[0001] The present invention relates to a method for heating metal material in an industrial
furnace. The invention also relates to a method for upgrading an air burner heated
industrial furnace in order to increase the combustion efficiency.
[0002] Metal materials, such as slabs, billets and blooms, are conventionally heated in
industrial furnaces which are heated using air burners, where combustion of a fuel
takes place with air supplied by the burner. In counter-flow furnaces, the combustion
products flow upstream in relation to the transport direction of the metal material,
thereby heating the material which is approaching the air burners. In such furnaces,
there is conventionally a so-called dark zone, in which loaded metal material is pre-heated
by the counter-currently flowing combustion gases before entering the heating zone
or zones of the furnace.
[0003] A problem is that air combustion is inefficient, since large volumes of nitrogen
are heated in the process. It is therefore desirable to use high-oxygen oxidants to
replace air in the above described furnaces.
[0004] It has for such furnaces been suggested to replace air burners with so-called oxyfuel
burners, that is, burners fed with a high-oxygen oxidant rather than with air. However,
in addition to such burners being expensive to install, this leads to smaller volumes
of combustion products flowing through the furnace and the dark zone, and therefore
that the loaded metal products are preheated less efficiently. In order to solve this
problem, it has been proposed to lower the ceiling in the dark zone, thereby decreasing
the volume of the dark zone and improving the preheating of the metal products therein
per unit volume of combustion products. However, this leads to increased pressures
in the main furnace space, downstream of the dark zone, increasing the risk of leaks
therein.
[0005] Another possibility is to arrange additional burners in the dark zone. However, this
has proven expensive and complicated, not least since many furnaces are quite broad
and it is difficult to obtain even heating across the whole width of the metal products
to be preheated without risking overheating of the metal material surface.
[0006] The present invention solves the above described problems.
[0007] Thus, the invention relates to a method for heating a metal material in an industrial
furnace comprising a dark zone and at least one heating zone arranged downstream of
the dark zone, which heating zone is heated using at least one burner, wherein said
metal material is transported through the dark zone and thereafter through the heating
zone, and wherein combustion gases circulate counter-currently through the industrial
furnace through the at least one heating zone and thereafter through the dark zone,
and is characterised in that the lambda value, in other words the ratio of the actual
oxygen-to-fuel ratio and the stoichiometric oxygen-to-fuel ratio, of the combustion
in at least one of said at least one heating zones is below one, and in that an oxidant
comprising at least 85 percentages by weight oxygen is supplied through at least one
lance into the dark zone, so that at least one stream of the said oxidant is directed
towards the metal material and so that the said oxidant in the dark zone combusts
combustible gases originating from the at least one heating zone.
[0008] In the following, the invention will be described in detail, with reference to exemplifying
embodiments of the invention and to the appended drawings, where:
Figure 1 a is a simplified, partly removed side view of a conventional industrial
furnace which is heated using air burners;
Figure 1b is a simplified, partly removed top view of the furnace of figure 1 a;
Figure 2a is a simplified, partly removed side view of an industrial furnace arranged
for operation using a method according to the present invention; and Figure 2b is
a simplified, partly removed top view of the furnace of figure 2a.
[0009] Figures 1 a and 1 b show, using common reference numbers, an industrial furnace 100,
which is heated by burners 110 and comprising a dark zone 101 and two fired heating
zones 102, 103. Hot combustion gases from burners 110 arranged in the zones 102, 103
circulate counter-currently through the furnace 100, in a general upstream direction
111, in order through the heating zone 103, through the heating zone 102 and thereafter
through the dark zone 101, after which they escape through a flue or chimney 104.
Burners 110 may be air burners, which is the preferred case in an upgrade according
to below, but other burner types are also possible, including oxygen-assisted air
burners or even burners driven directly with an oxidant comprising more oxygen than
air. A mixture of such burners with air burners is also foreseeable. In the following,
it is understood that burners 110 may be of such different types.
