The invention concerns an oil mist separator for separating off liquid suspended particles from a carrier gas, in particular crankcase ventilation gas of an internal combustion engine, including a housing having at least one inlet opening for introduction of the carrier gas and at least one outlet opening for discharge of the filtered carrier gas, wherein arranged in the housing is at least one filter insert through which the carrier gas can flow along a flow direction.
It is known that in operation of an internal combustion engine so-called blow-by gases are produced, which are to be discharged from a crankcase of the internal combustion engine to avoid an increase in the pressure in the crankcase and to prevent unwanted escape of blow-by gas and oil contained therein. In the closed crankcase ventilation system that crankcase venting gas or the carrier gas which includes oil and which results from the blow-by gases in the crankcase is recycled to an air inlet of the internal combustion engine, wherein the pressure in the crankcase is usually kept within predetermined component limit values. The carrier gas however contains fine oil droplets and solid particles of an order of magnitude of between about 0.1 μm and 10 μm.
To avoid negative effects of that oil which is contained in the carrier gas on components in the air inlet of the internal combustion engine it is already known for the oil and the solid particles to be separated off from the carrier gas. For that purpose inter alia filter devices as set forth in the preamble of claim 1 are used, which include filter inserts comprising a wire mesh or knitted wire mesh, through which the carrier gas can flow. By virtue of the underlying separation mechanisms and the structure-governed design configuration of such a wire mesh or knitted wire mesh however such filter devices achieve only a limited degree of separation when small drop or particle sizes are involved (in particular in the particle size range of <1 μm). Therefore it is possible to use, connected downstream of the filter device, a fine filter (for example a coalescer filter) which can filter out smaller oil droplets than the separating filter.
Oil mist separators are known, for example, from CN 201198776 (Y), JP 2010248934 (A), JP 2001200713A.
The object of the invention is to provide a filter device which is improved over the state of the art.
According to the invention that object is attained by a filter device having the features of claim 1. Advantageous configurations of the invention are recited in the appendant claims.
According to the invention it is therefore provided that the at least one filter device can be arranged releasably in the oil mist separator, wherein a—preferably substantially peripherally extending—seal is provided preferably between a first fixing surface of the oil mist separator and a second fixing surface, to be fixed thereto, of the filter device.
It is possible in that way to avoid by-passing of the filter device by components of the carrier gas.
To increase a flow speed of the carrier gas and/or to achieve a prolonged—preferably labyrinth-like—flow path for the carrier gas through the at least one filter insert it is provided at least one guide device by which the flow path can be deflected.
A guide device arranged along the flow direction provides for a reduction in the flow cross-section available to the carrier gas, to a correspondingly reduced cross-sectional area through which the carrier gas can flow. That cross-sectional reduction leads to an increased flow speed for the carrier gas and thus increased oil separation in the filter insert. Deflection of the carrier gas at the guide devices means that it is possible to implement increased oil separation, in particular with a correspondingly increased flow speed for the carrier gas—of for example more than 0.9 m/s.
It can preferably be provided that the at least one guide device is in the form of a—preferably plate-shaped—baffle. In that case the at least one guide device can be mounted to the housing, preferably by welding, adhesive or screwing, and can define at least one opening forming a cross-sectional area through which the carrier gas can flow. In that case the cross-sectional area which is formed by the at least one opening and through which the carrier gas can flow can extend in the case of the plate-shaped baffle parallel to the plane of the plate. Particularly when using plate-shaped guide devices the filter inserts can simply be inserted into the housing and do not necessarily themselves have to be joined or sealed to the housing.
In a preferred variant it can be provided that the at least one filter insert is formed from a woven material, a mesh material, a knitted material, a fabric or a fleece made up of at least one filter wire or at least one filter fiber of a diameter of less than 0.2 mm, preferably less than 0.1 mm. With small drop sizes the degree of separation of the filter insert depends on the diameter of the filter wires or the filter fibers. Small wire or fiber diameters increase the degree of separation provided by the filter insert.
It can preferably be provided that a proportion by volume of the at least one filter wire or the at least one filter fiber in the filter insert is between about 2% and 5%, preferably being substantially 4%. Depending on the respective choice of the proportion by volume of the filter wires or filter fibers, it is possible to influence the degree of separation provided by the filter insert. An increased proportion by volume however will cause an increased pressure drop across the filter insert. It is therefore appropriate, when dimensioning the proportion by volume of the filter wires or fibers and in dimensioning of the increased flow path caused by the at least one guide device, to take account of possibly predetermined limit values for a maximum pressure drop through the filter device.
