Powder mixing device based on rapid discharging

By leveraging the synergistic effect of components such as the reaction stirring mechanism and the peristaltic stopping component, the problems of uneven powder mixing and agglomeration are solved, achieving uniform mixing and efficient screening of powder and water, thus improving mixing efficiency and production quality.

CN117000084BActive Publication Date: 2025-12-12WUXI JUXIN TECH CO LTD
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Patent Information

Application Number
CN202311172012.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-12
Publication Date
2025-12-12
Estimated Expiration
2043-09-12

AI Technical Summary

Technical Problem

Existing powder mixing devices cannot ensure that multiple powders are fully and evenly mixed during the mixing process, resulting in agglomerated particles flowing out through the feed port, requiring manual sieving and reducing mixing efficiency.

Method used

A powder mixing device based on rapid feeding is adopted. Through the synergistic action of components such as reaction stirring mechanism, peristaltic stopping component and telescopic cylinder, the uniform mixing and sieving of powder is achieved, ensuring that the powder and water are mixed evenly and avoiding the formation of clumps.

Benefits of technology

It improves the efficiency and quality of powder mixing, reduces the workload of manual sieving, and enhances the stability and production efficiency of mixing.

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Patent Text Reader

Abstract

The application belongs to the technical field of powder mixing, and particularly relates to a powder mixing device based on rapid discharging. In use, the existing mixing device cannot ensure that multiple powders are fully and uniformly mixed, so that part of the agglomerates will flow out through the discharging port together with the mixed powders, and the two will be mixed together, which requires manual screening in the later stage and reduces the efficiency of powder mixing. The device comprises a bottom plate, a hinged base is fixedly installed on the bottom plate, and the hinged base is connected and arranged with an angle distance and inclined unit. The angle distance and inclined unit comprises a hinged rotating shaft arranged on the hinged base, hinged irregular blocks are fixedly installed on both ends of the hinged rotating shaft, and the hinged irregular blocks are slidingly connected and arranged with a hinged irregular rod. Through the movement of the irregular filter plate driven by the movement mechanism, the unqualified powder can be screened when the mixed powder passes through the irregular filter plate, and the screening operation is strengthened and the mixing efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of powder mixing, and particularly relates to a powder mixing device based on rapid discharging. BACKGROUND

[0002] A mixer is a mechanical device for uniformly mixing two or more materials by mechanical force and gravity. During the mixing process, the surface area of the materials can be increased to promote chemical reactions and accelerate physical changes, thereby mixing raw materials to prepare chemical fibers. Powder is a collection of a large number of small particle substances, and the characteristics of powder are as follows: a large number of discontinuous surfaces, a large specific surface area, and a large number of small particle substances. Powder mixing refers to a process of uniformly mixing two or more different components of powder through mutual diffusion, convection, and shearing between powder particles.

[0003] Due to different characteristics of different powders, a small amount of water needs to be added for mixing some powders. However, the existing mixing device cannot ensure that the powders are fully and uniformly mixed when in use, so that part of the lumps will flow out of the discharging port together with the mixed powders, and the two will be mixed together, which requires manual screening in the later stage, thereby reducing the efficiency of powder mixing. SUMMARY

[0004] In view of the above problems, the application provides a powder mixing device based on rapid discharging to overcome the defects of the prior art.

[0005] To achieve the above object, the application provides the following technical scheme: a powder mixing device based on rapid discharging, comprising a bottom plate, a hinged base fixedly installed on the bottom plate, and an angle distance inclined unit connected and arranged with the hinged base.

[0006] The angle distance inclined unit comprises a hinged shaft provided on the hinged base, hinged blocks fixedly installed on both ends of the hinged shaft, a hinged eccentric rod slidingly connected and arranged with the hinged blocks, and both ends of the hinged eccentric rod fixedly connected and arranged with the bottom plate. A hinged spring is sleeved on the hinged eccentric rod, one end of the hinged spring is fixedly connected and arranged with the bottom plate, and the other end is fixedly connected and arranged with the hinged block. A hinged square block is installed on the hinged shaft, a telescopic cylinder is fixedly installed on the hinged square block, an extension square seat is fixedly installed on the output end of the telescopic cylinder, an extension rotating rod is arranged on the extension square seat, the extension rotating rod is connected and arranged with the extension square block, the extension square block is connected and arranged with a mixing box, an installation plate is arranged on the mixing box, the installation plate and the mixing box are connected and arranged through bolts, a driving motor is fixedly installed on the installation plate, and the driving motor is connected and arranged with a counterforce stirring mechanism.

[0007] Preferably, the counterforce stirring mechanism comprises a driving gear arranged on the output end of the driving motor, the driving gear is connected with a matching gear, the matching gear is provided with a matching rotating shaft, the matching rotating shaft is connected with a linkage gear through the mixing box, the linkage gear is connected with an auxiliary gear, the auxiliary gear is provided with an auxiliary rotating shaft, the auxiliary rotating shaft and the matching rotating shaft are connected with an auxiliary bearing arranged on the mixing box; the auxiliary rotating shaft and the matching rotating shaft are provided with spiral stirring blades; the matching rotating shaft is provided with an auxiliary pulley, and the auxiliary pulley is connected with the worm power stopping assembly.

