Background
[0001] The present disclosure relates to a mixing ratio between air and combustion gas inside
a combustion chamber. More specifically, the present disclosure deals with a mixing
ratio inside a combustion apparatus of a heating and/or ventilation and/or air-conditioning
system. Gaseous fuels are typically distributed to end customers via a network. Suppliers
of gaseous fuels envisage changes in formulations of gaseous fuels such as gaseous
fuels additionally comprising hydrogen gas.
[0002] A mixing ratio between combustion air and a gaseous fuel is crucial to clean and
complete combustion. An amount of combustion air supplied to a combustion chamber
must be sufficient such that all the gaseous fuel will be consumed chemically. A lambda
value is commonly used to describe a stochiometric fuel rate and a deviation from
that fuel rate. If the mixing ratio lacks combustion air, the value of lambda will
be less than unity. If the mixing ratio comprises more than enough combustion air,
the value of lambda will exceed unity. Various considerations such as a need to achieve
clean combustion result in a lambda value that exceeds unity. The lambda value can,
by way of example, be more than 1.1 and be less than 1.3. A combustion apparatus shall
maintain a stable value of lambda during combustion. It follows that a control or
regulation process maintains that stable value of lambda.
[0004] To that end, an ionisation electrode is arranged within a flame zone inside a combustion
chamber. The ionisation electrode produces a signal indicative of an electric conductivity
within the flame zone. The signal obtained from the ionisation electrode is compared
to a set point value. A closed-loop controller maintains the signal such that it remains
close to the set point.
[0006] A controller of
EP1154202A2 produces first and second control signals as a function of an ionisation current
obtained from an ionisation electrode. The ionisation electrode is placed in a flame
zone of a combustion chamber. The first control signal corresponds to a combustion
gas having a relatively low Wobbe index. The second signal corresponds to a combustion
having a Wobbe index that is larger than the Wobbe index associated with the first
control signal. The controller determines a weighted mean of the first and second
control signals. An actuator signal is produced as a function of the weighted mean
and is sent to an actuator.
[0007] These and other control methods presume a gaseous fuel having a predetermined Wobbe
index or having a Wobbe index that is within a predetermined range. Accordingly, significant
changes of the gaseous fuel can require a recalibration of the combustion apparatus.
If hydrogen gas is added to a gaseous fuel, the controllers of legacy combustion apparatuses
may have to be recalibrated. That recalibration may require on-site maintenance work
at the location of the combustion apparatus. Significant changes of gaseous fuels
such as added hydrogen gas can also result in incomplete and/or unclean combustion.
Those changes can even result in safety hazards.
[0008] That said, signals other than ionisation currents obtained from ionisation electrodes
can be used to control combustion processes. For example, a flame within a combustion
chamber also emits visible and ultraviolet light. Those signals can be recorded by
a sensor arranged at or near the combustion chamber.
[0010] The arrangement according to
EP3339736A1 harnesses a photodiode connected to a differential amplifier to detect a flame. An
amount of light of at least 1.1 Lux is received by the photodiode. An operational
amplifier such as a low-noise differential amplifier produces an electric current
in response to a signal originating from the photodiode.
EP3339736A1 discloses a photodiode having a first spectral sensitivity at λ
10%,1 = 900 nanometers wavelength and a second spectral sensitivity at λ
10%,2 = 600 nanometers wavelength. The photodiode of
EP3339736A1 can be a silicon diode. The signal obtained from the photodiode is used to detect
a flame, but not to control a mixing ratio inside a burner apparatus.
[0012] EP3663646A1 in paragraph [0026] discloses a silicon carbide (SiC) diode or a cadmium sulfide
(CdS) device to be employed in combustion processes. Those devices afford detection
of ultraviolet light with optical wavelengths below 400 nanometers. The signals obtained
from those devices are used to detect flame lift-off. That is, the optical signals
obtained from those devices are used to tackle safety hazards. A binary signal in
the form off or on can suffice for the purpose of detecting a lift-off of a flame
in a combustion apparatus. The signals obtained in accordance with
EP3663646A1 are not used to control mixing ratios λ between air and gaseous fuels inside burner
apparatuses. What's more, a suitability of such (binary) signals for closed-loop control
of mixing ratios λ is not established by
E P3663646A1.
[0014] DE202020106475U1 discloses a sensor that directly couples to an operational amplifier. That is, the
sensor of
DE202020106475U1 directly connects to the inverting and noninverting input channels of the operational
amplifier. The sensor produces an electric signal in response to receiving an amount
of light of 1.6·10
-3 Watts per square meter. Paragraph [0028] of
DE202020106475U1 states that the sensor can be or can comprise a silicon carbide (SiC) diode. According
to paragraph [0099] of
DE202020106475U1, the sensor preferably operates without a filter.
[0015] DE202020106475U1 is about flame detection. The signals obtained from the silicon carbide (SiC) diode
are not used to control mixing ratios λ between air and gaseous fuels inside combustion
apparatuses. What's more, the apparatus of
DE202020106475U1 generally produces binary signals indicative of the presence or of the absence of
a flame. The suitability of such (binary) signals for closed-loop control of mixing
ratios λ is not established by
DE202020106475U1.
[0016] A European patent application
EP3663648A1 was filed by VAILLANT GMBH on 26 November 2019. The application was published on 10 June 2020. A priority date of 5 December 2018
is claimed.
EP3663648A1 deals with a method and with a device for regulating the mixing ratio of combustion
air and combustion gas in a combustion process.
EP3663648A1 pertains to a combustion process involving a combustion gas having more than fifty
percent of hydrogen gas.
EP3663648A1 does not set out whether those fifty percent of hydrogen gas are by mass or by volume.
A sensor is employed to record ultraviolet light originating from a combustion process.
Before reaching the sensor, the ultraviolet light is selectively filtered to focus
on emissions caused by OH-radicals. Unlike paragraph [0018] of the disclosure of the
application
EP3663648A1, OH-radicals cause ultraviolet emissions in the vicinity of 308 nanometers. The signal
recorded by the sensor is eventually employed to control a mixing ratio between combustion
air and a gaseous fuel. The apparatus and the method according to
EP3663648A1 require one or more optical filters to selectively focus on emissions caused by OH-radicals.
Those filters are prone to failure, thereby jeopardising the operation of the entire
combustion apparatus.
[0018] It is thus desirable to largely dispense with optical filters when employing optical
sensors in combustion apparatuses. More specifically, it is desirable to largely dispense
with such filters when controlling a mixing ratio between air and a combustion gas.
Summary
[0019] The present invention deals with influencing or controlling a mixing ratio of combustion
air and of a gaseous fuel. More specifically, the present invention deals with influencing
or controlling the mixing ratio in the presence of a gaseous fuel comprising hydrogen
gas (H
2 gas). An optical sensor is employed to sense a flame inside a combustion chamber.
The optical sensor records a signal that is not only indicative of OH-radicals or
of OH*-radicals. Instead, the signal recorded by the optical sensor accommodates various
other spectral lines. In so doing, adverse influences due to humidity and/or moisture
are mitigated because OH-radicals or of OH*-radicals can indicate humidity and/or
moisture. After recording a first optical sensor, the supply of the combustion air
and/or the supply of the gaseous fuel changes. Preferably, the supply of the combustion
air changes while the supply of the gaseous fuel comprising hydrogen gas (H
2 gas) is maintained. In an alternate embodiment, the supply of the gaseous fuel comprising
hydrogen gas (H
2 gas) changes while the supply of the combustion air is maintained. A change of only
a single constituent of the combustible fluid affords well-defined technical conditions.
[0020] A second optical signal is recorded after the change in supply. Again, the second
optical signal is not only indicative of OH-radicals or of OH*-radicals. Instead,
the second optical signal responds to various other spectral lines. In so doing, adverse
influences due to humidity and/or moisture are mitigated.
[0021] A change in signal strength is finally determined based on the first and second optical
signals. That change in signal strength is caused by the change in supply. It is employed
to control or to influence the mixing ratio of the combustion air and/or of the gaseous
fuel. Advantageously, only the supply of one constituent selected from
- the combustion air and
- the gaseous fuel
changes. A change of a single constituent affords well-defined technical conditions.
[0022] The optical sensor records an unfiltered, raw signal emitted by a flame inside the
combustion chamber. While a window can be arranged between the optical sensor and
the flame, no optical filter is arranged in the optical path. The unfiltered and raw
signals recorded by the optical sensor result in an inclusion of as many spectral
lines as possible in the signal processing.
[0023] Where the signal of the optical sensor is insufficient to suppress adverse influences
caused by humidity and/or by moisture, a second sensor can be employed. The second
sensor preferably comprises or is an ionisation electrode. Signals obtained by the
two sensors can be processed together. As a signal obtained from an ionisation electrode
is influenced to a lesser extent by humidity and/or by moisture, those adverse influences
are better mitigated.
