Macroporous resin adsorption steam desorption equipment

By using a partition plate to separate the resin raw materials in the resin adsorption equipment, the problem of impurity blockage is solved, the adsorption efficiency and fluidity are improved, and rapid desorption and cleaning operations are achieved.

CN223082794UActive Publication Date: 2025-07-11NANTONG CHENGQUAN ENVIRONMENTAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422247301.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2025-07-11
Estimated Expiration
2034-09-13

AI Technical Summary

Technical Problem

Some liquids contain more impurities, which will block the upper holes on the resin raw materials piled up together, resulting in a decrease in adsorption efficiency and an increase in flow resistance.

Method used

The resin raw materials are separated by partition plate a, partition plate b and partition plate c to form a reserved space to avoid impurities accumulation, and the contact area between the resin raw materials is increased by steam desorption, thereby improving adsorption efficiency and cleaning speed.

Benefits of technology

It effectively avoids impurity blockage, improves liquid fluidity and adsorption efficiency, reduces downtime, and enhances the speed and effect of steam desorption.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses macroporous resin adsorption steam desorption equipment which comprises a barrel body and a fixed screen frame arranged in the barrel body, and a plurality of resin raw materials are arranged in the fixed screen frame to adsorb part of components in liquid or gas. A steam inlet is formed in the position, close to the lower side, of the circular outer wall of the left end of the barrel body so as to be connected with an external pipeline for conveying pressurized hot steam, and steam needed for desorption is conveyed into the barrel body. A liquid inlet is formed in the position, close to the upper side, of the circular outer wall of the left end of the barrel body so that the liquid inlet can be connected with an external liquid conveying pipeline to convey liquid to be treated into the barrel body, and an air inlet a is formed in the position, close to the upper side, of the circular outer wall of the right end of the barrel body. Vacancies are reserved among a plurality of resin raw materials, so that the resin raw materials can flow among the plurality of resin raw materials more quickly and are adsorbed by the resin raw materials.
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Description

Technical Field

[0001] The utility model belongs to the technical field related to resin steam desorption, and particularly relates to a macroporous resin adsorption steam desorption device. Background Technique

[0002] A macroporous resin adsorption steam desorption device is a device used to separate and purify certain components in gases or liquids. This device usually utilizes the high adsorption capacity of macroporous resins to adsorb specific steam components, and then performs desorption through heating or other methods to recover or process the adsorbed substances. However, when pouring the liquid, some of the impurities carried in the liquid are relatively many, which will block the upper holes of the resin raw materials piled up together, resulting in a decrease in the adsorption efficiency of the resin raw materials and an increase in the flow resistance of the liquid. Content of the Utility Model

[0003] The purpose of the utility model is to provide a macroporous resin adsorption steam desorption device to solve the problem that some of the impurities carried in the liquid are relatively many and will block the upper holes of the resin raw materials piled up together as mentioned in the above background technique.

[0004] To achieve the above purpose, the utility model provides the following technical solution: A macroporous resin adsorption steam desorption device includes a barrel body and a fixed wire frame installed inside the barrel body;

[0005] A plurality of resin raw materials are arranged inside the fixed wire frame to adsorb some components in liquids or gases;

[0006] A steam inlet is arranged on the lower side of the left circular outer wall of the barrel body near the left end to be connected with a pipeline for conveying pressurized hot steam from the outside to convey the steam required for desorption into the barrel body;

[0007] A liquid inlet is arranged on the upper side of the left circular outer wall of the barrel body near the left end to be connected with a pipeline for conveying liquid from the outside to convey the liquid to be processed into the barrel body. An air inlet a is arranged on the upper side of the right circular outer wall of the barrel body near the right end to be connected with a pipeline for conveying sinking gas from the outside to convey the gas to be processed into the barrel body;

[0008] A plurality of baffles are equidistantly arranged from top to bottom between the inner walls at the left and right ends of the fixed wire frame. A plurality of partition plates a, partition plates b, and partition plates c are respectively arranged above the plurality of baffles to separate the plurality of resin raw materials.

[0009] Preferably, a plurality of downward-opening chutes are formed on the lower sides of the plurality of baffles, and card strips are fixedly connected to the outer walls of the upper ends of the plurality of partition plates a, partition plates b, and partition plates c.

