[0001] The present invention generally relates to a fluidized bed reactor and in particular
to a fluidized apparatus comprising a fluidized bed reactor as well as to a method
for operating such a fluidized bed reactor. Hereinafter terms like "upper", "lower",
"horizontal", "vertical", "inner" etc. always refer to a regular used position of
the fluidized bed reactor. A fluidized bed apparatus typically comprises a fluidized
bed reactor, which walls can be made of tubes, through which water runs, wherein said
tubes are either welded directly to each other to provide a wall structure or with
fins/ribs between parallel running tube sections. The wall of the fluidized bed reactor
may also be made of bricks or bricks in combination with tubes.
[0002] The fluidized bed reactor comprises a reaction chamber for particulate and/or liquid
matter, wherein the reaction chamber has at least one particulate matter inlet for
the particulate matter and at least one primary particulate matter outlet for the
particulate matter. The fluidized bed reactor may further comprise a fluidizing grate
as part of a fluidizing bottom at the bottom of the reaction chamber, wherein the
fluidizing grate has multiple openings for an operating fluid to fluidize particulate
matter above the fluidizing grate within the reaction chamber. The multiple openings
may be embodied by multiple nozzles, wherein each nozzle may have multiple openings.
[0003] Typically, the reaction chamber of such a fluidized bed reactor has at least one
operating fluid outlet at its upper end, wherein said operating fluid outlet allows
a mixture of gases and solid particles (hereinafter called particulate matter) exhausted
from the reaction chamber to flow into at least one separator.
[0004] The separator serves to disengage the gases and particulate matter. Thereafter the
separated reaction gases and the particulate matter are treated separately. The particulate
matter may be directly returned into the reaction chamber.
[0005] The general design of a circulating fluidized bed apparatus and its components is
disclosed in
EP 0 495 296 A2.
[0006] The general process engineering of this type of a fluidized bed apparatus is more
or less defined and includes:
- providing the particulate matter via an inlet opening into the reaction chamber,
- fluidizing the particulate matter by a (operating) gas, introduced under pressure
via a fluidizing bottom, which may comprise respective nozzles and/or a grate in the
grate area of the reaction chamber,
- eventually transferring the energy (heat) produced in the fluidized bed via heat transfer
elements (in particular tubes through which a heat transfer fluid like water or steam
flows), arranged in or adjacent to the reaction chamber or transferring the energy
from the reaction gases having left the reaction chamber.
[0007] Depending on the velocity of the provided operating fluid the fluidized bed can be
embodied as stationary, bubbling or circulating fluidized bed.
[0008] More specifically, the present invention relates to a method for combusting carbonaceous
fuel in a fluidized bed reactor, wherein at least one carbonaceous fuel is provided
to the reaction chamber of the fluidized bed reactor.
[0009] Accordingly, a respective fluidized bed apparatus comprises a fluidized bed reactor,
which has a reaction chamber, a fluidizing bottom at the bottom of the reaction chamber
and at least one carbonaceous fuel supply above the fluidizing bottom. Furthermore,
the fluidized bed apparatus comprises at least one source for a carbonaceous fuel
being connected to the carbonaceous fuel supply and at least one fluidizing agent
source being connected to the fluidizing bottom, wherein at least one fluidizing agent
source is configured to supply a gas comprising gaseous oxygen.
[0010] In particular, the carbonaceous fuel may be a solid fuel, which is provided as the
above described particulate matter to the reaction chamber. For example, the carbonaceous
solid fuel may be coal or biomass. Additionally, a liquid carbonaceous fuel may be
provided to the reaction chamber. For example, oil may be provided as liquid carbonaceous
fuel to the reaction chamber.
[0011] In order that a combustion reaction of the carbonaceous fuel can occur, a fluidizing
agent (also referred to as operating gas) comprising gaseous oxygen is provided at
the bottom of the fluidized bed chamber, so that the carbonaceous fuel and in particular
the solid carbonaceous fuel is fluidized by the provided fluidizing agent.
In order that the combustion reaction starts, an ignition device may be arranged within
the reaction chamber.
[0012] The oxygen comprising gas is in particular air, which is supplied as primary air
into the reaction chamber at the bottom of the reaction chamber through the fluidizing
bottom. In this case, the fluidizing agent source may be the surrounding atmosphere.
[0013] In a preferred embodiment, solid carbonaceous fuel is provided to the reaction chamber,
whereas liquid carbonaceous fuel may be added as auxiliary carbonaceous fuel. The
combustion of carbonaceous fuel within a reaction chamber of a fluidized bed reactor
is generally known, for example from
EP 0 495 296 A2.
