[0001] The present invention refers to the technological sector of the thermal treatment
and valorisation of solid or fluid materials, polluted or not polluted, such as gases,
vapours, liquids, soils, rocks, sludges and industrial or civil wastes.
[0002] In the state-of-art, for the treatment of solid or fluid materials, polluted or not
polluted, different technologies are well known: chemical, biological, thermal ones
and their combination.
[0003] For polluted materials, the mechanical way normally has problems of both constructive
difficulties and of plant dimensions, the chemical way could involve in additional
problems tied to the use of chemical components that can generate chemical products
having difficult environmental disposal. The biological way generally acts with time
that often do not correspond to the industrial necessities, and thus presents limitations
in the application. The thermal way presents plant complexity problems and efficiency
problems.
[0004] In general, therefore, the solutions proposed and known by the state-of-art still
have a lot of not solved problems such as plant complexity, chemical components dangerousness,
long operative times, low flexibility.
[0005] In the state-of-art, for the thermal recovery different technologies are known such
as heat exchangers of different kinds (concentric pipe, pipe-in-pipe, finned pipes,
plates types, etc.).
[0006] However, still now the known solutions present numerous problems related to not desired
and difficult-to-control chemical reactions, materials flows containing corrosive
substances and/or powder formation during the treatment. These are events that could
imply obstructions of parts of treatment apparatus, low rates of thermal exchange,
elevated dimensions, and, also in this case, low flexibility.
[0007] The present invention intends to propose an energy recovery apparatus suitable for
the thermal treatment of materials and able to solve state-of-art problems, in particular
giving a simple plant solution, with high yield, high thermal exchange rate, reduced
dimensions, to be used also locally on-site near the same areas where the polluted
material to be treated has been generated.
[0008] This proposal of plant solution, concerning the energy recovery, permits both to
heat a fluid by subsequent application and to rapidly remove heat from a fluid or
from a plant zone in order to obtain a quick cooling of the affected zone, thus avoiding
the continuation of not desired chemical reactions, favoured by high temperature values,
such as the ones that brings to dioxins formation.
[0009] It is subject-matter of the present invention an energy recovery apparatus suitable
for thermal treating fluids or solids, comprising:
- means for the first fluid inflow;
- a first containment chamber (2) for the containment of a first fluid, provided with
a deflector (2') that develops itself in the chamber interior substantially along
its whole length giving it the form of a first hollow annulus (or first interspace)
(2");
- thermal exchange means for thermal exchange (3) between the first fluid and the second
fluid or a solid, comprising a second chamber (5) for a solid or, for the second fluid,
a second hollow annulus (or second interspace) placed in contact, externally or internally,
with said containment chamber (2) of the first fluid and having parallel longitudinal
symmetry axis preferably coinciding with the longitudinal symmetry axis of said containment
chamber (2), said second hollow annulus being suitable for containing conduits that
extend over at least one of the external wall of the containment chamber (2), in helicoidal
form or in linear form with longitudinal symmetry axis parallel to the longitudinal
symmetry axis of said containment chamber, which are suitable for making the second
fluid flow, between entrance and exit, in equicurrent, in countercurrent or in equicurrent
and countercurrent sequence with the circulation direction of the first fluid;
- means for the first fluid outflow;
- possible means for the treatment of emitted fluids or solids;
the means for the first fluid inflow being suitable for sending in equicurrent o in
countercurrent with the circulation direction of the second fluid or of the solid,
said means for the inflow and outflow of the first fluid comprising connections, as
the containment means (2) and the heat exchange means, realised in metallic material
resistant to high temperature, and the first chamber and the second chamber being
made of materials resistant to temperatures in the range 200-1000°C.The containment
chamber (2) suitable for making circulate fluids within itself is substantially cylindrical,
or prismatic, and with longitudinal axis eventually incident with an horizontal axis.
[0010] The second hollow annulus is circular or polygonal and preferably forms the external
wall of the containment chamber (2).
[0011] The means for the treatment of fluid emissions include at least a filter or a deduster
or a cyclone.
[0012] Besides, the apparatus (1) can comprise:
- means for the inflow (4) of solids to be treated; and
- means for the emission (7) of treated solid material,
wherein the second chamber (5), suitable for making circulate inside solids, is substantially
cylindrical, placed externally to said first containment chamber (2) and suitable
to rotate around its longitudinal symmetry axis that is preferably parallel or coincident
with the longitudinal axis of the first chamber (2) and forming an interspace (6)
with the external wall of the first chamber (2).
