A spherical high-efficiency rod mixing machine
The unique ribbon structure and detection and crushing device of the spherical high-efficiency wire rod mixer solve the problems of material accumulation and uneven mixing in traditional mixing equipment, and achieve efficient and stable material mixing and crushing effect.
Patent Information
- Application Number
- CN202511188722.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-25
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-08-25
AI Technical Summary
Traditional wire rod mixing equipment suffers from problems such as simple mixing component design, easy material accumulation, uneven mixing, and lack of effective material agglomeration detection and crushing mechanism, resulting in equipment blockage, jamming, and energy waste.
The spherical high-efficiency wire rod mixer is designed with a unique upper and lower spiral ribbon structure and a cutting blade design. Combined with detection and crushing devices, it achieves uniform mixing and precise crushing of materials.
It improves the uniformity of material mixing and production efficiency, reduces the risk of equipment blockage, enables on-demand crushing, and reduces energy waste.
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Figure CN120679409B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of wire bar mixing machines, in particular to a spherical efficient wire bar mixing machine. BACKGROUND
[0002] In the technical field of wire bar mixing machines, traditional mixing equipment mostly adopts a barrel type or groove type structure, which has the following key problems: 1. The stirring assembly design is single, mostly with straight blades or fixed spiral belts, and the material is easy to accumulate on the barrel wall, and the convection of the upper and lower layers of material is not smooth, resulting in low mixing uniformity; 2. There is a lack of effective material agglomeration detection and targeted crushing mechanism, and the large agglomerates formed during the mixing process cannot be identified and crushed in time, which not only affects the final material quality, but also may cause equipment blockage, stagnation, and reduce production efficiency; 3. The crushing device mostly runs at a fixed power, and cannot adjust the crushing strength according to the size of the material agglomerates, which either over-crushes small agglomerates, causing energy waste, or does not crush large agglomerates thoroughly, making it difficult to adapt to the mixing needs of different materials. SUMMARY
[0003] The purpose of the present application is to provide a spherical efficient wire bar mixing machine to solve the problems in the prior art.
[0004] To achieve the above-mentioned purpose, the present application provides the following technical scheme:
[0005] A spherical efficient wire bar mixing machine, the mixing machine comprising a spherical mounting shell, a support frame, a stirring device, a crushing device and a detection device, the spherical mounting shell and the support frame being tightly connected, the spherical mounting shell and the stirring device being tightly connected, the stirring device and the detection device being connected, the spherical mounting shell and the crushing device being connected, the spherical mounting shell further being provided with a feeding component and a flap valve, the feeding component being located at the top of the spherical mounting shell, the feeding component and the spherical mounting shell being in communication, the flap valve and the spherical mounting shell being in communication, the flap valve being located at the bottom of the spherical mounting shell, the crushing device and the detection device being connected.
[0006] The spherical mounting shell serves as the main installation base for the installation and positioning of other components, and the support frame provides active support for the spherical mounting shell. Initially, the material is placed into the spherical mounting shell through the feeding component, and then the material is mixed and treated by the stirring device. During the mixing process, the material is mixed and crushed by the crushing device, improving the uniformity of the material mixing. Then, the size of the mixed material is detected by the detection device. When the material is mixed into larger agglomerates, the larger agglomerates are sent to the crushing device for crushing. After the mixing is completed, the mixed material is discharged through the flap valve.
[0007] Furthermore, the stirring device includes a stirring motor, a stirring shaft, a first connecting rod, an upper helical ribbon, and a lower helical ribbon. The stirring motor is fastened to the ball mounting shell, the stirring shaft is placed inside the ball mounting shell, the output end of the stirring motor is fastened to the stirring shaft, the first connecting rod is fastened to the stirring shaft, there are several first connecting rods, and the several first connecting rods are fastened to the upper and lower helical ribbons respectively. The stirring shaft is connected to a detection device.
[0008] When it is necessary to stir the material, the stirring motor output drives the stirring shaft to rotate. The rotation of the stirring shaft drives the first connecting rod to rotate, and the rotation of the first connecting rod drives the upper and lower spiral ribbons to rotate. The material inside the sphere is stirred by the rotation of the upper and lower spiral ribbons. At the same time, the material is mixed by the upper and lower spiral ribbons, so that the material can rise spirally along the cylinder wall, reducing the phenomenon of material blockage and jamming, and increasing the intensity and effect of material convection mixing.