[0014] It is also known to add gaseous ammonia to the flue gases of the combustion reaction
in order to reduce the nitrogen oxide emission. This method is known as selective
non-catalytic reduction (SNCR). In order that a selective non-catalytic reduction
occurs, ammonia (or urea) is injected at locations, where the temperature of the flue
gases is between 760 °C and 1090 °C. If ammonia would be injected to the flue gases
at higher temperatures, additional nitrogen oxide would be produced.
[0015] EP 0 280 016 A2 discloses a device for introducing a gaseous medium into a reaction chamber of a
fluidized bed reactor. The disclosed device for introducing a gaseous medium can be
arranged at multiple locations within the reaction chamber. It is disclosed, that
the device is arranged at the bottom of the reaction chamber or above the bottom of
the reaction chamber, so that the outlets of the device would be arranged within or
above the fluidized bed during operation. Accordingly, the device disclosed in
EP 0 280 016 can be used as fluidizing bottom or as a device for introducing gaseous medium within
or above the fluidized bed.
EP 0 280 016 A2 also discloses that ammonia can be supplied with the device. But it is not disclosed,
at which location ammonia is supplied by the device. In light of the general technical
knowledge it has to be assumed that the device is used to add ammonia to the flue
gases, so that a selective non-catalytic reaction occurs.
[0017] Against this background, it is an object of the present invention to provide a fluidized
bed apparatus and a method for combusting carbonaceous fuel in a fluidized bed reactor,
with which the CO
2 emission can be reduced.
[0018] A solution for this object is provided with a fluidized bed reactor and a method
for combusting carbonaceous fuel in a fluidized bed reactor according to the features
of the respective independent claims. Further solutions and preferred embodiments
of the fluidized bed reactor and the method are subject matter of the dependent claims
and the above and below description, wherein single features of the preferred embodiments
can be combined with each other in a technically meaningful manner. Features disclosed
with regard to the method can be applied to the fluidized bed reactor and vice versa.
[0019] In particular, it is suggested that ammonia (NH
3) is combusted to provide thermal energy to the reaction chamber. Accordingly, the
fluidized bed apparatus comprises at least one ammonia source, which is connected
to a bottom of the reaction chamber.
[0020] With other words: The present invention suggests providing thermal energy to the
reaction chamber, in which carbonaceous fuel is combusted, by combusting ammonia,
wherein the thermal energy of the combustion of the carbonaceous fuel and the thermal
energy of the combustion of ammonia can be withdrawn by the heat transfer elements
of the fluidized bed reactor. The combustion of ammonia does not produce additional
CO
2. Furthermore, the invention can be implemented in existing fluidized bed apparatuses
with only little effort. The thermal energy can either be produced directly in the
reaction chamber by combusting ammonia within the reaction chamber or by combusting
ammonia in order to heat up a medium which is supplied into the reaction chamber.
[0021] In a preferred embodiment ammonia is provided at the bottom of the reaction chamber.
Accordingly, the at least one ammonia source is connected to the fluidizing bottom.
With other words: Ammonia is added to the fluidizing bed, in which the combustion
reaction of the carbonaceous fuel with the gaseous oxygen occurs, so that ammonia
itself can react with the gaseous oxygen in a combustion reaction in an exothermic
manner. This way, ammonia provided from the bottom of the reaction chamber can be
combusted in a fluidized bed reactor together with the carbonaceous fuel.
In this regard, it is believed that the ignition temperature for the combustion of ammonia
within the fluidized bed is provided by the combustion process of the carbonaceous
fuel.
[0022] By combusting ammonia, preferably within the fluidized bed of the reaction chamber,
the emission of CO
2 can be reduced without reducing the thermal energy generated, as ammonia may partly
replace the carbonaceous fuel. Ammonia may be produced in times of a surplus of electrical
energy of renewable energy sources. On the other hand, ammonia can be combusted on
demand with the inventive method and apparatus. This way, a surplus of electrical
energy may be chemically stored in the ammonia and used by the method of the present
invention.
[0023] Ammonia may be added together with the gas comprising gaseous oxygen at the bottom
of the reaction chamber, so that ammonia is part of the fluidizing agent. According
to one inventive fluidized bed apparatus, the fluidizing agent source may be connected
to a duct leading to the fluidizing bottom, wherein an injection apparatus is arranged
within the duct and wherein the injection apparatus is connected to the ammonia source,
so that ammonia is injected in the oxygen comprising gas supplied from the first fluidizing
agent source through the duct.
In this case, ammonia is part of the fluidizing agent provided through the fluidizing
bottom into the reaction chamber.
