Method of Separating Anion and Cation Exchange Resins and Device for the Same
20200129993 ยท 2020-04-30
Inventors
Cpc classification
International classification
Abstract
A method is provided for separating anion and cation exchange resins. The specific-gravity difference between the anion and cation exchange resins is used for separation with a column body. The column body comprises an outer column and an inner column set within. The inner column has an outlet with position adjustable for outputting the anion exchange resin according to its ratio. The flow zone and the resin expansion zone can effectively shorten the time required for the separation. Besides, the required equipment is simplified. Only the size of the column body needs to be adjusted according to the amount of the mixed bed resin to-be-treated. The present invention can be applied to different proportions of mixed beds and mixed resins. On consideration of equipment cost and operating cost, the method can complete the separation of the anion and cation exchange resins in a short time with the simplified equipment.
Claims
1. A method of separating anion and cation exchange resins, comprising steps of: (a) obtaining a column separator apparatus to separate a mixed bed resin, wherein said separator apparatus comprises a column body; a solid-liquid separator connecting to said column body; and a separated-product receiver connecting to said column body and said solid-liquid separator; wherein said column body comprises an outer column and an inner column, said inner column being movably disposed in said outer column with a height position adjustable; wherein said outer column has a resin inlet on top; a fluid inlet at bottom; and a first outlet on the wall of said outer column adjacent to bottom; wherein said inner column is a second outlet; and wherein said mixed bed resin is fed in from said resin inlet to process rough separation for the first time through gravitational settling; (b) inputting a fluid into said outer column from said fluid inlet at bottom of said column body to fluidize said mixed bed resin and clearly stratify anion and cation exchange resins in said mixed bed resin, wherein a layer of said cation exchange resin is expanded to 22.5 times to original volume; a layer of said anion exchange resin is expanded to 3.85.3 times to original volume; and 13 centimeters (cm) of a layer of mixed resin is disposed between said two layers of said anion and cation exchange resins; (c) adjusting said inner column to a position above said layer of mixed resin, wherein said anion exchange resin together with said fluid are sucked out from said second outlet to be inputted into said solid-liquid separator to separate said anion exchange resin from said fluid; and said fluid flows back to said column body through said fluid inlet to be recycled; and (d) after sucking out said anion exchange resin from said column body, flowing out said cation exchange resin left in said outer column through said first outlet.
2. The method according to claim 1, wherein, before step (a), the present invention further comprises a pretreatment of mixed bed resin to fully stir said mixed bed resin.
3. The method according to claim 1, wherein, in step (b), said fluid is selected from a group consisting of water and a solution; said solution is added with a solute according to a requirement; and said solute is an agent adjusting the specific gravity of said fluid to 1.101.19.
4. The method according to claim 3, wherein said agent is selected from a group consisting of sodium hydroxide and sodium chloride.
5. The method according to claim 1, wherein, in step (b), said fluid is fed into said outer column from said fluid inlet at bottom of said column body in a flow speed of 2045 cm per minute.
6. The method according to claim 1, wherein, in step (c), said inner column is adjusted to a position 12 cm above said layer of mixed resin.
7. The method according to claim 1, wherein, in step (c), 80 percent of said anion exchange resin is separated from said cation exchange resin in a short time.
8. The method according to claim 1, wherein said outer column has a volume of 15 liters, an inner diameter of 28 cm and a length of 6595 cm.
9. The method according to claim 1, wherein a filter is further disposed at bottom of said outer column of said column body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The present invention will be better understood from the following detailed description of the preferred embodiment according to the present invention, taken in conjunction with the accompanying drawings, in which
[0010]
[0011]
[0012]
DESCRIPTION OF THE PREFERRED EMBODIMENT
[0013] The following description of the preferred embodiment is provided to understand the features and the structures of the present invention.
[0014] For anion and cation exchange resins prepared with polystyrene and divinyl benzene copolymer, screen is not available for separation owing to their very similar particle sizes. However, the cation exchange resin has a proportion about 20 percent (%) greater than the anion exchange resin in a mixed resin. A process of gravity or flotation can be used for separation. Hence, the present invention uses liquid-phase fluidization to effectively separate the anion and cation exchange resins. An inner column is set with an outlet having a position adjustable at any time according to the proportions of the exchange resins to-be-treated. Thus, the present invention can be applied to various proportions of mixed beds and mixed resins.
