A deacidification tower for improving gas-solid reaction efficiency
By introducing a honeycomb flow guiding component, an airflow driving component, and an agitation regulating component into the deacidification tower, the problems of insufficient contact and uneven distribution in the gas-solid reaction are solved, achieving efficient gas-solid reaction and deacidification effect.
Patent Information
- Application Number
- CN202510725596.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-03
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-06-03
AI Technical Summary
Existing gas-solid reaction deacidification towers are unable to adjust the gas flow rate inside the tower according to changes in flue gas flow rate or acid component concentration, resulting in insufficient contact between the deacidifying agent and the gas, low reaction efficiency, poor deacidifying agent spraying, small gas-solid contact area, and uneven airflow distribution, which affects the deacidification effect.
The system employs a honeycomb flow guide component, an airflow drive component, and an agitation and regulation component to divert gas through regular channels, eliminating eddies and short circuits, enhancing gas-solid contact, improving reaction efficiency through turbulent mixing and mechanical shearing force, and optimizing reaction conditions by adjusting the fan blade angle and agitation component in real time.
It achieves uniform distribution and full contact of gas-solid reaction, improves deacidification efficiency, reduces reaction product deposition, reduces energy consumption, and enhances deacidification effect and equipment utilization.
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Figure CN120242723B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of deacidification tower, and particularly relates to a deacidification tower for improving gas-solid reaction efficiency. BACKGROUND
[0002] The deacidification tower is a kind of purification equipment specially designed to remove acid components in waste gas. In the industrial manufacturing link, many production processes will produce exhaust gas containing acid gases such as sulfur dioxide and hydrogen chloride. The deacidification tower contacts the acid gases in the exhaust gas with the absorption liquid, and converts these gases into harmless substances by means of chemical reaction, so as to achieve the purpose of purifying and treating the exhaust gas.
[0003] In the existing gas-solid reaction deacidification tower, it is difficult to change the gas flow speed in the tower body according to the flue gas flow or the concentration change of acid components, which leads to insufficient reaction of the deacidification agent with the gas, limited reaction range, and low deacidification efficiency. At the same time, due to poor gas flow during spraying of the deacidification agent, it is difficult to make the two react quickly and fully, which leads to a long deacidification process and low deacidification efficiency. In addition, the gas-solid contact area in the tower body is small, the time is short, and the gas flow is unevenly distributed, which leads to poor deacidification effect. Therefore, the present application provides a deacidification tower for improving gas-solid reaction efficiency to meet the needs. SUMMARY
[0004] The technical problem to be solved by the present application is to provide a deacidification tower for improving gas-solid reaction efficiency to solve the problem that in the existing gas-solid reaction deacidification tower, it is difficult to change the gas flow speed in the tower body according to the flue gas flow or the concentration change of acid components, which leads to insufficient reaction of the deacidification agent with the gas, limited reaction range, and low deacidification efficiency. At the same time, due to poor gas flow during spraying of the deacidification agent, it is difficult to make the two react quickly and fully, which leads to a long deacidification process and low deacidification efficiency. In addition, the gas-solid contact area in the tower body is small, the time is short, and the gas flow is unevenly distributed, which leads to poor deacidification effect.
[0005] To solve the above technical problems, the present application provides the following technical scheme:
[0006] The utility model provides a kind of deacidification tower for improving gas-solid reaction efficiency, including tower body, gas outlet is installed at the top of the tower body, feed bin is installed at one end of the tower body, industrial residue slurry pump is installed at the top of the feed bin, shell cabinet is installed on the surface of the tower body, spray pipe is inserted in the inside of the feed bin, gas inlet is installed at the other end of the tower body, support frame is also installed at the top of the tower body, rotating handle is installed at one end of the support frame;Honeycomb guide component is installed at one end of the spray pipe, and the honeycomb guide component is used to guide flow gas and solid vibration contact;Air flow driving component is installed at the top of the support frame, and the air flow driving component is used to adjust the flow rate inside the tower body;Agitation adjusting component is installed at the bottom of the air flow driving component, and the agitation adjusting component is used to increase the contact area of gas and solid inside the tower body;Honeycomb guide component is installed at the bottom of the air flow driving component, and the air flow driving component is installed at the top of the agitation adjusting component.
[0007] Optionally, the honeycomb guide component includes a ring-shaped material conveying pipe, which is installed at one end of the spray pipe, a support block is installed on the surface of the ring-shaped material conveying pipe, the support block is installed on the inner wall of the tower body, a multi-hole spray head is installed at the bottom of the ring-shaped material conveying pipe, a feeding pipe is installed at the top of the ring-shaped material conveying pipe, and a circular honeycomb plate is installed on the inner wall of the tower body.