[0024] In a specific embodiment, the injection apparatus may comprise at least one injector
and at least one static mixer, wherein the at least one static mixer is arranged within
the duct downstream of the at least one injector. In this configuration, ammonia injected
through the injector into the duct is blended with the oxygen comprising gas, so that
an evenly distributed mixture of the oxygen comprising gas and ammonia is supplied
into the reaction chamber via the fluidizing bottom.
[0025] In a further specific embodiment, the injection apparatus comprises at least one
pipe arranged within the duct, wherein at least one pipe has multiple injection openings
through which ammonia is injected into the duct. By using such an array-like arrangement
with multiple (at least two, preferably at least five or at least ten) pipes arranged
over the cross section of the duct, ammonia can be injected at multiple locations
(at least 20 or at least 50) over the cross section of the duct. Also in this configuration,
an evenly distributed mixture of the oxygen comprising gas and the gaseous ammonia
is provided to the reaction chamber via the fluidizing bottom.
[0026] Alternatively, ammonia may be introduced at the bottom of the reaction chamber in
close vicinity of the location, at which the fluidizing agent is introduced into the
reaction chamber at the bottom of the reaction chamber. According to an alternative
inventive fluidized bed apparatus, the fluidizing bottom may comprise multiple first
openings and multiple second openings, wherein the multiple first openings are connected
to the at least one first fluidizing agent source and wherein the multiple second
openings are connected to the ammonia source.
[0027] The multiple openings of the fluidizing bottom may be embodied by multiple nozzles,
which each may comprise at least one or more openings. Alternatively, the openings
of the fluidizing bottom may be embodied in pipes, so that the fluidizing agent and
ammonia are provided through a pipe (system) to the bottom of the reaction chamber.
It may also be possible that the multiple openings of the fluidizing bottom are embodied
as a perforated plate.
In each case a group of first multiple openings may be connected to the first fluidizing
agent source and another group of multiple openings may be connected to the ammonia
source, in case ammonia is not mixed with the oxygen comprising gas beforehand.
[0028] In an alternative embodiment ammonia is combusted outside the reaction chamber, wherein
the thermal energy produced by the combustion of ammonia is supplied into the reaction
chamber. In particular, the combustion gases of the ammonia combustion are used to
heat up a medium, in particular the fluidizing agent, which is supplied into the reaction
chamber. According to a further inventive fluidized bed apparatus, the fluidizing
agent source may be connected to the duct leading to the fluidizing bottom, wherein
a burner is arranged within the duct, wherein the burner is connected to the ammonia
source so that combusted ammonia is added to the oxygen comprising gas supplied form
the fluidizing agent source through the duct.
[0029] The ammonia is preferably stored at a pressure in a respective vessel, at which at
least part of the ammonia may be in the liquid phase. In this case, it is preferable
that gaseous ammonia is withdrawn from the ammonia source and provided to the reaction
chamber.
[0030] Alternatively, ammonia in the liquid phase may be withdrawn from the ammonia source,
in which case ammonia evaporates, when it is injected into the reaction chamber or
into the duct leading to the reaction chamber.
[0031] In a preferred embodiment and independent if the gaseous ammonia is provided in a
mixture with the oxygen comprising gas as fluidizing agent or if ammonia is provided
separately from the fluidizing agent at the bottom of the reaction chamber, ammonia
makes 2 % by volume to 30 % by volume of the whole volume of the gases provided at
the bottom. Preferably, 5 % by volume to 25 % by volume and most preferably 10 % by
volume to 20 % by volume of the gases provided at the bottom of the fluidized bed
chamber is ammonia.
[0032] According to the invention the mass ratio of ammonia to carbonaceous fuel is between
0,05 and 0,5. Preferably, the mass ratio of ammonia to carbonaceous fuel is between
0,1 and 0,25 and most preferably between 0,2 and 0,1. Accordingly, 5 % to 50 % by
mass of the carbonaceous fuel may be replaced by ammonia to receive a similar heat
output. Even if the carbonaceous fuel is not replaced by ammonia but ammonia is added
to the combustion process at a constant mass supply of the carbonaceous fuel, the
mass of the supplied ammonia may be between 5 % to 50 % of the mass of the supplied
carbonaceous fuel.
[0033] The invention and the technical background will now be described with regard to the
figures. The figures show schematically
- Figure 1:
- a fluidized bed apparatus with a duct leading to a fluidizing bottom,
- Figure 2:
- an embodiment of an injection apparatus arranged in the duct and
- Figure 3:
- a further embodiment of an injection apparatus arranged in the duct.
[0034] The fluidized bed apparatus shown in Figure 1 comprises a fluidized bed reactor 1,
which has a reaction chamber 2, at which bottom a fluidizing bottom 3 is arranged.
[0035] A duct 8 is connected to the fluidizing bottom 3, through which duct 8 an oxygen
comprising gas from a fluidizing agent source 6 is supplied to the fluidizing bottom
3.
