Claims
- 1. A method of biodegrading municipal solid waste comprising:
a. providing a quantity of municipal solid waste; b. promoting anaerobic digestion in the quantity of municipal solid waste by methanogenic organisms to produce methane; c. determining when the production of methane from the quantity of municipal solid waste subsides; and d. following step c, promoting aerobic digestion of the quantity of municipal solid waste.
- 2. The method of claim 1 further comprising prior to step b:
a1. determining at least one of the following properties of the municipal solid waste: decomposable municipal solid content, moisture content, nitrogen content, pH, phosphorous content, potassium content, calcium content, magnesium content, chlorine content, sulfur content, iron content, copper content, manganese content, zinc content, molybdenum content, nickel content and vanadium content.
- 3. The method of claim 2 further comprising following step a1. and prior to step b., amending the quantity of municipal solid waste as necessary to bring the at least one property within select parameters.
- 4. The method of claim 1 further comprising monitoring at least one of the following properties of the municipal solid waste during step b.: decomposable municipal solid waste content, moisture content, nitrogen content, pH, phosphorous content, potassium content, calcium content, magnesium content, chlorine content, sulfur content, iron content, copper content, manganese content, zinc content, molybdenum content, nickel content and vanadium content.
- 5. The method of claim 4 further comprising amending the quantity of municipal solid waste as necessary to bring the at least one property within select parameters.
- 6. The method of claim 1 further comprising during step b., monitoring the pH and adjusting the pH as necessary to maintain the pH high enough to promote growth of methanogenic organisms.
- 7. The method of claim 6 wherein the pH is maintained between 6.8 and 7.4.
- 8. The method of claim 1 further comprising:
b 1. collecting the methane produced in step b.
- 9. The method of claim 8 wherein step b1 is performed by providing a gas collection and delivery system in operative association with the quantity of municipal solid waste, the method further comprising:
b2. monitoring the content of the gas collected in the gas collection and delivery system and adjusting the rate of gas collection as necessary to maximize methane collection.
- 10. The method of claim 1 further comprising providing a leachate collection and recirculation system for collecting leachate from the quantity of municipal solid waste and circulating the leachate back to the quantity of municipal solid waste during steps b and d.
- 11. The method of claim 10 further comprising supplementing the leachate with liquid as necessary to maintain the moisture content of the quantity of municipal solid waste at at least a field capacity of the quantity of municipal solid waste.
- 12. The method of claim 5 fturther comprising a leachate collection and recirculation system for collecting leachate from the quantity of municipal solid waste and recirculating the leachate back to the quantity of municipal solid waste during steps b and d, the quantity of municipal solid waste being amended by adding the amendment to the leachate recirculated back to the quantity of municipal solid waste.
- 13. A method of biodegrading municipal solid waste comprising:
a. providing a bioreactor cell comprising a leachate collection and recirculation system and a gas collection and delivery system; b. providing a quantity of municipal solid waste; c. determining at least one of the following properties of the quantity of municipal solid waste: decomposable municipal solid content, moisture content, nitrogen content, pH, phosphorous content, potassium content, calcium content, magnesium content, chlorine content, sulfur content, iron content, copper content, manganese content, zinc content, molybdenum content, nickel content and vanadium content; d. amending the quantity of municipal solid waste a necessary to bring the at least one property within select parameters; e. loading the quantity of municipal solid waste into the bioreactor cell in operative association with the leachate collection and recirculation system and the gas collection and delivery system; f. promoting anaerobic digestion in the quantity of municipal solid waste by methanogenic organisms to produce methane; g. recirculating leachate collected by leachate collection and recirculation system to the quantity of municipal solid waste; h. supplementing the liquid of the leachate collection and recirculation system as necessary to maintain the liquid content of the quantity of municipal solid waste at its field capacity; i. collecting the methane produced using the gas collection and delivery system; j. monitoring the collected methane; and k. upon determining that the production of methane from the quantity of municipal solid waste has subsided, promoting aerobic digestion of the quantity of municipal solid waste by providing air to the quantity of municipal solid waste using the gas collection and delivery system.