[0010] Metal material 106 to be heated is transported in a general downstream direction
109, opposite to the direction 111, on a transport device 105 such as a conveyor belt
or the like (see below), from a loading point 107 to an exit point 108. It is preferred
that the metal material is in the form of blanks, slabs or billets, and is preferably
constituted by steel, preferably stainless steel, preferably a steel material displaying
low emissivity, such as for example a steel material having a grinded surface. Namely,
such steels are particularly suitable for use with the improved thermal energy transfer
efficiency offered by the method of the present invention. The furnace 100 is preferably
a walking beam furnace, a pusher furnace or an annular furnace, and the transport
device 105 is thus of a suitable type for the type of furnace in question.
[0011] Herein, the term "dark zone" is to be interpreted as a zone which preferably is arranged
upstream, in relation to the travel direction 109 of the metal material 106, of any
heating zone 102, 103 which is heated using one or several burners 110. Preferably,
the dark zone 101 is arranged upstream, as seen in direction 109, of all fuel supply
points in the industrial furnace 100. The dark zone 101 is arranged to preheat metal
material 106 which has been loaded into the furnace 100 before reaching the first
fired heating zone 102.
[0012] Both heating zones 102, 103 are thus heated using a series of burners 110 arranged
along the side walls of the furnace 100. Preferably, the burners are operated using
a solid, liquid or gaseous fuel which is combusted with the supplied oxidant, such
as air, thus heating spaces 102, 103. The combustion products, comprising nitrogen,
carbon dioxide, water etc., circulate counter-currently, in direction 111, through
the furnace 100 upstream towards the exit 104.
[0013] It is realized that the furnace may comprise only one heating zone, or more than
two heating zones.
[0014] Figures 2a and 2b show, with shared reference numbers, an industrial furnace 200
according to the present invention. That what has been said in relation to the furnace
100 is, in applicable cases, true also in relation to the furnace 200. Thus, similarly
to the furnace 100 the furnace 200 comprises a dark zone 201 and two heating zones
202, 203. Metal material 206 is transported, in a general direction 209, by a transport
device 205 from a loading entry point 207 to an exit 208. Combustion gases, originating
from a series of burners 210 arranged in the heating zones 202, 203, circulate counter-currently,
in a general upstream direction 211, along the furnace 200 and are evacuated through
a flue or chimney 204. Similarly to burners 110, burners 210 are preferably air burners,
most preferably only air burners, but may also be driven partly or completely, or
be assisted, by an oxidant comprising more oxygen than air.
[0015] In the following, the differences between the conventional furnace 100 and the furnace
200 according to the invention will be described.
[0016] According to the invention, the lambda value of the combustion in at least one of
the said at least one heating zones 202, 203 is below one. The lambda value is the
ratio of the actual oxygen-to-fuel ratio and the oxygen-to-fuel ratio when at stoichiometric
equilibrium. In the conventional industrial furnace 100 of figures 1 a and 1 b, the
supply of oxygen and fuel to the burners 110 is balanced, so that combustion is performed
at stoichiometric equilibrium. However, in contrast thereto, the supply of oxygen
and/or fuel to the burners 210 which heat the zones 202, 203 of furnace 200 has been
modified so that comparatively less oxygen is supplied in relation to the amount of
supplied fuel. As a consequence, the resulting combustion gases circulating from the
most upstream located heating zone 202 and into the dark zone 201 will carry a surplus
of combustible gases. It is realized that such combustible gases may be in the form
of non-combusted fuel gases and/or combustible gases in the form of CO, H
2 or the like, resulting from incomplete combustion of fuel in the heating zones 202,
203.
[0017] It is understood that in the preferred embodiment in which the burner 210 is an air
burner, the said lambda value of below one is achieved by decreasing the amount of
air supplied to the said air burner 210.
[0018] Furthermore, according to the invention, an oxidant comprising at least 85 percentages
by weight, preferably at least 95 percentages by weight, preferably industrially pure,
oxygen is supplied through at least one oxidant lance 212 arranged to open out into
the dark zone 201. As a consequence, at least one stream 213 of the said high-oxygen
oxidant is directed towards the metal material 206. Also, the said high-oxygen oxidant
will, in the dark zone 201, combust the above-described combustible surplus gases
originating from the at least one upstream heating zone 202, 203.
