Gallium extraction resin cleaning device

By employing a diversion rack and adsorption mesh design in the gallium extraction resin cleaning device, the problem of incomplete cleaning in traditional methods is solved, achieving a more efficient cleaning effect.

CN223698711UActive Publication Date: 2025-12-23CHONGQING PIONEER RENEWABLE RESOURCES COMPREHENSIVE UTILIZATION CO LTD
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Patent Information

Application Number
CN202423281229.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-12-23
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

The existing technology has the problem of incomplete cleaning of gallium extraction resin, especially when cleaning is carried out in traditional adsorption towers.

Method used

A gallium extraction resin cleaning device was designed, including a housing, a flow divider, and an adsorption screen. The flow divider has multiple spaced flow dividers and curved flow dividers to ensure that the cleaning solution uniformly covers the resin. The adsorption screen is located below the flow dividers to filter impurities.

Benefits of technology

By optimizing the fluid dynamics characteristics, the contact time and area between the cleaning fluid and the resin are increased, thus improving cleaning efficiency and ensuring a more thorough cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a gallium extraction resin cleaning device, which comprises a shell, a water inlet, a water outlet, a water inlet pipe, a water inlet pipe, a water outlet pipe, a water inlet pipe and a water outlet pipe, and is characterized in that the shell is provided with an inner cavity chamber which is sequentially provided with a water inlet and a water outlet from top to bottom; the flow dividing frame comprises a plurality of flow dividing ports arranged at intervals, one ends of the flow dividing ports are converged to the water inlet, and the other ends of the flow dividing ports are arranged independently, extend towards the water outlet and then are arranged in the inner cavity in a suspended mode, and the flow dividing frames are used for constructing a plurality of flow dividing channels; the adsorption net is arranged in the inner cavity and located below the flow dividing channel. And the shunting channel is arranged in a curve shape. The gallium extraction resin cleaning device solves the problem that gallium extraction resin cannot be cleaned thoroughly in the prior art.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a cleaning device technical field especially relates to a kind of gallium extraction resin cleaning device. BACKGROUND

[0002] The current metal gallium production process is roughly divided into the process of adsorption→washing→dilute acid neutralization→desorption→regeneration→dilute alkali neutralization→next round of adsorption. The gallium extraction resin is cleaned after adsorption in the production process, mainly in the traditional adsorption tower, mainly water inlet at the top, filter device at the bottom, and drainage at the bottom, and then the resin is cleaned. The gallium extraction resin is fixed in the tower during the cleaning process, and the cleaning is not clean. UTILITY MODEL CONTENT

[0003] In view of the deficiencies in the prior art, the utility model provides a gallium extraction resin cleaning device, which solves the problem of not clean gallium extraction resin cleaning in the prior art.

[0004] According to the embodiment of the utility model, the utility model adopts the following technical scheme:

[0005] A gallium extraction resin cleaning device, characterized by comprising:

[0006] The shell has an inner chamber, and the inner chamber is sequentially provided with a water inlet and a water outlet in communication from top to bottom;

[0007] The shunt frame includes a plurality of shunt ports arranged at intervals, one end of the plurality of shunt ports converges to the water inlet, the other end thereof is independently arranged, and is suspended in the inner chamber after extending to the water outlet direction, for forming a plurality of shunt channels;

[0008] The adsorption net is arranged in the inner chamber and located below the shunt channel.

[0009] The shunt channel is arranged in a curve.

[0010] Preferably, the shunt frame includes a plurality of shunt portions arranged at intervals, and the shunt portions are arranged at intervals.

[0011] Preferably, each shunt portion includes at least one group of first and second sections connected in sequence, the first and second sections are both arc-shaped structures, and the distal ends of the two are respectively communicated with the water inlet and the inner chamber.

[0012] Preferably, the first and second sections are curved in opposite directions.

[0013] Preferably, one end of the first section, away from the second section, is provided with a flow guide block, and the flow guide block is provided with two flow guide inclined surfaces in mirror image.

[0014] Preferably, the low end of the flow guide slope extends towards the direction of the shunt port.

[0015] Preferably, the cross section of the shell is conically arranged, and the water outlet is arranged at the small diameter end of the shell.

[0016] Compared with the prior art, the utility model has the following beneficial effects: the shunt frame includes a plurality of shunt ports arranged at intervals, so that the cleaning liquid can be dispersed through a plurality of independent channels to ensure more uniform coverage and flushing of the resin, the shunt channel is arranged in a curve, the curve design helps to optimize the liquid flow path, reduce turbulence, increase the contact time and area of the cleaning liquid with the resin, thereby improving the cleaning efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0017] Fig. 1 It is a structure schematic view of the cleaning device in the utility model embodiment;

[0018] Fig. 2 It is a sectional view of the cleaning device in the utility model embodiment.