[0013] In an embodiment of the apparatus for the treatment of solids, the means for the
inflow of solid material are selected from the group containing screw conveyer, conveyer
belt, pneumatic injectors.
[0014] In another embodiment of this apparatus, the longitudinal symmetry axis of the second
chamber (5) is preferably incident with respect to an horizontal axis of an angle
ranging between 0° and 2.5°.
[0015] In a further embodiment of the apparatus, the means of the inflow of the solid material
include at least a gravity system.
[0016] It is further subject-matter a multi-modular apparatus for energy recovery, suitable
for the thermal treatment of fluids and solids, with modules in series or in parallel,
wherein each module is composed by the previously described apparatus in a mono-modular
form.
[0017] The apparatus according to the invention can be used for the energy recovery associated
to the thermal treatment of fluids or solids, wherein the cooling rate of the first
fluid is in the range of 250°C/s to 3000°C/s, preferably larger than 300°C/s.
[0018] The use can provide that a fluid with high thermal exchange capacity of flows in
the helicoidal form ducts.
[0019] This fluid with high capacity of thermal exchange can be a diathermic oil.
[0020] It is also provided according to the invention the use of the apparatus, in which
the first fluid, comprising fumes from the post-combustion chamber or from the combustion
of traditional combustibles, is introduced at linear flow-rate in the range of 15m/s
to 50m/s, preferably 35-45m/s, and exit at a temperature value lower than 250°C.
[0021] The apparatus of the invention can be used in situations where solid materials, submitted
under thermal treatment, polluted and not polluted, include industrial and civil sludges,
industrial soils, rocks, mixture of sable and material of organic matrix such as paper,
plastic and sewage.
[0022] During the use of the apparatus, that is subject-matter of the present invention,
the temperature in the interspace between the first and the second chamber can be
in the range of 200°C to 1000°C.
[0023] During the use for the treatment of solids, the rotation rate of the second chamber
(5) is in the range of 1 to 20 rpm.
[0024] The use of the apparatus, in this case, can provide that the flowrate of the solid
material to be treated is in the range of 50 to 5000 Kg/h, its permanence time is
between 10 and 180 min and its dimension is between 0,1 and 50 mm.
[0025] The present invention will be deeper explained by the description of its embodiments,
provided by way of illustration but not by way of limitation, with the help of the
following figures.
Figure 1 schematically represents the longitudinal section of an embodiment of the
apparatus according to the invention suitable for the fluid treatment.
Figure 2 schematically represents the longitudinal section of an embodiment of the
apparatus according to the invention suitable for the solid treatment.
[0026] Referring to figure 1, the apparatus (1), proposed by the present invention, provides
for its use a first hot fluid, generated for example by effluents post-combustion,
coming from thermal treatment of organic material matrix (polluted and not), or generated
by the combustion of traditional combustibles. This fluid is conveyed, through inlet
connectors, to a containment chamber (2) where a deflector (2') of elongated form
creates afirst hollow annulus (or first interspace) (2") and from where, subsequently,
it flows out through exit link pipes. The external wall of the containment chamber
(2) is realized using high thermal exchange elements (3) realized thanks to a hollow
annulus constituted by helicoidal or longitudinal conducts inside which circulates
a second fluid, that, in the proposed solution, is a diathermic oil. During the running,
the hot fumes are introduced from the outside and, circulating in the containment
chamber (2), lick the internal wall of the hollow annulus. They are rapidly cooled
thanks to the action of the diathermic oil that circulates in countercurrent. The
fumes, thus cooled, are subsequently emitted outside. The inlet and exit of the first
and second fluid are indicated, but not referenced, in the figure.
[0027] Referring to figure 2, the apparatus (1), proposed by the present invention, provides,
for its use, the inlet of the solid material to be treated, by means of a hopper (4)
from where, subsequently, it goes in a rotating chamber (5). Inside this rotating
chamber (5) a containment chamber (2) is positioned, that, as in figure 1, assumes
the form of an interspace (second hollow annulus) by means of a deflector, and in
which inside hot fumes are made circulating which have been obtained by post-combustion
or traditional combustibles. In the interspace (6) between the external wall of the
containment chamber (2) and the rotating chamber (5), the material to be treated is
moved by means of the contact with the internal wall of the rotating chamber (5) and
thermally treated, thanks to the thermal support mainly provided by the irradiation
of the external wall of the chamber containing the fumes (2) and the conduction of
the internal wall of the rotating chamber (5). Afterwards, the material is externally
conducted by the suitable emission way (7).
