Claims
- 1. A two-phase mixture, consisting essentially of:
a liquid containing at least a saturated concentration of dissolved oxygen; and a plurality of micro-bubbles consisting essentially of oxygen gas, said micro-bubbles being held in a suspension and having an average diameter of about 10-200 microns.
- 2. The mixture of claim 1 wherein the liquid contains a supersaturated concentration of dissolved oxygen.
- 3. The mixture of claim 1 wherein the liquid comprises water.
- 4. A mixture containing a gas, comprising:
a solution of the gas dissolved in a liquid; a plurality of micro-bubbles of the gas in a suspension, said micro-bubbles each exerting a buoyancy force; and a plastic suspending said micro-bubbles having a yield stress greater than the buoyancy force exerted by the micro-bubbles, wherein the plastic encapsulates the plurality of micro-bubbles to permanently retain the micro-bubbles in the mixture.
- 5. The mixture of claim 4 wherein the plastic is a Bingham Plastic.
- 6. The mixture of claim 5 wherein the Bingham Plastic comprises one or more polymer components.
- 7. The mixture of claim 5 wherein the Bingham Plastic comprises one or more clay-containing components.
- 8. The mixture of claim 4 wherein the gas comprises nitrogen.
- 9. The mixture of claim 4 wherein the gas comprises oxygen and the liquid comprises water.
- 10. The mixture of claim 9 wherein the dissolved oxygen content is greater than 20 mg/l at 1 atm and 65° F.
- 11. The mixture of claim 4, wherein the average diameter of the micro-bubbles is between 10-200 microns.
- 12. A method of preparing a bath using a two-phase mixture of a gas and a liquid containing a homogeneous solution of the gas in the liquid and a suspension of bubbles containing the gas, said method comprising the steps of:
pressurizing the liquid; injecting the gas in the liquid through a nozzle at a high velocity to form a multi-phase mixture comprising a plurality of bubbles in the liquid; further pressurizing the liquid and the bubbles into a high-pressure stream of the liquid and bubbles to substantially cause the gas to dissolve into the liquid; discharging the high-pressure stream into a container; and filling the container with the high-pressure stream to form a bath containing the multi-phase mixture.
- 13. A method of preparing a mixture comprising a gas and a liquid containing a homogeneous solution of the gas in the liquid and a suspension of bubbles containing the gas, said method comprising the steps of:
pressurizing the liquid; injecting the gas in the liquid through a nozzle at a high velocity to form a plurality of bubbles in the liquid; further pressurizing the liquid and the bubbles into a high-pressure stream to form a solution of dissolved gas and a dispersion of bubbles; combining the high-pressure stream with a plastic at an elevated pressure to form a mixture, wherein the plastic encapsulates the solution and bubbles; and discharging the mixture into a container at a reduced pressure.
- 14. The method of claim 13 wherein the plastic is one of a polymer based Bingham Plastic and a clay based Bingham Plastic.
- 15. The method of claim 13 wherein the gas is one of pure oxygen, air, carbon dioxide, an inert gas, and nitrogen.
- 16. The method of claim 13 wherein the liquid is water.
- 17. A method of preparing a bath using a two-phase mixture of a gas and a liquid containing a homogeneous solution of the gas in the liquid and a suspension of bubbles containing the gas, said method comprising the steps of:
pressurizing the liquid; conveying the pressurized liquid past a porous diffuser; introducing the gas into the liquid through the porous diffuser to form a multi-phase mixture comprising a plurality of bubbles in the liquid; further pressurizing the liquid and the bubbles into a high-pressure stream of the liquid and bubbles to substantially cause the gas to dissolve into the liquid; discharging the high-pressure stream into a container; and filling the container with the high-pressure stream to form a bath containing the multi-phase mixture.
