SYSTEM FOR TRANSFERRING MASS WITH THE CAPTURING OF SOLIDS VIA THE INDUCTION OF AN ELECTROMAGNETIC FIELD
20190134555 · 2019-05-09
Inventors
Cpc classification
B01D47/18
PERFORMING OPERATIONS; TRANSPORTING
B01D47/021
PERFORMING OPERATIONS; TRANSPORTING
F24F2006/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F6/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D53/18
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D47/18
PERFORMING OPERATIONS; TRANSPORTING
F24F6/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a system for transferring mass with the capturing of solids via the induction of an electromagnetic field, comprising a plurality of cells formed in a plurality of discs forming an assembly of means for generating a membrane and electromagnetic field. The liquid membranes formed in this assembly collapse upon contact with a gaseous current. The collapsed liquid material covers the suspended particles and removes same via decanting, and the cells of the membrane also increase the speed of the gaseous current and cause same to impinge on the surface of the liquid, thereby improving the transferral of the vapour to the gas. The system also has means for generating an electromagnetic field that are electrically energised in order to provide an electromagnetic field to the assembly, such that the solids circulating after the rupture of the liquid membrane are attracted to each disc depending on the ionic behaviour thereof. The system also has means for capturing solids that are radially adjusted in the space between discs, and means for removing solids that are adjusted to the capturing means for removing or carrying the captured solids.
Claims
1. A mass transfer system with the capturing of solids via electromagnetic field induction, comprising: a housing base containing a liquid, a housing cover having supply and ejection slots thereon, an air convection means, a solids capturing means, a solids removal means; and a membrane and electromagnetic field generation means assembly comprising a plurality of membrane cells formed from a plurality of assembly disks and strips; wherein the disks have a plurality of slots and a plurality of holes having a perimeter suitable for formation of a liquid membrane; wherein the center of said disks define a chamber within the assembly; the system characterized in that: the base, a portion of said base, or only the liquid contained in the base receives an electric charge; the disks have a means for generating an electromagnetic field that is electrically energized through mechanical rotation means to provide an electromagnetic field to the means assembly, so that the surrounding solids after the rupture of the liquid membrane are attracted to the disk depending on its ionic behavior; wherein the system further comprises: solids capturing means fitted radially within the space between the disks, without blocking the assembly strips; and solids removal means fitted to the capturing means for removing or dragging said captured solids.
2. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the system has an upper cover, an internal deflector, a front deflector and a rear deflector.
3. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the electric charge on the base, a portion of said base or just in the liquid contained in the base is a negative charge.
4. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the electromagnetic field generation means is electrically energized preferably with a positive ionic charge.
5. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the material of the base and cover must not react chemically with said gas or liquid, nor with the solids that are transferred or collected.
6. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the air convection means comprises any means to force air or gas convection inside the system.
7. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the air convection means can be selected from an axial fan, a plunger, a turbine, a radial fan, a blower, a compressor, and an intermittent or continuous external airstream, or airstream from a pipeline.
8. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the holes are oval in shape.
9. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the perimeter of each hole has a tooth shape.
10. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the membrane and electromagnetic field generation means is a cylindrical arrangement.
11. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the electromagnetic field generation means are cables of a conducting material.
12. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the shape and arrangement of said electromagnetic field generation means is undulated on the disk surface.
13. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the electromagnetic field generation means is arranged in an alternating manner with said holes.
14. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the assembly strips are comprised of rectangular plates with slots thereon matching the slots of the disks.
15. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the disks can be polygonal in shape.
16. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the membrane cells are formed within the spaces between said disks and strips.
17. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the membrane cells are in the shape of an irregular cube with one of its faces widened.
18. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the solids capturing means is comprised of strip-shaped rubberized collectors joined by a main body of the collector, which in turn is in contact with a channel.
19. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the solids removal means is an endless screw.
20. The mass transfer system with the capturing of solids via electromagnetic field induction according to claim 1, wherein the solids removal means directs the solids towards an external hopper.
21. A method of mass transfer with solids capturing of the system of claim 1, said method characterized in that it comprises the steps of: immersing at least one of said plurality of membrane cells in the liquid; forming a liquid membrane for at least one of said plurality of membrane cells when said at least one membrane cell passes through the liquid; collapsing the liquid membrane when the liquid membrane is put into contact with the gas stream; capturing the surrounding solids after the liquid membrane is ruptured by an electromagnetic field to attract them to the disk depending on its ionic behavior; and ejecting the gas stream and removing the captured solids.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION OF THE INVENTION
[0025] According to
[0026] The base (1) and cover (2) forming together the housing can be made of any material, such as, for example, metal, glass, wood or plastic. The base (1) allows for holding the liquid, with or without suspended solids, which will be treated by the system. The base (1), a portion of said base (1), or just the liquid held in the base (1) receives an electric charge, preferably a negative charge, which allows for capturing solids. The cover (2) has also supply slots (21) and ejection slots (22) thereon, through which gas enters and exits the system, respectively. Furthermore, cover (2) gives support to a hopper (29), which embodies a part of the solids capturing and collection system. Preferably, the material of the base (1) and cover (2) should not react chemically with said gas, liquid, or the solids that are transferred or collected.
[0027] The air convection means (7) comprises any means to force air or gas convection inside the system.