[0036] An injection apparatus 9 is arranged within the duct 8. The injection apparatus 9
is connected to an ammonia source 7, so that ammonia can be injected into the duct
8 and into the oxygen comprising gas flowing towards the fluidizing bottom 3.
[0037] The fluidized bed apparatus comprises two carbonaceous fuel sources 5, which are
connected to respective carbonaceous fuel supplies 4 arranged above the fluidizing
bottom. For example, solid fuel such as coal or biomass may be provided from the carbonaceous
fuel source 5 into the reaction chamber 2 via the upper carbonaceous fuel supply.
Furthermore, oil as liquid carbonaceous fuel may be supplied from the carbonaceous
fuel source 5 through the lower carbonaceous fuel supply 4.
[0038] The fluidized bed apparatus further comprises a secondary air supply 15, with which
secondary air may be supplied into the reaction chamber 2. Additionally, the fluidized
bed apparatus comprises an ignition device 14, which is arranged within the reaction
chamber 2.
[0039] A separator 16 is arranged adjacent to the reaction chamber 2, wherein the separator
16 is connected via a return duct 17 to the reaction chamber 2 above the fluidizing
bed 3.
[0040] During operation, carbonaceous fuel is supplied from the carbonaceous fuel supply
4 into the reaction chamber 2, in which the carbonaceous fuel is fluidized by a gas
mixture provided from duct 8 through the fluidizing bottom 3. The fluidizing agent
provided through the duct 8 comprises an oxygen comprising gas from the fluidizing
agent source 6 and ammonia from the ammonia source 7. In order to start a combustion
process, the ignition device 14 is actuated.
[0041] When the combustion process is started, the carbonaceous fuel reacts with the oxygen
and ammonia reacts with the oxygen in combustion processes. Accordingly, the thermal
energy generated in the reaction chamber 2 is based on a combustion of the carbonaceous
fuel and of ammonia. Secondary air may be added to the combustion process through
the secondary air supply 15. As the combustion process is not solely based on the
combustion of carbonaceous fuel, less carbon dioxide is exhausted.
[0042] Solid particles leaving the reaction chamber 2 at the upper end are separated from
the combustion gases 9in separator 16, whereas the separated solid particles are returned
to the reaction chamber 2 via the return duct 17.
[0043] The injection apparatus 9, with which ammonia is injected into the duct 8 may comprise
multiple injectors 10, as depicted in Figure 2. Each injector 10 has a single opening,
through which ammonia is injected into the duct 8. A static mixer for each injector
10 is arranged downstream to the injector 10 within the duct 8. Thereby, ammonia is
evenly mixed with the oxygen comprising gas.
[0044] In the embodiment according to Figure 3, multiple pipes 12 are arranged beside each
other within the duct 8, wherein each pipe 12 comprises multiple openings 13 through
which ammonia is injected into the duct 8. Accordingly, ammonia is evenly distributed
injected into the duct 8 already at the plane of injection.
Reference signs
[0045]
- 1
- Fluidized bed reactor
- 2
- Reaction chamber
- 3
- Fluidizing bottom
- 4
- Carbonaceous fuel supply
- 5
- Carbonaceous fuel source
- 6
- Fluidizing agent source
- 7
- Ammonia source
- 8
- Duct
- 9
- Injection apparatus
- 10
- Injector
- 11
- Static mixer
- 12
- Pipe
- 13
- Injection opening
- 14
- Ignition device
- 15
- Secondary air supply
- 16
- Separator
- 17
- Return duct
1. Method for combusting carbonaceous fuel in a fluidized bed reactor (1), comprising
the following steps:
- Providing at least one carbonaceous fuel to a reaction chamber (2) of the fluidized
bed reactor (1),
- Providing a fluidizing agent at a bottom of the reaction chamber (2), thereby fluidizing
the carbonaceous fuel, wherein the fluidizing agent comprises gaseous oxygen, wherein
a combustion reaction of the carbonaceous fuel with the gaseous oxygen occurs,
characterized in that
ammonia is combusted to provide thermal energy to the reaction chamber (2), wherein
the mass ratio of ammonia to carbonaceous fuel is between 0,05 and 0,5.
2. Method according to claim 1, wherein ammonia is provided at the bottom of the reaction
chamber (2).
3. Method according to claim 2, wherein a mixture of a gaseous oxygen comprising gas
and gaseous ammonia is provided at the bottom of the reaction chamber as fluidizing
agent.
4. Method according to claim 2 or 3, wherein 2 Vol. % to 30 Vol. % of the gases provided
at the bottom of the fluidized bed chamber is ammonia.
