Electromagnetic induction heating device for sintering mix
By conveying the mixture via a conveyor belt and absorbing ash using fan blades, combined with a cover structure for easy cleaning and heat transfer components to reduce heat loss, the problem of ash accumulation in electromagnetic induction heating devices is solved, thus improving the heating efficiency and safety of the sintering furnace.
Patent Information
- Application Number
- CN202311588233.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-27
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2043-11-27
AI Technical Summary
Existing electromagnetic induction heating devices produce ash during the combustion of the mixture in the sintering furnace, which reduces the heating effect and makes cleaning difficult.
An electromagnetic induction heating device for sintering mixtures, comprising a transmission component and a heat transfer and insulation component, was designed. The mixture is conveyed by a conveyor belt and ash is absorbed by fan blades. A sealing structure is set for easy cleaning, and the heat transfer and insulation component reduces heat loss.
It enables convenient ash removal and efficient heat utilization, improves the heating efficiency and safety of the sintering furnace, and reduces energy consumption.
Smart Images

Figure CN117606228B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of heating device, more particularly, the present application relates to a sintering mixture electromagnetic induction heating device. BACKGROUND
[0002] Sintering refers to the transformation of powdery materials into dense bodies, which is a traditional process. People have long used this process to produce ceramics, powder metallurgy, refractory materials, and ultra-high temperature materials. Generally, after the powder is formed, the dense body obtained by sintering is a polycrystalline material, and its microstructure is composed of crystals, glass bodies, and pores. The sintering process directly affects the grain size, pore size, and grain boundary shape and distribution in the microstructure, which in turn affects the performance of the material.
[0003] The principle of electromagnetic induction heating is that an alternating magnetic field is generated by the electronic circuit board components. When an iron-containing container is placed on it, the surface of the container cuts the alternating magnetic lines of force, generating an alternating current in the metal part at the bottom of the container. The eddy current causes the carrier particles at the bottom of the container to move at high speed in a random manner. The carrier particles collide and rub with the atoms, generating heat energy. Thus, the effect of heating the object is achieved.
[0004] Currently, during the sintering process, when the electromagnetic induction heating device heats the mixture in the sintering furnace, the mixture combustion will produce some ash, which will accumulate in the sintering furnace combustion chamber for a long time, thereby gradually reducing the heating effect of the combustion chamber on the binder, resulting in incomplete combustion of the mixture. When the staff clean the combustion chamber, it causes great trouble to the staff and is not easy to clean because the combustion chamber is in the sintering furnace. SUMMARY
[0005] In order to overcome the above-mentioned defects of the prior art, the present application provides a sintering mixture electromagnetic induction heating device, which solves the technical problem that, at present, during the sintering process, when the electromagnetic induction heating device heats the mixture in the sintering furnace, the mixture combustion will produce some ash, which will accumulate in the sintering furnace combustion chamber for a long time, thereby gradually reducing the heating effect of the combustion chamber on the binder, resulting in incomplete combustion of the mixture. When the staff clean the combustion chamber, it causes great trouble to the staff and is not easy to clean because the combustion chamber is in the sintering furnace.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a sintering mixture electromagnetic induction heating device, comprising a first shell, the upper end of the right side of the first shell is fixedly connected with a second shell, the middle part of the first shell is provided with a heat preservation and heat transfer assembly, the lower end of the inner side of the second shell is fixedly installed with an electromagnetic coil body, the middle part of the second shell is provided with a transmission assembly, and the upper end of the second shell is fixedly connected with a third shell.
[0007] The transmission assembly comprises a mounting frame, the front and rear sides of the middle part of the first shell are fixedly connected with mounting frames, four corners of the mounting frame are rotationally connected with first rotating discs, the outer sides of four groups of first rotating discs on the same side are sleeved with the same conveying belt, the right sides of two groups of conveying belts are rotationally connected with conveying blocks, and the middle part of the conveying block is provided with a combustion groove.