[0008] Optionally, a base is installed at the bottom of the circular honeycomb plate, a movable plate is rotatably connected to one side of the base, a rectangular honeycomb plate is installed at the bottom of the base, the movable plate is rotatably connected to the circular honeycomb plate and the rectangular honeycomb plate, an elastic sealing ring is installed on one side of the rectangular honeycomb plate, an installation groove plate is installed at one end of the elastic sealing ring, and the installation groove plate is installed on the inner wall of the tower body.
[0009] Optionally, a triangular base is installed on the surface of the rectangular honeycomb plate, a rotating rod is installed in the triangular base, a connecting rod is slidably connected to one end of the rotating rod, an eccentric circle is installed at one end of the connecting rod, a drive shaft is installed at one end of the eccentric circle, and a micro motor is installed at one end of the drive shaft.
[0010] Optionally, the air flow driving component includes a double bevel gear transmission rod, which is installed in the support frame, a first bevel gear is meshingly connected to one end of the double bevel gear transmission rod, a threaded rod is installed at the bottom of the first bevel gear, an internal thread sleeve is threadedly connected to the surface of the threaded rod, a rotating seat is installed at one end of the internal thread sleeve, and a rotating column is rotatably connected in the rotating seat.
[0011] Optionally, one end of the rotating column is rotatably connected with a driving column, one end of the driving column is provided with a rotating shaft, one end of the rotating shaft is provided with a fan blade, the surface of the rotating shaft is slidably connected with an arc-shaped push plate, one end of the arc-shaped push plate is provided with a connecting column, the bottom of the connecting column is provided with a straight rod, the bottom of the straight rod is connected with the driving column, and the bottom of the arc-shaped push plate is provided with a plate connecting block.
[0012] Optionally, the bottom of the plate connecting block is rotatably connected with a cylinder, one end of the cylinder is rotatably connected with a rotating plate, the rotating plate is connected with the rotating shaft, the bottom of the supporting frame is provided with an operating cylinder, one end of the operating cylinder is rotatably connected with a rotating drum, the rotating drum is sleeved on the surface of the rotating shaft, the bottom of the rotating drum is provided with a material spraying head, and the material spraying head is obliquely arranged at the bottom of the rotating drum.
[0013] Optionally, the stirring adjusting assembly comprises a driving rod, the driving rod is arranged at the bottom of the rotating drum, the bottom of the driving rod is provided with a first rotating wheel, one end of the first rotating wheel is provided with a driving belt, one end of the driving belt is provided with a second rotating wheel, and the bottom of the second rotating wheel is provided with a connecting stick.
[0014] Optionally, the bottom of the connecting stick is rotatably connected with a rotating shaft connecting plate, the bottom of the rotating shaft connecting plate is rotatably connected with a rack, one end of the rack is meshingly connected with a gear, the bottom of the gear is provided with a power rod, the inner wall top of the tower body is provided with a limiting block, and the limiting block is arranged at one end of the gear.
[0015] Optionally, the bottom of the power rod is provided with a Y-shaped support, the Y-shaped support is provided with two groups, the sizes of the two groups of Y-shaped supports are different, the bottom of the Y-shaped support is provided with a first helical gear, one end of the first helical gear is meshingly connected with a second helical gear, and one end of the Y-shaped support is provided with a blade-equipped stirring rod.
[0016] Compared with the prior art, the present application has at least the following advantages:
[0017] In the above scheme, the honeycomb flow guide assembly is arranged, the regular channels thereof are used to force gas flow, local vortex and short circuit phenomenon are eliminated, uniform gas distribution is ensured, reaction dead angle is avoided, meanwhile, the honeycomb plate is vibrated to periodically disturb the gas flow, break the laminar boundary layer of the gas-solid contact interface, enhance the mixing effect, remove impurities, prevent the accumulation of deacidifying agent and reaction products, maintain the stability of porosity, avoid blockage, the zigzag flow channel formed by the multi-layer honeycomb flow guide assembly prolongs the gas residence time, vibration promotes the suspension and rolling of the deacidifying agent, realizes the dynamic contact of gas and solid, improves the reaction efficiency, and the layered vibration design further optimizes the reaction speed and deacidification effect.
[0018] By setting the airflow driving assembly, the worker adjusts the fan angle by rotating the rotating handle, the fan angle changes with the real-time change of the deacidifying agent spraying pressure, breaks the flow field limitation of the traditional fixed fan, makes the flue gas and the deacidifying agent form turbulent mixing, and improves the contact area. At the same time, the change of the fan angle drives the airflow to wash the inner wall of the tower body, reduces the deposition of reaction products, reduces the frequency of manual cleaning, and replaces the rotation of the fan driven by the traditional motor by the power generated by the spraying of the deacidifying agent. The power cost is saved, the energy consumption is reduced, and the device can change the fan angle to maintain the best reaction condition according to the flue gas flow or the concentration of the acid component of the gas, improve the reaction contact time.
