OBJECT OF THE INVENTION
[0001] The present invention falls within the technical field of drying procedures and devices
of materials involving the use of heat, more specifically in that of those using electrical
effects for the development of heat, and refers in particular to a device for generation
and distribution of microwaves in rotary heat application systems.
[0002] The device has special application in the field of drying washed clothes, therefore
it also falls within the specific technical field of heating systems for clothes dryers.
However, its use is not limited to this, since it is also useful in seed drying procedures,
rubber devulcanization, disinfection, and in general in any application that requires
significant heating uniformity.
BACKGROUND OF THE INVENTION
[0003] Drying is one of the processes that consumes most energy, since it implies the contribution
of energy to the internal water of a material, as well as to its own solid structure
or dry mass. When these materials are poor thermal conductors (thermal insulators),
as is the case of clothing or textile materials, the transmission of energy by heat
exchange with hot air is an inefficient system because the low thermal conductivity
prevents a rapid absorption of airborne heat.
[0004] Due to the high latent heat of evaporation of the water, in addition, the amount
of energy to provide to the internal humidity of the materials that are being dried
is very important. For this reason, drying processes based on hot air are usually
slow and inefficient.
[0005] On the other hand, microwaves heat materials based on their electric permittivity,
which is usually optimal when these materials contain water, since water is a polar
material that converts microwaves into heat and finally allows the water to evaporate.
[0006] Despite these well-known advantages, commercial devices that use microwave energy
to speed up the drying process of textiles are not common, and this is due to several
reasons:
- it is technologically complex to use rotating metal drums in which microwaves can
be introduced at significant levels to facilitate rapid drying;
- it is difficult to use mobile filters at the microwave frequency that allow this rotation
while preventing microwave radiation to the outside;
- the air inlet and outlet in the drum must be adequately compatible with the elimination
or significant reduction of microwave radiation through those air inlet and outlet
points;
- when several microwave sources are used, they can couple mutually during the drying
process and end up being damaged;
- textile materials change their dielectric properties a lot when they lose water, so
the load detected by microwave sources varies a lot and, therefore, achieving an efficient
and uniform system throughout the process is extremely complex;
- the exact stopping point of the process must be known so as not to overheat or burn
the garments; and
- as uniform heating as possible must be provided to all the clothes located inside
the dryer.
[0007] In the current state of the art there are patent documents that try to solve some
of these disadvantages and provide microwave drying devices. It should be mentioned
at this point that rotating drum microwave dryers can be classified into two main
types.
[0008] In the first type, the microwave or magnetron source is fixed and heats a cavity
where a rotating drum is located and where the clothes or items to be dried are inserted.
This drum can be made of plastic so that the microwaves penetrate through it or can
be metallic and equipped with a series of holes so that the microwaves can enter the
drum and carry out their function of heating and drying.
[0009] An example of this first type can be found in patent publication number
US6393725B1, which describes a compact microwave clothes dryer that is small enough to be placed
on a counter. Air circulates through the microwave generator and power supply components
into the drying chamber to transfer heat from the components to the clothes in the
chamber. The feeding occurs directly with the antenna of the magnetron directed towards
the rectangular microwave cavity, in which a rotating cylinder is located where the
clothes are inserted.
[0010] In the second type, the microwave or magnetron source is located on the axis of the
drum, either at the back or at the door, and emits directly into the rotating drum
where the clothes or items to be dried are located.
[0011] An example of this second type can be found in the document with publication number
CN110318230A. This relates to a clothes dryer comprising a box assembly, a door assembly, a cylinder
assembly, a condensing assembly and a microwave assembly. The box assembly comprises
a front sealing door with an opening for placing objects, the door assembly covers
the front sealing door, and the cylinder and the door assembly are correspondingly
arranged within the box assembly. The cylinder assembly comprises an inner cylinder
that contains the clothes to be dried and an outer cylinder that covers the outer
cylinder, wherein the condensing assembly is disposed within the case assembly and
the condensing assembly is disposed below the cylinder assembly to condense gas exiting
the cylinder assembly. The microwave assembly is arranged on the outer surface of
the outer cylinder, and the microwave assembly transmits microwaves through the inner
space of the outer cylinder through the outer cylinder.
