Material turning type ferrite particle sanding pulping device

The flip-type ferrite particle sand grinding and pulping device achieves uniform grinding and efficient mixing of ferrite particles through liquid flushing and adjustment of the grinding disc height, solves the problems of uneven grinding, dust pollution and agglomeration sedimentation in the existing technology, and improves production efficiency.

CN120695705AInactive Publication Date: 2025-09-26ANHUI SHENGYUAN MAGNETOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202511158785.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2025-09-26
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing ferrite particle grinding technology has problems such as uneven grinding, dust dispersion, serious pollution, agglomeration and sedimentation, and hard scale, resulting in low production efficiency.

Method used

The flip-type ferrite particle sand mill pulping device is used. Through liquid flushing and cooling, adjusting the grinding disc height, and single drive source controlling grinding and stirring, uniform mixing of powder and liquid and efficient discharge are achieved, avoiding powder agglomeration and hard scale.

Benefits of technology

It improves the stability and uniformity of grinding, reduces dust pollution, enhances mixing efficiency, reduces cleaning frequency and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of ferrite particle grinding and mixing, and discloses a material turning type ferrite particle sanding pulping device which comprises a bearing piece, a mixing piece, a grinding piece and a control piece, the bearing piece is composed of a base and a mounting frame, a connecting groove is formed in the base, and a fluted disc is rotationally connected into the connecting groove; two connecting grooves are transversely and oppositely formed in the two ends of the base, a fluted disc is installed in each connecting groove and protrudes out of the top face of the base, a connecting rod is rotationally connected into the base and fixed to the axis of the fluted disc, and a rotating gear is fixed to one end of the connecting rod. By adopting the mode of matching water washing with grinding, in the grinding process, liquid is input into the grinding bin to wash and cool the grinding disc, meanwhile, powder is washed away from the grinding disc, the abrasion rate of the grinding disc and the powder caking phenomenon are reduced, and therefore the stability and uniformity of grinding and powder making of the grinding disc are guaranteed; and powder can be discharged conveniently, the material blocking phenomenon is avoided, and meanwhile the dust falling effect is achieved.
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Description

Technical Field

[0001] The invention relates to the technical field of ferrite particle grinding and mixing, in particular to a material-turning type ferrite particle sand grinding and pulping device. Background Art

[0002] Ferrite particles are composed of iron and other metal oxides. The slurrying of ferrite particles is a key step in the preparation of electronic materials. Its uniformity and dispersion directly affect the performance of magnetic core products.

[0003] Currently, ferrite particles are ground using a single abrasive disc grinding technique. During the grinding process, the abrasive disc heats up quickly and is easily worn, resulting in uneven grinding of the material. Dust is also dispersed, polluting the environment and threatening the health and life of processing personnel. In addition, the ground powder is easily left inside the grinding device, causing wear on mechanical parts and clogging the delivery pipeline during discharge.

[0004] In addition, the grinding and pulping steps of the material adopt distributed operations, which prolongs the production cycle and is prone to pollution during the transfer process. In the pulping process, the powder is put into the pulping device at one time and mixed with the liquid. This operation can easily cause the powder to clump and settle in the liquid, and some powder adheres to the inner wall of the pulping device, accumulating over a long period of time to form hard scale, which requires frequent cleaning and affects production efficiency. Summary of the Invention

[0005] In view of the shortcomings of the existing technology, the present invention provides a flip-type ferrite particle sand grinding and pulping device, which has the advantages of improving the stability of ferrite particle grinding and the uniformity of grinding fineness, while reducing dust dispersion, avoiding powder agglomeration to produce sedimentation and hard scale, and improving mixing uniformity. It solves the problems of the current flip-type ferrite particle sand grinding and pulping device, such as a single grinding method, resulting in uneven grinding products, step-by-step operation procedures, which are prone to pollution, and uneven mixing, and the existence of agglomeration sedimentation and hard scale.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a turning-type ferrite particle sand grinding and pulping device, comprising a supporting part, a mixing part, a grinding part and a control part, the supporting part consisting of a base and a mounting frame, a connecting groove being provided on the base, a toothed disc being rotatably connected in the connecting groove, two connecting grooves being laterally arranged at both ends of the base, a toothed disc being installed in each connecting groove, and the toothed disc protruding from the top surface of the base.

[0007] A connecting rod is rotatably connected inside the base, the connecting rod is fixed on the axis of the gear disc, and a rotating gear is fixed at one end. A connecting rod is rotatably connected inside the base, the connecting rod is fixed on the axis of the two gear discs at the same time, and both ends of the connecting rod pass through the base. When the rotating gear rotates, the connecting rod drives the two gear discs to rotate at the same time.

[0008] A mounting frame is fixed on the base, and mounting frames are mounted at corresponding positions at both ends of the base.

[0009] The mixing element consists of a mixing tank and a stirring mechanism. The mixing tank is rotatably connected in the mounting frame. A gear ring is fixed on the side of the mixing tank, which engages with a gear disc. The diameter of the mixing tank matches the diameter in the mounting frame. At the same time, both ends of the mixing tank are rotatably connected in the mounting frames at the corresponding ends to improve the rotation stability of the mixing tank. When the gear disc rotates, the mixing tank is rotated by the force of engagement with the gear ring, thereby achieving the effect of tumbling of the powder and liquid in the tank.

