TECHNICAL FIELD
[0001] The present invention relates to a hydrogen combustion furnace and an operating method
for a hydrogen combustion furnace.
BACKGROUND ART
[0002] In order to realize the demand for carbon neutrality, there is growing interest in
technological development for reducing CO
2 gas emissions. Industrial furnaces used in the manufacturing process of metals, glass,
and the like emit large amounts of CO
2 gas, and reducing this amount is recognized as an important issue.
[0003] Oxyfuel combustion is known to be an effective means of reducing CO
2 gas and saving energy. Oxyfuel combustion is a combustion method that uses oxygen
or oxygen-enriched air as an oxidant, and is widely used in industrial furnaces. Oxyfuel
combustion reduces the amount of nitrogen in the oxidant, which does not contribute
to combustion, resulting in benefits such as an increase in flame temperature and
a reduction in exhaust gas heat loss. As a result, it is possible to reduce the amount
of fuel used by improving thermal efficiency. In other words, the amount of hydrocarbon
fuel used can be reduced, which greatly contributes to reducing CO
2 gas emissions.
[0004] In addition to conventional energy-saving technologies, the conversion of hydrocarbon
fuels to hydrogen energy is expected. Patent Document 1 discloses a technology using
a combustion burner (hydrogen burner) that uses hydrogen gas as fuel in an industrial
combustion furnace.
PRIOR ART DOCUMENTS
PATENT LITERATURE
SUMMARY OF INVENTION
PROBLEM TO BE SOLVED BY THE INVENTION
[0006] In furnace combustion using a combustion burner and a combustion furnace, the input
energy is classified into the amount of heat effectively used in the furnace and the
amount of heat lost by being discharged to the outside of the system as exhaust gas.
For example, when the oxygen ratio is 1.05 and the exhaust gas temperature is 1300°C,
it is known that the higher the oxygen concentration in the oxidizer, the smaller
the proportion of exhaust gas heat loss (i.e., the higher the proportion of heat effectively
used in the furnace, which means higher heating efficiency) in both cases of using
a hydrocarbon fuel (e.g., methane) and using hydrogen as fuel. The higher the heating
efficiency, the smaller the amount of heat required to heat and maintain the furnace
to a specified temperature. Therefore, by applying oxygen combustion to a hydrogen
burner that uses hydrogen as fuel, it is expected to reduce fuel costs.
[0007] However, it is generally believed that hydrogen combustion has a higher flame temperature
than hydrocarbon fuel combustion, which leads to increased NOx emissions, mainly thermal
NOx. Similarly, oxygen combustion is known to increase NOx emissions, especially in
oxygen-rich conditions, due to the high flame temperature. Therefore, there is concern
that the combination of hydrogen combustion and oxygen combustion will further increase
NOx emissions.
[0008] The present invention has been made in view of the above circumstances, and an object
of the present invention is to provide a hydrogen combustion furnace that is capable
of reducing NOx emissions, and an operation method for a hydrogen combustion furnace.
MEANS FOR SOLVING THE PROBLEM
[0009] In order to solve the above problems, the present invention has the following configurations.
- [1] A hydrogen combustion furnace, including:
a combustion furnace main body having a burner;
a first path which supplies hydrogen into the burner;
a second path which supplies a combustion-supporting gas containing oxygen into the
burner;
a third path which leads out an exhaust gas from the combustion furnace main body;
a first control device which is located on the first path and adjusts an amount of
hydrogen supplied;
a second control device which is located on the second path and adjusts an amount
of the combustion-supporting gas supplied;
a gas analyzer which is located on the third path and analyzes components in the exhaust
gas; and
a control device which transmits and receives electric signals between the first control
device, the second control device, and the gas analyzer,
wherein the control device controls the first control device and the second control
device based on an analysis value obtained by the gas analyzer so that the hydrogen
in the combustion furnace main body is incompletely combusted.
- [2] The hydrogen combustion furnace according to [1],
wherein the hydrogen combustion furnace further includes a moisture removal device
which is located on the third path and removes moisture from the exhaust gas.
- [3] The hydrogen combustion furnace according to [1] or [2],
wherein the moisture removal device is located on the primary side of the gas analyzer.