[0012] This same applicant has a previous utility model,
ES1246295U, related to a dryer that allows the waves to be redirected towards the drum where
the clothes are located. The dryer comprises a microwave-impermeable casing, with
a door, equally impermeable, for introducing the clothes into a prismatic cavity configured
to dry the clothes, which has one or more magnetrons with waveguides oriented towards
the cavity, and one or more spaces isolated from microwaves for electronic or electrical
equipment and other devices sensitive to microwaves, characterized in that the cavity
has one or more microwave reflectors oblique to the walls of the cavity at its edges.
[0013] In both types of rotating drum microwave dryers, the problem is that as the clothes
dry, they absorb less microwaves. Unused and uncontrolled, these microwaves end up
damaging the magnetron and making the device very inefficient. In the case of magnetrons
that directly feed the drum, there is also a greater risk of fire due to the high
temperature that the clothes closest to the source can reach.
[0014] To avoid damage to the magnetron, current devices finish the drying process before
the object in question, usually clothing, is completely dry. Therefore, to avoid damage
to the device, the final objective is not achieved, which is to completely dry the
inserted object.
[0015] Therefore, there continues to be a need for a device for generating and distributing
microwaves in rotary heat application systems that, in a simple and efficient manner,
allows overcoming the mentioned objections of the current state of the art.
DESCRIPTION OF THE INVENTION
[0016] The object of the invention consists of a device for the generation and distribution
of microwaves in rotary heat application systems, which basically comprises the following
elements:
- a rotating drum, preferably cylindrical, into which the material to be heated or dried
is introduced, which includes through slots distributed on the side wall of the drum;
- at least one microwave emitting source, comprising magnetrons or solid-state generators,
for generating and emitting a microwave electromagnetic field;
- fixed microwave filters, located on the slots of the drum without impeding its rotation,
while they form a non-standard waveguide that distributes the microwave electromagnetic
field selectively and uniformly throughout the material to be heated or dried; and
- an external structure that supports the previous elements.
[0017] Microwave filters are preferably materialized in the form of metallic cylinders that
encase at least partially an outer surface of the rotating drum to prevent microwave
radiation from escaping from the waveguide surrounding the rotating drum, confining
it without leaving it more than one outlet through a set of slots described later,
and therefore forcing said radiation to move inside the metal drum, where the materials
are heated and/or dried. The microwave filters are attached to the external structure
of the rotating system, allowing the microwave emitting sources to be installed on
them.
[0018] The cylindrical filters can also comprise metal screws that are inserted into the
non-standard waveguide to adapt the initial impedance of the process and improve its
efficiency, with a fixed or adaptable configuration in the event of possible changes
in the electromagnetic response of the load. Likewise, the cylindrical filters can
be divided into several parts to allow their installation in the device in a simple
way or to increase the number of microwave emitting sources.
[0019] Since the processed materials can change their internal moisture appreciably during
the process, and with it their dielectric properties, a gradual or abrupt mismatch
can occur between the microwave sources and their load, that is, the rotating drum
with the material inside. To avoid this, a launcher is additionally added inside the
non-standard waveguide, which makes it possible to make the impedance detected by
the microwave emitting source independent with respect to the heating and/or drying
conditions of the material and provide, consequently, an adaptation with reflection
coefficient values less than -10 dB during the entire heating and/or drying process.
Thus, high efficiency and homogeneity in the process are achieved.
[0020] In its preferred embodiment, the launcher is made up of two metal plates: one vertical
and parallel to the antenna of the magnetron or solid-state generator, and another
that is located below said antenna. The magnetrons or the antennas of the solid-state
generators are therefore arranged on the cylindrical filters and the slots of the
drum. The antenna of the microwave emitting source is located between the wall of
the corresponding filter and the metallic launcher, to direct the microwave beam towards
a determined direction of the drum and its slots. Likewise, these launchers allow
one or more microwave sources to be mounted on the same filter, since the slots act
as distributed antennas and there is little power available at the end of its journey
through the non-standard waveguide under which they are located.
