IP Library Granted Patent US 12,091,331
Granted Patent B2
US 12,091,331 · App. 17/991,124 · Granted Sep 17, 2024

Destruction of PFAS via an oxidation process and apparatus suitable for transportation to contaminated sites

Inventors: Lindy E. Dejarme (Columbus, OH); Kavitha Dasu (Powell, OH); Russell R. Sirabian (Columbus, OH); Christopher F. Buurma (Gahanna, OH); Jeffrey Ellis (Columbus, OH); Michael M. Miller (Worthington, OH); Dan Garbark (Columbus, OH); Nathan Bryant (Columbus, OH); John Tallarico (Columbus, OH); Joseph Casciano (Columbus, OH); Slawomir Winecki (Columbus, OH); David Holley (Columbus, OH); Joshua James (Columbus, OH); Keith Brown (Solon, OH); Doug Hendry (Columbus, OH); Darwin Argumedo (Columbus, OH); Aaron Frank (Dublin, OH); Christopher Gordon Scheitlin (Columbus, OH)
Assignee: Revive Environmental Technology, LLC
C02F1/441B01J3/008B01J4/002C02F1/04C02F1/583C02F1/722C02F2101/36C02F2201/002
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Quick Facts
Patent No.
US 12,091,331
App. No.
17/991,124
Granted
Sep 17, 2024
Kind
B2
Abstract

Per- and polyfluoroalkyl substances (PFAS) are destroyed by oxidation in supercritical conditions. PFAS in water can be concentrated and prepared for destruction in a pretreatment phase. Following annihilation of the PFAS in supercritical conditions to levels below 5 parts per trillion (ppt), the water effluent can be used to recover heat, returned to sub-critical conditions, and then released back into the environment.

Claims (30)

1. A method of destroying PFAS in a PFAS-containing mixture, the method comprising:

separating the PFAS-containing mixture into a mineral-enriched fraction and a mineral depleted fraction using a separation procedure;

heating the mineral-enriched fraction to volatize PFAS into a vapor;

recovering PFAS from the vapor; and

reacting the recovered PFAS with an oxidant under supercritical conditions in a supercritical destruction phase; and

wherein prior to the step of reacting the PFAS with an oxidant, super-saturating the PFAS-containing mixture with air and passing the PFAS-containing mixture into a tank and reducing pressure in the tank such that bubbles are generated in the mixture to create a foamed mixture.

2. The method of claim 1 wherein the step of heating comprises heating to at least 150° C.

3. The method of claim 1 wherein, prior to the step of heating the mineral-enriched fraction to volatize PFAS into a vapor, the PFAS-containing mixture is treated with acid.

4. The method of claim 1 wherein the step of heating comprises heating up to 300° C.

5. A method of destroying PFAS in a PFAS-containing mixture, the method comprising:

separating the PFAS-containing mixture into a mineral-enriched fraction and a mineral depleted fraction using a separation procedure;

heating the mineral-enriched fraction to volatize PFAS into a vapor;

recovering PFAS from the vapor; and

reacting the recovered PFAS with an oxidant under supercritical conditions in a supercritical destruction phase; and

wherein the step of heating results in a brine having 5 ppt PFAS or less.

6. The method of claim 5 comprising, prior to the step of reacting the PFAS with an oxidant, super-saturating the PFAS-containing mixture with air and passing the PFAS-containing mixture into a tank and reducing pressure in the tank such that bubbles are generated in the mixture to create a foamed mixture.

7. A method of destroying PFAS in a PFAS-containing mixture, the method comprising:

separating the PFAS-containing mixture into a mineral-enriched fraction and a mineral depleted fraction using a separation procedure;

heating the mineral-enriched fraction to volatize PFAS into a vapor;

recovering PFAS from the vapor; and

reacting the recovered PFAS with an oxidant under supercritical conditions in a supercritical destruction phase; and

wherein the recovered PFAS is recombined with a portion of the mineral-depleted fraction.

8. A method of destroying PFAS, comprising:

providing an aqueous solution comprising water and PFAS;

subjecting the aqueous solution to a pretreatment or a separation procedure to produce a clean water fraction and a briny PFAS-concentrated fraction in which the PFAS concentration is greater than that of the aqueous solution;

preheating the PFAS-concentrated fraction at subcritical conditions;

passing the preheated PFAS-concentrated fraction into a heated pre-reactor where the PFAS-concentrated fraction is exposed to supercritical conditions including a first temperature to produce a briny concentrated fraction;

removing salt from the briny concentrated fraction to produce a brine-reduced fraction; and

passing the brine-reduced fraction to a reactor where the fraction is subjected to oxidation under supercritical conditions reducing the concentration of PFAS in the brine-reduced fraction to produce an effluent of clean, hot water.

9. The method of claim 8 further comprising transferring heat from the clean hot water to the PFAS-concentrated fraction in a heat exchanger in the preheating step.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2024
From: BATTELLE MEMORIAL INSTITUTE
To: REVIVE ENVIRONMENTAL TECHNOLOGY, LLC
Reel/Frame 067586/0083 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 30, 2024
From: DEJARME, LINDY E.; DASU, KAVITHA; SIRABIAN, RUSSELL R.; BUURMA, CHRISTOPHER F.; ELLIS, JEFFREY; MILLER, MICHAEL M.; GARBARK, DAN; BRYANT, NATHAN; TALLARICO, JOHN; CASCIANO, JOSEPH; WINECKI, SLAWOMIR; HOLLEY, DAVID; JAMES, JOSHUA; BROWN, KEITH; HENDRY, DOUG; ARGUMEDO, DARWIN; FRANK, AARON; SCHEITLIN, CHRISTOPHER GORDON
To: BATTELLE MEMORIAL INSTITUTE
Reel/Frame 067274/0688 →
Continuity (5)
Continuation 17871907 · Jul 23, 2022
Continuation 16916085 · Jun 29, 2020
Provisional Application 62948765 · Dec 16, 2019
Provisional Application 62868858 · Jun 28, 2019
Related Publication 20230227336A1 · Jul 20, 2023