Diatomite wall material processing equipment and processing technology
By designing diatomaceous earth wall processing equipment with connecting turntables and automatic cleaning mechanisms, the problems of uneven material delivery and poor mixing effects in traditional equipment are solved, and a more efficient production process and more flexible equipment use are achieved.
Patent Information
- Application Number
- CN202510295952.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-05-13
AI Technical Summary
Traditional diatomaceous earth wall processing equipment has problems such as uneven material placement, poor mixing effect, insufficient equipment flexibility and lack of effective cleaning methods.
A diatomaceous earth wall processing equipment including a mounting frame, a suspension frame and a connecting turntable is designed. The rotating mechanism connecting the turntable is used to achieve uniform drop and stirring of materials, and a combination structure of lifting ring and elastic block is set for automatic cleaning.
Improves mixing uniformity, reduces manual operation, improves productivity, and enhances the flexibility and versatility of the equipment.
Smart Images

Figure CN119974170A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of building material processing, in particular to diatomite wall material processing equipment and a processing technology. Background Art
[0002] As an environmentally friendly and high-performance decorative material, the processing of diatomite wall materials requires precise control of the ratio and mixing uniformity of various raw materials. Traditional diatomite wall material processing equipment often adopts a single feeding and stirring method, which has problems such as uneven material feeding, poor mixing effect, and insufficient equipment flexibility. Especially in the material feeding link, traditional equipment usually requires manual operation, which is not only inefficient, but also difficult to achieve accurate timing and quantitative feeding.
[0003] In addition, traditional equipment often lacks the necessary rotation mechanism during the mixing process, which makes it easy for materials to form accumulation and dead corners in the storage barrel, affecting the uniformity of mixing. At the same time, traditional equipment lacks effective means to clean the residual materials in the collection barrel, and often needs to be cleaned by manual knocking or disassembly of the collection barrel, which not only increases the difficulty of operation, but also reduces production efficiency. Summary of the invention
[0004] The purpose of the present invention is to provide diatomite wall material processing equipment and processing technology to solve the problems raised in the above background technology.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: diatomite wall material processing equipment comprises a mounting frame, which is mounted on the top of a material storage barrel, a hanging frame is provided in the middle of the mounting frame, a connecting turntable is rotatably connected between the mounting frame and the hanging frame, the top of the mounting frame and the hanging frame are connected through the connecting frame, a spherical roller is fixed on the top surface of the connecting frame, a plurality of feeding ports are provided on the surface of the connecting turntable, a collecting barrel is provided below the feeding ports, the top of the collecting barrel is fixed to the bottom surface of the connecting turntable, a discharging port is provided at the bottom end of the collecting barrel, a cover plate is plugged into the top of the feeding port, a driving gear is rotatably connected to one side of the connecting frame, the driving gear meshes with teeth, a plurality of teeth are provided, and the plurality of teeth are fixed on the outer ring surface of the connecting turntable, a lifting ring is sleeved on the outer side of the hanging frame, a spring block is inserted on the outer ring surface of the lifting ring, the spring block and the collecting barrel correspond one to one, a plurality of limiting rings are sleeved and fixed on the outer side of the collecting barrel, and an agitator is installed inside the hanging frame.
[0006] Preferably, flanges are fixed to the bottom ends of the mounting frame and the storage barrel, the two flanges are connected by bolts, a plurality of legs are fixed to the bottom surface of the storage barrel, and a discharge valve tube is provided in the center of the bottom end of the storage barrel.
[0007] Preferably, the mounting frame is a circular frame with an "L"-shaped cross-section, the suspension frame is a circular frame structure in a "T" shape, the connecting turntable is an annular plate with a "H"-shaped cross-section, sealing gaskets are fixed in both the inner ring opening and the outer ring groove of the connecting turntable, the two sealing gaskets are of different sizes, both sealing gaskets are annular plates with a "匚"-shaped cross-section, the connecting frame is an arc-shaped plate with a "匚"-shaped cross-section, there are multiple connecting frames, and the multiple connecting frames are circumferentially distributed around the suspension frame as the central axis.
