Flying powder treatment equipment for putty powder production and processing
Through air conduction device and inertial separation combined with water flow collection, the problem of low efficiency of traditional equipment is solved, efficient collection and settlement is achieved, production costs and maintenance difficulties are reduced, and air quality is improved.
Patent Information
- Application Number
- CN202510673254.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-08-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional flying powder processing equipment is inefficient, difficult to meet the needs of large-scale production, and high maintenance costs, resulting in a decrease in air quality in the production workshop, endangering workers' health and increasing production costs.
A flying powder treatment device including an air conductor device, an air intake device, a separation device and a filter device is designed. The flying powder is guided by an arc-shaped air conductor inner plate and a fan assembly, and the flying powder is collected through inertial separation and water flow, and the spraying device accelerates settlement.
It improves the efficiency of flying powder collection, reduces direct absorption of the production area, reduces maintenance costs, and accelerates settlement through water flow filtration and spraying devices, avoids the secondary flying of flying powder, and improves production efficiency and air quality.
Smart Images

Figure CN120459751A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of fly powder treatment, in particular to fly powder treatment equipment for putty powder production and processing. Background Art
[0002] Putty powder is widely used in the construction industry, and its production scale is continuously expanding. Its production involves multiple steps, including raw material mixing, grinding, and stirring. Each step generates a large amount of fly ash, which escapes into the air, causing a decline in air quality in and around the production workshop, seriously polluting the environment. Long-term inhalation of dusty air by workers can lead to respiratory diseases such as pneumoconiosis, which are harmful to their health. Fly ash also causes loss of putty powder raw materials, increasing production costs and reducing productivity. When dry powder materials are stirred at high speed or mixed in airflow, fine particles escape into the air due to airflow disturbances.
[0003] Traditional fly ash treatment equipment is inefficient and unable to meet the needs of large-scale production. Some equipment has poor handling capacity for fine dust, high maintenance costs, and complex operation. Summary of the Invention
[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: A fly powder treatment device for putty powder production and processing, comprising a device bottom plate, the top of the device bottom plate is fixedly connected to a bottom plate bracket, the top of the bottom plate bracket is fixedly connected to an air guide device, the side of the air guide device is connected to an air intake device, the side of the air intake device away from the air guide device is connected to a separation device, the bottom of the separation device is connected to a filter device, the top of the filter device is fixedly connected to a spray device, the top of the spray device extends into the interior of the separation device and is fixedly connected to the separation device;
[0005] The air guide device includes an arc-shaped air guide inner plate, the side of the arc-shaped air guide inner plate is fixedly connected to an air guide bracket, the side of the air guide bracket is fixedly connected to an arc-shaped air guide outer plate, the side of the arc-shaped air guide outer plate is fixedly connected to the arc-shaped air guide plate, and the part of the arc-shaped air guide outer plate located on one side of the arc-shaped air guide plate is provided with an air outlet, the bottom of the air guide bracket is fixedly connected to the top of the base plate bracket, and the side of the arc-shaped air guide outer plate is connected to the side of the air intake device through the air outlet.
[0006] Preferably, the air intake device includes an air intake pipe, the inner wall of the air intake pipe is fixedly connected to an arc-shaped bracket, the side of the air intake pipe is connected to a contraction tube, the side of the contraction tube away from the air intake pipe is connected to an eccentric tube, the side of the arc-shaped bracket is fixedly connected to a fan assembly, the side of the air intake pipe is connected to the arc-shaped air guide outer plate through the air outlet, the eccentric tube is connected to the side of the separation device, the interior of the arc-shaped air guide inner plate is moved to the bottom and top of the production line, wrapping the area where flying powder is generated, and the flying powder is driven by air flow to be guided along the arc-shaped air guide plate, and enters the air outlet along the gap between the arc-shaped air guide inner plate and the arc-shaped air guide outer plate The flying powder is guided inside and along the air intake device, and the flying powder is moved along the gap between the arc-shaped air guide inner plate and the arc-shaped air guide outer plate by enveloping air around the flying powder generating area. At the same time, since the interior of the arc-shaped air guide inner plate is wrapped around the top and top of the flying powder generating area and is guided and absorbed by the arc-shaped air guide plate, it avoids direct absorption of the production area, thereby avoiding reducing production efficiency. When the air drives the flying powder past the arc-shaped air guide plate, the air is extracted to collect the flying powder that is about to fly out of the processing area, thereby limiting the flying powder to a certain area and avoiding absorption of the product to affect the output.
