The present invention relates to a vacuum cleaner hose for connecting to a wet and dry vacuum cleaner, wherein the vacuum cleaner hose has an inner lumen extending in the longitudinal direction.
Vacuum cleaner hoses of the type stated at the outset are known in principle from the prior art and are used to extract dirt particles during cutoff grinding, for example. In this case, for example, a cutoff grinder is connected via the vacuum cleaner hose to a wet and dry vacuum cleaner.
It is an object of the present invention to provide a vacuum cleaner hose which promotes an improved suction behavior.
The present invention provides a flow guiding geometry is formed within the lumen or adjoining the lumen, by means of which a suction flow occurring during the operation of the wet and dry vacuum cleaner can be influenced.
The invention incorporates the insight that a vacuum cleaner hose, particularly a spiral hose, of a wet and dry vacuum cleaner causes very high pressure and flow losses owing to its geometry. These losses are primarily caused by a high wall friction and severe edge swirling transversely to the hose axis. These losses impair the overall efficiency of the wet and dry vacuum cleaner considerably.
By virtue of the flow guiding geometry formed within the lumen according to the invention, it is advantageously possible to achieve a longitudinal vortex form and thus centering of the suction flow, which promotes media transfer with relatively low losses overall.
In a preferred embodiment, the flow guiding geometry extends inward in the radial direction.
The flow guiding geometry can extend or be distributed over the total length of the vacuum cleaner hose. The flow guiding geometry preferably extends or is distributed in the form of a spiral over the total length of the vacuum cleaner hose. Thus, an advantageous longitudinal vortex can be maintained over the total length of the hose.
In another preferred embodiment, the flow guiding geometry has a plurality of discrete profiled bodies. As an alternative or in addition, the flow guiding geometry can have a continuous web or channel.
It has proven advantageous if the flow guiding geometry has a pyramidal or barrel-shaped cross section.
As a particular preference, the flow guiding geometry is welded to an inner surface of the vacuum cleaner hose.
In another preferred embodiment, the flow guiding geometry is formed by an inwardly arched portion or indentation of the hose outside oriented into the hose interior.
The vacuum cleaner hose is preferably composed of plastic. The vacuum cleaner hose can have a substantially constant outside diameter. In this context, “substantially” is intended to mean a constant outside diameter without taking into account any external ridging of the spiral hose.
In one particularly preferred embodiment, the vacuum cleaner hose is designed as a spiral hose. Within the vacuum cleaner hose, an inner hose or an inner tube can be formed which extends over the total length of the vacuum cleaner hose and on the inner surface of which the flow guiding geometry is formed.
The present invention also provides a suction system having a wet and dry vacuum cleaner and a vacuum cleaner hose of the type described above.
Further advantages will become apparent from the following description of the figures. Various exemplary embodiments of the present invention are illustrated in the figures. The figures, the description and the claims contain numerous features in combination. A person skilled in the art will expediently also consider the features individually and combine them to form expedient further combinations.
In the figures, identical components and components of identical type are designated by the same reference signs.
In the Figures:
The vacuum cleaner hose 10 has an inner lumen 1 extending in the longitudinal direction L. In
According to the invention, a flow guiding geometry 2 is formed within the lumen 1, by means of which a suction flow S occurring during the operation of the wet and dry vacuum cleaner 100 can be influenced.
The vacuum cleaner hose 10 has a constant outside diameter AD over its total length GL (cf.
As can likewise be seen from
In this case, the discrete profiled bodies 3 are welded to an inner surface of the vacuum cleaner hose 10. By way of example, the vacuum cleaner hose 10, together with the discrete profiled bodies 3 forming the flow guiding geometry 2, are composed of plastic.
When
As already mentioned, the vacuum cleaner hose 10 has a constant outside diameter AD over its total length GL. The vacuum cleaner hose 10 is preferably designed as a spiral hose, although this is not illustrated in
When
Third exemplary embodiments of a vacuum cleaner hose 10 according to the invention are illustrated in
It is readily apparent in
In this case, the vacuum cleaner hose 10 has a constant outside diameter AD. Apart from the continuous web 4, the inside diameter ID is furthermore constant over the total length GL of the vacuum cleaner hose 10.
A flow guiding geometry 2, by means of which an occurring suction flow S can be influenced, is formed within the lumen 1. In this case, the flow guiding geometry 2 is formed by a continuous web 4, which extends in the form of a spiral over the total length GL of the vacuum cleaner hose 10.
In contrast to the exemplary embodiments in
Number | Date | Country | Kind |
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18163235 | Mar 2018 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/056384 | 3/14/2019 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/179867 | 9/26/2019 | WO | A |
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Entry |
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International Search Report of PCT/EP2019/056384, dated Jun. 17, 2019. |
Number | Date | Country | |
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20210113043 A1 | Apr 2021 | US |