Magnesium alloy double-heat-storage upper material conveying quantitative furnace
By designing an adjustable-angle and adjustable-height upper feeding pipe structure, the installation difficulties caused by fixing the upper feeding pipe of the existing magnesium alloy double regenerative quantitative furnace were solved, achieving flexible adaptability and cost savings for the equipment.
Patent Information
- Application Number
- CN202520068290.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-01-13
AI Technical Summary
The existing magnesium alloy dual regenerative quantitative furnace has a fixed upper feeding pipe structure, which cannot adapt to changes in the production environment, resulting in time-consuming and labor-intensive installation and increased costs.
A structure including an upper feeding pipe, a sleeve, a connecting seat, a connecting pipe, a material cup, a bracket, a screw, an adjusting pipe, and a fixing component was designed. The angle and height of the upper feeding pipe can be adjusted by rotating the tripod and adjusting the screw to adapt to different production environments.
This allows for flexible installation of the upper conveying pipe, saving production costs and improving production efficiency and equipment adaptability.
Smart Images

Figure CN223726857U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of magnesium alloy processing especially relates to a magnesium alloy double-heat-storage upper feeding ration furnace. BACKGROUND
[0002] With the wide application of magnesium alloy materials in the fields of aerospace, automobile manufacturing, electronic communication and medical devices, the development of magnesium alloy industry presents a vigorous trend, in these fields, higher requirements are put forward for the processing precision, production efficiency and product quality of magnesium alloy materials, the magnesium alloy double-heat-storage ration furnace as the key equipment of magnesium alloy smelting and quantitative supply, its performance directly influences the quality and production efficiency of magnesium alloy products, the existing upper feeding pipe of the ration furnace often adopts fixed structure, its height and angle are usually fixed during installation, when the production environment or equipment layout changes, the upper feeding pipe needs to be redesigned and installed, which not only consumes time and effort, but also increases the cost.
[0003] Therefore, the magnesium alloy double-heat-storage upper feeding ration furnace which can adjust the installation height and angle of the upper feeding pipe to adapt to different production environments and save production costs is developed. UTILITY MODEL CONTENTS
[0004] In order to overcome the shortcomings that the existing upper feeding pipe of the ration furnace often adopts fixed structure, its height and angle are usually fixed during installation, when the production environment or equipment layout changes, the upper feeding pipe needs to be redesigned and installed, which not only consumes time and effort, but also increases the cost, the utility model provides a magnesium alloy double-heat-storage upper feeding ration furnace which can adjust the installation height and angle of the upper feeding pipe to adapt to different production environments and save production costs.
[0005] The technical scheme is as follows: a magnesium alloy double-heat-storage upper feeding ration furnace, which comprises an upper feeding pipe, a sleeve joint, a connecting seat, a connecting pipe and a cup, the sleeve joint is sleeved on the right side of the upper feeding pipe, the connecting seat is connected to the lower side of the sleeve joint, the connecting pipe is connected to the left side of the upper feeding pipe, and the cup is connected to the connecting pipe.
[0006] Further, the upper feeding pipe is made of heat preservation material.
[0007] Further, the cup is of a conical structure.
[0008] Further, the magnesium alloy double-heat-storage upper feeding ration furnace further comprises a gas feeding pipe, and the gas feeding pipe is connected to the upper side of the cup.
[0009] Further, the magnesium alloy double-heat-storage upper feeding ration furnace further comprises a bracket, a screw rod, an adjusting pipe, a tripod and a fixing piece, the bracket is connected to the lower side of the left part of the upper feeding pipe, the screw rod is rotatably connected to the bracket, the adjusting pipe is threadedly connected to the screw rod, the tripod is connected to the lower side of the adjusting pipe, and the fixing piece is rotatably connected to the right rear side of the tripod.
[0010] Further, the fixing member is provided with a plurality of connecting holes, facilitating installation.
[0011] The utility model discloses beneficial effects: the utility model discloses through making tripod rotate on fixing member, make the upper delivery pipe adjust to the angle that needs, after through the rotation screw rod, make the upper delivery pipe adjust to the height that needs, have reached the effect that can conveniently adjust the installation height and angle of upper delivery pipe to the production environment of convenient adaptation to different, save production cost. BRIEF DESCRIPTION OF DRAWINGS
[0012] Fig. 1 It is the first kind of three-dimensional structure schematic diagram of the utility model.
[0013] Fig. 2 It is the second kind of three-dimensional structure schematic diagram of the utility model.
[0014] Reference numeral: 1_upper delivery pipe, 2_jacket, 3_connection seat, 4_connection pipe, 5_cup, 6_gas pipe, 7_bracket, 8_screw rod, 9_adjusting pipe, 10_tripod, 11_fixing member. DETAILED DESCRIPTION
[0015] The utility model will be further explained in connection with the drawings and examples.
