A method and structure for fixing iron-carbon micro-electrolysis filler

The fixing method combining the mesh structure bearing plate and the support beam frame solves the problem of inconvenient replacement of iron-carbon micro-electrolysis filler, achieves stable installation and convenient replacement, and improves the processing efficiency and adaptability of the device.

CN118724191BActive Publication Date: 2025-09-23HUATIAN ENG & TECH CORP MCC +1
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Patent Information

Application Number
CN202411106141.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-09-23
Estimated Expiration
2044-08-13

AI Technical Summary

Technical Problem

The existing iron-carbon micro-electrolysis filler is inconvenient to replace, resulting in low processing efficiency of the device and being time-consuming and labor-intensive, which affects the promotion and use of the device.

Method used

A fixing method combining a mesh structure bearing plate and a supporting beam frame is adopted, and elastic materials and an inflatable expansion structure are provided on the bearing plate to achieve stable installation and convenient replacement of the iron-carbon filler plate.

Benefits of technology

It realizes the stable installation and convenient replacement of iron-carbon filler, can resist water pressure and water flow impact, prevents compaction, improves the processing efficiency of the device and the convenience of replacement, and ensures the continuous operation of the process unit.

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Abstract

The present invention discloses a method for fixing iron-carbon micro-electrolysis filler and its structure, which relates to the technical field of environmental micro-electrolysis filler fixation, and is designed to solve the problem of inconvenience in replacing iron-carbon micro-electrolysis filler; the support beam of the present invention is composed of a plurality of crisscrossing support rods, protrusions are fixed on both sides of the lower end of the support rods, and the top surface of the support beam is divided into a plurality of grooves by the support rods, and an iron-carbon filler plate is detachably provided in each groove; a plurality of holes are opened on the iron-carbon filler plate and water passages are fixed thereon respectively, a plurality of working areas are arranged on the iron-carbon filler plate for carrying iron-carbon filler blocks, and a plurality of telescopic buffer zones are also arranged to prevent the working areas from being squeezed and deformed, wherein a mesh-shaped support skeleton is fixed in the working area, and the iron-carbon filler blocks are arranged in the mesh holes; the present invention is simple and quick to install, easy to maintain, and can resist the impact force caused by water pressure and strong water flow; it solves the problems that iron-carbon micro-electrolysis filler is easy to harden and fail, and the replacement procedure is cumbersome.
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Description

Technical Field

[0001] The invention relates to the technical field of environmental micro-electrolysis filler fixation, in particular to a method for fixing an iron-carbon micro-electrolysis filler and a structure thereof. Background Art

[0002] Currently, the installation of iron-carbon micro-electrolysis fillers is relatively simple. A bracket is often made, and a water distribution orifice plate is made on the top of the bracket. A 30-50 cm thick iron-carbon filler is placed on the orifice plate. This method easily causes the filler to become hardened and ineffective. When replacing it, the use of this process unit needs to be stopped, and the filler must be completely emptied before a new filler is placed. This method is time-consuming and labor-intensive, and seriously affects the processing efficiency of the iron-carbon processing unit. These drawbacks have seriously limited the promotion and use of iron-carbon micro-electrolysis devices. Therefore, there is an urgent need for a method and structure for fixing iron-carbon micro-electrolysis fillers to solve this problem. Summary of the Invention

[0003] The object of the present invention is to provide a method and structure for fixing an iron-carbon micro-electrolysis filler, so as to solve the problem of inconvenience in replacing the iron-carbon micro-electrolysis filler.

[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a method for fixing iron-carbon micro-electrolytic fillers, stacking the iron-carbon micro-electrolytic fillers on a carrier plate with a mesh structure fixed at the upper end, placing a single or several fillers in each hole of the mesh structure, opening a plurality of holes on the carrier plate to connect the upper and lower surfaces of the plate, and providing elastic material in the area of ​​the carrier plate not covered by the mesh structure to resist water pressure and water flow impact; making a frame with a grid, the two ends of the grid are connected, and a limiting structure is fixed at the lower end, the shape and size of each grid match the carrier plate, and multiple carrier plates are respectively placed in each grid from above and blocked by the limiting structure; filling the gap between each carrier plate and the grid with an inflation and compression structure, and fixing the carrier plate and the frame relatively after inflation.

