WO2015124992A1 - Control system and control method for internal combustion engine - Google Patents
Control system and control method for internal combustion engine Download PDFInfo
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- WO2015124992A1 WO2015124992A1 PCT/IB2015/000192 IB2015000192W WO2015124992A1 WO 2015124992 A1 WO2015124992 A1 WO 2015124992A1 IB 2015000192 W IB2015000192 W IB 2015000192W WO 2015124992 A1 WO2015124992 A1 WO 2015124992A1
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- Prior art keywords
- concentration
- voltage
- exhaust gas
- sox
- sensor
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/02—Circuit arrangements for generating control signals
- F02D41/14—Introducing closed-loop corrections
- F02D41/1438—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor
- F02D41/1444—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor characterised by the characteristics of the combustion gases
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/02—Circuit arrangements for generating control signals
- F02D41/14—Introducing closed-loop corrections
- F02D41/1438—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor
- F02D41/1444—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor characterised by the characteristics of the combustion gases
- F02D41/1445—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor characterised by the characteristics of the combustion gases the characteristics being related to the exhaust flow
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02D—CONTROLLING COMBUSTION ENGINES
- F02D41/00—Electrical control of supply of combustible mixture or its constituents
- F02D41/02—Circuit arrangements for generating control signals
- F02D41/14—Introducing closed-loop corrections
- F02D41/1438—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor
- F02D41/1444—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor characterised by the characteristics of the combustion gases
- F02D41/1454—Introducing closed-loop corrections using means for determining characteristics of the combustion gases; Sensors therefor characterised by the characteristics of the combustion gases the characteristics being an oxygen content or concentration or the air-fuel ratio
Definitions
- the invention relates to a control system and control method for an internal combustion engine, which detect the concentration of SOx in exhaust gas with the use of a limiting current sensor that is able to detect the concentration of oxygen in exhaust gas from the internal combustion engine.
- a limiting current sensor including a solid electrolyte, a pair of electrodes (an electrode pair formed of a measuring electrode and a reference electrode) and a diffusion-controlling layer (diffusion resistance layer).
- the solid electrolyte is able to conduct oxygen ions.
- the pair of electrodes are provided so as to sandwich the solid electrolyte.
- the diffusion-controlling layer is provided so as to cover the measuring electrode.
- the principle of detecting the concentration of oxygen in exhaust gas with the use of the above sensor is as follows. Initially, when a voltage is applied to the electrode pair so that a predetermined potential difference is generated between the electrode pair, oxygen in exhaust gas is ionized at the measuring electrode. Oxygen ions pass through the solid electrolyte and migrate to the reference electrode, and then return into oxygen at the reference electrode through recombination. Migration of electrons due to the series of electrochemical reactions is output as a current from the electrode pair. Because the diffusion-controlling layer is controlling migration of oxygen to the measuring electrode, the magnitude of current that is output from the electrode pair is in a one-to-one correspondence with the concentration of oxygen in exhaust gas. Thus, when a current that is output from the electrode pair is measured, the concentration of oxygen in exhaust gas is identified (detected) on the basis of the measured current.
- a detecting device that detects the concentration of a component other than oxygen (for example, the concentration of H 2 0, that is, humidity) by utilizing the fact that a molecular that is decomposed at the measuring electrode varies as the magnitude of voltage that is applied to the electrode pair varies.
- the detecting device uses a sensor having two sets of electrode pair (an upstream-side electrode pair and a downstream-side electrode pair). The detecting device initially applies a voltage having a magnitude of decomposing oxygen to the upstream-side electrode pair, and emits oxygen in exhaust gas to the outside of the sensor.
- the detecting device applies a voltage having a magnitude of decomposing H 2 0 to the downstream-side electrode pair, and measures a current that is output from the downstream-side electrode pair.
- the detecting device identifies the concentration of H 2 0 in exhaust gas on the basis of the current.
- the detecting device is able to measure a current that is output because of H 2 0 as distinguished from a current that is output because of oxygen, so it is possible to accurately detect the concentration of H 2 0 (see, for example, Japanese Patent Application Publication No. 2-122255 (JP 2-122255 A)).
- oxygen concentration sensor the limiting current sensor that is able to detect the concentration of oxygen in exhaust gas
- the voltage that is applied to the electrode pair of the sensor is referred to as applied voltage to the sensor
- the current that is output from the electrode pair is referred to as output current of the sensor.
- the internal combustion engine is referred to as engine.
- the amount of sulfur component contained in fuel for the engine is generally an extremely small amount.
- fuel having a relatively high concentration of sulfur may be used.
- SOx sulfur oxides
- the inventors of the invention have studied that the concentration of SOx in exhaust gas is detected as a parameter related to the concentration of sulfur in fuel.
- the inventors of the invention have studied whether it is possible to detect the concentration of SOx in exhaust gas by using the method employed in the above-described detecting device.