[0008] As a further scheme of the present application: the left lower corner two groups of first rotating discs are fixedly connected with first bevel gears away from one end of the middle part of the first shell, the left side of the lower end of the first shell is rotationally connected with two groups of first rotating shafts, the right end of the first rotating shaft is fixedly connected with a second bevel gear, the first bevel gear and the second bevel gear are meshed with each other, the left end of the first rotating shaft is fixedly connected with a second rotating disc, the outer sides of two groups of second rotating discs are sleeved with the same first transmission belt, the left end of the first shell is fixedly installed with a motor, and the output shaft of the motor is fixedly connected to the left end of the front second rotating disc.
[0009] As a further scheme of the present application: the middle part of the lower end of the two groups of mounting frames is fixedly connected with a first mounting plate, the upper end of the first mounting plate is fixedly connected with a first pipeline, the front end of the first pipeline is fixedly connected with a second mounting plate, the middle part of the second mounting plate is rotationally connected with a second rotating shaft, and the outer side of the second rotating shaft is fixedly connected with a plurality of fan blades.
[0010] As a further scheme of the present application: the lower end of the second mounting plate is inserted with a collecting box, the lower end of the second mounting plate is provided with a first insertion slot matched with the collecting box, and the front end of the collecting box is fixedly connected with a first handle.
[0011] As a further scheme of the present application: the lower end of the left side of the third shell is inserted with a first cover, the lower end of the left side of the third shell is provided with a second insertion slot matched with the first cover, the left end of the first cover is fixedly connected with a second handle, the upper end of the left side of the first shell is rotationally connected with a second cover, the middle part of the second cover is provided with a cleaning groove, the front side of the second cover is fixedly connected with a water pipe, and the left end of the second cover is fixedly connected with a third handle.
[0012] As a further scheme of the present application: the front end of the second rotating shaft is fixedly connected with a third rotating disc, the front end of the first bevel gear is fixedly connected with a third rotating shaft, the front end of the third rotating shaft is fixedly connected with a fourth rotating disc, and the outer sides of the fourth rotating disc and the third rotating disc are sleeved with the same second transmission belt.
[0013] As a further scheme of the present application: the heat preservation and transmission assembly comprises a third cover, the left and right sides of the lower end of the second shell are rotationally connected with the third cover, the left and right sides of the middle part of the second shell are fixedly connected with mounting columns, the upper end of the third cover is rotationally connected with a transmission rod, the upper end of the transmission rod is rotationally connected with a sliding block, the middle part of the mounting column is slidingly connected with the sliding block, the middle part of the mounting column is provided with a sliding groove matched with the sliding block, the upper end of the third cover is provided with a receiving groove, the lower end inner wall of the sliding groove is fixedly connected with a plug rod, the middle part of the sliding block is inserted with the plug rod, the middle part of the sliding block is provided with a plug hole matched with the plug rod, and the outer side of the plug rod is sleeved with a first spring.
[0014] As a further scheme of the present application: the left and right sides of the lower end of the conveying block are inserted with two groups of plug plates, the left and right sides of the lower end of the conveying block are provided with third plug grooves matched with the plug plates, one end of the third plug groove close to the middle part of the conveying block is fixedly connected with a second spring, and the lower side of the inner wall of the sliding groove is fixedly connected with two groups of abutting blocks.
[0015] As a further scheme of the present application: the upper end of the second mounting plate is fixedly connected with a second pipeline, and the lower end of the second pipeline is fixedly connected with a dustproof net.
[0016] As a further scheme of the present application: the upper end of the left side of the first shell is fixedly connected with a third pipeline, the middle part of the first shell is provided with a second channel, and the middle part of the third shell is provided with a first channel.
[0017] The present application has the advantages that:
[0018] 1、Through the transmission assembly, the first rotating disc is rotated by the power provided by the motor, so that the conveying belt is driven, and the conveying block moves on the mounting frame, when the conveying block is heated in the second shell, the ash generated by the combustion of the mixture is sucked by the suction force generated by the rotation of the fan blades driven by the second rotating shaft, when the conveying block is conveyed out of the first shell, the conveying block can be washed, the sewage of the washing is collected by the cleaning tank and discharged from the water pipe, so that the worker can more conveniently clean the combustion tank.