[0019] In the above drawings: 1, shell; 2, water inlet; 3, shunt frame; 4, shunt port; 5, shunt part; 501, first section; 502, second section; 6, flow guide block; 7, flow guide slope; 8, water outlet; 9, adsorption net. DETAILED DESCRIPTION

[0020] In order to make the purpose, technical scheme and beneficial effects of the utility model clearer, the technical scheme in the utility model is further explained below in combination with drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the utility model, and are not used to limit the utility model.

[0021] Referring to Figs. 1-2 The utility model provides a kind of gallium resin cleaning device, comprising:

[0022] Shell 1 has inner chamber, and the inner chamber is sequentially provided with water inlet 2 and water outlet 8 in communication from top to bottom;

[0023] Shunt frame 3 includes a plurality of shunt ports 4 arranged at intervals, one end of a plurality of the shunt ports 4 converges to the water inlet 2, and the other end thereof is independently arranged, and is suspended in the inner chamber in the direction of the water outlet 8 after extending, for being constructed into a plurality of shunt channels;

[0024] Adsorption net 9 is arranged in the inner chamber and located below the shunt channel;

[0025] Among them, the shunt channel is arranged in a curve.

[0026] In this embodiment, the inner chamber is formed inside the shell 1, which is used to accommodate the gallium extraction resin to be cleaned, and is sequentially provided with a water inlet 2 and a water outlet 8 in communication from top to bottom. Such design allows the cleaning liquid to enter from the top and be discharged from the bottom after treatment. The flow distribution frame 3 is arranged in the inner chamber, and the flow distribution frame 3 includes a plurality of flow distribution ports 4 arranged at intervals. One end of the flow distribution port 4 converges to the water inlet 2, and the other end extends to the water outlet 8 independently of each other and finally hangs in the inner chamber. This allows the cleaning liquid and the gallium extraction resin to be dispersed through multiple independent flow distribution channels to ensure more uniform coverage and flushing of the resin. In particular, the flow distribution channel is arranged in a curve. The curved flow distribution channel not only prolongs the cleaning path, but also helps to optimize the liquid flow path, reduce turbulence, increase the contact time and area of the cleaning liquid with the resin, and thus improve the cleaning efficiency. The adsorption net 9 is located below the flow distribution channel and is installed in the inner chamber to intercept particles or impurities to prevent them from directly reaching the water outlet 8. The flow distribution improves the internal fluid dynamics to enhance the cleaning effect. The curved flow distribution channel can improve liquid distribution to ensure a more thorough cleaning process, and the adsorption net 9 provides a filtering layer to help improve the overall cleaning quality.

[0027] The flow distribution frame 3 includes a plurality of flow distribution portions 5 arranged at intervals, and the flow distribution portion 5 is configured as the flow distribution port 4 between adjacent two flow distribution portions 5.

[0028] In this embodiment, the flow distribution frame 3 is composed of a plurality of flow distribution portions 5 arranged at intervals, and the flow distribution port 4 is formed between adjacent flow distribution portions 5. After the cleaning liquid enters through the water inlet 2, it will be distributed to each flow distribution port 4, thereby forming multiple independent water flow paths. The gallium extraction resin and the cleaning liquid are together into the flow distribution port 4 to ensure that the cleaning liquid can be uniformly distributed in each flow distribution channel to cover all the gallium extraction resin to be cleaned. The flow distribution channel is arranged in a curve, which helps to optimize the liquid flow path, reduce turbulence, increase the contact time and area of the cleaning liquid with the resin, and thus improve the cleaning efficiency. The design of multiple flow distribution portions 5 and flow distribution ports 4 can ensure that the cleaning liquid is uniformly distributed in the inner chamber, avoiding the problem of insufficient cleaning in local areas. By dispersing the cleaning liquid into multiple small flow channels, the contact opportunity between the cleaning liquid and the resin is increased, and the cleaning effect is improved.

[0029] Each flow distribution portion 5 includes at least one group of first segment 501 and second segment 502 connected in sequence. The first segment 501 and the second segment 502 are both arc-shaped structures, and the distal ends of the two are respectively communicated with the water inlet 2 and the inner chamber.