- a voltage having a magnitude of decomposing SOx in other words, reducing SOx into sulfur
- SOx in other words, reducing SOx into sulfur
- the invention provides a control system and a control method that are able to accurately detect the concentration of SOx in exhaust gas from an engine.
- a first aspect of the invention provides a control system for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas.
- the control system includes an electronic control unit.
- the electronic control unit is configured to: (i) detect a concentration of SOx in exhaust gas; (ii) control the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value; (iii) execute a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and (iv) detect the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the sensor, the value of limiting current of the
- the waveform of output current of the limiting current sensor includes an output component due to reoxidation of sulfur into SOx in the limiting current sensor (output component due to the concentration of SOx in exhaust gas) and an output component due to the concentration of oxygen in exhaust gas; however, the waveform of output current of the limiting current sensor does not substantially include an output component due to another component.
- the control system executes the sweep process while keeping the concentration of oxygen in exhaust gas at the constant value.
- the output component due to the concentration of oxygen is kept constant, thus preventing fluctuations in the concentration of oxygen from disturbing the waveform of output current.
- the system according to the invention analyzes the waveform of output current while considering the output component due to the concentration of oxygen (that is, the reference value). As a result, the system according to the invention is able to measure only the output component due to the concentration of SOx by extracting the output component from the output current of the limiting current sensor.
- the concentration of SOx in the invention can translate to at least one of the concentration of SOx in exhaust gas or a value that is in a one-to-one correspondence with the concentration of SOx.
- the system according to the invention does not simply measure an output current for each applied voltage.
- the system is able to measure only an output current component due to SOx in exhaust gas separately through a specific process according to the invention called sweep process.
- sweep process a specific process according to the invention.
- it has been difficult to distinguish SOx from other components in exhaust gas, whereas the system according to the invention is able to accurately detect the concentration of SOx in exhaust gas.
- the system according to the invention has an advantageous effect as compared to the existing system.
- the reference value may be acquired when the sweep process is actually executed or may be acquired by consulting a map, or the like, determined in advance through an experiment, or the like.
- the second voltage may coincide with an applied voltage that is used when the concentration of oxygen in exhaust gas is detected, and the reference value may be a value of output current of the limiting current sensor at timing at which the applied voltage to the limiting current sensor is reduced to the second voltage in the sweep process.
- the output current at the timing at which the applied voltage is reduced to the second voltage is used as the reference value.
- the system according to the aspect acquires the reference value at the timing at which the sweep process has completed, so acquiring the reference value and executing the sweep process are substantially successively carried out.
- the system according to the aspect is able to further accurately detect the concentration of SOx in exhaust gas in comparison with the case where the timing of acquiring the reference value and the timing of executing the sweep process are apart from each other.
- the correlation between the concentration of oxygen and the limiting current, which is prepared for measuring the concentration of oxygen may be utilized.
- the electronic control unit may be configured to prestore a correlation between the concentration of oxygen in exhaust gas and the value of limiting current, and the reference value may be a value of limiting current, which is obtained by applying the concentration of oxygen having the constant value to the correlation.
- the waveform of output current of the limiting current sensor during execution of the sweep process includes an extreme value (a peak value of output current) that changes with the concentration of SOx in exhaust gas (for example, see FIG. 4).
- the concentration of SOx is obtained from the absolute value of a difference between the extreme value and the reference value.
- the electronic control unit may be configured to use an extreme value of output current of the limiting current sensor during execution of the sweep process as a value indicating a characteristic of the waveform of the output current, the electronic control unit may be configured to detect the concentration of SOx in exhaust gas such that the concentration of SOx increases as the absolute value of a difference between the extreme value and the reference value increases, and the second voltage may be an applied voltage lower than an applied voltage at which the extreme value is output.
- a second aspect of the invention provides a control method for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas.
- the control method includes: detecting a concentration of SOx in exhaust gas; controlling the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value; executing a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and detecting the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the limiting current sensor, the value of limiting current of the limiting current sensor corresponding to the concentration of oxygen having the constant value.
- FIG. 1 is a schematic view that shows the schematic configuration of an internal combustion engine to which a control system according to an embodiment of the invention is applied;
- FIG. 2 is a schematic view that shows the schematic configuration of a limiting current oxygen concentration sensor (single-cell sensor) according to the embodiment;
- FIG. 3A and FIG. 3B are schematic graphs that show the output characteristics of the limiting current oxygen concentration sensor according to the embodiment
- FIG. 4 is a schematic graph that shows an example of the waveform of output current of the sensor when a sweep process is executed according to the embodiment
- FIG. 5 is a schematic graph that shows the correlation between a concentration of SOx in exhaust gas and an output of the sensor according to the embodiment
- FIG. 6 is a schematic graph that shows an example of the waveform of output current of the sensor when the sweep process is executed according to the embodiment
- FIG. 7 is a schematic graph that shows an example of the waveform of output current of the sensor when the sweep process is executed according to the embodiment
- FIG. 8 is a time chart that shows an example of the correlation among an air- fuel ratio of exhaust gas (a concentration of oxygen in exhaust gas), an applied voltage to the sensor and an output current of the sensor according to the embodiment;
- FIG. 9 is a time chart that shows another example of the correlation among an air-fuel ratio of exhaust gas (a concentration of oxygen in exhaust gas), an applied voltage to the sensor and an output current of the sensor according to the embodiment;
- FIG. 10 is a flowchart that shows a routine that is executed by the control system according to the embodiment.