Brief description of the drawings
[0024] Various features will become apparent to those skilled in the art from the following
detailed description of the disclosed non-limiting embodiments. The drawings that
accompany the detailed description can be briefly described as follows:
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
[0025] FIG 1 shows a flame 1 inside a combustion chamber 2. A feed conduit 3 directs a gaseous
fuel toward the combustion chamber 2. It is envisaged that a gaseous fuel such as
methane and/or ethane and/or propane and/or hydrogen or a mixture thereof is conveyed
via the feed conduit 3.
[0026] The gaseous fuel comprises at least twenty percent by volume of hydrogen gas (H
2 gas). Preferably, the gaseous fuel comprises at least fifty percent by volume of
hydrogen gas (H
2 gas). The gaseous fuel can also comprise at least seventy percent by volume of hydrogen
gas (H
2 gas).
[0027] In an alternate embodiment, the gaseous fuel comprises at least twenty percent by
mass of hydrogen gas (H
2 gas). Preferably, the gaseous fuel comprises at least fifty percent by mass of hydrogen
gas (H
2 gas). The gaseous fuel can also comprise at least seventy percent by mass of hydrogen
gas (H
2 gas).
[0028] Hydrogen gas (H
2 gas) can be obtained from electrolysis. Electric power from renewable sources can
be used to break water into hydrogen and oxygen using electrolysis. Large percentages
of hydrogen gas (H
2 gas) afford a combustion of a gas directly or indirectly obtained from renewable
sources.
[0029] In an embodiment, a fluid comprising a mixture of combustion air and a gaseous fuel
is conveyed via the feed conduit 3. That fluid can comprise any of the gaseous fuels
mentioned above.
[0030] The combustion chamber 2 and the feed conduit 3 are typically part of a combustion
appliance. The combustion appliance can, by way of non-limiting example, comprise
a gas burner.
[0031] The arrangement optionally comprises an ionisation electrode 4 with a tip 5. The
ionisation electrode 4 is arranged such that its tip 5 reaches inside the flame 1.
As shown on FIG 1, the ionisation electrode 4 can be mounted to a frame 6 such as
a support disc. The frame 6 aligns the ionisation electrode 4 such that its tip 5
will interact with the flame 1.
[0032] The tip 5 of the ionisation electrode 4 advantageously comprises a portion made of
an alloy of iron, of aluminum, and of chrome. The alloy can also comprise copper and
nickel. Suitable alloys are marketed under the brand Kanthal
®. It is envisaged that the tip 5 of the ionisation electrode 4 withstands temperatures
above 1173 Kelvin, preferably above 1300 Kelvin, still more preferably above 1500
Kelvin. Higher values of temperature withstand confer advantages in terms of durability.
[0033] Where withstanding elevated levels of temperature is required, the tip 5 of the ionisation
electrode can comprise a portion made of silicon carbide. Suitable materials are marketed
under the brand Globar
®.
[0034] The feed conduit 3 is preferably tubular and provides a nozzle 7 having an injection
orifice at its exit. A direction of fluid flow is defined by the nozzle 7. The combustible
fluid is conveyed through the feed conduit 3. The combustible fluid is injected into
the combustion chamber 2 at the injection orifice. The injection orifice preferably
has a circular cross-section. This circular cross-section is perpendicular to the
direction of fluid flow through the nozzle 7. It is also envisaged that the cross-section
of the injection orifice is quadratic and/or polygonal. According to an aspect, the
nozzle 7 provides slots to reduce acoustic emissions.
[0035] FIG 1 also shows that the frame 6 also envelopes the nozzle 7. That is, the ionisation
electrode 4 and the nozzle 7 are both mounted to and/or fitted to the frame 6. A flange
can be employed to secure the frame 6 relative to the feed conduit 3. Ideally, the
flange is employed to mount the frame 6 to the feed conduit 3.
[0036] In addition to the optional ionisation electrode 4, the flame 1 is also monitored
via at least one first optical sensor 8. It is envisaged that at least one first optical
sensor 8 is a light sensor. In an embodiment, the at least one first optical sensor
8 has a spectral sensitivity λ
10% that enables detection of ultraviolet light with optical wavelengths below 400 nanometers.
More specifically, the at least one first optical sensor 8 can detect ultraviolet
light having an optical wavelength of 306.4 nanometers.
[0037] The at least one first optical sensor 8 can, by way of non-limiting example, be a
light receiver such as a UV enhanced Si sensor. The at least one first optical sensor
8 can, by way of another non-limiting example, be a silicon carbide (SiC) diode and/or
a cadmium sulfide (CdS) device. The UV enhanced SI sensor can be a SHF530 or a SHF530V
photodiode. These enhanced SI sensors typically at temperatures of 298 Kelvin dissipate
up to 200 milliWatts of power. At electric voltages of 20 Volts, they exhibit dark
currents of less than 10 nanoAmperes. The current gain obtained from these enhanced
SI sensors is about 500.
[0038] According to an aspect of the present invention, a silicon carbide (SiC) diode is
employed as the at least one first optical sensor 8. The silicon carbide (SiC) diode
has a spectral sensitivity and/or has a relative spectral responsivity as illustrated
in FIG 2. FIG 2 shows a spectral sensitivity and/or a relative spectral responsivity
9 in relative units along the vertical axis. FIG 2 show an optical wavelength 10 in
nanometers along the horizontal axis.
[0039] The spectral sensitivity and/or a relative spectral responsivity 9 generally peaks
in the region between 260 nanometers and 290 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 can actually peak at 265 nanometers and/or
270 nanometers and/or at 280 nanometers. The spectral sensitivity and/or a relative
spectral responsivity 9 drops to ten percent of its peak value in the region between
200 nanometers and 240 nanometers. The spectral sensitivity and/or the relative spectral
responsivity 9 can drop to ten percent of its peak value at 210 nanometers and/or
at 217 nanometers. The spectral sensitivity and/or the relative spectral responsivity
9 can also drop to ten percent of its peak value at 220 nanometers. At the opposite
end of the spectrum, the spectral sensitivity and/or the relative spectral responsivity
9 can drop to ten percent of its peak value. That drop occurs in the region between
350 nanometers and 370 nanometers. The spectral sensitivity and/or the relative spectral
responsivity 9 can drop to ten percent of its peak value at λ
10%=355 nanometers and/or at λ
10%=360 nanometers. The spectral sensitivity and/or the relative spectral responsivity
9 can also drop to ten percent of its peak value at λ
10%=365 nanometers.
[0040] Typically, the at least one first optical sensor 8 in the form of a silicon carbide
(SiC) diode exhibits a capacitance of approximately 250 picoFarads. That capacitance
is measured at a frequency of one MegaHertz and to a temperature of 298 Kelvin. Also,
a dark current of approximately 100 femtoAmperes is obtained at temperatures near
298 Kelvin.
[0041] According to another aspect of the present disclosure, the at least one first optical
sensor 8 is a photomultiplier tube.
[0042] A careful choice of the spectral sensitivity and/or the relative spectral responsivity
9 of the at least one first optical sensor 8 affords measurements of various optical
emissions. OH-radicals are known to emit in the region between 280 nanometers and
320 nanometers. More specifically, OH-radicals are known to emit in the region between
290 nanometers and 310 nanometers. Yet more specifically, OH-radicals can cause emissions
at 3064 Angstroms. That is, those radicals cause emissions at 306.4 nanometers.
[0043] Emissions of such OH-radicals are, however, indicative of water vapour. That is,
a signal obtained from such OH-radicals is strongly influenced by the partial pressure
of water in the combustion air. In other words, the signal obtained from emissions
caused by OH-radicals can be a measure of humidity rather than a measure of combustible
hydrogen gas (H
2 gas).
[0044] To reduce adverse influences of humidity, emissions other than emissions caused by
OH-radicals need be considered. For example, nitrogen molecules (N
2 gas) are present in the air feed to the combustion chamber 2 of FIG 1. The percentage
by volume of those nitrogen molecules in the air is typically larger than fifty percent
and is likely to be larger than seventy percent. The percentage by volume of those
nitrogen molecules in the air can even be larger than seventy-five percent.
[0045] The presence of nitrogen molecules (N
2 molecules) in a combustion process can cause emissions in the region between 310
nanometers and 400 nanometers. More specifically, emissions can occur between 314
nanometers and 318 nanometers such as at 316 nanometers. Emissions causes by nitrogen
molecules (N
2 molecules) can also occur between 336 nanometers and 340 nanometers such as at 338
nanometers. Another peak in emissions caused by nitrogen molecules (N
2 molecules) is found between 355 nanometers and 360 nanometers such as at 357 nanometers
or at 358 nanometers. Finally, a large peak in such emissions is commonly found in
the region between 385 nanometers and 395 nanometers such as at 390 nanometers.