[0007] Preferably, the fan assembly includes a first motor, a first fan fixedly connected to the driving shaft of the first motor, a first gear ring fixedly connected to the side of the first fan, a reversing gear meshed with the side of the first gear ring, a fixed shaft rotatably connected to the side of the reversing gear, a protective cover sleeved on the side of the first gear ring and fixedly connected, a second gear ring meshed with the side of the reversing gear, a second fan fixedly connected to the side of the second gear ring, a fan bracket fixedly connected to the side of the fixed shaft, the second fan sleeved on the side of the fixed shaft and rotatably connected to the fixed shaft, the side of the first motor is fixedly connected to the side of the arc bracket, the side of the fan bracket is fixedly connected to the inner wall of the intake pipe, the first motor is started, the driving shaft of the first motor rotates to drive the first fan to rotate, the first fan rotates to drive the first gear ring, the first gear ring drives the reversing gear to rotate, and the reversing gear The gear drives the second gear ring to rotate, and the rotation of the second gear ring drives the second fan to rotate. The rotation of the first gear ring drives the protective cover to rotate. The reverse rotation of the first fan and the second fan increases the shearing effect on the air, thereby increasing the air flow, thereby driving the air along the arc-shaped air guide inner plate and the arc-shaped air guide outer plate into the interior of the air intake pipe. The arc design of the arc bracket reduces the possibility of flying powder adhering to the surface of the arc bracket, and scrapes the side of the fan bracket by the second fan to avoid flying powder adhering to the side of the fan bracket, thereby preventing flying powder from accumulating. At the same time, the arc-shaped guide of the protective cover and its own rotation prevent flying powder from adhering to the side of the reversing gear and affecting the rotation speed, thereby achieving increased air flow while avoiding the accumulation of flying powder, and increasing the air flow rate by reducing the air cross-section through the contraction tube, and increasing the efficiency of inertial separation through the eccentric introduction of the eccentric tube.
[0008] Preferably, the separation device includes a separation air inlet pipe, the bottom of the separation air inlet pipe is connected to a conical outer pipe, the bottom of the conical outer pipe is connected to a discharge outer pipe, the inner wall of the separation air inlet pipe is fixedly connected to a separation component, the side of the separation air inlet pipe is provided with an air outlet pipe, the top of the separation air inlet pipe is connected to an air inlet, the eccentric pipe is connected to the side of the separation air inlet pipe through the air outlet pipe, and the discharge outer pipe extends into the interior of the filter device and is fixedly connected to the filter device.
[0009] Preferably, the separation assembly includes a conical separation inner tube, the side of the conical separation inner tube is connected to a filter head, the top side of the conical separation inner tube is fixedly connected to a separating ring, the bottom of the conical separation inner tube is connected to a discharge inner tube, the discharge inner tube extends into the interior of the filter device, and the conical separation inner tube is fixedly connected to the inner wall of the separation inlet pipe through the separating ring.
[0010] Preferably, the filtering device includes a water reservoir, the bottom of which is connected to a conical water reservoir, the top of which is fixedly connected to a separation filter screen, the bottom of the water reservoir is fixedly connected to the top of the base plate bracket, and the separation filter screen extends into the interior of the conical water reservoir and is fixedly connected to the side of the separation filter screen.
