The invention relates to a system for gas cleaning which has at least one housing with a first chamber into which the gas to be cleaned can flow, and with a second chamber from which the cleaned gas emerges, between the aforementioned chambers there being a filter device through which a gas can flow, and which has filter media both for separation of the solid particles and also for dehydration of the gas by precipitation of coalesced liquid.
Systems of this type are known which are designed to eliminate not only dirt due to solid loading, but also to remove the pertinent gaseous media, and if the liquid particles coalesce on the filter device which is located within the housing, are also called coalescers. These systems are often used in conjunction with exhaust gas-generating processes, exhaust gas flows with comparatively high temperatures and optionally with very high pressures being handled.
The object of the invention is to make available a system of this type which has not only especially good cleaning action, but moreover also ensures very extensive dehydration.
This object is achieved according to the invention by a system which has the features of claim 1 in its entirety.
In that, as specified in the characterizing part of claim 1, there is an arrangement for preliminary dehydration, through which the gas flows before it flows into the actual coalescer housing, the gas is in the preconditioned state which promotes residual dehydration by coalescence on the respective filter medium. This yields extensive dehydration such that the cleaned gas can optionally by returned to the process.
Preferably the arrangement for preliminary dehydration is located on or in the housing of the filter device.
In advantageous embodiments the arrangement for preliminary dehydration has at least one cyclone. The use of a cyclone leads to a durable and reliable construction since no moving parts are necessary.
Embodiments in which the pertinent cyclone is integrated into the housing which also contains the coalescer, is characterized by an especially compact construction.
The housing in the normal installation position preferably defines a longitudinal axis which runs at least partially vertically, the first chamber being located in the lower section of the housing and being bordered laterally by a circular ring surface which is preferably concentric to the longitudinal axis. On the housing there can be an inflow opening for the gas which is to be cleaned, such that the gas is tangentially incident on the circular ring surface, so that the circular ring surface forms a cyclone for preliminary dehydration.
In these embodiments the housing on the lower end can be closed off by a collecting tank which holds the liquid which has been precipitated during preliminary dehydration.
The arrangement there can be made such that between the collecting tank and the circular ring surface of the cyclone there is a floor part which forms a drain funnel for the liquid which has precipitated on the cyclone as the lower boundary of the cyclone.
Preferably the housing can hold a filter device which extends along its longitudinal axis and which is made such that for the gas to be cleaned it provides an inner cavity which is surrounded by the filter media, between their exterior and the inside wall of the housing the second chamber being located which the cleaned gas enters after it has flowed out of the inner cavity of the filter device through the filter elements to the outside.
On the top end of the circular ring surface which forms the cyclone the housing can have a floor which separates the first chamber from the second chamber and on which a seat is made which forms a passage and into which a connection sleeve of the filter device can be inserted, which sleeve leads into the interior cavity of the filter device and via which the gas which has been dehydrated beforehand flows from the cyclone into the cavity of the filter device.
Above this floor, that is, in the region which belongs to the second chamber, the housing can have a widening which forms a chamber for collection of the fluid which has coalesced on the filter device and which can be removed from the chamber via an evacuation opening which is provided in the wall of the housing.
The invention will be detailed below using one embodiment which is shown in the drawings.
The invention will be explained below using one embodiment in which two coalescer housings 1 are used which are made identical except for the arrangement of the housing openings which is in mirror image. A transfer fitting 3 which in the manner conventional in the technology enables transfer of the gas flow supplied to the housings 1 and of the gas flow emerging from them is assigned to the housings 1 such that one housing 1 or the other is activated in alternation. As is to be seen in
The housing 1, on the opposite, lower end, is closed off by a collecting tank 25 which is screwed to it, likewise sealing elements 27 forming a pressure-tight seal between the collecting tank 25 and the housing 1. On the bottom the collecting tank 25 has an evacuation opening 29.
The different longitudinal sections of the interior of the housing 1 are each made circularly cylindrical, the interior of the housing 1 being divided fundamentally into two chambers, specifically a first chamber 31 which is connected to the inflow opening 11, and into which the gas to be cleaned flows, and a second chamber 33, see
The first chamber 31 and the second chamber 33 are separated from one another by a filter device 35 through which the gas can flow and which is schematically shown in
The part of the first chamber 31 which directly adjoins the inflow opening 11 forms a cyclone for preliminary dehydration of the gas. For this purpose the inflow opening 11 is aligned to an inner circular ring surface 37 of the housing 1 such that the gas flow which is entering via the inflow opening 11 is incident on the circular ring surface 37 such that a cyclone effect is created which causes preliminary dehydration as a result of the centrifugal forces which are acting on the flow which is running along the circular ring surface 37.
As shown by
Above the circular ring surface 37 the housing 1 has a floor 43 which separates the first chamber 31 from the second chamber 33, and on which a seat 47 is made which forms a passage 45 and a receiver for the connection sleeve 48 (see
As has been shown, especially good dehydration action of the cyclone occurs when there is a relief-like profile in the form of a spiral on the wall which is bordered to the top by the cyclone chamber or flow chamber. As is apparent from
As is shown in
As
While the invention is described using one example in which two coalescer housings 1 can be operated in alternation by actuating a transfer fitting 3, it goes without saying that a different system structure with only one coalescer housing or a different number of housings can be provided. Instead of a cyclone which has been integrated into the housing 1, preliminary dehydration could take place differently, for example with one or more cyclones connected upstream from the housing. The use of cyclones connected next to one another can likewise be provided, especially in cases in which gas flows of different volumetric flows or different flow velocity must be handled.
Number | Date | Country | Kind |
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10 2005 062 245.3 | Dec 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2006/008805 | 9/9/2006 | WO | 00 | 4/22/2008 |