[0046] A choice of the at least one first optical sensor 8 such that the various emissions
of nitrogen molecules (N
2 molecules) can be factored in is advantageous. Issues caused by vapour pressure and
by humidity of the air fed to the combustion chamber 2 are thereby mitigated. More
specifically, the spectral sensitivity and/or the relative spectral responsivity 9
shall overlap with at least some of the emissions of nitrogen molecules (N
2 molecules).
[0047] The spectral sensitivity and/or the relative spectral responsivity 9 can, by way
of example, be chosen such that the wavelength λ
10% exceeds 338 nanometers. Preferably, this embodiment employs at least one first optical
sensor 8 without a filter. That is, the at least one first optical sensor 8 receives
raw emissions caused by a flame 1. The spectral sensitivity and/or the relative spectral
responsivity 9 then covers the peaks caused by nitrogen molecules (N
2 gas) in the region between 314 and 318 nanometers. The spectral sensitivity and/or
the relative spectral responsivity 9 also includes some peaks caused by nitrogen molecules
(N
2 gas) in the region between 336 and 340 nanometers.
[0048] The spectral sensitivity and/or the relative spectral responsivity 9 can, by way
of another example, be chosen such that the wavelength λ
10% exceeds 357 nanometers. Preferably, this embodiment employs at least one first optical
sensor 8 without a filter. That is, the at least one first optical sensor 8 receives
raw emissions caused by a flame 1. The spectral sensitivity and/or the relative spectral
responsivity 9 then covers the peaks caused by nitrogen molecules (N
2 molecules) in the region between 314 and 318 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 also includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 336 and 340 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 still includes some peaks caused by nitrogen
molecules (N
2 molecules) in the region between 355 and 360 nanometers.
[0049] The spectral sensitivity and/or the relative spectral responsivity 9 can, by way
of yet another example, be chosen such that the wavelength λ
10% exceeds 358 nanometers. Preferably, this embodiment employs at least one first optical
sensor 8 without a filter. That is, the at least one first optical sensor 8 receives
raw emissions caused by a flame 1. The spectral sensitivity and/or the relative spectral
responsivity 9 then covers the peaks caused by nitrogen molecules (N
2 molecules) in the region between 314 and 318 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 also includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 336 and 340 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 still includes some peaks caused by nitrogen
molecules (N
2 molecules) in the region between 355 and 360 nanometers.
[0050] The spectral sensitivity and/or the relative spectral responsivity 9 can, by way
of still another example, be chosen such that the wavelength λ
10% exceeds 390 nanometers. Preferably, this embodiment employs at least one first optical
sensor 8 without a filter. That is, the at least one first optical sensor 8 receives
raw emissions caused by a flame 1. The spectral sensitivity and/or the relative spectral
responsivity 9 then covers the peaks caused by nitrogen molecules (N
2 molecules) in the region between 314 and 318 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 also includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 336 and 340 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 still includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 355 and 360 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 partially includes the peaks caused by
nitrogen molecules (N
2 molecules) in the region between 385 and 395 nanometers.
[0051] The spectral sensitivity and/or the relative spectral responsivity 9 can, by way
of still another example, be chosen such that the wavelength λ
10% exceeds 395 nanometers. Preferably, this embodiment employs at least one first optical
sensor 8 without a filter. That is, the at least one first optical sensor 8 receives
raw emissions caused by a flame 1. The spectral sensitivity and/or the relative spectral
responsivity 9 then covers the peaks caused by nitrogen molecules (N
2 molecules) in the region between 314 and 318 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 also includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 336 and 340 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 still includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 355 and 360 nanometers. The spectral sensitivity
and/or the relative spectral responsivity 9 also includes the peaks caused by nitrogen
molecules (N
2 molecules) in the region between 385 and 395 nanometers.
[0052] FIG 3 shows a combustion apparatus 11 such as a wall-mounted gas burner. During operation
a flame of a heat generator burns in the combustion chamber 2 of the combustion apparatus
11. The heat generator exchanges the thermal energy of the hot fuel gases into a different
fluid such as water. For example, a hot water heating system is operated and/or drinking
water is heated with the warm water. According to a different embodiment, goods, for
example in an industrial process, can be heated with the thermal energy of the hot
fuels and/or fuel gases. According to a further embodiment, the heat generator is
part of a system with combined heat and power generation, for example a motor of such
a system. According to a different embodiment, the heat generator is a gas turbine.
Furthermore, the heat generator can serve to heat water in a system for the extraction
of lithium and/or lithium carbonate. The exhaust gases 10 are discharged, for example
via a chimney, from the combustion chamber 2.
[0053] The combustion air 12 for the combustion process is supplied via a (motor-) driven
fan 13. An open-loop and/or closed-loop controller 14 specifies to the fan 13 via
the signal line 15 the air supply
VL which it should convey. The fan rotational speed is thereby a measure of the combustion
air 2.
[0054] According to one embodiment, the fan rotational speed is reported to the open-loop
and/or closed-loop controller 14 by the fan 13. For example, the open-loop and/or
closed-loop controller 14 ascertains the rotational speed of the fan 13 via the signal
line 16.
[0055] The open-loop and/or closed-loop controller 14 preferably comprises a microcontroller.
The open-loop and/or closed-loop controller 14 ideally comprises a microprocessor.
The open-loop and/or closed-loop controller 14 can be a closed-loop facility. Preferably,
the closed-loop facility comprises a microcontroller. The closed-loop facility ideally
comprises a microprocessor. The closed-loop facility can comprise a proportional and
integral regulator. Furthermore, the closed-loop facility can comprise a proportional
and integral and derivative regulator.
[0056] Furthermore, the open-loop and/or closed-loop controller 14 can comprise a (logic-)
gate array programmable in the field. In addition, the open-loop and/or closed-loop
controller 14 can comprise an application-specific integrated circuit.
[0057] In one embodiment, the signal line 15 comprises an optical fibre. For ascertainment
of the fan rotational speed the signal line 16 can likewise comprise an optical fibre.
In a specific embodiment, the signal lines 15 and 16 are optical fibres. Optical fibres
provide advantages in view of galvanic isolation and protection from explosions.
[0058] If the supply of combustion air 12 is set via an air damper and/or via a valve, the
damper can be used as a measure of the supply. The valve setting can also be used
as a measure of supply. Furthermore, a measured value derived from the signal of a
pressure sensors and/or mass flow sensor and/or volume flow sensor can be used. The
sensor 17 is advantageously arranged in the duct for the combustion air 12. Advantageously,
the sensor 17 provides a signal, which is converted using a suitable signal processing
unit into a flow measured value.
[0059] According to one embodiment, the signal of the sensor 17 is reported via a signal
line 18. More specifically, a signal can be reported to the open-loop and/or closed-loop
controller 14 via of the signal line 18, which signal is a measure of a combustion
air 12. A suitable signal processing facility for processing of the signal of the
sensor 17 ideally comprises at least one analog-to-digital converter. According to
one embodiment, the signal processing facility, in particular the analog-to-digital
converter(s), is integrated in the open-loop and/or closed-loop controller 14.
[0060] The signal line 18 can comprise an optical fibre. The signal line 18 can also be
an optical fibre. Optical fibres provide advantages in view of galvanic isolation
and protection against explosions.
[0061] The measured value of a pressure sensor and/or a mass flow sensor can also be used
as a measure of the air supply
VL. To that end, the pressure sensor and/or the mass flow sensor can be arranged in
a side duct of the duct for the combustion air 12. A combustion apparatus with supply
duct and side duct is disclosed, for example, in the European patent
EP3301364B1. European patent
EP3301364B1 was applied for on 7 June 2017 and granted on 7 August 2019. A combustion apparatus with supply duct and side duct
is claimed, wherein a mass flow sensor protrudes into the supply duct.
[0062] A pressure sensor and/or a mass flow sensor in the side duct ascertains a signal.
That signal corresponds to the pressure value and/or the air flow (particle and/or
mass flow) in the side duct. That signal and/or the pressure value and/or the air
flow depend on the air supply
VL. Advantageously, the sensor provides a signal, which is converted via a suitable
signal processing facility into a measured value. According to a further advantageous
embodiment, the signals of a plurality of sensors are converted into a shared measured
value. A suitable signal processing facility ideally comprises at least one analog-to-digital
converter. According to one embodiment, the signal processing facility, in particular
the analog-to-digital converter(s), is integrated in the open-loop and/or closed-loop
controller 14. According to a different embodiment, the signal processing facility,
in particular the analog-to-digital converter(s), is integrated in the pressure sensor
and/or mass flow sensor. The sensor signals are preferably transmitted to the open-loop
and/or closed-loop controller 14 with a specified communications bus protocol via
a communications interface. It is envisaged that the specified communication bus protocol
comprises a digital communication bus protocol. It is also envisaged that the specified
communication bus protocol is a digital communication bus protocol.
