专利摘要:
A gasifier apparatus (1) for extracting combustible gas from biomass, the gasifier apparatus (1) comprising a reactor vessel (3) enclosing a reactor cavity (2) and at least one feed lock (4) for introducing the biomass into the reactor cavity (2) and at least one Gas outlet (5) for removing the combustible gas generated from the biomass from the reactor cavity (2) and at least one grate (6), wherein the grate (6) in the reactor cavity (2) and the gas outlet (5) on the, the feed gate (4) opposite side of the grate (6) is arranged and the biomass within the reactor cavity (2) along a transport direction (7) from the filling lock (4) to the grate (6) is transportable and a movably mounted feed device (8) for gasification in the reactor cavity (2) is arranged, wherein the feed device (8) aufwei multiple outlet openings (9) for the exit of the gasification agent in the reactor cavity (2) aufwei St wherein the outlet openings (9) of the feed device (8) in a direction (10) transversely to the transport direction (7) are movable.
公开号:AT513811A1
申请号:T6/2013
申请日:2013-01-04
公开日:2014-07-15
发明作者:
申请人:Fritsche Andreas;
IPC主号:
专利说明:

Patent Attorneys Hofmann Sc Fechner • · · · · · ··· ··· T +43 (0) 5522 73 137 F +43 (0) 5522 73 359 M office@vpat.at I www.vpat.at • l >. R »lf * Ho ^ r« nn · · · · ·· ·· · · ······
Dr. Thomas Fechner 6806 Feldkirch, Austria Egeiseestr 65a, PO Box 61 25109/34 / ss 121227 1
The present invention relates to a carburettor apparatus for obtaining combustible gas from biomass, in particular from wood, wherein the carburetor device, a reactor vessel enclosing a reactor cavity and at least one Einfüllschleuse for filling the biomass into the reactor cavity 5 and at least one gas outlet for the removal of the biomass combustible gas from the reactor cavity and having at least one grate, wherein the grate in the reactor cavity and the gas outlet on the opposite side of the hopper grate is arranged and the biomass within the reactor cavity along a transport direction of the 10 Einfüllschleuse can be transported to the grid and a movable supported
Supply means for gasification agent is arranged in the reactor cavity, wherein the feed device has a plurality of outlet openings for the exit of the gasification agent in the reactor cavity. 15 carburetor devices of the type mentioned are used to obtain combustible gas from biomass, in particular from wood, then this, for. to use in internal combustion engines as fuel or for other purposes. Carburetor devices of the type mentioned are also often referred to as wood gasifier. The biomass can be recovered from the gas combustible by means of the generic gasification device, but is not limited to wood.
A carburetor device of the type mentioned is e.g. described in DE 35 09 341 C1 and is referred to there as a DC gas generator. In order to improve the gasification process, there are via the feeder and 25 whose outlet openings gasification of the biomass to be gasified in
Reactor cavity supplied. The gasification agents are usually air, oxygen or other oxygen-containing gas mixtures. The 2/17
• · · · · · · ··························································· *
Feeding device is performed in DE 35 09 341 C1 in the form of a feed pipe with a distributor head, the distributor head is pear-shaped and has the outlet openings. In DE 35 09 341 C1, the feed device is height-adjustable in the form of the gas supply pipe, that is adjustable in a direction parallel to the transport direction in order to adjust the location of the gasification agent introduction as accurately and optimally as possible.
In gasification devices of the type mentioned, bridging or hollow firing in the region of the outlet openings for the gasification agent can lead to heat esters and slagging.
The object of the invention is to propose a generic carburetor device, in which this problem is avoided.
For this purpose, the invention provides that the outlet openings of the feed device in a direction transversely, preferably orthogonally, are movable to the transport direction. By the mobility of the outlet openings in a direction transversely, preferably orthogonal, to the transport direction, it is possible to operate carburetor devices according to the invention with a method in which the outlet openings within the reactor cavity during the recovery of the combustible gas are continuously or intermittently repositioned , As a result, heat esters and slagging can be avoided during the gasification process. Preferably, it is provided that the outlet openings are each moved in one or more planes, which is obliquely preferably orthogonal to the transport direction or lie. At an angle, all angles deviate from the parallelism. Preferably, the outlet openings are moved in a region which is bounded by planes which include at most 45 degrees with a plane normal or orthogonal to the transport direction. Particularly preferably, the movement of the outlet openings takes place in one or more planes which is or stand orthogonal to the transport direction. 3/17 •••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••• *
For the sake of completeness, it is pointed out that, in addition to the possibility of movement of the outlet opening according to the invention, it may of course also be provided that these are additionally movable in directions parallel to the transport direction, e.g. in order, as in the cited prior art, to change the altitude of the oxidation zone.
