IP Library Granted Patent US 7,537,706
Granted Patent B2
US 7,537,706 · App. 10/997,452 · Granted May 26, 2009

Microporous diffusion apparatus

Assignee: ThinkVillage-Kerfoot, LLC
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Quick Facts
Patent No.
US 7,537,706
App. No.
10/997,452
Granted
May 26, 2009
Kind
B2
Abstract

Apparatus for active in situ multi-element gas sparging for bioremediation or physico-chemical degration for removal of contaminants in a soil formation containing a subsurface groundwater aquifer or a substantially wet unsaturated zone, the multi-gas contained in bubbles, wherein the apparatus includes a plurality of injection wells extending to a depth of a selected aquifer; introducing an oxidizing agent comprising ozone mixed with ambient air to provide a multi-element gas by means of microporous diffusers, without applying a vacuum for extraction of stripped products or biodegration by-products, wherein said diffusers form micro-fine bubbles containing said multi-element gas that oxidizes, by stripping and decomposition, chlorinated hydrocarbons from the aquifer and surrounding saturated soil formation into harmless by-products; also including a pump for agitating water in the well selecting microbubbles, injecting them into the aquifer and effective to alter the path of micro-fine bubbles through a porous solid formation whereby enhanced contact between the oxidizing agent contained in each said bubble by stripping pollutant from solution in ambient water into the mini-atmosphere of each bubble effective to increase the efficiency and speed of remediation of a site.

Claims (97)

1. A method of removal of volatile organic compounds in a soil formation comprises:

injecting air including gaseous ozone into water in the soil formation with gaseous ozone at concentrations to effect removal of volatile organic compounds by the gaseous ozone reacting with the volatile organic compounds and with the air and the ozone injected into the water as fine bubbles with an initial bubble size in a range of about 5 to 200 μm.

2. The method of claim 1 wherein the fine bubbles are sized in accordance with a porosity characteristic of the soil formation.

3. The method of claim 1 wherein injecting further comprises:

providing a plurality of injection wells and introducing the air and ozone as fine bubbles between about 5 to 200 μm through the injection wells.

4. The method of claim 3 , further comprising intermittently agitating water in the well.

5. The method of claim 1 , further comprising periodically pulsing the injected air including ozone.

6. The method of claim 1 wherein injecting further comprises:

mixing the air with the ozone.

7. The method of claim 1 wherein injecting further comprises:

mixing the air with the ozone; and

delivering the air and ozone through a plurality of microporous diffusers to produce the fine bubbles of air and ozone.

8. The method of claim 1 wherein volatile organic compounds in the soil formation are decomposed by ozone interaction with double bonded carbon atoms of the volatile organic compounds.

9. The method of claim 1 wherein the fine bubbles have an initial bubble size at least between 50 to 200 μm.

10. The method of claim 1 wherein the fine bubbles have an initial bubble size at least between 20 to 50 μm.

11. The method of claim 1 wherein the fine bubbles have an initial bubble size at least between 5 to 20 μm.

12. The method of claim 1 further comprising:

providing a plurality of injection wells and injecting the ambient air and ozone as fine bubbles through the injection wells by using a corresponding micro-porous diffuser for each one of the plurality of injection wells; and

surrounding the micro-porous diffusers with a sand pack disposed between the micro-porous diffusers and the surrounding soil formation.

13. The method of claim 1 wherein removal of volatile organic compounds can occur without vapor extraction.

14. The method of claim 1 further comprising agitating with pumped water to disperse said bubbles through the soil formation.

15. The method of claim 1 wherein the soil formation contains chlorinated hydrocarbons.

16. The method of claim 1 wherein the soil formation contains organic and hydrocarbon material.

17. The method of claim 1 wherein the volatile organic compounds include chlorinated solvents including dichloroethene, trichloroethene, and/or tetrachloroethene.

