CN115569476A - Circulating dust removal equipment for carbon neutralization - Google Patents

Circulating dust removal equipment for carbon neutralization Download PDF

Info

Publication number
CN115569476A
CN115569476A CN202211402269.3A CN202211402269A CN115569476A CN 115569476 A CN115569476 A CN 115569476A CN 202211402269 A CN202211402269 A CN 202211402269A CN 115569476 A CN115569476 A CN 115569476A
Authority
CN
China
Prior art keywords
air guide
dust
guide sleeve
wall
cover
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN202211402269.3A
Other languages
Chinese (zh)
Inventor
不公告发明人
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
China Construction Fifth Engineering Bureau Co Ltd
Original Assignee
China Construction Fifth Engineering Bureau Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by China Construction Fifth Engineering Bureau Co Ltd filed Critical China Construction Fifth Engineering Bureau Co Ltd
Priority to CN202211402269.3A priority Critical patent/CN115569476A/en
Publication of CN115569476A publication Critical patent/CN115569476A/en
Pending legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D50/00Combinations of methods or devices for separating particles from gases or vapours
    • B01D50/40Combinations of devices covered by groups B01D45/00 and B01D47/00

Abstract

The invention discloses a circulating dust removal device for carbon neutralization, and particularly relates to the field of circulating dust removal. According to the invention, when the fan blades are impacted by airflow, the spherical sliding block is driven to slide in the circular backflow cover, so that the flow direction of the gas entering the inner cavity of the circular backflow cover is changed into vortex-shaped airflow, thereby continuously colliding and bonding dust in the gas and accelerating the falling of the dust in the gas.

