IP Library Granted Patent US 12692156
Granted Patent B2
US 12692156 · App. 17/919,794 · Granted Jul 28, 2026

Absorption column comprising a feed box having a serrated weir and a structured packing and process for the production of nitric acid

Inventor: Halvor Øien (Porsgrunn, NO)
Assignee: YARA INTERNATIONAL ASA
C01B21/40B01D53/1456B01D53/185B01D53/56B01D53/78B01J19/32B01D2252/103B01J2219/32213B01J2219/32255B01J2219/32408
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Quick Facts
Patent No.
US 12692156
App. No.
17/919,794
Granted
Jul 28, 2026
Kind
B2
Abstract

A vertical absorption column comprising a liquid distributor comprising a feed box having a serrated weir for distribution of a liquid through upward-pointing serrations of the serrated weir into perforated trays of the liquid distributor and located directly above a structured packing, a structured packing, a plate packing comprising a plurality of horizontal plates, provided with cooling means, an inlet for the addition of oxygen to the lower part of the vertical absorption column, an inlet for the process gas comprising nitrogen oxides from an ammonia oxidation process at the lower part of the vertical absorption column, an inlet for an aqueous solution at the upper part of the vertical absorption column, at least one nitric acid outlet at the bottom of the vertical absorption column and an outlet for tail gas comprising nitrogen oxides at the top of the vertical absorption column.

Claims (34)

1 . A vertical absorption column for absorption of nitrogen oxides from a process gas comprising said nitrogen oxides into water for production of an aqueous nitric acid solution, comprising:

a structured packing;

a liquid distributor, located directly above the structured packing, comprising perforated trays and a feed box having a serrated weir for distribution of a liquid through upward-pointing serrations of the serrated weir into the perforated trays;

a plate packing comprising a plurality of horizontal plates, provided with cooling means;

an inlet for an addition of oxygen to a lower part of the vertical absorption column;

an inlet for the process gas comprising nitrogen oxides from an ammonia oxidation process at the lower part of the vertical absorption column;

an inlet for an aqueous solution at an upper part of the vertical absorption column;

at least one nitric acid outlet at a bottom of the vertical absorption column; and

an outlet for tail gas comprising nitrogen oxides at a top of the vertical absorption column,

wherein the liquid distributor and the structured packing are arranged between a lowermost horizontal plate of the plate packing and the inlet of process gas containing nitrogen oxides, and the aqueous solution is an aqueous solution of nitric acid.

2 . The vertical absorption column according to claim 1 , wherein the oxygen is oxygen gas.

3 . The vertical absorption column of claim 2 wherein the inlet for the process gas and the inlet for the addition of oxygen are separate inlets.

4 . The vertical absorption column according to claim 1 , further comprising a temperature sensor for measuring the temperature of the aqueous solution on one or more horizontal plates of the plate packing.

5 . The vertical absorption column according to claim 1 , wherein the cooling means are one or more cooling coils, comprising a cooling medium, superposed on a horizontal plate of the plate packing, wherein an initial temperature of the cooling medium in the cooling coils is between 5 to 45° C.

6 . The vertical absorption column according to claim 1 , wherein the structured packing has a surface area of at least 250 m 2 /m 3 .

7 . The vertical absorption column of claim 6 wherein the surface area of the structured packing is 450 to 750 m 2 /m 3 .

8 . The vertical absorption column according to claim 1 , wherein the liquid distributor has a drip-point density of at least 30 dripping points per m 2 .

9 . The vertical absorption column of claim 8 wherein the drip-point density is 60 to 200 dripping points per m 2 .

10 . The vertical absorption column according to claim 1 , wherein the structured packing is made of acid resistant stainless steel, titanium, or other acid-compatible materials.

11 . An absorption method for the production of an aqueous nitric acid solution by the absorption of nitrogen oxides from a process gas comprising nitrogen oxides into an aqueous solution in the vertical absorption column according to claim 1 , comprising the steps of:

introducing the aqueous solution in the top of the vertical absorption column though the liquid distributor;

allowing the aqueous solution to travel downwards into the vertical absorption column through the structured packing and the plate packing; and

contacting the aqueous solution with process gas comprising nitrogen oxides from an ammonia oxidation process moving in a counter-current direction to the aqueous solution through the structured packing and the plate packing.

12 . The absorption method according to claim 11 further comprising the step of returning part of the produced nitric acid to the top of the vertical absorption column where the aqueous solution is introduced through the liquid distributor and wherein the aqueous solution consists of water and the produced nitric acid.

13 . The absorption method according to claim 11 , further comprising providing oxygen to the lower part of the vertical absorption column.

14 . The absorption method according to claim 11 , wherein the process gas comprising nitrogen oxides from an ammonia oxidation process moving in a counter-current direction to the aqueous solution is in a process gas/aqueous solution ratio ranging from 2.5 kg gas/kg solution to 25 kg gas/kg solution.

15 . The absorption method according to claim 11 , wherein the pressure drop over the vertical absorption column is between from 20 mbar to 500 mbar.

16 . The absorption method of claim 15 wherein the pressure drop over the vertical absorption column is from 20 mbar to 85 mbar.

17 . A method for producing nitric acid, comprising the steps of

oxidizing ammonia to produce nitric oxide;

converting nitric oxide to nitrogen oxides;

absorbing the nitrogen oxides in water in the vertical absorption column according to claim 1 to produce an aqueous nitric acid solution;

removing dissolved nitrogen oxides from the aqueous nitric acid solution using a bleaching column;

returning the removed nitrogen oxides to the absorption column for subsequent conversion of the removed nitrogen oxides to nitric acid.