[0028] In accordance with the subject-matter of the present invention, some embodiments
of itself are illustrated in the following.
Example 1
[0029] For this embodiment, the apparatus according to the invention is utilised only in
the part concerning the thermal exchange with the active use of the annulus containing
a spiral-form duct, inside which the diathermic oil circulates.
[0030] The fluid to be cooled is represented by the off-gases at the exit of an electric
furnace, containing dioxins precursors (general name of polychlorate organic compounds,
highly toxic, that present in the molecular structure duple bonds conjugated between
carbon atoms). The inlet fume flowrate is equal to 80000 Nm
3/h at an inlet temperature value of 600°C with a linear flow-rate 30 m/s. At the exit,
the temperature value of the fume will be lower than 250°C thanks to the action of
the thermal exchange of the oil that, after the contact with the off-gases, undergoes
a temperature increase of about 100°C. In this manner, it is possible to simultaneously
obtain a fluid at high temperature, that can be used as an additional energetic source,
and a cooling rate of the fumes higher than 300°C/s (quencher), such that the realisation
of a dangerous situation of the dioxin synthesis (De Novo) is avoided.
Example 2
[0031] Sludges (300 kg/h) of civil origin have been fed into the rotating chamber and have
been treated by thermal way in order to dehydrate them and reduce the volume by means
of fumes with a temperature value of 800°C at the inlet and 550°C at the exit and
at a temperature of the internal wall of the rotating chamber equal to 400°C and at
a temperature of the interspace equal to 450°C.
[0032] The rotating rate of the rotating drum has been of 9 rpm.
[0033] The permanence time of the civil sludge to be treated has been of 50 min.
Example 3
[0034] It has been fed into the rotating chamber, by means of a belt conveyer, a mixture
of sand (40%), paper (20%), cartoon (20%) and plastic (20%) (100 kg/h) to be treated
by thermal way with the aim of producing syngas and reduce its volume, using fumes
at a temperature of 900°C at the inlet and of 700°C at the exit and at a temperature
of the internal wall of the rotating chamber equal to 650°C and at a temperature of
the interspace equal to 680°C.
[0035] The rotating rate of the rotating drum has been of 9 rpm.
[0036] The permanence time of the mixture to be treated has been of 40 min.
Example 4
[0037] It has been fed into the rotating chamber, having sloping axis of 1.5° with respect
to the horizontal position, by means of a pneumatic injection system, polluted industrial
soil (200 kg/h) containing dangerous organic materials (oils having 2% of poly-chloro-bis-phenils,
PCB) that has been treated, with the aim of decontaminating it, using fumes at a temperature
of 850°C at the inlet and of 600°C at the exit and at a temperature of the internal
wall of the rotating chamber equal to 520°C and at a temperature of the interspace
equal to 550°C and a temperature of treated material in exit of 450°C.
[0038] The rotating rate of the rotating drum has been of 12 rpm.
[0039] The permanence time of the material to be treated has been of 30 min.
Example 5
[0040] It has been fed into the rotating chamber, having sloping axis of 1° with respect
to the horizontal position, by means of a belt conveyor injection system, calcareous
rock (200 kg/h) that has been treated with the aim of transforming it in raw material,
using fumes at a temperature of 600°C at the inlet and of 300°C at the exit and at
a temperature of the internal wall of the rotating chamber equal to 400°C and at a
temperature of the interspace equal to 450°C and a temperature of treated material
in exit of 180°C. The so treated limestone can be used as inert material with bitumen
for the production of asphalt.
[0041] The rotating rate of the rotating drum has been of 10 rpm.
[0042] The permanence time of the material to be treated has been of 30 min.
