Method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material
11565241 · 2023-01-31
Assignee
Inventors
Cpc classification
B01J37/0236
PERFORMING OPERATIONS; TRANSPORTING
B01J37/0203
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3293
PERFORMING OPERATIONS; TRANSPORTING
B01D53/8628
PERFORMING OPERATIONS; TRANSPORTING
B01J20/262
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0407
PERFORMING OPERATIONS; TRANSPORTING
B01D2255/915
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3236
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3212
PERFORMING OPERATIONS; TRANSPORTING
B01J20/3225
PERFORMING OPERATIONS; TRANSPORTING
B01D46/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J23/24
PERFORMING OPERATIONS; TRANSPORTING
B01J37/34
PERFORMING OPERATIONS; TRANSPORTING
B01J37/02
PERFORMING OPERATIONS; TRANSPORTING
B01J35/00
PERFORMING OPERATIONS; TRANSPORTING
B01J20/32
PERFORMING OPERATIONS; TRANSPORTING
B01J20/28
PERFORMING OPERATIONS; TRANSPORTING
B01J20/26
PERFORMING OPERATIONS; TRANSPORTING
B01D46/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material is provided. The method comprises: immersing a filter material in a solution containing sodium lauryl sulfate and nitric acid; first modifying the surface of the filter material by using the sodium lauryl sulfate so that a charge layer is wound around the surface of the filter material and tightly absorbs H.sup.+ in an acid solution; and then adding potassium permanganate as an oxidant to react with H.sup.30 on the surface of the filter material to generate nano flower-like manganese dioxide in situ on the surface of the filter material, so as to obtain a composite filter material having a denitration function.
Claims
1. A method for in-situ generation of a nanoflower shaped manganese dioxide catalyst on a filter material, comprising the steps of: immersing the filter material in a solution containing sodium lauryl sulfate and nitric acid; first modifying a surface of the filter material through the sodium lauryl sulfate in the solution so that a charge layer is wound around the surface of the filter material and the surface of the filter material sufficiently absorbs H.sup.+ in the solution; and then adding potassium permanganate to the solution to react with H.sup.30 on the surface of the filter material to generate the nanoflower shaped manganese dioxide in-situ on the surface of the filter material, so as to obtain a composite filter material having a denitration function; wherein a concentration of the sodium lauryl sulfate is 0.1-2 g/L and a concentration of the nitric acid is 0.01-0.2 M in the solution; wherein the filter material is a polyphenylene sulfide needle felt filter material; the method comprising the following preparation steps: 1) immersing the filter material in the solution containing the sodium lauryl sulfate and the nitric acid, and dispersing for 1h by using ultrasonic waves so that the sodium lauryl sulfate is sufficiently adsorbed on the surface of the filter material; 2) after the solution of step 1) is heated to 60-80° C., adding the potassium permanganate and further stirring for reaction for 0.5-2 h so that the potassium permanganate reacts with the H.sup.30 on the surface of the filter material to generate the nanoflower shaped manganese oxide in-situ; and 3) rinsing the filter material obtained in step 2) with deionized water and ethanol, and drying it in a vacuum oven at 110° C. for 6 h to obtain a composite filter material with a denitration function; wherein a concentration of the potassium permanganate in step 2) is 0.01-0.2M.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) In order to make the objects, technical solutions, and advantages of the present invention more comprehensible, the present invention will be further described in detail below in conjunction with the embodiments. It should be understood that specific embodiments described here are merely illustrative of the present invention rather than limiting it. The application principle of the present invention will be further described below in conjunction with the accompanying drawings and specific embodiments.
Embodiment 1
(8) Method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material, comprising the following steps:
(9) a) adding 0.042 g of sodium dodecyl sulfate solid particles and a trace of concentrated nitric acid to deionized water, stirring and dissolving to prepare a sodium dodecyl sulfate solution with a concentration of 0.84 g/L, wherein the concentration of nitric acid is controlled to be 0.05M;
(10) b) immersing a circular polyphenylene sulfide filter material having a diameter of 3.8 cm into the suspension solution of step a), ultrasonically dispersing in an ultrasonic cleaner for 1 h, so that sodium lauryl sulfate is sufficiently adsorbed on the surface of the filter material;
(11) c) heating the reaction system to 70° C., adding a potassium permanganate solution dropwise with a concentration of 0.05M and further stirring for reaction for 1.5 h so that the potassium permanganate reacts with H.sup.30 on the surface of the filter material to generate nano flower-like manganese oxide in situ; and
(12) d) rinsing the filter material obtained in Step c) with deionized water and ethanol, and drying in a vacuum oven at 110° C. for 6 h to obtain a composite filter material having a denitration function.
(13) The denitration performance of the composite filter material is evaluated in a self-made tubular SCR reactor. Test conditions: [NO]═[NH.sub.3]=400 ppm, [O.sub.2]=5%, N.sub.2 is equilibrium gas, the gas flow rate is 700 mL*min.sup.−1, the temperature is set to 160° C., and the denitration efficiency measured with a British KM940 flue gas analyzer is 97%.