[0063] According to one embodiment, the air supply
VL is the value of the current flow rate of combustion air 12. The flow rate of combustion
air 12 can be measured and/or given in cubic meters of air per hour. The air supply
VL can be measured and/or given in cubic meters of air per hour.
[0064] Mass flow sensors allow measurement in the case of large flow speeds, specifically
in connection with combustion apparatuses during operation. Typical values of such
flow speeds lie in ranges between 0.1 meters per second and 5 meters per second, and
10 meters per second. Typical values of such flow speeds are also 15 meters per second,
20 meters per second, or even 100 meters per second. Mass flow sensors, which are
suitable for the present disclosure, are for example OMRON
® D6F-W or SENSOR TECHNICS
® WBA type sensors. The useful range of these sensors typically begins at speeds between
0.01 meters per second and 0.1 meters per second. The useful range of these sensors
typically ends at a speed such as, for example 5 meters per second, 10 meters per
second, or 15 meters per second. The useful range of these sensors can also end at
a speed such as 20 meters per second, or even 100 meters per second. In other words,
lower limits such as 0.1 meters per second can be combined with upper limits such
as 5 meters per second. The lower limits can also be combined with upper limits such
as 10 meters per second, 15 meters per second, or 20 meters per second. The lower
limits can even be combined with an upper limit such as 100 meters per second.
[0065] The supply
VB of gaseous fuel 20 is set and/or adjusted by the open-loop and/or closed-loop controller
14 with the aid of a fuel actuator and/or a (motor-) settable valve 19. In the embodiment
in FIG 3, the fuel 20 is a gaseous fuel. A combustion apparatus 11 can then connect
to different fuel gas sources, for example to sources with a high methane content.
The combustion apparatus 11 can, by way of another example, also connect to sources
with a high propane content. Similarly, it is provided that the combustion apparatus
11 connects to a source of a gas or a gas mixture. The gas or the gas mixture can
comprise hydrogen gas (H
2 gas). In FIG 3 the quantity of gaseous fuel is set by the open-loop and/or closed-loop
controller 14 by way of a (motor-) settable fuel valve 19. The actuation value, for
example a pulse width-modulated signal, of the gas valve is a measure of the quantity
of fuel gas. It is also a value for the supply
VB of gaseous fuel 20.
[0066] If a gas valve is used as the fuel actuator 19, its position can be used as a measure
of the quantity of fuel gas. According to a specific embodiment, a fuel actuator 19
and/or fuel valve 19 is set via a stepper motor. In that case the step position of
the stepper motor is a measure of the quantity of gaseous fuel 20. More specifically,
the step position can be a quantitative measure of an amount of gaseous fuel 20, the
gaseous fuel 20 comprising hydrogen gas (H
2 gas).
[0067] The fuel valve 19 can also be integrated in a unit with at least one or more safety
shut-off valve(s). A signal line 21 connects the fuel actuator 19 to the open-loop
and/or closed-loop controller 14. In a specific embodiment, the signal line 21 comprises
an optical fibre. In a yet more specific embodiment, the signal line 21 is an optical
fibre. Optical fibres provide advantages in view of galvanic isolation and protection
against explosions.
[0068] Furthermore, the fuel valve 19 can be an integrated valve operated with closed-loop
control via a flow and/or pressure sensor. It receives a setpoint value and regulates
the actual value of the flow and/or pressure sensor to the setpoint value. The flow
and/or pressure sensor can be implemented as a volume flow sensor for example as a
turbine flowmeter. The flow and/or pressure sensor can also be implemented as a bellows-type
gas flowmeter or as a differential pressure sensor. The flow and/or pressure sensor
can still be configured as a mass flow sensor, for example as a thermic mass flow
sensor.
[0069] Another signal line can connect that flow and/or pressure sensor to the open-loop
and/or closed-loop controller 14. In a specific embodiment, the other signal line
comprises an optical fibre. In a yet more specific embodiment, the other signal line
is an optical fibre. Optical fibres provide advantages in view of galvanic isolation
and protection against explosions. The signal line for that sensor can be the same
signal line as for the valve 19.
[0070] In a further embodiment, a flow and/or pressure sensor 22 is arranged in the fuel
supply duct separately from the fuel valve 19. The flow rate sensor 22 can be implemented
as a volume flow sensor, for example as a turbine flowmeter. The flow and/or pressure
sensor can also be implemented bellows-type gas flowmeter or as a differential pressure
sensor. The flow and/or pressure sensor 22 can still be configured as a mass flow
sensor, for example as a thermic mass flow sensor.
[0071] A signal line 23 connects the flow and/or pressure sensor 22 to the open-loop and/or
closed-loop controller 14. In a specific embodiment, the signal line 23 comprises
an optical fibre. In a yet more specific embodiment, the signal line 23 is an optical
fibre. Optical fibres provide advantages in view of galvanic isolation and protection
against explosions.
[0072] That flow and/or pressure sensor 22 generates a signal, which is converted via a
suitable signal processing facility into a flow measured value. The measured value
can be a measured value of the particle flow and/or of mass flow and/or of volume
flow. A suitable signal processing facility ideally comprises at least one analog-to-digital
converter. According to one embodiment, the signal processing facility, in particular
the analog-to-digital converter(s), is integrated in the open-loop and/or closed-loop
controller 14.
[0073] According to a different embodiment, the signal processing facility, in particular
the analog-to-digital converter(s), is integrated in the flow and/or pressure sensor
22. The sensor signals are preferably transmitted to the open-loop and/or closed-loop
controller 14 via a communications interface with a specified communications bus protocol.
It is envisaged that the specified communication bus protocol comprises a digital
communication bus protocol. It is also envisaged that the specified communication
bus protocol is a digital communication bus protocol.
[0074] FIG 3 likewise shows a combustion apparatus 11 with an optional combustion sensor
4 for detection of a mixing ratio λ. The combustion sensor 4 can comprise, for example,
an ionisation electrode such as the ionisation electrode shown in FIG 1. The combustion
sensor 4 can also be an ionisation electrode such as the ionisation electrode shown
in FIG 1.
[0075] The combustion sensor 4 is preferably arranged in the combustion chamber 2. The combustion
sensor 4 is advantageously arranged in a flame area and/or in a flame zone within
the combustion chamber 2.
[0076] Typically, the combustion sensor 4 is connected via an impedance to a voltage source.
The impedance to the connection to the voltage source can comprise an electrical resistance
such as an electric and ohmic resistance.
[0077] A signal line 24 connects the combustion sensor 4 to the open-loop and/or closed-loop
controller 14. A suitable signal processing facility for processing of the signal
of the combustion sensor 4 ideally comprises at least one analog-to-digital converter.
According to one embodiment, the signal processing facility, especially the at least
one analog-to-digital converter, is integrated in the open-loop and/or closed-loop
controller 14.
[0078] In a specific embodiment, the signal line 24 comprises an optical fibre. In a yet
more specific embodiment, the signal line 24 is an optical fibre. Optical fibres provide
advantages in view of galvanic isolation and protection against explosions.
[0079] FIG 3 likewise shows a combustion apparatus 11 with an optical sensor 8. The optical
sensor 8 can comprise, by way of non-limiting example, a UV enhanced Si sensor as
described in the notes on FIG 1. More specifically, the optical sensor 8 can be a
UV enhanced Si sensor as described in the notes on FIG 1. The optical sensor 8 can
comprise, by way of another non-limiting example, a silicon carbide (SiC) diode as
described in the notes on FIG 1. More specifically, the optical sensor 8 can be a
silicon carbide (SiC) diode as described in the notes on FIG 1. The optical sensor
8 can comprise, by way of yet another non-limiting example, a cadmium sulfide (CdS)
device as described in the notes on FIG 1. More specifically, the optical sensor 8
can be a cadmium sulfide (CdS) device as described in the notes on FIG 1. The optical
sensor 8 can comprise, by way of still another non-limiting example, a photomultiplier
tube as described in the notes on FIG 1. More specifically, the optical sensor 8 can
be a photomultiplier tube as described in the notes on FIG 1.
[0080] The combustion chamber 2 typically comprises a flame area and/or a flame zone. The
flame area and/or the flame zone are arranged inside the combustion chamber 2. The
optical sensor 8 is advantageously arranged outside the flame area and/or outside
the flame zone.
[0081] A signal line 25 connects the optical sensor 8 to the open-loop and/or closed-loop
controller 14. A suitable signal processing facility for processing of the signal
of the optical sensor 8 ideally comprises at least one analog-to-digital converter.
