The present invention relates to a device for determining at least one parameter of a medium flowing in a line.
A device for determining the mass of a medium flowing in a line is described in published German patent document DE 101 35 142, the device including a part capable of being introduced into the line in which a measuring channel with a measuring element is located. Devices of this nature are used, for example, as air-mass meters in the air-intake manifold of an internal combustion engine. Splash water, dust, and oil vapor can enter the air-intake manifold and be transported by the medium to the part of the device that is inserted in the line. To prevent these contaminants from entering the measuring channel, the device includes an inlet region that discharges into a separation zone, and a measuring channel that branches off from the inlet region, so that the media stream that entered the inlet region divides, and a partial stream reaches the inlet of the measuring channel. As a result, contaminants are prevented from reaching the inlet of the measuring channel. The measuring channel includes a bent section downstream from its inlet, in which the partial stream of the medium that entered the measuring channel undergoes redirection. A disadvantage of this is that the stream may separate in the area of the bend and produce zones having a slower flow velocity, or even a backflow. Eddies and an irregularly pulsating flow occur in the region when there is no contiguous flow. Since the bent section transitions into a further section equipped with the measuring element, the separation of the flow upstream from the sensor element has an unfavorable effect on the flow conditions at the sensor element, which can result in increased signal noise in the sensor signal. The resultant change in the sensor signal may result in a disadvantageous deviation of the measured results from the values that are actually present.
In contrast, a separation of the flow in the region of the bent section of the measuring channel is prevented by the device according to the present invention for determining at least one parameter of a medium flowing in a line. This may be achieved via a projection that may project into the measuring channel, and that may be located downstream from the inlet and upstream from the measuring element, as viewed in the measuring channel flow direction. The projection may direct the flow and counteract a separation of the flow of the partial stream of medium from the channel walls of the measuring channel. The flow may be directed around the bend by the projection with little or no separation, which may improve the flow quality at the sensor element and reduce the signal noise.
In an example embodiment, the projection may include at least one single-component, continuous partition or at least one interrupted, double-component partition that may be located in the measuring channel transversely to the measuring channel flow direction. A plurality of partitions may also be situated behind each other or on top of each other in the measuring channel. The at least one partition may be capable of being introduced into the measuring channel without a greater amount of manufacturing outlay. If a double-component partition is used, the partition may include two partial wall sections that may project toward each other from diametrically opposed interior wall sections of the measuring channel and that may be separated by a gap. Longitudinal eddies may then occur at the ends of the partial wall sections that face each other, the axis of the longitudinal eddies extending in the measuring channel flow direction and the flow being stabilized.
In an example embodiment, to prevent a film of water on the wall formed by water droplets that entered the measuring channel from detaching from the partition and resulting in water droplets coming in direct contact with the sensor element, the back side—which faces away from the measuring channel flow—of the partition or the partial wall sections of the partition may be positioned at an angle relative to the measuring channel flow direction that is less than ninety degrees and greater than zero degrees. The inclination of the back wall may result in a cross-flow over the flow guide surfaces of the partition that extend parallel to the measuring channel flow, the cross-flow transporting water over the guide surfaces transversely to the measuring channel flow direction to the interior walls of the measuring channel, where the water may be able to collect without reaching the sensor element.
A measuring element 9 on a measuring element carrier 10 may be used in device 1, for example, the measuring element being electrically connected to the evaluation electronics. Using measuring element 9, the volumetric flow rate or the mass flow rate of the flowing medium, for example, may be determined as the parameter. Further parameters that may be measured are, for example, pressure, temperature, concentration of a medium constituent, or flow velocity, which may be capable of being determined using suitable sensor elements.
Device 1 may have, e.g., a longitudinal axis 12 in the axial direction, which extends, e.g., in the direction of installation of device 1 in line 3, and which may also be the center axis, for example. The direction of the medium flowing in the longitudinal direction of line 3, referred to herein below as main flow direction 18, is labeled in
Part 6 has a housing having a, e.g., rectangular structure having a front wall 13 that, in the installed position, may face main flow direction 18 of the medium, a back wall 14 facing away therefrom, a first side wall and a second side wall and a third wall 19 that may extend parallel to the main flow direction, for example. Part 6 may further include a channel structure located therein having an inlet region 27 and a measuring channel 40 that may branch off from inlet region 27. The positioning of device 1 relative to line 3 may ensure that the medium flowing in main flow direction 18 impacts part 6 in a predetermined direction, and a partial stream of the medium in this direction may travel through an opening 21 in front side 13 and may reach inlet region 27. Opening 21 may be oriented perpendicularly to main flow direction 18, for example, but another orientation of opening 21 relative to main flow direction 18 is also feasible. From inlet region 27 forward, a partial stream of the medium that entered the inlet region may pass through an inlet 41 into measuring channel 40 that may be equipped with measuring element 9 and that may branch off from the inlet region. A portion of the medium in the inlet region may continue to flow into a separation zone located downstream from the inlet of the measuring channel, this zone being connected to line 3 via at least one separation opening 33 located in the first side wall and/or the second side wall and/or wall 19.
Opening 21 in front side 13 of part 6 may include, in axial direction 12, a top edge 36 that may be closest to measuring element 9 in axial direction 12. An upper, imagined plane 39 extends through top edge 36 and perpendicular to the plane of the drawing in
Starting at inlet region 27, a partial stream of the medium may pass through inlet 41 of measuring channel 40 and may reach a first, bent section 42 of the measuring channel. The partial stream of the medium that entered the measuring channel may flow through the measuring channel in measuring channel flow direction a from inlet 41 to outlet 48 of the measuring channel. For clarification, in the context of the present application, “measuring channel flow direction” refers to the direction of flow from the inlet to the outlet of the measuring channel, and not the velocity vectors of the individual flowing particles. The measuring channel flow direction therefore extends along the measuring channel and its bends to the outlet. The partial stream that traveled through inlet 41 into measuring channel 40 may be redirected in first, bent section 42 and, at the end of section 42, may reach a further section 44, that may extend nearly in a straight line and in which measuring element 9 may be located. At the inner radius of bent section 42, the flow may separate from interior wall 43 of the measuring channel if countermeasures are not provided. In
To prevent the flow from separating in bent section 42, measuring channel 40 may therefore include a projection projecting into the measuring channel. The projection may direct the flow and counteract a separation of the flow from interior wall 43 of the measuring channel, e.g., preventing it entirely. The partial stream of the medium may then flow, without separating, into further section 44 of the measuring channel. In an example embodiment, the projection may include at least one single-component, continuous partition 50, which may be located transverse to measuring channel flow direction a in the transitional region from bent section 42 to further section 44. Partition 50 may be attached with two end sections facing away from each other and that are not shown in
As shown in
Downstream from partition 50 in
Number | Date | Country | Kind |
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102 53 970.7 | Nov 2002 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE03/01672 | 5/23/2003 | WO | 10/6/2005 |