5. Method according to claim 1, wherein ammonia is combusted to heat up the fluidizing
agent.
6. Method according to one of the preceding claims, wherein the carbonaceous fuel is
a solid fuel and/or a liquid fuel.
7. Method according to claim 6, wherein the solid fuel is coal or biomass.
8. Method according to claim 6 or 7, wherein the liquid fuel is oil.
9. Fluidized bed apparatus, comprising
• a fluidized bed reactor (1), the fluidized bed reactor (1) having
- a reaction chamber (2),
- a fluidizing bottom (3) at the bottom of the reaction chamber (2),
- at least one carbonaceous fuel supply (4) above the fluidizing bottom (3),
• at least one source (5) for a carbonaceous fuel being connected to the carbonaceous
fuel supply (4),
• at least one fluidizing agent source (6) being connected to the fluidizing bottom
(3), wherein at least one fluidizing agent source (6) is configured to supply a gas
comprising gaseous oxygen, wherein
the fluidized bed apparatus comprises at least one ammonia source (7) being connected
to a bottom of the reaction chamber (2), in particular to the fluidizing bottom (3),
wherein
the fluidizing agent source (6) is connected to a duct (8) leading to the fluidizing
bottom (3), wherein an injection apparatus (9) is arranged within the duct (8), wherein
the injection apparatus (9) is connected to the ammonia source (6), so that ammonia
is injected in the oxygen comprising gas supplied from the first fluidizing agent
source (6) through the duct (8)
characterized in that
the injection apparatus is capable of injecting ammonia with a mass ratio of ammonia
to carbonaceous fuel between 0,05 and 0,5.
10. Fluidized bed apparatus, comprising
• a fluidized bed reactor (1), the fluidized bed reactor (1) having
- a reaction chamber (2),
- a fluidizing bottom (3) at the bottom of the reaction chamber (2),
- at least one carbonaceous fuel supply (4) above the fluidizing bottom (3),
• at least one source (5) for a carbonaceous fuel being connected to the carbonaceous
fuel supply (4),
• at least one fluidizing agent source (6) being connected to the fluidizing bottom
(3), wherein at least one fluidizing agent source (6) is configured to supply a gas
comprising gaseous oxygen, wherein
the fluidized bed apparatus comprises at least one ammonia source (7) being connected
to a bottom of the reaction chamber (2), in particular to the fluidizing bottom (3),
characterized in that
the fluidizing bottom (3) comprises multiple first openings and multiple second openings,
wherein the multiple first openings are connected to the at least one fluidizing agent
source (6) and wherein the multiple second openings are connected to the ammonia source
(7).
11. Fluidized bed apparatus, comprising
• a fluidized bed reactor (1), the fluidized bed reactor (1) having
- a reaction chamber (2),
- a fluidizing bottom (3) at the bottom of the reaction chamber (2),
- at least one carbonaceous fuel supply (4) above the fluidizing bottom (3),
• at least one source (5) for a carbonaceous fuel being connected to the carbonaceous
fuel supply (4),
• at least one fluidizing agent source (6) being connected to the fluidizing bottom
(3), wherein at least one fluidizing agent source (6) is configured to supply a gas
comprising gaseous oxygen, wherein
the fluidized bed apparatus comprises at least one ammonia source (7) being connected
to a bottom of the reaction chamber (2), in particular to the fluidizing bottom (3),
characterized in that
the fluidizing agent source (6) is connected to a duct (8) leading to the fluidizing
bottom (3), wherein a burner is arranged within the duct (8), wherein the burner is
connected to the ammonia source (7) so that combusted ammonia is added to the oxygen
comprising gas supplied from the fluidizing agent source (6) through the duct (8).
12. Fluidized bed apparatus according to claim 9, wherein the injection apparatus (9)
comprises at least one injector (10) and at least one static mixer (11), wherein the
at least one static mixer (11) is arranged within the duct (8) downstream of the at
least one injector (10).
13. Fluidized bed apparatus according to claim 9, wherein the injection apparatus (9)
comprises at least one pipe (12), one pipe having multiple injection openings (13),
through which ammonia is injected into the duct (8).
1. Verfahren zur Verbrennung von kohlenstoffhaltigem Brennstoff in einem Wirbelschichtreaktor
(1), das die folgenden Schritte umfasst:
- Bereitstellen mindestens eines kohlenstoffhaltigen Brennstoffs in einer Reaktionskammer
(2) des Wirbelschichtreaktors (1),
- Bereitstellen eines Fluidisierungsmittels an einem Boden der Reaktionskammer (2),
wodurch der kohlenstoffhaltige Brennstoff fluidisiert wird, wobei das Fluidisierungsmittel
gasförmigen Sauerstoff umfasst, wobei eine Verbrennungsreaktion des kohlenstoffhaltigen
Brennstoffs mit dem gasförmigen Sauerstoff stattfindet,
dadurch gekennzeichnet, dass
Ammoniak verbrannt wird, um der Reaktionskammer (2) Wärmeenergie bereitzustellen,
wobei das Massenverhältnis von Ammoniak zu kohlenstoffhaltigem Brennstoff zwischen
0,05 und 0,5 liegt.