[0010] There is also a stirring mechanism in the movable connection inside the mixing tank. The stirring mechanism includes a rotating rod rotatably connected to the mixing tank, a transmission gear is fixed at one end of the rotating rod, and a transmission toothed belt is engaged between the transmission gear and the side of the rotating gear. The stirring mechanism is used to fully stir the powder and liquid in the mixing tank so that the powder and liquid are fully mixed. When the transmission gear rotates, the rotating rod is driven to rotate, so that the stirring mechanism stirs and mixes the powder and liquid.

[0011] The grinding part consists of a supporting plate and a grinding mechanism. The supporting plate is fixed on the mounting frame. The grinding mechanism for grinding and powdering the medium is fixed on the supporting plate. The supporting plate plays the role of installing the grinding mechanism above the mixing tank and ensuring that the grinding mechanism does not directly contact the mixing tank to avoid affecting the rotation of the mixing tank.

[0012] The control component includes a driving mechanism, which consists of a driving unit 1 and a driving unit 2. The driving unit 1 is used to drive the grinding mechanism to grind the medium into powder, and the driving unit 2 is used to transmit the driving force generated by the driving unit 1 to the stirring mechanism to stir and mix the powder in the mixing tank.

[0013] The control component also includes a regulating mechanism, which is used to control the grinding mechanism to convey powder into the mixing tank.

[0014] As a further improvement of the above solution, the stirring mechanism includes a mounting rod and a stirring rod relatively fixed to the side of the rotating rod, a scraper is fixed at one end of the mounting rod, and the scraper is attached to the inner side of the mixing tank.

[0015] Through the above technical solution, when the rotating rod rotates, it drives the stirring rod to fully stir the powder and liquid. At the same time, the powder and liquid are turned over by the scraper, and the medium attached to the inner wall of the tank is scraped off, thereby improving the sufficient mixing of the medium in the tank and avoiding the long-term adhesion of the medium to the wall and the subsequent hardening phenomenon.

[0016] As a further improvement of the above solution, a fixing frame is fixed on the installation frame, and a fixing button is threadedly connected to the side of the fixing frame.

[0017] The driving unit 1 includes a driving motor fixed in a fixing frame, and one end of the fixing button is attached to the side of the driving motor.

[0018] Through the above technical solution, the diameter inside the fixed frame matches the diameter shape of the drive motor actually used. By installing the drive motor in the mounting frame and turning the fixing button, the drive motor can be fully fixed in the mounting frame to avoid shaking during operation of the drive motor, which may cause the drive gear on the output end to be offset.

[0019] As a further improvement of the above solution, a driving gear is fixed to the output end of the driving motor, a conduction toothed belt is meshed on the side of the driving gear, a conduction gear is meshed inside the conduction toothed belt, a conduction rod is fixed at one end of the conduction gear, and a bevel gear 1 is fixed at one end of the conduction rod.

[0020] Through the above technical solution, when the drive motor is in operation, the output end drives the drive gear to rotate, and drives the transmission gear to rotate through the transmission toothed belt, so that the transmission rod drives the bevel gear at the front end to rotate.

[0021] As a further improvement of the above solution, the grinding mechanism includes a grinding chamber fixed on the supporting plate, and a lower grinding disc and an upper grinding disc that fit together are movably sleeved in the grinding chamber.

[0022] A connecting rod is fixed on the lower sanding disc.

[0023] A sleeve is fixed on the axis of the upper grinding disc. The sleeve passes through the top of the grinding chamber and is fixed with a second bevel gear.

[0024] The connecting rod is movably sleeved in the sleeve and the second bevel gear, and the second bevel gear is meshed with the first bevel gear.

[0025] Through the above technical solution, the diameter of the connecting rod is consistent with the diameter of the sleeve and the bevel gear 2, which improves the stability of the connecting rod driving the height displacement of the lower grinding disc. When the bevel gear 2 rotates, it drives the upper grinding disc to rotate, thereby realizing the grinding and powdering of the medium between the upper and lower grinding discs.

[0026] As a further improvement of the above solution, the second driving unit includes a linkage gear fixed to one end of the transmission gear.

[0027] The second driving unit further comprises a rotating gear fixed to one end of the rotating rod, and a linkage toothed belt is meshed between the sides of the rotating gear and the linkage gear.

[0028] Through the above technical solution, the transmission gear drives the transmission rod to rotate, and also drives the linkage gear to rotate, and drives the rotating gear to rotate through the linkage toothed belt, thereby rotating the rotating rod, so that the stirring mechanism stirs and mixes the powder and liquid in the mixing tank.

[0029] As a further improvement of the above solution, the control component further includes a supporting mechanism movably connected between the driving unit 1 and the grinding mechanism.

[0030] The supporting mechanism comprises a support rod fixed on the side of the grinding chamber, a cross rod fixed on one end of the support rod, a stabilizing cylinder fixed on one end of the cross rod, and the stabilizing cylinder is movably sleeved on the side of the conduction rod.

[0031] Through the above technical solution, the supporting mechanism is used to support the driving unit. One end of the support rod is fixed to the side of the grinding chamber, and the other end is fixed to the side of the cross bar. A stabilizing cylinder is fixed to one end of the cross bar, and the conduction rod is movably sleeved in the stabilizing cylinder, thereby supporting the conduction rod.