[0008] Preferably, the mixing box is symmetrically provided with a matching square base, the matching square base is provided with an inclined rotating shaft, the inclined rotating shaft is provided with a matching irregular block, the matching irregular block is connected with a matching irregular rod in a sliding mode, and the two ends of the matching irregular rod are fixedly connected with a matching base; the matching irregular rod is provided with a matching spring, one end of the matching spring is fixedly connected with the matching base, and the other end is fixedly connected with the matching irregular block; the inclined rotating shaft is connected with a matching square column fixedly arranged on the bottom plate, and the matching square column is fixedly connected with the matching base; the matching square column is fixedly provided with a linkage fixed seat, and the linkage fixed seat is connected with the rotating opening moving assembly.

[0009] Preferably, the rotating opening moving assembly comprises a rope arranged on the linkage fixed seat, and the rope is connected with a winding wheel through a fixed pulley; the fixed pulley is provided with a fixed rotating shaft, and the winding wheel is provided with a winding rotating shaft; the fixed rotating shaft and the winding rotating shaft are drivingly connected with a winding base fixedly arranged on the mixing box; the winding rotating shaft passes through a fixed base fixedly arranged on the mixing box and is connected with a winding irregular block, the winding irregular block is connected with a winding irregular rod in a sliding mode, and the two ends of the winding irregular rod are fixedly connected with an auxiliary base fixedly arranged on the fixed base; the winding irregular rod is provided with a winding spring, one end of the winding spring is fixedly connected with the auxiliary base, and the other end is fixedly connected with the winding irregular block; the winding rotating shaft is provided with a linkage block, the linkage block is provided with a cover square plate, and the cover square plate is connected with an inclined groove arranged on the mixing box.

[0010] Preferably, the worm power stopping assembly comprises a driving transmission belt arranged on the auxiliary pulley, the driving transmission belt is connected with a linkage pulley, the linkage pulley is provided with a linkage rotating shaft, one end of the linkage rotating shaft is connected with a linkage bevel gear, the linkage bevel gear is connected with the moving driving mechanism, and the other end of the linkage rotating shaft passes through an auxiliary base arranged on the mixing box and a linkage box and is connected with a stopping irregular disc, the stopping irregular disc is provided with a plurality of stopping rotating shafts, the stopping rotating shafts are provided with stopping circular wheels, the stopping circular wheels are connected with stopping pipelines, one end of the stopping pipelines is connected with a water storage tank arranged on the mixing box, and the other end is connected with a water distribution box arranged in the mixing box.

[0011] Preferably, the driving mechanism comprises a driving bevel gear connected with the linkage bevel gear, a driving rotating shaft is installed on the driving bevel gear, the driving rotating shaft is connected with a driving circular plate through a brake base arranged on the hybrid box; a driving pulley is arranged on the driving rotating shaft, the driving pulley is connected with a driven pulley through a driven transmission belt, and the driven pulley is connected with a complex rotating control unit.

[0012] Preferably, the driving circular plate is connected with a driving square plate, the driving square plate is symmetrically provided with driving rods, the driving rods are connected with a brake circular plate through a complex plate, a driving spring is arranged on the driving rod, one end of the driving spring is fixedly connected with the brake circular plate, and the other end is fixedly connected with the complex plate.

[0013] Preferably, the complex plate is connected with a complex filter plate, the complex filter plate is symmetrically provided with guide blocks, the guide blocks are slidably connected with guide grooves arranged on the hybrid box, guide rods are arranged in the guide grooves, a guide spring is arranged on the guide rod, one end of the guide spring is fixedly connected with the guide groove, and the other end is fixedly connected with the guide block; the complex filter plate is connected with a receiving box arranged on the bottom plate.

[0014] Preferably, the complex rotating control unit comprises a driven rotating shaft arranged on the driven pulley, one end of the driven rotating shaft is drivingly connected with a driven base arranged on the hybrid box, the other end is connected with a complex disc, the complex disc is provided with a complex hetero-rod, the complex hetero-rod is connected with a distance groove arranged on a distance block, the distance block is symmetrically provided with a link rod on one side, and the link rod is provided with a link spring.

[0015] Preferably, one end of the link spring is fixedly connected with the hybrid box, the other end is fixedly connected with the distance block, the other side is provided with a delay rack, the delay rack is connected with a delay gear, the delay gear is provided with a delay rotating shaft, one end of the delay rotating shaft is connected with the hybrid box, the other end is connected with a high-pressure nozzle, and the high-pressure nozzle and the water distribution box are connected through a distribution pipeline.

