Background of the Invention
[0001] This invention relates generally to fuel combustors, and, more particularly, to a
slagging combustor in which the fuel is pulverized coal. In the combustion and gasification
of coal, non-combustible ash and mineral components cannot be allowed to accumulate
within the combustion chamber, or serious operational problems will be experienced.
In a slagging combustor, the temperature in the chamber is maintained high enough
to allow the slag to be removed in liquid form by the action of shear forces and/or
gravitational forces acting on the slag. This slagging capability will also have benefits
related to operation of downstream equipment interacting with the product flowstream.
[0002] A slagging combustor may have different requirements, such as overall stoichiometry,
imposed on it by the characteristics of a downstream process utilizing the products
of combustion. However, regardless of these different requirements an ideal slagging
combustor should have good slag recovery characteristics and should operate at a relattively
low temperature, to minimize heat losses and maximize efficiency.
[0003] The degree of combustion of the coal in a slagging combustor will depend in part
on the intended application of the gaseous products of combustion. For example, if
the combustor is to be employed to produce gas for use as a fuel in a conventional
power generation plant, or in chemical processes, the gases exiting from the combustion
chamber should still be relatively rich in combustibles. Accordingly, if a coal combustor
is to be used as such a gas generator, the combustion process should take place in
a relatively fuel-rich environment. In terms of stoichiometry, a stoichiometric ratio
as low as 0.3 might be desirable for subsequent combustion in a boiler or use as feed
stock in a chemical process. If the gas were to be immediately employed in a combustion
or heat exchange process, it might be desirable to provide a gas at a higher temperature,
but with a lower equivalent heat value in the combustibles in the gas. This could
be done by more completely combusting the coal in the slagging combustor, i.e. at
a higher stoichiometric ratio.
[0004] By way of further example, the desired stoichiometry of a slagging combustor would
be substantially different if the output gases were to be used in a magnetohydrodynamic
(MHD) electric power generator. An MHD generator utilizes a high-temperature, high-velocity
plasma which is passed through a magnetic field to generate electricity directly,
without the use of rotating machinery. For such an application, the gaseous products
from the slagging combustion stage may be lower in combustibles content and higher
in temperature and heat content. The products of combustion may then be subject to
further combustion after leaving the slagging combustor. Additional oxidizer, and
sometimes additional fuel, may be added to the exiting gases for this purpose. Regardless
of the end use to which the products of combustion are put, and the different requirements
thereby placed on the combustor, the slagging combustor should still ideally provide
good slag recovery and relatively low operating temperatures.
[0005] In any application of a coal combustor, the desired stoichiometry of the combustion
process will depend on the requirements of the downstream application. Acceptable
combustor operation and combustion product properties will also be dependent on the
temperature and composition of the oxidizer gas, and the type and size of the coal
particles. Selection of the appropriate parameters, to satisfy the requirements of
the downstream application, typically involves a number of practical design trade-offs.
For example, preheating the oxidizer gas to a higher temperature and thereby permitting
reactions at a lower stoichiometric ratio might still meet the requirements of the
downstream application, but would obviously require either the consumption of more
energy in the preheating stage or the addition of a heat exchanger. The first of these
alternatives may or may not comport with the overall energy requirements of the application,
and the second may not even be feasible.
[0006] Furthermore, appropriate choice of the stoichiometric ratio in a slagging combustor
is of critical importance to the rate of slag recovery. If the ratio is too low, temperatures
will also tend to be low, and the slag may not liquify sufficiently to facilitate
recovery. Conversely, if the ratio is too high, the temperature may be so high that
a significant proportion of the slag is lost by vaporization. In theory at least,
the effective slagging range has been thought to lie about 0.4 and up to 1.0 for the
combustor as a whole. However, the stoichiometry desired to meet the requirements
of the downstream application may not fall within this theoretical slagging range.
For example, if the combustor is to act as a gas generator, a stoichiometric ratio
as low as 0.3 might be preferred.
[0007] In any event, it will be appreciated that a coal combustor of this general type should
ideally be capable of matching the overall combustor stoichiometry, and other characteristics
of the slagging combustor, with the requirements of the downstream application of
the combustor. Furthermore, the slagging combustor should provide a high rate of slag
recovery, a relatively low heat loss, and therefore a relatively high thermal efficiency.
In addition, there should be complete fuel utilization, i.e., no uncombined carbon
should leave the combustor. In prior art combustors, it has not been possible to satisfy
all of these objectives simultaneously. For example, good slag recovery, in conventional
combustors, is not consistent with a relatively low temperature and low stoichiometric
ratio.
[0008] U.S.-A-4,217,132 to Burge et al. proposes one solution to these problems by combining
an axial and a tangential flow of oxidizing gas, so that the combustion of the fuel
particles is essentially complete before the particles impinge on the walls of the
combustion chamber. Although this technique is satisfactory in many respects, it fails
to address the particular problems outlined above. In at least one respect, the Burge
et al. patent is typical of prior art coal combustion techniques in that the oxidizer
gas flows in a continuous pattern in which there is an axial velocity component directed
from the head end to the exit end. No combustors operating on this principle combine
good slag recovery, low heat loss and complete carbon burnout under all operating
conditions of interest.
[0009] There is, therefore, a significant need for a coal combustor which can provide high
thermodynamic efficiency and acceptably high rates of slag removal, and be adaptable
to match the thermodynamic needs of a downstream process or application. The present
invention satisfies this need.
[0010] According to the present invention, there is provided a fuel combustor comprising
a combustion chamber having a head end and an opposite exit end, fuel inlet means
for feeding particulate solid fuel into said chamber at said head end, oxidizer inlet
means for feeding oxidizer into the chamber in a substantially tangential direction
to produce high velocity rotational flow within the chamber, an outlet for exhausting
combustion products from the exit end of said chamber, a slagging baffle between said
ends and a slag tap for removing slag from said chamber; said com- 'bustor being characterised
in that said oxidizer inlet means is located between said ends and is adapted to effect
flow of a portion of the oxidizer toward said head end of said chamber and flow of
the remainder of the entering oxidizer toward said exit end of the chamber in such
proportions that said fuel and said oxidizer portion react within said head end of
the chamber in a first phase of combustion at a relatively low stoichiometric ratio
and a correspondingly low temperature to allow liquefaction of the slag content of
the entering fuel with minimal vaporization, the rotational flow causing the liquid
slag to be centrifuged onto the chamber wall for removal by said slag tap, the remainder
of the entering oxidizer gas reacting with the combustion products of the first phase
of combustion near said exit end of the chamber in a second phase of combustion to
provide an overall stoichiometric ratio which is substantially higher than that of
said first phase.
[0011] The present invention resides in a slagging coal combustor, having a head end and
an exit end, in which oxidizer is introduced in such a manner that at least a portion
of it flows away from the exit end and toward the head end, coal being introduced
into the oxidizer flowing toward the head end, to provide an initial phase of combustion
in the head end. Combustion in this first phase can take place at a stoichiometric
ratio much less than that of the combustor as a whole.