[0032] As a further improvement of the above solution, the regulating mechanism includes a connecting tube fixed on the side of the grinding chamber, a rack is movably sleeved in the connecting tube, a linkage plate is fixed at one end of the rack, and one end of the linkage plate is fixed on the linkage rod.

[0033] Through the above technical solution, when the rack moves up and down in the connecting cylinder, the connecting plate drives the connecting rod to change its height displacement at the same time, thereby realizing the height displacement change of the lower sanding disc in the grinding chamber.

[0034] As a further improvement of the above solution, a regulating motor is fixed to the side of the connecting tube, and a regulating gear is fixed to one end of the regulating motor, and the regulating gear is meshed with the rack.

[0035] Through the above technical solution, the output end of the control motor has the function of bidirectional rotation. During operation, the output end drives the control gear to rotate, and the force of the meshing of the control gear and the rack is used to make the rack move up and down, thereby realizing the height adjustment of the lower sanding disc.

[0036] As a further improvement of the above solution, support rods are provided on the sides of the supporting plate.

[0037] A mounting button is fixed on the side of the mounting frame, and one end of the support rod is fixed on the mounting button.

[0038] Through the above technical solution, support rods are provided at both ends of the support plate, and the support rods are respectively fixed on the mounting buttons on both sides of the two fixing frames, so that the support plate is above the mixing tank but does not contact the mixing tank.

[0039] As a further improvement of the above solution, a material feeding port is provided on the upper sanding disc and located between the axis and the outer edge, and the material feeding port is connected between the upper sanding disc and the lower sanding disc.

[0040] A push rod is fixed on the bottom of the lower sanding disc, and a discharge groove is opened on the side of the push rod.

[0041] A feeding interface is provided at the bottom of the grinding bin, and a feeding interface is provided on the mixing tank. The feeding interface and the feeding interface are aligned at a set position, and the push rod is inserted into the feeding interface and the feeding interface.

[0042] A feeding interface is provided on the top of the grinding chamber.

[0043] Through the above technical solution, there are two feeding interfaces, one of which is connected to the solid medium supply device, and the other is connected to the liquid medium supply device, so that the solid medium and the liquid medium are transported synchronously, and the liquid medium is used to contact and flush the solid into the space between the two grinding discs, and at the same time, the ground powder is flushed into the space below the lower grinding disc to wait for discharge.

[0044] For the discharge operation of powders and liquids, the lower grinding disc is moved down to the limit in the infinite adjustment mode, so that the push rod passes through the feed interface, so that one end of the discharge chute is in the grinding chamber and the other end leaks out of the feed interface, thereby realizing the discharge operation of powders and liquids.

[0045] As a further improvement of the above solution, a groove is provided in the mixing tank and at the edge of the feed interface, a sealing plate is movably connected in the groove, a spring ring is fixed on the sealing plate, and one end of the spring ring is fixed in the groove.

[0046] A discharge interface is provided at one end of the mixing tank.

[0047] Through the above technical solution, when the push rod is inserted into the feed interface, it pushes the sealing plate, so that the groove connects the feed interface and the inside of the mixing tank, so that the powder and liquid are stably input into the mixing tank. At this time, the spring coil is in a stretched state, and when the push rod is disengaged from the feed interface, the spring coil is tightened, so that the sealing plate returns to the groove, blocking the feed interface, thereby preventing the internal medium of the mixing tank from leaking when it rotates.

[0048] Compared with the prior art, the present invention provides a material-turning ferrite particle sand-grinding and pulping device, which has the following beneficial effects: 1. The flip-type ferrite particle sand grinding and pulping device adopts the method of water washing and grinding. During the grinding process, the liquid is input into the grinding chamber to wash and cool the grinding disc, and at the same time, the powder is washed away from the grinding disc, reducing the wear rate of the grinding disc and the agglomeration of the powder, thereby ensuring the stability and uniformity of the grinding and pulverizing of the grinding disc. Under the action of the fluid, the powder is easily discharged, avoiding the phenomenon of material jamming, and at the same time playing a role in dust reduction.

[0049] 2. The flip-type ferrite particle sand grinding and slurry making device controls the height displacement change of the lower sanding disc through the regulating mechanism to realize the feeding, grinding coarseness adjustment and slurry discharge operations. At the same time, the slurry is directly discharged into the mixing tank, which effectively improves production efficiency and reduces the possibility of pollution.

[0050] 3. The flipping type ferrite particle sand grinding and pulping device adopts a single driving source to control the operation of the grinding mechanism while also controlling the stirring element to stir the slurry in the mixing tank. The driving force generated by the driving source is transmitted to the rotating gear through the stirring element, so that the mixing tank rotates in the opposite direction of the rotation of the stirring element, thereby making the slurry in the tank body in a rolling state, effectively avoiding sedimentation and the formation of hard scale, and improving the efficiency of pulping.