[0011] Preferably, the spraying device includes an electric water pump, the water outlet end of the electric water pump is connected to a water supply pipe, the end of the water supply pipe away from the electric water pump is connected to a first rotating joint, the side of the first rotating joint is connected to a second rotating joint, the side of the second rotating joint is connected to a nozzle, the side of the first rotating joint between the second rotating joints is fixedly connected to an air guide plate, the first rotating joint is arranged inside the separation air inlet pipe, the water supply pipe passes through the side of the air inlet and is fixedly connected to the air inlet, the water inlet end of the electric water pump is connected to the top of the water reservoir, and the flying powder falls along the outer discharge pipe and the inner discharge pipe under the action of gravity, thereby entering the interior of the conical water reservoir, and the water inside the conical water reservoir is stored so that the flying powder is collected The flying powder is collected efficiently in the water, and the flying powder is filtered and intercepted by the separation filter, so as to prevent the flying powder from entering the supernatant inside the water tank, and the supernatant on the top of the water tank is driven to move by the electric water pump, thereby driving the supernatant to enter the inside of the water supply pipe and pass through the inside of the first rotary joint to reach the second rotary joint, and is sprayed along the nozzle, and the air movement drives the air guide plate to move, thereby driving the first rotary joint to rotate through the air guide plate while assisting the nozzle to spray water, so that the water and flying powder are mixed and settled, thereby accelerating the separation efficiency, and flushing the inside of the conical separation inner tube, thereby avoiding the accumulation of flying powder, and the diffusion of the rotating airflow increases the flushing efficiency.
[0012] The present invention provides a fly powder treatment device for putty powder production and processing, which has the following beneficial effects:
[0013] 1. The flying powder processing equipment for the production and processing of putty powder is provided with an arc-shaped air guide inner plate, which moves the interior of the arc-shaped air guide inner plate to the bottom and top of the production line to wrap the area where flying powder is generated. The flying powder is driven by air flow to be guided along the arc-shaped air guide plate, and enters the interior of the air outlet along the gap between the arc-shaped air guide inner plate and the arc-shaped air guide outer plate and is guided along the air intake device. By enveloping air around the flying powder generating area, the flying powder is moved along the gap between the arc-shaped air guide inner plate and the arc-shaped air guide outer plate. At the same time, since the interior of the arc-shaped air guide inner plate is wrapped around the top and top of the flying powder generating area, and is guided and absorbed by the arc-shaped air guide plate, direct absorption of the production area is avoided, thereby avoiding reduction in production efficiency. When the air drives the flying powder to pass near the arc-shaped air guide plate, the air is extracted to collect the flying powder that is about to fly out of the processing area, thereby limiting the flying powder to a certain area while avoiding absorption of the product and affecting the output.
[0014] 2. The flying powder processing equipment for the production and processing of putty powder is provided with a first motor. The rotation of the driving shaft of the first motor drives the first fan to rotate. The rotation of the first fan drives the first gear ring. The first gear ring drives the reversing gear to rotate. The reversing gear drives the second gear ring to rotate. The rotation of the second gear ring drives the second fan to rotate. The rotation of the first gear ring drives the protective cover to rotate. The reverse rotation of the first fan and the second fan increases the shearing effect on the air, thereby increasing the air flow, thereby driving the air along the arc-shaped air guide inner plate and the arc-shaped air guide outer plate into the interior of the air intake pipe. The arc-shaped design of the arc-shaped bracket reduces the possibility of flying powder adhering to the surface of the arc-shaped bracket, and the side of the fan bracket is scraped by the second fan to avoid flying powder adhering to the side of the fan bracket, thereby preventing flying powder from accumulating.
[0015] 3. The flying powder treatment equipment for the production and processing of putty powder is provided with a protective cover. The arc-shaped guide of the protective cover and its own rotation prevent flying powder from adhering to the side of the reversing gear and affecting the rotation speed, thereby increasing the air flow while avoiding the accumulation of flying powder. The air cross-section is reduced by the contraction tube to increase the air flow rate, and the eccentric introduction of the eccentric tube increases the efficiency of inertial separation.
