The following relates to an exhaust system and, more particularly, relates to a sampling tube for improving exhaust gas flow to an exhaust sensor.
Vehicle exhaust systems often include one or more sensors for detecting the characteristics of the exhaust gas flowing therein. For instance, exhaust systems typically include one or more oxygen sensors for detecting oxygen content flowing within the exhaust system. These sensors can provide corresponding signals to the engine control unit (ECU), and the ECU can utilize the signals for controlling operation of the engine or for other purposes.
Typically, these sensors extend through an opening in the exhaust pipe and into the flow of exhaust gas. For instance, these sensors are often positioned adjacent the inner wall of the exhaust pipe. Thus, the readings from these sensors can depend on the flow conditions generally adjacent the inner wall of the pipe.
An exhaust assembly for a vehicle is disclosed that includes an exhaust pipe through which an exhaust gas flows substantially in a first direction. The exhaust pipe includes a central region. The assembly also includes a sensor in fluid communication with the exhaust pipe and an elongated tube extending from a first end toward a second end and disposed at least partially within the exhaust pipe. The first end of the tube receives at least a portion of the sensor. The tube includes an inlet opening and an outlet opening. The inlet opening generally faces the exhaust gas flowing within the central region in the first direction so that flow of the exhaust gas in the central region substantially directly enters the inlet opening. The tube directs the exhaust gas within the tube toward the sensor, and the exhaust gas within the tube flows out of the tube through the outlet opening.
Moreover, an exhaust assembly for a vehicle is disclosed. The exhaust assembly includes an exhaust pipe through which an exhaust gas flows. The exhaust pipe has a central axis and an inner wall surface, and the exhaust pipe includes an opening. The assembly also includes a catalyst member disposed in the exhaust pipe, and an oxygen sensor that is fixed relative to the exhaust pipe. The sensor is disposed adjacent the inner wall surface of the exhaust pipe, and the oxygen sensor is disposed downstream of the catalyst member. The exhaust assembly also includes a tube that is hollow and that has a substantially right circular cylindrical shape, so as to include a first end, a second end, and a substantially straight tube axis. The tube also includes a sidewall that extends along the tube axis. The second end includes an end wall that closes off the second end. The first end is open to receive the sensor. The tube additionally includes an inlet opening in the sidewall adjacent the second end and an outlet opening in the sidewall adjacent the first end. The inlet opening and the outlet opening are disposed on opposite sides of the tube axis. The tube extends through the opening in the exhaust pipe such that both the tube and the sensor extend into the exhaust pipe. The tube is fixed to the exhaust pipe to be disposed downstream from the catalyst member. The tube is cantilevered within the exhaust pipe. The central axis of the exhaust pipe extends through the inlet opening. The tube directs flow of the exhaust gas into the inlet opening, toward the sensor, and out of the tube through the outlet opening.
Referring initially to
Although the vehicle 10 is illustrated as a passenger car, it will be appreciated that the vehicle 10 can be of any other type, such as a truck, a motorcycle, etc. Also, it will be appreciated that the engine 11 can be of any suitable type.
As shown in
The exhaust pipe 18 can be hollow and cylindrical such that the exhaust gases G can flow therethrough. The exhaust pipe 18 can have any suitable shape and can have any suitable cross sectional shape, such as a circular cross section. Accordingly, exhaust gases G can flow through the exhaust pipe 18 including through a central region 17 of the pipe 18 (
Furthermore, the exhaust assembly 12 can include at least one or more catalyst members 20 (e.g., catalytic converter), which is shown in phantom in
In addition, the exhaust assembly 12 includes a sensor 22. As shown in
Moreover, the sensor 22 can extend through an opening 19 in the wall of the exhaust pipe 18, downstream of the catalyst member 20, toward the interior of the exhaust pipe. The sensor 22 can be joined (e.g., fixed relative) to the pipe 18 in a manner discussed in greater detail below. The sensing element 25 can be disposed within the exhaust pipe 18, and the openings 29 allow fluid communication of the exhaust gas G within the pipe 18 to the sensing element 25. As shown, the sensor 22 can be disposed adjacent an inner wall surface 26 of the exhaust pipe 18 (
The sensor 22 can be in operative communication with a controller 23, such as the engine control unit (ECU). The sensor 22 can be of any suitable type to detect the presence or characteristic of a component in the exhaust gas G, such as an oxygen sensor. For example, the sensor 22 can detect the amount of oxygen within the flow of exhaust gases G in the exhaust pipe 18. The sensor 22 can transmit a corresponding signal (e.g., a feedback signal) to the controller 23, and the controller 23 can thereby utilize this signal to modify an operation of the engine 11. For instance, the controller 23 can adjust the injected fuel-to-air mixture, depending on the feedback signal from the sensor 22.