[0008] Preferably, there are six feeding ports, and the two feeding ports are circumferentially distributed around the suspension frame as the central axis. A plug block is inserted into the interior of the discharging port. The plug block is of a cylindrical structure, the diameter of the plug block is larger than the caliber of the discharging port, round table blocks are integrally formed at both the top end and the bottom end of the plug block, one round table block is inserted into the discharging port, an installation groove is formed in the bottom surface of the plug block, a servo motor I is fixed inside the installation groove, the power output end of the servo motor I is in transmission connection with a spiral feeding shaft, the top end of the plug block is fixed at the bottom end of the piston rod of an electric telescopic rod, the electric telescopic rod is fixed in a placing frame, multiple connecting rods are fixed on the outer wall of the placing frame, and one end of each connecting rod is fixed on the surface of the feeding port.
[0009] Preferably, the cover plate is a circular plate structure in an inverted "凸" shape, an external thread is provided at the bottom of the cover plate, an internal thread is provided at the top of the notch of the feeding port, and the internal thread and the external thread are in fit connection. A notch is formed in the top surface of the cover plate, a screwing handle is fixed on the surface of the notch, and a reserved port is formed in the top surface of the connecting frame.
[0010] Preferably, a notch is formed in the surface of the connecting frame, a connecting plate is fixed on the surface of the connecting frame, a servo motor II is fixed on the top surface of the connecting plate, the rotating shaft of the servo motor II penetrates through the connecting plate and is then fixed on the top surface of a driving gear, one side of the driving gear extends into the notch and meshes with teeth, a limiting handle is fixed at the bottom end of the driving gear, the limiting handle is inserted into a bearing, the bottom surface of the outer ring of the bearing is fixed on the top surface of the mounting frame, the height of the inner ring of the bearing is less than the height of the outer ring of the bearing, and the inner ring of the bearing is suspended.
[0011] Preferably, connecting blocks are fixed on the inner ring surface of the connecting turntable, there are multiple connecting blocks, the multiple connecting blocks are arranged in an equidistant and equal-size distribution along the inner ring opening of the connecting turntable, a hand-tightening screw is screwed on the top surface of each connecting block, a positioning hole is formed in the top surface of the suspension frame, and after the hand-tightening screw is screwed downward, it is inserted into the positioning hole for braking the connecting turntable.
[0012] Preferably, two through holes are formed in the surface of the lifting ring, a guide rod and a lead screw are respectively inserted into the two through holes, stop blocks are fixed at the bottom ends of the lead screw and the guide rod, and a thread sleeve is fixed on the bottom surface of the lifting ring, and the thread sleeve is sleeved and screwed on the lead screw.
[0013] Preferably, the outer ring surface of the lifting ring is provided with a plurality of embedding grooves, the embedding grooves and the spring blocks correspond one to one, the spring blocks are inserted in the embedding grooves, the rod length of the spring blocks is smaller than the depth of the embedding grooves, a spring is fixed between the spring blocks and the embedding grooves, an end of the spring blocks extending out of the embedding grooves is provided with an arc surface, and the limiting ring is a circular ring structure with a semicircular cross-section.