[0019] It is preferred that the total combustion, counting combustion in all heating zones
202, 203 and the dark zone 201, will add up to stoichiometric equilibrium, or at least
near stoichiometric equilibrium, so that essentially all fuel is combusted before
the combustion products are evacuated through the flue 204. By decreasing the amount
of oxygen supplied through the burners, and replacing the decreased amounts of oxygen
resulting from the smaller amounts of oxygen using the lanced high-oxygen oxidant
in the dark zone, the nitrogen ballast decreases, which in turn increases the efficiency
of the furnace 200. The additional combustion taking place as the lanced oxidant comes
into contact with the combustible gases from the heating zones 202, 203 will result
in a temperature increase in the dark zone. This solves the problem of low thermal
transfer rates to the metal material 206 in the dark zone 201 when only replacing
air burners 210 with oxyfuel burners, as discussed initially.
[0020] As the combustion in the dark zone 201 involves a lower-grade fuel (namely, diluted
incomplete combustion products) than the combustion in the heating zones 202, 203,
which involves the above described fuel directly, the flame temperature in the dark
zone 201 will consequently also be lower. This leads to less NO
x formation. As a result, the total NO
x footprint of the process will be decreased as compared to the corresponding conventional
case.
[0021] Moreover, since the high-oxygen oxidant is lanced towards the surface of the still
relatively cold metal material 206, the extra heat is directed onto the said surface,
whereby the metal material will be efficiently preheated.
[0022] The fact that the surface of the metal material 206 is still relatively cold while
still in the dark zone makes it less prone to overheating.
[0023] On the other hand, the lancing of the high-oxygen oxidant should preferably not result
in said oxidant coming into direct contact with the metal material 206 surface. According
to one preferred embodiment, the relation between on the one hand the amount of the
oxygen lanced per time unit and per oxidant lance 212 in the lanced high-oxygen oxidant,
and on the other hand the distance between the lance 212 orifice and the metal material
206, is such that the lanced oxidant mixes with the combustible gases present in the
dark zone 201 before it strikes the surface of the metal material 206, and so that
no unmixed oxidant comes into direct contact with the metal material 206. In other
words, the amount of lanced oxygen is sufficiently small and the distance between
the lance 212 orifice and the metal material 206 is sufficiently large so that the
oxidant will mix with the combustible gases in the dark zone 201 sufficiently, so
that essentially no un-mixed high-oxygen oxidant reaches the metal material 206 surface.
It is preferred that the said small amount of lanced oxygen and said large distance
between lance orifice 212 and material 206 is to be established given a certain lancing
velocity, which should be high (see below), and possibly also a given oxygen concentration
in the lanced oxidant.
[0024] The distance H between the lance 212 orifice and the metal material 206, as measured
in the direction of the lance 212, is preferably at least 1.5 meters, more preferably
at least 2 meters. In figure 2a, H indicates the vertical distance since the lance
212 is directed vertically. It is realized that if the lance is inclined, the distance
H will be measured in a direction which is not vertical.
[0025] This way, the lancing action will push the high-temperature gases in the dark zone
201 towards the surface of the metal material 206 without risking overheating of the
latter as a consequence. Instead, a "soft" flame can be arranged across a large portion
of, or essentially the whole, width of the metal material 206, efficiently preheating
the same while passing through the dark zone 201. In the figures, the flame is illustrated
by a combustion zone 214, throughout which the secondary combustion, between lanced
oxidant and incompletely combusted gases, takes place.
[0026] To accomplish this, it is preferred that at least one row, preferably at least two
essentially parallel rows, arranged essentially perpendicularly to the direction 209,
of high-oxygen oxidant lances 212 are arranged with at least three lances in each
row, thus achieving an essentially uniform concentration of high-oxygen oxidant across
the whole width, perpendicularly to the direction 209, of the metal material 206.
