Fuel combustion system with a perforated reaction holder
A combustion system such as a furnace or boiler includes a perforated reaction holder configured to hold a combustion reaction that produces very low oxides of nitrogen (NOx).
1. A combustion system, comprising:
a fuel and oxidant source configured to output fuel and oxidant into a combustion volume;
a perforated reaction holder disposed in the combustion volume and including reticulated fibers that define a plurality of perforations aligned to receive a mixture of the fuel and the oxidant from the fuel and oxidant source and to support a majority of a combustion reaction of the fuel and the oxidant within the perforations; and
a heating apparatus configured to cause heating of the perforated reaction holder, the heating apparatus comprising a flame holder configured to support a flame disposed to heat the perforated reaction holder;
wherein the perforated reaction holder is configured to support the combustion reaction supported by the fuel and oxidant mixture in the plurality of perforations after the heating apparatus preheats the perforated reaction holder.
2. The combustion system of claim 1 , further comprising:
a control circuit operatively coupled to the heating apparatus, the control circuit being configured to cause the heating apparatus to operate.
3. The combustion system of claim 2 , further comprising:
a heat sensor operatively coupled to the control circuit, the heat sensor being configured to detect a temperature of the perforated reaction holder;
wherein the control circuit is configured to control the heating apparatus responsive to input from the heat sensor.
4. The combustion system of claim 2 , wherein the control circuit is configured to cause the heating apparatus to maintain the temperature of the perforated reaction holder.
5. The combustion system of claim 2 , further comprising:
a fuel control valve configured to control a flow of fuel from a fuel source to the fuel and oxidant source, the fuel control valve being operatively coupled to the control circuit, wherein the control circuit is configured to control the heating apparatus to heat the perforated reaction holder to an operating temperature prior to controlling the fuel control valve to cause output of the fuel and oxidant mixture to the perforated reaction holder.
6. The combustion system of claim 2 , wherein the heating apparatus further comprises:
a flame holder actuator operatively coupled to the control circuit and the flame holder.
7. The combustion system of claim 6 , wherein the control circuit is configured to cause the flame holder actuator to cause the flame holder to not hold the flame when the perforated flame holder is at an operating temperature.
8. The combustion system of claim 1 , wherein the heating apparatus is operable as a start-up apparatus.
9. The combustion system of claim 8 , wherein the start-up apparatus includes the flame holder, and flame holder is configured to temporarily hold the flame disposed to output heat to the perforated reaction holder.
10. The combustion system of claim 9 , wherein the flame holder includes a bluff body configured to cause vortices to circulate heat to maintain the start up flame.
11. The combustion system of claim 9 , wherein the flame holder is configured to be mechanically retracted to a position that does not hold the flame after the perforated reaction holder has reached an operating temperature.
12. The combustion system of claim 10 , further comprising a flame charger disposed to output charges to the flame;
wherein the start-up apparatus includes a conductive body configured to attract the charges from the start-up flame to hold the start-up flame for outputting heat to the perforated reaction holder.
13. The combustion system of claim 1 , wherein the heating apparatus includes an electrical discharge igniter configured to output a pulsed ignition to the fuel and oxidant mixture.
14. The combustion system of claim 1 , wherein the heating apparatus includes a pilot flame apparatus.
15. The combustion system of claim 1 , wherein the reticulated fibers are reticulated ceramic fibers.
16. The combustion system of claim 15 , wherein the perforations are branching perforations that weave around and through the reticulated fibers.
17. A combustion system, comprising:
a fuel and oxidant source configured to output fuel and oxidant into a combustion volume;
a perforated reaction holder disposed in the combustion volume and including reticulated fibers that define a plurality of perforations aligned to receive a mixture of the fuel and the oxidant from the fuel and oxidant source and to support a combustion reaction of the fuel and the oxidant within the perforations;
a heating apparatus configured to cause heating of the perforated reaction holder;
a control circuit operatively coupled to the heating apparatus, the control circuit being configured to cause the heating apparatus to operate; and
a fuel control valve configured to control a flow of fuel from a fuel source to the fuel and oxidant source, the fuel control valve being operatively coupled to the control circuit, wherein the control circuit is configured to control the heating apparatus to heat the perforated reaction holder to an operating temperature prior to controlling the fuel control valve to cause output of the fuel and oxidant mixture to the perforated reaction holder;
wherein the perforated reaction holder is configured to support the combustion reaction supported by the fuel and oxidant mixture in the plurality of perforations after the heating apparatus preheats the perforated reaction holder.
18. A combustion system, comprising:
a fuel and oxidant source configured to output fuel and oxidant into a combustion volume;
a perforated reaction holder disposed in the combustion volume and including reticulated fibers that define a plurality of perforations aligned to receive a mixture of the fuel and the oxidant from the fuel and oxidant source and to support a combustion reaction of the fuel and the oxidant within the perforations; and
a heating apparatus configured to cause heating of the perforated reaction holder, the heating apparatus being operable as a start-up apparatus and including a start-up flame holder configured to temporarily hold a start-up flame disposed to output heat to the perforated reaction holder, the start-up flame holder including a bluff body configured to cause vortices to circulate heat to maintain the start-up flame,
wherein the perforated reaction holder is configured to support the combustion reaction supported by the fuel and oxidant mixture in the plurality of perforations after the heating apparatus preheats the perforated reaction holder.
19. The combustion system of claim 18 , wherein the start-up flame holder is configured to be mechanically retracted to a position that does not hold the start-up flame after the perforated reaction holder has reached an operating temperature.
20. The combustion system of claim 18 , further comprising a flame charger disposed to output charges to the start-up flame;
wherein the start-up apparatus includes a conductive body configured to attract the charges from the start-up flame to hold the start-up flame for outputting heat to the perforated reaction holder.