[0005] Another technical solution provided by the present invention is a structure for fixing an iron-carbon micro-electrolysis filler, comprising a support beam and a plurality of iron-carbon filler plates detachably mounted thereon; the support beam is composed of a plurality of crisscrossing support rods, with protrusions fixed on both sides of the lower ends of the support rods; the top surface of the support beam is divided into a plurality of grooves by the support rods, and an iron-carbon filler plate is detachably mounted in each groove;

[0006] The iron-carbon filler plate is provided with multiple holes and water channels are fixed thereon. The iron-carbon filler plate is provided with multiple working areas for carrying iron-carbon filler blocks. Multiple telescopic buffer zones are also provided to prevent the working areas from being squeezed and deformed. A mesh-shaped support frame is fixed in the working area, and the iron-carbon filler blocks are arranged in the mesh holes.

[0007] Preferably, a connecting cavity is fixedly provided on the outer periphery of the iron-carbon filler plate, which includes a cavity, an inflation cap, an inflation column and a fixing seat. The fixing seat is fixedly connected to the cavity, and a hole is provided in the middle thereof. The inflation column is passed through the hole, and its upper end is buckled or threadedly connected to the inflation cap for inflating the cavity after disassembly.

[0008] Preferably, the area between the protruding parts of adjacent support rods of the support beam is a vertical water hole, and a horizontal balancing hole is opened between the two sides of the support rod for water and gas balance.

[0009] Preferably, the telescopic buffer area is filled with elastic material, and the material selected includes rubber.

[0010] Preferably, a lifting hook is fixedly provided in the middle of the iron-carbon filler plate.

[0011] Preferably, the support beam is in a tic-tac-toe shape; the areas on the iron-carbon filler plate are distributed in a rectangular array, the water flow channel is set at the intersection of every four areas, and the ratio of the number of telescopic buffer zones to the number of working areas in each row and column is 1:(1 to 10).

[0012] Compared with the prior art, the present invention has the following beneficial effects:

[0013] The present invention fills the iron-carbon filling block with an iron-carbon filling plate, and provides a lifting hook in the middle of the iron-carbon filling plate, and provides a telescopic buffer zone on the iron-carbon filling plate, so that the iron-carbon filling plate is not only hoistable but also has telescopic elasticity; the iron-carbon filling plate is directly placed in the groove of the support beam during installation, and a connecting cavity is provided around the iron-carbon filling plate. After the connecting cavity is inflated, it can fill the gap between the iron-carbon filling plate and the support beam or the wall of the iron-carbon reactor, so that the iron-carbon filling plate and the support beam are tightly combined and have elasticity; not only is the installation simple and fast, but also it is convenient during maintenance. Only the air in the connecting cavity needs to be released, and the iron-carbon filling plate is separated from the support beam, and the filling plate to be repaired can be directly taken out through the lifting hook;

[0014] The present invention can be used as a micro-electrolysis reactor or as a part thereof, which not only enables the iron-carbon filler to resist the impact force brought by water pressure and strong water flow, but also prevents the iron-carbon filler plate from cracking due to high water pressure, making the iron-carbon micro-electrolysis device more adaptable to changes in water pressure and water flow, but also solves the problems of the iron-carbon filler being compacted and difficult to clean, and requiring the reactor to be placed for replacement. The filler can be replaced without stopping the water flow, ensuring that the process unit is not interrupted, improving the application of the iron-carbon micro-electrolysis filler, and further improving the sewage treatment efficiency of the iron-carbon micro-electrolysis device. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a schematic diagram of the planar structure of the present invention;

[0016] Figure 2 Schematic diagram of the planar structure of a single iron-carbon filler plate in the present invention;

[0017] Figure 3 Schematic diagram of the cross-sectional structure of the support beam in the present invention;

[0018] Figure 4 is a cross-sectional schematic diagram of the connecting cavity in the present invention;

[0019] In the figure: iron-carbon filler plate 1, water passage 11, iron-carbon filler block 12, telescopic buffer zone 13, lifting hook 14, support frame 15; connecting cavity 2, cavity 21, inflation cap 22, inflation column 23, fixing seat 221; support beam 3, groove 31, water passage hole 32, balance hole 33. DETAILED DESCRIPTION

[0020] A method for fixing iron-carbon micro-electrolytic fillers comprises the following steps: stacking the iron-carbon micro-electrolytic fillers on a carrier plate with a mesh structure fixed at the upper end, placing a single or multiple fillers in each hole of the mesh structure, providing multiple holes on the carrier plate for connecting the upper and lower surfaces of the plate, and providing elastic material in areas of the carrier plate not covered by the mesh structure for resisting water pressure and water flow impact; making a frame with a mesh, with both ends of the mesh connected and a limiting structure fixed at the lower end, the shape and size of each mesh matching the carrier plate, and placing multiple carrier plates into each mesh from above and being blocked by the limiting structure; and filling the gap between each carrier plate and the mesh with an inflation and compression structure, which fixes the carrier plate relative to the frame after inflation.