[0010] Preferably, a plurality of the baffles, the partition plates a, b, and c are each provided with through openings for the flow of gas or liquid, and the plurality of partition plates a, b, and c are fixedly interlaced with each other.

[0011] Preferably, the opening positions of the plurality of card slots are all on the upper sides of the corresponding partition plates a, b, and c, and the baffles and the partition plates a, b, and c are all made of stainless steel materials.

[0012] Preferably, an air inlet b is provided near the lower side of the circular outer wall at the right end of the barrel body for connection with a pipeline for transporting floating gas from the outside to transport gas into the barrel body, and a top cover is fixedly connected to the outer wall at the upper end of the barrel body.

[0013] Preferably, an exhaust port is provided on the upper outer wall of the top cover to guide the components carried out by the steam outwards, and a plurality of measuring instruments are equidistantly arranged on the circular outer wall at the front end of the barrel body to detect the flow pressure of the gas and liquid transported into the barrel body.

[0014] Preferably, a discharge port is provided on the lower outer wall of the barrel body to discharge the gas and liquid after absorbing the components, and a guiding block is fixedly connected to the lower outer wall of the barrel body.

[0015] Preferably, support feet are fixedly connected to the lower outer wall of the barrel body at equal intervals, and the plurality of resin raw materials are all macroporous resin raw materials.

[0016] Compared with the prior art, the present utility model provides a macroporous resin adsorption steam desorption device, which has the following beneficial effects:

[0017] By installing the partition plates a, b, the baffle, and the partition plate c, when placing the resin raw materials, multiple resin raw materials can be respectively placed between the partition plates a, b, and c that are misaligned and fixed on the baffle, so that spaces are reserved between the multiple resin raw materials. When pouring in liquid or gas, it can flow more quickly between the multiple resin raw materials and be adsorbed by the resin raw materials. And when pouring in liquid containing impurities, it can avoid the accumulation of impurities on the upper resin raw materials, preventing the occurrence of poor liquid flow. At the same time, when desorbing with steam, it can increase the contact area with the multiple resin raw materials, accelerate the desorption speed, and when cleaning the resin raw materials, it can clean the resin raw materials more quickly, reducing the downtime. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic structural diagram of a macroporous resin adsorption steam desorption device of the present utility model.

[0019] Figure 2 It is a partial front sectional structural schematic diagram of a macroporous resin adsorption steam desorption device of the present utility model.

[0020] Figure 3 This is a partial structural schematic diagram of the fixed mesh frame area of the present utility model.

[0021] Figure 4 This is a partial structural schematic diagram of the baffle area of the present utility model.

[0022] In the figure: 1, barrel body; 2, measuring instrument; 3, air inlet a; 4, top cover; 5, exhaust port; 6, liquid inlet; 7, steam inlet; 8, support feet; 9, air inlet b; 10, guiding block; 11, fixed mesh frame; 12, discharge port; 13, resin raw material; 14, partition board a; 15, partition board b; 16, baffle; 17, partition board c; 18, card slot; 19, card strip; 20, through hole. Specific embodiments

[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0024] The present utility model provides a Figures 1-4 macroporous resin adsorption steam desorption device as shown, including a barrel body 1 and a fixed mesh frame 11 installed inside the barrel body 1;

[0025] A plurality of resin raw materials 13 are arranged inside the fixed mesh frame 11 to adsorb some components in liquids or gases;

[0026] A steam inlet 7 is arranged near the lower side of the left end circular outer wall of the barrel body 1 to be connected with a pipeline for conveying pressurized hot steam from the outside to convey the steam required for desorption into the barrel body 1;

[0027] At the upper side near the left end of the barrel body 1, a liquid inlet 6 is provided on the circular outer wall to connect with the pipeline for transporting liquid from the outside and transport the liquid to be processed into the barrel body 1. At the upper side near the right end of the barrel body 1, an air inlet a3 is provided on the circular outer wall to connect with the pipeline for transporting sinking gas from the outside and transport the gas to be processed into the barrel body 1. When adsorbing some components in the gas or liquid, first connect the corresponding pipelines with the air inlet a3 and the liquid inlet 6 respectively, and transport them into the barrel body 1 according to the gas or liquid to be processed currently. The gas or liquid flowing from top to bottom will contact and pass through the resin raw material 13 in the fixed mesh frame 11, and some components in the gas or liquid will be adsorbed through the resin raw material 13. After the gas or liquid is discharged, high-temperature steam under pressure is transported into the barrel body 1 through the steam inlet 7. The high-temperature steam will flow upward, driving the components in the resin raw material 13 to desorb and be collected and transferred;