- [4] The hydrogen combustion furnace according to any one of [1] to [3],
wherein the hydrogen combustion furnace further includes a combustion device which
is connected to the third path and uses the exhaust gas as at least a part of fuel.
- [5] The hydrogen combustion furnace according to any one of [1] to [4],
wherein the combustion device is a heat exchanger provided across one or both of the
first path and the second path.
- [6] The hydrogen combustion furnace according to any one of [1] to [5],
wherein the combustion furnace main body is a heating furnace that heats an object
to be heated accommodated in an inner space.
- [7] An operation method for a hydrogen combustion furnace, including a combustion
furnace body having a burner which combusts hydrogen and a combustion-supporting gas
containing oxygen,
wherein the hydrogen is incompletely combusted in the combustion furnace body.
- [8] The operation method for a hydrogen combustion furnace according to [7],
wherein hydrogen is incompletely combusted in the combustion furnace body with an
oxygen ratio of 0.98 or less.
- [9] The operation method for a hydrogen combustion furnace according to [7] or [8],
wherein the combustion-supporting gas having an oxygen concentration of 90% by volume
or more is used.
EFFECTS OF THE INVENTION
[0010] According to the hydrogen combustion furnace and the operation method for a hydrogen
combustion furnace of the present invention, it is possible to reduce NOx emissions.
BRIEF DESCRIPTION OF DRAWINGS
[0011]
[FIG. 1] FIG. 1 is a system diagram showing the configuration of a hydrogen combustion furnace
of one embodiment according to the present invention.
[FIG. 2] FIG. 2 is a system diagram showing the configuration of a hydrogen combustion
furnace of another embodiment according to the present invention.
[FIG. 3] FIG. 3 is a diagram showing the results of a verification test of the present
invention.
[FIG. 4] FIG. 4 is a diagram showing the results of a verification test of the present
invention.
[FIG. 5] FIG. 5 is a diagram showing the results of a verification test of the present
invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] Hereinafter, a hydrogen combustion furnace and an operation method for a hydrogen
combustion furnace, which are one embodiment according to the present invention, will
be described in detail with reference to the figures. Note that the figures used in
the following description may show characteristic parts in an enlarged scale for the
sake of convenience in order to make the characteristics easier to understand, and
the dimensional ratios of each component may not necessarily be the same in reality.
[0013] The meanings and definitions of the terms used in the present description are as
follows.
[0014] "Heating efficiency" is the ratio of energy used to heat the furnace with respect
to the energy input. The energy used to heat the furnace is calculated by calculating
the amount of heat carried away by the exhaust gas (exhaust gas heat loss) and subtracting
the exhaust gas loss from the energy input.
[0015] "Oxygen ratio" refers to the ratio of the amount of oxygen contained in the combustion-supporting
gas with respect to the amount of oxygen required for complete combustion of fuel.
[0016] A numerical range expressed as "~" means a numerical range with the numbers before
and after ~ as the lower and upper limits.
<Hydrogen combustion furnace>
[0017] First, the configuration of a hydrogen combustion furnace, which is an embodiment
according to the present invention, will be described. FIG. 1 is a system diagram
showing the configuration of a hydrogen combustion furnace of the present embodiment.
Note that the solid arrows in FIG. 1 indicate the direction of gas flow, and the dotted
arrows indicate the direction of transmission of electrical signals.
[0018] As shown in FIG. 1, a hydrogen combustion furnace 1 of the present embodiment is
configured to include a combustion furnace body 2, a burner 3, a moisture removal
device 4, a gas analyzer 5, a control device 6, a flow rate control valve (first control
device) 7, a flow rate control valve (second control device) 8, a combustor (combustion
device) 9, and paths L1 to L6.
[0019] In the hydrogen combustion furnace 1 of the present embodiment, when hydrogen as
fuel and oxygen contained in a combustion-supporting gas are supplied into the burner
3 and combusted in the combustion furnace main body 2 (in-furnace combustion), hydrogen
is combusted at a low oxygen ratio (i.e., incomplete combustion), thereby reducing
NOx emissions.
[0021] When the hydrogen combustion furnace 1 of the present embodiment is used as a heating
furnace, examples of the objects to be heated include steel, molten metal, and glass.