Description

Circulating dust removal equipment for carbon neutralization
Technical Field
The invention relates to the technical field of circulating dust removal, in particular to circulating dust removal equipment for carbon neutralization.
Background
Carbon neutralization is an energy-saving and emission-reducing term, and means that enterprises, groups or individuals measure and calculate the total amount of greenhouse gas emission generated directly or indirectly within a certain time, and the emission of carbon dioxide generated by the enterprises, groups or individuals is counteracted through the forms of tree planting, energy conservation and emission reduction and the like, so that zero emission of the carbon dioxide is realized.
The traditional dust removal method at present generates a dust flying phenomenon under the influence of induced airflow, and if proper protection measures are not taken, the dust is directly sucked into the lungs of operators and seriously harms the health of workers, so the invention relates to a circulating dust removal device for carbon neutralization to solve the problems.
Disclosure of Invention
In order to overcome the above-mentioned drawbacks of the prior art, embodiments of the present invention provide a circulating dust removing apparatus for carbon neutralization, in which when a fan blade is impacted by an airflow, a spherical sliding block is driven to slide in a circular backflow cover, so that the flow direction of the gas entering an inner cavity of the circular backflow cover is changed into a vortex-shaped airflow, and thereby dust in the gas is continuously collided and bonded, so as to solve the problems in the background art.
In order to achieve the purpose, the invention provides the following technical scheme: a circulating dust removal device for carbon neutralization comprises a first flow guide mechanism, wherein a mixing mechanism for mixing dust particles is arranged on one side of the first flow guide mechanism in a communicating mode, a second flow guide mechanism for reducing the flow velocity of the dust particles is arranged on the bottom of the mixing mechanism in a communicating mode, a spraying mechanism for cleaning the inner cavity of the mixing mechanism is arranged inside the mixing mechanism, the first flow guide mechanism comprises a first flow guide cover, a second flow guide cover is fixedly arranged on one side of the first flow guide cover, a hanging frame is fixedly arranged on the outer wall of the second flow guide cover, the first flow guide cover and the second flow guide cover are arranged in a mutually communicated mode, a dust blocking curtain used for being connected with the first flow guide cover is arranged at the air inlet of the first flow guide cover, a plurality of blocking rods are sequentially arranged on the inner wall of the first flow guide cover at equal intervals, and the outer walls of the blocking rods are connected with a rotary drum in a rotating mode, the mixing mechanism comprises a circular backflow cover, the circular backflow cover is communicated with one side of a first flow guide cover far away from a second flow guide cover, an exhaust pipe is communicated with the vertical center line of the circular backflow cover, an annular supporting plate connected with the exhaust pipe is fixedly installed on the inner wall of the circular backflow cover, sliding grooves are formed in the inner walls of the two sides of the circular backflow cover, a spherical sliding block is slidably installed in an inner cavity of each sliding groove, a connecting rod is fixedly installed on the outer wall of each spherical sliding block, fan blades used for guiding the spherical sliding blocks to move are arranged on the outer wall of each connecting rod, brushes used for cleaning floating dust on the annular supporting plate are arranged on the outer wall of each connecting rod, the brushes and the fan blades are arranged in a one-to-one correspondence manner, connecting sleeves used for being connected with the connecting rods are fixedly installed on one sides of the brushes and the fan blades, and the second flow guide mechanism comprises a third flow guide cover, the third kuppe intercommunication sets up in the bottom of blast pipe, just the inner chamber equidistance of third kuppe is equipped with a plurality of damping plates, set up a plurality of round holes that are used for reducing the air current velocity of flow on the damping plate, the outer wall fixed mounting of third kuppe has the support bracket.
In a preferred embodiment, the number of the blocking rods is at least two, and the two blocking rods are symmetrically arranged about a horizontal center line of the first air guide sleeve.
In a preferred embodiment, the first air guide sleeve is in an arc curve shape, a bent concave part is arranged vertically towards the center of the first air guide sleeve, a connecting plate is fixedly installed in the inner cavity of the bent concave part of the first air guide sleeve, a plurality of connecting chains are hinged to the inner wall of the connecting plate, and an elastic sleeve is fixedly connected to one side of each connecting chain.
In a preferred embodiment, a slot is formed in an outer wall of the third air guide sleeve, a bearing plate is fixedly mounted on an inner wall of the third air guide sleeve, the damping plate is inserted into an inner cavity of the slot, and the damping plate is arranged at the top of the bearing plate.
