The present invention relates to the field of measuring the quantity of soot deposited in the exhaust of an internal combustion engine of a vehicle, in particular a motor vehicle.
More precisely, the present invention relates to a device that makes it possible to determine the operating state, and in particular the degradation state, of a probe that measures the deposit of soot resulting from the polluting emissions coming from motor vehicle exhausts.
In view of environmental constraints, there exists a need to be able to quantify, with greater reliability and accuracy, the emissions of particles or of soot from engines.
In the prior art, various solutions have been proposed for detecting soot in exhaust gases.
For example, patent application FR 2 805 347 describes a measuring device including a probe that is interposed locally in the flow of gas, in such a manner as to capture the particles in the flow. The probe includes an elongate dielectric substrate that is provided with electrodes that are spaced apart from each other. The electrodes are connected to an electronic system making it possible to measure the variation in electric resistance that results from soot being deposited on the elongate dielectric substrate. The electronic system includes processor means that are capable of evaluating, from the measured resistance, the flowrate of the particles transported by the flow of gas, or the degree to which a filter element passing the flow of gas transporting the particles, has become choked.
Determining the degree to which the filter element has been choked makes it possible to determine the most appropriate moments for triggering a process for cleaning the filter element. In order to avoid the filter element becoming clogged, provision is made to regenerate it periodically by burning the deposited soot.
In order to provide an accurate measurement, the prior art propose various variant embodiments of measurement electrodes. It is known to make the detection electrodes in the form of rectangular pads. Patent applications DE 10 2007 046096 and WO 2008/006640 propose making measurement electrodes in the form of combs that are interleaved one in the other while being spaced apart from each other.
Whatever the shape in which electrodes are made, it should be observed that the electrodes should be made out of an electrically-conductive material that is able to withstand relatively high temperatures of about 900° C. and attacks that are generated by the various polluting emissions coming from exhaust gas.
In practice, there is the need to determine the operating state of the detection electrodes, so as to determine whether the absence of variation in the measured resistance comes from an absence of soot in the exhaust or from a degradation of the detection electrodes, which detection must be reliable and simple to implement.
The invention thus seeks to propose a technique that makes it possible, in simple and reliable manner, to determine the operating state of a probe that measures the quantity of soot deposited on a collection surface placed in the flow of polluting emissions coming from motor vehicle exhausts.
To achieve such an object, the method of the invention determines the operating state of a measuring probe for measuring the quantity of soot deposited on a collection surface, said probe including detection electrodes that are arranged in adjacent manner and that are for connecting to an electronic system that is capable of evaluating the quantity of soot that has been deposited.
In the invention:
In addition and in combination, the method of the invention may further present at least one of the following additional characteristics:
Another object of the invention is to propose a measuring device for measuring soot deposition on a collection surface of an elongate dielectric substrate, said device including detection electrodes that are arranged in adjacent manner and that are for connecting to an electronic system that is capable of evaluating the quantity of soot deposited on the collection surface.
In the invention, the device includes, for at least one detection electrode, a measurement loop that includes said detection electrode and that is connected to a detection system for detecting the variation in the electric resistance of said measurement loop, so as to determine the operating state of said detection electrode.
In addition and in combination, the measuring device of the invention may further present at least one of the following additional characteristics:
Various other characteristics appear from the following description made with reference to the accompanying drawings which, by way of non-limiting example, show embodiments of the invention.
The elongate dielectric substrate 4 is in the form of a thin rectangular plate having a first main face 4a (
At its distal portion 41, the elongate dielectric substrate 4 includes detection electrodes that are arranged in adjacent manner or side by side. In the embodiment shown, the elongate dielectric substrate 4 includes a first electrode 6 and a second electrode 7 arranged on the first main face 4a and extending, at least in part, over the collection surface 2. The electrodes 6, 7 define between them an inter-electrode gap 8 for receiving soot that modifies the resistance of the gap 8.
The detection electrodes 6, 7 are shown in
The detection electrodes 6, 7 are connected, via electrical connections, to an electronic system that is not shown but that is known per se, and that is capable of evaluating the quantity of soot that has been deposited on the collection surface 2. The detection electrodes 6, 7 are connected to respective contact pads P1 and P2 by means of respective electrical connection tracks 61 and 71 respectively. The electrical connection tracks 61, 71 are thus arranged on the first face 4a of the dielectric substrate 4, thereby providing the connections between the electrodes 6, 7 and the contact pads P1 and P2 arranged on the proximal portion 42 of the dielectric support 4.
In a preferred variant embodiment, the dielectric substrate 4 includes dielectric protection 10 that is adapted to cover all of the main face 4a of the dielectric substrate 4 except for the collection surface 2 that is provided with the electrodes 6, 7 and that is for receiving soot. The dielectric protection 10 is formed by a dielectric coating formed by silk-screen printing or by laminating, for example. In a preferred variant embodiment, the dielectric protection 10 also covers the second face 4b of the dielectric substrate 4.