Since the hydrogen combustion furnace 1 of the present embodiment uses hydrogen gas
as fuel, the main components of the exhaust gas during incomplete combustion are H
2, H
2O, and N
2, and carbon monoxide (CO), carbon dioxide (CO
2), and soot that are generated when a hydrocarbon fuel is used are not emitted. Therefore,
this is preferable because there is no risk of adversely affecting the quality of
the objects to be heated.
[0023] The path (first path) L1 is located between a hydrogen gas supply source (not shown)
and the burner 3. The path L1 is a gas supply line that supplies hydrogen gas (H
2) as fuel from the hydrogen gas supply source into the burner 3. The flow rate control
valve (first control device) 7 is provided on the path L1.
[0024] The path (second path) L2 is located between a combustion-supporting gas supply source
(not shown) and the burner 3. The path L2 is a gas supply line that supplies the combustion-supporting
gas from the combustion-supporting gas supply source into the burner 3. The flow rate
control valve (second control device) 8 is provided on the path L2.
[0025] The flow rate control valves 7 and 8 are control devices that adjust the supply amount
of gas flowing through the gas supply line by a control signal from the control device
6 or manually. Examples of the flow rate control valves 7 and 8 include a control
valve, a mass flow controller, and a manual needle valve.
[0026] The combustion-supporting gas is a gas (oxidizer) containing oxygen, and oxygen gas
(O
2), oxygen-enriched air obtained by enriching air with oxygen, or air can be used.
The oxygen concentration in the combustion-supporting gas (oxidizer) is preferably
21% by volume or more, more preferably 40% by volume or more, and even more preferably
90% by volume or more. The higher the oxygen concentration in the combustion-supporting
gas, the lower the nitrogen concentration in the combustion-supporting gas, so that
NOx emissions can be reduced when incomplete combustion is performed in the hydrogen
combustion furnace 1. In addition, when the oxygen concentration in the combustion-supporting
gas is 90% by volume or more, the hydrogen concentration in the exhaust gas increases,
so that unreacted hydrogen gas contained in the exhaust gas can be effectively used
as fuel.
[0027] The path (third path) L3 is located between the combustion furnace main body 2 and
the combustor 9. The path L3 is a gas supply line that supplies hydrogen gas in the
exhaust gas discharged from the combustion furnace main body 2 into the combustor
9 as a part of fuel. The moisture removal device 4 and the gas analyzer 5 are provided
in this order from the primary side on the path L3.
[0028] The moisture removal device 4 is located on the primary side of the gas analyzer
5 on the path L3. The moisture removal device 4 removes moisture (H
2O) from the exhaust gas flowing through the path L3. The moisture removal device 4
is also connected to the path L4, and discharges the moisture removed from the exhaust
gas to the outside of the system. The moisture removal device 4 is not particularly
limited as long as it can remove moisture from a mixed gas. Examples of the moisture
removal device 4 include a mist separator, a water wash bubbler, and a chiller.
[0029] The gas analyzer 5 is located on the secondary side of the moisture removal device
4 on the path L3. The gas analyzer 5 is a device having an analyzer that analyzes
components in the exhaust gas that is led out from the combustion furnace main body
2 to the path L3 and from which moisture has been removed by the moisture removal
device 4. The gas analyzer 5 has one or more analyzers that can confirm that the combustion
furnace main body 2 is incompletely combusted. That is, the gas analyzer 5 has at
least one of a hydrogen analyzer for confirming whether or not hydrogen is contained
in the exhaust gas and an oxygen analyzer for confirming whether or not oxygen is
contained in the exhaust gas. The gas analyzer 5 may also have one or more analyzers
that can detect nitrogen, NOx, and moisture among the components in the exhaust gas
led out into the path L3.
[0030] The combustor 9 is a combustion device that uses unreacted hydrogen gas contained
in the exhaust gas discharged from the combustion furnace main body 2 as at least
a part of fuel. The combustor 9 is not particularly limited as long as it can use
the hydrogen gas contained in the exhaust gas as fuel. Examples of the combustor 9
include a boiler and other combustion furnaces. In addition, it is more preferable
that the combustor 9 not increase the amount of NOx contained in the exhaust gas discharged
from the combustion furnace main body 2.