In a preferred embodiment, the quantity of spherical slider sets up to a plurality ofly, and is a plurality of spherical slider is the annular equidistance in proper order and sets up around the inner circumference line of spout, and is a plurality of the equal fixed mounting of inner chamber of spherical slider has the bull stick, just the bull stick rotates the inner chamber of connecting at the spout.
In a preferred embodiment, a dust monitor for monitoring the dust content in the inner cavity of the circular backflow cover is fixedly mounted on the inner wall of the circular backflow cover, and a controller for connecting with the dust monitor is fixedly mounted on the outer wall of the circular backflow cover.
In a preferred embodiment, the spraying mechanism comprises a first water pipe, the first water pipe is attached to the outer wall of the circular backflow cover and wound on the outer wall of the exhaust pipe, a water pump is fixedly mounted at one end of the first water pipe, an electronic switch valve is fixedly mounted on the water pump, a second water pipe is communicated with one side of the water pump, a third water pipe communicated with the first water pipe is fixedly mounted inside the annular supporting plate, and a spraying head is communicated with the top of the third water pipe.
In a preferred embodiment, the water pump is electrically connected with the electronic switch valve, and the controller is electrically connected with the electronic switch valve and the water pump.
In a preferred embodiment, a dust settling method for a carbon neutralized cyclic dust removal apparatus, comprises the steps of:
s1: the second air guide sleeve is communicated and installed at an indoor air outlet, air enters the inner cavity of the first air guide sleeve from the second air guide sleeve, the air blows the stop lever to rotate, so that the air entering the inner cavity of the first air guide sleeve from linear motion is dispersed around, and the air is guided to uniformly enter the inner cavity of the first air guide sleeve at the inlet of the first air guide sleeve;
s2: in the step S1, the gas entering the inner cavity of the first air guide sleeve enters the inner cavity of the circular backflow sleeve along the shape trend of the first air guide sleeve, and blows the fan blades to drive the spherical sliding block to slide in the inner cavity of the sliding chute through the flow direction of the gas, so that the fan blades rotate in the inner cavity of the circular backflow sleeve ceaselessly, and the flow direction of the gas entering the inner cavity of the circular backflow sleeve is changed into vortex-shaped gas flow;
s3: the vortex-shaped airflow formed by the inner cavity of the circular backflow hood collides with the gas which moves from the inner cavity of the first flow guide hood successively, so that dust in the gas is continuously collided and bonded, small-particle dust in the gas is collided and bonded with each other to form larger particles, and the larger particles fall under the action of gravity;
s4: in the step S2, when the content of dust in the gas entering the inner cavity of the circular backflow cover is large, the dust is detected and fed back through the dust monitor, so that the controller receives feedback information of the dust monitor and transmits the information to the electronic switch valve, the water pump operates to convey cleaning water to the third water pipe to be sprayed out from the spraying head, and the water sprayed out from the spraying head humidifies the gas in the inner cavity of the circular backflow cover, so that the weight of the dust is increased, and the dust falls under the influence of gravity;
s5: the dust granule and the gas of whereabouts circulate to the third kuppe inner chamber from blast pipe department, and when gas was located via the damping plate, the round hole that receives the damping plate inner chamber and seted up influenced, made gaseous flow velocity reduce, increased the collision number of times of dust in the dusty air current simultaneously for the dust descends, and makes the dust granule adsorb and fall on the damping plate.
The invention has the technical effects and advantages that:
1. the rotatable fan blades are arranged in the inner cavity of the circular backflow cover, so that the fan blades drive the spherical sliding block to slide in the circular backflow cover when being impacted by airflow, the flow direction of the gas entering the inner cavity of the circular backflow cover is changed into vortex-shaped airflow, the gas circularly stays in the inner cavity of the circular backflow cover and is mixed and collided with the gas subsequently entering the inner cavity of the circular backflow cover, and therefore dust in the gas is continuously collided and bonded, small particle dust in the gas is mutually collided and bonded into larger particles, and the larger particles fall under the action of gravity;
2. according to the invention, the rotating rod is arranged in the inner cavity of the circular backflow cover to monitor the dust content in real time, and when the dust content is larger, the water pump is triggered to operate, so that the clean water source sprays water mist from the spray head, the humidity of the inner cavity of the circular backflow cover is enhanced, the dust is wetted, the weight of the dust is accelerated, and the dust falls off quickly.
Drawings
Fig. 1 is a schematic view of the overall structure of the present invention.
Fig. 2 is a sectional view of the overall structure of the present invention.
FIG. 3 is an enlarged view of the portion A of FIG. 2 according to the present invention.