[0021] To implement the above method, Figure 1 As shown, a structure for fixing iron-carbon micro-electrolysis filler includes a support beam 3 and a plurality of iron-carbon filler plates 1 detachably arranged thereon; Figure 3 The support beam 3 is composed of a plurality of crisscross support rods, and protrusions are fixed on both sides of the lower ends of the support rods. The top surface of the support beam 3 is divided into a plurality of grooves 31 by the support rods, and an iron-carbon filler plate 1 is detachably provided in each groove 31;

[0022] See Figure 2 The iron-carbon filler plate 1 is provided with a plurality of holes and water passages 11 are fixed thereon. The iron-carbon filler plate 1 is provided with a plurality of working areas for carrying iron-carbon filler blocks 12. A plurality of telescopic buffer zones 13 are also provided thereon to prevent the working areas from being squeezed and deformed. A mesh-shaped support frame 15 is fixedly provided in the working area, and the iron-carbon filler blocks 12 are arranged in the mesh. The mesh can be further set as a small square frame.

[0023] like Figure 4As shown, in a preferred embodiment, the detachable connection method of the iron-carbon filler plate 1 is as follows: a connecting cavity 2 is fixedly provided on the periphery of the iron-carbon filler plate 1, which includes a cavity 21, an inflation cap 22, an inflation column 23 and a fixing seat 221. The fixing seat 221 is fixedly connected to the cavity 21, and a hole is provided in the middle thereof. The inflation column 23 is passed through the hole, and its upper end is snapped or threaded with the inflation cap 22 for inflating the cavity 21 after disassembly. The cavity 21 is generally made of rubber. After inflation, it expands and is covered with the inflation cap 22. The gap between the iron-carbon filler plate 1 and the groove 31 can be filled, so that the connecting cavity 2 is in close contact with the support beam 3, thereby fixing the position of the iron-carbon filler plate 1; when the iron-carbon filler plate 1 needs to be inspected or replaced, after the inflation cap 22 is pulled out and the air is emptied, the iron-carbon filler plate 1 is loose and can be taken away, and the connecting cavity 2 can be repeatedly used for inflation and evacuation of air.

[0024] like Figure 3 As shown, the area between the protruding parts of adjacent support rods of the support beam 3 is a vertical water hole 32. In order to maintain the balance of water pressure and air pressure, a horizontal balance hole 33 can be opened between the two sides of the support rods.

[0025] The telescopic buffer zone 13 is filled with elastic material, and the material selected includes rubber.

[0026] In order to further facilitate the removal of the iron-carbon filler plate 1, a lifting hook 14 can be fixedly provided in the middle thereof.

[0027] In a preferred embodiment, the support beam 3 is in a well-shaped shape, and the iron-carbon filler plate 1 is provided with 9 (see Figure 1 ).

[0028] In a preferred embodiment, the areas on the iron-carbon filler plate 1 are distributed in a rectangular array, the water passage 11 is set at the intersection of every four areas, and the ratio of the number of telescopic buffer areas 13 in each row and column to the number of working areas is 1:(1-10). For details, please refer to Figure 2 .

[0029] The iron-carbon filler block 12 is filled through the iron-carbon filler plate 1, and a lifting hook 14 is set in the middle of the iron-carbon filler plate 1, and a telescopic buffer zone 13 is set on the iron-carbon filler plate 1, so that the iron-carbon filler plate 1 is not only hoistable but also has telescopic elasticity; the iron-carbon filler plate 1 is directly placed in the groove 31 of the support beam 3 when installed, and a connecting cavity 2 is set around the iron-carbon filler plate 1. After the connecting cavity 2 is inflated, it can fill the gap between the iron-carbon filler plate 1 and the support beam 3 or the wall of the iron-carbon reactor, so that the iron-carbon filler plate 1 is tightly combined with the support beam 3 and has elasticity.