[0028] The air is forced to pass through the membrane and electromagnetic field generation means (10), which is best shown in
[0029] In addition, the disks (12) also have electromagnetic field generation means (125) to attract metal ions according to the specific polarity in each specific case. Preferably, said electromagnetic field generation means (125) are made up of cables of a conducting material. The shape or arrangement of said means (125) on the disk (12) surface is undulated, as illustrated, but other kinds of configurations are contemplated as well. Preferably, the electromagnetic field generation means (125) are disposed in an alternating configuration with the holes (122), as illustrated in
[0030] As seen in
[0031] Now, turning to
[0032] During its operation, the membrane and electromagnetic field generation means (10) rotate, so each membrane cell (11) undergoes cyclically the following steps: immersion in the liquid, membrane formation, membrane rupturing, solids capturing, and removal of humid air and solids.
[0033] During immersion, the membrane and electromagnetic field generation means (10) are partially immersed in the liquid contained in the base (1) up to a determined level. Due to its rotation, the membrane and electromagnetic field generation means (10) are immersed in the liquid of base (1), so that the liquid covers completely the cells (11).
[0034] During membrane formation, the disk (12) rotates so that the cells (11) that were immersed now emerge and the liquid drains back to the base (1). Due to the surface tension of the liquid, aqueous membranes are generated in each cell (11) emerging from the liquid surface. According to
[0035] In the membrane-rupturing step, an aqueous membrane is formed from the liquid, and a gas or airflow impinges thereon. The membrane collapses spraying itself into thousands of particles. Particles suspended on air are trapped by the membrane spray and decanted. Cells (11) provide space and time to allow for the sprayed particles, still dispersed in air, to precipitate and agglutinate together. During membrane rupture, suspended solids, both in air or liquid, are directed towards the membrane edges, so they are closer or in contact with any surface of disk (12) as a result of decantation due to the saturation they underwent at the time of membrane rupture. Once the gas stream impinges on the liquid surface, it absorbs an amount of liquid, and the gas enriched with the liquid particles is directed towards the exterior.
[0036] On arriving to the solids capturing stage, an electric pulse is run through the electromagnetic field-generation means (125) to provide an electromagnetic field to the assembly means (10), so that the surrounding solids, after the membrane rupture, are attracted to the disk (12), depending on its ionic behavior. Similarly, the solid particles and pollutants present in the gas stream, are decanted as a result of the saturation they were subjected to during membrane rupture, wherein the suspended particles are trapped, their weight is increased, and then precipitated.
[0037] Finally, in the stage of humid air and solids ejection, the liquid particles from the collapsed membrane are transferred to the air stream and thus humidifying it. Alternatively, fragrances or disinfectant agents can be added, so these can be transferred also to the air stream. The resulting airflow from the process exits completely clean, humidifying and aromatizing the environment. The liquid spraying due to membrane rupture, promotes liquid transference to the gas stream. The membrane cells (11) have an inlet area, which is greater that the outlet area, thereby due to said feature, the gas stream exits at a higher rate than it enters. Due to the shape of the membrane cells (11), similar to an ejector, the air stream entering the membrane cell (11) is accelerates and directed, at a higher velocity, towards the liquid surface inside the chamber (15). The air is directed towards the liquid surface at an optimum angle, of about 45, impinging on the surface and absorbing another portion of liquid. It is worth to mention that the airflow can be controlled by calculating the cell sizes and the rotation velocity of the membrane and electromagnetic field generation means (10). The slots (22) on the cover (2) are arranged in order to homogenize the outlet stream of humidified air.
[0038] On the other hand, solids attracted to the disk (12) surfaces, due to the electromagnetic field generation means (125), are captured and directed by the rubberized collectors (81), towards the main body of the collector (82). The solids attracted and captured are further directed to the channel (89) where the solids removal means (9) will remove the solids and direct them to the hopper (29) outside the system's housing cover (2).
[0039] The mass transfer system with the capturing of solids via electromagnetic field induction of the present invention further comprises electronic or electric control means (not shown) to switch on and off the equipment, the level of liquid, the fan's velocity, the rotation velocity of the membrane and electromagnetic field generation means (10), the electrical current supplied to the liquid, the pulse towards the electromagnetic field generation means (125), and the exit of the solids removal means (9), whereby the outlet gas composition, solids captured and removed, and the final composition of the resulting liquid are controlled.
[0040] As will be evident to one skilled in the art, the plurality of disks (12) is manufactured from any suitable material to allow for the formation of an aqueous membrane and capturing of solids by electromagnetic fields. For example, the disks can be made of certain metals that enables either the reaction of different solids, or arrangements of different types of disks (12) in order to boost the solids attraction and capturing possibilities by electrodialysis.
[0041] Likewise, it will be evident to one skilled in the art, that the type of gas, liquid and solid used comprise any type as desired and it depends on the application. For example, in a non-exhaustive manner, the mass transfer system with the capturing of solids via electromagnetic field induction of the present invention can be used in seawater desalination applications for industrial, commercial or utility usage; desalination of brine and high-salinity industrial waste; pollutants removal and metal recovering in the mine industry, primarily copper, iron and nickel; generation of controlled environments in greenhouses; air humidification in closed environments, with or without fragrances or bactericidal agents; removal of airborne particles in highly contaminated environments; removal of copper salts in the agricultural industry; and, in general, in any air, liquid, and/or solid filtering system.