[0014] A processing technology for diatomite wall material, the process comprising the following methods:
[0015] Silica sand, micro-nano tourmaline, nano zinc oxide, nano titanium dioxide, inorganic gel powder and diatomaceous earth are placed in six collecting barrels for storage respectively, and then the cover plates are screwed on the corresponding collecting barrels to achieve sealing of the collecting barrels;
[0016] Start the agitator, extract the plugs at the bottom of the two aggregate barrels containing silica sand and micro-nano tourmaline upward, and the silica sand and micro-nano tourmaline fall into the storage barrel and are mixed and stirred by the agitator for five minutes. After stirring evenly, extract the plugs at the bottom of the aggregate barrel where the nano-zinc oxide and nano-titanium dioxide are located, put the nano-zinc oxide and nano-titanium dioxide into the storage barrel, stir for ten minutes until they are uniform, then extract the plugs at the bottom of the aggregate barrel where the inorganic gel powder is located, add the inorganic gel powder into the storage barrel, stir for ten minutes, then add diatomaceous earth, mix and stir for five minutes, and obtain the diatomaceous earth wall material.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] The diatomite wall material processing equipment and processing technology proposed by the present invention can rotate under the drive of servo motor 2 through the connecting turntable in the equipment, so that the collecting barrel can evenly spread the material in the storage barrel during the downward feeding process. This rotation mechanism effectively avoids the accumulation and dead corner of the material in the storage barrel, and improves the mixing uniformity. The equipment is also provided with a combination structure of a lifting ring and a spring block, which is used to automatically clean the residual material adhering to the inner wall of the collecting barrel during the downward feeding process of the collecting barrel. When there is less residual material inside the collecting barrel, the lifting ring descends and drives the spring block to knock the collecting barrel, thereby shaking off the residual material adhering to the inner wall of the collecting barrel. This automatic cleaning method not only improves production efficiency, but also reduces the workload of manual operation. The mounting frame and the hanging frame of the equipment are rotatably connected by the connecting turntable, so that the equipment has versatility and flexibility. The mounting frame can be removed from the top of the storage barrel and inverted as a transport frame, which is convenient for the movement and transfer of the equipment. At the same time, the inner ring surface of the connecting turntable is also provided with a connecting block and a hand screw, which is used to brake the connecting turntable when necessary to ensure the stable operation of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the structure of the present invention;
[0020] Figure 2It is a top view of the structure of the present invention;
[0021] Figure 3 for Figure 2 Structural cross-section view at AA in the middle;
[0022] Figure 4 for Figure 3 A schematic diagram of the structure enlargement in the middle;
[0023] Figure 5 for Figure 3 A magnified schematic diagram of the structure at B in the middle;
[0024] Figure 6 for Figure 3 A magnified schematic diagram of the structure at C in the middle;
[0025] Figure 7 This is a schematic diagram of the structure of the mounting frame of the present invention after being inverted;
[0026] Figure 8 This is a schematic diagram of the connection structure between the rotating disk and the cover plate of the present invention;
[0027] Fig. 9 This is a schematic diagram of the connection structure of the rotating disk and the collecting barrel of the present invention;
[0028] Fig.10 This is a schematic diagram of the connection structure between the mounting frame and the suspension frame of the present invention;
[0029] Fig.11 It is a schematic diagram of the lifting ring structure of the present invention.
[0030] In the figure: mounting frame 1, storage barrel 2, hanging frame 3, connecting turntable 4, sealing gasket 5, connecting frame 6, reserved port 7, spherical roller 8, feeding port 9, collecting barrel 10, discharging port 11, plug block 12, mounting groove 13, servo motor 1 14, spiral feeding shaft 15, electric telescopic rod 16, placing frame 17, connecting rod 18, cover plate 19, missing groove 20, screw handle 21, notch 22, connecting plate 23, servo motor 2 24, driving gear 25, teeth 26, limit handle 27, bearing 28, lifting ring 29, perforation 30, guide rod 31, screw rod 32, screw sleeve 33, stopper 34, embedded groove 35, spring block 36, spring 37, limit ring 38, feeding pipe 39, agitator 40, connecting block 41, hand screw 42, positioning hole 43, servo motor 3 44. DETAILED DESCRIPTION
[0031] In order to clearly and completely describe the objectives, technical solutions of the present invention and make the advantages more clearly understood, the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are some, but not all, embodiments of the present invention, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.
[0032] Embodiment 1. Please refer to Figures 1 to 11 , the present invention provides a technical solution: a diatomite wall material processing device, including a mounting frame 1, the mounting frame 1 is installed on the top of the storage cylinder 2, flange plates are fixed at the bottom end of the mounting frame 1 and the bottom end of the storage cylinder 2, and the two flange plates are connected by bolts. A plurality of legs are fixed on the bottom surface of the storage cylinder 2, and a discharge valve pipe is provided in the center of the bottom end of the storage cylinder 2; a suspension frame 3 is provided in the middle of the mounting frame 1, and a connecting turntable 4 is rotatably connected between the mounting frame 1 and the suspension frame 3. The mounting frame 1 is a circular frame with an "L"-shaped cross-section, the suspension frame 3 is a "T"-shaped circular frame structure, the connecting turntable 4 is an annular plate with a "H"-shaped cross-section, and sealing gaskets 5 are fixed in both the inner ring opening and the outer ring groove of the connecting turntable 4. The two sealing gaskets 5 have different sizes, and both are annular plates with a "匚"-shaped cross-section. The top ends of the mounting frame 1 and the suspension frame 3 are connected by a connecting frame 6, and the connecting frame 6 is an arc plate with a "匚"-shaped cross-section. There are a plurality of connecting frames 6, and the plurality of connecting frames 6 are circumferentially distributed with the suspension frame 3 as the central axis; a spherical roller 8 is fixed on the top surface of the connecting frame 6, and a stirrer 40 is installed inside the suspension frame 3.