[0030] In this embodiment, the first section 501 of each shunt part 5 is an arc-shaped structure, one end of the first section 501 is connected to the water inlet 2, and the arc-shaped design helps to guide the cleaning liquid to enter the shunt channel smoothly, reducing the occurrence of turbulence, the second section 502 is also an arc-shaped structure, one end of which is connected to the first section 501, and the other end is connected to the inner chamber, the continuous arc-shaped design makes the liquid flow path smoother, which helps to maintain the stability and uniformity of the water flow; the first section 501 and the second section 502 are connected in sequence to form a complete shunt channel, and this connection mode ensures that the liquid transmission path from the water inlet 2 to the inner chamber is continuous and unobstructed, thereby improving the distribution efficiency of the cleaning liquid.

[0031] The first section 501 and the second section 502 are curved in opposite directions.

[0032] In this embodiment, the reverse bending of the first section 501 and the second section 502 prolongs the time of the cleaning liquid and the gallium extraction resin in the shunt channel, promotes the sufficient contact and mixing between the cleaning liquid and the resin, improves the cleaning efficiency, and also prevents the cleaning liquid from stagnating in the shunt channel.

[0033] The end of the first section 501 away from the second section 502 is provided with a flow guide block 6, and the flow guide block 6 is provided with two flow guide inclined surfaces 7 in mirror image.

[0034] In this embodiment, the flow guide block 6 is arranged at the end of the first section 501 away from the second section 502, i.e. near the water inlet 2, in order to better control the inclination of the water entering from the water inlet 2 and ensure that it can be evenly distributed into each shunt channel. The flow guide block 6 is provided with two flow guide inclined surfaces 7 in mirror image, and the two flow guide inclined surfaces 7 are symmetrically distributed, which helps to divide the entering cleaning liquid into two or more streams and guide them to flow along the predetermined path.

[0035] The low end of the flow guide inclined surface 7 extends in the direction of the shunt port 4.

[0036] In this embodiment, the low end of the flow guide inclined surface 7 extends in the direction of the shunt port 4, and the flow guide inclined surface 7 not only plays a role in initially guiding the water flow, but also directly guides the cleaning liquid to the shunt port 4 through its extension, ensuring that the cleaning liquid can flow more smoothly into each shunt channel, so that the cleaning liquid entering from the water inlet 2 can be accurately distributed into each shunt channel after impacting the flow guide block 6, reducing water flow dispersion or overflow.

[0037] The cross section of the shell 1 is conical, and the water outlet 8 is arranged at the small diameter end of the shell 1.

[0038] In this embodiment, the water outlet 8 is arranged at the small diameter end of the shell 1, and when the cleaning liquid is discharged through the water outlet 8, a vortex can be formed to help the adsorption net 9 to adsorb the impurities floating in the inner chamber.

[0039] Finally, it is pointed out that the above examples are merely to illustrate the technical solutions of the present application and are not limiting. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application can be modified or equivalently replaced without departing from the purpose and scope of the present application, and all should be covered in the scope of the claims of the present application.

Claims

1. A gallium extraction resin cleaning apparatus, characterized by comprising: The application relates to a water purifier, which comprises a shell with an inner chamber, a water inlet and a water outlet arranged in the inner chamber in sequence, a shunt frame with multiple shunt ports arranged in intervals, one end of the multiple shunt ports converging to the water inlet, the other end of the multiple shunt ports being independently arranged and extending to the water outlet and being suspended in the inner chamber, and an adsorption net arranged in the inner chamber and below the shunt ports. The shunt frame comprises multiple shunt parts arranged in intervals, and the shunt ports are arranged between the adjacent shunt parts. Each shunt part comprises at least one group of a first section and a second section connected in sequence, the first section and the second section are both arc-shaped structures, and the distal ends of the first section and the second section are respectively connected to the water inlet and the inner chamber. The first section and the second section are curved in opposite directions. One end of the first section away from the second section is provided with a flow guide block, and the flow guide block is mirror-symmetrically provided with two flow guide inclined surfaces.

2. The gallium extraction resin cleaning apparatus according to claim 1, wherein The low end of the flow guide inclined surface extends to the direction of the shunt port.

3. The gallium extraction resin cleaning apparatus according to claim 2, wherein The shell is conically arranged in section, and the water outlet is arranged at the small-diameter end of the shell.

4. The gallium extraction resin cleaning apparatus according to claim 3, wherein ​ 5. The gallium extraction resin cleaning apparatus according to claim 3 or 4, wherein ​ 6. The gallium extraction resin cleaning apparatus according to claim 5, wherein ​ 7. The gallium extraction resin cleaning apparatus of claim 1, wherein ​