2. Verfahren nach Anspruch 1, wobei Ammoniak am Boden der Reaktionskammer (2) bereitgestellt
wird.
3. Verfahren nach Anspruch 2, wobei am Boden der Reaktionskammer ein Gemisch aus einem
gasförmigen, sauerstoffhaltigen Gas und gasförmigem Ammoniak als Fluidisierungsmittel
bereitgestellt wird.
4. Verfahren nach Anspruch 2 oder 3, wobei 2 Vol.-% bis 30 Vol.-% der Gase, die am Boden
der Wirbelschichtkammer bereitgestellt werden, Ammoniak sind.
5. Verfahren nach Anspruch 1, wobei Ammoniak verbrannt wird, um das Fluidisierungsmittel
zu erhitzen.
6. Verfahren nach einem der vorhergehenden Ansprüche, wobei der kohlenstoffhaltige Brennstoff
ein fester Brennstoff und/oder ein flüssiger Brennstoff ist.
7. Verfahren nach Anspruch 6, wobei der feste Brennstoff Kohle oder Biomasse ist.
8. Verfahren nach Anspruch 6 oder 7, wobei der flüssige Brennstoff Öl ist.
9. Wirbelschichtvorrichtung, umfassend
• einen Wirbelschichtreaktor (1), wobei der Wirbelschichtreaktor (1) Folgendes aufweist
- eine Reaktionskammer (2),
- einen Fluidisierungsboden (3) am Boden der Reaktionskammer (2),
- mindestens eine Zuführung für kohlenstoffhaltigen Brennstoff (4) oberhalb des Fluidisierungsbodens
(3),
• mindestens eine Quelle (5) für einen kohlenstoffhaltigen Brennstoff, die mit der
Zuführung für kohlenstoffhaltigen Brennstoff (4) verbunden ist,
• mindestens eine Fluidisierungsmittelquelle (6), die mit dem Fluidisierungsboden
(3) verbunden ist, wobei mindestens eine Fluidisierungsmittelquelle (6) so konfiguriert
ist, dass sie ein Gas zuführt, das gasförmigem Sauerstoff umfasst, wobei
die Wirbelschichtvorrichtung mindestens eine Ammoniakquelle (7) umfasst, die mit einem
Boden der Reaktionskammer (2), insbesondere mit dem Fluidisierungsboden (3), verbunden
ist, wobei die Fluidisierungsmittelquelle (6) mit einem Kanal (8) verbunden ist, der
zum Fluidisierungsboden (3) führt, wobei eine Injektionsvorrichtung (9) innerhalb
des Kanals (8) angeordnet ist, wobei die Injektionsvorrichtung (9) mit der Ammoniakquelle
(7) verbunden ist, so dass Ammoniak in das sauerstoffhaltige Gas injiziert wird, das
von der ersten Fluidisierungsmittelquelle (6) durch den Kanal (8) zugeführt wird,
dadurch gekennzeichnet, dass
die Injektionsvorrichtung in der Lage ist, Ammoniak mit einem Massenverhältnis von
Ammoniak zu kohlenstoffhaltigem Brennstoff zwischen 0,05 und 0,5 zu injizieren.
10. Wirbelschichtvorrichtung, umfassend
• einen Wirbelschichtreaktor (1), wobei der Wirbelschichtreaktor (1) Folgendes aufweist
- eine Reaktionskammer (2),
- einen Fluidisierungsboden (3) am Boden der Reaktionskammer (2),
- mindestens eine Zuführung für kohlenstoffhaltigen Brennstoff (4) oberhalb des Fluidisierungsbodens
(3),
• mindestens eine Quelle (5) für einen kohlenstoffhaltigen Brennstoff, die mit der
Zuführung für kohlenstoffhaltigen Brennstoff (4) verbunden ist,
• mindestens eine Fluidisierungsmittelquelle (6), die mit dem Fluidisierungsboden
(3) verbunden ist, wobei mindestens eine Fluidisierungsmittelquelle (6) so konfiguriert
ist, dass sie ein Gas zuführt, das gasförmigen Sauerstoff umfasst, wobei
die Wirbelschichtvorrichtung mindestens eine Ammoniakquelle (7) umfasst, die mit einem
Boden der Reaktionskammer (2), insbesondere mit dem Fluidisierungsboden (3), verbunden
ist,
dadurch gekennzeichnet, dass
der Fluidisierungsboden (3) mehrere erste Öffnungen und mehrere zweite Öffnungen umfasst,
wobei die mehreren ersten Öffnungen mit der mindestens einen Fluidisierungsmittelquelle
(6) verbunden sind und wobei die mehreren zweiten Öffnungen mit der Ammoniakquelle
(7) verbunden sind.