[0019] 2, The present application is through the setting heat preservation heat transfer assembly, through the third cover second shell lower end is closed, when the transmission block is transmitted to the slider, the plugboard pushes the slider to slide down, so that the first spring compression, the slider drives the sliding groove, so that the sliding groove pushes the third cover, opens the third cover, when the plugboard contacts the resistance block, the third cover is completely opened, the resistance block pressurizes the plugboard, so that the plugboard shrinks into the third slot, when the transmission block is transmitted into the first shell, the first spring rebounds, so that the slider slides up, drives the third cover to close, at the same time, the hot gas in the second mounting plate and the second channel is transmitted to the first channel through the second pipeline and the third pipeline, preheats for the next sintering, prevents heat loss, reduces energy consumption. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is the structure schematic diagram of the present application;
[0021] Figure 2 It is the structure schematic diagram of the present application; Figure 1
[0022] Figure 3 It is the structure schematic diagram of the present application; Figure 2
[0023] Figure 4 It is the structure schematic diagram of the present application; Figure 2
[0024] Figure 5 It is the structure schematic diagram of the present application;
[0025] Figure 6 It is the structure schematic diagram of the present application;
[0026] Figure 7 It is the structure schematic diagram of the present application;
[0027] Figure 8 It is the structure schematic diagram of the present application;
[0028] Figure 9 It is the structure schematic diagram of the present application; Figure 8
[0029] In the figure: 1, the first shell; 2, the second shell; 3, the third shell; 411, the mounting frame; 412, the first rotating disc; 413, the conveyor belt; 414, the conveying block; 415, the combustion groove; 416, the first bevel gear; 417, the first rotating shaft; 418, the second bevel gear; 419, the second rotating disc; 420, the first transmission belt; 421, the motor; 422, the first mounting plate; 423, the first pipeline; 424, the second mounting plate; 425, the second rotating shaft; 426, the fan blade; 427, the collection box; 428, the first slot; 429, the first handle; 430, the first cover; 431, the second slot; 432, the second handle; 433, the second cover; 434, the cleaning groove; 435, the water pipe; 436, the third handle; 437, the third rotating disc; 438, the third rotating shaft; 439, the fourth rotating disc; 440, the second transmission belt; 5, the electromagnetic coil body; 611, the third cover; 612, the mounting column; 613, the transmission rod; 614, the sliding block; 615, the sliding groove; 616, the storage slot; 617, the insertion rod; 618, the insertion hole; 619, the first spring; 620, the insertion plate; 621, the third slot; 622, the second spring; 623, the abutting block; 624, the second pipeline; 625, the dustproof net; 626, the third pipeline; 627, the first channel; 628, the second channel. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0031] As shown in Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 9 , the present application provides a sintering mixture electromagnetic induction heating device, which comprises a first shell 1, the upper end of the right side of the first shell 1 is fixedly connected with a second shell 2, the middle part of the first shell 1 is provided with a heat preservation and heat transfer assembly, the lower end of the inner side of the second shell 2 is fixedly installed with an electromagnetic coil body 5, the middle part of the second shell 2 is provided with a transmission assembly, and the upper end of the second shell 2 is fixedly connected with a third shell 3.
[0032] The transmission assembly comprises a mounting frame 411, the front and rear sides of the middle part of the first shell 1 are fixedly connected with the mounting frame 411, four corners of the mounting frame 411 are rotationally connected with the first rotating disc 412, the outer sides of four groups of first rotating discs 412 on the same side are sleeved with the same conveying belt 413, the right sides of two groups of conveying belts 413 are rotationally connected with the conveying block 414, and the middle part of the conveying block 414 is provided with the combustion groove 415.
[0033] The left lower corner two groups of first rotating discs 412 are fixedly connected with the first bevel gear 416 away from the middle part of the first shell 1, the left side of the lower end of the first shell 1 is rotationally connected with two groups of first rotating shafts 417, the right end of the first rotating shaft 417 is fixedly connected with the second bevel gear 418, the first bevel gear 416 and the second bevel gear 418 are meshed with each other, the left end of the first rotating shaft 417 is fixedly connected with the second rotating disc 419, the outer sides of two groups of second rotating discs 419 are sleeved with the same first transmission belt 420, the left end of the first shell 1 is fixedly connected with the motor 421, and the output shaft of the motor 421 is fixedly connected with the left end of the front second rotating disc 419.