[0033] During use, after the mounting frame 1 is fixed to the top of the storage cylinder 2 by bolts, the shaft body of the stirrer 40 extends into the storage cylinder 2. A feeding pipe 39 is inserted and fixed on the surface of the mounting frame 1 for feeding into the storage cylinder 2. After feeding is completed, a screw sleeve is sleeved at the end of the feeding pipe 39 to seal the pipe orifice of the feeding pipe 39. The plurality of connecting frames 6 connect the mounting frame 1 and the suspension frame 3 together to enable the connecting turntable 4 to rotate between the mounting frame 1 and the suspension frame 3. When the mounting frame 1 is removed from the top of the storage cylinder 2 and inverted, the spherical roller 8 cooperates with the connecting frame 6 to support the mounting frame 1. At this time, the mounting frame 1 can be pushed to slide on the ground for transfer. After the mounting frame 1 is inverted, it can be used as a transport frame.
[0034] A plurality of feeding ports 9 are provided on the surface of the connecting turntable 4, and a collecting barrel 10 is provided below the feeding port 9. The top of the collecting barrel 10 is fixed to the bottom surface of the connecting turntable 4, and a discharge port 11 is provided at the bottom end of the collecting barrel 10. There are six feeding ports 9, and two feeding ports 9 are distributed in a circle with the hanging frame 3 as the central axis. A plug block 12 is inserted into the inside of the discharge port 11. The plug block 12 is a cylindrical structure, and the diameter of the plug block 12 is larger than the diameter of the discharge port 11. The top and the bottom of the plug block 12 are integrally formed with a truncated cone block, and a truncated cone block is inserted in the discharge port 11. A mounting groove 13 is provided on the bottom surface of the plug block 12, and a servo motor 14 is fixed inside the mounting groove 13. The servo motor 14 is fixed to the inside of the servo motor 14. The power output end of the motor 14 is transmission-connected with a spiral feed shaft 15, the top of the plug block 12 is fixed to the bottom end of the piston rod of the electric telescopic rod 16, the electric telescopic rod 16 is fixed in the placement rack 17, and a plurality of connecting rods 18 are fixed to the outer wall of the placement rack 17, one end of the connecting rod 18 is fixed to the surface of the feeding port 9; a cover plate 19 is plugged into the top of the feeding port 9, and the cover plate 19 is an inverted "convex" shaped circular plate structure, an external thread is provided at the bottom of the cover plate 19, and an internal thread is provided at the top of the notch of the feeding port 9, the internal thread and the external thread are matched and connected, a notch 20 is provided on the top surface of the cover plate 19, a screw handle 21 is fixed on the surface of the notch 20, and a reserved opening 7 is provided on the top surface of the connecting frame 6.
[0035] When in use, silica sand, micro-nano tourmaline, nano-zinc oxide, nano-titanium dioxide, inorganic gel powder and diatomaceous earth are respectively placed in six collecting barrels 10 for storage, and then the cover plate 19 is screwed into the feeding port 9 at the top of the corresponding collecting barrel 10 to seal the collecting barrel 10. After the mounting frame 1 is installed on the top of the storage barrel 2, when it is necessary to put materials into the storage barrel 2, the switch of the electric telescopic rod 16 in the collecting barrel 10 where the corresponding material is located is triggered, and the electric telescopic rod 16 drives the piston rod to retract, and the pulling plug 12 is pulled out from the discharge port 11. At this time, the inside of the collecting barrel 10 The material is dropped downward from the discharge port 11, and the spiral feed shaft 15 is in the discharge port 11 at this time. In order to avoid blockage of the discharge port 11, after the switch of the servo motor 14 is triggered, the servo motor 14 drives the spiral feed shaft 15 to rotate, and the spiral feed shaft 15 transports the material downward. After the feeding is completed, the piston rod of the electric telescopic rod 16 is extended to push the bottom end of the plug block 12 into the discharge port 11 to achieve sealing of the bottom of the collecting barrel 10. In this way, the cover is opened for feeding, and according to the needs of the processing flow, the materials in the six collecting barrels 10 can be fed at a specified time.
