Raw material quantitative adding structure for producing aluminum-titanium-boron wires

By introducing a first quantitative feeding layer and a second quantitative feeding layer in the aluminum-titanium-boron wire production process, combined with a weighing hopper and sensors, the problem of inaccurate powder feeding amount is solved, achieving precise control and convenient maintenance.

CN223687481UActive Publication Date: 2025-12-19HENAN MEIJIADE NEW COMPOSITE MATERIDL CO LTD
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Patent Information

Application Number
CN202520297648.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-12-19
Estimated Expiration
2035-02-24

AI Technical Summary

Technical Problem

In the existing aluminum-titanium-boron wire production process, the raw material quantitative addition device has inaccurate feeding amount when using powder, and cannot detect it in real time, resulting in differences in the feeding amount each time, making it difficult for users to control it accurately.

Method used

The system employs a first and second quantitative feeding layer within the tank, combined with a weighing hopper and sensors, to ensure the accuracy of the feeding process by repeatedly weighing and detecting the amount of raw material.

Benefits of technology

It enables precise control of the amount of raw materials added, avoiding over- or under-addition, improving the controllability of the feeding process, and supporting convenient maintenance and cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a quantitative raw material adding structure for producing aluminum-titanium-boron wires, which relates to the technical field of aluminum-titanium-boron wire production and comprises a tank body, a first quantitative feeding layer is connected above the tank body through a pipeline, and a weighing hopper is mounted in the first quantitative feeding layer. And a second quantitative feeding layer is installed above the first quantitative feeding layer, a plurality of raw material weighing tanks which are annularly distributed at intervals are installed in the second quantitative feeding layer, weighing tables are installed in the raw material weighing tanks, and second weighing sensors are installed at the lower bottoms of the weighing tables. The problems that when an existing quantitative raw material adding device is used, due to the fact that most raw materials are powder in the adding process, part of the powder is left outside in the overturning process of a notch, the feeding amount of each feeding process is different, the raw material amount cannot be detected in the feeding process, and a user cannot accurately control the feeding amount of the raw materials are solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to aluminum titanium boron wire production technical field, concretely is a kind of raw material ration adding structure for producing aluminum titanium boron wire. BACKGROUND

[0002] Aluminum titanium boron wire refers to the metal material prepared according to certain proportion by adding titanium, boron and other raw materials to aluminum as main raw material, and aluminum titanium boron wire is suitable for adding into melt during aluminum and aluminum alloy direct water-cooling casting, semi-continuous casting and fixed mold casting to make castings produce good grain refinement. In the production process of aluminum titanium boron wire, various raw materials are proportioned according to certain proportion, and the feeding operation needs to be assisted by quantitative adding device.

[0003] For example, Chinese patent announcement No. CN220663953U, named "a raw material ration adding structure for producing aluminum titanium boron wire", including base, the inside of base is fixedly connected with power equipment. By opening cover plate, material is put into the inside of feeding hopper, at the same time, material will fall into the notch inside the surface of quantitative roller, the material that notch can accommodate is fixed, start motor, motor drives quantitative roller, pulley and belt to rotate, two sides of quantitative roller rotate at the same time, when the notch of material on the surface of quantitative roller is perpendicular to downward, material will pass through circular tube and enter the inside of batching box.

[0004] The above-mentioned raw material quantitative adding device has the problems that the raw material is mostly powder during the adding process, part of the powder will be left outside during the turning process, which causes the difference in the amount of material added during each feeding process, and the amount of raw material cannot be detected during the feeding process, so the user cannot accurately control the amount of raw material added. Therefore, it does not meet the existing needs, and for this purpose, we propose a raw material ration adding structure for producing aluminum titanium boron wire. UTILITY MODEL CONTENTS

[0005] The utility model aims to provide a raw material ration adding structure for producing aluminum titanium boron wire to solve the problem that the existing raw material quantitative adding device has the problem that the raw material is mostly powder during the adding process, part of the powder will be left outside during the turning process, which causes the difference in the amount of material added during each feeding process, and the amount of raw material cannot be detected during the feeding process, so the user cannot accurately control the amount of raw material added.

[0006] In order to achieve the above object, the utility model provides the following technical scheme: A raw material quantitative adding structure for producing aluminum titanium boron wire, which comprises: a tank body, a first quantitative adding layer is connected to the upper portion of the tank body through a pipeline, a weighing hopper is installed in the first quantitative adding layer, a second quantitative adding layer is installed on the upper portion of the first quantitative adding layer, a plurality of annularly spaced raw material weighing tanks are installed in the second quantitative adding layer, a weighing table is installed in the raw material weighing tank, and a second weighing sensor is installed on the lower bottom of the weighing table.

[0007] Preferably, the upper end of the raw material weighing tank is provided with a feeding pipe, the middle position of the lower bottom of the weighing table is provided with a second flap valve, and the lower end of the second flap valve is provided with a conveying pipe through a flange.