[0016] Compared with the prior art, the beneficial effects of the present application are:

[0017] (1) The linkage bevel gear meshes with the driving bevel gear when rotating, so that the driving circular plate on the driving shaft rotates and reciprocally contacts the driving square plate, so that the driving square plate moves in the reciprocating plate through the driving rod, the driving spring is in a buffering state, so that the reciprocating plate moves and drives the reciprocating filter plate to move, so that the reciprocating filter plate moves in the guide groove through the guide block, so that the guide spring on the guide rod is in a buffering state, so that when the driving circular plate no longer contacts the driving square plate, the driving square plate is reset through the reset of the driving spring, so that the reciprocating plate moves through the reset of the guide spring, so that the reciprocating filter plate moves back and forth, so that the mixed powder can be screened when passing through the reciprocating filter plate, and the screening operation is strengthened, and the vibration effect of the reciprocating filter plate is strengthened through the elastic force brought by the reset of the driving square plate, so that the mixing efficiency is improved;

[0018] (2) After a plurality of powders are sent into the mixing box through the feed inlet, the driving motor is started to drive the driving gear on the output end to mesh with the auxiliary gear and rotate, so that the auxiliary gear on the auxiliary shaft rotates in the opposite direction relative to the driving shaft, and the two spiral stirring fans rotate in the opposite direction to stir the powders in the mixing box, thereby improving the mixing efficiency of the powders;

[0019] (3) The auxiliary pulley is driven to rotate by the driving transmission belt when the driving shaft rotates, so that the reciprocating disc on the linkage shaft rotates and drives a plurality of reciprocating circular wheels to rotate. An elongated rod on the reciprocating circular wheel contacts the reciprocating pipe and is pressed against the reciprocating pipe to rotate. The operator places the required amount of water in the water storage tank in advance, and the reciprocating circular wheel presses the reciprocating pipe to move forward, so that the water flow is forced to move forward. The hose at the back is released and forms a negative pressure under the action of elasticity, generating a large suction force. The water flow is sucked into the reciprocating pipe through the reciprocating pipe placed in the water storage tank, and the above operation is repeated to achieve the effect of quantitative water flow delivery. The absorbed fluid is delivered to the water distribution box through the reciprocating control unit to achieve the effect of quantitative spraying. Since only the water flow needs to be mixed with the hose, pollution is avoided, the quality requirements of the powder and water mixture are ensured, the powder and water can be mixed uniformly, and the occurrence of clumps is avoided, thereby improving the mixing efficiency;

[0020] (4) When the counterforce stirring mechanism completes the mixing of the several powders in the mixing box, the operator starts the telescopic cylinder, and the output end of the telescopic cylinder drives the mixing box to rotate around the inclined rotating shaft on the matching block base as the center and limit the rotation of the matching block on the matching block column, so that the matching spring is in a buffering state, and the mixing box at the inclination angle also drives the hinged block on the bottom surface of the telescopic cylinder to rotate through the hinged rotating shaft, so that the hinged block limits the rotation in the hinged block rod, so that the hinged spring is in a buffering state, which improves the stability of the mixing box when adjusting the angle, and then the inclination angle of the mixing box is adjusted, and the mixed powders are concentrated in one block and flow into the receiving box through the tilting groove, avoiding the mixed powders remaining in the mixing box and needing manual cleaning later, reducing the working intensity of the operator and improving the efficiency of powder mixing;

[0021] (5) When the driving rotating shaft rotates, it drives the driven pulley to rotate through the driving pulley and the driven transmission belt, so that the driven rotating shaft rotates, and the driven block moves in the mixing box through the cooperation of the driven block and the distance groove through the distance link, so that the distance spring is in a buffering state, and the extension rack reciprocatingly engages the extension gear, so that the high-pressure nozzle on the extension rotating shaft reciprocatingly rotates, thereby adjusting the angle of the high-pressure nozzle, improving the range of powder spraying, avoiding long-time spraying at one place to cause powder caking, and at the same time, the water in the uniform delivery assembly is delivered to the water distribution box through the distribution pipeline and then to the high-pressure nozzle, thereby quantitatively spraying the powder, avoiding excessive or insufficient water to affect the mixing state, improving the mixing efficiency and the production quality;

[0022] (6) When the mixing box adjusts the angle, the linkage base, the rope and the fixed pulley are used to rotate the winding reel, so that the winding rotating shaft rotates in the fixed base, and the winding block limits the rotation in the winding rod, so that the winding spring is in a buffering state, and the cover block rotates through the winding rotating shaft, so that the mixing box rotates the cover block when it is inclined, so that the cover block is no longer connected to the tilting groove, so that the several powders in the inclined mixing box are mixed through inertia and other factors, and then the mixed powders enter the upper side of the driven filter plate through the tilting groove, and the qualified powders flow into the receiving box through the screening of the former, avoiding the mixing of unqualified powder materials with qualified products during powder mixing, avoiding the need for screening operation by the operator later, thereby improving the efficiency of powder mixing. BRIEF DESCRIPTION OF DRAWINGS

[0023] The accompanying drawings are included to provide a further understanding of the application, and constitute a part of the specification, together with the embodiments of the application, to explain the application, and do not constitute a limitation of the application.

