[0001] The present invention relates to automatic control systems for controlling the gas
and/or air flow rates in gas fired boilers using an ionisation electrode as a sensing
element for determining the combustion condition of the burner.
[0002] New standards regarding gas fired boilers are limiting the allowable emissions of
harmful products resulting from combustion, specifically CO and NOx, to a very low
level.
[0003] In order to respect the new standards, improvements in the combustion process in
gas fired boilers have proved to be necessary. Therefore, several manufacturers have
provided their gas fired boilers with automatic control systems by which optimal operation
of the burner in any condition of thermal load can be ensured.
[0004] The most common method of monitoring the combustion process is to utilize an ionisation
electrode arranged in the flame area of the burner. It is known that the current flowing
through this electrode, i.e. the ionisation current, depends upon the combustion conditions.
Thus, information on the actual combustion condition is obtained by directly measuring
the ionisation current or by measuring the voltage across the electrode which is a
function of said ionisation current. The control system measures the ionisation current
and derives therefrom a signal to be used as a control variable for controlling the
flow rate of at least one of the combustion components, namely air and gas, supplied
to the gas fired boiler.
[0005] The present invention relates to an automatic control system for controlling both
the gas and air flow rates in gas fired boilers. This automatic control system will
be referred to in the description as "combined gas-air control system".
[0006] More particularly, the combined gas-air control system for gas fired boilers comprises:
- a microcontroller with memory means,
- selector means for predetermining set point temperatures Trh,Trs of the heating and sanitary water respectively,
- measuring means for ascertaining the temperature of the heating Th and sanitary Ts water, the air pressure Pa in the combustion chamber and the ionisation voltage Vion in the flame area of the burner, respectively and for communicating the measured
values back to the microcontroller,
- a thermostat for monitoring operation of the burner and for preventing its overheating,
- a fan operated by a variable-speed motor for controlling the flow rate Qa of air supplied to the combustion chamber,
- an electrically controlled modulating valve for modulating the flow rate Qg of gas supplied to the burner, characterized in that said microcontroller comprises:
- first controlling means for producing a corrective action in response to an error
signal

or

and for giving an output signal Pac corresponding to a corrected value of air pressure in the combustion chamber,
- second controlling means for producing a corrective action in response to an error
signal

and for adjusting the control voltage Vf applied to the variable-speed motor,
- processing means for calculating theoretical optimal values of the ionisation voltage
and the modulating valve current in response to the output signal Pac from said first controlling means and for giving said theoretical values as output
signals Vion(th) and Imod(th), respectively,
- third controlling means for producing a corrective action in response to an error
signal

and for giving an output signal Imodc corresponding to a corrected value of the modulating valve current, said output signal
Imodc from said third controlling means being added to the output signal Imod(th) from said processing means and the resulting sum signal