[0019] By setting the stirring adjusting assembly, the double Y-shaped support reverse rotation structure is used to drive the stirring rod with leaves, the mechanical shear force is used to break the gas-solid laminar boundary layer, the turbulent mixing is formed to increase the contact area, the stirring makes the deacidifying agent particles continuously suspended and rolled, the gas-solid dynamic contact time is prolonged, the reverse rotation design prevents the particles from being accumulated in one direction, the utilization rate of the deacidifying agent is improved, and the unreacted loss is reduced. The bevel gear transmission mechanism combines with the intermittent stirring mode, maintains high-efficiency reaction, significantly reduces energy consumption, and comprehensively improves the reaction efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0020] The accompanying drawings, which are incorporated herein and constitute part of the specification, illustrate embodiments of the application and, together with the description, further serve to explain the principles of the application and to enable a person skilled in the relevant art to implement and use the application.
[0021] Figure 1 It is a front view of the deacidification tower for improving the gas-solid reaction efficiency of the application;
[0022] Figure 2 It is another perspective view of the deacidification tower for improving the gas-solid reaction efficiency of the application;
[0023] Figure 3 It is a perspective view of the tower body inside the application;
[0024] Figure 4 It is a perspective view of the honeycomb guide assembly of the application;
[0025] Figure 5 It is a perspective view of the position relationship between the circular honeycomb plate and the rectangular honeycomb plate of the application;
[0026] Figure 6 It is a perspective view of the honeycomb guide assembly of the application; Figure 5
[0027] Figure 7 It is a perspective view of the position relationship between the circular honeycomb plate and the rectangular honeycomb plate of the application;
[0028] Figure 8 It is a schematic diagram of the three-dimensional structure of the material spraying head of the present application;
[0029] Figure 9 It is a schematic diagram of the three-dimensional structure of the position relationship between the double bevel gear transmission rod and the first bevel gear of the present application;
[0030] Figure 10 It is a schematic diagram of the three-dimensional structure of the position relationship between the first bevel gear and the second bevel gear of the present application; Figure 9 It is an enlarged view of B in the present application;
[0031] Figure 11 It is a schematic diagram of the three-dimensional structure of the position relationship between the first bevel gear and the second bevel gear of the present application;
[0032] Figure 12 It is a schematic diagram of the three-dimensional structure of the stirring adjusting assembly of the present application.
[0033] Reference signs:
[0034] 1, tower body; 2, feed bin; 3, industrial slurry pump; 4, shell cabinet; 5, spraying pipe; 6, honeycomb flow guide assembly; 61, annular material conveying pipe; 62, porous spraying head; 63, supporting block; 64, feeding pipe; 65, circular honeycomb plate; 66, base; 67, movable plate; 68, rectangular honeycomb plate; 69, elastic sealing ring; 610, mounting groove plate; 611, triangular base; 612, rotating rod; 613, connecting rod; 614, eccentric circle; 615, micro motor; 616, driving shaft; 7, air flow driving assembly; 71, double bevel gear transmission rod; 72, first bevel gear; 73, threaded rod; 74, internally threaded sleeve; 75, rotating seat; 76, rotating column; 77, driving column; 78, rotating shaft; 79, straight rod; 710, connecting support; 711, arc-shaped push plate; 712, plate connecting block; 713, cylinder; 714, rotating plate; 715, fan blade; 716, operating cylinder; 717, rotating cylinder; 718, material spraying head; 8, stirring adjusting assembly; 81, driving rod; 82, first rotating wheel; 83, driving belt; 84, second rotating wheel; 85, connecting stick; 86, rotating shaft connecting plate; 87, rack; 88, gear; 89, limiting block; 810, power rod; 811, Y-shaped support; 812, first bevel gear; 813, second bevel gear; 814, leafed stirring rod; 9, gas outlet; 10, supporting frame; 11, rotating handle; 12, air inlet.
[0035] As shown in the drawings, in order to clearly realize the structure of the embodiments of the present application, specific structures and devices are marked in the drawings, but this is only for the need of illustration, and is not intended to limit the present application to the specific structures, devices and environments, and those skilled in the art can adjust or modify these devices and environments according to specific needs. DETAILED DESCRIPTION
[0036] The acid removal tower for improving the gas-solid reaction efficiency provided by the present application is described in detail below in combination with the drawings and specific embodiments. Meanwhile, it is explained here that in order to make the embodiments more detailed, the following embodiments are the best, preferred embodiments, and other alternative ways can also be adopted by those skilled in the art for implementation for some known technologies; and the drawings are only for more specific description of the embodiments, and are not intended to specifically limit the present application.