[0021] Regarding the distribution of the rotating drum slots, these can be configured in
different radiant groups in such a way that, when there are several microwave sources,
they are uncoupled from each other, allowing the use of several microwave sources
simultaneously without occurring any breakage due to power transfers between these
sources, nor loss of efficiency in the heating and/or drying process.
[0022] The decoupling between the groupings of slots is achieved by distributing them along
the surface of the cylindrical side wall of the drum and making said groupings of
slots cause an electric field perpendicular to that emitted by the other group of
slots. Likewise, the lower and upper slots of the same radiating group also generate
perpendicular electric fields, there being no coupling between slots of the same group.
This also favors the use of several microwave sources simultaneously without the risk
of breakage due to source coupling and, therefore, the energy is directed exclusively
to the material that must be dried and/or heated.
[0023] In this way, one of the advantages of the device is achieved, since by being able
to install and use several microwave sources simultaneously, faster and more effective
heating and extraction of humidity is achieved than in the previously reviewed inventions.
[0024] The interior of the rotating drum can contain metal blades, or preferably dielectric
blades, which allow the material heated inside to be moved so that there is a greater
uniformity of heating and/or drying, and so that the steam can escape from the dried
material in a simpler way. Generally, these blades are made of a material that is
transparent to microwaves, although it is also possible to use metal with rounded
edges or other types of materials.
[0025] To close the faces of the drum, a front wall and a rear wall are arranged, perpendicular
to the axis of rotation of said drum. Each one of them comprises a plurality of grid-type
metal holes acting as cut-off waveguides, which totally or partially cover said walls
in order to allow the evacuation of water vapor or other gases from the interior of
the rotating drum. These walls can be integral with the body of the drum, and therefore
rotate at the same time as it, or they can be independent and remain stationary while
the drum rotates. In this second case, it is necessary to insert an additional cylindrical
filter that, as a joint, prevents the microwave radiation from escaping.
[0026] Each metal wall is linked to the drum maintaining electrical continuity so that the
passage of microwaves through these cut-off waveguides is prevented, but the passage
of air, water vapor or any other gas is allowed. In the case of the front wall, it
is necessary that there is at least one folding sector as a door to allow the introduction
and extraction of materials from inside the drum.
[0027] A flow of air or another type of inert gas, such as nitrogen or helium, is generated
before the rear perpendicular wall. Said gas flow crosses the cylindrical drum, evacuating
the water vapor or any other gas generated inside. The length and internal dimensions
of each cut-off guide are designed to provide enough attenuation to the electric field
so that it comes out minimally through these holes and, in any case, complying with
the electromagnetic compatibility regulations applicable to equipment that uses microwave
radiation.
[0028] The metal grill on the front wall can be fixed or mobile to introduce and extract
the materials to be heated or dried inside the drum. In this second case, the most
common, it incorporates a filter in its contour that prevents contact with the rotating
drum and prevents microwaves from radiating out of it, acting as a door for the rotating
system.
[0029] With the device thus described, multiple advantages are achieved over the current
state of the art. The most notable is derived from the fact that more efficient, uniform
and rapid heating and drying is achieved, which has a positive effect on total energy
consumption, due to the optimal use of the microwave flow. Reflections and interactions
between the various microwave flows are minimized, which also prolongs the life of
the magnetron by avoiding the couplings that occur with known devices.
DESCRIPTION OF THE DRAWINGS
[0030] To complement the description that is being made and in order to help a better understanding
of the characteristics of the invention, according to a preferred example of its practical
embodiment, a set of drawings is attached as an integral part of said description,
where, with an illustrative and non-limiting nature, the following has been represented:
Figure 1.- Shows a front perspective view of the assembly made up of the rotating
drum and the cylindrical filters for microwaves.
Figure 2.- Shows a rear perspective view of the assembly made up of the rotating drum
and the cylindrical filters.
Figure 3.- Shows a partial exploded view of Figure 2 in which the interior of the
rotating drum can be seen.
Figure 4.- Shows a schematic front view of the device.
Figure 5.- Shows a schematic rear view of the device.
Figure 6.- Shows a partial exploded view of the device.
Figure 7.- Shows a perspective view of a cylindrical filter.
