This nonprovisional application is a National Stage of International Application No. PCT/EP2020/080868, which was filed on Nov. 4, 2020, and which claims priority to German Patent Application No. 10 2019 129 608.0, which was filed in Germany on Nov. 4, 2019 and German Patent Application No. 10 2019 106 106.5, which was filed in Germany on Nov. 4, 2019, and which are all herein incorporated by reference.
The present invention relates to an extraction system for polluted air, in particular for air polluted with grinding dust or welding smoke.
During material processing, in particular by grinding, welding, soldering, cutting and engraving, dust or smoke is released and is inhaled by the respective operator or by other persons in the vicinity. The polluted air often consists of a mixture of gas and fine dust as well as smoke and particles. Such constituents, which are harmful to health, are filtered out of the ambient air by means of an extraction system. The extraction systems used according to the prior art are typically of largely monolithic construction and therefore take up quite a large amount of space, which makes their transport to the place of use comparatively expensive. In addition, conventional extraction systems have only limited scalability and expandability.
The object of the invention is therefore to specify an extraction system which is readily transportable and easily scalable or expandable.
This object is achieved with the extraction system having the features of the present invention.
The extraction system according to the invention for polluted air has a circumferential side wall, the side wall having at least four detachable side wall elements. As a result, the extraction system according to the invention can be packed compactly for transport, and a small transport size can thereby be obtained.
A further advantage of the extraction system is that the extraction system can be set up in a modular fashion. This means that, by virtue of the detachable side wall elements of the circumferential side wall, the extraction system can be expanded as required and adapted to the respective location of use. In particular, it is possible here for the extraction system to be expanded as required in terms of structural height and structural area in a modular fashion.
The extraction system can comprise an electrically operated fan for sucking in ambient air, a filter for cleaning and filtering the ambient air sucked in, and a discharge device. The discharge device serves to separate particles or to remove the particles, filtered out of the ambient air, from the system. The side wall elements at least partially enclose these components and support a guided flow of the sucked-in air through the extraction system.
In the extraction system according to the invention, depending on the application, electrically operated fans with corresponding power ratings can be used. This makes it possible to suck different amounts of air into the extraction system depending on the application and on the location of use. It is expediently possible to design the electrically operated fans in such a way that they can be used over an adjustable power range. It is thus possible, where necessary, to reduce or increase the amount of air that is sucked in.
Various filtration methods can be used to filter and purify the air that is sucked in. It is thus possible to operate the extraction system according to the invention with regenerative filter elements. However, exchangeable filter elements can also be used. Another possibility is to use wet separators. Which filtration method is used usually depends on the type of particles that are intended to be removed from the air that is sucked in. The extraction system according to the invention is designed in such a way that the filter methods can be used interchangeably. In other words, depending on the application, a filter for one of the stated filter methods can be built into the extraction system according to the invention.
In one variant, the extraction system is designed in such a way that at least one side wall element has one or more access openings, which can be closed by means of a door element, e.g. a cover. This permits simple maintenance of the components arranged within the extraction system. Furthermore, through such accesses to the interior of the extraction system, which are also referred to as service openings, it is possible to repair or replace components within the extraction system.
In a further embodiment of the invention, a side wall element of the extraction system is designed with a trough shape. The side wall element has an edge-shaped, outwardly directed fold. A side wall element can be produced from a substantially rectangular surface element with two long sides and two broad sides. Edge regions of the two long sides and edge regions of the two broad sides of the surface element are here bent or folded with respect to a base surface of the side wall element. The fold also serves for connection of the individual side wall elements, which can be a screw connection or plug connection. For this purpose, the folds have corresponding recesses or projections.
However, it is also possible for the side wall element to have an edge-shaped profile which has circumferential elevations to the outside. In the case of an edge-shaped, outwardly directed fold, the side wall element can be formed in one piece. In the case of an edge-shaped profile, the side wall element can also be designed in several pieces.
One advantage here is that, in the interior of the extraction system, the side wall elements form a flat surface without projections or steps, as a result of which turbulence in the air flowing through the extraction system is avoided. In other words, because the fold of the side wall element points outward, mutually adjoining side wall elements can be connected to one another in such a way that a homogeneous transition is created between the respective side wall elements. In particular, this makes it easier to clean the interior of the system.
In a variant of the extraction system according to the invention, the side wall element has a base surface with an upper edge, a lower edge, and two side edges. The folds on the upper edge and also on the two side edges are here formed in a U shape with the base surface, and the fold on the lower edge is formed in an S shape with the base surface. The edge-shaped fold consists of a first portion and a second portion. In the case of a U-shaped fold, the first portion is folded by +90° with respect to the base surface. The second portion is folded by +90° in the same direction with respect to the first portion. The second portion thus lies opposite the base surface, as a result of which a U-shape is formed together with the first portion and the base surface.
In the case of an S-shaped fold, the first portion is folded by +90° with respect to the base surface, corresponding to the U-shaped fold. The second portion is folded by −90° in the opposite direction with respect to the first portion. The second portion is thus parallel to the base surface, but does not lie opposite the base surface. The base surface, the first portion and the second portion thus form an S-shape.
In a variant of the invention, two side wall elements are arranged one above the other, i.e. two side wall elements are arranged along the longitudinal axis of the extraction system. This makes it possible to obtain an extraction system with a greater height. Here, the S-shaped fold on the lower edge of the upper side wall element is designed in such a way that it at least partially engages around the U-shaped fold on the upper edge of the lower side wall element. In the interior of the extraction system, the transition from an upper side wall element to a lower side wall element arranged below is thus stepless. The air flowing in the interior of the extraction system can thus flow along the inner wall of the extraction system without turbulence.
