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(11) | EP 4 283 196 A1 |
(12) | EUROPEAN PATENT APPLICATION |
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(54) | CONTROLLING A MIXING RATIO |
(57) Controlling a mixing ratio. A method of controlling a mixing ratio of combustion
air and a gaseous fuel comprising more than twenty percent of hydrogen gas, wherein
the combustion air and the gaseous fuel are combusted together in a combustion chamber
(2), the method comprising the steps: a first optical sensor (8) recording a first
raw signal directly originating from a flame (1) inside the combustion chamber (2),
producing a first sensor signal from the first raw signal, and sending the first sensor
signal to a controller (14); the controller (14) determining a first signal strength
of the first sensor signal; after recording the first raw signal, changing a supply
of combustion air and/or of gaseous fuel to the combustion chamber (2); the at least
one first optical sensor (8) recording a second raw signal directly originating from
the flame (1) inside the combustion chamber (2).
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Background
Summary
Brief description of the drawings
FIG 1 schematically shows a flame inside a combustion appliance and a sensor for recording signals caused by the flame.
FIG 2 shows a spectral sensitivity and/or a relative spectral responsivity of at least one first sensor plotted along an optical wavelength.
FIG 3 illustrates a combustion apparatus having a controller and having at least one first sensor for flame monitoring.
Detailed description
at least one first optical sensor (8) recording a first raw signal directly originating from a flame (1) inside the combustion chamber (2), producing a first sensor signal from the first raw signal, and sending the first sensor signal to a controller (14);
the controller (14) determining a first signal strength of the first sensor signal;
after recording the first raw signal, changing a supply of the combustion air (12) and/or of the gaseous fuel (20) to the combustion chamber (2);
after the change in supply, the at least one first optical sensor (8) recording a second raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a second sensor signal from the second raw signal, and sending the second sensor signal to the controller (14);
the controller (14) determining a second signal strength of the second sensor signal;
the controller (14) determining a change in signal strength as a function of the first signal strength and as a function of the second signal strength, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20); and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength.
the at least one first optical sensor (8) being a silicon carbide (SiC) diode having a peak in spectral sensitivity and/or a peak in a relative spectral responsivity (9) at optical wavelengths between 260 nanometers and 290 nanometers, the silicon carbide (SiC) diode recording the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 338 nanometers; and
after the change in supply, the silicon carbide (SiC) diode recording the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 338 nanometers.
the flame (1) inside the combustion chamber (2) emitting the first raw signal having a first spectral density;
the at least one first optical sensor (8) recording the first raw signal directly originating from the flame (1) inside the combustion chamber (2) such that the first raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers substantially the same first spectral density as the first spectral density of the first raw signal as emitted by the flame (1);
after the change in supply, the flame (1) inside the combustion chamber (2) emitting the second raw signal having a second spectral density; and
the at least one first optical sensor (8) recording the second raw signal directly originating from the flame (1) inside the combustion chamber (2) such that the second raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers substantially the same second spectral density as the second spectral density of the second raw signal as emitted by the flame (1).
at least one second sensor (4, 5) within a flame zone of the combustion chamber (2) recording a third electric signal, producing a third sensor signal from the third electric signal, and sending the third sensor signal to the controller (14);
the controller (14) determining a third signal strength of the third sensor signal;
after the change in supply, the at least one second sensor (4, 5) within the flame zone of the combustion chamber (2) recording a fourth electric signal, producing a fourth sensor signal from the fourth electric signal, and sending the fourth sensor signal to the controller (14);
the controller (14) determining a fourth signal strength of the fourth sensor signal; and
the controller (14) determining the change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20).
at least one second sensor (4, 5) within a flame zone of the combustion chamber (2) recording a third electric signal, producing a third sensor signal from the third electric signal, and sending the third sensor signal to the controller (14);
the controller (14) determining a third signal strength of the third sensor signal;
after the change in supply, the at least one second sensor (4, 5) within the flame zone of the combustion chamber (2) recording a fourth electric signal, producing a fourth sensor signal from the fourth electric signal, and sending the fourth sensor signal to the controller (14);
the controller (14) determining a fourth signal strength of the fourth sensor signal;
the controller (14) calculating a first ratio r1 between the second signal strength and the first signal strength and calculating a second ratio r2 between the fourth signal strength and the third signal strength; and
the controller (14) determining the change in signal strength as a function of the first ratio r1 and the second ratio r2, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20).