1. Energy recovery apparatus (1) suitable for the thermal treatment of fluids or solids,
comprising:
- means for the first fluid inflow;
- a first containment chamber (2) for the containment of a first fluid, provided with
a deflector (2') that develops itself in the chamber interior substantially along
its whole length giving it the form of a first hollow annulus (2");
- thermal exchange means for thermal exchange (3) between the first fluid and a second
fluid or a solid, comprising a second chamber (5) for the solid or, for the second
fluid, a second hollow annulus placed in contact, externally or internally, with said
containment chamber (2) of the first fluid and having parallel longitudinal symmetry
axis preferably coinciding with the longitudinal symmetry axis of said containment
chamber (2), wherein in the thermal exchange between the first fluid and the second
fluid, said second hollow annulus is suitable for containing conduits that extend
over at least one of the external wall of the containment chamber (2), in helicoidal
form or in linear form with longitudinal symmetry axis parallel to the longitudinal
symmetry axis of said containment chamber (2), which are suitable for making the second
fluid flow, between entrance and exit, in equicurrent, in countercurrent or in equicurrent
and countercurrent sequence with the circulation direction of the first fluid, wherein
the second fluid is a diathermic oil and wherein the second chamber (5), suitable
for circulating solids inside, substantially cylindrical, positioned externally to
said first containment chamber (2), is suitable to rotate around its longitudinal
symmetry axis preferably parallel or coincident with the longitudinal axis of the
first containment chamber (2) and forming an interspace (6) with the external wall
of the first containment chamber (2), the solids to be treated being moved by means
of the contact with the internal wall of the rotating second chamber (5);
- means for the first fluid outflow;
- possible means for the treatment of emitted fluids or solids; the means for the
first fluid inflow being suitable for sending in equicurrent or in countercurrent
with the circulation direction of the second fluid or of the solid, said means for
the inflow and outflow of the first fluid comprising connections, and the containment
chamber (2) and the thermal exchange means being realised in metallic material resistant
to high temperature, and the first chamber and the second chamber being made of materials
resistant to temperatures in the range 200-1000 °C.
2. Apparatus (1) according to claim 1, wherein said chamber (2) suitable for the circulation
of fluids in its inside is substantially cylindrical, or prismatic and with a longitudinal
axis possibly incident with horizontal axis.
3. Apparatus according to claim 2, wherein said second hollow annulus is circular or
polygonal and preferably forms the external wall of the containment chamber (2).
4. Apparatus according to claim 1, wherein said means for the treatment of the fluids
emission include at least a filter or a deduster or a cyclone.
5. Apparatus (1) according to claim 1, further comprising:
- means for the inlet (4) of solids to be treated; and
- means for the emission (7) of treated solid material.
6. Apparatus according to claim 5, wherein said means for the solid materials inlet are
selected in the group comprising: screw-conveyor, belt conveyor, pneumatic injectors.
7. Apparatus according to claim 5, wherein longitudinal symmetry axis of the second chamber
(5) is preferably incident with respect to an horizontal axis with an angle between
0 and 2.5°.
8. Apparatus according to claim 5, wherein said means for the solid materials exit include
at least a gravity system.
9. Energy recovery multi-modular apparatus, suitable for the thermal treatment of fluids
or solids, with modules in series or in parallel, characterized in that each module is constituted by an apparatus according to claims 1 to 8.
10. Use of the apparatus according to any one of the previous claims 1 to 9, for the energy
recovery associated to the thermal treatment of fluids or solids, wherein the cooling
rate of the first fluid is in the range of 250 °C/s to 3000 °C/s, preferably it is
higher than 300°C/s.
11. Use of the apparatus according to claim 10, wherein the first fluid, including fumes
from the post-combustion chamber or from the combustion of traditional combustibles,
is inlet at a linear flow-rate in the range of 15m/s to 50m/s, preferably 35-45m/s,
and exit at a temperature lower than 250°C.
12. Use of the apparatus according to claim 10 or 11, wherein the solid materials, submitted
to the thermal treatment, polluted or not polluted, include industrial or civil sludges,
industrial solids, rocks, mixtures of sand and materials having organic matrix such
as paper, plastics, sewage.
13. Use of the apparatus according to any one claims 10 to 12, wherein the temperature
in the interspace between the first and the second chamber is in the range of 200°
to 1000 °C.
14. Use of the apparatus according to any claim 10 to 13, wherein the rotation rate of
the second chamber (5) is in the range of 1 to 20 rpm.
15. Use of the apparatus according to any claim 10 to 14, wherein the flow of the solid
material to be treated is in the range of 50 to 5000 Kg/h, its permanence time is
in the range of 10 to 180 min and its dimension is in the range of 0,1 to 50 mm.