[0034] The middle part of the lower end of the two groups of mounting frames 411 is fixedly connected with the first mounting plate 422, the upper end of the first mounting plate 422 is fixedly connected with the first pipeline 423, the front end of the first pipeline 423 is fixedly connected with the second mounting plate 424, the middle part of the second mounting plate 424 is rotationally connected with the second rotating shaft 425, and the outer side of the second rotating shaft 425 is fixedly connected with a plurality of fan blades 426.
[0035] The lower end of the second mounting plate 424 is inserted with the collecting box 427, the lower end of the second mounting plate 424 is provided with the first insertion slot 428 matched with the collecting box 427, and the front end of the collecting box 427 is fixedly connected with the first handle 429.
[0036] The left lower end of the third shell 3 is inserted with the first cover 430, the left lower end of the third shell 3 is provided with the second insertion slot 431 matched with the first cover 430, the left end of the first cover 430 is fixedly connected with the second handle 432, the left side of the first shell 1 is rotationally connected with the second cover 433, the middle part of the second cover 433 is provided with the cleaning groove 434, the front side of the second cover 433 is fixedly connected with the water pipe 435, and the left end of the second cover 433 is fixedly connected with the third handle 436.
[0037] The front end of the second rotating shaft 425 is fixedly connected with a third rotating disc 437, the front end of the first bevel gear 416 is fixedly connected with a third rotating shaft 438, the front end of the third rotating shaft 438 is fixedly connected with a fourth rotating disc 439, the fourth rotating disc 439 and the third rotating disc 437 are sleeved with the same second transmission belt 440, the mixed material is placed in the combustion groove 415, the front second rotating disc 419 is driven to rotate through the power provided by the motor 421, the rear second rotating disc 419 is driven to rotate through the first transmission belt 420, the first rotating shaft 417 is driven to rotate, the second bevel gear 418 is driven to rotate through the first rotating shaft 417, the first bevel gear 416 is driven to rotate through the second bevel gear 418, the first rotating disc 412 is driven to rotate, the conveying belt 413 is driven to rotate through the first rotating disc 412, the conveying block 414 is conveyed into the second shell 2 through the conveying belt 413, the mixed material is heated through the electromagnetic coil body 5, the mixed material is combusted, after the combustion of the mixed material is completed, the conveying belt 413 continues to convey the conveying block 414, when the conveying block 414 is conveyed to the lower side of the first mounting plate 422, the front first bevel gear 416 drives the third rotating shaft 438 to rotate, the fourth rotating disc 439 is driven to rotate through the third rotating shaft 438, the power of the fourth rotating disc 439 is transmitted to the third rotating disc 437 through the second transmission belt 440, the third rotating disc 437 drives the second rotating shaft 425 to rotate, the second rotating shaft 425 drives the fan blade 426 to rotate to generate suction, thereby absorbing the ash combusted by the mixed material, the ash is absorbed into the second mounting plate 424 along the second handle 432, and is collected through the collecting box 427; along with the conveying of the conveying belt 413, the second cover 433 is opened, the conveying block 414 is conveyed out of the first shell 1, and then the second cover 433 is closed, the second cover 433 is parked in the cleaning groove 434, the material is taken out, the combustion groove 415 is flushed, the flushed sewage is discharged along the water pipe 435, after cleaning is completed, new mixed material is placed in the combustion groove 415, the second handle 432 is pulled to open the first cover 430, the conveying block 414 is conveyed into the third shell 3, the first cover 430 is closed, and a new round of combustion is performed.