FIG. 4 is an enlarged view of the portion B of FIG. 2 according to the present invention.
FIG. 5 is a sectional view of the mixing mechanism and a second deflector mechanism of the present invention.
FIG. 6 is an enlarged view of the portion C of FIG. 5 according to the present invention.
FIG. 7 is an enlarged view of the structure of the portion D in FIG. 5 according to the present invention.
The reference signs are: 1 first flow guide mechanism, 101 first flow guide cover, 102 second flow guide cover, 103 dust blocking curtain, 104 blocking rod, 105 rotary cylinder, 106 hanging rack, 107 connecting plate, 108 connecting chain, 109 elastic sleeve, 2 mixing mechanism, 21 circular backflow cover, 22 exhaust pipe, 23 annular supporting plate, 24 sliding chute, 25 spherical sliding block, 26 connecting rod, 27 brush, 28 fan blade, 29 connecting sleeve, 210 rotating rod, 211 dust monitor, 212 controller, 3 second flow guide mechanism, 31 third flow guide cover, 32 damping plate, 33 supporting bracket, 34 round hole, 35 slot, 36 supporting plate, 4 spraying mechanism, 41 first water pipe, 42 water pump, 43 electronic switch valve, 44 second water pipe, 45 third water pipe and 46 spraying head.
Detailed Description
The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
Referring to fig. 1-7 of the specification, a cyclic dust removal device for carbon neutralization according to an embodiment of the present invention, as shown in fig. 1, includes a first guiding mechanism 1, a mixing mechanism 2 for mixing and processing dust particles is provided in communication with one side of the first guiding mechanism 1, a second guiding mechanism 3 for reducing a flow velocity of the dust particles is provided in communication with a bottom of the mixing mechanism 2, a spraying mechanism 4 for cleaning an inner cavity of the mixing mechanism 2 is provided in the mixing mechanism 2, as shown in fig. 2-3, the first guiding mechanism 1 includes a first guiding cover 101, a second guiding cover 102 is mounted in a suspended manner by a hanger 106, a second guiding cover 102 is fixedly mounted on one side of the first guiding cover 101, a hanger 106 is fixedly mounted on an outer wall of the second guiding cover 102, the first guiding cover 101 and the second guiding cover 102 are arranged in a mutually communicated state, a dust blocking curtain 103 for connecting with the first guiding cover 101 is provided at an air inlet of the first guiding cover 101, and when air is blown into the inner cavity of the first guiding cover 101 from the second guiding cover 102, the first guiding cover 101 is closed, so as to prevent the dust blocking curtain 101 from being disturbed by the first guiding cover 101.
In order to make the gas more even that gets into at the entrance of first kuppe 101, equidistance is provided with a plurality of pin 104 in proper order on the inner wall of first kuppe 101, and the outer wall of a plurality of pin 104 all rotates and is connected with rotary drum 105, makes gas blow when rotary drum 105 carries out the rotation, can collide with the gas of blowing in, thereby makes the gas flow direction disperse all around, thereby passes in the gap between from a plurality of rotary drums 105 and between first kuppe 101 inner wall and the rotary drum 105.
Referring to fig. 2 and 5, the mixing mechanism 2 includes a circular backflow cover 21, the circular backflow cover 21 is disposed on one side of the first air guide sleeve 101 away from the second air guide sleeve 102, an exhaust pipe 22 is disposed on a vertical central line of the circular backflow cover 21 in a communicating manner, gas enters an inner cavity of the circular backflow cover 21 from the first air guide sleeve 101 and is exhausted from the exhaust pipe 22, as shown in fig. 6, an annular supporting plate 23 used for being connected with the exhaust pipe 22 is fixedly mounted on an inner wall of the circular backflow cover 21, sliding grooves 24 are formed in inner walls of two sides of the circular backflow cover 21, spherical sliding blocks 25 are slidably mounted in the inner cavity of the sliding grooves 24, an engaging rod 26 is fixedly mounted on an outer wall of the spherical sliding blocks 25, fan blades 28 used for guiding the spherical sliding blocks 25 to move are disposed on an outer wall of the engaging rod 26, and brushes 27 used for cleaning floating dust on the annular supporting plate 23 are disposed on the outer wall of the engaging rod 26.
The brushes 27 and the fan blades 28 are arranged in a one-to-one correspondence manner, one side of each brush 27 and one side of each fan blade 28 are fixedly provided with a connecting sleeve 29 used for being connected with a connecting rod 26, meanwhile, in order to enhance the smoothness of the rotation of the fan blades 28 in the inner cavity of the circular backflow hood 21, the number of the spherical sliding blocks 25 is set to be multiple, the spherical sliding blocks 25 are sequentially arranged in an annular manner at equal intervals around the inner circumferential line of the sliding chute 24, the inner cavities of the spherical sliding blocks 25 are fixedly provided with rotating rods 210, the rotating rods 210 are YR-FD100 series dust concentration monitoring alarm equipment, the rotating rods 210 are rotatably connected to the inner cavity of the sliding chute 24, when the dust collecting device is used, gas entering the inner cavity of the first backflow hood 101 enters the inner cavity of the circular backflow hood 21 along the shape trend of the first backflow hood 101, the rotating rods 28 drive the spherical sliding blocks 25 to slide in the inner cavity of the sliding chute 24 through the flowing direction of the gas, the gas 28 continuously rotates in the inner cavity of the circular backflow hood 21, the flowing direction of the gas changes into vortex-shaped gas, the flowing direction of the first backflow hood 101, the gas continuously collides with the gas, and is collided with the particles in the exhaust pipe, so that the dust is discharged from the dust, and the dust particles, and the dust collecting device falls.