The direction of transport is the direction in which the biomass or wood is transported through the reactor cavity over time during the gasification process. The transport direction is therefore essentially directed from the filling lock to the grate. It represents the transport of all biomass through the reactor cavity and, in doubt, is measured as a parallel to the interior walls of the reactor vessel delimiting the reactor cavity. In the transport direction, the combustible gases produced also move in carburetor devices according to the invention. Once they have reached the grate, they pass through it and are drained from the reactor cavity via the gas outlet. You can then, if appropriate, after appropriate filtering according to the prior art, be used as fuel gas on.
In carburetor devices according to the invention thus the biomass or the wood moves during the gasification process in the same transport direction as the resulting combustible gas. It is carburetor devices according to the invention therefore so-called direct current carburetor.
In principle, all biomass materials suitable for the emission of combustible gas are suitable as biomass. However, the carburettor device is particularly preferably operated as a so-called wood gasifier, in which the combustible gas is obtained from wood. The wood may preferably be in the form of bulk material, e.g. Wood chips, other wood chips, pellets and the like are present. 4/17 • ····················································································································································································
The combustible gas produced is usually a gas mixture, with fractions of combustible gases but also with soot and smoke fractions, which can be herausfilterbar by filters known in the prior art. The fill-in lock, as known per se in the prior art, is designed such that biomass or wood can be introduced through it into the reactor cavity, without it being possible for the generated combustible gas to escape from the reactor cavity.
In a preferred operating position of the carburetor device according to the invention, the filling lock at the upper end of the reactor vessel and the gas outlet corresponding to the opposite lower end of the reactor vessel. The transport direction then runs usually vertically from top to bottom.
As a gasification agent, which is introduced via the feed device in the reactor cavity, air, oxygen or other oxygen-containing gas mixtures or oxygen-emitting fluids can be used. In any case, the gasification agent promotes the formation of heat in the oxidation zone and thus the escape of the combustible gas from the biomass or the wood.
In preferred embodiments of the invention it is provided that the outlet openings of the feed device are rotatably mounted in the reactor cavity. Particularly preferably, they can be rotated continuously or intermittently in operation around a common axis of rotation. The rotation is transverse in one direction, preferably orthogonal to the transport direction. In this case one could also speak of a tangential movement. Particularly preferably, it is provided that the outlet opening, seen in the radial direction from the axis of rotation, at least partially mutually different distances from the axis of rotation. It is also favorable if the outlet openings for the gasification agent, seen in a direction parallel to the transport direction, are spaced from the grid 5/17. ··················································. In a preferred operating position, the outlet openings are spaced from the grid and above the grate.
The exit openings may be attached to one or more elongate arms of the feeder spaced from each other. Preferably, these arms are tubular. The feeder may have a plurality of arms. These can be arranged in a star shape. Preferred embodiments provide that the feed device has a support rod, which is arranged parallel to the transport direction and carries the outlet openings. In the embodiments with the arms, the support bar then carries just these arms, in which the outlet openings are arranged. The support bar extends in preferred embodiments of the side on which the gas outlet is, coming into the reactor cavity. With reference to the above-mentioned preferred operating position, the support rod is thus preferably from below and arranged extending into the reactor cavity. The support rod can be arranged coaxially to the already mentioned common axis of rotation about which the outlet openings of the feed device are rotatably mounted. In addition, the support rod can also be rotatable about this common axis of rotation. A rotary drive for the support bar is conveniently located outside of the reactor vessel or at least outside the reactor cavity. The rotary drive itself can be designed in all known in the prior art embodiments. The support bar may also have a conduit for the supply of gasification agent to the outlet openings. It then serves in preferred embodiments both as a carrier of the outlet openings and / or the arms or of the arm as well as a transmission means for the movement, in particular rotational movement, and additionally as a conduit system, through which the gasification agent can be passed to the outlet openings ,
Preferred embodiments of carburetor devices according to the invention provide that the grate can be rotated about an axis of rotation. Preferably, the rotation of the grate takes place together with the rotation of the outlet openings. 6/17 •••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••
This can e.g. be realized by the fact that the grid is rotatably connected to the feed device, preferably with said support rod, and is thus rotated by means of the feeder or the support rod.