[0051] 4. The flip-type ferrite particle sand grinding and slurry making device can stir the slurry through the operation of the stirring piece, and can also drive the scraper to scrape off the slurry attached to the inner wall of the mixing tank, avoiding the accumulation and hardening phenomenon caused by long-term adhesion, maintaining the cleanliness of the inner wall of the tank, effectively reducing the frequency of manual shutdown for cleaning, and thus improving production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] Figure 1 This is a schematic diagram of the overall external front and side structure of the device of the present invention; Figure 2 This is a schematic diagram of the overall external rear side structure of the device of the present invention; Figure 3 This is a schematic diagram of the connection structure between the base and the mounting frame of the present invention; Figure 4 This is a schematic diagram of the connection structure between the base and the mixing tank of the present invention; Figure 5 This is a schematic diagram of the overall installation position structure of the stirring member of the present invention; Figure 6 This is a schematic diagram of the overall external planar structure of the device of the present invention; Figure 7 This is a schematic diagram of the overall internal planar structure of the device of the present invention; Figure 8 For the present invention Figure 6 Schematic diagram of the structure at A in the middle; Figure 9This is a schematic diagram of the bottom structure of the lower and upper sanding discs separated from each other in the present invention; Figure 10 This is a schematic top view of the structure of the lower sanding disc and the upper sanding disc separated according to the present invention.

[0053] In the accompanying drawings, the components represented by the reference numerals are as follows: Supporting parts; Base; 111, connecting groove; 112, toothed disc; 113, connecting rod; 114, rotating gear; 12. Installation frame; 121. Fixing frame; 122. Fixing button; 123. Installation button; 2. Mixed parts; 21. Mixing tank; 211. Gear ring; 212. Discharge port; 213. Feed port; 214. Groove; 215. Sealing plate; 216. Spring ring; 22. Stirring mechanism; 221. Rotating rod; 222. Mounting rod; 223. Scraper; 224. Stirring rod; 225. Transmission gear; 226. Transmission belt; 3. Grinding parts; 31. Support plate; 311. Support rod; 32. Grinding mechanism; 320. Grinding chamber; 321. Lower grinding disc; 322. Upper grinding disc; 3221. Feed port; 323. Sleeve; 324. Bevel gear 2; 325. Connecting rod; 326. Push rod; 327. Discharge chute; 328. Feed port; 329. Feed port; 4. Control parts; 41. Driving mechanism; 411. Driving unit 1; 4111. Driving motor; 4112. Driving gear; 4113. Transmission belt; 4114. Transmission gear; 4115. Transmission rod; 4116. Bevel gear 1; 412. Driving unit 2; 4121. Interlocking gear; 4122. Interlocking belt; 4123. Rotating gear; 413. Support mechanism; 4131. Support rod; 4132. Crossbar; 4133. Stabilizing cylinder; 42. Control mechanism; 421. Connecting tube; 422. Rack; 423. Linking plate; 424. Control motor; 425. Control gear. DETAILED DESCRIPTION

[0054] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example

[0055] See also Figure 1-Figure 7 As shown, the present embodiment proposes a flip-type ferrite particle sand grinding and pulping device, including a supporting member 1, a mixing member 2, a grinding member 3 and a control member 4. The supporting member 1 is composed of a base 11 and a mounting frame 12. A connecting groove 111 is provided on the base 11, and a toothed disc 112 is rotatably connected in the connecting groove 111. Two connecting grooves 111 are laterally arranged at both ends of the base 11. A toothed disc 112 is installed in each connecting groove 111, and the toothed disc 112 protrudes from the top surface of the base 11.

[0056] A connecting rod 113 is rotatably connected inside the base 11. The connecting rod 113 is fixed on the axis of the toothed disc 112, and a rotating gear 114 is fixed on one end. A connecting rod 113 is rotatably connected inside the base 11. The connecting rod 113 is fixed on the axis of the two toothed discs 112 at the same time, and both ends of the connecting rod 113 pass through the base 11. When the rotating gear 114 rotates, the connecting rod 113 drives the two toothed discs 112 to rotate simultaneously.

[0057] A mounting frame 12 is fixed on the base 11 , and mounting frames 12 are mounted at corresponding positions at both ends of the base 11 .

[0058] The mixing element 2 consists of a mixing tank 21 and a stirring mechanism 22. The mixing tank 21 is rotatably connected in the mounting frame 12. A gear ring 211 is fixed to the side of the mixing tank 21. The gear ring 211 engages with the gear disc 112. The diameter of the mixing tank 21 matches the diameter in the mounting frame 12. At the same time, both ends of the mixing tank 21 are rotatably connected in the mounting frame 12 at the corresponding ends to improve the rotation stability of the mixing tank 21. When the gear disc 112 rotates, the mixing tank 21 is rotated by the force of the engagement with the gear ring 211, thereby achieving the effect of tumbling of the powder and liquid in the tank.

[0059] There is also a stirring mechanism 22 in the movable connection inside the mixing tank 21. The stirring mechanism 22 includes a rotating rod 221 rotatably connected to the mixing tank 21. A transmission gear 225 is fixed to one end of the rotating rod 221. A transmission toothed belt 226 is engaged with the side of the transmission gear 225 and the rotating gear 114. The stirring mechanism 22 is used to fully stir the powder and liquid in the mixing tank 21 so that the powder and liquid are fully mixed. When the transmission gear 225 rotates, the rotating rod 221 is driven to rotate, so that the stirring mechanism 22 stirs and mixes the powder and liquid.

[0060] The grinding member 3 consists of a supporting plate 31 and a grinding mechanism 32. The supporting plate 31 is fixed on the mounting frame 12. The grinding mechanism 32 for grinding and powdering the medium is fixed on the supporting plate 31. The supporting plate 31 serves to install the grinding mechanism 32 above the mixing tank 21 and ensure that the grinding mechanism 32 does not directly contact the mixing tank 21 to avoid affecting the rotation of the mixing tank 21.