Embodiment 2
(14) Method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material, comprising the following steps:
(15) a) adding 0.024 g of sodium dodecyl sulfate solid particles and a trace of concentrated nitric acid to deionized water, stirring and dissolving to prepare a sodium dodecyl sulfate solution with a concentration of 0.48 g/L, wherein the concentration of nitric acid is controlled to be 0.1 M;
(16) b) immersing a circular polyphenylene sulfide filter material having a diameter of 3.8 cm into the suspension solution of step a), ultrasonically dispersing in an ultrasonic cleaner for 1 h, so that sodium lauryl sulfate is sufficiently adsorbed on the surface of the filter material;
(17) c) heating the reaction system to 80° C., adding a potassium permanganate solution dropwise with a concentration of 0.1M and further stirring for reaction for 2 h so that the potassium permanganate reacts with H.sup.+ on the surface of the filter material to generate nano flower-like manganese oxide in situ; and
(18) d) rinsing the filter material obtained in Step c) with deionized water and ethanol, and drying in a vacuum oven at 110° C. for 6 h to obtain a composite filter material having a denitration function.
(19) The denitration performance of the composite filter material is evaluated in a self-made tubular SCR reactor. Test conditions: [NO]═[NH.sub.3]=400 ppm, [O.sub.2]=5%, N.sub.2 is equilibrium gas, the gas flow rate is 700 mL.Math.min.sup.−1, the temperature is set to 160° C., and the denitration efficiency measured with a British KM940 flue gas analyzer is 100%.
Embodiment 3
(20) Method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material, comprising the following steps:
(21) a) adding 0.042 g of sodium dodecyl sulfate solid particles and a trace of concentrated nitric acid to deionized water, stirring and dissolving to prepare a sodium dodecyl sulfate solution with a concentration of 0.84 g/L, wherein the concentration of nitric acid is controlled to be 0.02M;
(22) b) immersing a circular polyphenylene sulfide filter material having a diameter of 3.8 cm into the suspension solution of step a), ultrasonically dispersing in an ultrasonic cleaner for 1 h, so that sodium lauryl sulfate is sufficiently adsorbed on the surface of the filter material;
(23) c) heating the reaction system to 65° C., adding a potassium permanganate solution dropwise with a concentration of 0.02M and further stirring for reaction for 1.5 h so that the potassium permanganate reacts with H.sup.+ on the surface of the filter material to generate nano flower-like manganese oxide in situ; and
(24) d) rinsing the filter material obtained in Step c) with deionized water and ethanol, and drying in a vacuum oven at 110° C. for 6 h to obtain a composite filter material having a denitration function.
(25) The denitration performance of the composite filter material is evaluated in a self-made tubular SCR reactor. Test conditions: [NO]═[NH.sub.3]=400 ppm, [O.sub.2]=5%, N.sub.2 is equilibrium gas, the gas flow rate is 700 mL.Math.min-1, the temperature is set to 160° C., and the denitration efficiency measured with a British KM940 flue gas analyzer is 95%.
Embodiment 4
(26) Method for in-situ generation of nanoflower-like manganese dioxide catalyst on filter material, comprising the following steps:
(27) a) adding 0.042 g of sodium dodecyl sulfate solid particles and a trace of concentrated nitric acid to deionized water, stirring and dissolving to prepare a sodium dodecyl sulfate solution with a concentration of 0.84 g/L, wherein the concentration of nitric acid is controlled to be 0.05M;
(28) b) immersing a circular polyphenylene sulfide filter material having a diameter of 3.8 cm into the suspension solution of step a), ultrasonically dispersing in an ultrasonic cleaner for 1 h, so that sodium lauryl sulfate is sufficiently adsorbed on the surface of the filter material;
(29) c) heating the reaction system to 65° C., adding a potassium permanganate solution dropwise with a concentration of 0.05M and further stirring for reaction for 2.5 h so that the potassium permanganate reacts with H.sup.+ on the surface of the filter material to generate nano flower-like manganese oxide in situ; and
(30) d) rinsing the filter material obtained in Step c) with deionized water and ethanol, and drying it in a vacuum oven at 110° C. for 6 h to obtain a composite filter material having a denitration function.
(31) The denitration performance of the composite filter material is evaluated in a self-made tubular SCR reactor. Test conditions: [NO]═[NH.sub.3]=400 ppm, [Oz]=5%, N.sub.2 is equilibrium gas, the gas flow rate is 700 mL.Math.min.sup.−1, the temperature is set to 160° C., and the denitration efficiency measured with a British KM940 flue gas analyzer is 96%.
(32) The embodiments mentioned above are merely preferred embodiments of the present invention and not intended to limit the present invention. Any of modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of the present invention shall be covered in the protection scope of the present invention.