[0016] A magnesium alloy double-heat-storage upper delivery quantitative furnace, as shown in the figure, comprises an upper delivery pipe 1, a jacket 2, a connection seat 3, a connection pipe 4, a cup 5, a gas pipe 6, a bracket 7, a screw rod 8, an adjusting pipe 9, a tripod 10 and a fixing member 11. Figs. 1-2 The upper delivery pipe 1 is of heat preservation material, which can reduce heat loss; the lower side of the jacket is connected with the connection seat 3; the left side of the upper delivery pipe 1 is connected with the connection pipe 4; the connection pipe 4 is connected with the cup 5, which is of a conical structure and facilitates discharging; the upper side of the cup 5 is connected with the gas pipe 6; the left lower side of the upper delivery pipe 1 is connected with the bracket 7; the bracket 7 is rotatably connected with the screw rod 8; the screw rod 8 is threadedly connected with the adjusting pipe 9; the lower side of the adjusting pipe 9 is connected with the tripod 10; the right rear side of the tripod is rotatably connected with the fixing member 11; the fixing member 11 is provided with two connecting holes, facilitating installation.
[0017] In use of the utility model, first, the upper feeding pipe 1 is moved to the vicinity of the magnesium alloy double-heat accumulation quantitative furnace, then the fixing piece 11 is installed on the quantitative furnace through bolts, then the tripod 10 is rotated on the fixing piece 11, the adjusting pipe 9 is rotated, the screw rod 8 and the bracket 7 are rotated, the upper feeding pipe 1 is rotated, so that the upper feeding pipe 1 is adjusted to the required angle, then the screw rod 8 is rotated, the screw rod 8 is moved upward under the action of the screw thread, the upper feeding pipe 1 is adjusted to the required height, after the adjustment of the upper feeding pipe 1 is completed, the connecting seat 3 is connected to the smelting chamber of the magnesium alloy double-heat accumulation quantitative furnace, then the magnesium alloy is added into the smelting chamber of the quantitative furnace and heated and melted, in the smelting process of the magnesium alloy, the double-heat accumulation system continuously absorbs and releases heat energy to maintain the stability and uniformity of the temperature in the furnace, after the smelting of the magnesium alloy, the magnesium alloy flows into the upper feeding pipe 1 through the connecting seat 3, then flows into the material cup 5 through the connecting pipe 4, after the metering of the material cup 5, the magnesium alloy is quantitatively flowed to the next station for subsequent processing, the angle of the material cup 5 can be changed through the connecting pipe 4, so that the material cup 5 is conveniently butt-jointed with the next station, when the magnesium alloy melt is conveyed by the upper feeding pipe 1, the protective gas is introduced into the upper feeding pipe 1 through the gas feeding pipe 6, so that the magnesium alloy melt is prevented from being oxidized due to the contact with air, thereby the purity of the magnesium alloy is prevented from being reduced, so that the effect that the installation height and the angle of the upper feeding pipe 1 can be conveniently adjusted to adapt to different production environments and save production cost is achieved.
[0018] The above examples are only for illustrating the technical concept and characteristics of the utility model, the purpose is to enable the person skilled in the art to understand the content of the utility model and implement it, and cannot limit the protection scope of the utility model. Any equivalent change or modification according to the spirit and essence of the utility model should be covered in the protection scope of the utility model.
Claims
1. A magnesium alloy double regenerative updraft material feeding dosing furnace, characterized by, The utility model relates to a material feeding device, which comprises an upper feeding pipe (1), a sleeve joint (2), a connecting seat (3), a connecting pipe (4) and a material cup (5), the right side of the upper feeding pipe (1) is sleeved with the sleeve joint (2), the lower side of the sleeve joint (2) is connected with the connecting seat (3), the left side of the upper feeding pipe (1) is connected with the connecting pipe (4), and the connecting pipe (4) is connected with the material cup (5).
2. The double regenerative top-fed batch furnace for magnesium alloy according to claim 1, characterized in that, The upper feeding pipe (1) is made of heat preservation material.
3. The double regenerative top-fed batch furnace for magnesium alloy according to claim 1, characterized in that, The material cup (5) is of a conical structure.
4. The double regenerative top-fed batch furnace for magnesium alloy according to claim 1, characterized in that, The utility model also comprises a gas feeding pipe (6), and the upper side of the material cup (5) is connected with the gas feeding pipe (6).
5. The double regenerative updraft material charging and dosing furnace of a magnesium alloy according to claim 1, characterized in that, The utility model also comprises a bracket (7), a screw rod (8), an adjusting pipe (9), a tripod (10) and a fixing piece (11), the lower side of the left part of the upper feeding pipe (1) is connected with the bracket (7), the bracket (7) is rotatably connected with the screw rod (8), the screw rod (8) is threadedly connected with the adjusting pipe (9), the lower side of the adjusting pipe (9) is connected with the tripod (10), and the right rear side of the tripod is rotatably connected with the fixing piece (11).
6. The double regenerative updraft material charging and dosing furnace of a magnesium alloy according to claim 5, characterized in that, A plurality of connecting holes are formed in the fixing piece (11).