[0008] Preferably, the middle position of the raw material weighing tank is provided with a hollow pipe, and the lower end of the hollow pipe is extended to the upper portion of the weighing hopper, and the lower end of the weighing table is communicated with the hollow pipe through the conveying pipe.

[0009] Preferably, the lower surface of the weighing hopper is provided with two groups of supporting rods, and the lower portion of the supporting rod is provided with a first weighing sensor.

[0010] Preferably, the middle position of the lower bottom of the weighing hopper is provided with a discharging port, the lower end of the discharging port is provided with a first flap valve, a feeding pipe is installed between the first quantitative adding layer and the tank body, and the lower end of the first flap valve is connected with the upper end of the feeding pipe.

[0011] Preferably, the upper surface of the first quantitative adding layer is provided with a plurality of annularly spaced positioning grooves, and the lower surface of the second quantitative adding layer is provided with a plurality of positioning blocks matched with the positioning grooves.

[0012] Preferably, the lower bottom of the first quantitative adding layer is provided with a plurality of brackets, and the bottom of the bracket is fixed on the tank body through bolts.

[0013] Compared with the prior art, the utility model has the beneficial effects that:

[0014] 1. In the utility model, before the raw materials enter the tank body, the required amount of raw materials is detected through the first quantitative feeding layer and the second quantitative feeding layer, the raw materials first enter different raw material weighing tanks of the second quantitative feeding layer, a plurality of raw material weighing tanks are used for classified placing of aluminum, titanium, boron and other raw materials, the raw materials fall onto the weighing table and are detected through the second weighing sensor, the amount of raw materials is obtained through detection, after detection, the raw materials are sent into the weighing hopper through the discharging mode, and the raw materials are detected again through the weighing hopper, the detection process is also a weighing type, and the amount of the raw materials is obtained again, the device has the advantages that the raw materials can be detected multiple times before feeding, the user can conveniently obtain the amount of addition, and the amount of addition is prevented from being excessive or insufficient.

[0015] 2. The first quantitative feeding layer and the second quantitative feeding layer are detachable, are combined with the positioning groove in a plug-in and clamped mode through the positioning block, and can be conveniently detached by the user for subsequent internal maintenance, replacement, cleaning and the like. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a whole structure schematic view of the utility model;

[0017] Figure 2 It is a first quantitative feeding structure schematic view of the utility model;

[0018] Figure 3 It is a weighing hopper structure schematic view of the utility model;

[0019] Figure 4 It is a second quantitative feeding layer structure schematic view of the utility model;

[0020] Figure 5 It is a raw material weighing tank internal structure schematic view of the utility model;

[0021] In the drawing: 1, tank body; 101, feeding pipe; 102, bracket; 2, first quantitative feeding layer; 201, positioning groove; 3, weighing hopper; 301, discharging port; 302, supporting rod; 303, first weighing sensor; 304, first flap valve; 4, second quantitative feeding layer; 401, positioning block; 5, raw material weighing tank; 501, feeding pipe; 502, weighing table; 503, second weighing sensor; 504, second flap valve; 505, conveying pipe; 6, hollow pipe. DETAILED DESCRIPTION

[0022] The technical scheme in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments.

[0023] Please refer toFigures 1-5 The utility model provides a kind of raw material quantitative adding structure of production aluminium titanium boron wire in an embodiment of the utility model: a tank body 1 is connected with the first quantitative feeding layer 2 in the upper portion of tank body 1 by pipeline, the lower bottom of the first quantitative feeding layer 2 is equipped with multiple brackets 102, and the bottom of bracket 102 is fixed on tank body 1 by bolt;The effect of supporting the first quantitative feeding layer 2 can be achieved by the arrangement of bracket 102, and the supportability is improved.

[0024] The inside of the first quantitative feeding layer 2 is equipped with weighing hopper 3, the upper portion of the first quantitative feeding layer 2 is equipped with the second quantitative feeding layer 4, the inside of the second quantitative feeding layer 4 is equipped with multiple raw material weighing tanks 5 distributed in annular interval, the inside of raw material weighing tank 5 is equipped with weighing platform 502, the lower bottom of weighing platform 502 is equipped with second weighing sensor 503, the upper end of raw material weighing tank 5 is equipped with feeding pipe 501, the middle position of the lower bottom of weighing platform 502 is equipped with second flap valve 504, the lower end of second flap valve 504 is equipped with conveying pipe 505 by flange, the middle position of raw material weighing tank 5 is equipped with hollow pipe 6, and the lower end opening of hollow pipe 6 extends to the upper portion of weighing hopper 3, the lower end of weighing platform 502 is communicated with hollow pipe 6 by conveying pipe 505, the lower surface of the opening of weighing hopper 3 is equipped with two groups of struts 302, the lower portion of strut 302 is equipped with first weighing sensor 303, the middle position of the lower bottom of weighing hopper 3 is equipped with discharging opening 301, the lower end of discharging opening 301 is equipped with first flap valve 304, the first quantitative feeding layer 2 and tank body 1 are equipped with feeding pipe 101, and the lower end of first flap valve 304 is connected with the upper end of feeding pipe 101;

