Spliced industrial spray tower structure
By using a modular structure and convertible nozzle design, the problems of cumbersome operation and nozzle contamination during the construction and maintenance of the spray tower are solved, enabling rapid construction and extended maintenance cycles, thereby improving production efficiency and equipment stability.
Patent Information
- Application Number
- CN202510351696.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2045-03-24
AI Technical Summary
Existing industrial spray towers are cumbersome to build and maintain, time-consuming and labor-intensive, and the nozzles are easily contaminated, affecting the spraying effect, resulting in increased time costs and reduced production efficiency.
It adopts a modular structure, using connecting plates and connecting components to achieve quick sealing and fixing. It is equipped with a spray component with interchangeable nozzles, and the nozzle position can be changed through rotating parts and guide grooves, reducing the frequency of maintenance.
It improves the efficiency of spray tower construction, extends the cleaning cycle of spray nozzles, reduces equipment downtime and staff workload, and meets the fast-paced needs of industrial production.
Smart Images

Figure CN120393706B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of spray tower technology, and in particular to a modular industrial spray tower structure. Background Technology
[0002] In the process of modern industrial development, many industries such as chemical, pharmaceutical, coating, and printing inevitably generate a considerable amount of waste gas containing various harmful pollutants during production operations. If this waste gas is directly discharged into the atmosphere without proper and effective purification treatment, it will cause catastrophic damage to the ecological environment and pose a serious threat to human health. As a key device widely used in the field of waste gas treatment, the industrial spray tower works on the principle of fully interacting with the gas through the interaction between the liquid and the gas. The spray liquid dissolves and efficiently absorbs the harmful substances contained in the waste gas, or promotes a chemical reaction between the two, thereby achieving the goal of purifying the waste gas and making it meet emission standards. In the actual installation of the spray tower, it is usually necessary to carry out layer-by-layer assembly work according to a specific process.
[0003] However, there are still shortcomings in the current design of industrial spray towers:
[0004] Firstly, in the current process of assembling a spray tower, the flanges at the splicing parts are generally fastened with bolts. During the initial installation and subsequent disassembly and maintenance of the spray tower, a large number of bolts need to be disassembled and installed one by one. This process is not only cumbersome and time-consuming, which greatly consumes valuable time resources and directly leads to a significant increase in time costs, but also frequent bolt operations can easily cause derivative problems such as component wear and thread stripping, which poses a hidden danger to the stable operation of the spray tower.
[0005] Secondly, after prolonged and continuous operation, the outer surface of the spray nozzles inside the spray tower is prone to accumulating a layer of dirt and impurities. This accumulation of dirt will have a serious negative impact on the spraying function of the nozzles, resulting in a significant reduction in the spraying effect and failing to meet the process requirements for waste gas treatment. Therefore, the staff frequently have to wipe and clean the nozzles, which undoubtedly increases the labor intensity and workload of the staff. Furthermore, during the cleaning period, the spray tower often needs to be shut down, which inevitably delays the entire project schedule, reduces production efficiency, and causes economic losses to the company. Summary of the Invention
[0006] To address the above problems, one objective of this application is to overcome these shortcomings, and more specifically, to provide a modular industrial spray tower structure that can improve the construction efficiency of the spray tower while ensuring airtightness, and by setting up convertible nozzles, can extend the cleaning and maintenance cycle of the nozzles and reduce the workload of workers.