[0030] The iron-carbon filler block 12 of the present invention is not only simple and quick to install, but also convenient for maintenance. Simply release the air in the connecting cavity 2, and the iron-carbon filler plate 1 is separated from the support beam 3. The filler plate 1 that needs maintenance can then be directly removed using the lifting hook 14. This not only enables the iron-carbon filler to withstand the impact of water pressure and strong water flow, but also solves the problems of easy hardening and failure of iron-carbon micro-electrolysis fillers, as well as the cumbersome replacement procedure. This improves the application of iron-carbon micro-electrolysis fillers and further enhances the sewage treatment efficiency of iron-carbon micro-electrolysis devices.

[0031] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included in the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection defined by the claims.

[0032] Any matters not described in detail in the present invention are well-known technologies to those skilled in the art.

Claims

1. A method for fixing an iron-carbon micro-electrolysis filler, characterized in that: The iron-carbon filler blocks (12) made of iron-carbon micro-electrolysis filler are stacked on an iron-carbon filler plate (1) with a mesh structure fixed at the upper end, a single or multiple iron-carbon filler blocks (12) are placed in each hole of the mesh structure, a plurality of holes are opened on the iron-carbon filler plate (1) for connecting the upper and lower surfaces of the plate, and elastic material is set in the area of ​​the mesh structure on the iron-carbon filler plate (1) that is not covered by the iron-carbon filler blocks (12) to resist water pressure and water flow impact; a support beam (3) with a grid is made, the upper and lower ends of the grid are connected, and a limiting structure is fixed at the lower end, and the shape and size of each grid are matched with the iron-carbon filler plate (1), and multiple iron-carbon filler plates (1) are respectively placed in each grid from above and blocked by the limiting structure; an inflation and compression structure is filled in the gap between each iron-carbon filler plate (1) and the grid, and the iron-carbon filler plate (1) and the support beam (3) are fixed relative to each other after inflation.

2. A structure for fixing an iron-carbon micro-electrolytic filler for implementing the method of claim 1, characterized in that: The invention comprises a support beam (3) and a plurality of iron-carbon filler plates (1) detachably arranged thereon; the support beam (3) is composed of a plurality of support rods arranged in a crisscross pattern, and protrusions are fixedly provided on both sides of the lower ends of the support rods; the top surface of the support beam (3) is divided into a plurality of grooves (31) by the support rods, and an iron-carbon filler plate (1) is detachably arranged in each groove (31); The iron-carbon filler plate (1) is provided with a plurality of holes and water passages (11) are fixedly provided on each of the holes. The iron-carbon filler plate (1) is provided with a plurality of working areas for carrying the iron-carbon filler blocks (12). A plurality of telescopic buffer zones (13) are also provided for preventing the working areas from being squeezed and deformed. A mesh-shaped support frame (15) is fixedly provided in the working areas, and the iron-carbon filler blocks (12) are arranged in the meshes.

3. The structure according to claim 2, characterized in that: The iron-carbon filler plate (1) is fixedly provided with a connecting cavity (2) on its outer periphery, which comprises a cavity (21), an inflation cap (22), an inflation column (23) and a fixing seat (221). The fixing seat (221) is fixedly connected to the cavity (21), and a hole is provided in the middle thereof. The inflation column (23) is passed through the hole, and its upper end is buckled or threadedly connected to the inflation cap (22) for inflation of the cavity (21) after disassembly.

4. The structure according to claim 2, characterized in that: The area between the protruding portions of adjacent support rods of the support beam (3) is a vertical water hole (32), and a horizontal balancing hole (33) is provided between the two sides of the support rods for water and gas balance.

5. The structure according to claim 2, characterized in that: The telescopic buffer zone (13) is filled with elastic material.

6. The structure according to claim 2, characterized in that: A lifting hook (14) is fixedly provided in the middle of the iron-carbon filler plate (1).

7. The structure according to claim 2, characterized in that: The support beam (3) is in a well shape; the areas on the iron-carbon filler plate (1) are distributed in a rectangular array, the water passage (11) is arranged at the intersection of every four areas, and the ratio of the number of telescopic buffer areas (13) in each row and column to the number of working areas is 1:(1-10).

Citation Information

Patent Citations

  • Fixing device for iron-carbon micro-electrolysis filler

    CN223087653U