1. Energierückgewinnungsvorrichtung (1) zur Wärmebehandlung von Fluiden oder Feststoffen,
umfassend:
- Mittel zum Einströmen des ersten Fluids;
- eine erste Enthaltekammer (2) zum Enthalten eines ersten Fluids, versehen mit einem
Abweiser (2'), der sich im Innenraum der Kammer im Wesentlichen entlang deren gesamten
Länge entwickelt und dieser die Form eines ersten Hohlrads (2") verleiht;
- Wärmetauschmittel für den Wärmetausch (3) zwischen dem ersten Fluid und einem zweiten
Fluid oder einem Feststoff, umfassend eine zweite Kammer (5) für den Feststoff oder
für das zweite Fluid, ein zweites Hohlrad, das außenseitig oder innenseitig im Kontakt
mit der Enthaltekammer (2) des ersten Fluids positioniert ist, aufweisend eine parallele
Längssymmetrieachse, die vorzugsweise mit der Längssymmetrieachse der Enthaltekammer
(2) übereinstimmt, wobei das zweite Hohlrad beim Wärmetausch zwischen dem ersten Fluid
und dem zweiten Fluid geeignet ist, um Leitungen zu enthalten, die sich über mindestens
eine der außenseitigen Wände der Enthaltekammer (2) in Schraubenform oder in linearer
Form mit der Längssymmetrieachse parallel zur Längssymmetrieachse der Enthaltekammer
(2) erstrecken, die geeignet sind, um zu bewirken, dass das zweite Fluid zwischen
dem Eintritt und dem Austritt gleichläufig, gegenläufig oder in einer gleichläufigen
und gegenläufigen Abfolge mit der/zur Zirkulationsrichtung des ersten Fluids strömt,
wobei es sich beim zweiten Fluid um ein diathermisches Öl handelt und wobei die zweite
Kammer (5), die für die Zirkulation von Feststoffen im Innenraum geeignet ist, im
Wesentlichen zylindrisch und außerhalb der ersten Enthaltekammer (2) positioniert
ist, geeignet ist, um sich rund um ihre Längssymmetrieachse vorzugsweise parallel
zur oder übereinstimmend mit der Längsachse der ersten Enthaltekammer (2) zu drehen,
und formend einen Zwischenraum (6) mit der außenseitigen Wand der ersten Enthaltekammer
(2), wobei die zu behandelnden Feststoffe durch den Kontakt mit der innenseitigen
Wand der rotierenden zweiten Kammer (5) bewegt werden;
- Mittel zum Ausströmen des ersten Fluids;
- mögliche Mittel zur Behandlung von ausgegebenen Fluiden oder Feststoffen,
wobei die Mittel zum Einströmen des ersten Fluids geeignet sind, um gleichläufig oder
gegenläufig mit der/zur Zirkulationsrichtung des zweiten Fluids oder des Feststoffs
zuzuführen, wobei die Mittel zum Einströmen und Ausströmen des ersten Fluids Verbindungen
umfassen, und wobei die Enthaltekammer (2) und die Wärmetauschmittel aus Metallmaterial
gefertigt sind, das gegen hohe Temperaturen beständig ist, und wobei die erste Kammer
und die zweite Kammer aus Materialien bestehen, die beständig gegen Temperaturen im
Bereich 200-1000 °C sind.
2. Vorrichtung (1) nach Anspruch 1, wobei die Kammer (2), die für die Zirkulation von
Fluiden in ihrem Innenraum geeignet ist, im Wesentlichen zylindrisch oder prismatisch
ist und eine Längsachse aufweist, die möglichst zu der horizontalen Achse einfallend
ist.
3. Vorrichtung nach Anspruch 2, wobei das zweite Hohlrad kreisförmig oder vieleckig ist
und vorzugsweise die außenseitige Wand der Enthaltekammer (2) formt.
4. Vorrichtung nach Anspruch 1, wobei die Mittel zur Behandlung der Fluidausgabe mindestens
einen Filter oder einen Entstauber oder einen Fliehkraftabscheider einschließen.
5. Vorrichtung (1) nach Anspruch 1, zudem umfassend:
- Mittel für den Einlass (4) von zu behandelnden Feststoffen und
- Mittel für die Ausgabe (7) von behandeltem Feststoffmaterial.
6. Vorrichtung nach Anspruch 5, wobei die Mittel für den Feststoffmaterialeinlass aus
der Gruppe ausgewählt sind, umfassend: Schraubenförderer, Bandförderer, pneumatische
Injektoren.
7. Vorrichtung nach Anspruch 5, wobei die Längssymmetrieachse der zweiten Kammer (5)
vorzugsweise einfallend zu einer horizontalen Achse mit einem Winkel zwischen 0 und
2,5° ist.