[0007] In a first aspect, this disclosure provides a modular industrial spray tower structure, specifically comprising: a cooling zone; the cooling zone includes a base, a connecting groove A, and a flue gas outlet; the base has an observation port at its front end and a flange on its upper exterior; the connecting groove A is located on the inner side of the upper end of the base; the flue gas outlet is located on the side end of the base; an absorption zone is provided on the cooling zone, the shell of the absorption zone is located on the upper end of the base, and a connecting plate at the lower end of the shell is inserted into the connecting groove A, and a water inlet at the outer end of the shell is connected to an upper pipe on a water pump outside the base; two sets of spray components are provided on the absorption zone, and the rotation of the spray components... The rotating component is located at the inner end of the housing, and it is rotatably engaged with the water inlet on the housing. The rotating component is connected to the upper pipe through the water inlet. The limiting hole at the upper end of the rotating component is engaged with the pin on the water inlet, and the guide rod at the outer end of the rotating component is slidably engaged with the guide groove on the water inlet. The absorption area is provided with a demisting area. The top cover of the demisting area is located at the upper end of the housing, and the docking groove B inside the top cover is engaged with the connecting plate at the upper end of the housing. The demisting area is also provided with a connecting component. The top ring of the connecting component is installed on the flange below the top cover and the housing, respectively, and the bottom ring of the connecting component is installed on the flange above the base and the housing, respectively.
[0008] Preferably, the cooling zone includes: a water pump, a lower connecting pipe, and an upper connecting pipe; the water pump is located on a rectangular structure at the outer end of the base; the lower connecting pipe is installed on the left side of the water pump and extends into the interior of the base; the upper connecting pipe is located on the rear side of the water pump.
[0009] Preferably, the absorption area includes: a shell and a filter plate; the front end of the shell is provided with two sets of observation ports; there are two sets of filter plates, and the filter plates are located in the middle and bottom of the shell, and filter holes are opened in the filter plates, and packing materials can be placed on the filter plates.
[0010] Preferably, the absorption area includes: slots and connecting plates; the slots are respectively opened on the upper and lower sides of the housing; the connecting plates are inserted into the sides of the housing via the slots.
[0011] Preferably, the absorption area includes: a water inlet, a guide groove, and a pin; there are two sets of water inlets, and the water inlets are located on the right side of the housing; the guide groove is located on the water inlet; and the pin is inserted into the upper end of the water inlet.
[0012] Preferably, the spraying component includes: a rotating part and a movable block; the rotating part has a Y-shaped groove inside; the movable block is slidably installed inside the rotating part, and the movable block can only move up and down inside the rotating part, and the movable block has a hollow structure, a rectangular groove is provided on the left side of the movable block, the rectangular groove is connected to the inside of the rotating part, and two sets of circular through holes are provided on the side end of the movable block, and only one set of circular through holes can be connected to the inside of the rotating part at any time.
[0013] Preferably, the spray component includes: a limiting hole and a guide rod; the limiting hole is opened on the upper and lower sides of the right end of the rotating part; the guide rod is located on the right side of the rotating part.
[0014] Preferably, the spraying component includes: a main pipe and a side plate; there are two sets of main pipes, and the main pipes are inserted into the two side interfaces on the left side of the rotating part. The two sets of main pipes are arranged vertically, and the side ends of the main pipes are provided with nozzles. The nozzles on the two sets of main pipes face opposite directions; the side plate is fastened to the left side of the two sets of main pipes.
[0015] Preferably, the defogging area includes: a top cover, a demister, and a docking groove B; the top cover has an interface at its top; the demister is located inside the top cover; and the docking groove B is located on the inner side of the lower end of the top cover.
[0016] Preferably, the connecting components include: a top ring, a lifting member, a bottom ring, and a sealing groove; the top ring is hollow inside; the lifting member is slidably installed inside the top ring by an elastic member, and the lower end of the lifting member extends from below the top ring; the bottom ring is fitted to the bottom of the top ring for use; the sealing groove is opened at the upper inside of the bottom ring, and the sealing groove is inserted into the bottom of the lifting member.