PREFERRED EMBODIMENT OF THE INVENTION
[0031] A detailed explanation of a preferred embodiment of the object of the present invention
is provided below, with the help of the aforementioned figures.
[0032] The device for generating and distributing microwaves in rotating heat application
systems that is described is made up of a rotating drum (1), at least one microwave
emitter (2), at least one fixed microwave filter (3), and an external structure (4)
that supports the previous elements.
[0033] The rotating drum (1), essentially cylindrical and made of a metallic material, comprises
a continuous side wall (5), a front closure (6) and a rear closure (7), which delimit
an internal housing intended to house an element to which to apply heat, either for
drying or heating. The side wall (5) comprises a plurality of through slots (8) distributed
along its surface that allow a beam of microwave energy from the microwave emitters
(2) to pass towards the interior housing of the drum (1).
[0034] As can be seen in the attached figures, especially in figures 3 and 6, in this preferred
embodiment the slots (8) have an oblique orientation with respect to an axis of rotation
passing through the center of the rotating drum (1). Likewise, in this embodiment
the slots (8) are distributed in an annular alignment along the side wall (5) and
in such a way that two slots (8) diametrically opposing each other do not exactly
face each other.
[0035] In a preferred embodiment of the device, shown in the attached figures, the side
wall (5) of the rotating drum (1) comprises two alignments, parallel and separated
from each other, of slots (8), separated from each other by an intermediate annular
extension (9). The rotating drum (1) also includes two further annular extensions
(9), one front and one rear. In this way, each of the alignments of slots (8) is delimited
between two annular extensions (9).
[0036] Each one of the microwave filters (3) is made up of a cylindrical body of metallic
material, intended to encase the exterior of a sector of the side wall (5) of the
rotating drum (1) in which a grouping of slots (8) is located, so that it is covered
by the microwave filter (3). In the preferred embodiment shown in the figures, the
device comprises two microwave filters (3), each one covering a respective alignment
of slots (8). The cylinder that makes up each microwave filter (3) has an internal
diameter greater than the diameter of the rotating drum (1).
[0037] The microwave filters (3) are fixed to the external structure (4) by means of fastening
elements (10), which in this case are columns. In this way the rotation of the rotating
drum (1) is not hindered while ensuring that the alignment of slots (8) is always
covered, as illustrated in Figures 4 and 5. The fastening elements (10) must ensure
the correct mechanical stability of the assembly.
[0038] As can be seen in Figure 7, each microwave filter (3) has an external face and an
internal face intended to face the external face of the side wall (5), and cover an
alignment of slots (8). The internal face additionally comprises a band-eliminating
filter (11), which in this case is made up of metallic corrugations intended to interact
with the annular extensions (9) of the rotating drum (1).
[0039] Each microwave filter (3) also has at least one through hole (12), and in correspondence
with said through hole (12) a support (13) is arranged to house the microwave emitter
(2) on the external face of the microwave filter (3). The microwave emitter (2), which
in this preferred embodiment consists of a magnetron, comprises an antenna insertable
through the through hole (12), to direct the microwave beam towards the side wall
(5) of the rotating drum (1).
[0040] Likewise, on the internal face of the microwave filter (3) and in correspondence
with the through hole (12) there is a launcher (14) for directing and adapting the
microwave beam towards a certain direction of the side wall (5) and the slots (8)
of the rotating drum (1).
[0041] In this preferred embodiment, the launcher (14) comprises a vertical wall (15), which
projects perpendicularly from the internal face of the microwave filter (3) and parallel
to the antenna of the microwave emitter (2), and a horizontal wall (16), which heads
perpendicularly towards a free end of the vertical wall (15), giving the launcher
(14) an L-shaped profile. All the elements of the launcher (14) are metallic.
[0042] Therefore, a non-standard slotted mobile waveguide is formed in the device, which
in this preferred embodiment is delimited by the following elements:
- the external face of the side wall (5) of the rotating drum (1), with the slots (8);
- the internal face of the microwave filter (3), including the band-eliminating filter
(11) and the launcher (14); and
- two opposing faces of two annular extensions (9) of the rotating drum (1).