[0037] It should be noted that the terms "one embodiment", "an embodiment", "exemplary embodiment", "some embodiments", etc. in the description indicate that the described embodiments can include a specific feature, structure or characteristic, but not necessarily every embodiment includes the specific feature, structure or characteristic. In addition, when a specific feature, structure or characteristic is described in combination with an embodiment, it should be within the knowledge of those skilled in the related art to realize this feature, structure or characteristic in combination with other embodiments (whether or not explicitly described).
[0038] Generally, the terms can be understood at least in part from the context in which they are used. For example, depending at least in part upon the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in the singular or can be used to describe combinations of features, structures or characteristics, in the plural, depending at least in part on the context. Still further, the term "based on" can be understood as not necessarily requiring exclusively derived from that which is stated, but rather can allow for being based on a combination of more than one factor, depending at least in part on the context.
[0039] It can be understood that the meanings of "on", "over", and "above" in the present application should be interpreted in the broadest way, so that "on" not only means "directly on" something, but also includes the meaning of "on" something with intervening features or layers therebetween, and "over" or "above" not only means the meaning of "over" or "above" something, but also can include the meaning of "over" or "above" something without intervening features or layers therebetween.
[0040] In addition, spatially relative terms such as "under", "below", "lower", "over", "upper" and the like can be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. The spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientations depicted in the figures. The device can be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein can be interpreted accordingly.
[0041] As Figures 1 to 12As shown, the embodiment of the present application provides a deacidification tower for improving gas-solid reaction efficiency, comprising a tower body 1, a gas outlet 9 installed at the top of the tower body 1, a feeding bin 2 installed at one end of the tower body 1, an industrial slurry pump 3 installed at the top of the feeding bin 2, an outer shell cabinet 4 installed on the surface of the tower body 1, a spraying pipe 5 inserted into the feeding bin 2, an air inlet 12 installed at the other end of the tower body 1, a support frame 10 installed at the top of the tower body 1, and a rotating handle 11 installed at one end of the support frame 10; a honeycomb flow guide assembly 6 is installed at one end of the spraying pipe 5, and the honeycomb flow guide assembly 6 is used for guiding gas flow and solid vibration contact; an airflow driving assembly 7 is installed at the top of the support frame 10, and the airflow driving assembly 7 is used for adjusting the flow rate inside the tower body 1; an agitation adjusting assembly 8 is installed at the bottom of the airflow driving assembly 7, and the agitation adjusting assembly 8 is used for increasing the contact area of the gas and the solid inside the tower body 1; the honeycomb flow guide assembly 6 is installed at the bottom of the airflow driving assembly 7, and the airflow driving assembly 7 is installed at the top of the agitation adjusting assembly 8.
[0042] As an embodiment in the present embodiment, as Figures 7 to 11As shown, the honeycomb guide assembly 6 comprises a ring-shaped feed pipe 61 mounted at one end of the spray pipe 5, a support block 63 mounted on the inner wall of the tower body 1, a plurality of porous spray heads 62 mounted at the bottom of the ring-shaped feed pipe 61, a feed pipe 64 mounted at the top of the ring-shaped feed pipe 61, a circular honeycomb plate 65 mounted on the inner wall of the tower body 1, a base 66 mounted at the bottom of the circular honeycomb plate 65, a movable plate 67 rotatably connected to one side of the base 66, a rectangular honeycomb plate 68 mounted at the bottom of the base 66, the movable plate 67 rotatably connected to the circular honeycomb plate 65 and the rectangular honeycomb plate 68, an elastic sealing ring 69 mounted on one side of the rectangular honeycomb plate 68, an installation groove plate 610 mounted at one end of the elastic sealing ring 69, the installation groove plate 610 mounted on the inner wall of the tower body 1, a triangular base 611 mounted on the surface of the rectangular honeycomb plate 68, a rotating rod 612 mounted in the triangular base 611, a connecting rod 613 slidably connected to one end of the rotating rod 612, an eccentric circle 614 mounted at one end of the connecting rod 613, a drive shaft 616 mounted at one end of the eccentric circle 614, and a micro motor 615 mounted at one end of the drive shaft 616. When the ring-shaped feed pipe 61 mounted on the support block 63 is conveying the deacidifying agent into the plurality of porous spray heads 62 at the bottom, at the same time, the deacidifying agent is conveyed to the airflow driving assembly 7 through the feed pipe 64, and then the deacidifying agent in the porous spray heads 62 is sprayed into the tower body 1. At this time, the deacidifying agent sprayed from the plurality of porous spray heads 62 covers the inside of the tower body 1 and moves downward, at the same time, the gas enters the inside of the tower body 1 from the gas inlet 12, and is blocked by the installation groove plate 610, and then begins to flow to the rectangular honeycomb plate 68. At the same time, in the process of gas flow, the micro motor 615 driven in the outer shell cabinet 4 begins to operate. When the micro motor 615 operates, the drive shaft 616 mounted at the output end of the micro motor 615 drives the eccentric circle 614 to rotate. The rotation of the eccentric circle 614 makes the connecting rod 613 mounted at one end of the eccentric circle 614 move. When the connecting rod 613 moves, the other end of the connecting rod 613 swings on the rotating rod 612 mounted on the triangular base 611. Under the swing, the triangular base 611 drives the rectangular honeycomb plate 68 to shake. When the rectangular honeycomb plate 68 shakes, the elastic sealing ring 69 mounted at one end of the rectangular honeycomb plate 68 buffers, and at the same time, the bottom rectangular honeycomb plate 68 drives the movable plate 67 to shake in the base 66. The shaking of the movable plate 67 makes the rectangular honeycomb plate 68 connected to the base 66 at the top also shake at the bottom of the circular honeycomb plate 65. Then the gas is divided from the honeycomb plate and passes through the moving deacidifying agent to react.