[0016] 4. The flying powder processing equipment for the production and processing of putty powder is provided with an eccentric tube. The air enters the interior of the separation inlet pipe along the eccentric tube, rotates through the side of the separation inlet pipe, and enters the interior of the conical separation inner pipe along the guide of the separation ring. The air flow interface is destroyed through the outlet of the filter head, so that the dust is concentrated in the interior of the filter head. Under the action of wind pressure, the air enters between the separation inlet pipe and the conical separation inner pipe along the interior of the filter head and descends under the action of gravity, so that the flying powder is enriched and settled in the interior of the filter device. The air moves downward through the conical guide of the conical separation inner pipe, thereby generating a larger wind pressure, and rises from the center of rotation, so that the separated air is discharged along the air outlet pipe, thereby completing the collection and separation of the flying powder, and the separation process does not require an additional drive device, and maintenance is relatively simple.
[0017] 5. The flying powder processing equipment for the production and processing of putty powder is provided with a device in which flying powder descends along the outer discharge pipe and the inner discharge pipe under the action of gravity, and enters the interior of the conical water reservoir. The water inside the conical water reservoir collects the flying powder in the water, thereby efficiently collecting the flying powder, and filtering and intercepting the flying powder through the separation filter, thereby preventing the flying powder from entering the supernatant inside the water reservoir. The supernatant at the top of the water reservoir is driven to move by an electric water pump, thereby driving the supernatant to enter the interior of the water supply pipe and pass through the interior of the first rotary joint to reach the second rotary joint, and is sprayed along the nozzle, and the movement of the air drives the air guide plate to move, thereby driving the first rotary joint to rotate through the air guide plate while assisting the nozzle to spray water, so that the water and flying powder are mixed and settled, thereby accelerating the separation efficiency, and flushing the interior of the conical separation inner pipe, thereby avoiding the accumulation of flying powder, and the diffusion of the rotating airflow increases the flushing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the structure of the fly powder treatment equipment for the production and processing of putty powder of the present invention;
[0019] Figure 2 Schematic diagram of the structure of the gas guide device of the present invention;
[0020] Figure 3 This is a schematic structural diagram of the air intake device of the present invention;
[0021] Figure 4 This is a schematic structural diagram of a fan assembly according to the present invention;
[0022] Figure 5 This is a schematic structural diagram of the separation device of the present invention;
[0023] Figure 6 This is a schematic diagram of the separation component structure of the present invention;
[0024] Figure 7 This is a schematic structural diagram of the filtering device of the present invention;
[0025] Figure 8 It is a schematic structural diagram of the spraying device of the present invention.
[0026] In the figure: 1. Equipment base plate; 2. Base plate bracket; 3. Air guide device; 4. Air intake device; 5. Separation device; 6. Filter device; 7. Spraying device; 301. Arc-shaped air guide inner plate; 302. Air guide bracket; 303. Arc-shaped air guide outer plate; 304. Arc-shaped air guide plate; 305. Air outlet; 401. Air intake pipe; 402. Arc bracket; 403. Contraction tube; 404. Eccentric tube; 405. Fan assembly; 4051. First motor; 4052. First fan; 4053. First gear ring; 4054. Reversing gear; 4055. Fixed shaft; 4056. Protective cover; 40 57. Second gear ring; 4058. Second fan; 4059. Fan bracket; 501. Separation air inlet pipe; 502. Conical outer pipe; 503. Discharge outer pipe; 504. Separation assembly; 505. Air outlet pipe; 506. Air inlet; 5041. Conical separation inner pipe; 5042. Filter head; 5043. Separation ring; 5044. Discharge inner pipe; 601. Water reservoir; 602. Conical water reservoir; 603. Separation filter; 701. Electric water pump; 702. Water supply pipe; 703. First rotary joint; 704. Second rotary joint; 705. Sprinkler; 706. Wind guide plate. DETAILED DESCRIPTION
[0027] 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.
[0028] See also Figure 1-Figure 2 The present invention provides a technical solution: a fly powder processing equipment for putty powder production and processing, comprising an equipment base plate 1, a base plate bracket 2 is fixedly connected to the top of the equipment base plate 1, an air guide device 3 is fixedly connected to the top of the base plate bracket 2, the side of the air guide device 3 is connected to an air intake device 4, the side of the air intake device 4 away from the air guide device 3 is connected to a separation device 5, the bottom of the separation device 5 is connected to a filter device 6, the top of the filter device 6 is fixedly connected to a spraying device 7, and the top of the spraying device 7 extends into the interior of the separation device 5 and is fixedly connected to the separation device 5.