[0009] Furthermore, the upper spiral ribbon gradually decreases in diameter and increases in width as it moves upward along the center line of the stirring shaft, while the lower spiral ribbon gradually increases in diameter and increases in width as it moves downward along the center line of the stirring shaft.
[0010] By setting the lower helical ribbon to gradually increase in width downwards along the center line of the stirring shaft, the total amount of material spiraling upwards along the cylinder wall is increased. At the same time, the width gradually decreases upwards, reducing the total amount of material being fed to the crushing device and preventing excessive crushing at the same time, which would reduce the crushing effect of the crushing device. By setting the upper helical ribbon to gradually increase in width upwards along the center line of the stirring shaft, the upper helical ribbon carries away material near the crushing device, further increasing the crushing effect. At the same time, the increased width of the upper helical ribbon at the top increases the stirring effect at the top, stirring the material at the top while causing it to fall back, increasing the material's resistance. The material at the top falls back to the center of the spherical mounting shell as much as possible, further enhancing the stirring effect.
[0011] Furthermore, there is a gap between the outermost edges of the upper and lower spiral ribbons and the inner wall of the spherical mounting shell, and a cutter is provided on the outermost edges of the upper and lower spiral ribbons.
[0012] By setting gaps and cutters on the outermost sides of the upper and lower spiral ribbons, material blockage and jamming will not occur when the ribbons rotate. The cutters can cut off the jammed material, and the remaining gaps allow the material to pass through, increasing the mixing effect.
[0013] Furthermore, the crushing device includes a crushing motor and crushing cutters. The crushing motor is fastened to the ball mounting shell, and the crushing cutters are fastened to the output end of the crushing motor. The crushing cutters are placed inside the ball mounting shell and between the upper and lower spiral ribbons.
[0014] The crushing motor is used as a main driving device to drive the crushing cutter to rotate and crush the material, and the crushing cutter is arranged between the upper screw belt and the lower screw belt, so that the material is crushed as much as possible, and the crushing effect is increased.
[0015] Further, the detection device comprises a detection body, a driving motor, a pushing baffle, a detection component and a screw rod, the detection body is rotationally connected with the stirring shaft, the detection body is located between the upper screw belt and the lower screw belt, the detection body is provided with a detection groove and a first mounting cavity, the detection groove and the first mounting cavity are communicated, the driving motor is arranged in the first mounting cavity, the screw rod is arranged in the first mounting cavity, the driving motor is fixedly connected with the first mounting cavity, the output end of the driving motor is fixedly connected with the screw rod, the end of the screw rod away from the driving motor is fixedly connected with the first mounting cavity, the pushing baffle is threadedly connected with the screw rod, the pushing baffle is fixedly connected with the detection component, the pushing baffle is slidably connected with the detection groove, and the detection component is connected with the crushing motor.
[0016] The detection body is used as a main installation base to install and position other components, when the upper screw belt and the lower screw belt start to rotate, the material is rotated and mixed in the spherical installation shell through the rotation of the upper screw belt and the lower screw belt, the material in the working area of the crushing device in the middle of the spherical installation shell is limited through the arranged detection body, and the driving motor is started to drive the screw rod to rotate through the output torque of the driving motor, the screw rod drives the pushing baffle to move, the pushing baffle drives the detection component to move, the existence of the agglomerated material in the detection groove can be detected through the movement of the detection component, and then the agglomerated material is pushed out to the crushing cutter through the pushing baffle, so that the crushing cutter crushes the material, the crushing effect is improved, and the agglomeration of the material is reduced.
[0017] Further, a plurality of detection holes are arranged on the detection groove, a plurality of connecting grooves are arranged on the detection groove, the connecting grooves and the detection holes are communicated, and the detection component is arranged in the connecting grooves.
[0018] The detection holes are arranged to limit the flow of the material, when the material is agglomerated, the size of the agglomerated material cannot pass through the detection holes, so as to be clamped on the detection holes, the detection of the agglomeration of the material is realized, and the connecting grooves are arranged to provide installation positions for the detection component.