[0038] As Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 7 , Figure 8 and Figure 9As shown, the heat preservation and heat transfer assembly comprises a third cover 611, the left and right sides of the lower end of the second shell 2 are rotationally connected with the third cover 611, the left and right sides of the middle part of the second shell 2 are fixedly connected with mounting columns 612, the upper end of the third cover 611 is rotationally connected with a transmission rod 613, the upper end of the transmission rod 613 is rotationally connected with a sliding block 614, the sliding block 614 is slidingly connected in the middle part of the mounting column 612, the middle part of the mounting column 612 is provided with a sliding groove 615 matched with the sliding block 614, the upper end of the third cover 611 is provided with a receiving groove 616, the lower end inner wall of the sliding groove 615 is fixedly connected with a plug rod 617, the plug rod 617 is inserted in the middle part of the sliding block 614, the middle part of the sliding block 614 is provided with a plug hole 618 matched with the plug rod 617, and the outer side of the plug rod 617 is sleeved with a first spring 619.
[0039] The left and right sides of the lower end of the conveying block 414 are inserted with two groups of plug plates 620, the left and right sides of the lower end of the conveying block 414 are provided with third insertion grooves 621 matched with the plug plates 620, one end of the third insertion groove 621 close to the middle part of the conveying block 414 is fixedly connected with a second spring 622, and the lower side of the inner wall of the sliding groove 615 is fixedly connected with two groups of abutting blocks 623.
[0040] The upper end of the second mounting plate 424 is fixedly connected with a second pipeline 624, and the lower end of the second pipeline 624 is fixedly connected with a dust screen 625.
[0041] The upper end of the left side of the first shell 1 is fixedly connected with a third pipeline 626, the middle part of the third shell 3 is provided with a first channel 627, and the middle part of the first shell 1 is provided with a second channel 628. When the plug plate 620 abuts against the upper end of the sliding block 614 and pushes the sliding block 614 to slide downward, the sliding block 614 compresses the plug rod 617, simultaneously drives the transmission rod 613, makes the transmission rod 613 push the third cover 611 downward, and makes the third cover 611 open, when the third cover 611 is completely opened, the transmission rod 613 is retracted into the receiving groove 616, the plug plate 620 reaches the abutting block 623, and when the plug plate 620 continues to move downward, the abutting block 623 abuts against the plug plate 620, so that the plug plate 620 is retracted into the third insertion groove 621, thereby making the conveying block 414 convey downward into the first shell 1, through the rebound of the first spring 619, the sliding block 614 is driven to slide upward and reset, thereby making the third cover 611 close, when the conveying block 414 is in the second channel 628, the suction force generated by the fan blade 426 is used for conveying the residual heat of the combustion material to the first channel 627 through the second pipeline 624, simultaneously, the dust screen 625 is used for blocking the ash, the third pipeline 626 is used for connecting the second channel 628 and the first channel 627, so that there is a certain temperature in the first channel 627, preheating is realized for the next round of combustion, and meanwhile, heat waste is prevented.
[0042] The working principle of the present application is as follows:
[0043] The mixture is placed in the combustion groove 415, the front second rotating disc 419 is driven to rotate by the power provided by the motor 421, the rear second rotating disc 419 is driven to rotate by the first transmission belt 420, the first rotating shaft 417 is driven to rotate, the second bevel gear 418 is driven to rotate by the first rotating shaft 417, the first bevel gear 416 is driven to rotate by the second bevel gear 418, the first rotating disc 412 is driven to rotate, the conveyor belt 413 is driven to rotate by the first rotating disc 412, the conveying block 414 is conveyed into the second shell 2 by the conveyor belt 413, the mixture is heated by the electromagnetic coil body 5, the mixture is burned, the conveying block 414 is continuously conveyed by the conveyor belt 413 after the mixture is burned, when the plug plate 620 abuts against the upper end of the sliding block 614, the sliding block 614 is pushed to slide downward, the sliding block 614 compresses the plug rod 617, the transmission rod 613 is driven to move downward at the same time, the third cover 611 is pushed downward by the transmission rod 613, the third cover 611 is opened, the transmission rod 613 is retracted into the storage groove 616 when the third cover 611 is completely opened, the plug plate 620 reaches the abutting block 623, the plug plate 620 is driven to retract into the third insertion groove 621 by the abutting block 623 when the plug plate 620 continues to move downward, the conveying block 414 is conveyed downward into the first shell 1, the sliding block 614 is driven to slide upward and reset by the rebound of the first spring 619, the third cover 611 is closed;