[0061] The control component 4 includes a driving mechanism 41, which is composed of a driving unit 1 411 and a driving unit 2 412. The driving unit 1 411 is used to drive the grinding mechanism 32 to grind the medium into powder, and the driving unit 2 412 is used to transmit the driving force generated by the driving unit 1 411 to the stirring mechanism 22 to stir and mix the powder in the mixing tank 21.

[0062] The control component 4 further includes a regulating mechanism 42 , which is used to control the grinding mechanism 32 to convey powder into the mixing tank 21 .

[0063] The working principle of the flip-type ferrite particle sand grinding and slurrying device proposed in this embodiment is: when in use, by inputting medium ferrite particles and slurrying liquid into the grinding mechanism 32, and controlling the operation of the driving unit 411, the grinding mechanism 32 grinds the medium into powder, and simultaneously flushes the powder into the grinding chamber 320 through the liquid, and is located at the bottom of the lower grinding disc 321 until a certain flow rate upper limit is reached, and when the two interfaces (the material delivery interface 328 and the material feed interface 213) are aligned, the lower grinding disc 321 is controlled to move downward by the regulating mechanism 42, so that the push rod 326 passes through the two interfaces and pushes the sealing plate 215 downward. At this time, the discharge trough 327 is One end is connected to the grinding bin 320, and the other end is connected to the mixing tank 21, so that the powder is driven and input into the mixing tank 21 at the same time under the flow of the liquid. At this time, the motive force generated by the driving unit 1 411 is transmitted to the stirring mechanism 22 through the driving unit 2 412, so that the stirring mechanism 22 can fully stir the powder and liquid in the mixing tank 21, and use the transmission toothed belt 226 to transmit the rotational force generated by the transmission gear 225 to the rotating gear 114, so that the toothed disk 112 rotates, and under the meshing force with the gear ring 211, the mixing tank 21 rotates in the opposite direction until the powder and the liquid are fully mixed, and the slurry can be discharged through the discharge interface 212.

[0064] Furthermore, the stirring mechanism 22 includes a mounting rod 222 and a stirring rod 224 relatively fixed to the side of the rotating rod 221 . A scraper 223 is fixed to one end of the mounting rod 222 , and the scraper 223 is attached to the inner side of the mixing tank 21 .

[0065] More specifically, when the rotating rod 221 rotates, it drives the stirring rod 224 to fully stir the powder and liquid. At the same time, the scraper 223 turns the powder and liquid and scrapes off the medium attached to the inner wall of the tank, thereby improving the degree of sufficient mixing of the medium in the tank and preventing the medium from adhering to the wall for a long time and causing hardening in the later stage.

[0066] Furthermore, a fixing frame 121 is fixed on the installation frame 12 , and a fixing button 122 is threadedly connected to the side of the fixing frame 121 .

[0067] The first driving unit 411 includes a driving motor 4111 fixed in the fixing frame 121 , and one end of the fixing button 122 is attached to the side of the driving motor 4111 .

[0068] More specifically, the diameter inside the fixing frame 121 matches the diameter shape of the driving motor 4111 actually used. By installing the driving motor 4111 in the mounting frame 12 and rotating the fixing button 122, the driving motor 4111 is fully fixed in the mounting frame 12 to avoid shaking of the driving motor 4111 during operation, which causes the driving gear 4112 on the output end to be offset.

[0069] Furthermore, a driving gear 4112 is fixed to the output end of the driving motor 4111, a conductive toothed belt 4113 is meshed on the side of the driving gear 4112, a conductive gear 4114 is meshed inside the conductive toothed belt 4113, a conductive rod 4115 is fixed to one end of the conductive gear 4114, and a bevel gear 4116 is fixed to one end of the conductive rod 4115.

[0070] More specifically, when the driving motor 4111 is in operation, the output end drives the driving gear 4112 to rotate, and drives the transmission gear 4114 to rotate through the transmission toothed belt 4113, so that the transmission rod 4115 drives the bevel gear 1 4116 at the front end to rotate. Example

[0071] See also Figure 7-10 As shown, the flip-type ferrite particle sand grinding and pulping device proposed in this embodiment is based on the first embodiment. This embodiment also includes that the grinding mechanism 32 includes a grinding chamber 320 fixed on the supporting plate 31, and a lower grinding disc 321 and an upper grinding disc 322 that fit together are movably connected in the grinding chamber 320.

[0072] A linkage rod 325 is fixed on the lower sanding disc 321 .

[0073] A sleeve 323 is fixed on the axis of the upper grinding disc 322 . The sleeve 323 passes through the top of the grinding chamber 320 and is fixed with a second bevel gear 324 .

[0074] The connecting rod 325 is movably sleeved in the sleeve 323 and the second bevel gear 324 , and the second bevel gear 324 is meshed with the first bevel gear 4116 .

[0075] More specifically, the diameter of the connecting rod 325 matches the diameter of the sleeve 323 and the bevel gear 2 324, thereby improving the stability of the connecting rod 325 in driving the height displacement of the lower grinding disc 321. When the bevel gear 2 324 rotates, it drives the upper grinding disc 322 to rotate, thereby grinding and powdering the medium between the upper grinding disc 322 and the lower grinding disc 321.