[0019] Further, the detection component comprises a detection plate, an elastic sheet, an electromagnetic coil and a magnet, the pushing baffle is fixedly connected with the detection plate, the end of the detection plate is fixedly connected with the elastic sheet, the other end of the elastic sheet is slidably connected with the detection plate, the electromagnetic coil is located below the elastic sheet, the electromagnetic coil is fixedly connected with the elastic sheet, the magnet is arranged in the electromagnetic coil, the magnet is fixedly connected with the detection plate, and the electromagnetic coil is electrically connected with the crushing motor.
[0020] Further, the detection plate is used as the main installation base for the installation and positioning of other components. When starting detection, the detection plate is moved in the connecting groove by the pushing baffle. When there is agglomerated material on the detection hole, when the pushing baffle drives the detection plate to move to the detection hole where the agglomerated material is located, the elastic sheet exerts a force on the bottom of the agglomerated material, and at the same time, the agglomerated material exerts a force on the elastic sheet, so that the elastic sheet is bent. The bending of the elastic sheet makes the electromagnetic coil move. Through the action of the magnet on the moving electromagnetic coil, the electromagnetic coil generates an induced current. Through the different forces exerted by different sizes of material agglomerates on the elastic sheet, different electric signals are generated. When the electric signal value is larger, the agglomerate detected by the electromagnetic coil is larger, and at the same time, the output electric signal value of the crushing motor is larger, and the output power of the crushing motor is higher.
[0021] Compared with the prior art, the beneficial effects of the present application are:
[0022] 1. Through the unique upper screw belt and lower screw belt structure design, the upper screw belt gradually decreases in diameter and gradually increases in width along the center line of the stirring shaft, and the lower screw belt gradually increases in diameter and gradually increases in width, cooperating with the gap between the cutter at the outermost side of the screw belt and the cylinder wall, which can not only make the material rise along the cylinder wall, reduce the blocking and stagnation of the material, but also promote the top material to fall back and the bottom material to rise fully, enhance the convection mixing intensity of the material, and the cutter can cut off the blocked material in time, the gap design avoids material residues, and the mixing uniformity and efficiency are greatly improved.
[0023] 2. The detection device realizes material agglomeration recognition through the detection hole of the detection groove, and cooperates with the pushing baffle and the detection component to accurately perceive the size of the agglomerate: when the agglomerate is blocked in the detection hole, the elastic sheet is bent under stress to drive the electromagnetic coil to move, and interacts with the magnet to generate an induced current of different intensity, thereby adjusting the power of the crushing motor, the larger the agglomerate, the higher the crushing power, realizing "crushing on demand". At the same time, the crushing cutter is located between the upper and lower screw belts, and can directly crush the agglomerate pushed by the pushing baffle, solving the problems of inaccurate crushing and energy waste of traditional equipment, and effectively reducing the phenomenon of material agglomeration.
[0024] 3. The support frame stably supports the spherical installation shell, cooperates with the tight connection of the stirring device and the spherical installation shell, and ensures the structural stability during equipment operation; the reasonable layout of the stirring motor, the crushing motor and each component avoids the fault risk caused by component interference of traditional equipment. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 It is a schematic diagram of the overall structure of the present application;
[0026] Figure 2 It is a schematic diagram of the feeding component structure of the present application;
[0027] Figure 3This is a schematic diagram of the stirring device of the present invention;
[0028] Figure 4 This is a schematic diagram of the detection device of the present invention;
[0029] Figure 5 for Figure 4 A magnified view of part A;
[0030] Figure 6 This is a schematic diagram of the detection body structure of the present invention;
[0031] Figure 7 for Figure 6 A magnified view of part B;
[0032] Figure 8 This is a schematic diagram of the detection component structure of the present invention.