[0017] This invention provides a modular industrial spray tower structure, which has the following advantages:
[0018] 1. This invention incorporates connecting plates and connecting components. Slots are opened at both ends of the shell, and annular connecting plates are inserted into the slots. Top and bottom rings are installed at the flanges of the base, shell, and top cover, respectively. During the spray tower assembly, the base, shell, and top cover are sequentially connected, allowing the connecting plates at both ends of the shell to be inserted into docking slots A and B, respectively, achieving initial sealing and fixation at the joint. Simultaneously, the lower end of the lifting component is inserted into the sealing groove of the bottom ring, thus constructing a double-sealed and fixed structure. This not only ensures the sealing effect of the joint, fundamentally eliminating the risk of exhaust gas leakage, but also demonstrates convenience in actual assembly and disassembly operations. Compared to the traditional bolt-fixed method, this invention represents a qualitative leap in achieving rapid assembly and connection. Operators only need simple insertion and removal actions to quickly complete the assembly and disassembly process of the spray tower, perfectly meeting the stringent requirements of current industrial production for quick equipment use, greatly improving construction efficiency, and effectively saving time costs.
[0019] 2. This invention incorporates a spraying component. A rotating part is rotatably installed at the water inlet of the housing. A pin is inserted into the limiting hole inside the rotating part, and a movable block is slidably installed inside the rotating part. Two sets of main pipes with nozzles are inserted into the side of the rotating part, and the lower main pipe is connected to the interior of the rotating part through the movable block. Under normal operating conditions, the spray nozzles on the lower main pipe precisely face the direction of the incoming gas, efficiently carrying out spraying operations to ensure that harmful substances in the exhaust gas are fully washed and purified. When dirt accumulates on the nozzles of the main pipe due to prolonged use, affecting the spraying effect, the operator needs to pull the pin out of the limiting hole and rotate the rotating part and the two sets of main pipes 180° along the guide groove, so that the positions of the two sets of main pipes are swapped. The main pipe with the uncontaminated nozzles is then rotated to the lower working position to continue the spraying task. This not only significantly extends the maintenance cycle of the spraying device and reduces equipment downtime caused by frequent maintenance, but also greatly reduces the cleaning and maintenance burden on the staff. Attached Figure Description
[0020] The advantages of this disclosure will be more clearly demonstrated by the accompanying drawings, which will provide a better understanding of the present disclosure. The drawings described herein are for illustrative purposes only, representing selected embodiments and not all possible implementations, and are not intended to limit the scope of this disclosure.
[0021] In the attached diagram:
[0022] Figure 1 A three-dimensional structural schematic diagram according to an embodiment of the present invention is shown.
[0023] Figure 2 An exploded view is shown according to an embodiment of the present invention.
[0024] Figure 3 A schematic diagram of the connection structure between the cooling zone and the absorption zone according to an embodiment of the present invention is shown.
[0025] Figure 4 A schematic diagram of the connection structure between the absorption zone and the spraying component according to an embodiment of the present invention is shown.
[0026] Figure 5 A schematic diagram of the connection structure between the absorption zone and the demisting zone according to an embodiment of the present invention is shown.
[0027] Figure 6 The invention is illustrated by an embodiment of the invention. Figure 5 This leads to an enlarged structural diagram of part A.
[0028] Figure 7 A cross-sectional structural schematic diagram of the cooling zone according to an embodiment of the present invention is shown.
[0029] Figure 8 A partial cross-sectional view of a spray component according to an embodiment of the present invention is shown.
[0030] Figure 9 An exploded structural diagram of a spray component according to an embodiment of the present invention is shown.