[0027] It is especially preferred that at least one such lance 212 is arranged in the ceiling
of the dark zone 201, and that the associated stream 213 of oxidant is directed essentially
downwards towards the metal material 206 surface. However, the stream 213 may also
be slightly inclined in the direction 209, such that the stream 213 is offset from
the vertical towards the heating zone 202. Suitable angles are about 5-15° from the
vertical. It is also realized that roof-mounted lances may be supplemented by lances
mounted in the side walls of the dark zone 201, in order to achieve an even more uniform
temperature profile of the gases surrounding the metal material 206.
[0028] Alternatively, the lances can be inclined so that the lanced high-oxygen oxidant
propels the furnace gases in the downstream direction 209. This increases the turbulence,
and hence increases the flame size, which in turn decreases the risk of overheating.
In particular, such inclined lances may be useful in the downstream-most arranged
part of the dark zone 201, in order to improve the mixing of the combustion products
arriving from the heated zones 202, 203 with the lanced high-oxygen oxidant. Preferred
lancing angles are in this case between 30 and 45° in relation to the vertical and
inclined with the lance 212 orifice towards the downstream direction 209.
[0029] In order to avoid the risk of overheating the metal material 206 surface, it is preferred
that only a minor part of the totally supplied oxygen originates from the lanced high-oxygen
oxidant. According to one preferred embodiment, the combustion power of the combustion
reaction involving the lanced high-oxygen oxidant and the excess fuel supplied by
burners 210 is at most about 10% of the total combustion power of the furnace 200.
Thus, the total amount of supplied oxidant per unit time is small, preferably only
between 1/10 and 1/100 of the volume, in comparison to the amount of combustion gases
circulating through the dark zone 201 per unit time.
[0030] Furthermore, it is preferred the velocity of the oxidant at the orifice of the or
each lance 212 is at least 100 m/s, more preferably between 300 m/s and 450 m/s. The
combination of relatively small lanced volumes and high lancing velocities will produce
a very high-turbulence, diluted, "soft" flame which is pushed downwards towards the
surface of the metal material 206, efficiently preheating the same without risking
overheating. It is preferred that about between 200-500 Nm
3/h high-oxygen oxidant is provided through each lance.
[0031] According to a particularly preferred embodiment, a conventional furnace, such as
the furnace 100, is upgraded for operation according to the present invention. In
other words, an industrial furnace 100 which before the upgrade is arranged to be
heated only by the use of one or several existing burners 110 and which comprises
a dark zone 101 and at least one heating zone 102, 103 arranged downstream of the
dark zone 101, which heating zone 102, 103 is arranged to be heated using said burners
110, wherein metal material 106 is transported through the dark zone 101 and thereafter
through the heating zone 102, 103, and wherein combustion gases circulate counter-currently
through the furnace 100 through the heating zones 103 and 102 and thereafter through
the dark zone 101, is upgraded by supplementing it with at least one oxidant lance
212 arranged to supply a stream 213 of an oxidant comprising at least 85%, preferably
at least 95%, preferably industrially pure, oxygen to the dark zone 101. Thereafter,
the furnace 100 is operated as described above in connection with figures 2a and 2b.
Thus, the amount of oxygen supplied via the at least one burner 110 is decreased as
compared to the operation before the upgrade, whereby the lambda value of the heating
zones 102, 103 is decreased, and the resulting decrease in oxygen supply is compensated
for by the lanced high-oxygen oxidant. Preferably, about 10%-50%, more preferably
about 20%-30% of the total oxygen requirement of those burners which are operated
in an oxygen-decreased state will be provided by the lanced high-oxygen oxidant.
[0032] It is understood that in the preferred embodiment in which at least one of the at
least one existing burners 110 is an existing air burner, that the said decreased
supplied oxygen amount is achieved by decreasing the amount of air supplied to the
said at least one existing air burner.
[0033] Such an upgrade is very cost efficient as compared to the replacement of some or
all of the burners 110 with corresponding oxyfuel burners, and solves the initially
discussed problems.