[0028] Between the inner walls at the left and right ends of the fixed mesh frame 11, a plurality of baffles 16 are arranged at equal distances from top to bottom. On the upper sides of the plurality of baffles 16, a plurality of partition plates a14, partition plates b15 and partition plates c17 are respectively arranged to separate the resin raw materials 13. When adding gas or liquid, the resin raw materials 13 are separated by the plurality of partition plates a14, partition plates b15 and partition plates c17 on the plurality of baffles 16, so that the gas or liquid can more comprehensively contact the resin raw material 13 for adsorption operation.

[0029] As Figure 3 and Figure 4 As shown, a plurality of downward-opening slots 18 are formed on the lower sides of the plurality of baffles 16. On the upper outer walls of the plurality of partition plates a14, partition plates b15 and partition plates c17, clamping bars 19 are fixedly connected. Through holes 20 are formed on the plurality of baffles 16 and the partition plates a14, partition plates b15 and partition plates c17 for the gas or liquid to flow through. The plurality of partition plates a14, partition plates b15 and partition plates c17 are fixedly connected to each other in a staggered manner.

[0030] When installing the plurality of baffles 16, first place the baffle 16 with the partition plate c17 at the bottom of the fixed mesh frame 11, then place the baffle 16 with the partition plate b15 on the partition plate c17, and make the clamping bar 19 on the partition plate c17 be clamped inside the upper slot 18. Finally, place the baffle 16 with the partition plate a14 on the partition plate b15. And during the stacking process, place the resin raw material 13 between the corresponding partition plates a14, partition plates b15 and partition plates c17. The staggered partition plates a14, partition plates b15 and partition plates c17 can avoid blocking the flow of gas or liquid when the gas or liquid flows through.

[0031] As Figure 3 and Figure 4As shown in the figure, the opening positions of multiple card slots 18 are all located above the corresponding partition plates a14, partition plates b15, and partition plates c17. The baffle 16 and the partition plates a14, partition plates b15, and partition plates c17 are all made of stainless steel materials.

[0032] When placing the corresponding partition plates a14, partition plates b15, and partition plates c17, they can be stably clamped with the upper baffle 16 for position limitation. After the stainless steel material comes into contact with the resin raw material 13, it can avoid affecting the chemical properties of the resin raw material 13 itself.

[0033] As Figure 1 and Figure 2 As shown in the figure, an air inlet b9 is provided near the lower side of the right circular outer wall of the barrel body 1 to connect with the pipeline for conveying floating gas from the outside to convey gas into the barrel body 1. The upper outer wall of the barrel body 1 is fixedly connected with a top cover 4. An exhaust port 5 is provided on the upper outer wall of the top cover 4 to guide the components carried out by the steam outward. A plurality of measuring instruments 2 are equidistantly arranged on the front circular outer wall of the barrel body 1 to detect the flow pressure of the gas and liquid conveyed into the barrel body 1.

[0034] The floating gas is conveyed through the air inlet b9 to contact the resin raw material 13 for component adsorption. When the components desorbed by the steam move upward, they are discharged outward through the exhaust port 5 on the top cover 4. A condenser or a corresponding collection device is connected outside the exhaust port 5 to collect the components in the steam. The flow pressure of the materials conveyed into the barrel body 1 through the corresponding air inlet a3, liquid inlet 6, steam inlet 7, and air inlet b9 can be detected by the measuring instrument 2.

[0035] As Figure 1 and Figure 2 As shown in the figure, a discharge port 12 is provided on the lower outer wall of the barrel body 1 to discharge the gas and liquid after the components are adsorbed. A guiding block 10 is fixedly connected to the lower outer wall of the barrel body 1. A plurality of supporting feet 8 are fixedly connected equidistantly to the lower outer wall of the barrel body 1. A plurality of resin raw materials 13 are all macroporous resin raw materials 13.

[0036] The gas or liquid after the components have been adsorbed can be discharged outward through the discharge port 12. At the same time, the guiding block 10 can accelerate the speed of the gas or liquid passing through the discharge port 12, and the placement position of the barrel body 1 can be restricted by the supporting feet 8.