[0024] In the drawings:

[0025] Figure 1 The whole structure of the present application is shown schematically;

[0026] Figure 2 The structure of the hinge block of the present application is shown schematically;

[0027] Figure 3 The structure of the counterforce stirring mechanism of the present application is shown schematically;

[0028] Figure 4 The structure of the transfer port moving assembly of the present application is shown schematically;

[0029] Figure 5 The structure of the linkage seat fixing of the present application is shown schematically;

[0030] Figure 6 The structure of the different moving filter plate of the present application is shown schematically;

[0031] Figure 7 The structure of the high-pressure nozzle of the present application is shown schematically;

[0032] Figure 8 The structure of the worm power stopping assembly of the present application is shown schematically;

[0033] Figure 9 The structure of the driven base of the present application is shown schematically;

[0034] Figure 10 The structure of the moving driving mechanism of the present application is shown schematically;

[0035] Figure: 1, base plate; 2, hinged base; 3, hinged rotating shaft; 4, hinged irregular block; 5, hinged irregular rod; 6, hinged spring; 7, hinged square block; 8, telescopic air cylinder; 9, telescopic square seat; 10, telescopic rotating rod; 11, telescopic square block; 12, mixing box; 13, mounting plate; 14, bolt; 15, drive motor; 16, drive gear; 17, matching gear; 18, matching rotating shaft; 19, linkage gear; 20, auxiliary gear; 21, auxiliary rotating shaft; 22, auxiliary bearing; 23, spiral stirring fan blade; 24, auxiliary pulley; 25, matching square seat; 26, matching rotating shaft; 27, matching irregular block; 28, matching irregular rod; 29, matching base; 30, matching spring; 31, matching square column; 32, linkage fixed seat; 33, rope; 34, fixed pulley; 35, winding wheel; 36, fixed rotating shaft; 37, winding rotating shaft; 38, winding base; 39, fixed base; 40, winding irregular block; 41, winding irregular rod; 42, auxiliary base; 43, winding spring; 44, linkage square block; 45, cover square plate; 46, tilting groove; 47, main drive belt; 48, linkage pulley; 49, linkage rotating shaft; 50, linkage bevel gear; 51, approaching base; 52, linkage box; 53, resting irregular disc; 54, resting rotating shaft; 55, resting circular wheel; 56, resting pipeline; 57, water storage tank; 58, water distribution box; 59, approaching bevel gear; 60, approaching rotating shaft; 61, brake base; 62, touch circular plate; 63, main pulley; 64, driven transmission belt; 65, driven pulley; 66, touch square plate; 67, touch rod; 68, return plate; 69, brake circular plate; 70, touch spring; 71, irregular filter plate; 72, guide block; 73, guide groove; 74, guide rod; 75, guide spring; 76, cash box; 77, driven rotating shaft; 78, driven base; 79, return circular disc; 80, return irregular rod; 81, distance block; 82, distance groove; 83, hitch rod; 84, hitch spring; 85, extension rack; 86, extension gear; 87, extension rotating shaft; 88, high-pressure spray head; 89, distribution pipeline. DETAILED DESCRIPTION

[0036] 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 of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.

[0037] Embodiment, by Figures 1 to 10The present application comprises a base plate 1, a hinged base 2 fixedly installed on the base plate 1, an angle distance and inclination unit connected with the hinged base 2, a hinged rotating shaft 3 provided on the hinged base 2, hinged irregular blocks 4 fixedly installed on both ends of the hinged rotating shaft 3, the hinged irregular blocks 4 being slidably connected with hinged irregular rods 5, both ends of the hinged irregular rods 5 being fixedly connected with the base plate 1, a hinged spring 6 sleeved on the hinged irregular rods 5, one end of the hinged spring 6 being fixedly connected with the base plate 1 and the other end being fixedly connected with the hinged irregular blocks 4, a hinged square block 7 installed on the hinged rotating shaft 3, a telescopic air cylinder 8 fixedly installed on the hinged square block 7, a telescopic square base 9 fixedly installed on the output end of the telescopic air cylinder 8, a telescopic rotating rod 10 provided on the telescopic square base 9, the telescopic rotating rod 10 being connected with a telescopic square block 11, the telescopic square block 11 being connected with a mixing box 12, an installation plate 13 provided on the mixing box 12, the installation plate 13 being connected with the mixing box 12 through bolts 14, a driving motor 15 fixedly installed on the installation plate 13, the driving motor 15 being connected with a counterforce stirring mechanism, symmetrical mixing square bases 25 installed on the mixing box 12, inclined rotating shafts 26 provided on the mixing square bases 25, mixing irregular blocks 27 installed on the inclined rotating shafts 26, the mixing irregular blocks 27 being slidably connected with mixing irregular rods 28, both ends of the mixing irregular rods 28 being fixedly connected with mixing bases 29, mixing springs 30 sleeved on the mixing irregular rods 28, one end of the mixing springs 30 being fixedly connected with the mixing bases 29 and the other end being fixedly connected with the mixing irregular blocks 27, the inclined rotating shafts 26 being connected with mixing square columns 31 fixedly provided on the base plate 1, the mixing square columns 31 being fixedly connected with the mixing bases 29, and linkage fixed bases 32 fixedly installed on the mixing square columns 31, the linkage fixed bases 32 being connected with rotating manufacturing port assemblies.