[0012] Although conceived for the purpose of solving a problem experienced in coal combustors,
the invention has application as well to combustors of other fuels. The essential
elements of the invention in its broadest sense are means for introducing oxidizer
in such a manner that a portion of it flows toward the head end, and means for injecting
fuel into this oxidizer portion to provide the first phase of combustion in the head
end.
[0013] Basically, and in general terms, the invention in its form as a pulverized coal combustor
comprises a combustion chamber having a head end and an exit end, means for injecting
pulverized coal into the head end, means for injecting oxidizer gas peripherally into
the chamber, means for removing non-combustible slag from the chamber, and means located
at the exit end to provide an exit for the essentially gaseous products of combustion.
Most importantly, the means for injecting oxidizer gas and pulverized coal are so
configured that a portion of the oxidizer gas stream flows toward the head end of
the chamber and is there reacted with the coal fuel in the first phase of combustion.
In one embodiment of the invention, gases from the first phase of combustion are further
combusted with the remaining portion of the oxidizer gas, which flows toward the exit
end of the chamber. In this embodiment, the stoichiometric ratio in the first phase
of combustion in the head end, which is approximately one half of the overall ratio
for the combustor, may, for example, be as low as 0.3 for some designs. Contrary to
generally accepted practice with respect to effective slag removal, extremely good
slag removal characteristics can be obtained in this low stoichiometric range.
[0014] When used for supplying high-temperature gases to an MHD generator, the combustor
of the invention operates at an overall stoichiometric ratio selected to provide the
best combination of slag recovery characteristics in the head end and exit gas conditions
matching the requirements of the MHD generator. In a presently preferred embodiment,
an overall ratio of approximately 0.6 is used, with a ratio of approximately 0.3 in
the head end.
[0015] The oxidizer gas, when introduced tangentially into the combustion chamber, splits
into two streams. One stream has an axial velocity component directed toward the exit
end of the chamber while the other portion has an axial velocity component directed
toward the head end, into which the fuel is injected. In one preferred embodiment
of the invention, the two streams are approximately equal in volumetric flow rates.
Because the fuel is initially combusted with a relatively low volume of oxidizer,
first-phase combustion at the head end of the chamber takes place at a relatively
low stoichiometric ratio. There is a correspondingly low reaction temperature and
a relatively high efficiency, because of the reduced heat loss at the lower temperature.
However, highly effective slag removal is obtained in these conditions. In short,
the slagging stage is more efficient thermodynamically, and provides excellent slag
recovery. Unburned gases from the first combustion phase then react with the remaining
or exit-end stream of the oxidizer gas, and this second phase of combustion takes
place at a higher stoichiometric ratio. For example, if the downstream application
of the combustor is an MHD generator, the overall ratio can be approximately 0.6 to
0.9, with a corresponding head-end ratio of 0.3 to 0.45. Because of a relatively high
temperature in the exit end, it may be made relatively shorter in length than is possible
in a conventional combustor of the same type. This reduces the heat loss from the
chamber and improves the overall thermodynamic efficiency of the combustor.
[0016] Coal injection into the first-phase combustion zone can be effected by a pintle nozzle
disposed axially in the head end and directing fuel flow into that portion of the
oxidizer gas flowing toward the head end. Alternatively, fuel can be injected through
fuel inlets disposed peripherally around the chamber, to direct the flow into the
head-end portion of the oxidizer gas flow.
[0017] Both horizontal and vertical configurations of the chamber are contemplated. In the
horizontal configuration, the means for removing slag from the chamber includes a
slag port disposed at the bottom portion of the cylindrical wall of the chamber. In
the vertical configuration, the head end of the chamber is the lowermost end and the
exit is the uppermost. The slag port is located at the head-end.
[0018] In terms of a novel method, the invention in its broadest terms comprises the steps
of injecting oxidizer gas peripherally into a chamber having a head end and an exit
end, in such a manner that a portion of the flow is directed towards the head end,
injecting fuel, such as pulverized coal, into the head end in such a manner that combustion
takes place initially at a relatively low stoichiometric ratio and low temperature,
regardless of the end use of the gaseous products of combustion and regardless of
the overall stoichiometry of the combustor, removing any non-combustible slag from
the chamber, and allowing the essentially gaseous products of combustion to exit the
chamber. More specifically, the steps of injecting oxidizer gas and injecting pulverized
coal include injecting the oxidizer gas tangentially into the chamber at a point between
the head end and the exit end of the chamber such that the oxidizer gas flow splits
into two approximately equal portions having opposite axial components, and injecting
the pulverized coal into the oxidizer gas portion flowing toward the head end, wherein
a first phase of combustion occurs in the head end at a stoichiometric ratio of approximately
one half of the overall stoichiometric ratio for the combustor.
[0019] It will be appreciated from the foregoing that the present invention represents a
significant advance in the field of coal combustion and gasification. In particular,
a novel coal combustor achieves good slag removal rates while attaining high thermodynamic
efficiency, low heat loss and complete burning of carbon. Moreover, the combustor
of the invention allows for convenient matching of its thermodynamic characteristics
with those of a desired downstream process. Other aspects and advantages of the present
invention will become apparent from the following more detailed description, taken
in conjunction with the accompanying drawings, in which:
FIG. 1 is a simplified perspective view of a coal combustor embodying the present
invention, including the slagging combustor and slag removal apparatus, and also showing
an exit combustion stage which is not part of the invention;
FIG. 2 is a diagrammatic view of the slagging combustor;
FIG. 3 is a fragmentary sectional view of a pintle nozzle used to inject coal and,
for MHD and other selected application, an additive material, into the combustor;
FIG. 4 is a diagrammatic view showing typical flow patterns of fuel, oxidizer gas
and combustion products within the slagging combustor;
FIG. 5 is a diagrammatic elevational view showing the configuration of a first embodiment
of the invention, having a tangential oxidizer inlet and a volute exit port;
FIG. 5a is an end view of the embodiment shown in Fig. 5, taken in the direction of
the arrow 5a in Fig. 5;
FIG. 6 is a diagrammatic elevational view showing a second embodiment of the invention,
having a tangential oxidizer inlet, a symmetric exit port and a shortened exit end
portion;
FIG. 6a is an end view of the embodiment shown in Fig. 6, taken in the direction of
the arrow 6a in Fig. 6;
FIG. 7 is a diagrammatic elevational view of a third embodiment of the invention similar
to the second embodiment shown in Fig. 6 but having the slag tap located in the head
end rather than the exit end;
FIG. 7a is an end view of the embodiment shown in Fig. 7, taken in the direction of
the arrow 7a in Fig. 7;
FIG. 8 is a diagrammatic elevational view showing a fourth embodiment of the invention
having a recessed volute oxidizer inlet, a symmetric exit port and a head-end slag
tap;
FIG. 8a is an end view of the embodiment shown in Fig. 8, taken in the direction of
the arrow 8a in Fig. 8;
FIG. 9 is a diagrammatic elevational view of a fifth embodiment of the invention having
two slagging combustors, each with a recessed volute oxidizer inlet, and a head end
with a fuel injector and a slag tap, the two combustors being matched to a common,
centrally located exit port;
FIG. 10 is diagrammatic elevational view showing a sixth embodiment of the invention
with a vertically oriented combustion chamber, a recessed volute oxidizer inlet, a
symmetric exit port, peripheral coal injectors, and a head-end slag tap;
FIG. 10a is a plan view of the embodiment shown in Fig. 10.