11. Wirbelschichtvorrichtung , umfassend
• einen Wirbelschichtreaktor (1), wobei der Wirbelschichtreaktor (1) Folgendes aufweist
- eine Reaktionskammer (2),
- einen Fluidisierungsboden (3) am Boden der Reaktionskammer (2),
- mindestens eine Zuführung für kohlenstoffhaltigen Brennstoff (4) oberhalb des Fluidisierungsbodens
(3),
• mindestens eine Quelle (5) für einen kohlenstoffhaltigen Brennstoff, die mit der
Zuführung für kohlenstoffhaltigen Brennstoff (4) verbunden ist,
• mindestens eine Fluidisierungsmittelquelle (6), die mit dem Fluidisierungsboden
(3) verbunden ist, wobei mindestens eine Fluidisierungsmittelquelle (6) so konfiguriert
ist, dass sie ein Gas zuführt, das gasförmigen Sauerstoff umfasst, wobei
die Wirbelschichtvorrichtung mindestens eine Ammoniakquelle (7) umfasst, die mit einem
Boden der Reaktionskammer (2), insbesondere mit dem Fluidisierungsboden (3), verbunden
ist,
dadurch gekennzeichnet, dass
die Fluidisierungsmittelquelle (6) mit einem Kanal (8) verbunden ist, der zum Fluidisierungsboden
(3) führt, wobei ein Brenner innerhalb des Kanals (8) angeordnet ist, wobei der Brenner
mit der Ammoniakquelle (7) verbunden ist, so dass verbranntes Ammoniak zu dem sauerstoffhaltigen
Gas hinzugegeben wird, das von der Fluidisierungsmittelquelle (6) durch den Kanal
(8) zugeführt wird.
12. Wirbelschichtvorrichtung nach Anspruch 9, wobei die Injektionsvorrichtung (9) mindestens
einen Injektor (10) und mindestens einen statischen Mischer (11) umfasst, wobei der
mindestens eine statische Mischer (11) innerhalb des Kanals (8) stromabwärts des mindestens
einen Injektors (10) angeordnet ist.
13. Wirbelschichtvorrichtung nach Anspruch 9, wobei die Injektionsvorrichtung (9) mindestens
ein Rohr (12) umfasst, wobei ein Rohr mehrere Injektionsöffnungen (13) aufweist, durch
die Ammoniak in den Kanal (8) injiziert wird.
1. Procédé pour la combustion de combustible carboné dans un réacteur à lit fluidisé
(1), comprenant les étapes suivantes :
- de fournir au moins un combustible carboné à une chambre à réaction (2) du réacteur
à lit fluidisé (1),
- de fournir un agent de fluidisation à un fond de la chambre à réaction (2), fluidisant
ainsi le combustible carboné, dans lequel l'agent de fluidisation comprend de l'oxygène
gazeux, dans lequel une réaction de combustion du combustible carboné avec l'oxygène
gazeux à lieu,
caractérisé en ce que
de l'ammoniac subit une combustion pour fournir de l'énergie thermique à la chambre
à réaction (2), dans lequel le rapport massique ammoniac/combustible carboné est entre
0,05 et 0,5.
2. Procédé selon la revendication 1, dans lequel l'ammoniac est fourni sur le fond de
la chambre à réaction (2).
3. Procédé selon la revendication 2, dans lequel un mélange d'un gaz comprenant de l'oxygène
gazeux et de l'ammoniac gazeux est fourni sur le fond de la chambre à réaction en
tant qu'agent de fluidisation.
4. Procédé selon la revendication 2 ou 3, dans lequel 2 % en volume à 30 % en volume
des gaz fournis sur le fond de la chambre à lit fluidisé est de l'ammoniac.
5. Procédé selon la revendication 1, dans lequel l'ammoniac subit une combustion pour
chauffer l'agent de fluidisation.
6. Procédé selon l'une des revendications précédentes, dans lequel le combustible carboné
est un combustible solide et/ou un combustible liquide.
7. Procédé selon la revendication 6, dans lequel le combustible solide est du charbon
ou de la biomasse.