Particularly effective separation of oil from the carrier gas can be achieved by the proposed dimensioning of the filter insert. Tests conducted by the applicant have shown that, with the proposed dimensioning, it is possible to bring about a great reduction in the mass of oil contained in the carrier gas, whereby the oil loading for downstream-connected fine filters like for example coalescer filters can be considerably reduced. That increases the service life of the downstream-disposed fine filters which have to be regularly changed by virtue of their oil loading.
In a particularly preferred embodiment it can be provided that the at least one filter wire or the at least one filter fiber at least partially and preferably substantially completely comprises metal, preferably high-quality steel or aluminum. In other words therefore it can be provided that the filter insert is formed from a metal mesh.
A particularly good filter action can be achieved if suitable dimensioning of the at least one guide device and thus the cross-sectional areas resulting therefrom and through which the carrier gas can flow in the at least one filter insert can provide an increased flow speed for the carrier gas of at least 0.6 m/s, preferably at least 0.9 m/s. The cross-sectional area through which the carrier gas can or does flow can in that case be a cross-sectional area which extends transversely to a flow path for the carrier gas through the filter insert and through which the carrier gas can flow through the filter insert.
The increased flow speed of the carrier gas in the filter insert, that is caused by the arrangement and dimensioning of the guide devices, should however be below the so-called flooding point of the filter insert, that is to say below that speed as from which drops are carried out of the filter insert.
According to a preferred configuration it can be provided that a plurality of filter inserts are arranged in succession along the flow direction. In that case, to achieve a prolonged, preferably labyrinth-like, flow path for the carrier gas through the plurality of filter inserts at least one guide device is arranged at least between two of the successively arranged filter inserts, preferably between all of the successively arranged filter inserts.
A preferred embodiment is that in which openings delimited by the guide devices are arranged in mutually displaced relationship considered in the flow direction, wherein preferably the cross-sectional areas formed by the openings and through which the carrier gas can flow are of substantially equal size. The displaced arrangement of the openings of the respective guide devices provides a labyrinth-like structure in relation to the flow path of the carrier gas through the filter device, the labyrinth-like structure correspondingly increasing the length of the flow path. If the cross-sectional areas through which the carrier gas can flow are of substantially equal size it is possible to achieve a carrier gas flow speed that remains the same, through the individual filter inserts.
Depending on the respective situation of use however it may also be appropriate to alter the cross-sectional areas through which the carrier gas can flow and thus the flow speed of the carrier gas along the flow path. Thus for example it can be provided that the flow speed is increased by dimensioning of the openings in the transition from the first to the second filter insert (considered in the flow direction) and to reduce it again on issuing from the second filter insert.
A variant which is particularly simple to manufacture from the structure point of view can provide that the housing is of a substantially cuboidal configuration, wherein the housing has a length, a width and a height. It can preferably be provided in that case that the length to the width has a ratio of between about 1:1 and 1:2 and/or the length to the height has a ratio of between about 2:1 and 3:1. Depending on the respective situation of use the housing is equipped with filter inserts to a greater or lesser degree. It can thus be provided that the length of the housing in relation to an overall filter insert height of all filter inserts in the housing has a ratio of between about 2:1 and 10:1. In other words it can certainly be provided that only a part of the housing height is also actually equipped with filter inserts—preferably starting from the at least one inlet opening of the housing—and the remainder of the housing remains empty.
Generally it can be provided that an inlet area of the at least one inlet opening of the housing transversely relative to the flow direction and/or cross-sectional areas which are formed by guide devices and through which the carrier gas can flow transversely relative to the flow direction is or are at least 10% and/or at a maximum 40%, preferably at a maximum 30%, of an internal housing cross-section transversely relative to the flow direction. It is possible in that way to achieve an increased flow speed for the carrier gas and thus increased oil separation in the filter insert.
It can preferably be provided in that case that the at least one filter device is arranged inclinedly relative to the vertical, wherein the flow direction through the filter device includes with the vertical an angle of between about 30° and 90°, preferably substantially 45°. It is particularly desirable if an inlet opening of the filter device extends inclinedly relative to the vertical at least portion-wise in the mounted position, preferably as far as a lower end of the filter device in relation to the vertical. In that case the inlet opening can preferably extend along a wall of the housing of the filter device, wherein a lower edge of the housing wall includes with the vertical an angle of between about 30° and 90°, preferably substantially 45°. It can preferably be provided in that respect that the guide devices in the filter device are also correspondingly arranged inclinedly relative to the vertical by for example extending parallel to the plane of the inlet opening.