[0025] Before raw material enters tank body 1, the required raw material quantity is detected by the first quantitative feeding layer 2 and the second quantitative feeding layer 4, raw material first enters different raw material weighing tank 5 of the second quantitative feeding layer 4, and multiple raw material weighing tanks 5 are used to classify and place aluminum, titanium, boron and other raw materials, raw material falls on weighing platform 502, and is detected by second weighing sensor 503, and the raw material quantity is obtained by detection, and after detection, raw material is sent into weighing hopper 3 by discharging, and is detected again by weighing hopper 3, the detection process is also weighing type, and is used to obtain the addition amount of raw material again, and the device has the advantages that raw material can be detected multiple times before feeding, user can obtain addition amount information, and addition amount is avoided to be excessive or insufficient;

[0026] Specifically, the raw material falls onto the weighing platform 502 through the feeding pipe 501. At this time, the second flap valve 504 is closed, and the second weighing sensor 503 performs weighing detection. After detection, the second flap valve 504 is opened, allowing the raw material above to be fed into the hollow tube 6 through the conveying pipe 505. The raw material in the hollow tube 6 then falls into the weighing hopper 3, where it is detected by the first weighing sensor 303. After detection, the first flap valve 304 is opened, allowing the raw material in the weighing hopper 3 to be fed into the tank 1 through the feed pipe 101. The aforementioned weighing sensor is model DSZ-013.

[0027] Please see Figure 2 , Figure 4 The upper surface of the first quantitative feeding layer 2 is provided with a plurality of annularly spaced positioning grooves 201, and the lower surface of the second quantitative feeding layer 4 is provided with a plurality of positioning blocks 401 that match the positioning grooves 201.

[0028] The first quantitative feeding layer 2 and the second quantitative feeding layer 4 are detachable. They are combined with the positioning groove 201 by the positioning block 401 in an insert-fitting manner, which makes it convenient for users to remove the two quantitative feeding layers for internal inspection, replacement, cleaning and other operations.

[0029] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A raw material dosing structure for producing aluminum titanium boron wire, comprising a tank body (1), characterized in that: The upper part of the tank body (1) is connected with a first quantitative feeding layer (2) through a pipeline, the inside of the first quantitative feeding layer (2) is provided with a weighing hopper (3), the upper part of the first quantitative feeding layer (2) is provided with a second quantitative feeding layer (4), the inside of the second quantitative feeding layer (4) is provided with a plurality of annularly spaced raw material weighing tanks (5), the inside of the raw material weighing tank (5) is provided with a weighing table (502), and the lower bottom of the weighing table (502) is provided with a second weighing sensor (503).

2. The raw material dosing structure for producing aluminum titanium boron wire according to claim 1, characterized in that: The upper end of the raw material weighing tank (5) is provided with a feeding pipe (501), the middle position of the lower bottom of the weighing table (502) is provided with a second flap valve (504), and the lower end of the second flap valve (504) is provided with a conveying pipe (505) through a flange.

3. The raw material dosing structure for producing aluminum titanium boron wire according to claim 2, characterized in that: The middle position of the raw material weighing tank (5) is provided with a hollow pipe (6), and the lower end opening of the hollow pipe (6) extends to the upper part of the weighing hopper (3), and the lower end of the weighing table (502) is communicated with the hollow pipe (6) through the conveying pipe (505).

4. The raw material dosing structure for producing aluminum titanium boron wire according to claim 1, characterized in that: The lower surface of the weighing hopper (3) is provided with two groups of supporting rods (302), and the lower part of the supporting rod (302) is provided with a first weighing sensor (303).

5. The raw material dosing structure for producing aluminum titanium boron wire according to claim 1, characterized in that: The middle position of the lower bottom of the weighing hopper (3) is provided with a material falling port (301), the lower end of the material falling port (301) is provided with a first flap valve (304), the first quantitative feeding layer (2) and the tank body (1) are provided with a feeding pipe (101), and the lower end of the first flap valve (304) is connected with the upper end of the feeding pipe (101).

6. The raw material dosing structure for producing aluminum titanium boron wire according to claim 1, characterized in that: The upper surface of the first quantitative feeding layer (2) is provided with a plurality of annularly spaced positioning grooves (201), and the lower surface of the second quantitative feeding layer (4) is provided with a plurality of positioning blocks (401) matched with the positioning grooves (201).

7. The raw material dosing structure for producing aluminum titanium boron wire according to claim 1, characterized in that: The lower bottom of the first quantitative feeding layer (2) is provided with a plurality of brackets (102), and the bottom of the bracket (102) is fixed on the tank body (1) through bolts.

Citation Information

Patent Citations

  • Raw material quantitative adding structure for producing aluminum-titanium-boron wires

    CN220663953U