Meanwhile, the second guiding mechanism 3 includes a third guiding cover 31, the third guiding cover 31 is communicated with and arranged at the bottom of the exhaust pipe 22, an inner cavity of the third guiding cover 31 is equidistantly provided with a plurality of damping plates 32, a plurality of round holes 34 used for reducing the flow velocity of the air current are formed in the damping plates 32, a support bracket 33 is fixedly mounted on the outer wall of the third guiding cover 31, when the dust collecting device is used, the falling gas and dust particles from the exhaust pipe 22 are blocked by the damping plates 32 and the round holes 34, the flow velocity of the gas is reduced, and the dust particles blocked on the damping plates 32 collide with the third guiding cover 31, the damping plates 32 and the dust in the gas again, so that the falling of the dust is accelerated and fall on the damping plates 32.
Further, as shown in fig. 3, at least two baffle rods 104 are provided, and the two baffle rods 104 are symmetrically provided about the horizontal center line of the first air guide sleeve 101, so that the plurality of baffle rods 104 and the rotating drum 105 are combined with each other at the inlet of the first air guide sleeve 101, and the inlet is divided into a plurality of small openings at equal intervals to enhance the uniformity of the gas flow.
Meanwhile, as shown in fig. 4, when the gas forms a vortex-shaped airflow in the inner cavity of the circular backflow hood 21 for circulation repeatedly, in order to prevent the gas from flowing reversely through the first airflow guiding hood 101, the first airflow guiding hood 101 is arranged in an arc-shaped curve shape, a curved concave portion is arranged vertically towards the center of the first airflow guiding hood 101, a connecting plate 107 is fixedly installed in the curved concave portion inner cavity of the first airflow guiding hood 101, a plurality of connecting chains 108 are hinged to the inner wall of the connecting plate 107, elastic sleeves 109 are fixedly connected to one sides of the connecting chains 108, the elastic sleeves 109 are arranged in a conical shape, a plurality of rectangular empty slots are formed in the elastic sleeves 109, and when the gas enters the inner cavity of the first airflow guiding hood 101 from the second airflow guiding hood 102, the elastic sleeves 109 are deformed and expanded outwards by the impact of the airflow, so that the rectangular empty slots are enlarged, the gas is discharged from the rectangular empty slots, and the gas which is impacted reversely cannot impact the elastic sleeves 109, thereby preventing the circulation of the reverse airflow.
In order to clean dust on the damping plate 32 conveniently and improve the reutilization of the damping plate 32, a slot 35 is formed in the outer wall of the third air guide sleeve 31, a bearing plate 36 is fixedly mounted on the inner wall of the third air guide sleeve 31, the damping plate 32 is inserted into the inner cavity of the slot 35, and the damping plate 32 is arranged at the top of the bearing plate 36, so that the damping plate 32 can be conveniently and quickly disassembled and assembled in an inserting mode.
As shown in fig. 5-6, when the dust content in the gas is too large, the vortex-shaped airflow in the inner cavity of the circular backflow cover 21 cannot knock down the dust, the dust monitor 211 for monitoring the dust content in the inner cavity of the circular backflow cover 21 is fixedly mounted on the inner wall of the circular backflow cover 21, so that the dust monitor 211 can monitor the dust content in the inner cavity of the circular backflow cover 21 in real time, the spraying mechanism 4 is guided to assist dust fall, and meanwhile, the controller 212 connected with the dust monitor 211 is fixedly mounted on the outer wall of the circular backflow cover 21.
Further, the spraying mechanism 4 comprises a first water pipe 41, the first water pipe 41 is attached to the outer wall of the circular backflow hood 21 and wound on the outer wall of the exhaust pipe 22, a water pump 42 is fixedly installed at one end of the first water pipe 41, an electronic switch valve 43 is fixedly installed on the water pump 42, a second water pipe 44 is communicated with one side of the water pump 42, the second water pipe 44 is communicated with the cleaning water tank, a third water pipe 45 communicated with the first water pipe 41 is fixedly installed inside the annular supporting plate 23, an atomizing head 46 is communicated with the top of the third water pipe 45, when the water pump 42 operates, the second water pipe 44 extracts the water source of the cleaning water tank, and transmits the water mist to the third water pipe 45 through the first water pipe 41 to spray the water mist from the atomizing head 46, so as to moisten the gas in the inner cavity of the circular backflow hood 21, in order to strengthen the weight of dust particles in the gas, the falling of dust is accelerated, wherein, be electric connection between water pump 42 and the electronic switch valve 43, and be electric connection between controller 212 and the electronic switch valve 43, the water pump 42, when using, when the dust content is great in the gas that gets into circular return flow cover 21 inner chamber, detect and feedback out through dust monitor 211, make controller 212 receive the feedback information of dust monitor 211 and give information transmission to electronic switch valve 43, make water pump 42 operate and carry clean water to third water pipe 45 and spout from atomising head 46, and the water that spouts from atomising head 46 is with the gas of circular return flow cover 21 inner chamber humidification, thereby make the dust weight increase, make the dust fall by the influence of gravity.