[0043] As an embodiment in the present embodiment, as Figures 7 to 11As shown, the airflow driving assembly 7 includes a double bevel gear transmission rod 71 installed inside the support frame 10, one end of the double bevel gear transmission rod 71 is meshedly connected with a first bevel gear 72, the bottom of the first bevel gear 72 is installed with a threaded rod 73, the surface of the threaded rod 73 is threadedly connected with an internal thread sleeve 74, one end of the internal thread sleeve 74 is installed with a rotating seat 75, the inside of the rotating seat 75 is rotatably connected with a rotating column 76, one end of the rotating column 76 is rotatably connected with a driving column 77, one end of the driving column 77 is installed with a rotating shaft 78, one end of the rotating shaft 78 is installed with a fan blade 715, the surface of the rotating shaft 78 is slidably connected with an arc-shaped push plate 711, one end of the arc-shaped push plate 711 is installed with a connecting strut 710, the bottom of the connecting strut 710 is installed with a straight rod 79, the bottom of the straight rod 79 is connected with the driving column 77, the bottom of the arc-shaped push plate 711 is installed with a plate connecting block 712, the bottom of the plate connecting block 712 is rotatably connected with a cylinder 713, one end of the cylinder 713 is rotatably connected with a rotating plate 714, the rotating plate 714 is connected with the rotating shaft 78, the bottom of the support frame 10 is installed with an operating cylinder 716, one end of the operating cylinder 716 is rotatably connected with a rotating cylinder 717, the rotating cylinder 717 is sleeved on the surface of the rotating shaft 78, the bottom of the rotating cylinder 717 is installed with a material spraying head 718, the material spraying head 718 is obliquely arranged at the bottom of the rotating cylinder 717, when the worker adjusts the angle of the fan blade 715 according to the real-time monitoring of the gas acidity, the worker first rotates the rotating handle 11, then when the rotating handle 11 rotates, the double bevel gear transmission rod 71 rotates in the support frame 10, at this time the first bevel gear 72 meshedly connected with one end of the double bevel gear transmission rod 71 rotates, and when the first bevel gear 72 rotates, the threaded rod 73 installed in the operating cylinder 716 rotates in the internal thread sleeve 74, the threaded rod 73 in rotation moves the internal thread sleeve 74, at this time the moving internal thread sleeve 74 moves the rotating seat 75 installed at one end, the movement of the rotating seat 75 moves the rotating column 76 rotatably connected therewith and the driving column 77, at the same time, the movement of the driving column 77 moves the straight rod 79 installed at the top of the driving column 77 and the connecting strut 710, at the same time, under the force of the driving column 77 and the connecting strut 710, the rotating shaft 78 flips, the rotating shaft 78 in flipping moves the arc-shaped push plate 711, at this time the arc-shaped push plate 711 rotates around the axis of the internal thread sleeve 74, then the plate connecting block 712 is moved by the arc-shaped push plate 711, then the cylinder 713 installed on one side of the plate connecting block 712 moves the rotating plate 714 on the rotating shaft 78, at this time the other three groups of rotating shafts 78 are synchronously flipped, then the fan blade 715 installed at the other end of the rotating shaft 78 flips, adjusts the flipping angle of the fan blade 715, stops the rotation of the rotating handle 11 until the most suitable deacidification reaction angle is adjusted, at the same time, the power generated by the deacidifying agent sprayed by the material spraying head 718 drives the rotating cylinder 717 to rotate,When the rotating drum 717 rotates, the internal threaded sleeve 74 and the threaded rod 73 rotate together.