[0031] List of reference numerals
[0032] 1. Cooling area;
[0033] 101. Base; 1011. Connecting groove A; 1012. Smoke vent; 102. Water pump; 1021. Lower connecting pipe; 1022. Upper connecting pipe;
[0034] 2. Absorption region;
[0035] 201. Housing; 2011. Filter plate; 202. Slot; 2021. Connecting plate; 203. Water inlet; 2031. Guide groove; 2032. Pin;
[0036] 3. Spraying components;
[0037] 301. Rotating component; 3011. Movable block; 302. Limiting hole; 303. Guide rod; 304. Main pipe; 305. Side plate;
[0038] 4. Defogging area;
[0039] 401. Top cover; 402. Demister; 403. Docking groove B;
[0040] 5. Connecting components;
[0041] 501, Top ring; 5011, Lifting component; 502, Bottom ring; 5021, Sealing groove. Detailed Implementation
[0042] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0043] Example 1: Please refer to Figures 1 to 9 As shown:
[0044] This invention provides a modular industrial spray tower structure, comprising: a cooling zone 1; the cooling zone 1 includes a base 101, a docking groove A1011, and a flue gas outlet 1012; the base 101 has an observation port at its front end and a flange on the upper exterior of the base 101; the docking groove A1011 is located on the inner side of the upper end of the base 101; the flue gas outlet 1012 is located on the side of the base 101; an absorption zone 2 is provided on the cooling zone 1, the shell 201 of the absorption zone 2 is located on the upper end of the base 101, and the connecting plate 2021 at the lower end of the shell 201 is inserted into the docking groove A1011, and the water inlet 203 at the outer end of the shell 201 is connected to the upper pipe 1022 on the water pump 102 outside the base 101; two sets of spray components 3 are provided on the absorption zone 2, and the rotating part 301 of the spray component 3 is located on the inner end of the shell 201, and the rotating part... Rotary component 301 is rotatably engaged with water inlet 203 on housing 201, and rotating component 301 is connected to upper pipe 1022 through water inlet 203. Limiting hole 302 at the upper end of rotating component 301 is inserted into pin 2032 on water inlet 203, and guide rod 303 at the outer end of rotating component 301 is slidably engaged with guide groove 2031 on water inlet 203. Demisting zone 4 is provided on absorption zone 2. Top cover 401 of demisting zone 4 is located at the upper end of housing 201, and docking groove B403 in top cover 401 is inserted into connecting plate 2021 at the upper end of housing 201. Connecting component 5 is also provided on demisting zone 4. Top ring 501 of connecting component 5 is installed on top cover 401 and flange below housing 201, and bottom ring 502 of connecting component 5 is installed on base 101 and flange above housing 201.
[0045] As a second embodiment of this application, based on the first embodiment, as follows: Figure 7 As shown, the cooling zone 1 includes: a water pump 102, a lower pipe 1021, and an upper pipe 1022; the water pump 102 is mounted on a rectangular structure at the outer end of the base 101; the lower pipe 1021 is installed on the left side of the water pump 102 and extends into the interior of the base 101; the upper pipe 1022 is located on the rear side of the water pump 102.
[0046] A cylindrical base 101 is provided to catch any dropped spray liquid. An annular docking groove A1011 is provided, which, when inserted into a connecting plate 2021, allows the base 101 to connect with the housing 201. A flue vent 1012 is provided, through which the gas to be purified can be introduced into the interior of the base 101. A water pump 102 is provided, which can transport the spray liquid in the base 101 to the spraying component 3, thereby realizing the recycling of the spray liquid. A lower connecting pipe 1021 is provided, which can draw the spray liquid in the base 101 into the water pump 102. An upper connecting pipe 1022 is provided, through which the spray liquid drawn by the water pump 102 can be transported to the spraying component 3.
[0047] As a third embodiment of this application, based on embodiment one, such as Figure 3 and Figure 4 As shown, the absorption zone 2 includes: a housing 201 and a filter plate 2011; the front end of the housing 201 is provided with two sets of observation ports; there are two sets of filter plates 2011, and the filter plates 2011 are located in the middle and bottom of the housing 201, and filter holes are opened in the filter plates 2011, and packing materials can be placed on the filter plates 2011; slots 202 and connecting plates 2021; slots 202 are respectively opened on the upper and lower sides of the housing 201; connecting plates 2021 are inserted into the sides of the housing 201 through slots 202; water inlet 203, guide groove 2031 and pin 2032; there are two sets of water inlets 203, and the water inlets 203 are opened on the right side of the housing 201; guide groove 2031 is opened on the water inlet 203; pin 2032 is inserted into the upper end of the water inlet 203.