In a preferred variant embodiment, the measuring probe 3 also includes a heater resistor Rc making it possible to regenerate the collection surface 2. The heater resistor Rc is situated at least in register with or facing the collection surface 2. In the embodiment shown in
In accordance with the invention, the measuring device 1 includes at least one measurement loop B1 including at least one of the detection electrodes, namely the first electrode 6 in the embodiment shown in
In the embodiment shown, the detection loop B1 includes a diagnostic resistor R1 of determined resistance, such that the measurement loop B1 possesses a known resistance. For example, the resistance of the diagnostic resistor R1 may present a known determined value lying in the range 1 ohm (Ω) to 1000Ω at ambient temperature, and preferably in the range 100Ω to 200Ω.
In the embodiment in
It can be seen from the above description that the measurement loop B1 thus comprises, in series, the contact pad P1, the electrical connection track 61, the first electrode 6, the diagnostic resistor R1, the electrical connection track 16, and the contact pad P5. The measurement loop B1 is connected, via the contact pads P1 and P5, to the detection system 15 for detecting variation in the resistance of the measurement loop B1. In an advantageous variant embodiment, the detection system 15 thus injects a current of known value into the measurement loop B1. The current is injected at regular intervals or after each stage of regenerating the detection electrodes 6, 7, while the temperature of the probe is known.
If the electric resistance of the measurement loop B1 varies, it can thus be assumed that the first electrode 6 presents premature wear. By analogy, assuming that the electrodes 6 and 7 degrade in substantially identical manner, the detection of the degradation of the first detection electrode 6 also implies that degradation of the second detection electrode 7 has been detected. For example, it may be assumed that the measuring probe no longer provides a correct measurement when the variation in resistance exceeds a threshold value lying in the range 15% to 20%. When the variation in the resistance of the measurement loop B1 reaches this critical threshold value, provision may be made to correct the signal of the probe via the detection system 15 and/or to change the probe.
In the embodiment shown in
In the embodiment shown in
As can be seen more clearly in
In a preferred variant embodiment, the pad P6 is not arranged on the first face 4a, but is formed on the second face 4b of the dielectric substrate 4, for reasons of compactness. Naturally, it may be envisaged to form all four contact pads P1, P5, P2 and P6 on the first face 4a of the dielectric substrate 4, while the contact pads P3, P4 for the heater resistor Rc are formed on the second face 4b of the dielectric substrate 4. In the embodiment shown in
The second measurement loop B2 thus includes, in series, the heater resistor Rc, and the second detection electrode 7. When the heater resistor Rc and the second detection electrode 7 are placed on the two distinct faces 4b and 4a respectively of the dielectric substrate 4, the electrical connection tracks are arranged in such a manner as to obtain an electrical connection through the thickness of the dielectric substrate 4. Thus, the second measurement loop B2 includes the contact pad P4, the electrical connection track 12, the heater resistor Rc, and the electrical connection track 11 arranged on the second face 4b of the dielectric substrate 4. The electrical connection track 11 is electrically connected to the electrical track 71 arranged on the first face 4a via common connection pads P11a and P71 respectively. The electrical connection track 71 is connected in series with the second electrode 7 that is extended by an electrical connection track 21 also arranged on the first face 4a. The electrical connection track 21 is connected to the contact pad P3 by means of common connection pads P21 and P11b, the common connection pad P11b being connected to the contact pad P3.
The invention thus seeks to propose a method of determining the operating state of a measuring probe for measuring the quantity of soot deposited on a collection surface 2. The method thus consists in placing at least one detection electrode 6, 7 in a measurement loop B1, B2, and in detecting the variations in electric resistance of the measurement loop so as to determine the operating state of the detection electrode. Advantageously, the method consists in placing each detection electrode 6, 7 in a measurement loop, and in detecting the variations in electric resistance of each measurement loop so as to determine the operating state of the detection electrodes 6, 7.
In an advantageous variant embodiment, at least one resistor R1, R2 of known resistance is placed in series with each detection electrode 6, 7. Thus, each measurement loop B1, B2 presents a determined resistance.
In order to detect a variation in the resistance in each measurement loop, the method advantageously makes provision to inject an electric current of known value into each of the measurement loops.
It should be observed that the method of the invention makes it possible to know the resistance(s) of the diagnostic resistor(s) R1, R2. The resistance of the or each diagnostic resistor R1, R2 is determined from the known value of the current flowing through the measurement loop and the known value of the voltage at the terminals of the measurement loop. Determining the resistance of at least one diagnostic resistor makes it possible to deduce the temperature of the measuring probe.
The invention is not limited to the embodiments that are described and shown, since various modifications can be applied thereto without going beyond the ambit of the invention.
Number | Date | Country | Kind |
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1051084 | Feb 2010 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2011/050313 | 2/15/2011 | WO | 00 | 7/23/2012 |