[0044] As an implementation method in this embodiment, such as Figures 7 to 12 As shown, the stirring adjustment assembly 8 includes a drive rod 81, which is installed at the bottom of the rotating drum 717. A first rotating wheel 82 is installed at the bottom of the drive rod 81. A drive belt 83 is installed at one end of the first rotating wheel 82, and a second rotating wheel 84 is installed at one end of the drive belt 83. A connecting rod 85 is installed at the bottom of the second rotating wheel 84. A rotating shaft connecting plate 86 is rotatably connected to the bottom of the connecting rod 85. A rack 87 is rotatably connected to the bottom of the rotating shaft connecting plate 86. A gear 88 is meshed at one end of the rack 87. A power rod 810 is installed at the bottom of the gear 88. A limit block 89 is installed at the top of the inner wall of the tower body 1. The position block 89 is installed at one end of the gear 88. A Y-shaped bracket 811 is installed at the bottom of the power rod 810. Two sets of Y-shaped brackets 811 are provided, and the two sets of Y-shaped brackets 811 have different dimensions. A first helical gear 812 is installed at the bottom of the Y-shaped bracket 811, and a second helical gear 813 is meshed at one end of the first helical gear 812. A bladed stirring rod 814 is installed at one end of the Y-shaped bracket 811. When the drive rod 81 starts to rotate, the first rotating wheel 82 installed at the bottom of the drive rod 81 rotates simultaneously. When the first rotating wheel 82 rotates, the drive belt 83 installed inside drives the second rotating wheel 84 to rotate synchronously. As the second rotating wheel 84 rotates, the connecting rod 85 mounted at the bottom of the second rotating wheel 84 drives the rotating shaft connecting plate 86 to rotate. The rack 87 connected to the bottom of the rotating shaft connecting plate 86 is subjected to the force of the rotation of the rotating shaft connecting plate 86 and performs reciprocating motion. The movement of the rack 87 causes the gear 88 meshing with it at one end to start rotating. Under the action of the limiting block 89, the rack 87 is always meshing with the gear 88. At the same time, the rotation of the gear 88 drives the power rod 810 to rotate. The rotation of the power rod 810 causes the Y-shaped bracket 811 mounted at the bottom to rotate as well. At this time, the bladed stirring rod 81 mounted at one end of the Y-shaped bracket 811... 4. The gas and solid inside the tower body 1 are stirred. As the Y-shaped support 811 rotates, the first helical gear 812 installed at the bottom of the Y-shaped support 811 rotates synchronously. Then the second helical gear 813 also rotates. When the second helical gear 813 rotates, the first helical gear 812 meshing with the bottom of the second helical gear 813 rotates. At this time, the first helical gears 812 at both ends of the second helical gear 813 rotate in opposite directions. Then the two sets of Y-shaped supports 811 of different specifications rotate in opposite directions periodically, so that the gas and deacidifying agent particles inside the tower body 1 can come into better contact.
[0045] The working principle of the technical solution provided by this invention is as follows:
[0046] In use of the device, first through the deacidifier particles transport pipeline connection in the top of the feed bin 2 opening, through the industrial slurry pump 3 continuously deacidifier particles into the feed bin 2, then the gas to be deacidified and the tower body 1 bottom gas inlet 12 connected, then start industrial slurry pump 3 deacidifier particles in the feed bin 2 for pumping, then the shell cabinet 4 in the micro motor 615 start, and the gas to be deacidified from the gas inlet 12 introduced into the tower body 1 inside, at this time the spray pipe 5 will transport deacidifier into the tower body 1 for spraying, at this time the honeycomb flow guide assembly 6 starts to run.
[0047] When the gas to be deacidified into the tower body 1, the honeycomb flow guide assembly 6 starts to run, at this time, the annular feed pipe 61 installed on the support block 63 deacidifier into the bottom of the plurality of porous shower head 62, at the same time, the deacidifier by feeding pipe 64 to the airflow driven assembly 7 for transport, then the porous shower head 62 deacidifier injection into the tower body 1, at this time the plurality of porous shower head 62 sprayed deacidifier cover the inside of the tower body 1 down, at the same time, the gas from the gas inlet 12 into the tower body 1 inside, by the effect of the installation groove plate 610 gas is blocked, then start to flow to the rectangular honeycomb plate 68, at the same time, in the process of gas flow, the shell cabinet 4 inside the drive micro motor 615 starts to run, when the micro motor 615 run, the micro motor 615 output end installed drive shaft 616 with eccentric circle 614 for rotation, the rotation of the eccentric circle 614, the eccentric circle 614 one end of the connecting rod 613 follow the movement, when the connecting rod 613 moves, the other end of the connecting rod 613 in the installation on the rotating rod 612 on the triangular base 611 swing, by swing, the triangular base 611 drive rectangular honeycomb plate 68 to shake, when the rectangular honeycomb plate 68 shake, the rectangular honeycomb plate 68 one end of the elastic sealing ring 69 then buffer, while the bottom of the rectangular honeycomb plate 68 drive the movable plate 67 in the base 66 shake, the movable plate 67 shake then make the base 66 connected to the top of the rectangular honeycomb plate 68 also shake, in the bottom of the circular honeycomb plate 65, then the gas from the honeycomb plate shunt through the moving deacidifier contact reaction.