FIG. 10b is a sectional view of the embodiment shown in Fig. 10, taken substantially
along line 10b-10b in Fig. 10;
FIG. 11 is a diagrammatic elevational view of a seventh embodiment of the invention
having a vertically oriented combustion chamber similar to that shown in Fig. 10,
but including an inlet flow diverter to divert all of the inlet oxidizer flow to the
head end of the chamber; and
FIG. 11a a is a sectional view of the embodiment shown in Fig. 11, taken substantially
along line lla-lla in Fig. 11.
Description of the Preferred Embodiments
[0020] As shown in the drawings for purposes of illustration, the present invention is principally
concerned with a pulverized coal combustor, and more particularly with a slagging
coal combustor. In slagging coal combustors, the non-combustible ash and mineral components
of the coal are removed in liquid form, so that these constituents do not remain in
the gases produced by the combustor.
[0021] Designers of coal combustors in the past have striven for efficient slag removal,
low heat loss, high thermodynamic efficiency, complete burning of carbon, and appropriate
matching of the thermodynamic characteristics of the combustor with the requirements
of downstream processes utilizing the products of combustion. Ideally, for example,
a coal combustor should be adaptable to provide gas to an MHD generator, or to provide
fuel gas for subsequent burning in boilers or in other chemical processes, and still
should maintain a high rate of slag recovery and a high thermal efficiency. Prior
coal combustors have traditionally employed an oxidizer flow pattern having an axial
component directed towards the exit end, and have not been able to achieve the desired
combination of ideal characteristics.
[0022] In accordance with the present invention, a coal combustor is provided with fuel
and oxidizer injection means which cooperate in such a manner that combustion takes
place initially in the head end of the combustor at a relatively low stoichiometric
ratio, regardless of the end use of the gaseous products of combustion and regardless
of the overall stoichiometry of the combustor. Extremely good slag recovery is provided
at the relatively low local stoichiometric ratio in the head end, and heat losses
are minimized, with a corresponding maximization of efficiency. A second combustion
phase may optionally be provided to yield a higher overall stoichiometric ratio, for
use in conjunction with an MHD generator, for example. If the second combustion phase
is omitted, a relatively low overall stoichiometric ratio is then provided, such as
when the combustor is operating as a synthesis gas generator.
[0023] As shown in Fig. 1, the apparatus of the invention includes a slagging coal combustor,
indicated generally by reference numeral 10, and having a tangential oxidizer inlet
12 and an axial coal inlet 14. The combustor 10 comprises a generally cylindrical
reaction chamber 16, shown as being disposed with its longitudinal axis horizontal,
the cylinder having an exit end 18 through which the products of combustion leave
the chamber, and a head end 20 into which the pulverized coal fuel is introduced.
As shown in this illustrative configuration, the exit end 18 includes an exit assembly
22 usually referred to as the symmetrical type. As will be appreciated from Figs.
6a and 7a, a symmetrical exit is one in which the exit path followed by the products
of combustion is symmetrical with respect to the axis of the combustor, i.e. the exit
path extends from the center of the exit assembly, rather than being tangential or
volute. The illustrative embodiment of Fig. 1 also includes a further exit combustion
stage 24 into which further oxidizer and/or fuel may be introduced, through the inlet
26. This exit stage 24 is illustrative of a typical environment for the combustor,
but is not essential to the present invention, since the slagging combustor will operate
equally well without the exit stage.
[0024] As best shown in Fig. 2, unburned minerals or ash are removed as liquid slag from
the chamber 16, through a slag port located low on the cylindrical wall of the chamber
close to the exit end 18. The port is connected to a slag removal assembly 28, the
details of which are not critical to the present invention. The entire chamber 16
and the oxidizer inlet 12 are cooled by a fluid, such as water, passed through coolant
inlets 30 on top of the cylinder and emerging from coolant exits at the bottom, some
of which are shown at 32. Cooling of the combustion chamber 16 produces a solidified
layer of slag on the chamber walls. The solid layer of slag protects the chamber walls
from erosion by liquid slag and by burning fuel particles, and also provides a relatively
low conductivity insulating layer to reduce heat losses from the chamber. To provide
better adhesion of the solidified slag layer to the chamber walls, the walls have
a large number of upstanding pins affixed to them, as shown at 34 in Fig. 5. In one
embodiment of the invention the pins 34 are approximately 1/8 inch (3.2 mm) in diameter
and 1/4 inch (6.4 mm) long, welded to the chamber walls at approximately 3/4 inch
(19.2 mm) spacing. The exit combustion stage 24 is used only in the event that it
is required for matching the thermodynamic characteristics of the combustor with some
downstream process, such as an MHD generator.
[0025] Fig. 2 shows in diagrammatic form the basic configuration of the slagging combustor.
Oxidizer gas is introduced tangentially into the combustion chamber 16 through a rectangular
port located between the head end 20 and the exit end 18. Fuel from the coal inlet
14 is dispersed along a generally conical spray having a substantial radial velocity
component. In a presently preferred embodiment of the invention, a half angle of approximately
60° with respect to the central axis of the cylinder 16, is used. As best shown in
Fig. 4, air from the oxidizer inlet 12 diverges into two separate paths, with respect
to the axial component of flow of the oxidizer. That portion of the oxidizer flowing
back towards the head end 20 will encounter fuel from the coal inlet 14, and combustion
will take place in the head end at a stoichiometric ratio of approximately half the
overall ratio for the entire combustor. Fuel particles leaving the nozzle 14 will
be substantially heated as they traverse the head end to meet the oxidizer gas near
the chamber walls. Thus, if the overall stoichiometric ratio is 0.58, as in an MHD
generator application, the stoichiometric ratio in the first combustion phase in the
head end will be approximately 0.29. For this MHD application, additional oxidizer
is added in the inlet to the MHD generator (not shown).
[0026] Gases from the first phase of combustion will then move into a central region of
the head end, near the axis, and will move generally along and near the axis and toward
the exit end 18, where a further reaction will occur with the remaining portion of
the oxidizer gas flowing towards the exit end. Combustion in this second phase of
the combustor increases the overall stoichiometric ratio, such that the overall ratio
is at the desired level. As shown in Fig. 4, there is also a small reverse core flow
back through the exit port. It must be kept in mind, when referring to Fig. 4, that
it represents only the axial and radial components of gas flow. Superimposed on this
flow pattern is the rotational flow induced by the tangential introduction of the
oxidizer gas. This rotational or cyclonic flow is important in that it provides a
relatively long path over which burning of the fuel particles can take place and slag
can be formed. The swirling action enhances fuel and oxidizer mixing, and directs
entrained material outward to the wall surfaces.
[0027] An annular baffle 40 prevents, for all practical purposes, any flow of slag beyond
the exit end 18 of the slagging combustor. Liquified slag, principally from the head
end 20, flows towards the slag tap 28 under the effects of graviational force and
shear force between the slag and the adjacent moving combustion gases. For the MHD
and other selected applications of the combustor, an additive material may be injected
axially with the coal fuel, as indicated at 41 in Fig. 2, to increase the electrical
conductivity of the resultant exiting gases or to otherwise modify the exhaust gas
species. Flow of the additive material has no significance in the present invention,
however, except to the extent that it may be injected with sufficient velocity to
avoid being captured in outflowing slag and to react with the hot exhaust gases.