[0031] The paths L3, L5, and L6 are connected to the combustor 9. The path L5 is a gas supply
line that supplies fuel and combustion-supporting gas into the combustor 9. The path
L6 is a gas discharge line that discharges the exhaust gas led out from the combustor
9 to the outside of the system.
[0032] The control device 6 transmits and receives electric signals by wire or wirelessly
between the flow rate control valve (first control device) 7, the flow rate control
valve (second control device) 8, and the gas analyzer 5. The control device 6 has
a function of controlling the flow rate control valves 7 and 8 based on the gas analysis
values obtained from the gas analyzer 5 so that hydrogen in the combustion furnace
main body 2 is incompletely combusted.
[0033] The control device 6 is not particularly limited as long as it has the above-mentioned
functions. The control device 6 may be configured to include a central processing
unit (CPU), a memory, and a hard disk drive. The control device 6 may be provided
independently of (as a separate entity from) the flow rate control valve 7, the flow
rate control valve 8, and the gas analyzer 5, or may be provided as an attachment
to any of the flow rate control valve 7, the flow rate control valve 8, and the gas
analyzer 5.
<Operation method for hydrogen combustion furnace>
[0034] Next, an operation method for a hydrogen combustion furnace, which is one embodiment
of the presented invention, will be explained.
[0035] The operation method for a hydrogen combustion furnace of the present embodiment
is a method for operating the hydrogen combustion furnace 1 including the combustion
furnace main body 2 having the burner 3 that combusts hydrogen and the combustion-supporting
gas containing oxygen.
[0036] Below, as an example of an operation method for a hydrogen combustion furnace according
to one embodiment of the present invention, a specific description will be given of
the above-mentioned hydrogen combustion furnace 1 using oxygen-enriched air as the
combustion-supporting gas.
[0037] First, in the hydrogen combustion furnace 1 shown in FIG. 1, hydrogen gas (H
2) is supplied from the path L1, and oxygen-enriched air (N
2, O
2) is supplied from the path L2 as a combustion-supporting gas into the burner 3, and
they are combusted in the furnace in the combustion furnace main body 2. In the present
embodiment, hydrogen is incompletely combusted in the combustion furnace main body
2.
[0038] From the combustion furnace main body 2, a mixed gas containing unreacted hydrogen
gas (H
2), nitrogen gas (N
2), water (H
2O), and NOx is discharged as exhaust gas into the path L3.
[0039] Next, water is removed from the exhaust gas discharged into the path L3 in the moisture
removing device 4. Thereby, a mixed gas containing hydrogen gas (H
2), nitrogen gas (N
2), and NOx flows through the path L3 on the secondary side of the moisture removing
device 4.
[0040] Then, the gas components in the mixed gas flowing through the path L3 are analyzed
by the gas analyzer 5. Specifically, the gas analyzer 5 confirms that hydrogen is
incompletely combusted in the combustion furnace main body 2, that is, that hydrogen
gas is contained in the mixed gas, and that oxygen gas is not contained in the mixed
gas.
[0041] The analysis results from the gas analyzer 5 are transmitted to the control device
6 through electric signals. If hydrogen gas is not contained in the mixed gas, the
control device 6 transmits a control signal to the flow rate control valve (first
control device) 7 to increase the opening degree. This increases the amount of hydrogen
gas supplied into the burner 3 through the path L1.
[0042] On the other hand, when oxygen gas is contained in the mixed gas, the control device
6 transmits a control signal to the flow rate control valve (second control device)
8 to reduce the opening degree. As a result, the combustion-supporting gas supplied
into the burner 3 through the path L2 is reduced.
[0043] In the operation method for a hydrogen combustion furnace of the present embodiment,
the control device 6 controls the oxygen ratio in the combustion furnace main body
2 to be less than 1. By setting the upper limit of the oxygen ratio to less than 1,
an incomplete combustion state is obtained, and the amount of NOx in the exhaust gas
can be suppressed. The upper limit of the oxygen ratio is preferably 0.98 or less,
and more preferably 0.97 or less. By setting the oxygen ratio to 0.98 or less, a further
reduction in NOx emissions can be obtained. The lower limit of the oxygen ratio is
preferably 0.90 or more, and more preferably 0.95 or more. By setting the oxygen ratio
to 0.90 or more, NOx emissions can be effectively reduced while suppressing a decrease
in heating efficiency.