In a further embodiment of the invention, a connection element is present for connecting at least two side wall elements. The connection element has a receiving region for receiving a portion of the fold of both side wall elements. When connecting two side wall elements which are arranged side by side and in which the folds lie parallel to one another, the connection element can have a groove as the receiving region. The two folds engage in this groove. The groove is designed in such a way that a clamping force acts on the two folds, as a result of which they are pressed against each other.
When connecting two side wall elements arranged perpendicular to each other, the receiving region of the connection element is designed in such a way as to receive the folds of the side wall elements arranged perpendicular to each other. The side wall elements are optimally fixed in this way. The receiving region can have a first groove for receiving the fold of one side wall element, and a second groove for receiving the fold of the other side wall element. A plug connection between side wall elements can thus be obtained. This ensures that the module can be assembled and disassembled quickly and easily. Furthermore, the parts that are needed to set up the extraction system are reduced, and therefore the assembly of the system is greatly simplified and more efficient.
The use of the described connection elements also affords further possibilities for realizing technical advantages. For example, the connection elements can be designed in such a way that the sharp outer edges resulting from the folds are concealed or covered, in particular having a rounded or polygonal cross section in the regions facing away from the system. This considerably reduces the risk of injury and also enhances the visual appearance of the system. Such connection elements, for example as rod material that can be cut to size, can be easily produced by plastic extrusion, for example.
In another embodiment, a corner angle element is present for screwing a first side wall element to a second side wall element, which is arranged perpendicular thereto.
In a further variant, the number of side wall elements along one long side of the extraction system is different from the number of side wall elements of the other long side, and/or the number of side wall elements along one broad side of the extraction system is different from the number of side wall elements of the other broad side. It is thereby possible that side wall elements on a long side or on a broad side can have different dimensions compared to the side wall elements on the respective other long side or broad side. One advantage here is that the extraction system can thus be better constructed in a modular fashion and can thus be specifically adapted to the particular location of use. Furthermore, the individual parts of the extraction system can be reduced.
Further scope of applicability of the present invention will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the invention, are given by way of illustration only, since various changes and modifications within the spirit and scope of the invention will become apparent to those skilled in the art from this detailed description.
The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
In the interior IR of the extraction system AA in the example shown, a compressor unit VE with compressor housing VG and compressor motor VM and a filter plate FP with filter cartridges PF (only partially visible) are arranged from top to bottom along the longitudinal axis LA. During operation, the compressor unit VE generates a negative pressure in the region above the filter plate FP, such that polluted outside air is conveyed through a suction opening AO formed in a side wall element SE, through the separator PA and through the filter cartridges FP and, in a cleaned state, after passing the compressor unit VE, leaves the extraction system AA through the exhaust cover AL. The baffle plate PB, arranged behind the suction opening AO in the direction of flow, prevents a situation where more solid particles in the air flow damage the cartridge filter PF, and it also ensures a certain turbulence of the polluted air entering the interior IR and thus, as a result, more uniform loading of the filter cartridges FP with particles.
The side wall element SE designed with the suction opening AO is designed, for example, in such a way that detection elements (not shown) for ambient air can be attached. In particular, it is possible that the opening of a hose or of a pipe (not shown) can be attached via the suction opening AO. This makes it possible to transport ambient air to be cleaned over a greater distance. This is necessary, for example, in cases in which the extraction system cannot be brought directly to the location where the polluted air arises.
The compressor unit VE, the filter plate FP and the discharge unit AE are connected to the side wall elements SE, which as a secondary effect also increases the stability of the extraction system AA. The connection can take place in particular by means of a screw connection or by means of a plug connection.
The four side wall elements SE form the long side LS and the broad side BS the extraction system AA. By way of example, the four side wall elements SE each have the same widths B. Of course, it is also possible that the side wall elements SE have different widths B, only a rectangular cross section of the extraction system AA having to be guaranteed.
A side wall element SE has a plurality of access openings ZO. Through these access openings ZO, the devices VE, FP and AE arranged in the interior IR of the extraction system AA can be serviced, or cartridge filters PF that have been used up can be replaced. The access openings ZO are closable by means of door elements TE.
The extraction system AA also has foot elements FE, which rest on a ground surface GF. This makes it possible for the extraction system AA to be optimally positioned according to its location of use.
It is of course possible that the foot element FE alternatively or additionally has rollers or wheels. This makes it possible to position the extraction system optimally and precisely and to move it quickly to a desired location of use.
The interior IR is closed off, on the underside of the extraction system AA, by two discharge units AE. However, it is also possible to arrange, on the underside of the extraction system AA, a single discharge unit AE which has a suitable size for closing off the interior IR at the bottom. For reasons of clarity, the further components of the extraction system AA that have been described with reference to
By the addition of side wall elements SE on the long sides LS and/or the broad sides BS of the extraction system AA, as shown in
A further example of a modular expansion of the extraction system AA is shown in
Of course, the illustrations in
In
On account of the outwardly directed folds AK of the side wall elements SE, the inner surface IO of the side wall elements SE forms a flat, stepless surface. In
In
It can also be seen from
The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.
Number | Date | Country | Kind |
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10 2019 129 608.0 | Nov 2019 | DE | national |
20 2019 106 106.5 | Nov 2019 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/080868 | 11/4/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/089577 | 5/14/2021 | WO | A |
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Entry |
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PCT Written Opinion for PCT Application No. PCT/EP2020/080868 dated Mar. 4, 2021—English translation. |
German Search Report for German Application No. 10 2019 129 608.0 dated Sep. 30, 2020 with English translation. |
Number | Date | Country | |
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20220388046 A1 | Dec 2022 | US |