starting a combustion inside the combustion chamber (2) with an excess supply in the combustion air (12);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, throttling the excess supply of the combustion air (12);
after the throttling, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further throttling the excess supply of the combustion air (12);
after the further throttling, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further throttling the excess supply of the combustion air (12);
after the yet further throttling, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining an inflection point as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
starting a combustion inside the combustion chamber (2) with a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, throttling the supply of the combustion air (12);
after the throttling, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further throttling the supply of the combustion air (12);
after the further throttling, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further throttling the supply of the combustion air (12);
after the yet further throttling, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal; the controller (14) determining an inflection point as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the enrichment, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the further enrichment, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the yet further enrichment, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining an inflection point as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
starting a combustion inside the combustion chamber (2) with an excess supply in the combustion air (12);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, throttling the excess supply of the combustion air (12);
after the throttling, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further throttling the excess supply of the combustion air (12);
after the further throttling, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further throttling the excess supply of the combustion air (12);
after the yet further throttling, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining a maximum value as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the maximum value.
starting a combustion inside the combustion chamber (2) with a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, throttling the supply of the combustion air (12);
after the throttling, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further throttling the supply of the combustion air (12);
after the further throttling, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further throttling the supply of the combustion air (12);
after the yet further throttling, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal; the controller (14) determining a maximum value as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the maximum value.
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the enrichment, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the further enrichment, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the yet further enrichment, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining a maximum value as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the maximum value.
record a first raw signal directly originating from a flame (1) inside the combustion chamber (2), produce a first sensor signal from the first raw signal, and send the first sensor signal to the controller (14);
the controller (14) being configured to:
determine a first signal strength of the first sensor signal;
after recording the first raw signal, send a first actuation signal to the at least one actuator (13, 19), the first actuation signal causing the at least one actuator (13, 19) to change the supply of the combustion air (12) and/or of the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the change in supply, record a second raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a second sensor signal from the second raw signal, and send the second sensor signal to the controller (14);
determine a second signal strength of the second sensor signal;
determine a change in signal strength as a function of the first signal strength and as a function of the second signal strength, the change in signal strength being caused by the change in supply; and
produce a second actuation signal as a function of the change in signal strength and send the second actuation signal to the at least one actuator (13, 19), the second actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) to the combustion chamber (2).
produce a first signal strength from the first sensor signal; and
produce a second signal strength from the second sensor signal.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 338 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 338 nanometers.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 338 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 338 nanometers.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 357 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 357 nanometers.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 357 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 357 nanometers.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 390 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 390 nanometers.
record the first raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to an optical wavelength λ10% of 390 nanometers; and
after the change in supply, record the second raw signal directly originating from the flame (1) inside the combustion chamber (2) at least up to the optical wavelength λ10% of 390 nanometers.
in response to the flame (1) inside the combustion chamber (2) emitting the first raw signal having a first spectral density, record the first raw signal such that the first raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers substantially the same first spectral density as the first spectral density of the first raw signal as emitted by the flame (1); and
in response to the flame (1) inside the combustion chamber (2) emitting the second raw signal having a second spectral density, record the second raw signal such that the second raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers substantially the same second spectral density as the second spectral density of the second raw signal as emitted by the flame (1).
in response to the flame (1) inside the combustion chamber (2) emitting the first raw signal having a first spectral density, record the first raw signal such that the first raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers the same first spectral density as the first spectral density of the first raw signal as emitted by the flame (1);
in response to the flame (1) inside the combustion chamber (2) emitting the second raw signal having a second spectral density, record the second raw signal such that the second raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 260 nanometers and 400 nanometers the same second spectral density as the second spectral density of the second raw signal as emitted by the flame (1).
in response to the flame (1) inside the combustion chamber (2) emitting the first raw signal having a first spectral density, record the first raw signal such that the first raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 270 nanometers and 340 nanometers substantially the same first spectral density as the first spectral density of the first raw signal as emitted by the flame (1); and
in response to the flame (1) inside the combustion chamber (2) emitting the second raw signal having a second spectral density, record the second raw signal such that the second raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 270 nanometers and 340 nanometers substantially the same second spectral density as the second spectral density of the second raw signal as emitted by the flame (1).