[0043] The non-standard slotted mobile waveguide has a mobile part, the one made up of the
elements of the rotating drum (1), and another fixed part, the one corresponding to
the microwave filter (3) and the elements linked to it. Said guide confines within
it the microwave beam coming from the microwave emitter (2) introduced into the guide
through the through hole (12), and forces said microwave beam to radiate, which penetrates
into the interior of the rotating drum (1) through the slots (8).
[0044] The launcher (14) also allows microwave energy to be radiated in a direction predetermined
within this waveguide, as well as one or more microwave emitters (2) to be mounted
on the same microwave filter (3), since the slots (8) act as distributed antennas
and there is little power available at the end of their run through the non-standard
slotted mobile waveguide under which they are located.
[0045] With the guide thus described, the propagated electromagnetic wave is introduced
through each of the slots (8) and gradually loses intensity, distributing the energy
evenly inside the rotating drum (1). If said rotating drum (1) has a sufficiently
large diameter, at the end of the cylindrical path the wave has practically no residual
power, which allows good load adaptation and high energy efficiency.
[0046] The front closure (6), which in this case is attached to the front open face of the
side wall (5), allows the passage of water vapor or other types of gases for its evacuation
and condensation, and is at least partially foldable with respect to the side wall
(5) to allow the introduction and extraction of materials in the device, as well as
the confinement of the microwave energy inside the rotating drum (1). The air flow
allows the extraction of water vapor and other gases and suspended particles generated
during the heat application process and comes from a generating system external to
the device.
[0047] Said front closure (6) has a central grid and a perimeter frame, which is connected
with electrical continuity to the corresponding microwave filter (3). The grid allows
the passage of an air flow into the rotating drum (1).
[0048] In an alternative embodiment of the device, the front closure (6) does not have electrical
contact with the rotating drum (1) and interacts with it through a metallic plate
perpendicular to the drum, which is connected to it with electrical continuity. Thus,
the front closure (6) with the metal grid and the microwave filters (3) remains stationary
and is located a few millimeters from this metal wall, but without any contact, filtering
microwaves and allowing rotation of the rotating drum (1), as well as the air flow
through the metal grid.
[0049] In this preferred embodiment, the rear closure (7) is integral with the side wall
(5) of the rotating drum (1), and includes, like the front closure (6), a central
grid and a perimeter frame, which connects with electrical continuity to the corresponding
microwave filter (3) and to the side wall (5) of the drum (1). In the rear closure
(7) a rotating axis and some mechanical reinforcements are installed that allow the
joint rotation of these elements together with the rotating drum (1). Said metallic
axis is mechanically supported on the external structure (4) of the device to have
a point around which to rotate.
[0050] The option of adding a thin sheet of dielectric material transparent to microwaves
is contemplated on the inside of the microwave filter (3) and on the slots (8). Said
sheet prevents airflow leaks through the annular extensions (9) of the rotating drum
(1) and prevents the water vapor from the materials that are dried inside from penetrating
the interior of the non-standard slotted mobile waveguide, thus forcing them to come
out through the front closure (6). This supposes an additional protection for the
microwave emitters (2).
[0051] Tuning elements (17) are provided on the external face of the microwave filters (3),
made of metal screws, which allow the adaptation of the microwave emitter (2), either
for the initial adjustment of the application process of heat, or for a continuous
adaptation of the same by means of its intelligent introduction when changing the
conditions of heating or drying. These tuning elements (17) can be fixed or movable.
In the second case, the introduction and extraction of the tuning elements (17) occurs
automatically by artificial intelligence and an electronic board and according to
data obtained through sensors in the microwave emitters (2).
[0052] In an alternative embodiment of the device, the fixed filter (3) rests on the side
wall (5) of the rotating drum (1) with interposition of metallic bearings, to provide
greater electromagnetic isolation and to provide greater mechanical stability against
device vibrations.
[0053] Finally, on the inside face of the side wall (5) of the rotating drum (1) there are
some transversal blades (18) made of dielectrics transparent to microwaves, to move
the clothes or the heated material, favoring a more uniform heating and drying and
that water vapor or other gases pass from the material into the drum (1). These blades
(18) also provide a smoothing and conditioning mechanism for the garments thus dried.