A dust falling method of a circulating dust removing device for carbon neutralization comprises the following steps:
s1: the second air guide sleeve 102 is communicated and installed at an indoor air outlet, air enters the inner cavity of the first air guide sleeve 101 from the second air guide sleeve 102, and the air blows the stop lever 104 to rotate, so that the air entering the inner cavity of the first air guide sleeve 101 from linear motion is dispersed all around, and the air is guided to uniformly enter the inner cavity of the first air guide sleeve 101 at the inlet of the first air guide sleeve 101;
s2: in the step S1, the gas entering the inner cavity of the first dome 101 enters the inner cavity of the circular backflow hood 21 along the shape of the first dome 101, and blows the fan blades 28 to drive the spherical sliding blocks 25 to slide in the inner cavity of the sliding grooves 24 in the gas flowing direction, so that the fan blades 28 continuously rotate in the inner cavity of the circular backflow hood 21, and the gas entering the inner cavity of the circular backflow hood 21 changes into a vortex-shaped gas flow;
s3: the vortex-shaped airflow formed by the inner cavity of the circular backflow hood 21 collides with the gas which moves from the inner cavity of the first flow guide hood 101 in sequence, so that the dust in the gas is continuously collided and bonded, and the small-particle dust in the gas is collided and bonded into larger particles and falls under the action of gravity;
s4: in the step S2, when the content of dust in the gas entering the inner cavity of the circular backflow hood 21 is relatively large, the dust monitor 211 is detected and fed back, so that the controller 212 receives the feedback information of the dust monitor 211 and transmits the information to the electronic switch valve 43, the water pump 42 operates to deliver the cleaning water to the third water pipe 45 to spray from the spray head 46, and the water sprayed from the spray head 46 humidifies the gas in the inner cavity of the circular backflow hood 21, so that the weight of the dust is increased, and the dust falls under the influence of gravity;
s5: the falling dust particles and gas flow from the exhaust pipe 22 to the inner cavity of the third air guide sleeve 31, and when the gas passes through the damping plate 32, the gas is influenced by the round hole 34 formed in the inner cavity of the damping plate 32, so that the flowing speed of the gas is reduced, the collision frequency of the dust in the dust-containing gas flow is increased, the dust falling is accelerated, and the dust particles are adsorbed and fall on the damping plate 32
It should be noted that: through utilizing gaseous flabellum 28 that blows circular return flow cover 21 inner chamber, make flabellum 28 drive spherical slider 25 and rotate at circular return flow cover 21 inner chamber repeatedly, make the gaseous vortex form air current that forms of entering circular return flow cover 21 inner chamber and carry out the circulation of circling round, thereby collide circular return flow cover 21 inner chamber in the gaseous dust with the gaseous intermixture of the circular return flow cover 21 inner chamber that successively gets into, make the small dust particle collision among the gas adhere into the large granule, finally through the increase of dust self weight, receive self gravity influence to fall with higher speed, thereby make the dust content among the gas of emission department reduce.
The points to be finally explained are: first, in the description of the present application, it should be noted that, unless otherwise specified and limited, the terms "mounted," "connected," and "connected" should be understood broadly, and may be a mechanical connection or an electrical connection, or a communication between two elements, and may be a direct connection, and "upper," "lower," "left," and "right" are only used to indicate a relative positional relationship, and when the absolute position of the object to be described is changed, the relative positional relationship may be changed;
secondly, the method comprises the following steps: in the drawings of the disclosed embodiment of the invention, only the structures related to the disclosed embodiment are related, other structures can refer to common design, and the same embodiment and different embodiments of the invention can be combined mutually under the condition of no conflict;
and finally: the above description is only for the purpose of illustrating the preferred embodiments of the present invention and is not to be construed as limiting the invention, and any modifications, equivalents, improvements and the like that are within the spirit and principle of the present invention are intended to be included in the scope of the present invention.