In order to assist the feeder in its rotary movement in the reactor cavity and the associated rotational movement of the biomass or the wood, preferred embodiments provide that in the reactor cavity in an area between the outlet openings and the filling additionally an agitator for stirring the biomass or the wood is arranged in the reactor cavity.
However, it is also pointed out that the outlet openings do not necessarily have to be rotatable about the axis of rotation, which is preferably aligned parallel to the transport direction. The movement according to the invention of the outlet openings in a direction transversely, preferably orthogonal, to the transport direction can also take place by a back and forth pushing the outlet openings or the feeder in said direction transversely, preferably orthogonal, to the transport direction. In this case, the outlet openings are then usually guided back and forth on linear paths of movement. Of course, superpositions of turning and pushing or pulling movements are also conceivable in order to avoid said heat esters and slagging in the oxidation zone or in the reactor cavity.
In the following description of the figures, exemplary preferred features of an embodiment of a carburetor according to the invention will be explained. Show it:
Fig. 1 is a schematic longitudinal section through the embodiment of a carburetor device according to the invention and
2 shows a horizontal section along the section line AA of Fig. 1st
Fig. 1 shows a longitudinal or vertical section through the carburetor device 1 according to the invention in a schematic representation. Within 7/17 • · · · · · · · · · · · · · · · · · · · · · · · · · · &Quot; 7 *
Reactor vessel 3 is the reactor cavity 2, in which the biomass, so preferably the wood in the form of wood chips, pellets or other bulk material is gasified. Through the filling lock 4, the wood to be gasified or the biomass to be gasified is introduced into the reactor cavity 2. However, the filling lock 4 also prevents the gas outlet from the reactor cavity 2 through it. Suitable lock systems are known in the art. By way of example, shown here is a filling lock 4 in the form of a rotatable paddle wheel, the blades of which provide the corresponding seal. The level of the biomass or of the wood is shown schematically in FIG. 1 by the current filling level 19. The biomass or the wood rests on the grid 6. The gas outlet 5, through which the generated combustible gas is removed from the reactor cavity 2, is located on the opposite side of the grate 6, the feed lock 4. In the preferred operating position shown here, the filling lock 4 at the upper end of the reactor cavity 2 and the gas outlet 5 at the bottom. It is a so-called direct current gas generator in which the biomass to be gasified or the wood to be gasified is transported through the reactor cavity 2 in the same transport direction 7 as the combustible gas produced during the gasification process. The burned or spent biomass passes with the combustible gas through the grate 6 and the gas outlet 5 to the outside. An opening, not shown here, in the reactor vessel 3, e.g. in the form of a removable lid may be present for lighting and / or for service purposes. This is known per se in the prior art and not shown separately here again.
In order to make available the heat required for the outgassing process in the reactor cavity 2, preferably in the oxidation zone 18, the gasification agent is introduced into the oxidation zone 18 via the feed device 8 and in particular via the outlet openings 9. As a gasifying agent, e.g. Air, oxygen or other oxygen-containing gas mixture or other oxygen-releasing fluid can be used. The entry of the gasification agent into the reactor cavity 2 via the outlet openings 9. Die 8/17 · * ·· ·· i • · · · · · 1 | · · · · · #% · I · · · · · · · ··········
Feeding device 8 preferably, as also realized here, a plurality of outlet openings 9, the surface or spatially, preferably in the oxidation zone 18, distributed and in particular in the radial direction 12 seen from the rotation axis 11, are arranged spaced from each other.
In the illustrated embodiment according to FIGS. 1 and 2, the feed device 8 by means of a not shown here, but known in the prior art rotary drive about the axis of rotation 11 rotatable support rod 14 on. On the support rod 14, the arms 13 are attached. In the arms 13 are in turn the outlet openings 9. It can also exit openings 9 directly in the support rod 14z.B. located in the area of the arms 13. The supply of the gasification agent takes place through the arranged in the support rod 14 line 16 to the outlet openings 9. Through the outlet openings 9 through the gasification agent enters the oxidation zone 18 a. By rotating the feed device 8 about the axis of rotation 11, which is preferably arranged parallel to the transport direction 7, the outlet openings 9 of the here formed as tubes arms 13 in the direction 10 are moved transversely or orthogonal to the transport direction 7. This prevents that there is at the points where the gasification agent exiting the outlet openings 9, to slagging or heat esters. The rotation of the feeder 8 and optionally also of the grate 6 can be relatively slow, e.g. at 10 ° per minute. With the agitator 17 realized here, a uniform covering of the feed device 8 or the outlet openings 9 with biomass or wood can be provided. The direction of rotation of the agitator 17 plays no or a minor role. The rotational speed of the agitator 17 may be higher than that of the feeder 8 and e.g. at 2 revolutions per minute. In a preferred embodiment, the instantaneous fill level 19 can be determined via the torque required for rotating the agitator 17, which can be used to control the supply of biomass to the reactor cavity 2. 9/17 m ····································································································· 9
Preferably, the grating 6 is rotated. Most preferably, this rotation occurs along with the rotation of the feeder 8. This may be e.g. be achieved by the grate 6 rotatably connected to the feeder 8 and the support rod 14 is connected. As a result, the grating 6 is also rotated with the arms 13 and thus with the outlet openings 9.