[0044] Next, after the gas components are analyzed by the gas analyzer 5, the mixed gas
flowing through the path L3 is introduced into the combustor 9.
[0045] In the combustor 9, hydrogen contained in the mixed gas is used as part of fuel due
to incomplete combustion in the combustion furnace main body 2. As a result, according
to the operation method for the hydrogen combustion furnace 1 of the present embodiment,
it is possible to suppress a decrease in the heating efficiency of the entire hydrogen
combustion furnace 1 including the combustor 9.
[0046] When combusting in the combustor 9 by supplying normal fuel and the combustion-supporting
gas through the path L5, if a small amount of hydrogen is supplied and mixed with
the existing fuel, the combustion conditions do not change significantly. Therefore,
the mixed gas containing a small amount of NOx is discharged through the path L6.
[0047] According to the operating method for the hydrogen combustion furnace 1 of the present
embodiment, the exhaust gas led out from the combustion furnace main body 2 can be
reused without increasing NOx emissions.
[0048] As described above, according to the hydrogen combustion furnace 1 and the operation
method thereof of the present embodiment, when hydrogen gas is used as fuel for the
burner 3 and in-furnace combustion is performed in the combustion furnace main body
2, hydrogen is combusted at a low oxygen ratio (i.e., incomplete combustion), so that
it is possible to reduce the amount of NOx in the exhaust gas discharged from the
combustion furnace main body 2.
[0049] Moreover, according to the hydrogen combustion furnace 1 and the operation method
thereof of the present embodiment, hydrogen contained in the mixed gas which is generated
due to incomplete combustion of the hydrogen gas in the combustion furnace main body
2 is used as part of the fuel for the combustor 9, so that a decrease in heating efficiency
of the entire hydrogen combustion furnace 1 including the combustor 9 can be suppressed.
[0050] The technical scope of the present invention is not limited to the above-described
embodiments, and various modifications can be made without departing from the spirit
of the present invention. According to the above-described hydrogen combustion furnace
1 and the operating method thereof, the configuration in which the combustor 9 is
used as the combustion device has been described as an example, but the present invention
is not limited to this embodiment. For example, the present invention may be configured
to use a heat exchanger 29 (see the following embodiment) instead of the combustor
9 as the combustion device.
[0051] FIG. 2 is a system diagram showing the configuration of a hydrogen combustion furnace
of another embodiment according to the present invention.
[0052] As shown in FIG. 2, a hydrogen combustion furnace 21 of the present embodiment differs
in the hydrogen combustion furnace 1 above in that it uses the heat exchanger 29 instead
of the combustor 9 as the combustion device, and uses paths L25 and L26 instead of
paths L5 and L6. Therefore, in the hydrogen combustion furnace 21, the same components
as those of the hydrogen combustion furnace 1 are denoted by the same reference numerals,
and their description will be omitted.
[0053] The heat exchanger (combustion device) 29 is provided across the path L1 and the
path L2, and uses unreacted hydrogen gas contained in the exhaust gas discharged from
the combustion furnace main body 2 as at least a part of the fuel.
[0054] The paths L3, L25, and L26 are connected to the heat exchanger 29. The path L25 is
a gas supply line that supplies a combustion-supporting gas (oxygen gas (O
2) is exemplified in the figure) into the heat exchanger 29. The path L26 is a gas
discharge line that discharges the exhaust gas led out from the heat exchanger 29
to the outside of the system.
[0055] In addition, in the operating method for the hydrogen combustion furnace 21, after
the gas components are analyzed by the gas analyzer 5, the mixed gas flowing through
path L3 is introduced into the heat exchanger 29.
[0056] The heat exchanger 29 uses hydrogen contained in the mixed gas which is generated
due to incomplete combustion in the combustion furnace main body 2 as fuel. As a result,
the hydrogen gas flowing through the path L1 and the combustion-supporting gas flowing
through the path L2 can be heated (preheated) by heat generated by combusting the
hydrogen gas by the heat exchanger 29.