[0033] In the diagram: 1. Spherical mounting shell; 2. Support frame; 3. Stirring device; 31. Stirring motor; 32. Stirring shaft; 33. First connecting rod; 34. Upper helical ribbon; 35. Lower helical ribbon; 4. Crushing device; 41. Crushing motor; 42. Crushing blade; 5. Detection device; 51. Detection body; 511. Detection groove; 512. First mounting cavity; 513. Detection through hole; 514. Connecting groove; 52. Drive motor; 53. Pushing baffle; 54. Detection component; 541. Detection plate; 542. Elastic sheet; 543. Electromagnetic coil; 544. Magnet; 55. Screw; 6. Feeding component; 7. Flip valve. Detailed Implementation
[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0035] Example: Figures 1-8 As shown, the present invention provides a technical solution for a spherical high-efficiency wire rod mixer. The mixer includes a spherical mounting shell 1, a support frame 2, a stirring device 3, a crushing device 4, and a detection device 5. The spherical mounting shell 1 and the support frame 2 are fastened together. The spherical mounting shell 1 and the stirring device 3 are fastened together. The stirring device 3 and the detection device 5 are connected. The spherical mounting shell 1 and the crushing device 4 are connected. The spherical mounting shell 1 is also provided with a feeding component 6 and a flap valve 7. The feeding component 6 is located at the top of the spherical mounting shell 1 and communicates with the spherical mounting shell 1. The flap valve 7 is located at the bottom of the spherical mounting shell 1 and communicates with the spherical mounting shell 1. The crushing device 4 and the detection device 5 are connected.
[0036] The ball mounting shell 1 is used as the main mounting base for the installation of other components, and the support frame 2 is provided to actively support the ball mounting shell 1. Initially, the material is placed into the ball mounting shell 1 through the feeding component 6, and then the material is mixed by the stirring device 3. During the mixing process, the material is mixed and crushed by the crushing device 4 to improve the uniformity of the material mixing. Then, the size of the mixed material is detected by the detection device 5. When the material is mixed into larger agglomerates, the material block is sent to the crushing device 4 for crushing. After the mixing is completed, the mixed material is discharged through the flap valve 7.
[0037] As shown in Figures 1-3 , the stirring device 3 includes a stirring motor 31, a stirring shaft 32, a first connecting rod 33, an upper screw belt 34, and a lower screw belt 35. The stirring motor 31 is tightly connected with the ball mounting shell 1. The stirring shaft 32 is placed in the ball mounting shell 1. The output end of the stirring motor 31 is tightly connected with the stirring shaft 32. The first connecting rod 33 is tightly connected with the stirring shaft 32. The first connecting rod 33 has a plurality of first connecting rods 33. The plurality of first connecting rods 33 are respectively tightly connected with the upper screw belt 34 and the lower screw belt 35. The stirring shaft 32 is connected with the detection device 5.
[0038] When the material needs to be stirred, the stirring motor 31 drives the stirring shaft 32 to rotate. The stirring shaft 32 drives the first connecting rod 33 to rotate. The first connecting rod 33 drives the upper screw belt 34 and the lower screw belt 35 to rotate. The material in the ball mounting shell 1 is stirred by the rotation of the upper screw belt 34 and the lower screw belt 35. At the same time, the material is stirred and mixed by the upper screw belt 34 and the lower screw belt 35, so that the material can spiral upward along the cylinder wall, reducing the phenomenon of blocking and jamming, and increasing the strength and effect of convective mixing of the material.
[0039] As shown in Figure 3 , the upper screw belt 34 gradually decreases in screw diameter along the center line of the stirring shaft 32 upward. The upper screw belt 34 gradually increases in width along the center line of the stirring shaft 32 upward. The lower screw belt 35 gradually increases in screw diameter along the center line of the stirring shaft 32 downward. The lower screw belt 35 gradually increases in width along the center line of the stirring shaft 32 downward.
[0040] By setting the lower screw belt 35 to gradually increase in width downward along the center line of the stirring shaft 32, the total amount of the lowest material spiraling upward along the cylinder wall is increased, while the upward width gradually decreases, so that the total amount of the lower material when rising to the crushing device 4 is reduced, preventing too much crushing at the same time, thereby reducing the crushing effect of the crushing device 4. By setting the upper screw belt 34 to gradually increase in width upward along the center line of the stirring shaft 32, the further increase in the crushing effect is achieved by reducing the material taken away by the upper screw belt 34 near the crushing device 4, while the increased width of the upper screw belt 34 at the top increases the stirring effect at the top, stirring the material at the top while making the material at the top fall back, increasing the material's counterflow, and making the top material fall back to the center of the spherical mounting shell 1 as much as possible to increase the stirring effect.