18. The method of claim 1 wherein microporous diffusers are used to generate said fine bubbles and the microporous materials of the microporous diffusers have a pore size selected to match a porosity characteristic of the surrounding soil formation.

19. The method of claim 18 wherein the microporous materials of the microporous diffusers have a pore size selected to match a porosity characteristic and a permeability characteristic of the surrounding soil formation.

20. The method of claim 1 wherein microporous diffusers are used to generate said fine bubbles and the microporous materials of the microporous diffusers have a pore size selected to match a permeability characteristic of the surrounding soil formation.

21. The method of claim 1 further comprises:

generating an oxidizing agent comprising ozone at concentrations to effect removal of contaminants;

mixing air with ozone to produce the air including ozone.

22. Apparatus for injection of a gas into aquifer regions for removal of volatile organic compounds by reaction with ozone, comprising:

a gas generator for generating an oxidizing agent comprising ozone for injection of air including ozone into the aquifer;

a microporous diffuser coupled to the gas generator, the microporous diffuser including a body having a porous portion with a pore size in the range of about 5–200 μm; and

a compressor coupled to the gas generator to provide the gas to the microporous diffuser at an elevated pressure to deliver microbubbles having an initial diameter in a range of about 5 microns to 200 microns into the aquifer regions.

23. The apparatus of claim 22 further comprising:

a casing;

a packer disposed through the casing

an outlet screen coupled to the casing.

24. The apparatus of claim 23 wherein the outlet screen is coupled to the casing at a lower portion thereof and with the apparatus further comprising:

an inlet screen coupled to the casing at an upper portion of the casing.

25. The apparatus of claim 23 wherein the packer is disposed through the casing between the inlet and outlet screens coupled to the casing.

26. The apparatus of claim 23 wherein the microporous diffuser is disposed outside of the casing.

27. The apparatus of claim 23 wherein the microporous diffuser is disposed within the casing.

28. The apparatus of claim 23 wherein the microporous diffuser is a first microporous diffuser disposed within the casing and wherein the apparatus further comprises:

a second microporous diffuser disposed below the casing.

29. The apparatus of claim 23 wherein the casing and apparatus are disposed within a well, the well provided on a site having an aquifer, and wherein said apparatus further comprises:

an outlet screen portion of the casing disposed in the aquifer; and

an inlet screen portion of the casing disposed above said outlet screen.

30. The apparatus of claim 29 , further comprising agitation means for intermittently agitating water in the well.

31. A method of removal of volatile organic compounds comprises:

injecting air including gaseous ozone, as bubbles with an initial bubble diameter less than 200 microns with the gaseous ozone at concentrations to effect removal of volatile organic compounds in a subsurface aquifer with the bubbles forming at least in part by delivering the air and gaseous ozone through a surrounding sand pack disposed about a region where the air and ozone are injected into a site.

32. The method of claim 31 further comprising:

determining a porosity characteristic of a site containing the volatile organic compounds; and

wherein the bubbles having an initial bubble diameter in accordance with the determined porosity characteristic of the site and with the ozone reacting with the volatile organic compounds.

33. The method of claim 31 wherein the fine bubbles have an initial bubble diameter between 5 to 200 μm.

34. The method of claim 31 wherein the fine bubbles have an initial bubble diameter between 20 to 50 μm.

35. The method of claim 31 wherein the fine bubbles have an initial bubble diameter between 5 to 20 μm.

36. The method of claim 31 wherein injecting further comprises:

providing a plurality of injection wells and introducing the air and ozone in the bubbles through the injection wells.

37. The method of claim 31 wherein injecting further comprises:

mixing the air with the ozone; and

delivering the air and ozone through a microporous diffuser to produce along with the sand pack the bubbles of air and ozone.

38. The method of claim 31 wherein volatile organic compounds in the soil formation are decomposed by ozone interaction with double bonded carbon atoms of the volatile organic compounds.