[0057] As described above, the hydrogen combustion furnace 21 and the operating method thereof
make it possible to recover heat in proportion to the efficiency of the heat exchanger
29. By controlling the temperature of the heat exchanger 29 to be, for example, 1000°C
or lower, it is possible to improve the heating efficiency of the entire hydrogen
combustion furnace 21 including the heat exchanger 29 without increasing the amount
of NOx in the exhaust gas.
[0058] In the above-described hydrogen combustion furnace 21, the heat exchanger 29 is provided
across the path
L1 and the path L2 as an example, but is not limited thereto. The heat exchanger 29
may be provided across at least one of the path L1 and the path L2.
EXAMPLES
[0059] The effects of the present invention will be described below with reference to verification
tests. Note that the present invention is not limited to the contents of the following
verification tests.
<Verification Test 1>
[0060] In verification test
1, the hydrogen combustion furnace 1 shown in FIG. 1 was used to verify the relationship
between the oxygen ratio and NOx emission concentration when hydrogen gas was used
as fuel for the burner 3, that is, during hydrogen combustion.
[Simulation conditions]
[0061]
- (1) Simulation software (calculation software): Chemikin Pro: manufactured by Ansys
- (2) Fuel gas: Hydrogen
- (3) Combustion-supporting gas: Oxygen or oxygen-enriched air
- (4) Reaction model: GRI Mech 3.0 http://www.me.berkeley.edu/gri_mech
[0062] FIG. 3 shows the relationship between the oxygen ratio and the NOx emission concentration
during hydrogen combustion. FIG.3 (A) shows the case where the oxygen concentration
in the combustion-supporting gas was 90% by volume, FIG. 3(B) shows the case where
the oxygen concentration in the combustion-supporting gas was 40% by volume, and FIG.
3 (C) shows the case where the oxygen concentration in the combustion-supporting gas
was 21% by volume.
[0063] In FIGS. 3(A) to 3(C), the horizontal axis shows the oxygen ratio (Oxygen ratio [-])
and the vertical axis shows the NOx emission concentration (NOx [ppm-wet]). In FIGS.
3(A) to 3(C), the furnace temperatures in the combustion furnace main body 2 were
1300°C, 1400°C, 1500°C, and 1600°C.
[0064] The NOx emission concentration is the NOx concentration in the exhaust gas containing
water vapor (H
2O) led out from the combustion furnace main body 2.
[0065] As shown in FIGS. 3(A) to 3(C), when the oxygen ratio on the horizontal axis was
less than 1, the state was incomplete combustion. During incomplete combustion, the
NOx emission concentration dramatically decreased and approached zero.
[0066] Therefore, from the viewpoint of reducing the concentration of NOx emissions, it
was confirmed that, regardless of the oxygen concentration in the combustion-supporting
gas, the upper limit of the oxygen ratio is preferably 0.98 or less, and more preferably
0.97 or less.
<Verification Test 2>
[0067] In verification test 2, the hydrogen combustion furnace 1 shown in FIG. 1 was used
to verify the relationship between the oxygen ratio and the heating efficiency during
hydrogen combustion using hydrogen gas as fuel for the burner 3.
[0068] FIG. 4 shows the relationship between the oxygen ratio and the heating efficiency
during hydrogen combustion. FIG. 4(A) shows the case where the oxygen concentration
in the combustion-supporting gas was 90% by volume, FIG. 4(B) shows the case where
the oxygen concentration in the combustion-supporting gas was 40% by volume, and FIG.
(C) shows the case where the oxygen concentration in the combustion-supporting gas
was 21% by volume.
[0069] In FIGS. 4(A) to 4(C), the horizontal axis shows the oxygen ratio (Oxygen ratio [-])
and the vertical axis shows the heating efficiency (Heat Efficiency [%]). In FIGS.
4(A) to 4(C), the furnace temperatures in the combustion furnace main body 2 were
confirmed to be 1300°C, 1400°C, 1500°C, and 1600°C.