It can also be clearly seen in FIG. 1 that the outlet openings 9 for the gasification agent are spaced apart from the grate 6 in a direction parallel to the transport direction 7. As a result, it is achieved that the gasification agent is not blown into the combustible gas that already collects in the vicinity of the gas outlet 5, but rather into the oxidation zone 18, which should be spaced apart from the grid 6.
Fig. 2 shows a horizontal section along the section line AA of Fig. 1 by the arms 13 of the feeder 8. Good to see here on the one hand, the star-shaped arrangement of the arms 13 as well as their preferred training as pipes, so that through them the gasification agent Outlet openings 9 is supplied. In FIG. 2, as well as in FIG. 1, it can be clearly seen that the outlet openings 9 at least partially have a different distance in the radial direction 12 from the axis of rotation 11.
In this embodiment, the movement according to the invention of the outlet openings 9 takes place in directions 10 transverse to the transport direction 7 on circular paths in planes which are orthogonal or normal to the transport direction 7. This does not necessarily have to be this way. Notwithstanding this, the outlet openings 9 can also be pushed in a linear direction 10 transversely to the transport direction 7 back and forth. This direction 10 is shown in dashed lines in Fig. 2. In order to facilitate this type of linear movement in the direction of 10, as shown in dashed lines, the support bar 14 may be e.g. not as shown in Fig. 1, but as indicated by dashed lines in Fig. 2, are laterally passed through the wall of the reactor vessel 3. The support rod 14 then does not perform a rotary movement, but is just together with the arms 13 and thus the 10/17 • ·· t ································································ ····················································································································
Outlet openings 9 along the direction shown by dashed lines 10 transversely to the transport direction 7 moves. Also in these embodiments it is preferably provided that the support rod 14 is one which has a conduit 16 for the supply of the gasification agent to the outlet openings 9 5. Also in these embodiments, the support rod 14 may thus be formed as a corresponding tube. 11/17 • • • • • • • • • • • • • • • · · · · »11
Legend for the reference numbers: 1 Carburettor device 5 2 Reactor cavity 3 Reactor vessel 4 Feed lock 5 Gas outlet 6 Grate 10 7 Transport direction 8 Feeding device 9 Outlet opening 10 Direction transverse 11 Rotary axis 15 12 Radial direction 13 Arm 14 Support rod 15 Rotary actuator 16 Conduit 20 17 Agitator 18 Oxidation zone 19 Current filling level 12/17
权利要求:
Claims (4)
[1]
Γ Patent Attorneys Hofmann & Fechner • ···· ··· ·· ··· • £) *. RifjHofSiann · · ·! ** Dr * i * honn * as Further ** *** 6806 Feldkirch, Austria Egelseestr 65a, PO Box 61 T +43 (0) 5522 73 137 F +43 (0) 5522 73 359 M office@vpat.at I www Claims 1. A carburettor device (1) for obtaining combustible gas from biomass, in particular from wood, wherein the carburettor device (1) comprises a reactor vessel (3) enclosing a reactor cavity (2) and at least a filling lock (4) for filling the biomass in the reactor cavity (2) and 5 at least one gas outlet (5) for removing the combustible gas generated from the biomass from the reactor cavity (2) and at least one grid (6), wherein the grid (6) in the reactor cavity (2) and the gas outlet (5) on the, the feed lock (4) opposite side of the grate (6) is arranged and the biomass within the reactor cavity (2) along a transport direction (7) from the feed gate (4) to the grate (6) is transportable and a movable g in which the feed device (8) has a plurality of outlet openings (9) for the exit of the gasification agent into the reactor cavity (2), characterized in that the outlet openings (9) of the feed device (8) in a direction (10) transversely, preferably orthogonally, to the transport direction (7) are movable. 20
[2]
2. carburetor device (1) according to claim 1, characterized in that the outlet openings (9) of the feed device (8), preferably about a common axis of rotation (11), are rotatably mounted.