39. The method of claim 31 further comprising:

providing a plurality of injection wells and injecting the ambient air and ozone as fine bubbles through the injection wells by using a corresponding microporous diffuser for each one of the plurality of injection wells and

a plurality of sand packs including the surrounding sand pack, with one of the plurality of sand packs being disposed between each one of the micro-porous diffusers and the surrounding soil formation.

40. The method of claim 31 wherein the soil formation contains chlorinated hydrocarbons.

41. The method of claim 31 wherein the soil formation contains organic and hydrocarbon material.

42. The method of claim 31 wherein the volatile organic compounds include chlorinated solvents including dichloroethene, trichloroethene, and/or tetrachloroethene.

43. The method of claim 31 wherein a microporous diffuser is used to generate the fine bubbles and microporous material of the microporous diffuser has a pore size selected in accordance with the determined porosity characteristic of the surrounding soil formation.

44. The method of claim 43 wherein the microporous material of the microporous diffuser has a pore size selected to match the determined porosity characteristic and a permeability characteristic of the surrounding soil formation.

45. The method of claim 31 further comprises:

generating an oxidizing agent comprising the ozone at concentrations to effect removal of contaminants;

mixing the air with the ozone to produce the air including ozone.

46. A method comprises:

injecting gaseous ozone into a wet soil formation at concentrations to effect removal of volatile organic compounds in the soil formation by delivery of the gaseous ozone in bubbles and with the gaseous ozone reacting with the volatile organic compounds.

47. The method of claim 46 further comprising

injecting the gaseous ozone with air; and

wherein injecting gaseous ozone with air occurs in ground water of a subsurface aquifer.

48. The method of claim 46 wherein the bubbles are fine bubbles with an initial bubble size in a range of about 5 to 200 μm.

49. The method of claim 48 wherein the fine bubbles are sized in accordance with a porosity characteristic of the soil formation.

50. The method of claim 46 further comprises:

injecting the gaseous ozone through microporous materials to provide the bubbles.

51. The method of claim 46 further comprises:

injecting the ozone through a slotted well screen to provide the bubbles.

52. The method of claim 46 further comprises:

injecting the ozone through a slotted well screen surrounded with microporous materials to provide the bubbles as microbubbles.

53. A method of removal of volatile organic compounds comprises:

injecting air including gaseous ozone into water in a soil formation with gaseous ozone at concentrations to effect removal of volatile organic compounds with the air and the ozone injected into the water as fine bubbles with an initial bubble diameter in a range of about 5 to 200 μm.

54. The method of claim 53 wherein the fine bubbles are sized in accordance with a porosity characteristic of the soil formation.

55. The method of claim 53 wherein injecting comprises:

introducing the air and ozone through microporous media to provide the bubbles.

56. The method of claim 53 , further comprising intermittently agitating water in the well.

57. The method of claim 53 , further comprising periodically pulsing the injected air including ozone.

58. The method of claim 53 wherein injecting further comprises:

mixing the air with the ozone.

59. The method of claim 53 wherein volatile organic compounds in the soil formation are decomposed by ozone interaction with double bonded carbon atoms of the volatile organic compounds.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2015
From: THINKVILLAGE-KERFOOT, LLC
To: KERFOOT TECHNOLOGIES, INC.
Reel/Frame 035834/0089 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2009
From: KERFOOT, WILLIAM B.
To: KERFOOT TECHNOLOGIES, INC.
Reel/Frame 022117/0557 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2008
From: KERFOOT TECHNOLOGIES, INC.
To: THINKVILLAGE-KERFOOT, LLC
Reel/Frame 021217/0168 →
Continuity (7)
Continuation 0994311100 · Aug 30, 2001
Continuation 0960695200 · Jun 29, 2000
Continuation 0922040100 · Dec 24, 1998
Continuation 0875627300 · Nov 25, 1996
Continuation In Part 0863801700 · Apr 25, 1996
Continuation In Part 2903849900 · May 5, 1995
Related Publication 20070023361A1 · Feb 1, 2007