in response to the flame (1) inside the combustion chamber (2) emitting the first raw signal having a first spectral density, record the first raw signal such that the first raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 270 nanometers and 340 nanometers the same first spectral density as the first spectral density of the first raw signal as emitted by the flame (1); and
in response to the flame (1) inside the combustion chamber (2) emitting the second raw signal having a second spectral density, record the second raw signal such that the second raw signal as recorded by the at least one first optical sensor (8) has at optical wavelengths between 270 nanometers and 340 nanometers the same second spectral density as the second spectral density of the second raw signal as emitted by the flame (1).
record a third electric signal, produce a third sensor signal from the third electric signal, and send the third sensor signal to the controller (14);
the controller (14) being configured to:
determine a third signal strength of the third sensor signal;
the at least one second sensor (4, 5) being configured to:
after the change in supply, record a fourth electric signal, produce a fourth sensor
signal from the fourth electric signal, and send the fourth sensor signal to the controller
(14);
the controller (14) being configured to:
determine a fourth signal strength of the fourth sensor signal; and
determine the change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20).
produce a third signal strength from the third sensor signal; and
produce a fourth signal strength from the fourth sensor signal.
determine a first difference between the first signal strength and the second signal strength;
determine a second difference between the third signal strength and the fourth signal strength; and
determine the change in signal strength as a function of the first difference and as a function of the second difference.
determine a first difference between the first signal strength and the second signal strength;
determine a second difference between the third signal strength and the fourth signal strength;
determine a first absolute value of the first difference;
determine a second absolute value of the second difference; and
determine the change in signal strength as a function of the first absolute value and as a function of the second absolute value.
determine a first difference between the first signal strength and the second signal strength;
determine a second difference between the third signal strength and the fourth signal strength;
determine a first square value of the first difference;
determine a second square value of the second difference; and
determine the change in signal strength as a function of the first square value and as a function of the second square value.
send a third actuation signal to the at least one actuator (13, 19), the third actuation signal causing an excess supply in the combustion air (12);
the at least one first optical sensor (8) being configured to:
after sending the third actuation signal, record a fifth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a fifth sensor signal
from the fifth raw signal, and send the fifth sensor signal to the controller (14);
the controller (14) being configured to:
determine a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, send a fourth actuation signal to the at least one actuator (13, 19), the fourth actuation signal causing the at least one actuator (13, 19) to throttle the excess supply of the combustion air (12);
the at least one first optical sensor (8) being configured to:
after the fourth actuation signal, record a sixth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a sixth sensor signal
from the sixth raw signal, and send the sixth sensor signal to the controller (14);
the controller (14) being configured to:
determine a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, send a fifth actuation signal to the at least one actuator (13, 19), the fifth actuation signal causing the at least one actuator (13, 19) to throttle the excess supply of the combustion air (12) further;
the at least one first optical sensor (8) being configured to:
after the fifth actuation signal, record a seventh raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a seventh sensor signal
from the seventh raw signal, and send the seventh sensor signal to the controller
(14);
the controller (14) being configured to:
determine a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, send a sixth actuation signal to the at least one actuator (13, 19), the sixth actuation signal causing the at least one actuator (13, 19) to throttle the excess supply of the combustion air (12) yet further;
the at least one first optical sensor (8) being configured to:
after the sixth actuation signal, record an eighth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce an eighth sensor signal
from the eighth raw signal, and send the eighth sensor signal to the controller (14);
the controller (14) being configured to:
determine an eighth signal strength of the eighth sensor signal;
determine an inflection point as a function of the fifth to eighth signal strengths; and
produce a seventh actuation signal and send the seventh actuation signal to the at least one actuator (13, 19), the seventh actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
send a third actuation signal to the at least one actuator (13, 19), the third actuation signal causing a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after sending the third actuation signal, record a fifth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a fifth sensor signal
from the fifth raw signal, and send the fifth sensor signal to the controller (14);
the controller (14) being configured to:
determine a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, send a fourth actuation signal to the at least one actuator (13, 19), the fourth actuation signal causing the at least one actuator (13, 19) to throttle the supply of the combustion air (12);
the at least one first optical sensor (8) being configured to:
after the fourth actuation signal, record a sixth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a sixth sensor signal