- 14. The method of claim 13 further comprising in step k, monitoring the temperature of gas exhausted from the quantity of municipal solid waste and maintaining the temperature within select parameters by varying the quantity of air provided.
- 15. The method of claim 13 wherein step d. is performed by supplementing the liquid of the leachate collection and recirculation system.
- 16. A solid waste management system for disposal of solid waste comprising:
a. providing a plurality of bioreactor cells, each cell comprising a leachate collection and recirculation system and a gas collection and delivery system; b. providing a quantity of one of a source separated solid waste and a mixed solid waste to one of the bioreactor cells in operative association with the leachate collection and recirculation system and the gas collection and delivery system; c. promoting anaerobic digestion in the quantity of municipal solid waste by methanogenic organisms to produce methane; d. recycling leachate to the quantity of the one of a source separated solid waste and a mixed solid waste using the leachate collection and recirculation system; e. supplementing the liquid of the leachate collection and recirculation system as necessary to maintain the liquid content of the quantity of municipal solid waste at its field capacity; f. collecting the methane produced using the gas collection and delivery system; g. monitoring the collected methane; and h. upon determining that the production of methane from the quantity of municipal solid waste has subsided, promoting aerobic digestion of the quantity of municipal solid waste by providing air to the quantity of organic waste using the gas collection and delivery system.
- 17. The system for disposal of solid waste of claim 16 further comprising providing a landfill in proximity to the plurality of bioreactor cells and depositing biodegraded mixed solid waste in the landfill.
- 18. The system for disposal of solid waste of claim 16 further comprising providing a repository for biodegraded source separated solid waste in proximity to the plurality of bioreactor cells and depositing biodegraded source separated solids waste in the repository.
- 19. The system for disposal of solid waste of claim 16 further comprising maintaining each of the plurality of cells in one of a loading, anaerobic, aerobic, reclaim or empty mode.
- 20. The system for disposal of solid waste of claim 16, wherein the leachate collection and recirculation system comprises leachate collection pipes underlying the quantity of one of a source separated solid waste and a mixed solid waste, the system for disposal of solid waste further comprising a permeable pavement layer overlying the leachate collection pipes for supporting the quantity of waste during biodegradation.
- 21. A reclaimable bioreactor landfill cell comprising:
a bottom lining configured to direct leachate deposited on the bottom lining to at least one collection area; a leachate drainage pipe operatively associated with each collection area to receive leachate deposited on the bottom lining; and a porous pavement layer overlying the leachate drainage pipe.
- 22. The reclaimable bioreactor landfill cell of claim 21 further comprising:
a porous drainage media between the bottom lining and the porous pavement layer, each leachate drainage pipe being imbedded in the porous drainage media.
- 23. The reclaimable bioreactor landfill cell of claim 21 further comprising:
a plurality of perforated distribution pipes in fluid communication with each leachate drainage pipe to distribute leachate from at least one collection area to municipal solid waste resting upon the porous pavement layer.
- 24. The reclaimable bioreactor landfill cell of claim 22 wherein the porous pavement layer is made of asphalt or cement concrete, the asphalt or cement concrete including a plurality of drains in communication between a top surface of the asphalt and the porous drainage media.
- 25. The reclaimable bioreactor landfill cell of claim 22 wherein the porous pavement layer is made of roller-compacted concrete as part of a pavement system reinforced with high-strength geo-composites.
- 26. The reclaimable bioreactor landfill cell of claim 22 wherein the porous pavement layer is configured to be removable from the porous drainage media to provide access to the bottom lining.
RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Patent Application Serial No. 60/457,500, filed Mar. 24, 2003, entitled “Reclaimable Hybrid Bioreactor Landfill.”
Provisional Applications (1)
|
Number |
Date |
Country |
|
60457500 |
Mar 2003 |
US |