[0028] Fig. 3 shows in sectional form a typical pintle nozzle structure. The pintle 14 is
cylindrical in shape and has a number of annular elements defining an axial passage
42 for the additive material, two concentric annular passages 43 and 44 joined in
fluid communication at the end of the pintle, as shown at 45, to provide a cooling
fluid path, and a surrounding annular fuel passage 46. The annular fuel passage 46
terminates in conical exit port 48 extending in a continuous circle around the periphery
of the pintle. Coal is ejected in a conical sheet from the exit port 48. An additional
annular cooling passage 49 is provided between the fuel passage 46 and the outside
surface of the pintle.
[0029] As shown in Figs. 5-11, the invention may be used in a variety of embodiments, depending
on the needs of the associated downstream application. First, in Fig. 5, there is
shown a basic configuration utilizing the principles of the invention. Included are
the coal pintle nozzle for injection of coal 14, a tangential inlet 12, slag tap 28,
and an exit shown at 22a. In this embodiment, and all others to be described, the
coal could be alternatively injected by means of peripheral fuel inlet ports, such
as those shown at 60 in Figs. 10 and 11. The only difference between the embodiment
shown in Fig. 5 and that discussed with respect to Figs. 1-4 is that the exit 22a
is a volute exit shown in more detail in Fig. 5a. In a volute exit, the radius of
the exit assembly increases from a minimum value to a maximum value, and an exit duct
merges tangentially with the assembly at its point of maximum radius. This is to be
distinguished from the symmetrical exit (Fig. 6a), wherein an exit duct merges with
a cylindrical exit assembly symmetrically, i.e., along a radius. In both types of
exit, the object is to provide a uniform, non-swirling flow in the exit duct.
[0030] The embodiment shown in Figs. 6 and 6a differs from that of Fig. 5 in two respects.
First, a simpler symmetrical exit 22b is shown. Secondly, and more importantly, the
exit 22b is located much closer to the inlet, i.e., the overall length of the slagging
stage is reduced. This reduction is made possible because the second phase of combustion,
in the exit end 18 of the chamber 16, takes a relatively short time, since it involves
only gaseous components at a high temperature, the solid fuel having been practically
completely combusted in the head end. The more compact design of the Fig. 6 embodiment
results in a further reduced heat loss and increased efficiency, while still maintaining
good slag recovery.
[0031] The embodiment shown in Figs. 7 and 7a is similar to that shown in Fig. 6, except
that the exit end combustion phase takes place in an even smaller volume, since the
oxidizer inlet, referred to as 12c, is moved much closer to the exit end 18 of the
chamber 16, as a consequence of locating the slag tap 28c at the head end. The coal
injector has been accordingly lengthened and effectively moved towards the exit end
with the inlet 12c. The head end volume is correspondingly increased by relocation
of the slag tap, and, as in all of the embodiments shown, most of the slag removal
function is taking place in the first phase of combustion, at the head end. In this
manner, heat loss through the slag tap 28c is reduced, because of the lower temperature
in the head end region. Placement of the slag tap 28c at the head end 20 also results
in a higher slag removal efficiency, since there should be reduced slag volatilization
because of the lower temperature of the head end. Moreover, the slag deposited on
the head-end walls should be more easily convected toward the slag tap by the axial
component of the inlet flow entering the head end 20.
[0032] The configuration shown in Figs. 8 and 8a represents a further refinement of the
embodiment shown in Fig. 7. In particular, the tangential oxidizer gas inlet has been
replaced by a volute inlet 12d, usually referred to as the recessed volute type. The
same volume of oxidizer gas can be introduced through the volute inlet as through
the tangential inlet, but with an effective reduction in axial length of the inlet,
since the volute inlet duct can be larger, measured in a radial direction, than a
tangential inlet to a cylinder of the same size. This shorter axial length can reduce
heat losses from the combustor, and thereby increase efficiency. More importantly,
however, the recessed volute 12d, shown in more detail in Fig. 8a, introduces the
oxidizer gas in a more symmetrical fashion about the walls of the chamber 16. The
oxidizer circulating in the volute spills over the volute edges in a fairly uniform
way around the volute circumference, rather than spilling out into opposite axial
directions in a limited region close to the tangential inlet opening. Stated another
way, the volute inlet introduces oxidizer flow uniformly about the periphery of the
chamber, rather than at an angularly limited region.
[0033] In the configuration shown in Fig. 9, there is a double-ended slagging combustor,
in which two head ends 20 and 20' are disposed one on each side of a central exit
region 50, there being two inlets 12e of the recessed volute type shown in the Fig.
8 configuration. There are also two slag taps 28e and two coal injectors 14 and 14'.
The principal advantage of the configuration shown in Fig. 9 is further reduced heat
loss, since the exit ends of the Fig. 8 configurations are eliminated. In the single-ended
configuration of Fig. 8, there is substantial heat loss from the exit end 22a, but
in the Fig. 9 configuration such losses are minimized by joining the exit ends at
the central region 50.
[0034] Fig. 10 shows a vertically oriented combustion chamber 16 having a recessed volute
inlet 12f, a symmetrical outlet 22f, coal injectors 60 disposed peripherally about
the chamber 16 at a location slightly towards the head end 20f from the inlet 12f,
and a slag tap 28f located in an axial orientation in the head end. The principle
of operation is the same as that of the basic configurations already described. Coal
is injected into the portion of the inlet flow proceeding towards the head end 20f
of the chamber 16, and a first phase of combustion occurs at the head end at a relatively
low stoichiometric ratio. A second stage of combustion can then occur in the exit
end of the combustor before the products of combustion exit through the symmetrical
exit 22f.
[0035] Any of the aforedescribed embodiments may be modified for operation as gas generators
by including means for diverting the entire oxidizer gas flow towards the head end
20 of the combustor. For example, as shown in Figs. 11 and 11a, the vertically oriented
embodiment of Fig. 10 is shown as having a head end 20g and a cylindrical baffle 62
disposed in the oxidizer inlet 12g to act as a flow diverter, ensuring that the oxidizer
flow has an axial component directed only toward the head end, as shown by the arrows
64. The inlet flow is, of course, adjusted to provide a desired stoichiometric ratio
for generating combustible gas. By this means, the second phase of combustion described
above as occurring in the exit end of the combustor, is eliminated, and the overall
stoichiometric ratio of the combustor is reduced to the same relatively low value
that obtains in the head end. Exit gases are thereby provided with the thermodynamic
properties characteristic of suitable fuel gas. It will be understood that any of
the other configurations could easily be modified to include the flow diverter 62
shown in Fig. 11 for gas generator operation.
[0036] It will be appreciated from the foregoing that the present invention represents a
significant advance in the field of coal combustors. In particular, the invention
provides a slagging combustor operating with desirable slag removal characteristics
at a relatively low stoichiometric ratio, and therefore providing for reduced heat
losses and increased efficiency. Furthermore, the combustor is easily adaptable to
match the requirements of various downstream processes, such as MHD generators or
processes requiring synthetic fuel gas.