[0041] As shown in Figure 3 , there is a gap between the outermost side of the upper screw belt 34 and the lower screw belt 35 and the inner wall of the spherical mounting shell 1, and the outermost side of the upper screw belt 34 and the lower screw belt 35 is provided with a cutter.
[0042] By setting the outermost side of the upper screw belt 34 and the lower screw belt 35 with a gap and a cutter, the screw belt will not be blocked and stuck when rotating, and the stuck material can be cut off by the cutter, and the remaining gap can allow the material to pass through, increasing the mixing effect.
[0043] As shown in Figure 2 , the crushing device 4 includes a crushing motor 41 and a crushing cutter 42, the crushing motor 41 and the spherical mounting shell 1 are tightly connected, the crushing cutter 42 and the output end of the crushing motor 41 are tightly connected, the crushing cutter 42 is placed in the spherical mounting shell 1, and the crushing cutter 42 is placed between the upper screw belt 34 and the lower screw belt 35.
[0044] The crushing motor 41 is used as the main driving device to drive the crushing cutter 42 to rotate and crush the material, and by setting the crushing cutter 42 between the upper screw belt 34 and the lower screw belt 35, the material is crushed as much as possible, increasing the crushing effect.
[0045] As shown in Figures 4-7As shown, the detection device 5 comprises a detection body 51, a driving motor 52, a pushing baffle 53, a detection component 54 and a screw rod 55, the detection body 51 is rotationally connected with the stirring shaft 32, the detection body 51 is located between the upper helical belt 34 and the lower helical belt 35, the detection body 51 is provided with a detection groove 511 and a first mounting cavity 512, the detection groove 511 and the first mounting cavity 512 are communicated, the driving motor 52 is arranged in the first mounting cavity 512, the screw rod 55 is arranged in the first mounting cavity 512, the driving motor 52 is fixedly connected with the first mounting cavity 512, the output end of the driving motor 52 is fixedly connected with the screw rod 55, the end of the screw rod 55 away from the driving motor 52 is fixedly connected with the first mounting cavity 512, the pushing baffle 53 is threadedly connected with the screw rod 55, the pushing baffle 53 is fixedly connected with the detection component 54, the pushing baffle 53 is slidably connected with the detection groove 511, and the detection component 54 is connected with the crushing motor 41.
[0046] The detection body 51 serves as a main mounting base for mounting and positioning other components. When the upper helical belt 34 and the lower helical belt 35 start to rotate, the materials are mixed by rotating in the spherical mounting shell 1 through the upper helical belt 34 and the lower helical belt 35. The materials in the working area of the crushing device 4 in the middle of the spherical mounting shell 1 are limited by the detection body 51, and the driving motor 52 is started to drive the screw rod 55 to rotate through the output rotating torque of the driving motor 52. The screw rod 55 drives the pushing baffle 53 to move, and the pushing baffle 53 drives the detection component 54 to move. The existence of the agglomerated materials in the detection groove 511 can be detected by the movement of the detection component 54. Then the agglomerated materials are pushed out to the crushing cutter 42 by the pushing baffle 53, so that the crushing cutter 42 crushes the materials, thereby improving the crushing effect and reducing the agglomeration phenomenon of the materials.
[0047] As shown in the figure, Figures 4-7 The detection groove 511 is provided with a plurality of detection holes 513, and a plurality of connecting grooves 514 are arranged on the detection groove 511, the connecting grooves 514 and the detection holes 513 are communicated, and the detection component 54 is arranged in the connecting grooves 514.
[0048] The detection holes 513 limit the flow of the materials. When the materials are agglomerated, the size of the agglomerated materials cannot pass through the detection holes 513, so as to be stuck on the detection holes 513, thereby realizing the detection of the agglomeration of the materials. The connecting grooves 514 provide mounting positions for the detection component 54.
[0049] As shown in the figure, Figure 8As shown, the detection component 54 comprises a detection plate 541, an elastic sheet 542, an electromagnetic coil 543 and a magnet 544, the pushing baffle 53 is fixedly connected with the detection plate 541, the end of the detection plate 541 is fixedly connected with the elastic sheet 542, the other end of the elastic sheet 542 is slidingly connected with the detection plate 541, the electromagnetic coil 543 is located below the elastic sheet 542 and is fixedly connected with the elastic sheet 542, the magnet 544 is arranged in the electromagnetic coil 543 and is fixedly connected with the detection plate 541, and the electromagnetic coil 543 is electrically connected with the crushing motor 41.