[0036] One side of the connecting frame 6 is rotatably connected with a driving gear 25, and the driving gear 25 meshes with teeth 26. There are multiple teeth 26, and the multiple teeth 26 are fixed to the outer ring surface of the connecting turntable 4. A notch 22 is opened on the surface of the connecting frame 6, and a connecting plate 23 is fixed on the surface of the connecting frame 6. A servo motor 24 is fixed on the top surface of the connecting plate 23. The rotating shaft of the servo motor 24 passes through the connecting plate 23 and is fixed to the top surface of the driving gear 25. One side of the driving gear 25 extends into the notch 22 and meshes with the teeth 26. A limiting handle 27 is fixed to the bottom end of the driving gear 25. The handle 27 is inserted into the bearing 28, the bottom surface of the outer ring of the bearing 28 is fixed to the top surface of the mounting frame 1, the inner ring height of the bearing 28 is smaller than the outer ring height of the bearing 28, and the inner ring of the bearing 28 is suspended in the air; a connecting block 41 is fixed to the inner ring surface of the connecting turntable 4, and a plurality of connecting blocks 41 are provided. The plurality of connecting blocks 41 are arranged and distributed at equal distances and sizes along the inner ring opening of the connecting turntable 4, a hand screw 42 is screwed on the top surface of the connecting block 41, and a positioning hole 43 is opened on the top surface of the suspension frame 3. The hand screw 42 is screwed downward and inserted into the positioning hole 43 for braking the connecting turntable 4.
[0037] When in use, the switches of multiple groups of servo motors 24 are triggered at the same time, and the multiple groups of servo motors 24 drive the corresponding driving gears 25 to rotate in the same direction. After the multiple driving gears 25 engage the teeth 26, they drive the connecting turntable 4 to rotate. In the process of the collecting barrel 10 feeding downward, the connecting turntable 4 is driven to rotate. In this way, during the process of the mounting frame 1 stirring the material inside the storage barrel 2, due to the rotation of the connecting turntable 4, the collecting barrel 10 evenly scatters the material in the storage barrel 2 to avoid concentrated scattering of the material; when it is necessary to brake the connecting turntable 4, turn off the switch of the servo motor 24, and screw the hand screw 42 downward to insert it into the positioning hole 43.
[0038] The outer side of the suspension frame 3 is sleeved with a lifting ring 29, and the outer ring surface of the lifting ring 29 is plugged with a spring block 36, and the spring block 36 corresponds to the collecting barrel 10 one by one. The outer side of the collecting barrel 10 is sleeved with a plurality of limit rings 38, and the surface of the lifting ring 29 is provided with two through holes 30, and the insides of the two through holes 30 are respectively plugged with a guide rod 31 and a screw rod 32, and the bottom ends of the screw rod 32 and the guide rod 31 are fixed with a stopper 34, and the bottom surface of the lifting ring 29 is fixed with a screw rod 38. The sleeve 33 is threadedly connected to the screw rod 32. The outer ring surface of the lifting ring 29 is provided with a plurality of embedding grooves 35. The embedding grooves 35 correspond to the spring blocks 36 one by one. The spring blocks 36 are inserted into the embedding grooves 35. The rod length of the spring blocks 36 is less than the depth of the embedding grooves 35. A spring 37 is fixed between the spring blocks 36 and the embedding grooves 35. One end of the spring blocks 36 extending out of the embedding grooves 35 is provided with an arc surface. The limiting ring 38 is a circular ring structure with a semicircular cross section.