[0048] When the deacidification agent is delivered into the operating cylinder 716 through the feeding pipe 64, the gas flow driving assembly 7 starts to operate, the worker adjusts the angle of the fan blade 715 according to the real-time monitoring of the gas acidity, the worker first rotates the rotating handle 11, then when the rotating handle 11 rotates, the double bevel gear transmission rod 71 rotates in the support frame 10, at this time the first bevel gear 72 meshing connected at one end of the double bevel gear transmission rod 71 rotates, and when the first bevel gear 72 rotates, the threaded rod 73 installed at the bottom of the first bevel gear 72 in the operating cylinder 716 starts to rotate in the internal threaded sleeve 74, the threaded rod 73 in rotation makes the internal threaded sleeve 74 move, at this time the moving internal threaded sleeve 74 drives the rotating seat 75 installed at one end to move, and the movement of the rotating seat 75 drives the rotating column 76 connected with the driving column 77 to move together, at the same time, the movement of the driving column 77 drives the straight rod 79 installed at the top of the driving column 77 to move together with the connecting strut 710, at the same time, under the force of the driving column 77 and the connecting strut 710, the rotating shaft 78 flips, the rotating shaft 78 in flipping drives the arc-shaped push plate 711 to move together, at this time the arc-shaped push plate 711 rotates around the axis of the internal threaded sleeve 74, then the plate connecting block 712 is driven by the arc-shaped push plate 711 to move, then the cylinder 713 installed on one side of the plate connecting block 712 drives the rotating plate 714 to move together on the rotating shaft 78, at this time the other three groups of rotating shafts 78 are synchronously flipped, then the fan blade 715 installed at the other end of the rotating shaft 78 flips, adjusts the flipping angle of the fan blade 715, and stops the rotation of the rotating handle 11 until the most suitable deacidification reaction angle is adjusted, at the same time, the power generated by the deacidification agent sprayed by the spraying head 718 drives the rotating cylinder 717 to rotate, and when the rotating cylinder 717 rotates, the internal threaded sleeve 74 and the threaded rod 73 rotate together, at this time the stirring adjustment assembly 8 starts to operate.
[0049] When the rotating drum 717 rotates, the stirring adjusting assembly 8 starts to work, the driving rod 81 starts to rotate, and the first rotating wheel 82 installed at the bottom of the driving rod 81 rotates, when the first rotating wheel 82 rotates, the second rotating wheel 84 installed inside is driven to rotate synchronously by the driving belt 83, at this time, the connecting stick 85 installed at the bottom of the second rotating wheel 84 drives the rotating shaft connecting plate 86 to rotate, and the rack 87 connected with the bottom of the rotating shaft connecting plate 86 is driven to move back and forth by the rotating force of the rotating shaft connecting plate 86, the movement of the rack 87 drives the gear 88 connected with one end to rotate, the rack 87 is always connected with the gear 88 by the action of the limiting block 89, at the same time, the rotation of the gear 88 drives the power rod 810 to rotate, the rotation of the power rod 810 drives the Y-shaped support 811 installed at the bottom to rotate, at this time, the stirring rod 814 with leaves installed at one end of the Y-shaped support 811 starts to stir the gas and solid in the tower body 1, with the rotation of the Y-shaped support 811, the first helical gear 812 installed at the bottom of the Y-shaped support 811 rotates synchronously, then the second helical gear 813 also rotates, when the second helical gear 813 rotates, the first helical gear 812 connected with the bottom of the second helical gear 813 rotates, at this time, the first helical gears 812 at both ends of the second helical gear 813 rotate in opposite directions, then the two groups of Y-shaped supports 811 with different specifications rotate in opposite directions, so that the gas and the deacidification agent particles in the tower body 1 can better contact, and the reaction speed is accelerated, and the gas after the reaction flows out through the gas outlet 9.
[0050] The present application encompasses any alternatives, modifications, equivalent methods and solutions made to the essence and scope of the present application. In order to make the public have a thorough understanding of the present application, specific details are described in the following preferred embodiments of the present application, and the present application can also be completely understood without the description of these details for those skilled in the art. In addition, in order to avoid unnecessary confusion to the essence of the present application, well-known methods, processes, procedures, elements and circuits are not described in detail.
[0051] The above is only the preferred embodiment of the present application, and it should be pointed out that, for ordinary skilled in the art, without departing from the principle of the present application, a number of improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present application.