[0029] The equipment base plate 1 and the base plate bracket 2 support the equipment as a whole. The air guide device 3 extracts and guides the flying powder generated during production, and enters the separation device 5 for inertial separation after being compressed by the air intake device 4. Due to the difference in density between the flying powder and the air, a large centrifugal force is generated when the flying powder moves and rotates inside the separation device 5, thereby separating the flying powder from the air, thereby collecting the flying powder. The separation device 5 guides the flying powder into the interior of the filter device 6, and collects the flying powder through the water flow, thereby promoting the collection of the flying powder inside the water body, facilitating later collection, and preventing the flying powder from flying again. The spraying device 7 sprays water mist on the interior of the separation device 5, thereby accelerating the settling speed of the flying powder.
[0030] The air guide device 3 includes an arc-shaped air guide inner plate 301, the side of the arc-shaped air guide inner plate 301 is fixedly connected to an air guide bracket 302, the side of the air guide bracket 302 is fixedly connected to an arc-shaped air guide outer plate 303, the side of the arc-shaped air guide outer plate 303 is fixedly connected to an arc-shaped air guide plate 304, and the part of the arc-shaped air guide outer plate 303 located on one side of the arc-shaped air guide plate 304 is provided with an air outlet 305, the bottom of the air guide bracket 302 is fixedly connected to the top of the base plate bracket 2, and the side of the arc-shaped air guide outer plate 303 is connected to the side of the air intake device 4 through the air outlet 305.
[0031] The inside of the curved air guide inner plate 301 is moved to the bottom and top of the production line to wrap the area where flying powder is generated. The flying powder is driven by air flow to be guided along the curved air guide plate 304, and enters the inside of the air outlet 305 along the gap between the curved air guide inner plate 301 and the curved air guide outer plate 303 and is guided along the air intake device 4. The flying powder is moved along the gap between the curved air guide inner plate 301 and the curved air guide outer plate 303 by enveloping air pumping around the area where flying powder is generated. At the same time, since the inside of the curved air guide inner plate 301 is wrapped around the top and top of the area where flying powder is generated, and is guided and absorbed by the curved air guide plate 304, direct absorption of the production area is avoided, thereby avoiding reducing production efficiency. When the air drives the flying powder to pass near the curved air guide plate 304, the air is extracted to collect the flying powder that is about to fly out of the processing area, thereby limiting the flying powder to a certain area while avoiding absorption of the product and affecting the output.
[0032] See also Figures 1-4The present invention provides a technical solution: the air intake device 4 includes an air intake pipe 401, the inner wall of the air intake pipe 401 is fixedly connected to an arc-shaped bracket 402, the side of the air intake pipe 401 is connected to a contraction tube 403, the side of the contraction tube 403 away from the air intake pipe 401 is connected to an eccentric tube 404, the side of the arc-shaped bracket 402 is fixedly connected to a fan assembly 405, the side of the air intake pipe 401 is connected to the arc-shaped air guide outer plate 303 through the air outlet 305, and the eccentric tube 404 is connected to the side of the separation device 5.
[0033] The fan assembly 405 includes a first motor 4051, and a first fan 4052 is fixedly connected to the driving shaft of the first motor 4051. A first gear ring 4053 is fixedly connected to the side of the first fan 4052. A reversing gear 4054 is meshed with the side of the first gear ring 4053. The side of the reversing gear 4054 is rotatably connected to a fixed shaft 4055. A protective cover 4056 is sleeved and fixedly connected to the side of the first gear ring 4053. A second gear ring 4057 is meshed with the side of the reversing gear 4054. A second fan 4058 is fixedly connected to the side of the second gear ring 4057. A fan bracket 4059 is fixedly connected to the side of the fixed shaft 4055. The second fan 4058 is sleeved on the side of the fixed shaft 4055 and rotatably connected to the fixed shaft 4055. The side of the first motor 4051 is fixedly connected to the side of the arc-shaped bracket 402, and the side of the fan bracket 4059 is fixedly connected to the inner wall of the intake pipe 401.