8. Vorrichtung nach Anspruch 5, wobei diese Mittel für den Feststoffmaterialienauslass
mindestens ein Schwerkraftsystem einschließen.
9. Multimodulare Energierückgewinnungsvorrichtung für die Wärmebehandlung von Fluiden
oder Feststoffen mit in Reihe oder parallel geschalteten Modulen, dadurch gekennzeichnet, dass ein jedes Modul aus einer Vorrichtung nach Anspruch 1 bis 8 besteht.
10. Verwendung der Vorrichtung nach einem der vorhergehenden Ansprüche 1 bis 9 für die
Energierückgewinnung, assoziiert mit der Wärmebehandlung von Fluiden oder Feststoffen,
wobei die Abkühlungsrate des ersten Fluids im Bereich von 250 °C/s bis 3000 °C/s liegt
und vorzugsweise höher als 300 °C/s ist.
11. Verwendung der Vorrichtung nach Anspruch 10, wobei das erste Fluid, das Abgase aus
der Nachverbrennungskammer oder aus der Verbrennung herkömmlicher Brennstoffe einschließt,
bei einer linearen Strömungsgeschwindigkeit im Bereich von 15 m/s bis 50 m/s, vorzugsweise
35-45 m/s, einströmt und bei einer Temperatur von weniger als 250 °C ausströmt.
12. Verwendung der Vorrichtung nach Anspruch 10 oder 11, wobei die Feststoffmaterialien,
die verunreinigt oder nicht verunreinigt der Wärmebehandlung unterzogen werden, Industrie-
oder Siedlungsschlämme, Industriefeststoffe, Gesteine, Mischungen von Sand und Materialien,
aufweisend eine organische Matrix wie Papier, Kunststoff, Schmutzwasser, einschließen.
13. Verwendung der Vorrichtung nach einem der Ansprüche 10 bis 12, wobei die Temperatur
im Zwischenraum zwischen der ersten und der zweiten Kammer im Bereich von 200° bis
1000 °C liegt.
14. Verwendung der Vorrichtung nach einem der Ansprüche 10 bis 13, wobei die Drehzahl
der zweiten Kammer (5) im Bereich von 1 bis 20 U/min liegt.
15. Verwendung der Vorrichtung nach einem der Ansprüche 10 bis 14, wobei die Durchflussmenge
des zu behandelnden Feststoffmaterials im Bereich von 50 bis 5000 kg/h liegt, dessen
Verweildauer im Bereich von 10 bis 180 min liegt und dessen Größe im Bereich von 0,1
bis 50 mm liegt.
1. Appareil de récupération d'énergie (1) adapté au traitement thermique de fluides ou
de solides, comprenant :
- des moyens pour l'arrivée du premier fluide ;
- une première chambre de contenance (2), servant à contenir un premier fluide, pourvue
d'un déflecteur (2') se développant lui-même dans l'intérieur de la chambre substantiellement
le long de toute sa longueur en lui donnant la forme d'un premier espace annulaire
creux (2") ;
- des moyens d'échange de chaleur pour l'échange de chaleur (3) entre le premier fluide
et un second fluide ou un solide, comprenant une seconde chambre (5) pour le solide
ou pour le second fluide, un second espace annulaire creux placé en contact, extérieurement
ou intérieurement, avec ladite chambre de contenance (2) du premier fluide et ayant
un axe de symétrie longitudinal parallèle coïncidant de préférence avec l'axe de symétrie
longitudinal de ladite chambre de contenance (2), dans lequel dans l'échange de chaleur
entre le premier fluide et le second fluide, ledit second espace annulaire creux est
adapté pour contenir des conduits, qui se prolongent sur au moins une des cloisons
externes de la chambre de contenance (2), de forme hélicoïdale ou de forme linéaire,
avec l'axe de symétrie longitudinal parallèle à l'axe de symétrie longitudinal de
ladite chambre de contenance (2), étant adaptés pour permettre au second fluide de
s'écouler, entre l'entrée et la sortie, à co-courant, à contre-courant ou en séquence
à co-courant et à contre-courant avec la direction de circulation du premier fluide,
dans lequel le second fluide est une huile diathermique et dans lequel la seconde
chambre (5), adaptée pour la circulation de solides en son sein, substantiellement
cylindrique, positionnée extérieurement à ladite première chambre de contenance (2),
est adaptée pour tourner autour de son axe de symétrie longitudinal de préférence
parallèle ou coïncidant avec l'axe longitudinal de la première chambre de contenance
(2) et formant un interstice (6) avec la cloison externe de la première chambre de
contenance (2), les solides à traiter étant déplacés au moyen du contact avec la cloison
interne de la seconde chambre en rotation (5) ;
- des moyens pour l'écoulement du premier fluide ;
- des moyens éventuels destinés au traitement des fluides ou des solides émis ;
les moyens pour l'arrivée du premier fluide étant adaptés pour l'envoi à co-courant
ou à contre-courant avec la direction de circulation du second fluide ou du solide,
lesdits moyens pour l'arrivée et l'écoulement du premier fluide comprenant des raccordements,
et la chambre de contenance (2) et les moyens d'échange de chaleur étant réalisés
dans un matériau métallique résistant aux températures élevées, les première et seconde
chambres étant constituées de matériaux résistants à des températures comprises entre
200 et 1 000°C.