According to one embodiment, the signal processing facility, especially the at least
one analog-to-digital converter, is integrated in the open-loop and/or closed-loop
controller 14.
[0082] In a specific embodiment, the signal line 25 comprises an optical fibre. In a yet
more specific embodiment, the signal line 25 is an optical fibre. Optical fibres provide
advantages in view of galvanic isolation and protection against explosions.
[0083] A first control concept can be summarised as follows: A first pilot control characteristic
stored in the closed-loop controller 14 describes an actuator setting and a signal
strength of the light emitted by a flame. The first pilot control characteristic has
preferably been recorded under reference conditions. The actuator 13, 19 is advantageously
set via a signal comprising at least one of
- a signal sent to the (motor-) driven fan 13,
- a signal sent to the fuel valve 19 and/or gas valve 19.
[0084] The actuator 13, 19 is ideally set via a signal selected from
- a signal sent to the (motor-) driven fan 13,
- a signal sent to the fuel valve 19 and/or gas valve 19.
[0085] The closed-loop controller 14 adjusts the setting of the actuator 13, 19 so that
the desired signal strength of the light emitted by the flame 1 is achieved. To that
end, a signal is obtained by the closed-loop controller 14 from the optical sensor
8. The signal obtained from the optical sensor 8 can then be compared to a set point.
The set point is ideally chosen in accordance with the first pilot control characteristic.
The signal to be sent to the actuator 13, 19 is ideally determined based on a deviation
of the signal obtained from the sensor from the set point. Eventually, combustion
takes place with the desired mixing ratio between combustion air and combustion gas.
[0086] A calibration process can check and adapt the first pilot control characteristic.
Checking and adaption preferably take place with reference to the current combustion
conditions. Those conditions can be characterised at least by
- a composition of the gaseous fuel 20,
- a density of the supplied gaseous fuel 20,
- a density of the combustion air 12,
- a humidity of the combustion air 12.
[0087] The result of the calibration process can, for example, be a first correction factor.
The first pilot control characteristic is then corrected using the first correction
factor. The result of the calibration process can, for example, also be a first inflection
point. The first pilot control characteristic is then corrected using the first inflection
point. Also, the mixing ratio is influenced or controlled based on the first inflection
point.
[0088] The result of the calibration process can, for example, also be a first maximum value.
The first pilot control characteristic is then corrected using the first maximum value.
Also, the mixing ratio is influenced or controlled based on the first maximum value.
[0089] In an embodiment, the first pilot control characteristic comprises a first pilot
control curve. It is envisaged that the first pilot control characteristic is a first
pilot control curve.
[0090] A second control concept closely relates to the first control concept. The second
control concept can be summarised as follows: A second pilot control characteristic
stored in the closed-loop controller 14 describes an actuator setting and a combustion
signal. The combustion signal will be described in detail below. The second pilot
control characteristic has preferably been recorded under reference conditions. The
actuator 13, 19 is advantageously set via a signal comprising at least one of
- a signal sent to the (motor-) driven fan 13,
- a signal sent to the fuel valve 19 and/or gas valve 19.
[0091] The actuator 13, 19 is ideally set via a signal selected from
- a signal sent to the (motor-) driven fan 13,
- a signal sent to the fuel valve 19 and/or gas valve 19.
[0092] The closed-loop controller 14 adjusts the setting of the actuator 13, 19 so that
the desired signal strength of the combustion signal.
[0093] To that end, a first signal is obtained by the closed-loop controller 14 from the
optical sensor 8. A second signal is obtained by the closed-loop controller 14 from
the combustion sensor 4. The second signal is preferably obtained from an ionisation
electrode 4 as described above.
[0094] The closed-loop controller 14 merges the first signal obtained from the optical sensor
8 and the second signal obtained from the combustion sensor 4. As a result of the
merging, the closed-loop controller 14 produces the combustion signal. That is, the
closed-loop controller 14 produces the combustion signal as a function of the first
and second signals.
[0095] According to an aspect of the present disclosure, the closed-loop controller 14 produces
the combustion signal as a weighted mean of the first and second signals. The weighted
mean can be a weighted arithmetic mean. The weighted mean can also be a weighted geometric
mean.
[0096] The combustion signal preferably is a scalar signal.
[0097] The combustion signal is then preferably compared to a set point. The set point is
ideally chosen in accordance with the second pilot control characteristic. The signal
to be sent to the actuator 13, 19 is determined based on a deviation of the combustion
signal from the set point. The signal to be sent to the actuator 13, 19 can also be
calculated based on that deviation. Eventually, combustion takes place with the desired
mixing ratio between combustion air and combustion gas.
[0098] A calibration process can check and adapt the second pilot control characteristic.
Checking and adaption preferably take place with reference to the current combustion
conditions. Those conditions can be characterised at least by
- a composition of the gaseous fuel 20,
- a density of the supplied gaseous fuel 20,
- a density of the combustion air 12,
- a humidity of the combustion air 12.
[0099] The result of the calibration process can, for example, be a second correction factor.
The second pilot control characteristic is then corrected using the second correction
factor. The result of the calibration process can, for example, also be a second inflection
point. The second pilot control characteristic is then corrected using the second
inflection point. Also, the mixing ratio is influenced or controlled based on the
second inflection point.
[0100] The result of the calibration process can, for example, also be a second maximum
value. The second pilot control characteristic is then corrected using the second
maximum value. Also, the mixing ratio is influenced or controlled based on the second
maximum value.
[0101] In an embodiment, the second pilot control characteristic comprises a second pilot
control curve. It is envisaged that the second pilot control characteristic is a second
pilot control curve.
[0102] It should be understood that the foregoing relates only to certain embodiments of
the invention. Numerous changes can be made therein without departing from the scope
of the invention as defined by the following claims. It should also be understood
that the invention is not restricted to the illustrated embodiments. Various modifications
can be made within the scope of the claims.
Reference numerals
[0103]
- 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
1. A method of influencing or of controlling a mixing ratio of combustion air (12) and
a gaseous fuel (20) comprising more than twenty percent of hydrogen gas, wherein the
combustion air (12) and the gaseous fuel (20) are combusted together in a combustion
chamber (2), the method comprising the steps of:
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.
2. The method according to claim 1, the method comprising the step of:
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 the third signal strength and as a function of the fourth 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).
3. The method according to any of the claims 1 to 2, the method comprising the steps
of:
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.
4. A combustion apparatus (11) comprising at least one first optical sensor (8), a combustion
chamber (2), at least one actuator (13, 19) acting on a supply to the combustion chamber
(2) of combustion air (12) and/or of a gaseous fuel (20) comprising more than twenty
percent of hydrogen gas, a controller (14) in operative communication with the at
least one first optical sensor (8) and with the at least one actuator (13, 19), the
at least one first optical sensor (8) being configured to:
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).
5. The apparatus (11) according to claim 4, the controller (14) being configured to:
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 the third signal
strength and as a function of the fourth 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).
6. The apparatus (11) according to any of the claims 4 to 5, the controller (14) being
configured to:
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.
7. A computer program comprising instructions to cause the apparatus (11) of claim 4
to execute the steps of any of the methods according to claims 1 to 3.
8. A computer-readable data carrier having stored thereon the computer program of claim
7.
1. Verfahren zum Beeinflussen oder Steuern eines Mischungsverhältnisses von Verbrennungsluft
(12) und einem gasförmigen Brennstoff (20), der mehr als zwanzig Prozent Wasserstoffgas
umfasst, wobei die Verbrennungsluft (12) und der gasförmige Brennstoff (20) in einer
Brennkammer (2) zusammen verbrannt werden, wobei das Verfahren folgende Schritte umfasst:
Aufzeichnen eines ersten Rohsignals, das direkt aus einer Flamme (1) in der Brennkammer
(2) stammt, Erzeugen eines ersten Sensorsignals aus dem ersten Rohsignal und Senden
des ersten Sensorsignals zu einer Steuerung (14) und/oder Regelung (14) über einen
ersten optischen Sensor (8),
Aufzeichnen eines dritten elektrischen Signals, Erzeugen eines dritten Sensorsignals
aus dem dritten elektrischen Signal und Senden des dritten Sensorsignals zur Steuerung
(14) und/oder Regelung (14) über mindestens einen zweiten Sensor (4, 5) in einer Flammzone
der Brennkammer (2),
Bestimmen einer ersten Signalstärke des ersten Sensorsignals über die Steuerung (14)
und/oder Regelung (14),
Bestimmen einer dritten Signalstärke des dritten Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
nach dem Aufzeichnen des ersten Rohsignals Ändern einer Zufuhr der Verbrennungsluft
(12) und/oder des gasförmigen Brennstoffs (20) zur Brennkammer (2),
nach der Änderung der Zufuhr Aufzeichnen eines zweiten Rohsignals, das direkt aus
der Flamme (1) in der Brennkammer (2) stammt, Erzeugen eines zweiten Sensorsignals
aus dem zweiten Rohsignal und Senden des zweiten Sensorsignals zur Steuerung (14)
und/oder Regelung (14) über den mindestens einen ersten optischen Sensor (8),
Bestimmen einer zweiten Signalstärke des zweiten Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
nach der Änderung der Zufuhr Aufzeichnen eines vierten elektrischen Signals, Erzeugen
eines vierten Sensorsignals aus dem vierten elektrischen Signal und Senden des vierten
Sensorsignals zur Steuerung (14) und/oder Regelung (14) über den mindestens einen
zweiten Sensor (4, 5) in der Flammzone der Brennkammer (2),
Bestimmen einer vierten Signalstärke des vierten Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
Bestimmen einer Änderung der Signalstärke in Abhängigkeit von der ersten Signalstärke
und in Abhängigkeit von der zweiten Signalstärke und in Abhängigkeit von einer unter
der dritten und der vierten Signalstärke ausgewählten weiteren Signalstärke über die
Steuerung (14) und/oder Regelung (14), wobei die Änderung der Signalstärke durch die
Änderung der Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen Brennstoffs
(20) bewirkt wird, und
Regeln oder Einstellen der Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen
Brennstoffs (20) in Abhängigkeit von der Änderung der Signalstärke über die Steuerung
(14) und/oder Regelung (14).