It will be appreciated that the sensor 22 can be of any suitable type other than an oxygen sensor and can detect other characteristics of the exhaust gas G without departing from the scope of the present disclosure. Furthermore, it will be appreciated that the sensor 22 can be disposed in any suitable location within the exhaust assembly 12 without departing from the scope of the present disclosure. In addition, it will be appreciated that the sensor 22 can provide signals relating to the exhaust gas G to any component other than an ECU, and/or the controller 23 can control components other than the engine 11.
Furthermore, the exhaust assembly 12 includes a tube 24 for directing the flow of exhaust gas G toward the sensor 22. The tube 24 is be hollow and can have any cross-sectional shape and extend along a substantially straight tube axis Y. In other embodiments, the tube axis Y can be at least partially curved along the length of the tube 24. For example as shown in
Referring now to
As shown in
The length and other parameters of the tube 24 can be configured to suit the particular exhaust system including the configuration of the sensor 22. In some embodiments, the length L of the tube 24 can be between approximately 2 and 3 inches (e.g., approximately 2.5 inches). Also, the width W of the tube 24 can be between approximately 0.25 and 1 inch (e.g., approximately ⅝ inches).
Moreover, the tube 24 can be made out of and/or include any suitable material. For instance, in some embodiments, the tube 24 can be made of and/or include stainless steel and/or austenitic nickel-chromium-based material (e.g., INCONEL).
In addition, the tube 24 includes an inlet opening 36 and an outlet opening 38. For example and referring to
The sensor 22 and the tube 24 can be joined to the exhaust pipe 18 in any suitable fashion. For instance, as shown in
Therefore, as shown in
Also, as shown, the tube axis Y can be disposed at an angle relative to the central region 17 of the exhaust pipe 18. For instance, in some embodiments, the tube axis Y and the central axis X can be disposed relatively at an angle between approximately 80° and 90°. Furthermore, in some embodiments, the tube axis Y can be substantially perpendicular to the central axis X of the exhaust pipe 18. In alternative embodiments, the tube axis Y can be disposed at other angles relative to the central region 17 of the exhaust pipe 18 to suit a particular configuration of vehicle.
In the embodiment shown, the inlet opening 36 can face substantially upstream in the flow of exhaust gas G through the central region 17 of the exhaust pipe 18, and the outlet opening 38 can face substantially downstream. Moreover, the central axis X of the exhaust pipe 18 can extend through the inlet opening 36 of the tube 24. In some embodiments, the central axis X can be coaxial with the inlet opening 36. In addition, the outlet opening 38 can be disposed adjacent the sensor 22 and adjacent the inner wall surface 26 of the exhaust pipe 18.
Thus, the inlet opening 36 is disposed substantially in the central region of the exhaust pipe 18 so the exhaust gas G can readily flow into the inlet opening 36, through the tube 24 along the tube axis Y, toward the sensor 22 where the sensor 22 detects the characteristics of the exhaust gas G. Thereafter, the exhaust gases G exit the tube 24 through the outlet opening 38 disposed adjacent the sensor 22.