2. Appareil (1) selon la revendication 1, dans lequel ladite chambre (2), adaptée pour
la circulation des fluides en son sein, est substantiellement cylindrique ou prismatique
et avec un axe longitudinal éventuellement incident avec un axe horizontal.
3. Appareil selon la revendication 2, dans lequel ledit second espace annulaire creux
est circulaire ou polygonal et, de préférence, forme la cloison externe de la chambre
de contenance (2).
4. Appareil selon la revendication 1, dans lequel lesdits moyens destinés au traitement
de l'émission de fluides incluent au moins un filtre ou un dépoussiéreur ou un cyclone.
5. Appareil (1) selon la revendication 1, comprenant également :
- des moyens pour l'entrée (4) de solides à traiter ; et
- des moyens pour l'émission (7) de matériau solide traité.
6. Appareil selon la revendication 5, dans lequel lesdits moyens pour l'entrée des matériaux
solides sont sélectionnés dans le groupe comprenant : un convoyeur à vis, une bande
transporteuse, des injecteurs pneumatiques.
7. Appareil selon la revendication 5, dans lequel l'axe de symétrie longitudinal de la
seconde chambre (5) est de préférence incident par rapport à un axe horizontal avec
un angle compris entre 0 et 2,5°.
8. Appareil selon la revendication 5, dans lequel lesdits moyens pour la sortie des matériaux
solides incluent au moins un système à gravitation.
9. Appareil multi-modulaire de récupération d'énergie, adapté au traitement thermique
de fluides ou de solides, doté de modules en série ou en parallèle, caractérisé en ce que chaque module est constitué par un appareil selon les revendications de 1 à 8.
10. Utilisation de l'appareil selon l'une quelconque des revendications précédentes de
1 à 9, destinée à la récupération d'énergie associée au traitement thermique de fluides
ou de solides, dans laquelle la vitesse de refroidissement du premier fluide est comprise
entre 250°C/s et 3 000°C/s, de préférence supérieure à 300°C/s.
11. Utilisation de l'appareil selon la revendication 10, dans laquelle le premier fluide,
incluant des fumées provenant de la chambre post-combustion ou de la combustion de
combustibles traditionnels, entre à un débit linéaire compris entre 15 m/s et 50 m/s,
de préférence 35-45 m/s, et ressort à une température inférieure à 250°C.
12. Utilisation de l'appareil selon les revendications 10 ou 11, dans laquelle les matériaux
solides, soumis au traitement thermique, pollués ou non pollués, incluent des boues
industrielles ou civiles, des matières solides industrielles, des pierres, des mélanges
de sable et de matériaux comportant une matrice organique telle que le papier, les
plastiques, les eaux usées.
13. Utilisation de l'appareil selon l'une quelconque des revendications de 10 à 12, dans
laquelle la température dans l'interstice entre la première et la seconde chambre
est comprise entre 200° et 1 000°C.
14. Utilisation de l'appareil selon l'une quelconque des revendications de 10 à 13, dans
laquelle le taux de rotation de la seconde chambre (5) est comprise entre 1 et 20
tour/min.
15. Utilisation de l'appareil selon l'une quelconque des revendications de 10 à 14, dans
laquelle le débit de matériaux solides à traiter est compris entre 50 et 5 000 Kg/h,
son temps de permanence est compris entre 10 et 180 minutes et ses dimensions comprises
entre 0,1 et 50 mm.