1. A fuel combustor comprising a combustion chamber (16) having a head end (20) and
an opposite exit end (18), fuel inlet means (14) for feeding particulate solid fuel
into said chamber at said head end (20), oxidiser inlet means (12) for feeding oxidiser
into the chamber in a substantially tangential direction to produce high velocity
rotational flow within the chamber, an outlet (22) for exhausting combustion products
from the exit end of said chamber, a slagging baffle (40) between said ends and a
slag tap (28) for removing slag from said chamber; said combustor being characterised
in that said oxidiser inlet means (12) is located between said ends and is adapted
to effect flow of a portion of the oxidiser toward said head end (20) of said chamber
and flow of the remainder of the entering oxidiser toward said exit end (18) of the
chamber in such proportions that said fuel and said oxidiser portion react within
said head end (20) of the chamber in a first phase of combustion at a relatively low
stoichiometric ratio and a correspondingly low temperature to allow liquefaction of
the slag content of the entering fuel with minimal vaporisation, the rotational flow
causing the liquid slag to be centrifuged onto the chamber wall for removal by said
slag tap, the remainder of the entering oxidiser gas reacting with the combustion
products of the first phase of combustion near said exit end of the chamber (18) in
a second phase of combustion to provide an overall stoichiometric ratio which is substantially
higher than that of said first phase.
2. A fuel combustor as claimed in claim 1, further characterised in that said oxidiser
inlet means (12) is so located between said chamber ends that flow of said portion
of the oxidiser gas occurs in generally counterflow relation to the flow of fuel and
first phase combustion products through said chamber.
3. A fuel combustor as claimed in either claim 1 or claim 2, further characterised
in that said oxidiser inlet means (12) is arranged to direct a major proportion of
the entering oxidiser gas toward said head end (20).
4. A fuel combustor as claimed in either claim 1 or claim 2, further characterised
in that said oxidiser inlet means (12) is arranged to direct approximately one half
of the entering oxidiser gas flow to said head end (20) to give a stoichiometric ratio
of the first phase of combustion of approximately one half of the overall ratio for
said combustor.
5. A fuel combustor as claimed in any one of the preceding claims, further characterised
in that said oxidiser inlet means (12) comprises a recessed volute type oxidiser inlet.
6. A fuel combustor as claimed in any one of the preceding claims, further characterised
in that said outlet (22) opens axially through said chamber exit end.
7. A fuel combustor as claimed in any one of claims 1 to 5, further characterised
in that said outlet (22) comprises a volute outlet opening tangentially from said
chamber exit end.
8. A fuel combustor as claimed in any one of claims 1 to 5, further characterised
in that said outlet (22) opens laterally from said chamber exit end.
9. A fuel combustor as claimed in any one of claims 2 to 8, further characterised
in that said oxidiser inlet (12) is situated closer to said head end (20) than to
said baffle (40) and in that said slag tap (28) is located adjacent said baffle (40).
10. A fuel combustor as claimed in any one of claims 2 to 8, further characterised
in that said oxidiser inlet (12) is situated approximately midway between said head
end (20) and said baffle (40), and in that said slag tap (28) is located adjacent
said baffle (40).
11. A fuel combustor as claimed in any one of claims 2 to 8, further characterised
in that said oxidiser inlet (12) is situated closer to said baffle (40) than to said
chamber head end (20), and in that said slag tap (28) is located adjacent said chamber
head end (20).
12. A fuel combustor as claimed in any one of the preceding claims, further characterised
by a second combustion chamber having an exit end opening to said exit end of said
first mentioned combustion chamber and an opposite head end, second fuel and second
oxidiser inlet means for feeding particulate solid carbonaceous fuel into the head
end of said second chamber and feeding oxidiser gas into the latter chamber to produce
high velocity flow therein, an outlet for exhausting combustion products from the
exit end of said second chamber, a slag tap for removing slag from said second chamber,
and said second chamber inlet means effects flow of at least a portion of the entering
oxidiser gas toward said head end of said second chamber and flow of any remainder
of the entering oxidiser gas toward said exit end of the second chamber in such proportions
that said oxidiser gas portion and the entering fuel react within said head end of
the second chamber in a first phase of combustion at a relatively low stoichiometric
ratio and a correspondingly low temperature to allow liquefaction of the slag content
of the entering fuel with minimal vaporisation, and the liquid slag being centrifuged
onto the chamber wall for removal via said slag tap, the remainder of the entering
oxidiser gas reacting within said exit end of the second chamber with the combustion
products of the first phase of combustion in a second phase of combustion to provide
the second combustion chamber with an overall stoichiometric ratio which is substantially
higher than the first phase stoichiometric ratio in the second chamber.
13. A fuel combustor as claimed in any one of the preceding claims, further characterised
in that said combustion chamber is vertically disposed with its exit end uppermost
and its head end lowermost.
14. A fuel combustor as claimed in any one of the preceding claims, further characterised
in that said fuel inlet means comprises a plurality of fuel inlet ports spaced circumferentially
around the head end of said combustion chamber.
15. A fuel combustor as claimed in any one of the preceding claims, further characterised
in that said slag tap is centrally located at the bottom of said combustion chamber.
16. A fuel combustor as claimed in any one of the preceding claims, further characterised
by means affixed to the walls of said combustion chamber to enhance adhesion of solidified
slag thereto.
17. A fuel combustor as claimed in any one of the preceding claims, further characterised
by the oxidiser inlet means being adapted to give an overall stoichiometric ratio
which is sufficiently high to effect substantially complete gasification of the fuel
which the combustion temperatures are sufficiently low to avoid vaporisation of liquid
slag.
18. A combustion method comprising feeding particulate solid carbonaceous fuel and
oxidiser into a reaction chamber having a head end and an opposite exit end in a manner
to produce high velocity rotational flow within the chamber, exhausting combustion
products from the exit end of the chamber, and removing slag from the chamber; said
method being characterised by the steps of feeding said fuel to enter at the head
end of the chamber, feeding said oxidiser to an inlet between said ends and distributing
it such that a first portion of the entering oxidiser flows toward said head end of
the chamber and the remainder of the oxidiser flows toward said exit end of the chamber
in such proportions that said first portion reacts within said head end of the chamber
with the entering fuel in a first phase of combustion at a relatively low stoichiometric
ratio and a correspondingly low temperature such that the slag content of the fuel
is liquified with minimal vaporisation and the liquid slag is centrifuged onto the
chamber wall for removal from the chamber, and said remainder of the entering oxidiser
reacts with the first phase combustion products in a second phase of combustion near
said exit end of the chamber to provide an overall stoichiometric ratio which is substantially
higher than that of said first phase.
19. A method as claimed in claim 18, further characterised in that the oxidiser is
injected tangentially into the combustion chamber between the head end and the exit
end, in such a manner that the entering oxidiser flow splits to create said first
oxidiser portion which flows toward said head end and said remainder portion which
flows toward said exit end.
20. A method as claimed in either claim 18 or claim 19, further characterised in that
the oxidiser feed is such that the first phase of combustion occurs at a stoichiometric
ratio approximately one half of the overall ratio for the combustor.