[0048] This application provides a housing 201, which allows for the placement of packing components inside the housing 201; a filter plate 2011, which holds the packing components; an annular slot 202, which allows a connecting plate 2021 to be inserted into both sides of the housing 201; an annular connecting plate 2021, which can be used for connection between the housing 201 and the base 101 and the top cover 401; a water inlet 203, on which a spray component 3 can be installed; an arc-shaped guide groove 2031, which allows the rotating component 301 to rotate 180° inside the housing 201 by moving the guide rod 303 along the guide groove 2031; and a T-shaped pin 2032, which allows the rotating component 301 to be fixed on the water inlet 203 by inserting the pin 2032 into the limiting hole 302.
[0049] As a fourth embodiment of this application, based on embodiment one, such as Figure 8 and Figure 9As shown, the spray component 3 includes a rotating part 301 and a movable block 3011. The rotating part 301 has a Y-shaped groove inside. The movable block 3011 is slidably installed inside the rotating part 301, and can only move up and down within the rotating part 301. The movable block 3011 has a hollow structure. A rectangular groove is provided on the left side of the movable block 3011, which communicates with the interior of the rotating part 301. Two sets of circular through holes are provided on the side end of the movable block 3011, and only one set of circular through holes can communicate with the interior of the rotating part 301 at a time. The rotating part 301 is connected to the rotating part 301. The limiting hole 302 and the guide rod 303 are provided on the upper and lower sides of the right end of the rotating part 301. The guide rod 303 is provided on the right side of the rotating part 301. The main pipe 304 and the side plate 305 are provided. There are two sets of main pipes 304, and the main pipes 304 are inserted into the two side interfaces on the left side of the rotating part 301. The two sets of main pipes 304 are arranged vertically. The side end of the main pipe 304 is provided with a nozzle. The nozzles on the two sets of main pipes 304 face opposite directions. The side plate 305 is fastened to the left side of the two sets of main pipes 304.
[0050] This application provides a rotating component 301, which allows two sets of main spray pipes 304 to be connected to the rotating component 301; a cylindrical movable block 3011, which, through its own weight, keeps the movable block 3011 in the lower position within the rotating component 301, ensuring that the rotating component 301 only connects to the lower main pipe 304, thus enabling the lower main pipe 304 to spray; a circular limiting hole 302, which, by engaging with a pin 2032, allows the rotating component 301 to be fixed at the water inlet 203; a cylindrical guide rod 303, which, by moving along the guide groove 2031, allows the rotating component 301 to rotate 180° within the housing 201; a main pipe 304, on which spray nozzles are mounted, thereby achieving spraying; and a side plate 305, which can be used to connect and fix the two sets of main pipes 304.
[0051] As the fifth embodiment of this application, based on the first embodiment, as follows: Figure 5 As shown, the defogging area 4 includes: a top cover 401, a demister 402, and a docking groove B403; the top cover 401 is provided with an interface; the demister 402 is located inside the top cover 401; and the docking groove B403 is located on the inner side of the lower end of the top cover 401.
[0052] This application provides a top cover 401, which allows a demister 402 to be installed inside the top cover 401; the demister 402 allows spray liquid in the gas to be discharged; and a circular docking groove B403 allows the top cover 401 to be connected to the housing 201 by inserting the docking groove B403 into the connecting plate 2021.
[0053] As the sixth embodiment of this application, based on embodiment one, as follows Figure 5 and Figure 6 As shown, the connecting component 5 includes: a top ring 501, a lifting member 5011, a bottom ring 502, and a sealing groove 5021; the top ring 501 is hollow inside; the lifting member 5011 is slidably installed inside the top ring 501 by an elastic member, and the lower end of the lifting member 5011 extends out from below the top ring 501; the bottom ring 502 is fitted to the bottom of the top ring 501 for use; the sealing groove 5021 is opened at the upper inside of the bottom ring 502, and the sealing groove 5021 is inserted into the bottom of the lifting member 5011.
[0054] This application provides a circular top ring 501 and a bottom ring 502, which can be used for splicing between the base 101, the shell 201 and the top cover 401; it provides an annular lifting member 5011 with a V-shaped bottom cross-section, which can seal the splice of the spray tower by inserting the lifting member 5011 into the sealing groove 5021; and it provides a V-shaped sealing groove 5021, which can seal the splice of the spray tower by inserting the lifting member 5011 into the sealing groove 5021.