[0050] The detection plate 541 is used as a main mounting base for mounting and positioning other components, when starting detection, the pushing baffle 53 drives the detection plate 541 to move in the connecting groove 514, when there is agglomerated material on the detection through hole 513, when the pushing baffle 53 drives the detection plate 541 to move to the detection through hole 513 where the agglomerated material is located, the elastic sheet 542 generates a force on the bottom of the agglomerated material, and at the same time, the agglomerated material exerts a force on the elastic sheet 542, so that the elastic sheet 542 is bent, the bending of the elastic sheet 542 makes the electromagnetic coil 543 move, the moving electromagnetic coil 543 is acted on by the magnet 544, so that the electromagnetic coil 543 generates an induced current, the agglomerated material of different sizes exerts different forces on the elastic sheet 542, different electric signals are generated, when the electric signal value is larger, the agglomerated material detected by the electromagnetic coil 543 is larger, and at the same time, the output electric signal value of the crushing motor 41 is larger, and the output power of the crushing motor 41 is higher.
[0051] Working principle of the present application:
[0052] The ball mounting shell 1 is used as the main mounting base for the installation of other components, and the support frame 2 is arranged to provide active support for the ball mounting shell 1. Initially, the material is put into the ball mounting shell 1 through the feeding component 6, the stirring motor 31 drives the stirring shaft 32 to rotate, the stirring shaft 32 drives the first connecting rod 33 to rotate, the first connecting rod 33 drives the upper screw belt 34 and the lower screw belt 35 to rotate, the material in the ball mounting shell 1 is stirred through the rotation of the upper screw belt 34 and the lower screw belt 35, and the material is stirred and mixed through the upper screw belt 34 and the lower screw belt 35, so that the material can spiral upward along the cylinder wall, reducing the phenomenon of blocking and jamming, increasing the strength and effect of the material convection mixing, and improving the uniformity of the material mixing. During the mixing process, the detection device 5 drives the detection plate 541 to move in the connecting groove 514 through the pushing baffle 53, when there is agglomerated material on the detection through hole 513, when the pushing baffle 53 drives the detection plate 541 to move to the detection through hole 513 where the agglomerated material is located, the elastic sheet 542 exerts a force on the bottom of the agglomerated material, and the agglomerated material exerts a force on the elastic sheet 542, so that the elastic sheet 542 is bent, the bending of the elastic sheet 542 causes the electromagnetic coil 543 to move, the electromagnetic coil 543 is acted on by the magnet 544, so that the electromagnetic coil 543 generates an induced current, the agglomerated material of different sizes exerts different forces on the elastic sheet 542, generating different electric signals, when the electric signal value is larger, the electromagnetic coil 543 detects larger agglomerated material, and the output signal value of the crushing motor 41 is larger, so that the output power of the crushing motor 41 is higher. Then the size of the mixed material is detected by the detection device 5, and after the mixing is completed, the mixed material is discharged through the flap valve 7.
[0053] It will be apparent to those skilled in the art that the application is not limited to the details of the above-exemplified embodiments and that the present application can be implemented in other specific forms without departing from the spirit or essential characteristics thereof. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restrictive, the scope of the application being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalents are intended to be embraced therein. No limitation is intended to the scope of the claims unless otherwise specifically stated in such claims.