Claims (4)

1. The utility model provides a circulation dust collecting equipment for carbon neutralization, includes first water conservancy diversion mechanism (1), one side intercommunication of first water conservancy diversion mechanism (1) is equipped with mixing mechanism (2) that are used for the hybrid processing dust granule, the bottom intercommunication of mixing mechanism (2) is equipped with second water conservancy diversion mechanism (3) that are used for reducing the dust granule velocity of flow, the inside of mixing mechanism (2) is equipped with spraying mechanism (4) that are used for cleaning its inner chamber, its characterized in that: the first air guide mechanism (1) comprises a first air guide sleeve (101), a second air guide sleeve (102) is fixedly installed on one side of the first air guide sleeve (101), a hanging rack (106) is fixedly installed on the outer wall of the second air guide sleeve (102), the first air guide sleeve (101) and the second air guide sleeve (102) are arranged in a mutually communicated state, a dust blocking curtain (103) used for being connected with the first air guide sleeve (101) is arranged at an air inlet of the first air guide sleeve (101), a plurality of blocking rods (104) are sequentially arranged on the inner wall of the first air guide sleeve (101) at equal intervals, and the outer walls of the blocking rods (104) are rotatably connected with a rotary drum (105);
the mixing mechanism (2) comprises a circular backflow cover (21), the circular backflow cover (21) is communicated with and arranged on one side, away from a second flow guide cover (102), of a first flow guide cover (101), an exhaust pipe (22) is communicated with the center line vertically of the circular backflow cover (21), an annular supporting plate (23) connected with the exhaust pipe (22) is fixedly arranged on the inner wall of the circular backflow cover (21), sliding grooves (24) are formed in the inner walls of the two sides of the circular backflow cover (21), a spherical sliding block (25) is slidably arranged in an inner cavity of each sliding groove (24), a connecting rod (26) is fixedly arranged on the outer wall of each spherical sliding block (25), fan blades (28) used for guiding the spherical sliding block (25) to move are arranged on the outer wall of the connecting rod (26), brushes (27) used for cleaning floating dust on the annular supporting plate (23) are arranged on the outer wall of the annular supporting rod (25), the brushes (27) and the fan blades (28) are arranged in one-to-one correspondence, and connecting sleeves (29) connected with the fan blades (26) are fixedly arranged on one side of the brushes (27) and the connecting rod (28);
the second air guide mechanism (3) comprises a third air guide sleeve (31), the third air guide sleeve (31) is communicated with the bottom of the exhaust pipe (22), a plurality of damping plates (32) are arranged in the inner cavity of the third air guide sleeve (31) at equal intervals, a plurality of round holes (34) used for reducing the flow velocity of air flow are formed in each damping plate (32), and a support bracket (33) is fixedly installed on the outer wall of the third air guide sleeve (31);
the number of the spherical sliding blocks (25) is set to be multiple, the spherical sliding blocks (25) are sequentially arranged around the inner circumference of the sliding chute (24) in an annular shape at equal intervals, rotating rods (210) are fixedly arranged in the inner cavities of the spherical sliding blocks (25), and the rotating rods (210) are rotatably connected to the inner cavity of the sliding chute (24);
the spraying mechanism (4) comprises a first water pipe (41), the first water pipe (41) is attached to the outer wall of the circular backflow cover (21) and wound on the outer wall of the exhaust pipe (22), a water pump (42) is fixedly installed at one end of the first water pipe (41), an electronic switch valve (43) is fixedly installed on the water pump (42), a second water pipe (44) is communicated with one side of the water pump (42), a third water pipe (45) communicated with the first water pipe (41) is fixedly installed inside the annular supporting plate (23), and the top of the third water pipe (45) is communicated with a spraying head (46);
a dust monitor (211) for monitoring the dust content in the inner cavity of the circular backflow cover (21) is fixedly mounted on the inner wall of the circular backflow cover, and a controller (212) for connecting with the dust monitor (211) is fixedly mounted on the outer wall of the circular backflow cover (21);
the water pump (42) is electrically connected with the electronic switch valve (43), and the controller (212) is electrically connected with the electronic switch valve (43) and the water pump (42).
2. A cyclic dust removal apparatus for carbon neutralization according to claim 1, wherein: the number of the stop levers (104) is at least two, and the two stop levers (104) are symmetrically arranged relative to the horizontal center line of the first air guide sleeve (101).
3. A cyclic dust removal apparatus for carbon neutralization according to claim 2, characterized in that: the shape of first kuppe (101) is the setting of arc curve form, the vertical of first kuppe (101) is equipped with a curved concave part to center department, just the curved concave part inner chamber fixed mounting of first kuppe (101) has linkage plate (107), it has a plurality of links up chain (108) to articulate on the inner wall of linkage plate (107), and is a plurality of it has elastic sleeve (109) to link up the equal fixedly connected with in one side of chain (108).
4. A cyclic dust removal apparatus for carbon neutralization according to claim 3, wherein: the outer wall of the third air guide sleeve (31) is provided with a slot (35), the inner wall of the third air guide sleeve (31) is fixedly provided with a bearing plate (36), the damping plate (32) is inserted into the inner cavity of the slot (35), and the damping plate (32) is arranged at the top of the bearing plate (36).
CN202211402269.3A 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization Pending CN115569476A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202211402269.3A CN115569476A (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN202111599963.4A CN114225609B (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization and dust removal method thereof
CN202211402269.3A CN115569476A (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
CN202111599963.4A Division CN114225609B (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization and dust removal method thereof