[0039] During use, during the downward feeding process of the collecting barrel 10, when there is less residual material inside the collecting barrel 10, it is necessary to knock the collecting barrel 10 to shake off the residual material adhering to the inner wall of the collecting barrel 10, triggering the switch of the servo motor 3 44. During the process of the servo motor 3 44 driving the screw rod 32 to rotate, the screw rod 32 and the wire sleeve 33 cooperate to drive the lifting ring 29 to descend. The servo motor 3 44 is a bidirectional motor. When the lifting ring 29 reaches the bottom end of the screw rod 32, the servo motor 3 44 drives the screw rod 32 to rotate in the opposite direction. The lifting ring 29 rises along the suspension frame 3. During the lifting process of the lifting ring 29, when the spring block 36 contacts the limit ring 38, as the lifting ring 29 moves, the spring block 36 is squeezed by the limit ring 38 to retract into the mounting groove 35, and the spring block 36 squeezes the spring 37 to deform. Until the spring block 36 passes over the limit ring 38, the spring 37 rebounds and pushes the spring block 36 back to hit the collection barrel 10. In the process of the spring block 36 reciprocating over multiple limit rings 38, the collection barrel 10 is repeatedly hit.
[0040] The use process of diatomite wall material processing equipment is as follows:
[0041] Fix the mounting frame 1 to the top of the storage barrel 2 through flanges and bolts. Ensure that the flanges between the mounting frame 1 and the storage barrel 2 are tightly connected and leak-free. Extend the shaft of the agitator 40 into the storage barrel 2 to ensure that the agitator can work normally. Put silica sand, micro-nano tourmaline, nano-zinc oxide, nano-titanium dioxide, inorganic gel powder and diatomaceous earth into six collecting barrels 10 respectively. Screw the cover plate 19 into the feeding port 9 at the top of the corresponding collecting barrel 10 to seal the collecting barrel 10. Start multiple groups of servo motors 24, drive the driving gear 25 to rotate in the same direction, and drive the connecting turntable 4 to rotate through the teeth 26. According to the processing flow requirements, trigger the switch of the electric telescopic rod 16 in the collecting barrel 10 where the corresponding material is located at the specified time, so that the plug 12 is pulled out from the discharge port 11, and start the servo motor 14 at the same time to drive the spiral feed shaft 15 to rotate, and evenly scatter the material in the storage barrel 2. While the materials are being added, the agitator 40 is started to stir the materials inside the storage barrel 2 to ensure that the materials are evenly mixed. When there is less residual material inside the aggregate barrel 10, the servo motor 3 44 is started to drive the screw 32 to rotate, and the lifting ring 29 is driven to descend through the thread sleeve 33. During the descent of the lifting ring 29, the spring block 36 is pushed into the embedding groove 35 when it contacts the limit ring 38, and the spring 37 is squeezed to deform. After the spring block 36 passes over the limit ring 38, the spring 37 rebounds and pushes the spring block 36 back and forth, knocking the aggregate barrel 10, and shaking off the residual material adhered to the inner wall of the aggregate barrel 10. During the lifting and lowering of the lifting ring 29, the spring block 36 reciprocates over multiple limit rings 38 to achieve repeated knocking of the aggregate barrel 10. After the materials are added and mixed, turn off the switches of all motors and electric telescopic rods.
[0042] When it is necessary to disassemble the mounting frame 1, first turn off all power supplies and switches. Loosen the bolts connecting the mounting frame 1 and the storage barrel 2, and remove the mounting frame 1 from the top of the storage barrel 2. After the mounting frame 1 is inverted, the spherical rollers 8 cooperate with the connecting frame 6 to support the mounting frame 1. At this time, the mounting frame 1 can be pushed to slide on the ground and transferred. After the mounting frame 1 is inverted, it can be used as a transport frame.
[0043] Embodiment 2, based on embodiment 1, proposes a processing technology of diatomite wall material, the process comprising the following methods:
[0044] Silica sand, micro-nano tourmaline, nano zinc oxide, nano titanium dioxide, inorganic gel powder and diatomaceous earth are placed in six collecting barrels 10 for storage, and then the cover plate 19 is screwed on the corresponding collecting barrel 10 to achieve sealing of the collecting barrel 10;
[0045] Start the agitator 40, and extract the plugs 12 at the bottom of the two collecting barrels 10 containing silica sand and micro-nano tourmaline upward, and the silica sand and micro-nano tourmaline fall into the storage barrel 2, and are mixed and stirred by the agitator 40 for five minutes. After stirring evenly, extract the plugs 12 at the bottom of the collecting barrel 10 where the nano-zinc oxide and nano-titanium dioxide are located, put the nano-zinc oxide and nano-titanium dioxide into the storage barrel 2, and stir for ten minutes until they are uniform, and then extract the plugs 12 at the bottom of the collecting barrel 10 where the inorganic gel powder is located, add the inorganic gel powder into the storage barrel 2, stir for ten minutes, and then add diatomaceous earth, mix and stir for five minutes, and then obtain the diatomaceous earth wall material.