from the sixth raw signal, and send the sixth sensor signal to the controller (14);
the controller (14) being configured to:
determine a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, send a fifth actuation signal to the at least one actuator (13, 19), the fifth actuation signal causing the at least one actuator (13, 19) to throttle the supply of the combustion air (12) further;
the at least one first optical sensor (8) being configured to:
after the fifth actuation signal, record a seventh raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a seventh sensor signal
from the seventh raw signal, and send the seventh sensor signal to the controller
(14);
the controller (14) being configured to:
determine a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, send a sixth actuation signal to the at least one actuator (13, 19), the sixth actuation signal causing the at least one actuator (13, 19) to throttle the supply of the combustion air (12) yet further;
the at least one first optical sensor (8) being configured to:
after the sixth actuation signal, record an eighth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce an eighth sensor signal
from the eighth raw signal, and send the eighth sensor signal to the controller (14);
the controller (14) being configured to:
determine an eighth signal strength of the eighth sensor signal;
determine an inflection point as a function of the fifth to eighth signal strengths; and
produce a seventh actuation signal and send the seventh actuation signal to the at least one actuator (13, 19), the seventh actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
send a third actuation signal to the at least one actuator (13, 19), the third actuation signal causing a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after sending the third actuation signal, record a fifth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a fifth sensor signal
from the fifth raw signal, and send the fifth sensor signal to the controller (14);
the controller (14) being configured to:
determine a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, send a fourth actuation signal to the at least one actuator (13, 19), the fourth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the fourth actuation signal, record a sixth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a sixth sensor signal
from the sixth raw signal, and send the sixth sensor signal to the controller (14);
the controller (14) being configured to:
determine a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, send a fifth actuation signal to the at least one actuator (13, 19), the fifth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) further;
the at least one first optical sensor (8) being configured to:
after the fifth actuation signal, record a seventh raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a seventh sensor signal
from the seventh raw signal, and send the seventh sensor signal to the controller
(14);
the controller (14) being configured to:
determine a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, send a sixth actuation signal to the at least one actuator (13, 19), the sixth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) yet further;
the at least one first optical sensor (8) being configured to:
after the sixth actuation signal, record an eighth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce an eighth sensor signal
from the eighth raw signal, and send the eighth sensor signal to the controller (14);
the controller (14) being configured to:
determine an eighth signal strength of the eighth sensor signal;
determine an inflection point as a function of the fifth to eighth signal strengths; and
produce a seventh actuation signal and send the seventh actuation signal to the at least one actuator (13, 19), the seventh actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
Reference numerals
1 flame
2 combustion chamber
3 feed conduit
4 ionisation electrode
5 tip
6 frame
7 nozzle
8 sensor
9 spectral sensitivity and/or a relative spectral responsivity
10 optical wavelength in nanometers
11 combustion apparatus
12 air supply, combustion air
13 fan
14 controller
15 signal line
16 signal line
17 sensor
18 signal line
19 valve
20 fuel, gaseous fuel
21 signal line
22 sensor
23 signal line
24 signal line
at least one first optical sensor (8) recording a first raw signal directly originating from a flame (1) inside the combustion chamber (2), producing a first sensor signal from the first raw signal, and sending the first sensor signal to a controller (14);
the controller (14) determining a first signal strength of the first sensor signal;
after recording the first raw signal, changing a supply of the combustion air (12) and/or of the gaseous fuel (20) to the combustion chamber (2);
after the change in supply, the at least one first optical sensor (8) recording a second raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a second sensor signal from the second raw signal, and sending the second sensor signal to the controller (14);
the controller (14) determining a second signal strength of the second sensor signal;
the controller (14) determining a change in signal strength as a function of the first signal strength and as a function of the second signal strength, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20); and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength;
characterised in that the method further comprises the steps of:
at least one second sensor (4, 5) within a flame zone of the combustion chamber (2) recording a third electric signal, producing a third sensor signal from the third electric signal, and sending the third sensor signal to the controller (14);
the controller (14) determining a third signal strength of the third sensor signal;
after the change in supply, the at least one second sensor (4, 5) within the flame zone of the combustion chamber (2) recording a fourth electric signal, producing a fourth sensor signal from the fourth electric signal, and sending the fourth sensor signal to the controller (14);
the controller (14) determining a fourth signal strength of the fourth sensor signal; and
the controller (14) determining the change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20).