[0076] It should be further explained that the diameters of the two grinding discs (the lower grinding disc 321 and the upper grinding disc 322 ) match the diameter of the grinding chamber 320 , thereby improving the stability of the rotation of the grinding discs.

[0077] Furthermore, the second driving unit 412 includes a linkage gear 4121 fixed to one end of the transmission gear 4114 .

[0078] The second driving unit 412 further includes a rotating gear 4123 fixed to one end of the rotating rod 221 , and a linkage toothed belt 4122 is meshed between the sides of the rotating gear 4123 and the linkage gear 4121 .

[0079] More specifically, the transmission gear 4114 drives the transmission rod 4115 to rotate, while also driving the linkage gear 4121 to rotate, and drives the rotating gear 4123 to rotate through the linkage toothed belt 4122, thereby rotating the rotating rod 221, so that the stirring mechanism 22 stirs and mixes the powder and liquid in the mixing tank 21.

[0080] Furthermore, the control member 4 also includes a support mechanism 413 movably connected between the driving unit 1 411 and the grinding mechanism 32 .

[0081] The support mechanism 413 includes a support rod 4131 fixed to the side of the grinding chamber 320, a cross bar 4132 fixed at one end of the support rod 4131, and a stabilizing tube 4133 fixed at one end of the cross bar 4132. The stabilizing tube 4133 is movably sleeved on the side of the conduction rod 4115.

[0082] More specifically, the support mechanism 413 is used to support the drive unit 411. One end of the support rod 4131 is fixed to the side of the grinding chamber 320, and the other end is fixed to the side of the cross bar 4132. A stabilizing tube 4133 is fixed to one end of the cross bar 4132, and the conduction rod 4115 is movably sleeved in the stabilizing tube 4133, thereby supporting the conduction rod 4115.

[0083] It should be further explained that the diameter inside the stabilizing cylinder 4133 matches the diameter of the side of the conducting rod 4115 , thereby improving the stability of the conducting rod 4115 in rotating inside the stabilizing cylinder 4133 . Example

[0084] See also Figure 1-Figure 2 and Figures 6-10 As shown, the flipping type ferrite particle sand grinding and pulping device proposed in this embodiment, based on the first and second embodiments, also includes that the regulating mechanism 42 includes a connecting tube 421 fixed to the side of the grinding chamber 320, a rack 422 is movably sleeved in the connecting tube 421, a linkage plate 423 is fixed to one end of the rack 422, and one end of the linkage plate 423 is fixed to the linkage rod 325.

[0085] More specifically, when the rack 422 moves up and down in the connecting tube 421 , the linkage rod 325 is driven by the linkage plate 423 to change its height displacement at the same time, thereby achieving a height displacement change of the lower sanding disc 321 in the grinding chamber 320 .

[0086] It should be further explained that different height displacement changes of the lower sanding disc 321 have two different effects, namely a limited adjustment mode and an infinite adjustment mode.

[0087] The limited adjustment mode means that the lower sanding disc 321 is fine-tuned so that the medium enters between the lower sanding disc 321 and the upper sanding disc 322 , and is gradually squeezed upward by the lower sanding disc 321 while being quickly crushed and ground by the rotation of the upper sanding disc 322 .

[0088] The infinite adjustment mode means that the lower sanding disc 321 is in the lowest height position of limited adjustment and continues to move downward, so that the push rod 326 passes through the material feeding interface 328 to discharge the powder and liquid.

[0089] It should be noted that during limited adjustment, when the lower sanding disc 321 moves to the highest point, it can completely fit with the upper sanding disc 322, and the bottom end of the push rod 326 at the bottom is flush with the feed interface 328, and when the lower sanding disc 321 moves to the lowest height position, the discharge groove 327 on the side of the push rod 326 does not leak from the feed interface 328.

[0090] In addition, a rubber ring is provided on the inner side of the feeding interface 328. When the push rod 326 is flush with the bottom end of the feeding interface 328, the rubber ring fits on the side of the push rod 326 to achieve a sufficient sealing effect and prevent powder and liquid from leaking.

[0091] Furthermore, a regulating motor 424 is fixed to the side of the connecting tube 421 , and a regulating gear 425 is fixed to one end of the regulating motor 424 , and the regulating gear 425 is meshed with the rack 422 .

[0092] More specifically, the output end of the regulating motor 424 has the function of bidirectional rotation. During operation, the output end drives the regulating gear 425 to rotate. The rack 422 moves up and down under the force of the engagement between the regulating gear 425 and the rack 422, thereby achieving height adjustment of the lower sanding disc 321.

[0093] It should be further explained that the control motor 424 operates in two modes: limited adjustment and unlimited adjustment.

[0094] In the limited adjustment mode, the limit of the forward and reverse rotation of the output end of the control motor 424 is the maximum height of the lower and upper movements of the lower sanding disc 321 in this mode. The output end of the control motor 424 first rotates forward to move the lower sanding disc 321 downward, and then rotates reversely to move the lower sanding disc 321 upward.

