Claims
- 1. A system for treating waste that has at least a fluid component and contains energetics, comprising:
a first batch reactor that provides at least a first treated fluid output, wherein at least some solids that may be suspended in said waste settle as sludge, and wherein said waste is de-oxygenated, said de-oxygenation facilitated by dispersing nitrogen gas within said first batch reactor; a second batch reactor, operably communicating with said first batch reactor, for treating said first fluid output and providing at least a second treated fluid output, wherein said second batch reactor employs anaerobic microorganisms whose activity is enhanced by dispersing hydrogen gas within said second batch reactor; and a third batch reactor in operable communication with said second batch reactor for treating said second fluid output and providing at least a third treated fluid output that may be reused, wherein said third batch reactor employs aerobic microorganisms whose activity is enhanced by dispersing within said third reactor a gas having at least some oxygen.
- 2. The system of claim 1 further comprising a sub-system for maintaining a pre-specified temperature to include at least one heat exchanger in operable communication with said waste stream,
- 3. The system of claim 1 further comprising at least one pump.
- 4. The system of claim 1 in which said microorganisms locate on a carrier, said carrier selected from the group comprising: sludges, biofilms resident upon media having a greatest dimension of less than 10 mm, biofilms resident upon a porous contactor of approximately 5 mm diameter and 1-2 mm thickness, biofilms resident on activated carbon, and combinations thereof.
- 5. The system of claim 1 in which at least one of said batch reactors incorporates a paddle stirrer.
- 6. The system of claim 1 in which at least one of said batch reactors further comprises a valve for accessing sludge therein.
- 7. The system of claim 1 further comprising at least one source of additives, said at least one source of additives operably communicating with at least one of said batch reactors.
- 8. The system of claim 7 in which said additives are selected from the group comprising: nitrogen gas, hydrogen gas, carbon dioxide gas, oxygen gas, forced ambient air, organic carbon, carbon compounds, nutrients, micronutrients, acids, bases, flocculating agents, anaerobic microorganisms, aerobic microorganisms, and combinations thereof.
- 9. The system of claim 8 in which at least one of said nitrogen, hydrogen, carbon dioxide, and oxygen gasses is distributed within at least one of said batch reactors via at least one bubble diffuser.
- 10. The system of claim 8 in which said third batch reactor comprises a tank that may be open to the atmosphere, wherein said third batch reactor operably communicates with said at least one additive source, said additive in said source comprising oxygen gas.
- 11. The system of claim 8 in which said third batch reactor comprises a tank that may be open to the atmosphere,
- 12. The system of claim 8 in which said first and second batch reactors are enclosed, each incorporating at least one breather,
- 13. The system of claim 12 in which said second batch reactor further operably communicates with said at least one additive source, said additive in said source comprising carbon dioxide gas.
- 14. The system of claim 1 in which said batch reactors are each equipped with at least one sensor.
- 15. The system of claim 14 in which said at least one sensor is selected from the group comprising: temperature sensors, pH sensors, dissolved oxygen sensors, pressure sensors, fluid level sensors, turbidity meters, electrolytic sensors, flow sensors, and combinations thereof.
- 16. The system of claim 14 further comprising at least one controller operably communicating with at least said at least one sensor.
- 17. The system of claim 16 in which said at least one controller incorporates at least one microprocessor.
- 18. The system of claim 14 further comprising at least one display for said at least one sensor.
- 19. A method for treating waste containing energetics, said waste having a fluid component, comprising:
de-oxygenating said waste to a pre-specified level in a first batch reactor via dispersion of nitrogen gas in said first batch reactor; transferring a first fluid portion of said de-oxygenated waste to a second batch reactor; exposing said transferred first fluid portion to anaerobic microorganisms whose activity is enhanced by dispersion of hydrogen gas within said second batch reactor, wherein said anaerobic microorganisms decompose at least a portion of said energetics in said transferred first fluid portion; transferring a second fluid comprising said fluid remaining after said exposure in said second batch reactor to a third batch reactor; exposing said transferred second fluid portion to aerobic microorganisms whose activity is enhanced by dispersion of a gas comprising at least some oxygen;, wherein said transferred second fluid portion is polished; and transferring a third fluid portion comprising said fluid remaining upon completion of said polishing, wherein said transferred third fluid portion may be made available for reuse.