Claims
1. A spherical high-efficiency wire rod mixer, characterized in that: The mixer includes a spherical mounting shell (1), a support frame (2), a stirring device (3), a crushing device (4), and a detection device (5). The spherical mounting shell (1) and the support frame (2) are fastened together. The spherical mounting shell (1) and the stirring device (3) are fastened together. The stirring device (3) and the detection device (5) are connected together. The spherical mounting shell (1) and the crushing device (4) are connected together. The spherical mounting shell (1) is also provided with a feeding component (6) and a flap valve (7). The feeding component (6) is located at the top of the spherical mounting shell (1). The feeding component (6) is connected to the spherical mounting shell (1). The flap valve (7) is connected to the spherical mounting shell (1). The flap valve (7) is located at the bottom of the spherical mounting shell (1). The detection device (5) includes a detection body (51), a pusher baffle (53) and a detection component (54). The detection body (51) is provided with a detection groove (511), and the pusher baffle (53) and the detection groove (511) are slidably connected. The detection groove (511) is provided with a plurality of detection through holes (513), and the detection groove (511) is provided with a plurality of connecting grooves (514). The connecting grooves (514) and the detection through holes (513) are connected, and the detection component (54) is placed in the connecting groove (514). The detection component (54) includes a detection plate (541), an elastic sheet (542), an electromagnetic coil (543), and a magnet (544). The pusher baffle (53) and the detection plate (541) are fastened together. The end of the detection plate (541) is fastened together with the elastic sheet (542). The other end of the elastic sheet (542) is slidably connected to the detection plate (541). The electromagnetic coil (543) is located below the elastic sheet (542). The electromagnetic coil (543) and the elastic sheet (542) are fastened together. The magnet (544) is placed inside the electromagnetic coil (543). The magnet (544) and the detection plate (541) are fastened together. The electromagnetic coil (543) and the crushing motor (41) are electrically connected.
2. The spherical high-efficiency wire rod mixer according to claim 1, characterized in that: The stirring device (3) includes a stirring motor (31), a stirring shaft (32), a first connecting rod (33), an upper helical ribbon (34), and a lower helical ribbon (35). The stirring motor (31) is fastened to the sphere mounting shell (1). The stirring shaft (32) is placed inside the sphere mounting shell (1). The output end of the stirring motor (31) is fastened to the stirring shaft (32). The first connecting rod (33) is fastened to the stirring shaft (32). There are several first connecting rods (33). Several first connecting rods (33) are fastened to the upper helical ribbon (34) and the lower helical ribbon (35) respectively. The stirring shaft (32) is connected to the detection device (5).
3. The spherical high-efficiency wire rod mixer according to claim 2, characterized in that: The upper spiral (34) gradually decreases in diameter as it moves upward along the center line of the stirring shaft (32), and the width of the upper spiral (34) gradually increases as it moves upward along the center line of the stirring shaft (32). The lower spiral (35) gradually increases in diameter as it moves downward along the center line of the stirring shaft (32), and the width of the lower spiral (35) gradually increases as it moves downward along the center line of the stirring shaft (32).
4. A spherical high-efficiency wire rod mixer according to claim 3, characterized in that: There is a gap between the outermost side of the upper spiral ribbon (34) and the lower spiral ribbon (35) and the inner wall of the spherical mounting shell (1), and the outermost side of the upper spiral ribbon (34) and the lower spiral ribbon (35) is provided with a cutter.
5. A spherical high-efficiency wire rod mixer according to claim 4, characterized in that: The crushing device (4) includes a crushing motor (41) and a crushing cutter (42). The crushing motor (41) is fastened to the ball mounting shell (1). The crushing cutter (42) is fastened to the output end of the crushing motor (41). The crushing cutter (42) is placed inside the ball mounting shell (1) and between the upper helical ribbon (34) and the lower helical ribbon (35).
6. A spherical high-efficiency wire rod mixer according to claim 5, characterized in that: The detection device (5) further includes a drive motor (52) and a screw (55). The detection body (51) and the stirring shaft (32) are rotatably connected. The detection body (51) is located between the upper spiral ribbon (34) and the lower spiral ribbon (35). The detection body (51) is also provided with a first mounting cavity (512). The detection groove (511) and the first mounting cavity (512) are connected. The drive motor (52) is placed in the first mounting cavity (512). The screw (55) is placed in the first mounting cavity (512). The drive motor (52) and the first mounting cavity (512) are fastened together. The output end of the drive motor (52) and the screw (55) are fastened together. The end of the screw (55) away from the drive motor (52) is fastened together with the first mounting cavity (512). The pusher baffle (53) and the screw (55) are threaded together.
Citation Information
Patent Citations
Ice cream raw material variable-speed pulping and homogenizing device and homogenizing method
CN120022779A
Vertical mixer
CN214076419U