[0095] In the infinite adjustment mode, the limit of rotation of the output end of the regulating motor 424 is the maximum height of the lower grinding disc 321 moving downward in this mode. When the output end of the regulating motor 424 rotates forward to the lowest position of the lower grinding disc 321 in the limited adjustment mode, it continues to rotate until the bottom of the lower grinding disc 321 is attached to the bottom of the grinding chamber 320. At this time, the push rod 326 passes through the feed interface 328, and one end of the discharge trough 327 is in the grinding chamber 320, and the other end leaks out from the feed interface 328, thereby realizing the discharge of powder and liquid in the grinding chamber 320.

[0096] Furthermore, a support rod 311 is provided on the side of the supporting plate 31 .

[0097] A mounting button 123 is fixed to the side of the mounting frame 12 , and one end of the support rod 311 is fixed to the mounting button 123 .

[0098] More specifically, support rods 311 are provided at both ends of the support plate 31, and the support rods 311 are respectively fixed on the mounting buttons 123 on both sides of the two fixing frames 121, so that the support plate 31 is above the mixing tank 21 but does not contact the mixing tank 21.

[0099] Furthermore, a material delivery port 3221 is provided on the upper sanding disc 322 and located between the axis and the outer edge. The material delivery port 3221 communicates between the upper sanding disc 322 and the lower sanding disc 321 .

[0100] A push rod 326 is fixed to the bottom of the lower sanding disc 321 , and a discharge groove 327 is provided on the side of the push rod 326 .

[0101] A material delivery interface 328 is provided at the bottom of the grinding chamber 320 , and a material feed interface 213 is provided on the mixing tank 21 . The material delivery interface 328 and the material feed interface 213 are aligned at a set position, and the push rod 326 is inserted into the material delivery interface 328 and the material feed interface 213 .

[0102] A feeding interface 329 is provided on the top of the grinding chamber 320 .

[0103] More specifically, there are two feeding interfaces 329, one of which is connected to the solid medium supply device, and the other is connected to the liquid medium supply device, so that the solid medium and the liquid medium are transported synchronously, and the liquid medium is used to flush the solid contact into the space between the two grinding discs, and at the same time, the ground powder is flushed into the space below the lower grinding disc 321 to wait for discharge.

[0104] For the discharge operation of powder and liquid, by moving the lower grinding disc 321 down to the limit in the infinite adjustment mode, the push rod 326 passes through the feed interface 328, so that one end of the discharge trough 327 is in the grinding chamber 320 and the other end leaks out from the feed interface 328, thereby achieving the discharge operation of powder and liquid.

[0105] It should be further explained that, during the discharge operation of powder and liquid, it is necessary to ensure that the feed interface 328 is aligned with the feed interface 213 and the drive mechanism 41 stops operating. After the discharge operation is completed and the push rod 326 returns to its initial position, the drive mechanism 41 is controlled to operate.

[0106] Furthermore, a groove 214 is provided in the mixing tank 21 at the edge of the feed interface 213 , a sealing plate 215 is movably connected in the groove 214 , a spring ring 216 is fixed on the sealing plate 215 , and one end of the spring ring 216 is fixed in the groove 214 .

[0107] A discharge port 212 is provided at one end of the mixing tank 21 .

[0108] More specifically, when the push rod 326 is inserted into the feed interface 213, it pushes the sealing plate 215, so that the groove 214 connects the feed interface 213 and the interior of the mixing tank 21, so that the powder and liquid are stably input into the mixing tank 21, and at this time the spring coil 216 is in a stretched state, and when the push rod 326 is disengaged from the feed interface 213, the spring coil 216 is tightened, so that the sealing plate 215 returns to the groove 214, blocking the feed interface 213, thereby preventing the internal medium of the mixing tank 21 from leaking when the mixing tank 21 rotates.

[0109] It should be further explained that a plurality of circular holes are equidistantly provided on the opposite surfaces of the groove 214 and the sealing plate 215 and on the edge of the feed interface 213 , and a spring ring 216 is installed between each two opposite circular holes, thereby improving the stability and accuracy of the displacement of the sealing plate 215 .

[0110] In addition, a plurality of mutually engaged annular sealing strips are provided on the opposite surfaces of the groove 214 and the sealing plate 215 and on the periphery of the spring ring 216. When the sealing plate 215 is in the groove 214, the sealing strips are engaged with each other to improve the sealing of the gap at the interface.

[0111] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A ferrite particle sand grinding and pulping device of a turning type, comprising a supporting member (1), a mixing member (2), a grinding member (3) and a control member (4), characterized in that: The supporting member (1) is composed of a base (11) and a mounting frame (12); a connecting groove (111) is provided on the base (11), and a toothed disc (112) is rotatably connected in the connecting groove (111); A connecting rod (113) is rotatably connected in the base (11), the connecting rod (113) is fixed on the axis of the toothed disc (112), and a rotating gear (114) is fixed at one end; A mounting frame (12) is fixed on the base (11); The mixing element (2) is composed of a mixing tank (21) and a stirring mechanism (22). The mixing tank (21) is rotatably connected in the mounting frame (12). A gear ring (211) is fixed on the side of the mixing tank (21), and the gear ring (211) is engaged with a gear disc (112). A stirring mechanism (22) is movably connected to the mixing tank (21), and the stirring mechanism (22) includes a rotating rod (221) rotatably connected to the mixing tank (21), a transmission gear (225) is fixed to one end of the rotating rod (221), and a transmission toothed belt (226) is meshed between the transmission gear (225) and the side of the rotating gear (114); The grinding member (3) is composed of a supporting plate (31) and a grinding mechanism (32), wherein the supporting plate (31) is fixed on the mounting frame (12), and the grinding mechanism (32) for grinding the medium into powder is fixed on the supporting plate (31); The control member (4) includes a driving mechanism (41), the driving mechanism (41) consisting of a driving unit 1 (411) and a driving unit 2 (412), the driving unit 1 (411) being used to drive the grinding mechanism (32) to grind the medium into powder, and the driving unit 2 (412) being used to transmit the driving force generated by the driving unit 1 (411) to the stirring mechanism (22) to stir and mix the powder in the mixing tank (21); The control member (4) further comprises a regulating mechanism (42), wherein the regulating mechanism (42) is used to control the grinding mechanism (32) to convey the powder into the mixing tank (21).