2. Das Verfahren nach Anspruch 1, das folgenden Schritt umfasst:
Bestimmen der Änderung der Signalstärke in Abhängigkeit von der ersten Signalstärke
und in Abhängigkeit von der zweiten Signalstärke und in Abhängigkeit von der dritten
Signalstärke und in Abhängigkeit von der vierten Signalstärke über die Steuerung (14)
und/oder Regelung (14), wobei die Änderung der Signalstärke durch die Änderung der
Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen Brennstoffs (20) bewirkt
wird.
3. Das Verfahren nach einem der Ansprüche 1 bis 2, das folgende Schritte umfasst:
Beginnen einer Verbrennung in der Brennkammer (2) mit einem mageren Mischungsverhältnis
der Verbrennungsluft (12) und des gasförmigen Brennstoffs (20),
nach dem Beginn der Verbrennung Aufzeichnen eines fünften Rohsignals, das direkt aus
der Flamme (1) in der Brennkammer (2) stammt, Erzeugen eines fünften Sensorsignals
aus dem fünften Rohsignal und Senden des fünften Sensorsignals zur Steuerung (14)
und/oder Regelung (14) über den mindestens einen ersten optischen Sensor (8),
Bestimmen einer fünften Signalstärke des fünften Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
nach dem Aufzeichnen des fünften Rohsignals Erhöhen des Mischungsverhältnisses der
Verbrennungsluft (12) und des gasförmigen Brennstoffs (20),
nach dem Erhöhen Aufzeichnen eines sechsten Rohsignals, das direkt aus der Flamme
(1) in der Brennkammer (2) stammt, Erzeugen eines sechsten Sensorsignals aus dem sechsten
Rohsignal und Senden des sechsten Sensorsignals zur Steuerung (14) und/oder Regelung
(14) über den mindestens einen ersten optischen Sensor (8),
Bestimmen einer sechsten Signalstärke des sechsten Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
nach dem Aufzeichnen des sechsten Rohsignals weiteres Erhöhen des Mischungsverhältnisses
der Verbrennungsluft (12) und des gasförmigen Brennstoffs (20),
nach dem weiteren Erhöhen Aufzeichnen eines siebenten Rohsignals, das direkt aus der
Flamme (1) in der Brennkammer (2) stammt, Erzeugen eines siebenten Sensorsignals aus
dem siebenten Rohsignal und Senden des siebenten Sensorsignals zur Steuerung (14)
und/oder Regelung (14) über den mindestens einen ersten optischen Sensor (8),
Bestimmen einer siebenten Signalstärke des siebenten Sensorsignals über die Steuerung
(14) und/oder Regelung (14),
nach dem Aufzeichnen des siebenten Rohsignals noch weiteres Erhöhen des Mischungsverhältnisses
der Verbrennungsluft (12) und des gasförmigen Brennstoffs (20),
nach dem noch weiteren Erhöhen Aufzeichnen eines achten Rohsignals, das direkt aus
der Flamme (1) in der Brennkammer (2) stammt, Erzeugen eines achten Sensorsignals
aus dem achten Rohsignal und Senden des achten Sensorsignals zur Steuerung (14) und/oder
Regelung (14) über den mindestens einen ersten optischen Sensor (8),
Bestimmen einer achten Signalstärke des achten Sensorsignals über die Steuerung (14)
und/oder Regelung (14),
Bestimmen eines Wendepunktes in Abhängigkeit von der fünften bis achten Signalstärke
durch die Steuerung (14) und/oder Regelung (14) und
Regeln oder Einstellen der Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen
Brennstoffs (20) in Abhängigkeit von der Änderung der Signalstärke und von dem Wendepunkt
über die Steuerung (14) und/oder Regelung (14).
4. Verbrennungsvorrichtung (11), die Folgendes umfasst:
mindestens einen ersten optischen Sensor (8), eine Brennkammer (2), mindestens ein
Stellelement (13, 19), das eine Zufuhr von Verbrennungsluft (12) und/oder einem gasförmigen
Brennstoff (20), der mehr als zwanzig Prozent Wasserstoffgas umfasst, zur Brennkammer
(2) beeinflusst, eine Steuerung (14) und/oder Regelung (14), die mit dem mindestens
einen ersten optischen Sensor (8) und mit dem mindestens einen Stellelement (13, 19)
betrieblich verbunden ist, wobei der mindestens eine erste optische Sensor (8) so
konfiguriert ist, dass er:
ein erstes Rohsignal aufzeichnet, das direkt aus einer Flamme (1) in der Brennkammer
(2) stammt, aus dem ersten Rohsignal ein erstes Sensorsignal erzeugt und das erste
Sensorsignal zur Steuerung (14) und/oder Regelung (14) sendet,
wobei die Vorrichtung (11) zusätzlich mindestens einen zweiten Sensor (4, 5) umfasst,
der in einer Flammzone der Brennkammer (2) angeordnet und mit der Steuerung (14) und/oder
Regelung (14) betrieblich verbunden ist, wobei der mindestens eine zweite Sensor (4,
5) so konfiguriert ist, dass er:
ein drittes elektrisches Signal aufzeichnet, aus dem dritten elektrischen Signal ein
drittes Sensorsignal erzeugt und das dritte Sensorsignal zur Steuerung (14) und/oder
Regelung (14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine erste Signalstärke des ersten Sensorsignals bestimmt,
eine dritte Signalstärke des dritten Sensorsignals bestimmt,
nach dem Aufzeichnen des ersten Rohsignals ein erstes Stellsignal zu dem mindestens
einen Stellelement (13, 19) sendet, wobei das erste Stellsignal bewirkt, dass das
mindestens eine Stellelement (13, 19) die Zufuhr der Verbrennungsluft (12) und/oder
des gasförmigen Brennstoffs (20) ändert,
wobei der mindestens eine erste optische Sensor (8) so konfiguriert ist, dass er:
nach der Änderung der Zufuhr ein zweites Rohsignal aufzeichnet, das direkt aus der
Flamme (1) in der Brennkammer (2) stammt, aus dem zweiten Rohsignal ein zweites Sensorsignal
erzeugt und das zweite Sensorsignal zur Steuerung (14) und/oder Regelung (14) sendet,
wobei der mindestens eine zweite Sensor (4, 5) so konfiguriert ist, dass er:
nach der Änderung der Zufuhr ein viertes elektrisches Signal aufzeichnet, aus dem
vierten elektrischen Signal ein viertes Sensorsignal erzeugt und das vierte Sensorsignal
zur Steuerung (14) und/oder Regelung (14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine zweite Signalstärke des zweiten Sensorsignals bestimmt,
eine vierte Signalstärke des vierten Sensorsignals bestimmt,
in Abhängigkeit von der ersten Signalstärke und in Abhängigkeit von der zweiten Signalstärke
und in Abhängigkeit von einer unter der dritten und der vierten Signalstärke ausgewählten
weiteren Signalstärke eine Änderung der Signalstärke bestimmt, wobei die Änderung
der Signalstärke durch die Änderung der Zufuhr der Verbrennungsluft (12) und/oder
des gasförmigen Brennstoffs (20) bewirkt wird, und
in Abhängigkeit von der Änderung der Signalstärke ein zweites Stellsignal erzeugt
und das zweite Stellsignal zu dem mindestens einen Stellelement (13, 19) sendet, wobei
das zweite Stellsignal bewirkt, dass das mindestens eine Stellelement (13, 19) die
Zufuhr der Verbrennungsluft (12) zur Brennkammer (2) regelt oder einstellt.