[3]
3. carburettor device (1) according to claim 2, characterized in that the outlet openings (9), in the radial direction (12) seen from the axis of rotation (11) from 25, at least partially mutually different distances from the axis of rotation (11). 13/17 carburettor device (1) according to one of claims 1 to 3, characterized in that the outlet openings (9), viewed parallel to the transport direction (7), are arranged spaced from the grating (6). Carburetor device (1) according to one of claims 1 to 4, characterized in that the outlet openings (9) are mounted on one or more elongated, preferably tubular, arms (13) of the feed device (8) spaced from each other, it being preferably provided that the feed device (8) has a plurality of arms (13) and these are arranged in a star shape. Carburettor device (1) according to one of claims 1 to 5, characterized in that the feed device (8) has a support rod (14) which is arranged parallel to the transport direction (7) and carries the outlet openings (9). Carburetor device (1) according to claim 6, characterized in that the support rod (14) coaxial with the or a common axis of rotation (11) about which the outlet openings (9) of the feed device (8) are rotatably mounted, arranged and / or order this is rotatable. Carburettor device (1) according to claim 6 or 7, characterized in that the support rod (14) of a, preferably outside of the reactor cavity (2) arranged, rotary drive (15) is rotatable and / or a conduit (16) for the supply of gasification agent has to the outlet openings (9). Carburettor device (1) according to one of claims 1 to 8, characterized in that the grate (6), preferably together with the outlet openings (9), about a rotational axis (11) is rotatable. ······ ·· ···· • · · · q · · · · · · · · · · · · · ···········································
[4]
10. carburetor device (1) according to one of claims 1 to 9, characterized in that in the reactor cavity (2) in an area between the outlet openings (9) and the filling lock (4) additionally a stirrer (17) for stirring the biomass in the reactor cavity (2) is arranged. 15/17
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同族专利:
公开号 | 公开日
AT513811B1|2016-06-15|
EP2752478A1|2014-07-09|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题
DE3509341C1|1985-03-15|1986-02-27|Artur Richard 6000 Frankfurt Greul|Co-current gas generator with downdraft|
PL119863U1|2011-03-24|2012-10-08|Instytut Chemicznej Przeróbki Wegla|Gasification unit with a packed bed|
DE567293C|1932-12-30|Theodor De Fontaine Jr|Gas generator with agitator|
GB589096A|1945-02-13|1947-06-11|Derek Arthur Bishop|Improvements in or relating to gas producers|
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AU8961682A|1982-08-18|1984-02-23|Rogers, C.D.|Biomass gasification|
DE3323675C2|1983-07-01|1985-08-29|Richard Dipl.-Ing. 3170 Gifhorn Janesch|Equipment for carbonation, gasification, bio-oil extraction and synthesis gas extraction|
JPS6341725A|1986-08-06|1988-02-23|Ise Kogyosho:Kk|Gasification burner|
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US8845769B2|2010-01-19|2014-09-30|Zeropoint Clean Tech, Inc.|Downdraft gasifier with improved stability|
WO2011101022A1|2010-02-16|2011-08-25|Big Dutchman International Gmbh|Gasification device and gasification method|
ITTO20120856A1|2012-10-02|2013-01-01|Giancarlo Baldi|GASIFICATOR IN CONTINUOUS, IN PARTICULAR FOR BIOMASSES AND URBAN AND INDUSTRIAL WASTE.|ITUB20153805A1|2015-09-22|2017-03-22|Endeavour S R L|REACTOR, PLANT AND GASIFICATION PROCESS FOR GASIFICATION OF FOSSIL OR NON-FOSSIL FUELS, IN PARTICULAR BIOMASS.|
JP6762715B2|2015-12-28|2020-09-30|松下 靖治|Gasifier|
WO2021229425A1|2020-05-11|2021-11-18|Werner, Martin|Wood gas boiler|
DE102020119003A1|2020-07-17|2022-01-20|Prodana GmbH|Device for pyrolysing pyrolysis material|
法律状态:
优先权:
申请号 | 申请日 | 专利标题
ATA6/2013A|AT513811B1|2013-01-04|2013-01-04|carburetor device|ATA6/2013A| AT513811B1|2013-01-04|2013-01-04|carburetor device|
EP13005970.2A| EP2752478A1|2013-01-04|2013-12-20|Carburettor device|
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