starting a combustion inside the combustion chamber (2) with a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the enrichment, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the further enrichment, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the yet further enrichment, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining an inflection point as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
record a first raw signal directly originating from a flame (1) inside the combustion chamber (2), produce a first sensor signal from the first raw signal, and send the first sensor signal to the controller (14);
the controller (14) being configured to:
determine a first signal strength of the first sensor signal;
after recording the first raw signal, send a first actuation signal to the at least one actuator (13, 19), the first actuation signal causing the at least one actuator (13, 19) to change the supply of the combustion air (12) and/or of the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the change in supply, record a second raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a second sensor signal from the second raw signal, and send the second sensor signal to the controller (14);
determine a second signal strength of the second sensor signal;
determine a change in signal strength as a function of the first signal strength and as a function of the second signal strength, the change in signal strength being caused by the change in supply; and
produce a second actuation signal as a function of the change in signal strength and send the second actuation signal to the at least one actuator (13, 19), the second actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) to the combustion chamber (2);
characterised in that
the apparatus (11) additionally comprises at least one second sensor (4, 5) arranged
within a flame zone of the combustion chamber (2) and in operative communication with
the controller (14), the at least one second sensor (4, 5) being configured to:
record a third electric signal, produce a third sensor signal from the third electric
signal, and send the third sensor signal to the controller (14);
the controller (14) being configured to:
determine a third signal strength of the third sensor signal;
the at least one second sensor (4, 5) being configured to:
after the change in supply, record a fourth electric signal, produce a fourth sensor
signal from the fourth electric signal, and send the fourth sensor signal to the controller
(14);
the controller (14) being configured to:
determine a fourth signal strength of the fourth sensor signal; and
determine the change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20).
send a third actuation signal to the at least one actuator (13, 19), the third actuation signal causing a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after sending the third actuation signal, record a fifth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a fifth sensor signal
from the fifth raw signal, and send the fifth sensor signal to the controller (14);
the controller (14) being configured to:
determine a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, send a fourth actuation signal to the at least one actuator (13, 19), the fourth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the fourth actuation signal, record a sixth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a sixth sensor signal
from the sixth raw signal, and send the sixth sensor signal to the controller (14);
the controller (14) being configured to:
determine a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, send a fifth actuation signal to the at least one actuator (13, 19), the fifth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) further;
the at least one first optical sensor (8) being configured to:
after the fifth actuation signal, record a seventh raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce a seventh sensor signal
from the seventh raw signal, and send the seventh sensor signal to the controller
(14);
the controller (14) being configured to:
determine a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, send a sixth actuation signal to the at least one actuator (13, 19), the sixth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) yet further;
the at least one first optical sensor (8) being configured to:
after the sixth actuation signal, record an eighth raw signal directly originating
from the flame (1) inside the combustion chamber (2), produce an eighth sensor signal
from the eighth raw signal, and send the eighth sensor signal to the controller (14);
the controller (14) being configured to:
determine an eighth signal strength of the eighth sensor signal;
determine an inflection point as a function of the fifth to eighth signal strengths; and
produce a seventh actuation signal and send the seventh actuation signal to the at least one actuator (13, 19), the seventh actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
Amended claims in accordance with Rule 137(2) EPC.
at least one first optical sensor (8) recording a first raw signal directly originating from a flame (1) inside the combustion chamber (2), producing a first sensor signal from the first raw signal, and sending the first sensor signal to a controller (14);
at least one second sensor (4, 5) within a flame zone of the combustion chamber (2) recording a third electric signal, producing a third sensor signal from the third electric signal, and sending the third sensor signal to the controller (14);
the controller (14) determining a first signal strength of the first sensor signal;
the controller (14) determining a third signal strength of the third sensor signal;
after recording the first raw signal, changing a supply of the combustion air (12) and/or of the gaseous fuel (20) to the combustion chamber (2);
after the change in supply, the at least one first optical sensor (8) recording a second raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a second sensor signal from the second raw signal, and sending the second sensor signal to the controller (14);
the controller (14) determining a second signal strength of the second sensor signal;
after the change in supply, the at least one second sensor (4, 5) within the flame zone of the combustion chamber (2) recording a fourth electric signal, producing a fourth sensor signal from the fourth electric signal, and sending the fourth sensor signal to the controller (14);
the controller (14) determining a fourth signal strength of the fourth sensor signal;
the controller (14) determining a change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20); and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength.