[0034] Since the total amounts of combustion gases escaping through the flue 104 will be
less than before the upgrade at a given total combustion power, it is preferred that
the amount of metal material 106 loaded per time unit during the operation is increased
as compared to operation before the upgrade, so as to maintain essentially the same
flue gas temperature at the flue gas exit 104 from the dark zone 201. In other words,
the efficiency increase caused by the introduction of high-oxygen oxidant is preferably
used to increase the production rate rather than to decrease the amount of fuel used.
[0035] Instead of, or in addition to, the above described decrease of the oxygen provided
to the burners 210, the amount of the above described fuel provided to the heated
zones 202, 203 per time unit can be increased in order to achieve the said lambda
values below one.
[0036] Furthermore, it is preferred that the loading rate is adjusted so that the gas temperature
at the exit 104 is kept at about 800-900°C.
[0037] As an example, an air burner fired furnace with 3 heating zones (in order of material
transport direction Z1 = 20 MW, Z2 = 20 MW and Z3 = 5 MW) was upgraded according to
the present invention by mounting high-oxygen oxidant lances in the roof of the dark
zone.
[0038] After the upgrade, the most downstream arranged zones Z2 and Z3 were fired in a conventional
manner with 26819 Nm
3/h air and 2457 Nm
3/h natural gas (total combustion power 25 MW). The resulting combustion products had
the following composition:
| Exhaust gas composition |
%-wet |
Nm3/h |
| CO2 |
8,7 |
2568 |
| H2O |
16,7 |
4915 |
| SO2 |
0,0 |
0 |
| O2 |
2,0 |
587 |
| N2 |
72,6 |
21310 |
[0039] In contrast to zones Z2 and Z3, the originally 20 MW zone Z1 was fired with an oxygen
deficit, so that only 18 MW was combusted with air supplied via the existing air burners.
1966 Nm
3/h natural gas was combusted with 17745 Nm
3/h air. The combustion gases resulting from this combustion, with lambda = 0,924,
in zone Z1 had the following composition:
| Exhaust gas composition |
%-wet |
Nm3/h |
| CO2 |
8,6 |
1725 |
| H2O |
18,2 |
3650 |
| SO2 |
0,0 |
0 |
| O2 |
0,0 |
0 |
| H2 |
1,4 |
282 |
| CO |
1,64 |
329 |
| N2 |
70,2 |
14113 |
[0040] The resulting content of incompletely combusted, combustible gases (CO and H
2) corresponds to 2 MW, which was combusted using 320 Nm
3/h lanced industrially pure oxygen in the dark zone. The final, total combustion products
composition was:
| Exhaust gas composition |
%-wet |
Nm3/h |
| CO2 |
9,3 |
4622 |
| H2O |
17,9 |
8847 |
| SO2 |
0,0 |
0 |
| O2 |
1,2 |
601 |
| N2 |
71,6 |
35423 |
[0041] Above, preferred embodiments have been described. However, it is apparent to the
skilled person that many modifications may be made to the described embodiments without
departing from the idea of the invention.
[0042] As an example, the introduction of high-oxygen oxidant lances in the dark zone also
results in increased control over the temperature profile along the length of the
furnace. In case several rows of such lances are installed, the amount of lanced high-oxygen
oxidant via each such row may be adjusted depending on the desired such temperature
profile. Also, the proportion of the total oxygen supplied via lancing may be adjusted
during operation or between batches, depending on the desired preheating in the dark
zone.
[0043] Thus, the invention shall not be limited to the described embodiments, but may be
varied within the scope of the enclosed claims.
1. Method for heating a metal material (206) in an industrial furnace (200) comprising
a dark zone (201) and at least one heating zone (202,203) arranged downstream of the
dark zone (201), which heating zone (202,203) is heated using at least one burner
(210), wherein said dark zone (101) is arranged upstream of all fuel supply points
in the industrial furnace, wherein said metal material (206) is transported through
the dark zone (201) and thereafter through the heating zone (202,203), and wherein
combustion gases circulate counter-currently through the industrial furnace (200)
through the at least one heating zone (202,203) and thereafter through the dark zone
(201), characterised in that the lambda value, in other words the ratio of the actual oxygen-to-fuel ratio and
the stoichiometric oxygen-to-fuel ratio, of the combustion in at least one of said
at least one heating zones (202,203) is below one, and in that an oxidant comprising at least 85 percentages by weight oxygen is supplied through
at least one lance (212) into the dark zone (201), so that at least one stream (213)
of the said oxidant is directed towards the metal material (206) and so that the said
oxidant in the dark zone (201) combusts combustible gases originating from the at
least one heating zone (202,203).