[0046] Although 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 the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A diatomite wall material processing device, comprising a mounting frame (1), the mounting frame (1) being mounted on the top of a material storage barrel (2), characterized in that: A suspension bracket (3) is provided in the middle of the mounting bracket (1). A connecting turntable (4) is rotatably connected between the mounting bracket (1) and the suspension bracket (3). The tops of the mounting bracket (1) and the suspension bracket (3) are connected by a connecting frame (6). A spherical roller (8) is fixed on the top surface of the connecting frame (6). A plurality of feeding ports (9) are formed on the surface of the connecting turntable (4). An aggregate cylinder (10) is provided below the feeding port (9). The top end of the aggregate cylinder (10) is fixed to the bottom surface of the connecting turntable (4). The bottom end of the aggregate cylinder (10) is provided with a discharge port (11). A cover plate (19) is inserted at the top end of the feeding port (9). A driving gear (25) is rotatably connected to one side of the connecting frame (6). The driving gear (25) meshes with a plurality of teeth (26). The plurality of teeth (26) are all fixed on the outer ring surface of the connecting turntable (4). A lifting ring (29) is sleeved outside the suspension bracket (3). A spring block (36) is inserted on the outer ring surface of the lifting ring (29). The spring blocks (36) correspond to the aggregate cylinders (10) one by one. A plurality of limiting rings (38) are sleeved and fixed outside the aggregate cylinder (10). A stirrer (40) is installed inside the suspension bracket (3).
2. The diatomite wall material processing equipment according to claim 1, characterized in that: Flange plates are fixed to the bottom ends of the mounting bracket (1) and the storage cylinder (2). The two flange plates are connected by bolts. A plurality of legs are fixed to the bottom surface of the storage cylinder (2), and a discharge valve pipe is provided in the center of the bottom end of the storage cylinder (2).
3. The diatomite wall material processing equipment according to claim 1, characterized in that: The mounting bracket (1) is a circular frame with an "L"-shaped cross-section. The suspension bracket (3) is a circular frame structure with a "T"-shaped cross-section. The connecting turntable (4) is an annular plate with a "工"-shaped cross-section. Sealing gaskets (5) are fixed in both the inner ring opening and the outer ring groove of the connecting turntable (4). The two sealing gaskets (5) have different sizes. Both of the two sealing gaskets (5) are annular plates with a "匚"-shaped cross-section. The connecting frame (6) is an arc plate with a "匚"-shaped cross-section. There are a plurality of connecting frames (6), and the plurality of connecting frames (6) are circumferentially distributed around the suspension bracket (3) as the central axis.
4. The diatomite wall material processing equipment according to claim 1, characterized in that: Six feeding ports (9) are provided. Two feeding ports (9) are circumferentially distributed around the suspension bracket (3) as the central axis. A plug block (12) is inserted inside the discharge port (11). The plug block (12) is a cylindrical structure. The diameter of the plug block (12) is larger than the diameter of the discharge port (11). Round table blocks are integrally formed at both the top end and the bottom end of the plug block (12). One round table block is inserted into the discharge port (11). An installation groove (13) is formed on the bottom surface of the plug block (12). A servo motor I (14) is fixed inside the installation groove (13). The power output end of the servo motor I (14) is drivingly connected to a spiral feeding shaft (15). The top end of the plug block (12) is fixed to the bottom end of the piston rod of an electric telescopic rod (16). The electric telescopic rod (16) is fixed in a placement rack (17). A plurality of connecting rods (18) are fixed to the outer wall of the placement rack (17). One end of each connecting rod (18) is fixed to the surface of the feeding port (9).