- 18. A method of treating a wound, comprising the steps of:
A. Dissolving a gas into a liquid to form a solution under an elevated pressure condition to supersaturate the dissolved gas into the solution with respect to an ambient pressure and an ambient temperature; B. Transferring the solution to a container subjected to the ambient pressure and the ambient temperature; C. Submerging tissue cells into the solution in the container; D. Adding energy from an energy source to the solution to invoke nucleation of gas micro-bubbles and liberation of the gas from the solution in proximity to the tissue cells; and E. Maintaining the tissue cells in the solution to non-surgically remove dead, devitalized, contaminated and foreign matter from the tissue cells by action of the micro-bubbles.
- 19. The method of claim 18, wherein the energy added to the solution comprises heat energy supplied to the solution.
- 20. The method of claim 19, wherein the heat energy supplied to the solution comprises heat dissipating from the tissue cells.
- 21. The method of claim 18, wherein the energy source for adding energy to the solution is mechanical circulation of the solution.
- 22. The method of claim 18, wherein the gas is selected from the group of air, carbon dioxide and an inert gas.
- 23. The method of claim 18, wherein the gas is pure oxygen.
- 24. The method of claim 23, wherein the step of maintaining the tissue cells in the solution further comprises enhancing proliferation of fibroblastic cells in the tissue cells through exposure of the cells to the dissolved oxygen.
- 25. The method of claim 23 wherein the step of transferring the solution to a container comprises gradually reducing the pressure of the solution to minimize turbulent conditions and maintain the concentration of dissolved oxygen in solution above 20 mg/l during the transfer.
- 26. The method of claim 18 further comprising the step of maintaining the ambient pressure between 0.9 atm and 1.1. atm, and the ambient temperature between 65° F. and 72° F.
- 27. The method of claim 18, wherein the step of dissolving the gas into the liquid comprises pumping the liquid through a conduit and injecting the gas into the pumped liquid at supersonic speeds.
- 28. A method of treating a wound comprising the steps of:
A. Dissolving a gas into a liquid under hyperbaric conditions so as to form a solution of dissolved gas substantially resistant to homogenous nucleation of the gas under static conditions in an ambient pressure and an ambient temperature; B. Transferring the solution to an environment having the ambient pressure and the ambient temperature while adding a minimal amount of energy to the solution so as to maintain the concentration of dissolved gas in the solution as it is transferred to the environment; C. Immersing tissue cells into the solution; D. Adding energy from an energy source to the solution to induce nucleation of gas micro-bubbles and liberation of the gas from the solution in proximity to the tissue cells; and E. Maintaining the tissue cells in the solution to non-surgically remove dead, devitalized, contaminated and foreign matter from the tissue cells by action of the micro-bubbles.
- 29. The method of claim 28, wherein the energy added to the solution comprises heat energy supplied to the solution.
- 30. The method of claim 28, wherein the heat energy added to the solution comprises heat dissipating from the tissue cells.
- 31. The method of claim 28, wherein the energy source for adding energy to the solution is mechanical circulation of the solution.
- 32. The method of claim 28 wherein the gas is selected from the group of air, carbon dioxide and an inert gas.
- 33. The method of claim 28 wherein a solid surface is submerged in the solution to stimulate heterogeneous nucleation of the gas bubbles.
- 34. The method of claim 28 wherein the gas is pure oxygen.
- 35. The method of claim 34 wherein the step of maintaining the tissue cells in the solution further comprises enhancing proliferation of fibroblastic cells in the tissue cells through exposure of the cells to the dissolved oxygen.
- 36. The method of claim 34 wherein the concentration of dissolved oxygen in solution as it is transferred into the container is above 20 mg/l.
- 37. The method of claim 34 wherein, in the dissolving step, the solution of dissolved gas is supersaturated and has a dissolved oxygen concentration above 40 mg/l.
- 38. The method of claim 28 comprising the step of maintaining the ambient pressure between 0.9 atm and 1.1. atm, and the ambient temperature between 65° F. and 72° F.
PRIORITY CLAIM
[0001] This application claims priority to U.S. Provisional Application No. 60/306,309, filed Jul. 18, 2001, which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60306309 |
Jul 2001 |
US |