2. Method according to claim 1, characterised in that the said burner (210) is an air burner, and that the said lambda value of below one
is achieved by decreasing the amount of air supplied to the said air burner.
3. Method according to claim 1 or 2, characterised i n that the at least one lance (212) is arranged in the ceiling of the dark zone (201),
and in that said at least one stream (213) of oxidant is directed downwards towards
the metal material (206).
4. Method according to any one of the preceding claims, characterised i n that the combustion power of the combustion involving the said oxidant and the excess
fuel provided in the at least one heating zone (202,203) is at most about 10% of the
total combustion power of the industrial furnace (200).
5. Method according to any one of the preceding claims, characterised in that the industrial furnace (200) is a walking beam furnace, a pusher furnace or an annular
furnace.
6. Method according to any one of the preceding claims, characterised i n that the relation between on the one hand the amount of the oxygen lanced per time
unit and per oxidant lance (212) in the lanced high-oxygen oxidant and on the other
hand the distance between each lance (212) orifice and the metal material (206) is
such that, for a given lancing velocity, the oxidant mixes with the combustible gases
present in the dark zone (201) before it strikes the surface of the metal material
(206), and so that essentially no unmixed oxidant comes into direct contact with the
metal material (206).
7. Method according to claim 6, characterised i n that the distance (H) between the lance (212) orifice and the metal material (206)
as measured in the lancing direction is at least 2 meters.
8. Method according to claim 6 or 7, characterised in that the velocity of the oxidant at the orifice of the lance (212) is at least 100 m/s.
9. Method according to claim 8, characterised in that the velocity of the oxidant at the orifice of the lance (212) is between 300 m/s
and 450 m/s.
10. Method according to any one of the preceding claims, characterised in that the oxidant comprises at least 95 percent oxygen.
11. Method for upgrading an existing industrial furnace (100), which industrial furnace
(100) before the upgrade is arranged to be heated only by the use of one or several
existing burners (110) and which comprises a dark zone (101) and at least one heating
zone (102,103) arranged downstream of the dark zone (101), which heating zone (102,103)
is arranged to be heated using at least one burner (110), wherein a metal material
(106) to be heated is arranged to be transported through the dark zone (101) and thereafter
the heating zone (202,203), and wherein combustion gases are arranged to circulate
counter-currently through the industrial furnace (100) through the at least one heating
zone (102,103) and thereafter through the dark zone (101), characterised in that industrial furnace (100) is supplemented by at least one oxidant lance (212) arranged
to supply a stream (213) of an oxidant comprising at least 85% oxygen to the dark
zone (100), and in that the industrial furnace (100) is then operated according to the method of any one
of the preceding claims, whereby the amount of oxygen supplied via the at least one
existing burner (110) is decreased as compared to the operation before the upgrade
and the resulting decrease in oxygen supply is compensated for by the lanced oxidant.
12. Method according to claim 11, characterised in that at least one of the said at least one existing burners (110) is an existing air burner,
and that the said decreased supplied oxygen amount is achieved by decreasing the amount
of air supplied to the said at least one existing air burner.
13. Method according to claim 11 or 12, characterised in that the amount of metal material (106) loaded per time unit during the operation according
to any one of claims 1-9 is increased as compared to operation before the upgrade,
so as to maintain essentially the same flue gas temperature at a flue gas exit (104)
from the dark zone (101).
14. Method according to any one of claims 11-13, characterised in
that the lance (212) is arranged in the ceiling of the dark zone (101), so that that said
stream (213) of oxidant is arranged to be directed downwards towards the metal material
(106).