5. The diatomite wall material processing equipment according to claim 1, characterized in that: The cover plate (19) is an inverted "convex" shaped circular plate structure, the bottom of the cover plate (19) is provided with an external thread, the top of the slot of the feeding port (9) is provided with an internal thread, the internal thread and the external thread are matched and connected, the top surface of the cover plate (19) is provided with a notch (20), the surface of the notch (20) is fixed with a screw handle (21), and the top surface of the connecting frame (6) is provided with a reserved opening (7).
6. The diatomite wall material processing equipment according to claim 1, characterized in that: A notch (22) is provided on the surface of the connecting frame (6), a connecting plate (23) is fixed on the surface of the connecting frame (6), a servo motor 2 (24) is fixed on the top surface of the connecting plate (23), a rotating shaft of the servo motor 2 (24) passes through the connecting plate (23) and is fixed on the top surface of a driving gear (25), one side of the driving gear (25) extends into the notch (22) and engages with the teeth (26), a limiting handle (27) is fixed on the bottom end of the driving gear (25), the limiting handle (27) is inserted into a bearing (28), the bottom surface of the outer ring of the bearing (28) is fixed on the top surface of the mounting frame (1), the inner ring height of the bearing (28) is less than the outer ring height of the bearing (28), and the inner ring of the bearing (28) is suspended.
7. The diatomite wall material processing equipment according to claim 1, characterized in that: A connecting block (41) is fixed to the inner ring surface of the connecting turntable (4), a plurality of connecting blocks (41) are provided, and the plurality of connecting blocks (41) are arranged and distributed at equal distances and in equal sizes along the inner ring opening of the connecting turntable (4), a hand screw (42) is screwed to the top surface of the connecting block (41), a positioning hole (43) is provided on the top surface of the suspension frame (3), and the hand screw (42) is inserted into the positioning hole (43) after being screwed downwards, so as to brake the connecting turntable (4).
8. The diatomite wall material processing equipment according to claim 1, characterized in that: The surface of the lifting ring (29) is provided with two through holes (30), the insides of the two through holes (30) are respectively plugged with a guide rod (31) and a screw rod (32), the bottom ends of the screw rod (32) and the guide rod (31) are both fixed with a stopper (34), and the bottom surface of the lifting ring (29) is fixed with a threaded sleeve (33), which is sleeved and screwed on the screw rod (32).
9. The diatomite wall material processing equipment according to claim 1, characterized in that: The outer ring surface of the lifting ring (29) is provided with a plurality of embedding grooves (35), the embedding grooves (35) and the spring blocks (36) correspond to each other one by one, the spring blocks (36) are inserted into the embedding grooves (35), the rod length of the spring blocks (36) is less than the depth of the embedding grooves (35), a spring (37) is fixed between the spring blocks (36) and the embedding grooves (35), one end of the spring blocks (36) extending out of the embedding grooves (35) is provided with an arc surface, and the limiting ring (38) is a circular ring structure with a semicircular cross section.
10. A process for processing diatomite wall material according to any one of claims 1 to 9, characterized in that: The process comprises the following methods: Silica sand, micro-nano tourmaline, nano-zinc oxide, nano-titanium dioxide, inorganic gel powder and diatomaceous earth are respectively placed in six collecting barrels (10) for storage, and then a cover plate (19) is screwed onto the corresponding collecting barrel (10) to achieve sealing of the collecting barrel (10); The agitator (40) is started, and the plugs (12) at the bottom of the two collecting barrels (10) containing silica sand and micro-nano tourmaline are pulled upward, and the silica sand and micro-nano tourmaline fall into the storage barrel (2), and are mixed and stirred by the agitator (40) for five minutes. After being stirred evenly, the plugs (12) at the bottom of the collecting barrel (10) where the nano-zinc oxide and nano-titanium dioxide are located are pulled out, and the nano-zinc oxide and nano-titanium dioxide are added to the storage barrel (2) and stirred for ten minutes until they are uniform. Then, the plugs (12) at the bottom of the collecting barrel (10) where the inorganic gel powder is located are pulled out, and the inorganic gel powder is added to the storage barrel (2). After stirring for ten minutes, diatomaceous earth is added and mixed and stirred for five minutes to obtain the diatomaceous earth wall material.