Claims
- 1. A process for the aerobic treatment of biosolids solution comprised of the products of waste water treatment and thermophilic bacteria capable of digesting mesophilic bacteria, said process comprising:
(a) thickening the biosolids solution before it first enters a biosolids treatment reactor to a concentration of from about 3% to about 6% solids; (b) mixing a portion of biosolids solution with an oxygen-containing gas stream using a jet aeration device; (c) injecting a mixture of the oxygen-containing gas and biosolids solution into the reactor at a flow rate which introduces sufficient oxygen into the biosolids solution so that the treatment environment is substantially constantly aerobic; (d) controlling the temperature of the biosolids solution by adjusting the amount of shear generated through the jet aeration device; (e) generating a layer of foam on top of the biosolids solution; (f) transferring a portion of the foam from on top of the biosolids solution into the biosolids solution through a foam transfer pipe; and (g) converting at least some of the portion of the foam into liquid during transfer through the foam transfer pipe.
- 2. The method of claim 1, further comprising the step of imparting dynamic mixing action to the portion of foam as the portion of foam passes through the foam transfer pipe.
- 3. A method for controlling foam in a treatment reactor containing a solution and a foam disposed on top of said solution, said treatment reactor having a foam transfer pipe; said method for controlling foam comprising the steps of:
(a) transferring a portion of the foam from on top of the solution into the solution through the foam transfer pipe; and (b) mixing the portion of foam in the foam transfer pipe so that at least some of the portion of foam is converted to liquid while passing through said foam transfer pipe.
- 4. The method of claim 3, wherein said treatment reactor further has a suction source disposed therein and said foam transfer pipe has a top opening and a bottom opening, said top opening opens to the foam and said bottom opening is connected to the suction source; said method further comprising the step of drawing at least some of the portion foam by suction through at least a portion of the foam transfer pipe.
- 5. The method of claim 3, wherein said treatment reactor further has a jet aeration system comprising an air header having one or more openings through which a gas transported through the air header may exit the air header; a liquid header running parallel to and/or concentric with the air header and having one or more openings through which the solution transported through the liquid header may exit the liquid header; an outer nozzle extending from the liquid header and having an opening on its side; an inner nozzle extending from the liquid header and contained within the outer nozzle; one or more air passage connection from the air header to the outer nozzle which connects the air header to the liquid header and provides a closed path for air from the air header to travel to the outer nozzle and enter the outer nozzle through its side opening;
whereby liquid from the liquid header and gas from the air header are mixed in the outer nozzle; and said bottom opening of said foam transfer pipe is connected to said outer nozzle; said method further comprising the step of drawing foam by suction generated by in the outer nozzle through at least a portion of the foam transfer pipe.
- 6. An apparatus for controlling foam in a treatment reactor containing a solution and a foam disposed on top of said solution, said apparatus comprising:
a foam transfer pipe having a top opening, a bottom opening and an internal surface; and a static mixer disposed inside the foam transfer pipe, said static mixer being capable of imparting a dynamic mixing action to the foam.
- 7. The apparatus of claim 6, further comprising:
a reactor having an inlet for the introduction of at least one solution; a jet aeration device affixed to the reactor, said device comprising: a liquid header having one or more openings through which a solution transported through the liquid header may exit the liquid header; an outer nozzle extending from the liquid header and having an opening, wherein said bottom opening of said foam transfer pipe is, fluidly connected to said outer nozzle opening; an inner nozzle extending from the liquid header and contained within the outer nozzle; whereby liquid from the liquid header are mixed in the outer nozzle; a liquid outlet located at or near the bottom of the reactor, which allows a solution to exit the reactor; a motive pump connected to the liquid outlet such that the solution is withdrawn from the reactor by the motive pump; and a motive pump conduit leading from the motive pump to the liquid header such that the solution is pumped through the conduit into the liquid header and forced through the inner nozzle by force of the motive pump.
- 8. The apparatus of claim 6, wherein said static mixer comprises at least one helix-shaped protrusion attached to the internal surface of the foam transfer pipe.
- 9. The apparatus of claim 6, wherein said top opening comprises a conical foam collector.
- 10. The apparatus of claim 6, wherein said foam transfer pipe is circular and has a first diameter and said bottom opening has a second diameter and wherein said foam transfer pipe tapers so that the second diameter is smaller than the first diameter.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 09/019,530, filed on Feb. 5, 1998.
Continuations (1)
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Number |
Date |
Country |
Parent |
09233532 |
Jan 1999 |
US |
Child |
09751540 |
Dec 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09019530 |
Feb 1998 |
US |
Child |
09233532 |
Jan 1999 |
US |