[0038] When the counterforce stirring mechanism completes the mixing of the powder in the mixing box 12, the operator starts the telescopic air cylinder 8, the telescopic square block 11 on the output end of the telescopic air cylinder 8 drives the mixing box 12 to rotate around the inclined rotating shaft 26 provided on the mixing square base 25 as the center and is limited on the mixing square column 31, the mixing irregular block 27 is limited to rotate in the mixing irregular rod 28, the mixing spring 30 is in a buffering state, the mixing box 12 is also driven to rotate when the inclination angle is changed, the hinged square block 7 on the bottom surface of the telescopic air cylinder 8 is rotated through the hinged rotating shaft 3, the hinged irregular block 4 is limited to rotate in the hinged irregular rod 5, the hinged spring 6 is in a buffering state, the stability of the mixing box 12 when the angle is adjusted is improved, the mixing box 12 is inclined, the mixed powder is concentrated in one block and flows into the receiving box 76 through the tilting groove 46, the mixed powder is prevented from remaining in the mixing box 12 and needs to be cleaned manually later, the working intensity of the operator is reduced, and the efficiency of powder mixing is improved.

[0039] The counterforce stirring mechanism of the embodiment comprises a driving gear 16 arranged on the output end of the driving motor 15, the driving gear 16 is engaged with a matching gear 17, the matching gear 17 is provided with a matching rotating shaft 18, the matching rotating shaft 18 penetrates through the mixing box 12 and is connected with a linkage gear 19, the linkage gear 19 is engaged with an auxiliary gear 20, the auxiliary gear 20 is provided with an auxiliary rotating shaft 21, the auxiliary rotating shaft 21 and the matching rotating shaft 18 are connected with an auxiliary bearing 22 arranged on the mixing box 12; the auxiliary rotating shaft 21 and the matching rotating shaft 18 are provided with spiral stirring vanes 23; the matching rotating shaft 18 is provided with an auxiliary pulley 24, the auxiliary pulley 24 is connected with a creep stopping assembly;

[0040] After a plurality of powders are sent into the mixing box 12 through the feeding port, the driving motor 15 is started to drive the driving gear 16 on the output end to rotate the matching gear 17, which drives the linkage gear 19 on the matching rotating shaft 18 to rotate the auxiliary gear 20, so that the auxiliary rotating shaft 21 rotates reversely relative to the matching rotating shaft 18, and the spiral stirring vanes 23 arranged on the two rotating shafts rotate reversely, thereby stirring the powders in the mixing box 12, and improving the mixing efficiency of the powders.

[0041] The rotating and stirring assembly of the embodiment comprises a rope 33 arranged on the linkage fixed seat 32, the rope 33 is connected with a winding wheel 35 through a fixed pulley 34; the fixed pulley 34 is provided with a fixed rotating shaft 36, the winding wheel 35 is provided with a winding rotating shaft 37, the fixed rotating shaft 36 and the winding rotating shaft 37 are drivingly connected with a winding base 38 fixedly arranged on the mixing box 12; the winding rotating shaft 37 penetrates through a fixed base 39 fixedly arranged on the mixing box 12 and is connected with a winding block 40, the winding block 40 is slidingly connected with a winding rod 41, the two ends of the winding rod 41 are fixedly connected with an auxiliary base 42 fixedly arranged on the fixed base 39; the winding rod 41 is provided with a winding spring 43, one end of the winding spring 43 is fixedly connected with the auxiliary base 42, and the other end is fixedly connected with the winding block 40; the winding rotating shaft 37 is provided with a linkage block 44, the linkage block 44 is provided with a cover block 45, and the cover block 45 is connected with an inclination groove 46 arranged on the mixing box 12;

[0042] When the hybrid box 12 is adjusted in angle, the winding wheel 35 is rotated through the linkage of the linkage seat 32, the rope 33 and the fixed pulley 34, the winding shaft 37 is rotated in the fixed base 39, the winding eccentric block 40 is limited to rotate in the winding eccentric rod 41, the winding spring 43 is in the buffering state, the cover square plate 45 is rotated through the winding shaft 37, the hybrid box 12 is rotated when inclined, the cover square plate 45 is no longer connected to the inclined groove 46, the mixed powder in the hybrid box 12 after inclined is set through the inertia and other factors, and then the mixed powder is entered into the upper of the eccentric filter plate 71 through the inclined groove 46, the qualified powder is flowed into the cash box 76 through the screening of the former, the caking body or unqualified powder material is avoided to be mixed with the qualified product during the powder mixing, the screening operation of the operator is avoided in the later period, and thus the efficiency of the powder mixing is improved.