8. Procédé selon la revendication 6 ou 7, dans lequel le combustible liquide est du pétrole.
9. Appareil à lit fluidisé, comprenant
• un réacteur à lit fluidisé (1), le réacteur à lit fluidisé (1) ayant
- une chambre à réaction (2),
- un fond de fluidisation (3) sur le fond de la chambre à réaction (2),
- au moins une alimentation de combustible carboné (4) au-dessus du fond de fluidisation
(3),
• au moins une source (5) pour un combustible carboné étant connectée à l'alimentation
de combustible carboné (4),
• au moins une source d'agent de fluidisation (6) étant connectée au fond de fluidisation
(3), dans lequel au moins une source d'agent de fluidisation (6) est configurée pour
fournir un gaz comprenant de l'oxygène gazeux,
dans lequel
l'appareil à lit fluidisé comprend au moins une source d'ammoniac (7) étant connectée
à un fond de la chambre à réaction (2), en particulier au fond de fluidisation (3),
dans lequel
la source d'agent de fluidisation (6) est connectée à un tuyau (8) menant au fond
fluidisé (3), dans lequel un appareil d'injection (9) est agencé à l'intérieur du
tuyau (8), dans lequel l'appareil d'injection (9) est connecté à la source d'ammoniac
(7), de façon à ce que l'ammoniac soit injecté dans l'oxygène comprend du gaz fourni
de la première source d'agent de fluidisation (6) à travers le tuyau (8),
caractérisé en ce que
l'appareil d'injection est capable d'injecter l'ammoniac avec un rapport massique
ammoniac/combustible carboné entre 0,05 et 0,5.
10. Appareil à lit fluidisé, comprenant
• un réacteur à lit fluidisé (1), le réacteur à lit fluidisé (1) ayant
- une chambre à réaction (2),
- un fond de fluidisation (3) sur le fond de la chambre à réaction (2),
- au moins une alimentation de combustible carboné (4) au-dessus du fond de fluidisation
(3),
• au moins une source (5) pour un combustible carboné étant connectée à l'alimentation
de combustible carboné (4),
• au moins une source d'agent de fluidisation (6) étant connectée au fond de fluidisation
(3), dans lequel au moins une source d'agent de fluidisation (6) est configurée pour
fournir un gaz comprenant de l'oxygène gazeux,
dans lequel
l'appareil à lit fluidisé comprend au moins une source d'ammoniac (7) étant connectée
à un fond de la chambre à réaction (2), en particulier au fond de fluidisation (3),
caractérisé en ce que
le fond de fluidisation (3) comprend une pluralité de premières ouvertures et une
pluralité de secondes ouvertures, dans lequel la pluralité de premières ouvertures
sont connectées à l'au moins une source d'agent de fluidisation (6) et dans lequel
la pluralité de secondes ouvertures sont connectées à la source d'ammoniac (7).
11. Appareil à lit fluidisé, comprenant
• un réacteur à lit fluidisé (1), le réacteur à lit fluidisé (1) ayant
- une chambre à réaction (2),
- un fond de fluidisation (3) sur le fond de la chambre à réaction (2),
- au moins une alimentation de combustible carboné (4) au-dessus du fond de fluidisation
(3),
• au moins une source (5) pour un combustible carboné étant connectée à l'alimentation
de combustible carboné (4),
• au moins une source d'agent de fluidisation (6) étant connectée au fond de fluidisation
(3), dans lequel au moins une source d'agent de fluidisation (6) est configurée pour
fournir un gaz comprenant de l'oxygène gazeux,
dans lequel
l'appareil à lit fluidisé comprend au moins une source d'ammoniac (7) étant connectée
à un fond de la chambre à réaction (2), en particulier au fond de fluidisation (3),
caractérisé en ce que
la source d'agent de fluidisation (6) est connectée à un tuyau (8) menant vers le
fond de fluidisation (3), dans lequel un brûleur est agencé à l'intérieur du tuyau
(8), dans lequel le tuyau (8) est connecté à la source d'ammoniac (7) de façon à ce
que l'ammoniac ayant subi une combustion soit ajouté à l'oxygène comprenant du gaz
fourni de la source d'agent de fluidisation (6) à travers le tuyau (8).
12. Appareil à lit fluidisé selon la revendication 9, dans lequel l'appareil d'injection
(9) comprend au moins un injecteur (10) et au moins un mélangeur statique (11), dans
lequel l'au moins un mélangeur statique (11) est agencé à l'intérieur du tuyau (8)
en aval de l'au moins un injecteur (10).
13. Appareil à lit fluidisé selon la revendication 9, dans lequel l'appareil d'injection
(9) comprend au moins un conduit (12), un conduit ayant une pluralité d'ouvertures
d'injection (13) à travers lesquelles de l'ammoniac est injecté jusque dans le tuyau
(8).