[0055] The specific usage and function of this embodiment are as follows:
[0056] In this invention, such as Figures 1 to 9As shown, the top ring 501 and bottom ring 502 are respectively installed onto the flanges of the base 101, the housing 201, and the top cover 401. Connecting plates 2021 are inserted into the slots 202 on both sides of the housing 201. The base 101, housing 201, and top cover 401 are then inserted in this manner, so that the connecting plates 2021 on both sides of the housing 201 are inserted into the mating grooves A1011 and B403 respectively. Simultaneously with the insertion, the top ring 501 is raised... The lowering component 5011 is inserted into the sealing groove 5021 inside the bottom ring 502, thereby achieving a double seal at the joint. Packing material is placed onto the two sets of filter plates 2011 inside the housing 201 through the observation port. A rotating component 301 is rotatably installed on the water inlet 203 at the side end of the housing 201. A main pipe 304 with a nozzle is inserted into the side end of the rotating component 301, so that the lower end of the main pipe 304 is connected to the interior of the rotating component 301 through the movable block 3011. The two sets of main pipes 304 are connected and fixed by side plates 305 inserted into their sides. A water pump 102 is installed at the outer end of the base 101. The lower pipe 1021 on the left side of the water pump 102 is inserted into the base 101. The upper pipe 1022 on the right side of the water pump 102 is connected to the two sets of water inlets 203 on the housing 201 and connected to the rotating part 301. Gas is introduced into the base 101 through the flue vent 1012 on the side of the base 101. The gas enters the housing 201 through the filter plate 2011 and is washed inside the housing 201 under the action of the spray nozzle. The washed gas continues to rise and is separated by the separation action of the demister 402. The filtered gas is discharged through the top of the top cover 401, while the washed spray liquid is collected in the base 101 and then pumped out by the water pump 102 for recycling, thus completing the washing and purification of the gas.
[0057] The following points should be noted in this article:
[0058] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0059] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0060] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A modular industrial spray tower structure comprising: Cooling area (1); The cooling area (1) comprises a base (101), a butt joint groove A (1011) and a smoke passage (1012), the front end of the base (101) is provided with an observation port, and the upper end of the base (101) is externally provided with a flange; The butt joint groove A (1011) is opened in the inner side of the upper end of the base (101); The smoke passage (1012) is opened at the side end position of the base (101); The cooling area (1) is characterized in that an absorption area (2) is arranged on the cooling area (1), a shell (201) of the absorption area (2) is arranged on the upper end of the base (101), a connecting plate (2021) at the lower end of the shell (201) is inserted into the butt joint groove A (1011), and a water inlet (203) at the outer end of the shell (201) is connected with an upper connecting pipe (1022) of a water pump (102) outside the base (101); The absorption area (2) comprises: a slot (202) and a connecting plate (2021); The slot (202) is respectively opened at the upper and lower sides of the shell (201); The connecting plate (2021) is inserted into the shell (201) on both sides through the slot (202); Two groups of spraying components (3) are arranged on the absorption area (2), a rotating part (301) of the spraying component (3) is arranged at the inner end of the shell (201), the rotating part (301) is rotationally matched with the water inlet (203) on the shell (201), the rotating part (301) is connected with the upper connecting pipe (1022) through the water inlet (203), a limiting hole (302) at the upper end of the rotating part (301) is inserted and matched with a pin rod (2032) on the water inlet (203), and a guide rod (303) at the outer end of the rotating part (301) is slidingly matched with a guide groove (2031) on the water inlet (203); A demisting area (4) is arranged on the absorption area (2), a top cover (401) of the demisting area (4) is arranged at the upper end of the shell (201), and a butt joint groove B (403) in the top cover (401) is inserted and matched with the connecting plate (2021) at the upper end of the shell (201); A connecting component (5) is further arranged on the demisting area (4), a top ring (501) of the connecting component (5) is respectively mounted on the flanges below the top cover (401) and the shell (201), and a bottom ring (502) of the connecting component (5) is respectively mounted on the flanges above the base (101) and the shell (201); The connecting component (5) comprises: a top ring (501), a lifting part (5011), a bottom ring (502) and a sealing groove (5021); The inside of the top ring (501) is hollow; The lifting part (5011) is slidingly mounted in the top ring (501) through an elastic part, and the lower end of the lifting part (5011) extends from below the top ring (501); The bottom ring (502) is used by being attached below the top ring (501); The sealing groove (5021) is opened at the upper end of the inside of the bottom ring (502), and the sealing groove (5021) is inserted and matched with the bottom of the lifting part (5011).