[0044] When the conveying block 414 is conveyed to the lower side of the first mounting plate 422, the front side first bevel gear 416 rotates to drive the third rotating shaft 438, the third rotating shaft 438 drives the fourth rotating disc 439 to rotate, the power of the fourth rotating disc 439 is transmitted to the third rotating disc 437 through the second transmission belt 440, so that the third rotating disc 437 drives the second rotating shaft 425 to rotate, the second rotating shaft 425 drives the fan blade 426 to rotate to generate suction, so that the ash of the mixed material after combustion is absorbed, the ash is absorbed into the second mounting plate 424 along the second handle 432, and is collected through the collecting box 427, and at the same time, the suction generated by the fan blade 426, the dust screen 625 blocks the ash, and the waste heat of the combustion material is transported into the first channel 627 through the second pipeline 624, along with the conveying of the conveying belt 413, the second cover 433 is opened, the conveying block 414 is conveyed out of the first shell 1, and then the second cover 433 is closed, the second cover 433 is parked in the cleaning tank 434, the material is taken out, the combustion tank 415 is flushed, the sewage of the flushing is discharged along the water pipe 435, and after cleaning, new mixed material is placed in the combustion tank 415, the second handle 432 is pulled to open the first cover 430, the conveying block 414 is conveyed into the third shell 3, the first cover 430 is closed, and a new round of combustion is carried out, when the conveying block 414 is in the second channel 628, the second channel 628 and the first channel 627 are communicated through the third pipeline 626, so that a certain temperature exists in the first channel 627, the next round of combustion is preheated, and meanwhile, heat waste is prevented.
[0045] Finally, it should be pointed out that: first, in the description of the present application, it should be pointed out that, unless otherwise specified and limited, the terms "mounting", "connection" and "connection" should be understood broadly, which can be mechanical connection or electrical connection, or the communication between two elements, or direct connection, "up", "down", "left", "right" and the like are only used to indicate the relative positional relationship, when the absolute position of the described object changes, the relative positional relationship may change;
[0046] Secondly: the present application discloses the structure involved in the embodiment of the present application, and other structures can refer to the usual design, and the same embodiment and different embodiments of the present application can be combined with each other under the condition of no conflict;
[0047] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this, any person skilled in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A sintering mix electromagnetic induction heating device comprising a first housing (1), characterized in that: The upper end of the right side of the first shell (1) is fixedly connected with a second shell (2), the middle part of the first shell (1) is provided with a heat preservation and heat transfer assembly, the lower end of the inner side of the second shell (2) is fixedly installed with an electromagnetic coil body (5), the middle part of the second shell (2) is provided with a transmission assembly, and the upper end of the second shell (2) is fixedly connected with a third shell (3); The transmission assembly comprises a mounting frame (411), the front and rear sides of the middle part of the first shell (1) are fixedly connected with mounting frames (411), four corners of the mounting frame (411) are rotatably connected with first rotating discs (412), the outer sides of four groups of first rotating discs (412) on the same side are sleeved with a same conveying belt (413), the right sides of two groups of conveying belts (413) are rotatably connected with conveying blocks (414), and the middle part of the conveying block (414) is provided with a combustion groove (415); The middle part of the lower end of the two groups of mounting frames (411) is fixedly connected with a first mounting plate (422), the upper end of the first mounting plate (422) is fixedly connected with a first pipeline (423), the front end of the first pipeline (423) is fixedly connected with a second mounting plate (424), the middle part of the second mounting plate (424) is rotatably connected with a second rotating shaft (425), and the outer side of the second rotating shaft (425) is fixedly connected with a plurality of fan blades (426); The lower end of the second mounting plate (424) is inserted with a collecting box (427), the lower end of the second mounting plate (424) is provided with a first insertion groove (428) matched with the collecting box (427), and the front end of the collecting box (427) is fixedly connected with a first handle (429).