[0043] The worm power stopping assembly of the embodiment comprises a driving belt 47 arranged on the auxiliary pulley 24, the driving belt 47 is connected with a linkage pulley 48, the linkage pulley 48 is installed with a linkage shaft 49, one end of the linkage shaft 49 is connected with a linkage bevel gear 50, the linkage bevel gear 50 is connected with a driven displacement mechanism, the other end of the linkage shaft 49 passes through a driven base 51 and a linkage box 52 arranged on the hybrid box 12 and is connected with a stopping eccentric disc 53, the stopping eccentric disc 53 is installed with a plurality of stopping shafts 54, the stopping shafts 54 are arranged with a stopping circular wheel 55, the stopping circular wheel 55 is connected with a stopping pipeline 56, one end of the stopping pipeline 56 is connected with a water storage tank 57 arranged on the hybrid box 12, and the other end of the stopping pipeline 56 is connected with a water distribution box 58 arranged in the hybrid box 12.

[0044] When the auxiliary rotating shaft 18 rotates, the auxiliary pulley 24 rotates, and drives the linkage pulley 48 to rotate through the driving transmission belt 47, so that the linkage rotating shaft 49 rotates, and drives the plurality of auxiliary circular wheels 55 to rotate. The auxiliary circular wheel 55 is provided with an elongated rod in contact with the auxiliary pipeline 56, so that the auxiliary pipeline 56 is extruded and rotates. The operator places the water required for this mixing into the water storage tank 57 in advance, and the water flow is forced to move forward through the extrusion of the auxiliary pipeline 56 by the auxiliary circular wheel 55. After the hose at the rear is released, a negative pressure is formed under the action of elasticity, a large suction force is generated, and the water flow is sucked into the auxiliary pipeline 56 through the auxiliary pipeline 56 placed in the water storage tank 57. The above operation is repeated to achieve the effect of quantitative water flow delivery. The absorbed fluid is delivered to the water distribution box 58, and the quantitative spraying effect is achieved through the auxiliary control unit. Since the water flow required for mixing only contacts the hose, pollution is avoided, the quality requirements of the powder and water during mixing are ensured, the powder and water can be uniformly mixed, the occurrence of clumps is avoided, and the mixing efficiency is improved.

[0045] The driving driving mechanism of the embodiment includes a driving bevel gear 59 connected with the linkage bevel gear 50, a driving rotating shaft 60 installed on the driving bevel gear 59, and a driving circular plate 62 connected with a brake base 61 provided on the mixing box 12 and penetrated by the driving rotating shaft 60. The driving rotating shaft 60 is provided with a driving pulley 63 connected with a driven pulley 65 through a driven transmission belt 64, and the driven pulley 65 is connected with the auxiliary control unit. The driving circular plate 62 is connected with a driving square plate 66, the driving square plate 66 is symmetrically provided with a driving rod 67, the driving rod 67 penetrates the auxiliary plate 68 and is connected with the brake circular plate 69, the driving rod 67 is provided with a driving spring 70, one end of the driving spring 70 is fixedly connected with the brake circular plate 69, and the other end is fixedly connected with the auxiliary plate 68. The auxiliary plate 68 is connected with the auxiliary filter plate 71, the auxiliary filter plate 71 is symmetrically provided with a guide block 72, the guide block 72 is slidably connected with a guide groove 73 provided on the mixing box 12, the guide groove 73 is provided with a guide rod 74, the guide rod 74 is provided with a guide spring 75, one end of the guide spring 75 is fixedly connected with the guide groove 73, and the other end is fixedly connected with the guide block 72. The auxiliary filter plate 71 is connected with the cash box 76 provided on the bottom plate 1.

[0046] The linkage bevel gear 50 meshes with the driven bevel gear 59 when rotating, so as to rotate the driven round plate 62 on the driven rotating shaft 60 and reciprocatingly contact the driven square plate 66, so as to make the driven square plate 66 move in the driven plate 68 through the driven rod 67, the driven spring 70 is in a buffering state, so as to make the driven plate 68 move and drive the driven filter plate 71 to move, so as to make the driven filter plate 71 move in the guide groove 73 through the guide block 72, so as to make the guide spring 75 on the guide rod 74 in a buffering state, so that when the driven round plate 62 no longer contacts the driven square plate 66, the driven square plate 66 is reset through the reset of the driven spring 70, so that the driven plate 68 moves through the reset of the guide spring 75, so that the driven filter plate 71 moves back and forth, so that the mixed powder can be screened when passing through the driven filter plate 71, and the operation of screening is strengthened, and the vibration effect of the driven filter plate 71 is strengthened through the elastic force brought by the reset of the driven square plate 66, so as to improve the mixing efficiency.