21. A method as claimed in either claim 18 or claim 19, further characterised in that
substantially all of the entering oxidiser is directed toward the head end of said
chamber.
1. Brennstoffkopf, enthaltend eine Brennkammer (16) mit einem Kopfende (20) und einem
entgegengesetzten Ausgangsende (18), einer Brennstoffeinlaßeinrichtung (14) zum Zuführen
von partikelhaftem, festem Brennstoff in die Kammer an dem genannten Kopfende (20),
einer Oxidationsmitteleinlaßeinrichtung (12) zum Zuführen eines Oxidationsmittels
in die Kammer in einer im wesentlichen horizontalen Richtung, um eine Rotationsströmung
hoher Geschwindigkeit in der Kammer zu erzeugen, einem Auslaß (22) zum Abgeben von
Verbrennungsprodukten vom Auslaßende der genannten Kammer, einer Schlackenprallwand
(40) zwischen den genannten Enden und einem Schlackenabzug (28) zum Abziehen von Schlacke
aus der Kammer, dadurch gekennzeichnet, daß die Oxidationsmitteleinlaßeinrichtung
(12) zwischen den genannten Enden angeordnet ist und dazu eingerichtet ist, eine Strömung
eines Teils des Oxidationsmittels gegen das Kopfende (20) der Kammer und eine Strömung
des Restes des eintretenden Oxidationsmittels gegen das Auslaßende (18) der Kammer
in solchen Proportionen hervorzurufen, daß der Brennstoff und der genannte Oxidationsmittelteil
innerhalb des Kopfendes (20) der Kammer in einer ersten Verbrennungsphase bei einem
relativ niedrigen stöchiometrischen Verhältnis und einer entsprechend niedrigen Temperatur
reagieren, um eine Verflüssigung des Schlackenanteils des eintretenden Brennstoffs
mit minimaler Verdampfung zu ermöglichen, wobei die rotierende Strömung bewirkt, daß
die flüssige Schlacke auf die Kammerwand geschleudert wird, um von dem Schlakenabzug
abgezogen zu werden, wobei der Rest des eintretenden Oxidationsmittelgases mit den
Verbrennungsprodukten der ersten Verbrennungsphase nahe dem Austrittsende (18) der
Kammer in einer zweiten Verbrennungsphase reagiert, um ein stöchiometrisches Gesamtverhältnis
zu erzeugen, das wesentlich höher ist, als das der ersten Phase.
2. Brennstoffkopf nach Anspruch 1, weiterhin dadurch gekennzeichnet, daß die Oxidationsmitteleinlaßeinrichtung
(12) derart zwischen den Kammerenden angeordnet ist, daß die Strömung des Teils des
Oxidationsmittelgases im wesentlichen in einem Gegenströmungsverhältnis zu der Strömung
des Brennstoffs und der Verbrennungsprodukte der ersten Phase durch die Kammer stattfindet.
3. Brennstoffkopf nach einem der Ansprüche 1 oder 2, weiterhin dadurch gekennzeichnet,
daß die Oxidationsmitteleinlaßeinrichtung (12) so angeordnet ist, daß sie einen größeren
Anteil des eintretenden Oxidationsmittelgases gegen das Kopfende (20) richtet.
4. Brennstoffkopf nach einem der Ansprüche 1 oder 2, weiterhin dadurch gekennzeichnet,
daß die Oxidationsmitteleinlaßeinrichtung (12) so angeordnet ist, daß sie ungefähr
die Hälfte der eintretenden Oxidationsmittelgasströmung zum Kopfende (20) richtet,
um der ersten Verbrennungsphase ein stöchiometrisches Verhältnis von etwa der Hälfte
des Gesamtverhältnisses für den Brenner zu verleihen.
5. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß die Oxidationsmitteleinlaßeinrichtung (12) einen vertieften, schneckenförmigen
Oxidationsmitteleinlaß enthält.
6. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß die Auslaßeinrichtung (22) sich axial durch das Kammerauslaßende öffnet.
7. Brennstoffkopf nach einem der Ansprüche 1 bis 5, weiterhin dadurch gekennzeichnet,
daß der Auslaß (22) eine schneckenförmige Auslaßöffnung enthält, die sich tangential
von dem Kammerauslaßende erstreckt.
8. Brennstoffkopf nach einem der Ansprüche 1 bis 5, weiterhin dadurch gekennzeichnet,
daß der Auslaß (22) sich quer von dem Kammerauslaßende öffnet.
9. Brennstoffkopf nach einem der Ansprüche 2 bis 8, weiterhin dadurch gekennzeichnet,
daß der Oxidationsmitteleinlaß (12) dichter am Kopfende (20) als an der Prallwand
(40) gelegen ist, und daß der Schlackenabzug (28) der Prallwand (40) benachbart angeordnet
ist.
10. Brennstoffkopf nach einem der Ansprüche 2 bis 8, weiterhin dadurch gekennzeichnet,
daß der Oxidationsmitteleinlaß (12) etwa in der Mitte zwischen dem Kopfende (20) und
der Prallwand (40) angeordnet ist, und daß der Schlackenabzug (28) der Prallwand (40)
benachbart gelegen ist.
11. Brennstoffkopf nach einem der Ansprüche 2 bis 8, weiterhin dadurch gekennzeichnet,
daß der Oxidationsmitteleinlaß (12) näher zur Prallwand (40) als zum Kammerkopfende
(20) angeordnet ist, und daß der Schlackenabzug (28) dem Kammerkopfende (20) benachbart
gelegen ist.
12. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin gekennzeichnet
durch eine zweite Brennkammer mit einem Auslaßende, das sich in das Auslaßende der
ersterwähnten Brennkammer öffnet, und einem gegenüberliegende Kopfende, einer zweiten
Brennstoff- und einer zweiten Oxidationsmitteleinlaßeinrichtung zum Zuführen von partikelhaftem,
festem, kohlenstoffhaltigem Brennstoff in das Kopfende der zweiten Kammer und zum
Zuführen von Oxidationsmittelgas in letztgenannte Kammer, um darin eine Strömung hoher
Geschwindigkeit zu erzeugen, einem Auslaß zum Auslassen der Verbrennungsprodukte vom
Auslaßende der zweiten Kammer, einem Schlackenabzug zum Abziehen von Schlacke aus
der zweiten Kammer, und weiterhin dadurch gekennzeichnet, daß die zweite Kammereinlaßeinrichtung
eine Strömung von wenigstens einem Teil des eintretenden Oxidationsgases gegen das
Kopfende der zweiten Kammer und eine Strömung des Restes des eintretenden Oxidationsgases
gegen das Austrittsende der zweiten Kammer in solchen Proportionen bewirkt, daß der
Oxidationsmittelgasteil und der eintretende Brennstoff innerhalb des Kopfendes der
zweiten Kammer in einer ersten Verbrennungsphase bei relativ niedrigem stöchiometrischen
Verhältnis und dementsprechend niedriger Temperatur reagieren, um eine Verflüssigung
des Schlackenanteils des eintretenden Brennstoffs mit minimaler Verdampfung zu ermöglichen
und das Schleudern der flüssigen Schlacke auf die Kammerwand zum Abzug durch den Schlackenabzug
zu ermöglichen, wobei der Rest des eintretenden Oxidationsmittelgases innerhalb des
Auslaßendes der zweiten Kammer mit den Verbrennungsprodukten der ersten Verbrennungsphase
in einer zweiten Verbrennungsphase reagiert, um der zweiten Brennkammer ein stöchiometrisches
Gesamtverhältnis zu vermitteln, das wesentlich höher als das stöchiometrische Verhältnis
der ersten Phase in der zweiten Kammer ist.
13. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß die Brennkammer vertikal angeordnet ist mit dem Austrittsende an oberster Stelle
und dem Kopfende an unterster Stelle.
14. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß die Brennstoffeinlaßeinrichtung mehrere Brennstoffeinlaßöffnungen aufweist, die
in Umfangsrichtung um das Kopfende der Brennkammer verteilt angeordnet sind.
15. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß der Schlackenabzug in der Mitte an der Unterseite der Brennkammer angeordnet ist.
16. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin gekennzeichnet
durch Einrichtungen, die an den Wänden der Brennkammer befestigt sind, um das Anhaften
verfestigter Schlacke daran zu begünstigen.
17. Brennstoffkopf nach einem der vorhergehenden Ansprüche, weiterhin dadurch gekennzeichnet,
daß die Oxidationsmitteleinlaßeinrichtung dazu eingerichtet ist, ein stöchiometrisches
Gesamtverhältnis zu erzeugen, das ausreichend hoch ist, um eine im wesentlichen vollständige
Vergasung des Brennstoffs zu erzielen, wobei die Verbrennungstemperaturen ausreichend
niedrig sind, um eine Verdampfung der flüssigen Schlacke zu vermeiden.
18. Verbrennungsverfahren, enthaltend: Zuführen partikelhaften, festen, kohlenstoffhaltigen
Brennstoffs und eines Oxidationsmittels in eine Reaktionskammer mit einem Kopfende
und einem gegenüberliegenden Auslaßende in einer solchen Weise, daß eine rotierende
Strömung hoher Geschwindigkeit innerhalb der Kammer erzeugt wird, Auslassen der Verbrennungsprodukte
vom Auslaßende der Kammer und Abziehen der Schlacke aus der Kammer, gekennzeichnet
durch die folgenden Schritte: Zuführen des Brennstoffs derart, daß er am Kopfende
der Kammer eintritt, Zuführen des Oxidationsmittels zu einem Einlaß zwischen den genannten
Enden und Aufteilen desselben derart, daß ein erster Teil des eintretenden Oxidationsmittels
gegen das Kopfende der Kammer strömt und der Rest des Oxidationsmittels gegen das
Austrittsende der Kammer strömt, in solchen Proportionen, daß der erste Teil im Kopfende
der Kammer mit dem eintretenden Brennstoff in einer ersten Verbrennungsphase bei relativ
niedrigem stöchiometrischen Verhältnis und einer entsprechend niedrigen Temperatur
reagiert, so daß der Schlackenanteil des Brennstoffs mit minimaler Verdampfung verflüssigt
wird und die flüssige Schlacke auf die Kammerwand zum Abzug aus der Kammer geschleudert
wird, und der Rest des eintretenden Oxidationsmittels mit den Verbrennungsprodukten
der ersten Phase in einer zweiten Verbrennungsphase nahe dem Austrittsende der Kammer
reagiert, um ein stöchiometrisches Gesamtverhältnis zu ergeben, das wesentlich höher
ist, als das der ersten Phase.
19. Verfahren nach Anspruch 18, weiterhin dadurch gekennzeichnet, daß das Oxidationsmittel
tangential in die Brennkammer zwischen dem Kopfende und dem Austrittsende in solcher
Weise eingespritzt wird, daß die eintretende Oxidationsmittelströmung sich aufteilt,
um einen ersten Oxidationsmittelteil zu erzeugen, der gegen das Kopfende strömt, während
der restliche Teil gegen das Austrittsende strömt.
20. Verfahren nach Anspruch 18 oder 19, weiterhin dadurch gekennzeichnet, daß die
Oxidationsmittelzuführung derart ist, daß die erste Verbrennungsphase bei einem stöchiometrischen
Verhältnis stattfindet, das etwa die Hälfte des Gesamtverhältnisses für den Brenner
ist.
21. Verfahren nach Anspruch 18 oder 19, weiterhin dadurch gekennzeichnet, daß im wesentlichen
das gesamte eintretende Oxidationsmittel gegen das Kopfende der Kammer gerichtet wird.
1. Appareil de combustion de combustible, comprenant une chambre de combustion (16)
ayant une extrémité de tête (20) et une extrémité opposée de sortie (18), un dispositif
(14) d'entrée de combustible destiné à la transmission d'un combustible particulaire
solide dans la chambre à l'extrémité de tête (20), un dispositif (12) d'entrée d'oxydant
destiné à transmettre un oxydant dan la chambre en direction sensiblement tangentielle
afin qu'il forme un courant rotatif à vitesse élevée à l'intérieur de la chambre,
une sortie (22) destinée à l'évacuation de produits de combustion à l'extrémité de
sortie de la chambre, un déflecteur (40) de coulée de laitier placé entre les extrémités
et un piège (28) à laitier destiné à l'extraction du laitier de la chambre, l'appareil
de combustion étant caractérisé en ce que le dispositif (12) d'entrée d'oxydant est
placé entre les extrémités et est destiné à faire circuler une partie de l'oxydant
vers l'extrémité de tête (20) de la chambre et à faire circuler le reste de l'oxydant
introduit vers l'extrémité de sortie (18) de la chambre, dans des proportions telles
que le combustible et la partie d'oxydant réagissent dans l'extrémité de tête (20)
de la chambre dans une première phase de combustion, avec un rapport stoechiométrique
relativement faible et une température basse correspondante, permettant une liquéfaction
du laitier formé par le combustible introduit avec une vaporisation minimale, le courant
rotatif provoquant la projection du laitier liquide sous l'action de la force centrifuge
sur la paroi de la chambre afin qu'il soit retiré par le piège à laitier, le reste
du gaz oxydant introduit réagissant avec les produits de combustion de la première
phase de combustion près de l'extrémité de sortie de la chambre (18) dans une seconde
phase de combustion, afin qu'un rapport stoechiométrique global notablement supérieur
à celui de la première phase soit obtenu.
2. Appareil de combustion d'un combustible selon la revendication 1, caractérisé en
outre en ce que le dispositif (12) d'entrée d'oxydant est disposé entre les extrémités
de la chambre d'une manière telle que la circulation de ladite partie du gaz oxydant
est exécutée de manière générale à contre-courant par rapport au courant de combustible
et des produits de combustion de la première phase dans la chambre.
3. Appareil de combustion d'un combustible selon l'une des revendications 1 et 2,
caractérisé en outre en ce que le dispositif (12) d'entrée d'oxydant est destiné à
diriger la plus grande partie du gaz oxydant introduit vers l'extrémité de tête (20).