5. Die Vorrichtung (11) nach Anspruch 4, wobei die Steuerung (14) und/oder Regelung (14)
so konfiguriert ist, dass sie:
die Änderung der Signalstärke in Abhängigkeit von der ersten Signalstärke und in Abhängigkeit
von der zweiten Signalstärke und in Abhängigkeit von der dritten Signalstärke und
in Abhängigkeit von der vierten Signalstärke bestimmt, wobei die Änderung der Signalstärke
durch die Änderung der Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen Brennstoffs
(20) bewirkt wird.
6. Die Vorrichtung (11) nach einem der Ansprüche 4 bis 5, wobei die Steuerung (14) und/oder
Regelung (14) so konfiguriert ist, dass sie:
ein drittes Stellsignal zu dem mindestens einen Stellelement (13, 19) sendet, wobei
das dritte Stellsignal ein mageres Mischungsverhältnis der Verbrennungsluft (12) und
des gasförmigen Brennstoffs (20) bewirkt,
wobei der mindestens eine erste optische Sensor (8) so konfiguriert ist, dass er:
nach dem Senden des dritten Stellsignals ein fünftes Rohsignal aufzeichnet, das direkt
aus der Flamme (1) in der Brennkammer (2) stammt, aus dem fünften Rohsignal ein fünftes
Sensorsignal erzeugt und das fünfte Sensorsignal zur Steuerung (14) und/oder Regelung
(14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine fünfte Signalstärke des fünften Sensorsignals bestimmt,
nach dem Aufzeichnen des fünften Rohsignals ein viertes Stellsignal zu dem mindestens
einen Stellelement (13, 19) sendet, wobei das vierte Stellsignal bewirkt, dass das
mindestens eine Stellelement (13, 19) das Mischungsverhältnis der Verbrennungsluft
(12) und des gasförmigen Brennstoffs (20) erhöht,
wobei der mindestens eine erste optische Sensor (8) so konfiguriert ist, dass er:
nach dem vierten Stellsignal ein sechstes Rohsignal aufzeichnet, das direkt aus der
Flamme (1) in der Brennkammer (2) stammt, aus dem sechsten Rohsignal ein sechstes
Sensorsignal erzeugt und das sechste Sensorsignal zur Steuerung (14) und/oder Regelung
(14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine sechste Signalstärke des sechsten Sensorsignals bestimmt,
nach dem Aufzeichnen des sechsten Rohsignals ein fünftes Stellsignal zu dem mindestens
einen Stellelement (13, 19) sendet, wobei das fünfte Stellsignal bewirkt, dass das
mindestens eine Stellelement (13, 19) das Mischungsverhältnis der Verbrennungsluft
(12) und des gasförmigen Brennstoffs (20) weiter erhöht,
wobei der mindestens eine erste optische Sensor (8) so konfiguriert ist, dass er:
nach dem fünften Stellsignal ein siebentes Rohsignal aufzeichnet, das direkt aus der
Flamme (1) in der Brennkammer (2) stammt, aus dem siebenten Rohsignal ein siebentes
Sensorsignal erzeugt und das siebente Sensorsignal zur Steuerung (14) und/oder Regelung
(14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine siebente Signalstärke des siebenten Sensorsignals bestimmt,
nach dem Aufzeichnen des siebenten Rohsignals ein sechstes Stellsignal zu dem mindestens
einen Stellelement (13, 19) sendet, wobei das sechste Stellsignal bewirkt, dass das
mindestens eine Stellelement (13, 19) das Mischungsverhältnis der Verbrennungsluft
(12) und des gasförmigen Brennstoffs (20) noch weiter erhöht,
wobei der mindestens eine erste optische Sensor (8) so konfiguriert ist, dass er:
nach dem sechsten Stellsignal ein achtes Rohsignal aufzeichnet, das direkt aus der
Flamme (1) in der Brennkammer (2) stammt, aus dem achten Rohsignal ein achtes Sensorsignal
erzeugt und das achte Sensorsignal zur Steuerung (14) und/oder Regelung (14) sendet,
wobei die Steuerung (14) und/oder Regelung (14) so konfiguriert ist, dass sie:
eine achte Signalstärke des achten Sensorsignals bestimmt,
in Abhängigkeit von der fünften bis achten Signalstärke einen Wendepunkt bestimmt
und
ein siebentes Stellsignal erzeugt und zu dem mindestens einen Stellelement (13, 19)
sendet, wobei das siebente Stellsignal bewirkt, dass das mindestens eine Stellelement
(13, 19) die Zufuhr der Verbrennungsluft (12) und/oder des gasförmigen Brennstoffs
(20) in Abhängigkeit von der Änderung der Signalstärke und in Abhängigkeit von dem
Wendepunkt regelt oder einstellt.
7. Computerprogramm mit Anweisungen, die bewirken, dass die Vorrichtung (11) nach Anspruch
4 die Schritte eines der Verfahren einem der Ansprüche 1 bis 3 ausführt.
8. Computerlesbarer Datenträger, auf dem das Computerprogramm nach Anspruch 7 gespeichert
ist.
1. Procédé pour influencer ou contrôler un rapport de mélange d'air de combustion (12)
et d'un carburant gazeux (20) contenant plus de vingt pourcents d'hydrogène gazeux,
l'air de combustion (12) et le carburant gazeux (20) étant brûlés ensemble dans une
chambre de combustion (2), la procédé comprenant les étapes consistant à ce que :
au moins un premier capteur optique (8) enregistre un premier signal brut provenant
directement d'une flamme (1) à l'intérieur de la chambre de combustion (2), produit
un premier signal de capteur à partir du premier signal brut, et envoie le premier
signal de capteur à un contrôleur (14) ;
au moins un deuxième capteur (4, 5) dans une zone de flamme de la chambre de combustion
(2) enregistre un troisième signal électrique, produit un troisième signal de capteur
à partir du troisième signal électrique, et envoie le troisième signal de capteur
au contrôleur (14) ;
le contrôleur (14) détermine une première intensité de signal du premier signal de
capteur ;
le contrôleur (14) détermine une troisième intensité de signal du troisième signal
de capteur ;
après enregistrement du premier signal brut, changer une alimentation en air de combustion
(12) et/ou en carburant gazeux (20) de la chambre de combustion (2) ;
après le changement d'alimentation, l'au moins un premier capteur optique (8) enregistre
un deuxième signal brut provenant directement de la flamme (1) à l'intérieur de la
chambre de combustion (2), produit un deuxième signal de capteur à partir du deuxième
signal brut, et envoie le deuxième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une deuxième intensité de signal du deuxième signal de
capteur ;
après le changement d'alimentation, l'au moins un deuxième capteur optique (4, 5)
à l'intérieur de la zone de flamme de la chambre de combustion (2) enregistre un quatrième
signal électrique, produit un quatrième signal de capteur à partir du quatrième signal
électrique, et envoie le quatrième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une quatrième intensité de signal du quatrième signal
de capteur ;
le contrôleur (14) détermine un changement d'intensité de signal en fonction de l'intensité
du premier signal et en fonction de l'intensité du deuxième signal et en fonction
d'une autre intensité de signal choisie parmi la troisième et la quatrième intensité
de signal, le changement d'intensité de signal étant causé par le changement d'alimentation
de l'air de combustion (12) et/ou du carburant gazeux (20) ; et
le contrôleur (14) contrôle ou règle l'alimentation en air de combustion (12) et/ou
en carburant gazeux (20) en fonction du changement d'intensité du signal.
2. Le procédé selon la revendication 1, le procédé
comprenant l'étape consistant à :
le contrôleur (14) détermine le changement d'intensité de signal en fonction de l'intensité
du premier signal et en fonction de l'intensité du deuxième signal et en fonction
de l'intensité du troisième signal et en fonction de l'intensité du quatrième signal,
le changement d'intensité de signal étant causé par le changement d'alimentation en
air de combustion (12) et/ou en carburant gazeux (20).