- 20. The method of claim 19 in which said pre-specified level represents a dissolved oxygen (DO) content of less than approximately 0.1 mg/l.
- 21. The method of claim 19 further comprising settling said waste in at least one said batch reactor and collecting sludge resultant from said settling.
- 22. The method of claim 19 further comprising administering processing within at least one of said batch reactors via a controller.
- 23. The method of claim 22 in which said controller is implemented via at least one microprocessor.
- 24. The method of claim 22 further inputting information from at least one sensor associated with at least one of said batch reactors to said controller.
- 25. The method of claim 24 in which said at least one sensor is selected from the group comprising: temperature sensors, pH sensors, dissolved oxygen sensors, pressure sensors, fluid level sensors, turbidity meters, electrolytic sensors, flow sensors, and combinations thereof.
- 26. The method of claim 19 further comprising dispensing at least one additive to at least one of said batch reactors.
- 27. The method of claim 26 in which said at least one additive is selected from the group comprising: hydrogen gas, nitrogen gas, oxygen gas, carbon dioxide gas, forced air, organic carbon, carbon compounds, nutrients, micronutrients, acids, bases, flocculating agents, anaerobic microorganisms, aerobic microorganisms, and combinations thereof.
- 28. The method of claim 27 further comprising dispensing said gasses via at least one bubble diffuser in at least one of said batch reactors.
- 29. The method of claim 27 further comprising suspending said microorganisms in a liquid.
- 30. The method of claim 27 further comprising locating said microorganisms on a carrier, said carrier selected from the group comprising: sludges, biofilms resident upon media having a greatest dimension of less than 10 mm, biofilms resident upon a thin porous contactor of approximately 5 mm diameter and 1-2 mm thickness, biofilms resident on activated carbon, and combinations thereof.
- 31. A facility for processing products containing energetics at which facility a waste that has at least a fluid component and contains energetics is created, said fluid component treated for safe disposal by a system comprising:
a first batch reactor that provides at least a first treated fluid output, wherein at least some solids that may be suspended in said waste settle as sludge, and wherein said waste is de-oxygenated, said de-oxygenation facilitated by dispersing nitrogen gas within said first batch reactor; a second batch reactor, operably communicating with said first batch reactor, for treating said first fluid output and providing at least a second treated fluid output, wherein said second batch reactor employs anaerobic microorganisms whose activity is enhanced by dispersing hydrogen gas within said second batch reactor; and a third batch reactor in operable communication with said second batch reactor for treating said second fluid output and providing at least a third treated fluid output that may be reused, wherein said third batch reactor employs aerobic microorganisms whose activity is enhanced by dispersing within said third reactor a gas having at least some oxygen.
- 32. A method of processing material, a consequence of which method entrains energetics in a waste having a fluid component, said fluid component being treated for safe disposal by:
de-oxygenating said waste to a pre-specified level in a first batch reactor via dispersion of nitrogen gas in said first batch reactor; transferring a first fluid portion of said de-oxygenated waste to a second batch reactor; exposing said transferred first fluid portion to anaerobic microorganisms whose activity is enhanced by dispersion of hydrogen gas within said second batch reactor, wherein said anaerobic microorganisms decompose at least a portion of said energetics in said transferred first fluid portion; transferring a second fluid portion of said fluid remaining after said exposure in said second batch reactor to a third batch reactor; exposing said transferred second fluid portion to aerobic microorganisms whose activity is enhanced by dispersion of a gas comprising at least some oxygen;, wherein said transferred second fluid portion is polished; and transferring a third fluid portion comprising said fluid remaining upon completion of said polishing, wherein said transferred third fluid portion may be made available for reuse.
STATEMENT OF GOVERNMENT INTEREST
[0001] The invention described herein may be manufactured and used by or for the Government of the United States of America for governmental purposes without the payment of any royalties thereon or therefor.