Publications (1)

Publication Number Publication Date
CN115569476A true CN115569476A (en) 2023-01-06

Family

ID=80762700

Family Applications (3)

Application Number Title Priority Date Filing Date
CN202211428683.1A Pending CN115646113A (en) 2021-12-24 2021-12-24 A dust collecting equipment for carbon neutralization
CN202111599963.4A Active CN114225609B (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization and dust removal method thereof
CN202211402269.3A Pending CN115569476A (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization

Family Applications Before (2)

Application Number Title Priority Date Filing Date
CN202211428683.1A Pending CN115646113A (en) 2021-12-24 2021-12-24 A dust collecting equipment for carbon neutralization
CN202111599963.4A Active CN114225609B (en) 2021-12-24 2021-12-24 Circulating dust removal equipment for carbon neutralization and dust removal method thereof

Country Status (1)

Country Link
CN (3) CN115646113A (en)

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115184229B (en) * 2022-09-09 2022-11-25 江苏省环境监测中心 Wisdom building site environmental monitoring system
CN116046624B (en) * 2023-04-03 2023-06-02 常州光晟量子科技有限公司 Raise dust on-line monitoring device based on circumference range surrounds collection
CN117028406A (en) * 2023-08-24 2023-11-10 无锡市琪灏贸易有限公司 Single-row ball bearing with dustproof assembly

Family Cites Families (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB487672A (en) * 1936-11-21 1938-06-21 Tage Georg Nyborg Improvements in or relating to the extraction of dust from air and gases by sprayingwith liquids
US6616094B2 (en) * 1999-05-21 2003-09-09 Vortex Holding Company Lifting platform
US20020174773A1 (en) * 2001-05-24 2002-11-28 Kuai-Chung Cheng Dust Recovery device
US20070028569A1 (en) * 2001-12-07 2007-02-08 Murphy Bryan W Airborne particle removal system
US6739456B2 (en) * 2002-06-03 2004-05-25 University Of Florida Research Foundation, Inc. Apparatus and methods for separating particles
CN2576316Y (en) * 2002-10-28 2003-10-01 上海化工研究院 Novel bag-type composite duster
US7964009B2 (en) * 2004-09-21 2011-06-21 Cummins Filtration Ip, Inc. Inertial gas-liquid separator with axially variable orifice area
JP5262003B2 (en) * 2007-07-11 2013-08-14 パナソニック株式会社 Dust remover
JP3181569U (en) * 2012-11-30 2013-02-14 楊鈞瑞 Low environmental impact smoke exhaust system
KR101872652B1 (en) * 2017-11-17 2018-07-31 황춘상 Hazardous gas collection and dust separator
CN110629394B (en) * 2019-09-28 2021-01-12 杭州晨宇布业织造有限公司 Dust removal device for circular knitting machine
CN110523204A (en) * 2019-10-14 2019-12-03 兰州大学 A kind of dust-extraction unit
CN112316640A (en) * 2020-10-28 2021-02-05 李峰 Environment-friendly circulating dust removal equipment for thermal power plant
CN112827302A (en) * 2021-01-08 2021-05-25 中国建筑第五工程局有限公司 Engineering environmental protection dust collector
CN214837363U (en) * 2021-05-10 2021-11-23 青海环能检测科技有限公司 Waste gas collecting device for waste gas detection
CN113477078B (en) * 2021-07-27 2023-10-13 湖南省轻纺设计院有限公司 Microbial fermentation tail gas treatment device and method for biological products

Also Published As

Publication number Publication date
CN114225609A (en) 2022-03-25
CN114225609B (en) 2022-12-16
CN115646113A (en) 2023-01-31

Similar Documents

Publication Publication Date Title
CN114225609B (en) Circulating dust removal equipment for carbon neutralization and dust removal method thereof
US7014556B2 (en) Powder coating systems
CN205977757U (en) Spout thermantidote
CN109078308A (en) A kind of basketball cleaning device and its application method
CN101864984A (en) Horizontal turbulence ball padding dust catcher for mine
CN209282683U (en) A kind of Intelligent switch cabinet control device with display screen
CN103991727B (en) Circular stockyard veil dust suppression system
CN205200062U (en) Air shower
CN110107337A (en) Underground dust removal method
CN208269573U (en) A kind of drying equipment of chrysanthemum
CN208075236U (en) Heating aeration device
CN207892641U (en) Dust removing down-hole device
CN100515579C (en) Spray paint device
CN204286209U (en) Horizontal type concealed fan coil units cleaning device
CN209355725U (en) The atomization of water vector heat content condenses cooling equipment
CN114432837A (en) Turbulent flow type waste gas adsorption equipment based on spraying system
CN211672071U (en) Device for catching and killing mosquitoes by high-speed airflow
CN211513897U (en) Wide-angle dust removal fog gun
CN205717706U (en) Fresh air ventilator
EP1312420A2 (en) Improvements in and relating to powder coatings systems
CN108361057A (en) Bubble dust removal machine
CN207463789U (en) A kind of gas-solid combination orientation afflux dust exhaust apparatus
CN218944672U (en) Dust removing device
CN108185502A (en) A kind of tobacco perfuming tank and perfuming device
CN206053986U (en) A kind of gas tunnel construction dust pelletizing system

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination