed pipe 12. The cylindrical storage tank 8 is naturally and vertically suspended. The solenoid valve 13 is connected to the corresponding power supply and control machine. By opening and closing the solenoid valve 13, the material inside can be taken out. When the solenoid valve 13 is open, the material inside the cylindrical material tank flows out naturally downward through the feed pipe 12 and is picked up by the material taking tool. When the material reaches the specified mass, the weight is identified by the mass sensor 3, detected by the controller, and the solenoid valve 13 is closed to complete the quantitative material taking operation.

[0017] In the specific implementation process, the six support columns are equipped with reinforcing ribs 14. The reinforcing ribs 14 can make the support structure more resilient and prevent the raw material storage components from being too heavy, resulting in insufficient support and collapse.

[0018] In the specific implementation process, the bottom of the cylindrical storage tank 8 is conical and inverted and embedded inside the support plate 5, which is conducive to the viscous liquid raw materials flowing to the outlet under the action of gravity, reducing the residue of raw materials on the tank wall and reducing waste.

[0019] In the specific implementation process, the diameters of the four placement holes 6 are all matched with the diameter of the cylindrical storage tank 8, so as to realize the movable placement of the cylindrical storage tank 8 and facilitate the overall disassembly and installation of the device.

[0020] In the specific implementation process, the diameter of the limiting ring 9 is larger than the diameter of the placement hole 6. The limiting ring 9 is welded and installed on the outside of the cylindrical storage tank 8, and is supported and supported by the limiting ring 9 so that it is stably placed in the placement hole 6 of the support plate 5.

[0021] In the specific implementation process, the discharge port of the guide pipe 12 is connected to a flexible hose 15. Through the flexible hose 15, the material can be further guided during material collection to avoid material leakage and waste.

[0022] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A structure for storing raw materials for coating formulation, comprising a base (1), characterized in that, The base (1) has four positioning slots (2) evenly spaced at the top, and each of the four positioning slots (2) is fitted with a mass sensor (3). The base (1) has a support and storage structure at the top. The supporting storage structure includes: six supporting columns (4), a supporting plate (5), four placement holes (6), four label placement frames (7), and four raw material storage components; The six support columns (4) are respectively installed at the four corners and the center of the side of the base (1). The support plate (5) is installed on the top of the six support columns (4). The four placement holes (6) are opened through the top of the support plate (5). The four label placement frames (7) are all installed at equal intervals on the front end face of the support plate (5). The four raw material storage components are all movably embedded in the support plate (5) through the four placement holes (6).

2. The coating formulation raw material storage structure according to claim 1, characterized in that, Each of the four raw material storage components includes: a cylindrical storage tank (8), a limiting retaining ring (9), a feeding hole (10), a screw cap (11), a guide pipe (12), and a solenoid valve (13); The cylindrical storage tanks (8) are movably embedded in the support plate (5) through the four placement holes (6). The limiting ring (9) is welded to the lower outer side of the cylindrical storage tank (8). The feeding hole (10) is opened through the center of the top of the cylindrical storage tank (8). The spiral cap (11) is installed at the center of the top of the cylindrical storage tank (8) and is fitted on the top of the feeding hole (10). The guide pipe (12) is installed through the bottom of the cylindrical storage tank (8). The solenoid valve (13) is installed on the outside of the guide pipe (12).

3. The coating formulation raw material storage structure according to claim 1, characterized in that, The six supporting columns (4) are provided with reinforcing ribs (14).

4. The coating formulation raw material storage structure according to claim 2, characterized in that, The bottom of the cylindrical storage tank (8) is cone-shaped and is inverted and embedded inside the support plate (5).

5. The coating formulation raw material storage structure according to claim 2, characterized in that, The diameters of the four placement holes (6) are all matched with the diameter of the cylindrical storage tank (8).

6. The coating formulation raw material storage structure according to claim 2, characterized in that, The diameter of the limiting ring (9) is larger than the diameter of the placement hole (6).

7. The coating formulation raw material storage structure according to claim 2, characterized in that, The discharge port of the feed pipe (12) is connected to a flexible hose (15).