[0034] The first motor 4051 is started, and the drive shaft of the first motor 4051 rotates to drive the first fan 4052 to rotate. The rotation of the first fan 4052 drives the first gear ring 4053, and the first gear ring 4053 drives the reversing gear 4054 to rotate. The reversing gear 4054 drives the second gear ring 4057 to rotate. The rotation of the second gear ring 4057 drives the second fan 4058 to rotate. The rotation of the first gear ring 4053 drives the protective cover 4056 to rotate. The reverse rotation of the first fan 4052 and the second fan 4058 increases the shearing effect on the air, thereby increasing the air flow, thereby driving the air along the arc-shaped air guide inner plate 301 and the arc-shaped air guide outer plate 303. Entering the interior of the air intake pipe 401, the arc design of the arc bracket 402 reduces the possibility of flying powder adhering to the surface of the arc bracket 402, and the second fan 4058 scrapes the side of the fan bracket 4059 to prevent flying powder from adhering to the side of the fan bracket 4059, thereby preventing flying powder from accumulating. At the same time, the arc guide of the protective cover 4056 and its own rotation prevent flying powder from adhering to the side of the reversing gear 4054 and affecting the rotation speed, thereby increasing the air flow while avoiding the accumulation of flying powder, and increasing the air flow rate by reducing the air cross section through the contraction tube 403, and increasing the efficiency of inertial separation through the eccentric introduction of the eccentric tube 404.
[0035] See also Figures 1-6 The present invention provides a technical solution: the separation device 5 includes a separation air inlet pipe 501, the bottom of the separation air inlet pipe 501 is connected to a conical outer pipe 502, the bottom of the conical outer pipe 502 is connected to a discharge outer pipe 503, the inner wall of the separation air inlet pipe 501 is fixedly connected to a separation component 504, an air outlet pipe 505 is opened on the side of the separation air inlet pipe 501, the top of the separation air inlet pipe 501 is connected to an air inlet 506, the eccentric pipe 404 is connected to the side of the separation air inlet pipe 501 through the air outlet pipe 505, and the discharge outer pipe 503 extends into the interior of the filter device 6 and is fixedly connected to the filter device 6.
[0036] The separation component 504 includes a conical separation inner tube 5041, the side of the conical separation inner tube 5041 is connected to the filter head 5042, the top side of the conical separation inner tube 5041 is fixedly connected to the separation ring 5043, the bottom of the conical separation inner tube 5041 is connected to the discharge inner tube 5044, the discharge inner tube 5044 extends into the interior of the filter device 6, and the conical separation inner tube 5041 is fixedly connected to the inner wall of the separation inlet pipe 501 through the separation ring 5043.
[0037] The air enters the interior of the separation air inlet pipe 501 along the eccentric tube 404, rotates through the side of the separation air inlet pipe 501, and enters the interior of the conical separation inner pipe 5041 along the guidance of the separation ring 5043, and destroys the air flow interface through the outlet of the filter head 5042, so that the dust is concentrated in the interior of the filter head 5042, and under the action of wind pressure, enters between the separation air inlet pipe 501 and the conical separation inner pipe 5041 along the interior of the filter head 5042 and descends under the action of gravity, so that the flying powder is enriched and settled in the interior of the filter device 6. The air moves downward through the conical guide of the conical separation inner pipe 5041, thereby generating a larger wind pressure, and rises from the center of rotation, so that the separated air is discharged along the outlet pipe 505, thereby completing the collection and separation of the flying powder, and the separation process does not require an additional drive device, and maintenance is relatively simple.
