Claims
- 1. A method of removing residual carbon from fly ash, comprising:moving fly ash particles having a residual carbon content into and through a particulate bed within a reactor chamber; heating the fly ash particles to a temperature sufficient to cause combustion of the residual carbon therein; after the fly ash particles have been moved through the particulate bed, conveying the fly ash particles through the heated reactor chamber in a dilute phase for continued combustion of the residual carbon therein; exhausting the fly ash particles in the dilute phase to an ash capture; separating the fly ash particles from air exhausted from the reactor chamber; accumulating the fly ash particles separated from the exhaust air; and discharging the accumulated fly ash particles; wherein the residual carbon is reduced to an amount≦2% of the fly ash.
- 2. The method of claim 1 and wherein discharging the accumulated fly ash particles comprises releasing the fly ash particles for cooling and further processing.
- 3. The method of claim 1 and wherein discharging the accumulated fly ash particles comprises returning the fly ash particles to the particulate bed of the reactor chamber for further combustion of residual carbon therein.
- 4. The method of claim 3 and wherein accumulating the fly ash particles comprises collecting the fly ash particles in a bed and maintaining the collected bed of fly ash particles at a level sufficient to maintain a substantially continuous flow of fly ash particles from the bed of collected fly ash particles to the particulate bed of the reactor chamber as fly ash particles are conveyed from the particulate bed.
- 5. The method of claim 1 and further comprising supplying an air flow to the particulate bed to cause the fly ash particles to move therethrough.
- 6. The method of claim 1 and further comprising exhausting the air separated from fly ash particles to a secondary ash capture and thereafter separating fly ash particles remaining in the exhausted air in the secondary ash capture.
- 7. A system for residual carbon removal from fly ash particles, comprising a reactor having a heat source for generating a heated, turbulent air flow, a dense phase region and a dilute phase region; said dense phase region having a particulate bed comprising a coarse, substantially inert material through which the fly ash particles are passed for heating of the fly ash particles to a temperature sufficient to initiate combustion of the residual carbon within the fly ash particles; and wherein after the fly ash particles pass through said particulate bed, the fly ash particles are conveyed through said dilute phase region by said turbulent air flow to further enhance and promote combustion of residual carbon within the fly ash particles such that the residual carbon is reduced to an amount<2% of the fly ash.
- 8. The system of claim 7 and further comprising an accumulator for collecting particles of fly ash particles exhausted from said reactor to a bed for reintroduction into said particulate bed as a head pressure within said accumulator exceeds a back pressure exerted by said particulate bed as fly ash particles are combusted and conveyed therefrom.
- 9. A system for removal of residual carbon from fly ash, comprising:a dilute phase reactor defining a reactor chamber including a particulate bed through which particles of fly ash are passed, and having a heating source for heating said reactor chamber; wherein as the particles of fly ash are heated, the residual carbon therein is heated to a combustion temperature, with the particles of fly ash thereafter conveyed from said particulate bed through said reactor chamber in a dilute phase; an ash capture connected to said reactor chamber for receiving an exhaust air flow containing particles of fly ash in the dilute phase for collecting fly ash particles from the exhaust air flow; and an accumulator that receives and accumulates the collected particles of fly ash from said ash capture and connected to said reactor for supplying a flow of fly ash particles to said particulate bed; wherein the residual carbon is reduced to-an amount<2% of the fly ash.
- 10. The system of claim 9 and wherein said particulate bed further comprises a bed of coarse particulate material.
- 11. The system of claim 10 and wherein said coarse particulate material is selected from the group consisting essentially of sand, alumina, silica, and inert oxide materials.
- 12. The system of claim 9 and wherein said reactor comprises an elongated reactor body having a first end at which said particulate bed is positioned, and a second end at which an outlet is formed for the exhaust of combusted particles of fly ash from said reactor chamber in the dilute phase.
- 13. The system of claim 9 and wherein said ash capture comprises a separator having an inlet end at which the exhaust air flow containing particles of fly ash is received from said reactor chamber and an outlet end at which particles of fly ash captured from the exhaust air flow are collected for discharge to said accumulator.
- 14. The system of claim 9 and wherein said ash capture comprises a cyclonic separator dropout chamber or filter chamber.
- 15. The system of claim 9 wherein said accumulator comprises a stand-pipe defining an internal chamber in which particles of fly ash are accumulated in a bed of a size sufficient to maintain a feed of particles of fly ash from said stand-pipe to said particulate bed of said reactor as the particles of fly ash are conveyed from said particulate bed in their dilute phase.
- 16. The system of claim 9 and further comprising a conduit extending from and connecting said accumulator to said reactor for passage of the flow of particles of fly ash from said accumulator to said particulate bed, and a valve connected to said conduit for regulating the flow of particles of fly ash to said particulate bed.
- 17. The system of claim 9 and wherein said ash capture comprises a primary ash capture and said system further comprises a secondary ash capture connected to said primary ash capture for receiving and separating fly ash particles from an exhaust air flow from said primary ash capture.
- 18. The system of claim 17 and wherein said secondary ash capture comprises a separator having an inlet through which the exhaust air flow from said primary ash capture is received, an ash outlet, and a separator chamber in which ash is collected from the exhaust air flow for return to said accumulator.
- 19. The system of claim 9 and wherein said heating source comprises a gas-fired burner, electric heater, or other fuel burning heater.
- 20. The system of claim 9 and further comprising a motive air source adjacent said particulate bed for directing a flow of air through said particulate bed.
- 21. The system of claim 20 and further comprising a heat exchanger connected to said motive air source for heating the flow of air introduced through said particulate bed.
- 22. A system for removal of residual carbon from fly ash, comprising:a reactor having a dense phase region, a dilute phase region, and a heat source for heating the fly ash to a temperature sufficient to cause combustion of the residual carbon therewithin; wherein as the fly ash is heated to combust the residual carbon therein such that the residual carbon is reduced to an amount<2% of the fly ash, particles of fly ash are conveyed from the dense phase region of the reactor through the dilute phase region of the reactor in a heated, turbulent air flow; an ash capture connected to the dilute phase region of the reactor for receiving the air flow with the particles of fly ash contained therein from the reactor and separating the particles of fly ash from the air flow; and an accumulator for collecting the particles of fly ash from the ash capture in a bed for reintroduction into the dense phase region of the reactor as a head pressure within the accumulator exceeds a back pressure within the dense phase region of the reactor.
CROSS-REFERENCE TO RELATED APPLICATION
This application claims the benefit of U.S. Provisional Patent Application No. 60/162,938, Filed Nov. 2, 1999.
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/162938 |
Nov 1999 |
US |