being applied to the modulating valve.
[0007] The combined gas-air control system will be described in more detail with reference
to the accompanying drawings, wherein:
Figure 1 is a schematic view of a gas fired boiler provided with the combined gas-air
control system of the present invention, and
Figure 2 is a block diagram of the combined gas-air control system according to the
present invention.
[0008] Figure 1 shows a gas fired boiler, generally indicated with B, comprising an airtight
combustion chamber 1 in which a gas burner 2 is arranged and gas supplied via an ON-OFF
valve 3 mounted on the gas supply pipe. An electrically controlled modulating valve
MV is arranged downstream from the ON-OFF valve 3 for the purpose of modulating the
gas flow rate. A finned heat exchanger 4 is placed above the gas burner 2. Overhead
the gas burner 2 and the heat exchanger 4 a hood 5 is provided with a suction fan
6 for drawing fumes from the combustion chamber and expelling them via an exhaust
pipe 7. The suction fan 6 also sucks ambient air from the outside via a suction pipe
8 arranged coaxially to the pipe 7 and supplies it to the combustion chamber 1 in
order to sustain the combustion. The fan 6 is operated at adjustable speed by means
of a variable-speed motor FM.
[0009] A pipe 9 forming the heating circuit (primary circuit), passes through the heat exchanger
4 for heating the heating water (primary heat exchanger). The heating water is supplied
via a delivery pipe 10 and returns to the gas fired boiler via a return pipe 11. The
pipe 9 embodies a circulation pump 12 and a three-way valve 13. A pipe 14 forming
the circuit for the sanitary water (secondary circuit) and passing through the heat
exchanger 15 for heating the sanitary water (secondary heat exchanger) departs from
the three-way valve 13. Sanitary water is supplied to the secondary heat exchanger
15 via a pipe 16 and after being heated it is delivered via a pipe 17 for usage.
[0010] The function of the combined gas-air control system of the invention is to control
the gas and air flow rates in the gas fired boiler B in order to hold either the heating
water temperature or the sanitary water temperature to a desired value which will
be referred to in the following as set point temperature.
[0011] Another function of the combined gas-air control system of the invention is to improve
combustion and reduce emission of harmful combustion products in gas fired boilers.
[0012] In order to accomplish this, the combined gas-air control system of the invention
comprises a microcontroller µC for operating the modulating valve MV and for adjusting
the speed of the variable-speed motor FM. The output control signals transmitted from
the µC to the modulating valve MV and the variable-speed motor FM are indicated with
I
mod and V
f and they correspond to the control current of the modulating valve MV and to the
control voltage of the variable-speed motor FM, respectively.
[0013] In response to the control signals I
mod and V
f transmitted from the µC to the modulating valve MV and the variable-speed motor FM,
the gas flow rate Q
g and the air flow rate Q
a are controlled so as to change combustion process conditions in the gas fired boiler
B and to bring the heating or sanitary water temperature back to the set point predetermined
by the user. Q
g and Q
a will be referred to in the following as manipulated variables.
[0014] The set point temperatures of the heating and sanitary water are set typically by
means of potentiometers R
h and R
s, respectively and the corresponding set point input signals T
hr and T
sr are supplied to the microcontroller µC. Feedback informations relating to the heating
water and sanitary water temperatures, the air pressure in the combustion chamber
1 and the combustion process conditions in the burner 2 are sensed by appropriate
sensors and transmitted to the microcontroller µC. To accomplish this, temperature
measuring means 18, 19 embodying standard temperature sensors are provided for measuring
the heating water and the sanitary water temperatures, respectively, air pressure
measuring means 20 embodying a standard pressure sensor are provided for measuring
the air pressure in the combustion chamber, and an ionisation electrode 21 arranged
in the flame area of the burner is provided for measuring the voltage across the ionisation
electrode as a function of the ionisation current through the ionisation electrode
depending on the combustion process conditions of the burner 2. The feedback signals
transmitted from the measuring means 18, 19, 20 and 21 to the microcontroller µC are
indicated with T
h, T
s, P
a and V
ion respectively.
OPERATION
[0015] Operation of the combined gas-air control system will be now described with reference
to the block diagram of Figure 2.
[0016] According to the usual conventions, lines represent signals, a circle is an algebraic
summing point representing addition or subtraction of input signals to the point,
rectangles are system elements and a line branching from another line indicates a
division of the signal into more than one path without modification.
[0017] The controlled variables are the heating and the sanitary water temperatures, the
air pressure in the combustion chamber and the voltage across the ionisation electrode.
Feedback signals T
h, T
s, P
a and V
ion proportional to the values of the controlled variables are applied to the microcontroller
µC for processing. Control signals V
f and I
mod from the microcontroller µC are transmitted to the variable-speed motor FM and the
modulating valve MV and control of the manipulated variables Q
a and Q
g in response to said control signals is thereby obtained.
[0018] Operation of the system can be seen considering the control of the sanitary water
temperature, but it should be clearly understood that a similar operation applies
to the control of the heating water temperature.
[0019] Referring to Figure 2, the microcontroller µC compares the feedback signal T
s from the water temperature measuring means 18 with the set point signal T
rs and transmits their difference, i.e. the error signal

, to the control element 22 which utilizes said error signal E(T) to determine the
corrected value of air pressure in the combustion chamber 1. The control element 22
in response to the error signal E(T) sequentially performs a proportional+integral+derivative
(PID) control mode and a proportional (P) control mode. The output signal P
ac resulting from this PID and P corrective action is compared with the feedback signal
P
a from the air pressure measuring means 20 and the error signal