2. A modular industrial spray tower structure according to claim 1, wherein: The cooling area (1) comprises a water pump (102), a lower connecting pipe (1021) and an upper connecting pipe (1022); the water pump (102) is arranged on the rectangular structure at the outer end of the base (101); the lower connecting pipe (1021) is installed on the left side of the water pump (102), and the lower connecting pipe (1021) extends into the inside of the base (101); and the upper connecting pipe (1022) is arranged on the rear side of the water pump (102).
3. A modular industrial spray tower structure according to claim 1, wherein: The absorption area (2) comprises a shell (201) and filter plates (2011); the shell (201) is provided with two groups of observation openings at the front end; the filter plates (2011) are arranged at the middle and bottom of the inside of the shell (201), and the filter plates (2011) are provided with filter holes, and filler pieces can be placed on the filter plates (2011).
4. The modular industrial spray tower structure of claim 1, wherein: The absorption area (2) comprises water receiving openings (203), guide grooves (2031) and pin rods (2032); the water receiving openings (203) are arranged in two groups, and the water receiving openings (203) are arranged on the right side of the shell (201); the guide grooves (2031) are arranged on the water receiving openings (203); and the pin rods (2032) are inserted into the upper ends of the water receiving openings (203).
5. The modular industrial spray tower structure of claim 1, wherein: The spraying component (3) comprises rotating members (301) and movable blocks (3011); the rotating members (301) are provided with Y-shaped grooves inside; the movable blocks (3011) are slidingly installed in the inside of the rotating members (301), and the movable blocks (3011) can only move up and down in the rotating members (301); the movable blocks (3011) are hollow structures, the movable blocks (3011) are provided with rectangular grooves on the left sides, the rectangular grooves are connected with the inside of the rotating members (301), the movable blocks (3011) are provided with two groups of circular through holes at the side ends, and only one group of the circular through holes can be connected with the inside of the rotating members (301) at a time.
6. A modular industrial spray tower structure according to claim 5, wherein: The spraying component (3) comprises limiting holes (302) and guide rods (303); the limiting holes (302) are arranged on the upper and lower sides of the right end of the rotating members (301); and the guide rods (303) are arranged on the right side of the rotating members (301).
7. A modular industrial spray tower structure according to claim 6, wherein: The spraying component (3) comprises main pipes (304) and side plates (305); the main pipes (304) are arranged in two groups, and the main pipes (304) are inserted into the two side interfaces on the left side of the rotating members (301); the two groups of main pipes (304) are arranged vertically, the main pipes (304) are provided with spray heads at the side ends, and the spray heads on the two groups of main pipes (304) are oppositely directed; and the side plates (305) are buckled on the left sides of the two groups of main pipes (304).
8. The modular industrial spray tower structure of claim 1, wherein: The demisting area (4) comprises a top cover (401), a demisting device (402) and a butt joint groove B (403); the top cover (401) is provided with an interface at the top; the demisting device (402) is arranged in the inside of the top cover (401); and the butt joint groove B (403) is arranged in the inside of the lower end of the top cover (401).
Citation Information
Patent Citations
Waste gas treatment purification tower equipment for steel pipe production
CN118718710A
Novel splicing type anti-aging spray tower
CN215939458U