3. Le procédé selon l'une quelconque des revendications 1 à 2, le procédé comprenant
les étapes consistant à :
initier une combustion à l'intérieur de la chambre de combustion (2) avec un faible
rapport de mélange de l'air de combustion (12) et du carburant gazeux (20) ;
après le début de la combustion, l'au moins un premier capteur optique (8) enregistre
un cinquième signal brut provenant directement de la flamme (1) à l'intérieur de la
chambre de combustion (2), produit un cinquième signal de capteur à partir du cinquième
signal brut, et envoie le cinquième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une cinquième intensité de signal du cinquième signal
de capteur ;
après enregistrement du cinquième signal brut, enrichir le rapport de mélange de l'air
de combustion (12) et du carburant gazeux (20) ;
après l'enrichissement, l'au moins un premier capteur optique (8) enregistre un sixième
signal brut provenant directement de la flamme (1) à l'intérieur de la chambre de
combustion (2), produit un sixième signal de capteur à partir du sixième signal brut,
et envoie le sixième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une sixième intensité de signal du sixième signal de
capteur ;
après enregistrement du sixième signal brut, enrichir davantage le rapport de mélange
de l'air de combustion (12) et du carburant gazeux (20) ;
après le nouvel enrichissement, l'au moins un premier capteur optique (8) enregistre
un septième signal brut provenant directement de la flamme (1) à l'intérieur de la
chambre de combustion (2), produit un septième signal de capteur à partir du septième
signal brut, et envoie le septième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une septième intensité de signal du septième signal de
capteur ;
après enregistrement du septième signal brut, enrichir encore le rapport de mélange
de l'air de combustion (12) et du carburant gazeux (20) ;
après le nouvel enrichissement, l'au moins un premier capteur optique (8) enregistre
un huitième signal brut provenant directement de la flamme (1) à l'intérieur de la
chambre de combustion (2), produit un huitième signal de capteur à partir du huitième
signal brut, et envoie le huitième signal de capteur au contrôleur (14) ;
le contrôleur (14) détermine une huitième intensité de signal du huitième signal de
capteur ;
le contrôleur (14) détermine un point d'inflexion en fonction de la cinquième à la
huitième intensité de signal ; et
le contrôleur (14) contrôle ou règle l'alimentation en air de combustion (12) et/ou
en carburant gazeux (20) en fonction du changement d'intensité du signal et en fonction
du point d'inflexion.
4. Appareil de combustion (11) comprenant au moins un premier capteur optique (8), une
chambre de combustion (2), au moins un actionneur (13, 19) agissant sur une alimentation
de la chambre de combustion (2) en air de combustion (12) et/ou en un carburant gazeux
(20) contenant plus de vingt pourcents d'hydrogène gazeux, un contrôleur (14) en communication
opérationnelle avec l'au moins un premier capteur optique (8) et avec l'au moins un
actionneur (13, 19), l'au moins un premier capteur optique (8) étant configuré pour
:
enregistrer un premier signal brut provenant directement d'une flamme (1) à l'intérieur
de la chambre de combustion (2), produire un premier signal de capteur à partir du
premier signal brut, et envoyer le premier signal de capteur à un contrôleur (14)
;
l'appareil (11) comprend en plus au moins un deuxième capteur (4, 5) disposé à l'intérieur
de la zone de flamme de la chambre de combustion (2) et en communication opérationnelle
avec le contrôleur (14), l'au moins un deuxième capteur (4, 5) étant configuré pour
:
enregistrer un troisième signal électrique, produire un troisième signal de capteur
à partir du troisième signal électrique, et envoyer le troisième signal de capteur
au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une première intensité de signal du premier signal de capteur ;
déterminer une troisième intensité de signal du troisième signal de capteur ;
après enregistrement du premier signal brut, envoyer un premier signal d'actionnement
à l'au moins un actionneur (13, 19), le premier signal d'actionnement amenant l'au
moins un actionneur (13, 19) à changer l'alimentation en air de combustion (12) et/ou
en carburant gazeux (20) ;
l'au moins un premier capteur optique (8) étant configuré pour :
après le changement d'alimentation, enregistrer un deuxième signal brut provenant
directement de la flamme (1) à l'intérieur de la chambre de combustion (2), produire
un deuxième signal de capteur à partir du deuxième signal brut, et envoyer le deuxième
signal de capteur au contrôleur (14) ;
l'au moins un deuxième capteur (4, 5) étant configuré pour :
après le changement d'alimentation, enregistrer un quatrième signal électrique, produire
un quatrième signal de capteur à partir du quatrième signal électrique, et envoyer
le quatrième signal de capteur au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une deuxième intensité de signal du deuxième signal de capteur ;
déterminer une quatrième intensité de signal du quatrième signal de capteur ;
déterminer un changement d'intensité de signal en fonction de l'intensité du premier
signal et en fonction de l'intensité du deuxième signal et en fonction d'une autre
intensité de signal choisie parmi la troisième et la quatrième intensité de signal,
le changement d'intensité de signal étant causé par le changement d'alimentation de
l'air de combustion (12) et/ou du carburant gazeux (20) ; et
produire un deuxième signal d'actionnement en fonction du changement d'intensité du
signal et envoyer le deuxième signal d'actionnement à l'au moins un actionneur (13,
19), le deuxième signal d'actionnement amenant l'au moins un actionneur (13, 19) à
contrôler ou à régler l'alimentation en air de combustion (12) à la chambre de combustion
(2).
5. L'appareil (11) selon la revendication 4, le contrôleur (14) étant configuré pour
:
déterminer le changement d'intensité de signal en fonction de l'intensité du premier
signal et en fonction de l'intensité du deuxième signal et en fonction de l'intensité
du troisième signal et en fonction de l'intensité du quatrième signal, le changement
d'intensité de signal étant causé par le changement d'alimentation en air de combustion
(12) et/ou en carburant gazeux (20).
6. L'appareil (11) selon l'une quelconque des revendications 4 à 5, le contrôleur (14)
étant configuré pour :
envoyer un troisième signal d'actionnement à l'au moins un actionneur (13, 19), le
troisième signal d'actionnement entraînant un faible rapport de mélange de l'air de
combustion (12) et du carburant gazeux (20) ;
l'au moins un premier capteur optique (8) étant configuré pour :
après l'envoi du troisième signal d'actionnement, enregistrer un cinquième signal
brut provenant directement de la flamme (1) à l'intérieur de la chambre de combustion
(2), produire un cinquième signal de capteur à partir du cinquième signal brut, et
envoyer le cinquième signal de capteur au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une cinquième intensité de signal du cinquième signal de capteur ;
après enregistrement du cinquième signal brut, envoyer un quatrième signal d'actionnement
à l'au moins un actionneur (13, 19), le quatrième signal d'actionnement amenant l'au
moins un actionneur (13, 19) à enrichir le rapport de mélange de l'air de combustion
(12) et du carburant gazeux (20) ;
l'au moins un premier capteur optique (8) étant configuré pour :
après le quatrième signal d'actionnement, enregistrer un sixième signal brut provenant
directement de la flamme (1) à l'intérieur de la chambre de combustion (2), produire
un sixième signal de capteur à partir du sixième signal brut, et envoyer le sixième
signal de capteur au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une sixième intensité de signal du sixième signal de capteur ;
après enregistrement du sixième signal brut, envoyer un cinquième signal d'actionnement
à l'au moins un actionneur (13, 19), le cinquième signal d'actionnement amenant l'au
moins un actionneur (13, 19) à davantage enrichir le rapport de mélange de l'air de
combustion (12) et du carburant gazeux (20) ;
l'au moins un premier capteur optique (8) étant configuré pour :
après le cinquième signal d'actionnement, enregistrer un septième signal brut provenant
directement de la flamme (1) à l'intérieur de la chambre de combustion (2), produire
un septième signal de capteur à partir du septième signal brut, et envoyer le septième
signal de capteur au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une septième intensité de signal du septième signal de capteur ;
après enregistrement du septième signal brut, envoyer un sixième signal d'actionnement
à l'au moins un actionneur (13, 19), le sixième signal d'actionnement amenant l'au
moins un actionneur (13, 19) à encore enrichir le rapport de mélange de l'air de combustion
(12) et du carburant gazeux (20) ;
l'au moins un premier capteur optique (8) étant configuré pour :
après le sixième signal d'actionnement, enregistrer un huitième signal brut provenant
directement de la flamme (1) à l'intérieur de la chambre de combustion (2), produire
un huitième signal de capteur à partir du huitième signal brut, et envoyer le huitième
signal de capteur au contrôleur (14) ;
le contrôleur (14) étant configuré pour :
déterminer une huitième intensité de signal du huitième signal de capteur ;
déterminer un point d'inflexion en fonction de la cinquième à la huitième intensité
de signal ; et
produire un septième signal d'actionnement et envoyer le septième signal d'actionnement
à l'au moins un actionneur (13, 19), le septième signal d'actionnement amenant l'au
moins un actionneur (13, 19) à contrôler ou à régler l'alimentation en air de combustion
(12) et/ou en carburant gazeux (20) en fonction du changement d'intensité du signal
et en fonction du point d'inflexion.
7. Programme informatique comprenant des instructions pour amener l'appareil (11) de
la revendication 4 à exécuter les étapes selon les revendications 1 à 3.
8. Support de données lisible par ordinateur ayant enregistré dessus le programme informatique
selon la revendication 7.