[0015] Please refer to
[0016] For a general mixed bed resin, the cation exchange resin usually occupies 3040% in volume; and the anion exchange resin, 6070%. By using the column body 11 having a volume about 2 liters, an inner diameter of 6 centimeters (cm) and a length of 80 cm, approximate 200250 grams of the mixed bed resin can be processed.
[0017] On using, the present invention further comprises a pretreatment of mixed bed resin to fully stir the mixed bed resin for reducing the agglomeration of resin. The present invention comprises the following steps:
[0018] (a) Feeding mixed bed resin with rough separation s101: The column separator apparatus 1 is used to separate a mixed bed resin 14. The mixed bed resin 14 is fed in from the resin inlet 1111 on top of the column body for rough separation for the first time through gravitational settling.
[0019] (b) Feeding fluid for fluidization s102: A fluid (e.g. water) is fed into the outer column 111 from the fluid inlet 1112 at bottom of the column body 11 in a flow speed of 2045 cm per minute; and anion and cation exchange resins 142,141 in the mixed bed resin 14 are clearly stratified. Therein, a layer of the cation exchange resin 141 is expanded to 22.5 times to original volume; a layer of the anion exchange resin 142 is expanded to 3.85.3 times to original volume; and 13 centimeters (cm) of a layer of mixed resin 143 is formed between the two layers of the anion and cation exchange resins 142,141, as shown in
[0020] (c) Adjusting position of inner column for outputting anion exchange resin s103: The inner column 1112 is adjusted to a position 12 cm above the layer of mixed resin 143. The anion exchange resin 142 together with the fluid are sucked out from the second outlet 1121 to be inputted into the solid-liquid separator 1112. Therein, 80 percent of the anion exchange resin 143 is separated from the cation exchange resin 141 in a short time; the anion exchange resin 143 is separated from the fluid in the solid-liquid separator 1112; and the fluid flows back to the column body 11 through the fluid inlet 1112 to be recycled.
[0021] (d) Flowing out cation exchange resin s104: The cation exchange resin 141 left in the outer column 111 flows out through the first outlet 1113 adjacent to bottom after sucking out the anion exchange resin 142 from the column body 11.
[0022] The fluid, water, can be replaced with a solution added with a various solute according to a requirement, where the solute is an agent, like sodium hydroxide or sodium chloride, to adjust the specific gravity of the fluid to 1.101.19.
[0023] The column body 11 is not limited in volume, inner diameter and length.
[0024] The present invention uses the different fluid heights in a fluidized bed and the different sedimentation velocities for separation according to the different specific gravities between the anion and cation exchange resins; and an inner column having the position of an outlet adjustable is used for a mixed bed resin having a various proportion. Thus, the present invention can be used in separations for a variety of mixed bed resins having mixing proportions unfixed. For the treatment of the mixed bed resin, the anion exchange resin is held in a fluidized bed zone by controlling the flow speed of the fluid to effectively separate the anion and cation exchange resins and shorten the time required for separation. For processing the mixed bed resin contaminated in a nuclear industry in particular, the separation can diminish subsequent stability problem by providing an effective choice of helping resin treatment and waste-volume reduction. Besides, the present invention uses a relatively simple apparatus. What is required only is to adjust the size of the column body according to the amount of the mixed bed resin to-be-treated. On considering equipment cost and operating cost, the present invention uses a relatively simple apparatus to accomplish the separation of the mixed bed resin in a short time.
[0025] To sum up, the present invention is a method of separating anion and cation exchange resins, where a flow zone and a resin expansion zone effectively shorten the time required for separation; only the size of a column body needs to be adjusted according to the amount of a mixed bed resin to-be-treated; the present invention is applied to different proportions of mixed bed resins; and, on considering equipment cost and operating cost, the present invention uses a relatively simple apparatus to accomplish the separation of the mixed bed resin in a short time.
[0026] The preferred embodiment herein disclosed is not intended to unnecessarily limit the scope of the invention. Therefore, simple modifications or variations belonging to the equivalent of the scope of the claims and the instructions disclosed herein for a patent are all within the scope of the present invention.