It will be appreciated that the exhaust gases G may enter the tube 24 at a relatively high velocity and at a relative high-pressure where the inlet opening 36 is generally aligned with the central region 17 of the exhaust pipe 18, compared to exhaust gas G flow near the inner wall surface 26. As such, the exhaust gas G more readily is directed to flow into the inlet opening 36 and then directed through the tube 24 toward the sensor 22 for determining the characteristics of the gas G. In some embodiments, even though the sensor 22 may not be located in an area of high gas flow within the pipe 18, the tube 24 is positioned and configured to direct gas flow toward the sensor 22 for a more accurate characterization of the exhaust gases G from the central region 17 of the exhaust pipe 18. Thus, the sensor 22 can more accurately detect the characteristics of the exhaust gas G, thereby allowing the controller 23 to receive more accurate exhaust gas data for operation of the vehicle.
It will be appreciated that the tube 24 and the sensor 22 can extend into the exhaust pipe 18 at any suitable location. For instance, in some embodiments, the tube 24 and the sensor 22 can extend into the pipe 18 to be disposed within the pipe 18, upstream of the catalyst member 20. In other embodiments, the tube 24 and the sensor 22 can be embedded within the catalyst member 20. In still other embodiments, the second end 32 of the tube 24 extends into the pipe 18, and the first end 30 of the tube 24 extends out of the pipe 18 such that the first end 30 is disposed outside of the pipe 18. Also, the sensor 22 is received within the first end 30 of the tube 24 and remains wholly outside of the pipe 18. Nevertheless, the tube 24 directs gas G from the central region 17 of the pipe 18 toward the sensor 22. Also, in this embodiment, the tube 24 can include a separate outlet tube (not shown) for flow of gas G out of the tube 24 back into the pipe 18 or otherwise.
As shown in
In this implementation, a tube 60 may span the diameter of the exhaust pipe 52 and have a first end 62 adjacent to the sensor 22 and a second end 64 coupled to the exhaust pipe 52 at a location diametrically opposed to the sensor 22. Of course, the tube 60 could be bent or angled such that the second end 64 is not diametrically opposed to the sensor 22, if desired. The tube 60 may be formed in one piece with a boss 65 to which the sensor 22 is mounted, or the tube 60 may be otherwise coupled to the boss 65 or the exhaust pipe 52 at the first end 62 of the tube 60. As shown, the boss includes a threaded opening 66 to which the sensor 22 is secured.
As shown, the second end 64 is defined in a reduced diameter section 67 (labeled in
As in the previously described embodiments, the tube 60 may have an inlet 80 through which gas enters the interior chamber 74 and an outlet 82 from which gas leaves the interior chamber 74 and re-enters the exhaust pipe 52. The inlet 80 may be provided spaced from the sensor 22, such as generally in the middle of the exhaust pipe 52, for example, but not limited to being near a center axis 84 and the outlet 82 may be provided in the area of the sensor 22 so that exhaust gas which enters the inlet 80 is routed adjacent to and about the sensor 22 before the gas exits through the outlet 82 to the exhaust pipe 52. In this manner, gas is in the center region of the exhaust pipe 52 and downstream of the first catalyst member 54 are routed adjacent to the sensor 22 by the tube 60. Multiple inlet and outlets may be provided in the tube, as desired. This may permit sampling of exhaust gas at multiple locations including and spaced from the axis of the exhaust pipe.
As shown in
In another implementation, as shown in
The inlet 116 may be formed simply by an open end of the tube 110 rather than a discreet port or opening formed through a sidewall of the tube 110. The inlet 116 may be oriented generally perpendicularly to the flow of gas in the exhaust pipe 52, as shown in
The above description is merely exemplary in nature and, thus, variations that do not depart from the gist of the present disclosure are intended to be within the scope of the present disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the present disclosure.
This application claims the benefit of U.S. Provisional Ser. No. 61/587,823 filed Jan. 18, 2012 and is a Continuation-in-Part of U.S. Ser. No. 12/943,097 filed Nov. 10, 2010, which is incorporated herein, by reference, in its entirety.
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Number | Date | Country | |
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Parent | 12943097 | Nov 2010 | US |
Child | 13739145 | US |