[0070] Note that the "heating efficiency" is the ratio of the energy used for heating the
furnace with respect to the energy input. The energy used for heating the furnace
is calculated by calculating the amount of heat carried away by the exhaust gas outside
the furnace (exhaust gas heat loss) and subtracting the exhaust gas loss from the
energy input.
[0071] As shown in FIGS 4 (A) to 4(C), it was confirmed that, regardless of the oxygen concentration
in the combustion-supporting gas, the heating efficiency was maximized when the oxygen
ratio was 1, and that the heating efficiency decreased as the difference from 1 increased.
[0072] Normally, burner combustion is operated so that the oxygen ratio is 1 or above to
prevent incomplete combustion, and excess oxygen is supplied to the burner. However,
when the oxygen ratio was significantly lowered to cause incomplete combustion, it
was confirmed that the heating efficiency was clearly lower than in the case where
the oxygen ratio was 1 or above.
[0073] Therefore, from the viewpoint of maintaining heating efficiency, it was confirmed
that it is preferable to set the lower limit of the oxygen ratio to 0.95 or more,
regardless of the oxygen concentration in the combustion-supporting gas.
<Verification Test 3>
[0074] In verification test 3, the hydrogen combustion furnace 1 shown in FIG. 1 was used
to verify the relationship between the oxygen ratio and the hydrogen concentration
in the exhaust gas during hydrogen combustion using hydrogen gas as fuel for the burner
3.
[0075] FIG. 5 shows the relationship between the oxygen ratio and the hydrogen concentration
in the exhaust gas during hydrogen combustion. FIG. 5(A) shows the case where the
oxygen concentration in the combustion-supporting gas was 90% by volume, FIG. 5(B)
shows the case where the oxygen concentration in the combustion-supporting gas was
40% by volume, and FIG. 5(C) shows the case where the oxygen concentration in the
combustion-supporting gas was 21% by volume.
[0076] In FIGS. 5 (A) to 5(C), the horizontal axis shows the oxygen ratio (Oxygen ratio
[-]) and the vertical axis shows the hydrogen concentration (H
2 [vol% dry]). In FIGS. 5 (A) to 5(C), the furnace temperatures in the combustion furnace
main body 2 were 1300°C, 1400°C, 1500°C, and 1600°C.
[0077] The hydrogen concentration is the hydrogen concentration in the dry gas obtained
by removing the water vapor (H
2O) led out from the combustion furnace main body 2 by the moisture remover 4.
[0078] As shown in FIGS 5(A) to 5(C), it was confirmed that the oxygen ratio on the horizontal
axis was less than 1, and the smaller the oxygen ratio value, the more hydrogen was
discharged uncombusted, and therefore the hydrogen concentration in the exhaust gas
also increased.
[0079] Therefore, from the viewpoint of reusing hydrogen in exhaust gas, regardless of the
oxygen concentration in the combustion-supporting gas, the smaller the oxygen ratio,
the higher the hydrogen concentration in the exhaust gas and the easier it is to combust,
suggesting that it may be possible to reuse it as fuel in other combustion devices.
[0080] As shown in FIGS. 5(A) to 5(C), it was confirmed that when the oxygen ratio was less
than 1 and the oxygen concentration in the combustion-supporting gas was higher, the
amount of uncombusted hydrogen discharged increased, and therefore the hydrogen concentration
in the exhaust gas also increased.
[0081] Therefore, from the viewpoint of reusing hydrogen in exhaust gas, the higher the
oxygen concentration in the combustion-supporting gas, the higher the hydrogen concentration
in the exhaust gas when the oxygen ratio is less than 1, making it easier to combust,
and it was suggested that the hydrogen could be reused as fuel in other combustion
devices.
EXPLANATION OF REFERENCE NUMERAL
[0082]
- 1, 21
- Hydrogen combustion furnace
- 2
- Combustion furnace body
- 3
- Burner
- 4
- Moisture removal device
- 5
- Gas analyzer
- 6
- Control device
- 7
- Flow rate control valve (first control device)
- 8
- Flow rate control valve (second control device)
- 9
- Combustor (combustion device)
- 29
- Heat exchanger (combustion device)
- L1
- Path (first path)
- L2
- Path (second path)
- L3
- Path (third path)