1. Device for generating and distributing microwaves in rotary heat application systems,
comprising:
- an essentially cylindrical rotating drum (1) which in turn comprises:
- a side wall (5) with at least one group of through slots (8);
- annular extensions (9) projecting from an external face of the side wall (5);
- a front closure (6); and
- a rear closure (7);
which delimit an internal housing intended to house an element to be heated, and where
each group of slots (8) is located between two consecutive annular extensions (9);
- at least one microwave emitter (2);
- at least one fixed microwave filter (3), without direct contact with the rotating
drum (1), made up of a cylindrical body of metallic material, for outer covering of
a sector of the side wall (5) of the rotating drum (1) in which a group of slots (8)
is located; and
- a fixed external structure (4) that supports the above elements;
the device being
characterized in that the microwave filter (3) comprises:
- at least one through hole (12) for insertion of the microwave emitter (2);
- an external face, for fixing the microwave emitter (2); and
- an internal face, opposable to the external face of the side wall (5) for covering
the group of slots (8), comprising at least one band-eliminating filter (11);
so that in the device a non-standard slotted mobile waveguide is formed, delimited
by:
- the external face of the side wall (5) of the rotating drum (1), with the slots
(8);
- the internal face of the microwave filter (3), with the band-eliminating filter
(11); and
- two opposing faces of two consecutive annular extensions (9).
2. Device according to claim 1 further comprising a metallic launcher (14) located on
the internal face of the filter (3) in correspondence with the through hole (12),
for directing and adapting a microwave beam coming from the microwave emitter (2)
towards a determined direction. of the side wall (5) and the slots (8) of the rotating
drum (1).
3. Device according to claim 2, wherein the launcher (14) has an L-shaped profile and
comprises:
- a vertical wall (15), which projects perpendicularly from the inner face of the
microwave filter (3) and parallel to the antenna of the microwave emitter (2); and
- a horizontal wall (16), which heads perpendicularly towards a free end of the vertical
wall (15).
4. Device according to any of the preceding claims wherein:
- each grouping of slots (8) is located between two sectors of the rotating drum (1),
and where the annular extensions (9) have a height close to 0; and
- the microwave filters (3) have side walls forming an inverted U, at the lower end
of which the band-eliminating filters (11) are located, which completely cover each
grouping of slots (8) and interact with the side wall (5) of the drum.
5. Device according to any of the preceding claims, wherein the slots (8) have an oblique
orientation with respect to an axis of rotation passing through the center of the
rotating drum (1).
6. Device according to any of the preceding claims, wherein the slots (8) are distributed
aligned along the side wall (5) in such a way that two slots (8) diametrically opposed
to one another do not face each other.
7. Device according to any of claims 1-6, wherein the front closure (6) and/or the rear
closure (7) are integral with the side wall (5).
8. Device according to any of the claims 1-6, wherein the front closure (6) and/or the
rear closure (7) are independent of the side wall (5).
9. Device according to claim 8 further comprising two additional microwave filters (3)
insertable between the front (6) and rear (7) closures and the side wall (5).
10. Device according to any of the preceding claims, wherein the microwave filters (3)
additionally comprise fastening elements (10) for fixing to internal walls of the
external structure (4).
11. Device according to any of the preceding claims further comprising a sheet of dielectric
material transparent to microwaves, located on the internal face and/or on the external
face of the side wall (5) of the drum (1) and on the slots (8).
12. Device according to any of the preceding claims, wherein the microwave filters (3)
additionally comprise tuning elements (17) located in the microwave filters (3) for
adapting the microwave emitter (2) to the material to be heated.
13. Device according to claim 12, wherein the tuning elements (17) are automatically movable
and insertable by means of artificial intelligence and an electronic board and according
to data obtained through sensors associated with the microwave emitters (2).
14. Device according to any of the preceding claims, wherein the rotating drum (1) comprises
transversal blades (18) made of dielectrics transparent to microwaves or metallic
materials and attached to the internal face of the side wall (5).
15. Device according to any of the preceding claims, wherein the fixed filter (3) rests
on the side wall of the rotating drum to provide greater electromagnetic isolation
and/or to give greater mechanical stability against vibrations from the dryer.