starting a combustion inside the combustion chamber (2) with a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
after starting the combustion, the at least one first optical sensor (8) recording a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a fifth sensor signal from the fifth raw signal, and sending the fifth sensor signal to the controller (14);
the controller (14) determining a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the enrichment, the at least one first optical sensor (8) recording a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a sixth sensor signal from the sixth raw signal, and sending the sixth sensor signal to the controller (14);
the controller (14) determining a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the further enrichment, the at least one first optical sensor (8) recording a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), producing a seventh sensor signal from the seventh raw signal, and sending the seventh sensor signal to the controller (14);
the controller (14) determining a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, yet further enriching the mixing ratio of the combustion air (12) and the gaseous fuel (20);
after the yet further enrichment, the at least one first optical sensor (8) recording an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), producing an eighth sensor signal from the eighth raw signal, and sending the eighth sensor signal to the controller (14);
the controller (14) determining an eighth signal strength of the eighth sensor signal;
the controller (14) determining an inflection point as a function of the fifth to eighth signal strengths; and
the controller (14) controlling or setting the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
record a first raw signal directly originating from a flame (1) inside the combustion chamber (2), produce a first sensor signal from the first raw signal, and send the first sensor signal to the controller (14);
the apparatus (11) additionally comprises at least one second sensor (4, 5) arranged within a flame zone of the combustion chamber (2) and in operative communication with the controller (14), the at least one second sensor (4, 5) being configured to:
record a third electric signal, produce a third sensor signal from the third electric signal, and send the third sensor signal to the controller (14);
the controller (14) being configured to:
determine a first signal strength of the first sensor signal;
determine a third signal strength of the third sensor signal;
after recording the first raw signal, send a first actuation signal to the at least one actuator (13, 19), the first actuation signal causing the at least one actuator (13, 19) to change the supply of the combustion air (12) and/or of the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the change in supply, record a second raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a second sensor signal from the second raw signal, and send the second sensor signal to the controller (14);
the at least one second sensor (4, 5) being configured to:
after the change in supply, record a fourth electric signal, produce a fourth sensor signal from the fourth electric signal, and send the fourth sensor signal to the controller (14);
the controller (14) being configured to:
determine a second signal strength of the second sensor signal;
determine a fourth signal strength of the fourth sensor signal;
determine a change in signal strength as a function of the first signal strength and as a function of the second signal strength and as a function of a further signal strength selected from the third and the fourth signal strengths, the change in signal strength being caused by the change in supply of the combustion air (12) and/or of the gaseous fuel (20); and
produce a second actuation signal as a function of the change in signal strength and send the second actuation signal to the at least one actuator (13, 19), the second actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) to the combustion chamber (2).
send a third actuation signal to the at least one actuator (13, 19), the third actuation signal causing a lean mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after sending the third actuation signal, record a fifth raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a fifth sensor signal from the fifth raw signal, and send the fifth sensor signal to the controller (14);
the controller (14) being configured to:
determine a fifth signal strength of the fifth sensor signal;
after recording the fifth raw signal, send a fourth actuation signal to the at least one actuator (13, 19), the fourth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20);
the at least one first optical sensor (8) being configured to:
after the fourth actuation signal, record a sixth raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a sixth sensor signal from the sixth raw signal, and send the sixth sensor signal to the controller (14);
the controller (14) being configured to:
determine a sixth signal strength of the sixth sensor signal;
after recording the sixth raw signal, send a fifth actuation signal to the at least one actuator (13, 19), the fifth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) further;
the at least one first optical sensor (8) being configured to:
after the fifth actuation signal, record a seventh raw signal directly originating from the flame (1) inside the combustion chamber (2), produce a seventh sensor signal from the seventh raw signal, and send the seventh sensor signal to the controller (14);
the controller (14) being configured to:
determine a seventh signal strength of the seventh sensor signal;
after recording the seventh raw signal, send a sixth actuation signal to the at least one actuator (13, 19), the sixth actuation signal causing the at least one actuator (13, 19) to enrich the mixing ratio of the combustion air (12) and the gaseous fuel (20) yet further;
the at least one first optical sensor (8) being configured to:
after the sixth actuation signal, record an eighth raw signal directly originating from the flame (1) inside the combustion chamber (2), produce an eighth sensor signal from the eighth raw signal, and send the eighth sensor signal to the controller (14);
the controller (14) being configured to:
determine an eighth signal strength of the eighth sensor signal;
determine an inflection point as a function of the fifth to eighth signal strengths; and
produce a seventh actuation signal and send the seventh actuation signal to the at least one actuator (13, 19), the seventh actuation signal causing the at least one actuator (13, 19) to control or to set the supply of the combustion air (12) and/or of the gaseous fuel (20) as a function of the change in signal strength and as a function of the inflection point.
REFERENCES CITED IN THE DESCRIPTION
Patent documents cited in the description