[0001] The present invention relates on the one hand to a drying device for drying a water-containing
mixture and on the other hand to a method for drying water-containing mixtures by
means of such a drying device.
[0002] The present invention relates in particular to a drying device which is suitable
for drying water-containing mixtures to form granular material or granular powder
(granules).
[0003] For various reasons, as much moisture as possible has to be removed from water-containing
mixtures, such as for example sludge or semi-liquid manure, sand slurries, digestate,
dewatering sludge, waste sludge, etc. One of the most common systems for removing
moisture from water-containing mixtures is a drying belt. Such a drying belt consists
of a variable speed belt, made from plastic, which is provided with perforated apertures.
The material to be dried is placed on the belt and dried by passing an air current
of approximately 70°C through the apertures of the belt.
However, such a drying belt has the drawback that air currents of relatively high
temperatures (> 70°C) cannot be passed through the apertures of the drying belt as
there is a risk that the plastic belt could start to melt.
[0004] In order to solve this problem, a perforated vibrating plate made from stainless
steel was developed. By means of such a vibrating plate, the material present on the
vibrating plate can be dried using an air current having a temperature of more than
200°C.
[0005] It is now an object of the invention to provide an alternative drying device by means
of which it is possible to dry water-containing mixtures in an efficient manner by
means of an air current, irrespective of the temperature of this air current.
[0006] The object of the invention is achieved by providing a drying device for drying a
water-containing mixture, in which said drying device comprises a conical drying chamber
having an inlet opening through which the water-containing mixture is supplied, said
conical drying chamber being designed to generate an air whirl stream from an influx
of air so that the supplied water-containing mixture is dried to form dried material
by the generated air whirl stream, and the drying chamber furthermore comprising an
outlet opening for discharging the generated air whirl stream together with the dried
material.
[0007] The discharged material is preferably in the form of granular material or granular
powder having a solids content of between 80 and 99%, preferably of between 90 and
99%.
[0008] Due to the specific embodiment of the drying chamber, the supplied water-containing
mixture comes into contact with already partially dried or completely dried material,
as a result of which (due to the structure of the already dried material) drying can
be effected much more efficiently and a drying device can be produced which is much
more compact than the existing drying belt.
[0009] The drying chamber is preferably made from metal and is, more particularly, made
from stainless steel.
[0010] In a preferred embodiment of the drying device according to the invention, the conical
drying chamber comprises an inflow opening for air which is provided in the essentially
narrowest part of the drying chamber. The narrowest part of the drying chamber is
situated in particular on the underside of the drying chamber. Preferably, the inflow
velocity of the air is between 20 and 50 m/sec. The inflow velocity of the air depends
on the product to be dried; relatively light products require a relatively low speed,
while relatively heavy products require a relatively high speed.
[0011] According to a more preferred embodiment of the drying device according to the present
invention, the inlet opening is connected to the periphery of the drying chamber in
the vicinity of the essentially widest part of the drying chamber. The widest part
of the drying chamber is preferably situated at the top of the drying chamber.
[0012] In a particular embodiment of the drying device according to the invention, the drying
chamber comprises an upper wall, with the inlet opening being formed in said upper
wall. The upper wall closes off the drying chamber at the top and ensures that the
already dried material only leaves the drying device via the outlet opening. In a
preferred embodiment of the drying device, the outlet opening is formed in a wall
of the conical drying chamber, in the vicinity of the essentially widest part of the
drying chamber.
[0013] According to a more particular embodiment of the drying device according to the invention,
the drying device furthermore comprises a cyclone which is connected to the outlet
opening and is designed to remove the dried material from the air whirl stream.
[0014] In a particularly advantageous embodiment of the drying device according to the invention,
said drying device comprises a stirring and displacement device which is rotatable
in the drying chamber. This device comprises in particular an Archimedean screw. The
stirring and displacement device, in particular the screw, can turn clockwise as well
as anticlockwise. The screw makes it possible to adjust the residence time of the
mixture to be dried in the drying chamber.
[0015] In a more particular embodiment of the drying device according to the invention the
stirring and displacement device furthermore comprises a scraping element which is
designed to scrape the inner wall of the drying chamber.
