IP Library › Granted Patent US 11,786,862
Granted Patent B2
US 11,786,862 · App. 17/108,360 · Granted Oct 17, 2023

Plant and method for the separation of a gas mixture containing a plurality of components, in particular for obtaining biomethane

Inventors: Federico Capra (Soragna, IT); Stefania Patronelli (Taranto, IT); Egidio Monticelli (Brescia, IT)
Assignee: AB IMPIANTI SRL
B01D53/229B01D53/0476B01D53/226C07C7/005C07C7/12C07C7/144C10L3/104B01D2256/245B01D2257/504C10L2290/542C10L2290/548
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,786,862
App. No.
17/108,360
Granted
Oct 17, 2023
Kind
B2
Abstract

Plant and method for the separation of a gas mixture containing a plurality of gaseous components, comprising first and second membrane-based separation stages and a third gas separation stage with adsorption with oscillating pressure, the first, second and third gas separation stages acting in combination to obtain a first final flow of gas enriched in a first component of the initial gas mixture, for example methane, and a second final flow of gas, enriched in a second component of the initial gas mixture, for example carbon dioxide.

Claims (43)

1. A plant for the separation of a gas mixture containing a plurality of gaseous components, the plant comprising:

a first membranes-based gas separation stage configured to receive a flow of said gas mixture in input and to separate the flow of said gas mixture into

a first flow of retentate gas, initially enriched in a first component of said plurality of components, and

a first flow of permeate gas, initially enriched in a second component of said plurality of components;

a second membranes-based gas separation stage configured to receive said first flow of retentate gas in input and to separate the first flow of retentate gas into

a final flow of retentate gas further enriched in said first component, and

a second flow of permeate gas configured to be recirculated in the plant upstream of said first membranes-based gas separation stage;

a third gas separation stage with adsorption with oscillating pressure, said third gas separation stage being configured to receive said first flow of permeate gas in input and to separate the first flow of permeate gas by adsorption into

a recirculable gas flow configured to be recirculated in the plant upstream of said first membranes-based gas separation stage, and

a final gas flow further enriched in said second component,

wherein the third gas separation stage comprising a first separation tank, a second separation tank, and a third separation tank operatively connected to each other so that, during operation at a steady state of the plant, the first, second, and third separation tanks are switched in rotation among the first, second, and third separation tanks such that:

at least said first separation tank is isolated from a supply line of the first flow of permeate gas and is subjected to a regeneration phase of adsorption contained therein by applying a first pressure inside the first tank,

said second tank is connected with the supply line and fed, at a second pressure higher than said first pressure, with said first flow of permeate gas to be separated, and

said third separation tank finishes a regeneration phase of an adsorbing system contained therein and is brought to an intermediate pressure between the first pressure of the first separation tank and the second pressure of the second separation tank and is isolated from the supply line of the first flow of permeate gas and waiting to be reconnected thereto,

wherein reconnection of said third separation tank to the supply line of the first flow of permeate gas takes place when the adsorbing system contained in the second tank reaches the saturation level by simultaneously connecting the supply line of the first flow of permeate gas to the third separation tank and to the second separation tank so that the first flow of permeate gas which passes through the second separation tank is at least partially deviated inside the third separation tank.

2. A method for the separation of a gas mixture containing a plurality of gaseous components, the method comprising:

separating, by a first membranes-based gas separation stage, a flow of the gas mixture entering a plant, into

a first flow of retentate gas, initially enriched in a first component of said plurality of components, and

a first flow of permeate gas initially enriched in a second component of said plurality of components;

separating, by a second membranes-based gas separation stage, said first flow of retentate gas into

a final flow of retentate gas further enriched in said first component, and

a second flow of permeate gas configured to be recirculated in the plant upstream of the first membranes-based gas separation stage;

separating, by a third gas separation stage with adsorption with oscillating pressure, said first flow of permeate gas initially enriched in a second component of said plurality of components into

a recirculable gas flow configured to be recirculated in the plant upstream of said first membranes-based gas separation stage, and

a final gas flow further enriched in said second component,

wherein the third gas separation stage comprises a first separation tank, a second separation tank, and a third separation tank operatively connected to each other, and

the separating by the third gas separation stage comprises switching the first, second, and third separation tanks, during operation of the plant, in rotation among the first, second, and third separation tanks such that:

said first separation tank is isolated from a supply line of the first flow of permeate gas and subjected to a regeneration phase of an adsorbing system contained therein by applying a first pressure inside the first tank,

said second tank is connected to the supply line of the first flow of permeate gas and fed the first flow of permeate gas at a second pressure higher than said first pressure, with said first flow of permeate gas to be separated,

said third separation tank finishes a regeneration phase of an adsorbing system contained therein and remains isolated from the supply line of the first permeate gas flow waiting to be reconnected thereto, and

at a first instant, at which an absorbing system contained in the second separation tank is close to saturation, connecting the flow of permeate gas simultaneously to the third separation tank and to the second separation tank so that the first flow of permeate gas that passes through the second separation tank is at least partially deviated inside the third separation tank.

3. The method according to claim 2 , further comprising:

at a second instant, at which the adsorbing system contained in the second separation tank reaches saturation, disconnecting the second separation tank from the supply line and connecting the second separation tank to the regenerated first separation tank in order to temporarily equalize between the regenerated first tank and the second separation tank the pressures inside the first separation tank and inside the second separation tank at a pressure level intermediate between the first pressure and the second pressure; and

subsequently, following pressure equalization, placing said regenerated first tank in a position isolated from the supply line of the first flow of permeate gas and waiting to be reconnected thereto, and at the same time, subjecting said second separation tank to the regeneration phase of the absorbing system contained therein saturated by previous absorption, by applying the first pressure inside said second separation tank.

4. The plant according to claim 1 , further comprising a vacuum pump, and

wherein said first tank is subjected to said regeneration phase of the adsorbing system contained therein at said first pressure lower than the atmospheric pressure by operating said vacuum pump.

5. The plant according to claim 1 , wherein said first component of said plurality of components is methane.

6. The plant according to claim 1 , wherein said second component of said plurality of components is carbon dioxide.

7. The plant according to claim 1 , wherein said second tank is connected with the supply line and fed with said first flow of permeate gas to be separated, at a second pressure comprised between 0.3 and 1 barg.

8. The method according to claim 2 , wherein said first tank is isolated from a supply line of the first flow of permeate gas and subjected to a regeneration phase of the adsorbing system contained therein by applying, inside the first tank, and by a vacuum pump, a first pressure lower than the atmospheric pressure.

9. The method according to claim 2 , wherein said first component of said plurality of components is methane.

10. The method according to claim 2 , wherein said second component of said plurality of components is carbon dioxide.

11. The method according to claim 2 , wherein said second separation tank is connected with the supply line and fed with said first flow of permeate gas to be separated, at a second pressure comprised between 0.3 and 1 barg.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2020
From: CAPRA, FEDERICO; PATRONELLI, STEFANIA; MONTICELLI, EGIDIO
To: AB IMPIANTI SRL
Reel/Frame 054504/0957 →
Priority Claims (1)
IT 102019000022983 · Dec 4, 2019 · national
Continuity (1)
Related Publication 20210170329A1 · Jun 10, 2021
Cited By (1)
US 12,654,126