[0047] The driven rotating shaft 77 is provided on the driven pulley 65, one end of the driven rotating shaft 77 is in transmission connection with the driven base 78 provided on the mixing box 12, the other end is connected with the driven disc 79, the driven disc 79 is provided with the driven eccentric rod 80, the driven eccentric rod 80 is connected with the driven groove 82 provided on the eccentric block 81, the eccentric block 81 is symmetrically provided with the link rod 83 on one side, the link spring 84 is sleeved on the link rod 83; one end of the link spring 84 is fixedly connected with the mixing box 12, the other end is fixedly connected with the eccentric block 81, the other side is provided with the extension rack 85, the extension rack 85 is in meshing connection with the extension gear 86, the extension gear 86 is provided with the extension rotating shaft 87, one end of the extension rotating shaft 87 is connected with the mixing box 12, the other end is connected with the high-pressure nozzle 88, the high-pressure nozzle 88 and the water distribution box 58 are connected through the distribution pipeline 89;

[0048] The driven rotating shaft 77 is provided on the driven pulley 65, one end of the driven rotating shaft 77 is in transmission connection with the driven base 78 provided on the mixing box 12, the other end is connected with the driven disc 79, the driven disc 79 is provided with the driven eccentric rod 80, the driven eccentric rod 80 is connected with the driven groove 82 provided on the eccentric block 81, the eccentric block 81 is symmetrically provided with the link rod 83 on one side, the link spring 84 is sleeved on the link rod 83; one end of the link spring 84 is fixedly connected with the mixing box 12, the other end is fixedly connected with the eccentric block 81, the other side is provided with the extension rack 85, the extension rack 85 is in meshing connection with the extension gear 86, the extension gear 86 is provided with the extension rotating shaft 87, one end of the extension rotating shaft 87 is connected with the mixing box 12, the other end is connected with the high-pressure nozzle 88, the high-pressure nozzle 88 and the water distribution box 58 are connected through the distribution pipeline 89;

[0049] It has to be noted that, in the present document, the terms "first", "second", etc. merely serve to identify different entities or actions from each other, without necessarily requiring or implying any actual relationship or order between these entities or actions. Moreover, the terms "comprises", "comprising", or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.

[0050] While embodiments of the present application have been shown and described, it is to be understood that various modifications, substitutions, combinations, and variations of the embodiments can be undertaken without departing from the spirit and scope of the present application, which is defined by the appended claims and their equivalents.

Claims

1. A powder mixing device based on rapid feeding, characterized in that: Includes a base plate (1), on which a hinge base (2) is fixedly installed, and the hinge base (2) is connected to the angle-distance oblique unit; The angular offset tilting unit includes a hinge shaft (3) mounted on a hinge base (2), hinge blocks (4) fixedly mounted on both ends of the hinge shaft (3), hinge blocks (4) and hinge rods (5) slidably connected, and the two ends of the hinge rods (5) are fixedly connected to the base plate (1); a hinge spring (6) is sleeved on the hinge rods (5), one end of the hinge spring (6) is fixedly connected to the base plate (1), and the other end is fixedly connected to the hinge blocks (4); a hinge block (7) is mounted on the hinge shaft (3), and a hinge block (7) is fixedly mounted on the hinge block (7). A telescopic cylinder (8) is fixedly installed. A stretching seat (9) is fixedly installed on the output end of the telescopic cylinder (8). A stretching rotating rod (10) is provided on the stretching seat (9). The stretching rotating rod (10) is connected to the stretching block (11). The stretching block (11) is connected to the mixing box (12). A mounting plate (13) is provided on the mixing box (12). The mounting plate (13) is connected to the mixing box (12) by bolts (14). A drive motor (15) is fixedly installed on the mounting plate (13). The drive motor (15) is connected to the reaction stirring mechanism. The hybrid box (12) is symmetrically equipped with a distribution seat (25), the distribution seat (25) is provided with a slanted rotating shaft (26), the slanted rotating shaft (26) is equipped with a distribution block (27), the distribution block (27) is slidably connected to the distribution rod (28), and both ends of the distribution rod (28) are fixedly connected to the distribution base (29); the distribution rod (28) is sleeved with a distribution spring (30), one end of the distribution spring (30) is fixedly connected to the distribution base (29), and the other end is fixedly connected to the distribution block (27); the slanted rotating shaft (26) is connected to a distribution column (31) fixedly provided on the base plate (1), and the distribution column (31) is fixedly connected to the distribution base (29); a linkage seat (32) is fixedly installed on the distribution column (31), and the linkage seat (32) is connected to the rotating port assembly; The conversion assembly includes a rope (33) mounted on a linkage base (32), the rope (33) being connected to a winding reel (35) via a fixed pulley (34); a fixed rotating shaft (36) is mounted on the fixed pulley (34), and a winding rotating shaft (37) is mounted on the winding reel (35); the fixed rotating shaft (36) and the winding rotating shaft (37) are connected to a winding base (38) fixed on the mixing box (12); the winding rotating shaft (37) passes through the fixed rotating base (39) fixed on the mixing box (12) and is connected to a winding block (40); the winding block (40) is connected to the winding block (40). The rotating shaft (37) is slidably connected to the rotating rod (41), and the two ends of the rotating rod (41) are fixedly connected to the auxiliary base (42) fixedly provided on the fixed base (39); a rotating spring (43) is sleeved on the rotating rod (41), one end of the rotating spring (43) is fixedly connected to the auxiliary base (42), and the other end is fixedly connected to the rotating block (40); a linkage block (44) is installed on the rotating shaft (37), and a cover plate (45) is provided on the linkage block (44), and the cover plate (45) is connected to the tilting groove (46) provided on the mixing box (12).