[0016] Another subject of the present invention relates to a method for drying a water-containing
mixture, in which the method comprises the following steps:
- supplying a water-containing mixture to be dried via a supply device to the inlet
opening of a conical drying chamber;
- drying the water-containing mixture to form dried material by means of an air whirl
stream in the conical drying chamber;
- discharging the air whirl stream via an outlet opening, provided in the drying chamber,
together with the dried material to a cyclone which is connected to the outlet opening.
[0017] The method according to the invention is in particular implemented on the above-described
drying device.
[0018] In order to further explain the features of the present invention and to indicate
additional advantages and details, there now follows a more detailed description of
the drying device and the method for drying water-containing mixtures according to
the present invention. It will be clear that nothing in the following description
can be interpreted as a restriction to the scope of protection of the present invention
as laid down by the claims.
[0019] In this description, reference numerals are used to refer to the attached drawings,
in which:
- Fig. 1 shows a perspective view of the drying device according to the invention;
- Fig. 2 shows a front view of the drying device represented in Fig. 1;
- Fig. 3 shows the interior of the drying chamber;
- Fig. 4 shows a perspective view of an alternative drying device according to the invention.
[0020] The drying device (1) according to the present invention and as represented in the
attached figures 1 and 2 is suitable for drying water-containing mixtures to form
granules and comprises a conical drying chamber (2) having an inlet opening via which
product to be dried, usually in the form of a wet mash, is supplied to the drying
chamber (2). The drying chamber (2) is closed off at the top by an upper wall (5).
The inlet opening is preferably provided in this upper wall.
[0021] Due to its specific shape (wide at the top and narrow at the bottom), the drying
chamber (2) can generate an air whirl stream from an influx of air, so that the supplied
wet mash is dried by the generated air whirl stream to form dried material. The inflow
opening (4) for air is situated at the bottom of the drying chamber (2), in the narrowest
part.
[0022] The supplied air can be ambient air which is withdrawn from the surroundings by means
of ventilation means, but can also consist of waste gases from a chimney, stable air
and heat from, for example, an electric group. The temperature of the supplied air
depends on the source and is preferably between 10 and 250°C. The inflow velocity
of the air is adjustable and is preferably between 20 and 50 m/sec.
[0023] The wet mash is supplied to the top of the drying chamber (2) via a supply device
(not shown), usually a conveyor belt. In order to be able to feed the supplied mash
to the drying chamber (2) in a controlled manner, a sluice is preferably arranged
above the inlet opening. It will be obvious that other devices which are suitable
for a controlled supply can also be used. Since the inlet opening is connected to
the periphery of the drying chamber (2), the supplied mash will move downwards along
the walls of the drying chamber (2) on account of the force of gravity.
[0024] During the downward movement of the wet mash, the latter will be dried, on the one
hand, by the generated air whirl stream and, on the other hand, by coming into contact
with already dried material. The wet mash is dried to form granular material or granular
powder with a solids content between 80 and 99%.
[0025] Depending on the composition of the supplied wet mash, it is sometimes necessary
to adjust the residence time in the drying chamber (2). This can be effected by placing
a rotatable stirring and displacement device (7) in the drying chamber (2), as is
illustrated in Fig. 3. The stirring and displacement device (7) is in particular designed
as an Archimedean screw which can be turned both in the clockwise and the anticlockwise
direction. In this way, it is possible to impart an upward movement to mixtures which
are relatively heavy, e.g. sand slurries, by means of the Archimedean screw in order
to be able to remove them from the drying chamber (2) more easily. In the case of
the relatively light mixtures, e.g. mixtures which contain wood fibres, the Archimedean
screw will rotate in the other direction in order to create a downward movement and
thus to allow the mixture to remain in the drying chamber (2) for longer.
[0026] The residence time can be influenced further by providing the stirring and displacement
device (7) with one or more screen elements which extend at right angles to the length
direction of the stirring and displacement device (7). The screen is interrupted across
part of its surface as a result of which an opening is formed. Such a screen ensures
that the air current comprising the dried material can only flow further to an outlet
opening (3) when it has reached the interrupted portion. The screen is situated essentially
halfway up the drying chamber. The presence of the screen creates additional resistance,
as a result of which it will be more difficult for the material to leave the device.
If desired, the screen can be provided with additional perforated fine holes across
its surface.
[0027] The stirring and displacement device (7) is furthermore provided with a scraper element
(8) in order to remove any encrusted remains of material from the inner walls of the
drying chamber (2).