4. Appareil de combustion d'une combustible selon l'une des revendications 1 et 2,
caractérisé en outre en ce que le dispositif (12) d'entrée d'oxydant est destiné à
diriger la moitié environ du courant introduit de gaz oxydant vers l'extrémité de
tête (20) afin qu'elle donne un rapport stoechiométrique, dans la première phase de
combustion, approximativement égal à la moitié du rapport global de l'appareil de
combustion.
5. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que le dispositif (12) d'entrée d'oxydant
comporte une entrée d'oxydant du type à spirale en retrait.
6. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que la sortie (22) débouche axialement par
l'extrémité de sortie de la chambre.
7. Appareil de combustion d'un combustible selon l'une quelconque des revendications
1 à 5, caractérisé en outre en ce que la sortie (22) comporte une sortie spiralée
débouchant tangentiellement à l'extrémité de sortie de la chambre.
8. Appareil de combustion d'un combustible selon l'une quelconque des revendications
1 à 5, caractérisé en outre en ce que la sortie (22) débouche latéralement par rapport
à l'extrémité de sortie de la chambre.
9. Appareil de combustion d'un combustible selon l'une quelconque des revendications
2 à 8, caractérisé en outre en ce que l'entrée (12) d'oxydant est placée plus près
de l'extrémité de tête (20) que du déflecteur (40), et en ce que le piège (28) à laitier
est placé près du déflecteur (40).
10. Appareil de combustion d'un combustible selon l'une quelconque des revendications
2 à 8, caractérisé en outre en ce que l'entrée (12) d'oxydant est placée à peu près
à mi-distance entre l'extrémité de tête (20) et le déflecteur (40), et en ce que le
piège (28) à laitier est disposé près du déflecteur (40).
11. Appareil de combustion d'un combustible selon l'une quelconque des revendications
2 à 8, caractérisé en outre en ce que l'entrée (12) d'oxydant est placée plus près
du déflecteur (40) que de l'extrémité (20) de tête de la chambre, et en ce que le
piège (28) à laitier est placé près de l'extrémité de tête (20) de la chambre.
12. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre par une seconde chambre de combustion ayant une
extrémité de sortie qui débouche dans l'extrémité de sortie de la première chambre
de combustion et une extrémité opposée de tête, des seconds dispositifs d'entrée de
combustible et d'oxydant destinés à transmettre un combustible carboné particulaire
solide à l'extrémité de tête de la seconde chambre et à transmettre un gaz oxydant
dans cette dernière chambre, afin qu'il forme un courant à grande vitesse dans la
chambre, une sortie destinée à l'évacuation des produits de combustion depuis l'extrémité
de sortie de la seconde chambre, un piège à laitier destiné à l'extraction du laitier
de la seconde chambre, et le dispositif d'entrée dans la seconde chambre assure la
circulation d'une partie au moins du gaz oxydant introduit vers l'extrémité de tête
de la seconde chambre et la circulation du reste éventuel du gaz oxydant introduit
vers l'extrémité de sortie de la seconde chambre, avec des proportions telles que
la partie de gaz oxydant et le combustible introduit réagissent dans l'extrémité de
tête de la seconde chambre dans une première phase de combustion, avec un rapport
stoechiométrique relativement faible et une faible température correspondante, permettant
la liquéfaction du laitier qui peut être formé par le combustible introduit, avec
une vaporisation minimale, le laitier liquide étant projeté par la force centrifuge
sur la paroi de la chambre afin qu'il soit retiré par l'intermédiaire du piège à laitier,
le reste du gaz oxydant introduit réagissant dans l'extrémité de sortie de la seconde
chambre avec les produits de combustion de la première phase de combustion, dans une
seconde phase de combustion, afin que la seconde chambre de combustion présente un
rapport stoechiométrique global qui est nettement supérieur au rapport stoechiométrique
de la première phase, dans la seconde chambre.
13. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que la chambre de combustion est disposée
verticalement, son extrémité de sortie étant la plus haute et son extrémité de tête
la plus basse.
14. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que le dispositif d'entrée de combustible
comporte plusieurs orifices d'entrée de combustible espacés circon- férentiellement
autour de l'extrémité de tête de la chambre de combustion.
15. Appareil de combustion de combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que le piège à laitier est placé au centre
à la partie inférieure de la chambre de combustion.
16. Appareil de combustion de combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre par un dispositif fixé aux parois de la chambre
de combustion et destiné à augmenter l'adhérence du laitier solidifié aux parois.
17. Appareil de combustion d'un combustible selon l'une quelconque des revendications
précédentes, caractérisé en outre en ce que le dispositif d'entrée d'oxydant est destiné
à donner un rapport stoechiométrique global qui est suffisamment élevé pour qu'il
assure une gazéification pratiquement totale du combustible, les températures de combustion
étant suffisamment faibles qu'elles évitent la vaporisation du laitier liquide.
18. Procédé de combustion comprenant la transmission d'un combustible carboné particulaire
solide et d'un oxydant dans une chambre réactionnelle ayant une extrémité de tête
et une extrémité opposée de sortie, d'une manière telle qu'un courant rotatif à grande
vitesse soit formé dans la chambre, l'évacuation des produits de combustion à l'extrémité
de sortie de la chambre, et l'extraction du laitier hors de la chambre, le procédé
étant caractérisé par les étapes de transmission du combustible afin qu'il pénètre
à l'extrémité de tête de la chambre, deux transmissions de l'oxydant à une entrée
comprise entre les extrémités et deux distributions de l'oxydant de manière qu'une
première partie de l'oxydant entrant s'écoule vers l'extrémité de tête de la chambre
et que le reste de l'oxydant s'écoule vers l'extrémité de sortie de la chambre dans
des proportions telles que la première partie réagit dans l'extrémité de tête de la
chambre avec le combustible introduit, dans une première phase de combustion, avec
un rapport stoechiométrique relativement faible et un faible température correspondante,
si bien que le laitier qui peut être formé par le combustible se liquéfie avec une
vaporisation minimale et le laitier liquide est projété par la force centrifuge sur
la paroi de la chambre afin qu'il soit retiré de la chambre, et le reste de l'oxydant
introduit réagit avec les produits de combustion de la première phase, pendant une
seconde phase de combustion, à proximité de l'extrémité de sortie de la chambre, afin
qu'un rapport stoechiométrique global nettement supérieur à celui de la première phase
soit obtenu.
19. Procédé selon la revendication 18, caractérisé en outre en ce que l'oxydant est
injecté tangentiellement dans la chambre de combustion entre l'extrémité de tête et
l'extrémité de sortie, d'une manière telle que le courant d'oxydant introduit se divise
en formant la première partie d'oxydant qui s'écoule vers l'extrémité de tête et la
partie restante qui s'écoule vers l'extrémité de sortie.
20. Procédé selon l'une des revendications 18 et 19, caractérisé en outre en ce que
l'oxydant transmis est tel que la première phase de combustion est réalisée avec un
rapport stoechiométrique à peu près égal à la moitié du rapport global de l'appareil
de combustion.
21. Procédé selon l'une des revendications 18 et 19, caractérisé en outre en ce que
la totalité pratiquement de l'oxydant introduit est dirigée vers l'extrémité de tête
de la chambre.