2. The powder mixing device based on rapid feeding according to claim 1, characterized in that: The reaction force agitation mechanism includes a drive gear (16) disposed on the output end of the drive motor (15), the drive gear (16) meshing with a drive gear (17), a drive shaft (18) mounted on the drive gear (17), the drive shaft (18) passing through the mixing box (12) and connected to a linkage gear (19), the linkage gear (19) meshing with an auxiliary gear (20), an auxiliary shaft (21) mounted on the auxiliary gear (20), the auxiliary shaft (21) and the drive shaft (18) being connected to an auxiliary bearing (22) provided on the mixing box (12); a spiral agitator blade (23) is mounted on the auxiliary shaft (21) and the drive shaft (18); an auxiliary pulley (24) is mounted on the drive shaft (18), and the auxiliary pulley (24) is connected to a creeping stop assembly.

3. The powder mixing device based on rapid feeding according to claim 2, characterized in that: The creeping perching assembly includes an active drive belt (47) mounted on an auxiliary pulley (24), the active drive belt (47) being connected to a linkage pulley (48), a linkage shaft (49) mounted on the linkage pulley (48), one end of the linkage shaft (49) being connected to a linkage bevel gear (50), the linkage bevel gear (50) being connected to a directional driving mechanism; the other end passing through a directional base (51) and a linkage box (52) on the mixing box (12) and being connected to a perching disc (53), a plurality of perching shafts (54) being mounted on the perching shafts (54), perching wheels (55) being mounted on the perching wheels (55), perching pipes (56) being connected to a perching pipe (56), one end of the perching pipe (56) being connected to a water storage tank (57) on the mixing box (12), and the other end being connected to a water distribution box (58) inside the mixing box (12).

4. A powder mixing device based on rapid feeding according to claim 3, characterized in that: The drive mechanism includes a drive bevel gear (59) meshing with the linkage bevel gear (50), a drive shaft (60) is mounted on the drive bevel gear (59), the drive shaft (60) passes through the brake base (61) provided on the hybrid box (12) and is connected to the touch plate (62); the drive shaft (60) is provided with a drive pulley (63), the drive pulley (63) is connected to the driven pulley (65) through the driven transmission belt (64), and the driven pulley (65) is connected to the compound rotation control unit.

5. A powder mixing device based on rapid feeding according to claim 4, characterized in that: The triggering circular plate (62) is connected to the triggering square plate (66). The triggering square plate (66) is symmetrically equipped with triggering rods (67). The triggering rods (67) pass through the re-acting plate (68) and are connected to the braking circular plate (69). The triggering rods (67) are fitted with triggering springs (70). One end of the triggering springs (70) is fixedly connected to the braking circular plate (69), and the other end is fixedly connected to the re-acting plate (68).

6. A powder mixing device based on rapid feeding according to claim 5, characterized in that: The re-moving plate (68) is connected to the abnormal filter plate (71). Guide blocks (72) are symmetrically installed on the abnormal filter plate (71). The guide blocks (72) are slidably connected to the guide groove (73) provided on the mixing box (12). A guide rod (74) is provided in the guide groove (73). A guide spring (75) is sleeved on the guide rod (74). One end of the guide spring (75) is fixedly connected to the guide groove (73), and the other end is fixedly connected to the guide block (72). The abnormal filter plate (71) is connected to the storage box (76) provided on the bottom plate (1).

7. A powder mixing device based on rapid feeding according to claim 4, characterized in that: The compound rotation control unit includes a driven shaft (77) mounted on a driven pulley (65). One end of the driven shaft (77) is connected to a driven base (78) on a mixing box (12), and the other end is connected to a compound disc (79). A compound rod (80) is mounted on the compound disc (79). The compound rod (80) is connected to a distance groove (82) on a distance block (81). A drive rod (83) is symmetrically mounted on one side of the distance block (81), and a drive spring (84) is sleeved on the drive rod (83).

8. A powder mixing device based on rapid feeding according to claim 7, characterized in that: One end of the drive spring (84) is fixedly connected to the mixing box (12), and the other end is fixedly connected to the distance block (81). A delay rack (85) is installed on the other side. The delay rack (85) meshes with the delay gear (86). A delay shaft (87) is installed on the delay gear (86). One end of the delay shaft (87) is connected to the mixing box (12), and the other end is connected to the high-pressure nozzle (88). The high-pressure nozzle (88) and the water distribution box (58) are connected through a split pipe (89).

Citation Information

Patent Citations

  • Chemical fertilizer granulation equipment

    CN214390062U