2. The electromagnetic induction heating apparatus for sintering mixtures according to claim 1, characterized in that: The end, away from the middle part of the first shell (1), of the two groups of first rotating discs (412) in the lower left corner is fixedly connected with a first bevel gear (416), the left side of the lower end of the first shell (1) is rotatably connected with two groups of first rotating shafts (417), the right end of the first rotating shaft (417) is fixedly connected with a second bevel gear (418), the first bevel gear (416) and the second bevel gear (418) are meshed with each other, the left end of the first rotating shaft (417) is fixedly connected with a second rotating disc (419), the outer sides of the two groups of second rotating discs (419) are sleeved with a same first transmission belt (420), the left end of the first shell (1) is fixedly installed with a motor (421), and the output shaft of the motor (421) is fixedly connected with the left end of the front second rotating disc (419).
3. The electromagnetic induction heating apparatus for sintering mixtures according to claim 1, characterized in that: The lower end of the left side of the third shell (3) is provided with a first cover (430), and the lower end of the left side of the third shell (3) is provided with a second insertion slot (431) matched with the first cover (430). The left end of the first cover (430) is fixedly connected with a second handle (432). The upper end of the left side of the first shell (1) is rotatably connected with a second cover (433). The middle part of the second cover (433) is provided with a cleaning groove (434). The front side of the second cover (433) is fixedly connected with a water pipe (435). The left end of the second cover (433) is fixedly connected with a third handle (436).
4. The electromagnetic induction heating apparatus for sintering mixtures according to claim 2, characterized in that: The front end of the second rotating shaft (425) is fixedly connected with a third rotating disc (437). The front end of the first bevel gear (416) is fixedly connected with a third rotating shaft (438). The front end of the third rotating shaft (438) is fixedly connected with a fourth rotating disc (439). The outer sides of the fourth rotating disc (439) and the third rotating disc (437) are sleeved with a same second transmission belt (440).
5. The electromagnetic induction heating apparatus for sintering mixtures according to claim 1, characterized in that: The heat preservation and heat transfer assembly comprises a third cover (611), the lower end of the second shell (2) is rotatably connected with a third cover (611) on the left and right sides, the left and right sides of the middle part of the second shell (2) are fixedly connected with mounting columns (612), the upper end of the third cover (611) is rotatably connected with a transmission rod (613), the upper end of the transmission rod (613) is rotatably connected with a sliding block (614), the sliding block (614) is slidably connected in the middle part of the mounting column (612), the middle part of the mounting column (612) is provided with a sliding groove (615) matched with the sliding block (614), the upper end of the third cover (611) is provided with a receiving groove (616), the lower end inner wall of the sliding groove (615) is fixedly connected with a plug rod (617), the plug rod (617) is inserted in the middle part of the sliding block (614), the middle part of the sliding block (614) is provided with a plug hole (618) matched with the plug rod (617), and the outer side of the plug rod (617) is sleeved with a first spring (619).
6. A sintering mix electromagnetic induction heating device as claimed in claim 5, characterized in that: The lower end of the left and right sides of the conveying block (414) is provided with two groups of plug plates (620), the left and right sides of the lower end of the conveying block (414) are provided with third insertion slots (621) matched with the plug plates (620), one end of the third insertion slot (621) close to the middle part of the conveying block (414) is fixedly connected with a second spring (622), and the lower side of the inner wall of the sliding groove (615) is fixedly connected with two groups of abutting blocks (623).
7. The electromagnetic induction heating apparatus for sintering mixtures according to claim 1, characterized in that: The upper end of the second mounting plate (424) is fixedly connected with a second pipeline (624), and the lower end of the second pipeline (624) is fixedly connected with a dustproof net (625).
8. The electromagnetic induction heating apparatus for sintering mixtures according to claim 1, characterized in that: The upper end of the left side of the first shell (1) is fixedly connected with a third pipeline (626), the middle part of the third shell (3) is provided with a first channel (627), and the middle part of the first shell (1) is provided with a second channel (628).
Citation Information
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