[0038] See also Figures 1-8 The present invention provides a technical solution: the filtering device 6 includes a water reservoir 601, the bottom of the water reservoir 601 is connected to a conical water reservoir 602, the top of the conical water reservoir 602 is fixedly connected to a separation filter screen 603, the bottom of the water reservoir 601 is fixedly connected to the top of the bottom plate bracket 2, and the separation filter screen 603 extends into the interior of the conical water reservoir 602 and is fixedly connected to the side of the separation filter screen 603.
[0039] The spraying device 7 includes an electric water pump 701, the water outlet end of the electric water pump 701 is connected to a water supply pipe 702, the end of the water supply pipe 702 away from the electric water pump 701 is connected to a first rotary joint 703, the side of the first rotary joint 703 is connected to a second rotary joint 704, the side of the second rotary joint 704 is connected to a nozzle 705, the side of the first rotary joint 703 between the second rotary joint 704 is fixedly connected to a wind guide plate 706, the first rotary joint 703 is arranged inside the separation air inlet pipe 501, the water supply pipe 702 passes through the side of the air inlet 506 and is fixedly connected to the air inlet 506, and the water inlet end of the electric water pump 701 is connected to the top of the water reservoir 601.
[0040] The flying powder descends along the outer discharge pipe 503 and the inner discharge pipe 5044 under the action of gravity, and enters the interior of the conical water reservoir 602. The water in the conical water reservoir 602 collects the flying powder in the water, thereby efficiently collecting the flying powder, and filtering and intercepting the flying powder through the separation filter 603, thereby preventing the flying powder from entering the supernatant inside the water reservoir 601. The electric water pump 701 drives the supernatant at the top of the water reservoir 601 to move, thereby driving the supernatant into the interior of the water supply pipe 702 and It passes through the interior of the first rotary joint 703 and reaches the second rotary joint 704, is ejected along the nozzle 705, and the movement of the air drives the air guide plate 706 to move, thereby driving the first rotary joint 703 to rotate through the air guide plate 706 while assisting the nozzle 705 to spray water, so that the water and flying powder are mixed and settled, thereby accelerating the separation efficiency, and flushing the interior of the conical separation inner tube 5041 to avoid the accumulation of flying powder, and the diffusion of the rotating airflow increases the flushing efficiency.
[0041] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.
Claims
1. A fly powder treatment device for putty powder production and processing, characterized by: The invention comprises an equipment base plate (1), the top of the equipment base plate (1) is fixedly connected to a base plate bracket (2), the top of the base plate bracket (2) is fixedly connected to an air guide device (3), the side of the air guide device (3) is connected to an air intake device (4), the side of the air intake device (4) away from the air guide device (3) is connected to a separation device (5), the bottom of the separation device (5) is connected to a filter device (6), the top of the filter device (6) is fixedly connected to a spray device (7), the top of the spray device (7) extends into the interior of the separation device (5) and is fixedly connected to the separation device (5); The air guide device (3) comprises an arc-shaped air guide inner plate (301), a side surface of the arc-shaped air guide inner plate (301) is fixedly connected to an air guide bracket (302), a side surface of the air guide bracket (302) is fixedly connected to an arc-shaped air guide outer plate (303), a side surface of the arc-shaped air guide outer plate (303) is fixedly connected to an arc-shaped air guide plate (304), a portion of the arc-shaped air guide outer plate (303) located on one side of the arc-shaped air guide plate (304) is provided with an air outlet hole (305), the bottom of the air guide bracket (302) is fixedly connected to the top of the base plate bracket (2), and the side surface of the arc-shaped air guide outer plate (303) is connected to the side surface of the air intake device (4) through the air outlet hole (305).
2. The fly powder treatment equipment for putty powder production and processing according to claim 1, characterized in that: The air intake device (4) comprises an air intake pipe (401), the inner wall of the air intake pipe (401) is fixedly connected to an arc-shaped bracket (402), the side of the air intake pipe (401) is connected to a contraction tube (403), the side of the contraction tube (403) away from the air intake pipe (401) is connected to an eccentric tube (404), the side of the arc-shaped bracket (402) is fixedly connected to a fan assembly (405), the side of the air intake pipe (401) is connected to the arc-shaped air guide outer plate (303) through an air outlet (305), and the eccentric tube (404) is connected to the side of the separation device (5).