Claims
1. A deacidification tower for improving gas-solid reaction efficiency, comprising a tower body, a gas outlet installed at the top of the tower body, and a feed hopper installed at one end of the tower body, characterized in that, An industrial slurry pump is installed on the top of the feeding hopper, an outer casing is installed on the surface of the tower body, a spray pipe is inserted into the inside of the feeding hopper, an air inlet is installed at the other end of the tower body, a support frame is also installed on the top of the tower body, and a rotating handle is installed at one end of the support frame. A honeycomb flow guiding component is installed at one end of the spray pipe, which is used to guide the gas to contact the solid vibration. An airflow drive assembly is installed on the top of the support frame, which is used to regulate the flow rate inside the tower body. The bottom of the airflow drive assembly is equipped with an agitation regulating assembly, which is used to increase the contact area between the gas and solid inside the tower body. The honeycomb flow guiding component is installed at the bottom of the airflow driving component, and the airflow driving component is installed at the top of the agitation regulating component; The airflow drive assembly includes a double bevel gear transmission rod, which is installed inside the support frame. One end of the double bevel gear transmission rod is meshed with a first bevel gear. A threaded rod is installed at the bottom of the first bevel gear. An internal threaded sleeve is threaded onto the surface of the threaded rod. A rotating seat is installed at one end of the internal threaded sleeve. A rotating column is rotatably connected inside the rotating seat. One end of the rotating column is rotatably connected to a drive column, one end of the drive column is equipped with a rotating shaft, one end of the rotating shaft is equipped with a fan blade, an arc-shaped push plate is slidably connected to the surface of the rotating shaft, one end of the arc-shaped push plate is equipped with a connecting support column, the bottom of the connecting support column is equipped with a straight rod, the bottom of the straight rod is connected to the drive column, and the bottom of the arc-shaped push plate is equipped with a plate connecting block. A cylinder is rotatably connected to the bottom of the plate-connecting block, and a rotating plate is rotatably connected to one end of the cylinder. The rotating plate is connected to a rotating shaft. An operating cylinder is installed at the bottom of the support frame, and a rotating cylinder is rotatably connected to one end of the operating cylinder. The rotating cylinder is sleeved on the surface of the rotating shaft, and a spray head is installed at the bottom of the rotating cylinder. The spray head is inclined at the bottom of the rotating cylinder.
2. The deacidification tower for improving gas-solid reaction efficiency according to claim 1, characterized in that, The honeycomb flow guiding assembly includes an annular feed pipe, which is installed at one end of a spray pipe. A support block is installed on the surface of the annular feed pipe, and the support block is installed on the inner wall of the tower body. A multi-hole spray head is installed at the bottom of the annular feed pipe, and a feeding pipe is installed at the top of the annular feed pipe. A circular honeycomb plate is installed on the inner wall of the tower body.
3. The deacidification tower for improving gas-solid reaction efficiency according to claim 2, characterized in that, A base is installed at the bottom of the circular honeycomb panel, and a movable plate is rotatably connected to one side of the base. A rectangular honeycomb panel is installed at the bottom of the base. The movable plate is rotatably connected to the circular honeycomb panel and the rectangular honeycomb panel. An elastic sealing ring is installed on one side of the rectangular honeycomb panel, and an installation groove plate is installed at one end of the elastic sealing ring. The installation groove plate is installed on the inner wall of the tower body.
4. The deacidification tower for improving gas-solid reaction efficiency according to claim 3, characterized in that, A triangular base is mounted on the surface of the rectangular honeycomb panel. A rotating rod is installed inside the triangular base. A connecting rod is slidably connected to one end of the rotating rod. An eccentric circle is mounted on one end of the connecting rod. A drive shaft is mounted on one end of the eccentric circle. A micro motor is mounted on one end of the drive shaft.
5. The deacidification tower for improving gas-solid reaction efficiency according to claim 4, characterized in that, The agitation adjustment assembly includes a drive rod, which is installed at the bottom of the rotating drum. A first rotating wheel is installed at the bottom of the drive rod, a drive belt is installed at one end of the first rotating wheel, a second rotating wheel is installed at one end of the drive belt, and a connecting roller is installed at the bottom of the second rotating wheel.
6. The deacidification tower for improving gas-solid reaction efficiency according to claim 5, characterized in that, The bottom of the connecting rod is rotatably connected to a rotating shaft connecting plate, the bottom of the rotating shaft connecting plate is rotatably connected to a rack, one end of the rack is meshed with a gear, the bottom of the gear is equipped with a power rod, and a limit block is installed on the top of the inner wall of the tower body, with the limit block installed on one end of the gear.
7. The deacidification tower for improving gas-solid reaction efficiency according to claim 6, characterized in that, A Y-shaped bracket is installed at the bottom of the power rod. There are two sets of Y-shaped brackets with different sizes. A first helical gear is installed at the bottom of the Y-shaped bracket. A second helical gear is meshed at one end of the first helical gear. A bladed stirring rod is installed at one end of the Y-shaped bracket.
Citation Information
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