[0037] The implementation principle of this embodiment is as follows: When adsorbing some components in a gas or liquid, first connect the corresponding pipelines between the air inlet a3 and the liquid inlet 6 respectively, and transport the gas or liquid to be processed currently into the barrel body 1. The gas or liquid flowing from top to bottom will contact and pass through the resin raw material 13 in the fixed wire frame 11, and the resin raw material 13 adsorbs some components in the gas or liquid. After the gas or liquid is discharged, high-temperature steam under pressure is transported into the barrel body 1 through the steam inlet 7. The high-temperature steam will flow upward, driving the components in the resin raw material 13 to desorb and be collected and transferred. When adding the gas or liquid, multiple partition plates a14, partition plates b15, and partition plates c17 on the multiple baffles 16 separate the multiple resin raw materials 13 from each other, so that the gas or liquid can contact the resin raw material 13 more comprehensively for the adsorption operation.

[0038] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A macroporous resin adsorption and steam desorption device, comprising a barrel body (1) and a fixed wire frame (11) installed inside the barrel body (1); A plurality of resin raw materials (13) are arranged inside the fixed wire frame (11) to adsorb some components in liquids or gases; A steam inlet (7) is arranged near the lower side of the left end circular outer wall of the barrel body (1) to connect with a pipeline for conveying pressurized hot steam from the outside and transport the steam required for desorption into the barrel body (1); A liquid inlet (6) is arranged near the upper side of the left end circular outer wall of the barrel body (1) to connect with a pipeline for conveying liquids from the outside and transport the liquid to be treated into the barrel body (1). An air inlet a (3) is arranged near the upper side of the right end circular outer wall of the barrel body (1) to connect with a pipeline for conveying sinking gases from the outside and transport the gas to be treated into the barrel body (1); It is characterized in that: A plurality of baffles (16) are equidistantly arranged between the inner walls at the left and right ends of the fixed wire frame (11) from top to bottom. A plurality of partition plates a (14), partition plates b (15), and partition plates c (17) are respectively arranged above the plurality of baffles (16) to separate the plurality of resin raw materials (13); 2. The macroporous resin adsorption and steam desorption equipment according to claim 1, characterized in that: A plurality of downwardly opening clamping grooves (18) are formed on the lower sides of the plurality of baffles (16). Clamping bars (19) are fixedly connected to the outer walls of the upper ends of the plurality of partition plates a (14), partition plates b (15), and partition plates c (17); 3. The macroporous resin adsorption and steam desorption device according to claim 1, characterized in that: A plurality of through openings (20) are formed on the plurality of baffles (16) and the partition plates a (14), partition plates b (15), and partition plates c (17) to allow gases or liquids to flow through. The plurality of partition plates a (14), partition plates b (15), and partition plates c (17) are fixedly connected to each other in an alternating manner; 4. A macroporous resin adsorption and steam desorption device according to claim 2, characterized in that: The opening positions of the plurality of clamping grooves (18) are all above the corresponding partition plates a (14), partition plates b (15), and partition plates c (17). The baffles (16) and the partition plates a (14), partition plates b (15), and partition plates c (17) are all made of stainless steel materials; 5. The macroporous resin adsorption steam desorption device according to claim 1, wherein: An air inlet b (9) is arranged near the lower side of the right end circular outer wall of the barrel body (1) to connect with a pipeline for conveying floating gases from the outside and transport the gas into the barrel body (1). The upper end outer wall of the barrel body (1) is fixedly connected with a top cover (4); 6. The macroporous resin adsorption and steam desorption device according to claim 5, characterized in that: An exhaust port (5) is arranged on the upper end outer wall of the top cover (4) to guide the components brought out by the steam to the outside. A plurality of measuring instruments (2) are equidistantly arranged on the front circular outer wall of the barrel body (1) to detect the flow rate and pressure of the gases and liquids transported into the barrel body (1); 7. The macroporous resin adsorption and steam desorption equipment according to claim 1, wherein: A discharge port (12) is arranged on the lower end outer wall of the barrel body (1) to discharge the gases and liquids after absorbing the components. A guiding block (10) is fixedly connected to the lower end outer wall of the barrel body (1); 8. The macroporous resin adsorption and steam desorption equipment according to claim 1, characterized in that: Support feet (8) are equidistantly fixedly connected to the lower end outer wall of the barrel body (1). The plurality of resin raw materials (13) are all macroporous resin raw materials (13).