3. The fly powder treatment equipment for putty powder production and processing according to claim 2, characterized in that: The fan assembly (405) includes a first motor (4051), a first fan (4052) is fixedly connected to the driving shaft of the first motor (4051), a first gear ring (4053) is fixedly connected to the side of the first fan (4052), a reversing gear (4054) is meshed with the side of the first gear ring (4053), a fixed shaft (4055) is rotatably connected to the side of the reversing gear (4054), a protective cover (4056) is sleeved and fixedly connected to the side of the first gear ring (4053), and the reversing gear (4054) is meshed with the side of the first gear ring (4053). 54) is meshed with a second gear ring (4057), a second fan (4058) is fixedly connected to the side of the second gear ring (4057), a fan bracket (4059) is fixedly connected to the side of the fixed shaft (4055), the second fan (4058) is sleeved on the side of the fixed shaft (4055) and is rotatably connected to the fixed shaft (4055), the side of the first motor (4051) is fixedly connected to the side of the arc-shaped bracket (402), and the side of the fan bracket (4059) is fixedly connected to the inner wall of the intake pipe (401).
4. The fly powder treatment equipment for putty powder production and processing according to claim 2, characterized in that: The separation device (5) comprises a separation air inlet pipe (501), the bottom of the separation air inlet pipe (501) is connected to a conical outer pipe (502), the bottom of the conical outer pipe (502) is connected to a discharge outer pipe (503), the inner wall of the separation air inlet pipe (501) is fixedly connected to a separation component (504), the side of the separation air inlet pipe (501) is provided with an air outlet pipe (505), the top of the separation air inlet pipe (501) is connected to an air inlet (506), the eccentric pipe (404) is connected to the side of the separation air inlet pipe (501) through the air outlet pipe (505), and the discharge outer pipe (503) extends into the interior of the filter device (6) and is fixedly connected to the filter device (6).
5. The fly powder treatment equipment for putty powder production and processing according to claim 4, characterized in that: The separation assembly (504) includes a conical separation inner tube (5041), the side of the conical separation inner tube (5041) is connected to a filter head (5042), the top side of the conical separation inner tube (5041) is fixedly connected to a separation ring (5043), and the bottom of the conical separation inner tube (5041) is connected to a discharge inner tube (5044).
6. The fly powder treatment equipment for putty powder production and processing according to claim 5, characterized in that: The discharge inner tube (5044) extends into the interior of the filter device (6), and the conical separation inner tube (5041) is fixedly connected to the inner wall of the separation air inlet tube (501) via a separation ring (5043).
7. The fly powder treatment equipment for putty powder production and processing according to claim 1, characterized in that: The filtering device (6) comprises a water reservoir (601), the bottom of the water reservoir (601) is connected to a conical water reservoir (602), the top of the conical water reservoir (602) is fixedly connected to a separation filter (603), the bottom of the water reservoir (601) is fixedly connected to the top of the bottom plate bracket (2), and the separation filter (603) extends into the interior of the conical water reservoir (602) and is fixedly connected to the side of the separation filter (603).
8. The fly powder treatment equipment for putty powder production and processing according to claim 1, characterized in that: The spraying device (7) comprises an electric water pump (701), the water outlet end of the electric water pump (701) is connected to a water supply pipe (702), one end of the water supply pipe (702) away from the electric water pump (701) is connected to a first rotary joint (703), the side of the first rotary joint (703) is connected to a second rotary joint (704), the side of the second rotary joint (704) is connected to a spray head (705), and the side of the first rotary joint (703) between the second rotary joint (704) is fixedly connected to a wind deflector (706).
9. The fly powder treatment equipment for putty powder production and processing according to claim 8, characterized in that: The first rotary joint (703) is arranged inside the separated air inlet pipe (501), the water supply pipe (702) passes through the side of the air inlet (506) and is fixedly connected to the air inlet (506), and the water inlet end of the electric water pump (701) is connected to the top of the water reservoir (601).