[0028] The dried material leaves the drying chamber (2) together with the generated air
current via the top by means of an outlet opening (3) which is formed in the wall
of the conical drying chamber (2).
The composition of the dried material can be adjusted by adjusting the inflow velocity
of the air, for example by making the air flow more quickly, more moist product will
be entrained and leave the drying chamber (2) via the outlet opening (3). At a slower
inflow velocity, less moist product will be entrained.
[0029] After leaving the drying chamber (2), the air current comprising dried material ends
up in the cylindrical part of a cyclone (6) (dust remover). In the cyclone (6), the
dried material is removed from the air current. The dried material will leave the
cyclone (6) via an opening at the end of the conical part.
[0030] Fig. 4 shows an alternative embodiment of the drying device (1) according to the
present invention. The illustrated drying device (1) comprises a conical drying chamber
(2) with an inlet opening (9) via which the product to be dried is supplied to the
drying chamber (2), usually in the form of a wet mash. The drying chamber (2) is closed
off at the top by an upper wall (5). The inlet opening (9) is provided in this upper
wall.
[0031] With the drying device (1) illustrated in Fig. 4, the entire inflow opening (4) for
air is situated at the bottom of the drying chamber (2), in the conical end of the
drying chamber (2). In this conical end, the air supply to the rest of the installation
is closed off by a perforated plate. This prevents any product to be dried from entering
the air supply. Such a perforated plate can also be provided in the devices illustrated
in Figs 1 to 3.
[0032] The dried material leaves the drying chamber (2), together with the generated air
current, at the top via an outlet opening (3) which is formed in the upper wall (5)
of the conical drying chamber (2). In this embodiment, the outlet opening is situated
substantially opposite the inflow opening (4). After leaving the drying chamber (2),
the air current comprising dried material ends up in the cylindrical part of a cyclone
(6) (dust remover).
1. Drying device (1) for drying a water-containing mixture, characterized in that said drying device (1) comprises a conical drying chamber (2) having an inlet opening
through which the water-containing mixture is supplied, in that said conical drying chamber (2) is designed to generate an air whirl stream from
an influx of air so that the supplied water-containing mixture is dried to form dried
material by the generated air whirl stream, and in that the drying chamber (2) furthermore comprises an outlet opening (3) for discharging
the generated air whirl stream together with the dried material.
2. Drying device (1) according to Claim 1, characterized in that the conical drying chamber (2) comprises an inflow opening (4) for air which is provided
in the essentially narrowest part of the drying chamber (2).
3. Drying device (1) according to Claim 1 or 2, characterized in that the inlet opening is connected to the periphery of the drying chamber (2) in the
vicinity of the essentially widest part of the drying chamber (2).
4. Drying device (1) according to one of the preceding claims, characterized in that the drying chamber (2) comprises an upper wall (5), with the inlet opening being
formed in said upper wall (5).
5. Drying device (1) according to one of the preceding claims, characterized in that the outlet opening (3) is formed in a wall of the conical drying chamber (2) in the
vicinity of the essentially widest part of the drying chamber (2).
6. Drying device (1) according to one of the preceding claims, characterized in that the inflow velocity of the air is between 20 and 50 m/sec.
7. Drying device (1) according to one of the preceding claims, characterized in that the drying device (1) furthermore comprises a cyclone (6) which is connected to the
outlet opening (3) and is designed to remove the dried material from the air whirl
stream.
8. Drying device (1) according to one of the preceding claims, characterized in that said drying device (1) comprises a stirring and displacement device (7) which is
rotatable in the drying chamber (2).
9. Drying device (1) according to Claim 8, characterized in that said stirring and displacement device (7) comprises an Archimedean screw.
10. Drying device (1) according to Claim 8 or 9, characterized in that the stirring and displacement device (7) furthermore comprises a scraping element
(8) which is designed to scrape the inner wall of the drying chamber (2).
11. Method for drying a water-containing mixture,
characterized in that the method comprises the following steps:
- supplying a water-containing mixture to be dried via a supply device to the inlet
opening of a conical drying chamber (2);
- drying the water-containing mixture to form dried material by means of an air whirl
stream in the conical drying chamber (2);
- discharging the air whirl stream via an outlet opening (3), provided in the drying
chamber (2), together with the dried material to a cyclone (6) which is connected
to the outlet opening.