2. The turning type ferrite particle sand milling and pulping device according to claim 1, characterized in that: The stirring mechanism (22) comprises a mounting rod (222) and a stirring rod (224) fixed relatively to the side of the rotating rod (221); a scraper (223) is fixed to one end of the mounting rod (222); the scraper (223) is attached to the inner side of the mixing tank (21).

3. The turning type ferrite particle sand milling and pulping device according to claim 1, characterized in that: A fixing frame (121) is fixed on the installation frame (12), and a fixing button (122) is threadedly connected to the side of the fixing frame (121); The driving unit 1 (411) includes a driving motor (4111) fixed in a fixing frame (121), and one end of the fixing button (122) is attached to a side of the driving motor (4111).

4. The turning type ferrite particle sand milling and pulping device according to claim 3, characterized in that: A driving gear (4112) is fixed to the output end of the driving motor (4111), a conductive toothed belt (4113) is meshed on the side of the driving gear (4112), a conductive gear (4114) is meshed inside the conductive toothed belt (4113), a conductive rod (4115) is fixed to one end of the conductive gear (4114), and a bevel gear 1 (4116) is fixed to one end of the conductive rod (4115).

5. The turning type ferrite particle sand milling and pulping device according to claim 1, characterized in that: The grinding mechanism (32) comprises a grinding chamber (320) fixed on the supporting plate (31), wherein a lower grinding disc (321) and an upper grinding disc (322) are movably sleeved in the grinding chamber (320); A linkage rod (325) is fixed on the lower sanding disc (321); A sleeve (323) is fixed on the axis of the upper grinding disc (322), the sleeve (323) passes through the top of the grinding chamber (320) and is fixed with a second bevel gear (324); The connecting rod (325) is movably sleeved in the sleeve (323) and the second bevel gear (324), and the second bevel gear (324) is meshed with the first bevel gear (4116).

6. The turning type ferrite particle sand milling and pulping device according to claim 1, characterized in that: The second driving unit (412) includes a linkage gear (4121) fixed to one end of the transmission gear (4114); The second driving unit (412) further comprises a rotating gear (4123) fixed to one end of the rotating rod (221), and a linked toothed belt (4122) is meshed between the sides of the rotating gear (4123) and the linked gear (4121).

7. The turning type ferrite particle sand milling and pulping device according to claim 1, characterized in that: The control member (4) further includes a support mechanism (413) movably connected between the driving unit 1 (411) and the grinding mechanism (32); The support mechanism (413) comprises a support rod (4131) fixed to the side of the grinding chamber (320), a cross bar (4132) fixed at one end of the support rod (4131), a stabilizing cylinder (4133) fixed at one end of the cross bar (4132), and the stabilizing cylinder (4133) movably sleeved on the side of the conducting rod (4115).

8. The turning type ferrite particle sand milling and pulping device according to claim 7, characterized in that: The regulating mechanism (42) comprises a connecting tube (421) fixed to the side of the grinding chamber (320), a rack (422) movably sleeved in the connecting tube (421), a linkage plate (423) fixed to one end of the rack (422), and one end of the linkage plate (423) fixed to the linkage rod (325); A regulating motor (424) is fixed to the side of the connecting cylinder (421), and a regulating gear (425) is fixed to one end of the regulating motor (424), wherein the regulating gear (425) is meshed with the rack (422).

9. The turning type ferrite particle sand milling and pulping device according to claim 5, characterized in that: A feed port (3221) is provided on the upper sanding disc (322) and is located between the axis and the outer edge. The feed port (3221) is connected between the upper sanding disc (322) and the lower sanding disc (321); A push rod (326) is fixed to the bottom of the lower sanding disc (321), and a discharge groove (327) is provided on the side of the push rod (326); The bottom of the grinding chamber (320) is provided with a material delivery interface (328), and the mixing tank (21) is provided with a material feed interface (213). The material delivery interface (328) and the material feed interface (213) are aligned at a set position, and the push rod (326) is inserted into the material delivery interface (328) and the material feed interface (213); A feeding interface (329) is provided on the top of the grinding chamber (320).

10. The turning type ferrite particle sand milling and pulping device according to claim 9, characterized in that: A groove (214) is provided in the mixing tank (21) and at the edge of the feed interface (213). A sealing plate (215) is movably connected in the groove (214). A spring ring (216) is fixed on the sealing plate (215), and one end of the spring ring (216) is fixed in the groove (214). A discharge interface (212) is provided at one end of the mixing tank (21).