actuates the control element 23. Said control element 23 performs in sequence a PID
control mode and P control mode and adjusts the control voltage V
f applied to the variable-speed motor FM so as to change the manipulated variable Q
a, i.e. the air flow rate, in response to the error signal E(P).
[0020] The output signal P
ac from the control element 22 is also applied to processing elements 24 and 25 which
calculate the theoretical values of the voltage across the ionisation electrode and
of the modulating valve current dependent on the corrected air pressure value. In
order to accomplish this calculation, each processing element 24 and 25 embodies a
memory in which the optimal relationships between the voltage across the ionisation
electrode and the modulating valve current, respectively and the air pressure in the
combustion chamber are stored. The output signals from the processing elements 24
and 25 are indicated with V
ion(th) and I
mod(th), respectively.
[0021] The feedback signal V
ion from the ionisation voltage measuring means 21 is compared with the output signal
V
ion(th) from the processing element 24 and the error signal

is supplied to the control element 26. In response to the error signal E(V), the
control element 26 performs a P control mode and determines a corrected value of the
control current in the modulating valve MV. The output signal I
modc from the control element 26 is added to the output signal I
mod(th) from the processing element 25 and the resulting sum signal

is used to operate the modulating valve MV so as to change the manipulated variable
Q
g, i.e. the gas flow rate.
[0022] Operation of the burner is also monitored by a thermostat 27 arranged in the burner
area and connected to the µC. In the case of burner overheating, the thermostat 27
signals the malfunctioning to the µC which then shuts down the burner.
[0023] Essentially, the rpm of the fan motor and the modulating valve current can be adjusted
for ensuring the required air Q
a and gas Q
g flow rates according to the set point temperatures of the heating or sanitary water
that is delivered to usage. When the thermal load changes, a change in the rpm of
the fan motor and in the throttle of the modulating valve will occur. Moreover, operation
of the burner is also automatically adjusted when the type of gas supplied to the
burner changes. The combined gas-air control system of the invention ensures optimal
operation of the gas fired boiler with respect to NOx and CO emissions and efficiency.
1. Combined gas-air control system for gas fired boilers (B) including:
- a microcontroller (µC) with memory means,
- selector means (Rh,Rs) for predetermining set point temperatures (Trh,Trs) of the heating and sanitary water respectively,
- measuring means (18,19,20,21) for ascertaining the temperature of the heating (Th) and sanitary (Ts) water, the air pressure (Pa) in the combustion chamber (1) and the ionisation voltage (Vion) in the flame area of the burner (2), respectively and for communicating the measured
values back to the microcontroller (µC),
- a thermostat (27) for monitoring operation of the burner and for preventing its
overheating,
- a fan (6) operated by a variable-speed motor (FM) for controlling the flow rate
(Qa) of air supplied to the combustion chamber (1),
- an electrically controlled modulating valve (MV) for modulating the flow rate (Qg) of gas supplied to the burner (2),
characterized in that said microcontroller (µC) comprises:
- first controlling means (22) for producing a corrective action in response to an
error signal

or

and for giving an output signal Pac corresponding to a corrected value of air pressure in the combustion chamber (1),
- second controlling means (23) for producing a corrective action in response to an
error signal

and for adjusting the control voltage Vf applied to the variable-speed motor (FM),
- processing means (24,25) for calculating theoretical optimal values of the ionisation
voltage and the modulating valve current in response to the output signal Pac from said first controlling means and for giving said theoretical values as output
signals Vion(th) and Imod(th), respectively,
- third controlling means (26) for producing a corrective action in response to an
error signal

and for giving an output signal Imodc corresponding to a corrected value of the modulating valve current, said output signal
Imodc from said third controlling means (26) being added to the output signal Imod(th) from said processing means (25) and the resulting sum signal

being applied to the modulating valve (MV).
2. Combined gas-air control system according to claim 1, characterized in that the corrective
action of said first (22) and second (23) controlling means in response to the respective
input error signals E(T) and E(P) embodies in combination a proportional+integral+derivative
control mode and a proportional control mode.
3. Combined gas-air control system according to claim 1, characterized in that the corrective
action of said third controlling means (26) in response to the input error signal
E(V) embodies a proportional control mode.
4. Combined gas-air control system according to claim 1, characterized in that in said
microcontroller (µC) the optimal relationships between the voltage across the ionisation
electrode and the modulating valve current,respectively and the air pressure in the
combustion chamber are stored.
5. Combined gas-air control system according to claim 1, characterized in that said microcontroller
(µC) is preferably a digital microcontroller provided with standard A/D and D/A conversion
means.
6. Combined gas-air control system according to claim 1, characterized in that said third
controlling means (26) provide for an automatic adjustment of the burner operation
when the type of gas supplied to the burner changes.