Arranging the filter device of the oil mist separator, inclinedly relative to the vertical, means that it is also possible to achieve a specifically targeted discharge flow of the separated oil along the guide devices or baffles back to the inlet opening of the filter device on the raw gas side. In that case the discharge flow can be effected along the guide devices by virtue of the force of gravity whereby the discharge flow characteristic can be improved as the oil return flow and the gas flow of the carrier gas extend separately from each other.
It can preferably be provided that the oil mist separator has a first housing chamber upstream of the at least one filter device in relation to a flow path of the carrier gas, which first housing chamber has an increased free flow area transversely relative to the flow path of the carrier gas in relation to an inlet area of the at least one inlet opening of the housing of the filter device. It can also be provided that the oil mist separator has a second housing chamber downstream of the at least one filter device in relation to a flow path of the carrier gas, which second housing chamber has an increased free flow area transversely relative to the flow path of the carrier gas in relation to an outlet area of the at least one outlet opening of the housing of the filter device.
In addition protection is also claimed for an internal combustion engine as set forth in claim 15, wherein preferably a proposed oil mist separator is arranged at the crankcase thereof.
Further details and advantages of the present invention are described by means of the specific description hereinafter. In the drawing:
The flow speed of the carrier gas 2 can be influenced by the choice of suitable sizes in respect of the inlet openings 4 and thus by the choice of a suitable inlet area 20, wherein preferably the inlet openings 4 or the inlet area 20 are so selected that the flow speed of the carrier gas 2 through the filter insert 6 is at least 0.6 m/s, preferably at least 0.9 m/s. The thickness of the filter insert 6 or the spacing 25 between inlet openings 4 and guide devices 9 considered in the flow direction 7 is so selected in this example that the resulting cross-sectional area through which the carrier gas 2 can flow, transversely relative to the flow path 16 through the filter insert 6, is substantially half as large as the inlet area 20 formed by the two inlet openings 4. The cross-sectional area 11 which is formed by the opening 12 or the outlet opening 5 and through which the carrier gas 2 can flow is in this example selected to be of substantially the same size as the inlet area 20 (formed by the two inlet openings 4) so that a flow speed for the carrier gas 2, that remains substantially the same, is set along the flow paths 16 through the filter insert 6.
In the illustrated example the guide devices 9 between two respective filter inserts 6 are arranged at a spacing 25 in the flow direction 7 on the housing 3. By a suitable choice of inlet area 20, cross-sectional areas 11 through which the carrier gas 2 can flow and spacings 25 between the guide devices 9, it is possible to influence the flow speed of the carrier gas 2 with a given volume flow of the carrier gas 2. Depending on the respective situation of use like for example an internal combustion engine to be equipped with a filter device 1 it is therefore possible to adapt the values, which are structurally particularly simple to influence, for the inlet area 20, the cross-sectional areas 11 through which the carrier gas 2 can flow and the spacings 25, to achieve an optimum filter action. In particular, by matching adaptation of those values, it is possible to provide filter devices 1 for a broad range of different internal combustion engines which can all involve the same external casing dimensions.
Arranged in the oil mist separator 14 is a filter device 1 through which the carrier gas 2 flows along a flow direction 7. In this case an oil contained in the carrier gas 2 is at least partially separated off. By virtue of a suitably inclined arrangement of the filter device 1 so that the flow direction 7 through the filter device 1 is inclined at an angle 23 relative to the vertical the oil which is separated out in the filter device 1 can be discharged in specifically targeted fashion, for example at one of the inlet openings 4 of the filter device 1. In the illustrated example the angle 23 is about 45° relative to the vertical.
Upstream and downstream of the filter device 1 the oil mist separator 14 shown here has calming zones for the carrier gas 2 in the form of a first housing chamber 26 and a second housing chamber 27. Both the first housing chamber 26 and also the second housing chamber 27 respectively have a free flow area which is increased in comparison with the inlet area 20 of the at least one inlet opening 4 of the filter device 1 and the outlet area of the at least one outlet opening 5 of the filter device 1 respectively, transversely relative to the flow path of the carrier gas. By virtue of the flow speed of the carrier gas 2 being reduced in that way, it is possible on the one hand for large oil drops to be already separated out of the carrier gas 2 upstream of the filter device 1 in the first housing chamber 26, while on the other hand oil drops in the second housing chamber 27 downstream of the filter device 1 are not entrained by an excessively high flow speed of the carrier gas 2.
Subsequently the carrier gas 2 which is pre-filtered in the oil mist separator 14 is fed to the fine filter 22, whereupon it is recycled to the air inlet 24 of the internal combustion engine 15 by way of a third housing chamber 28 of the oil mist separator 14.
Number | Date | Country | Kind |
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773/2013 | Oct 2013 | AT | national |