- FIG. 11 is a schematic view that shows the schematic configuration of a limiting current oxygen concentration sensor (dual-cell sensor) according to the embodiment.
- FIG. 1 shows the schematic configuration of an internal combustion engine 10 to which a control system according to an embodiment of the invention (hereinafter, referred to as embodied system) is applied.
- the engine 10 is a spark ignition internal combustion engine (so-called gasoline engine).
- the engine 10 includes a body portion 20, an intake system 30, an exhaust system 40, an accelerator pedal 51, a plurality of sensors 61 to 64, and an electronic control unit 71.
- the body portion 20 includes a fuel injection valve 21 , an ignition plug 22, a combustion chamber 23, a fuel pump 24, a fuel supply tube 25, a piston 26, a connecting rod 27 and a crankshaft 28.
- the intake system 30 includes an intake valve 31, an intake port 32, an intake manifold 33, a throttle valve 34, an intake pipe 35 and an air cleaner 36.
- the exhaust system 40 includes an exhaust valve 41, an exhaust port 42, an exhaust manifold 43, an exhaust gas purification catalyst 44 and an exhaust pipe 45.
- the plurality of sensors 61 to 64 include a limiting current oxygen concentration sensor 61, a crank position sensor 65, an air flow meter 63 and an accelerator operation amount sensor 64.
- the limiting current oxygen concentration sensor 61 (hereinafter referred to as sensor 61) includes a sensor cell 6 ID, a diffusion-controlling layer 6 IE, a sensor control unit 6 IF, a first alumina layer 61G, a second alumina layer 61H, a third alumina layer 611, a fourth alumina layer 61J, a fifth alumina layer 61 K and a heater 61L.
- the sensor cell 61D is formed of a solid electrolyte layer 61 A, a measuring electrode 61B and a reference electrode 61C.
- An atmosphere introduction passage 61M and an internal space 6 IN are formed in the sensor 61.
- the sensor 61 is a single-cell sensor having the single sensor cell 6 ID.
- the sensor 61 is provided at the exhaust manifold 43 such that a distal end
- the sensor 61 is provided on the upstream side of the exhaust gas purification catalyst 44.
- the solid electrolyte layer 61 A is made of zirconia, or the like, that is able to conduct oxygen ions.
- the measuring electrode 61B and the reference electrode 61C are made of platinum group elements, such as platinum and rhodium, or an alloy including any one of the platinum group elements.
- the measuring electrode 61 B and the reference electrode 61 C are arranged so as to sandwich the solid electrolyte layer 61 A.
- the measuring electrode 61 B is arranged on one-side wall face of the solid electrolyte layer 61 A (specifically, on an wall face that defines the internal space 6 IN).
- the reference electrode 61 C is arranged on the other-side wall face of the solid electrolyte layer 61 A (specifically, a wall face that defines the atmosphere introduction passage 61M).
- the sensor control unit 61 F is connected to the sensor cell 6 ID such that the measuring electrode 61 B is a cathode and the reference electrode 61C is an anode.
- the sensor control unit 61F is connected to the heater 61 L so as to be able to supply electric power to the heater 61L.
- the sensor control unit 6 IF is connected to the electronic control unit 71.
- the sensor control unit 61F receives a command signal from the electronic control unit 71, applies the sensor cell 61 D with a voltage corresponding to the command signal, and transmits the value of current that is output from the sensor cell 6 ID to the electronic control unit 71.
- the sensor control unit 61F receives a command signal from the electronic control unit 71, and supplies the heater 61 L with an electric power corresponding to the command signal.
- Application of a voltage to the sensor cell 61D is carried out by applying a voltage to the measuring electrode 61B and the reference electrode 61C so that a potential difference according to the command signal from the electronic control unit 71 is generated between the measuring electrode 61 B and the reference electrode 61C (between an electrode pair).
- the internal space 6 IN is a space defined by the solid electrolyte layer
- the internal space 61N is separated by the diffusion-controlling layer 61E from a sensor outside (the inside of the exhaust manifold 43).
- the diffusion-controlling layer 61E has a porous structure.
- the diffusion-controlling layer 61 E controls the rate of transfer of exhaust gas from the exhaust manifold 43 to the internal space 61N (by extension, diffusion of exhaust gas into the solid electrolyte layer 61 A).
- the atmosphere introduction passage 61M is open to the atmosphere outside the sensor 61.
- the sensor 61 is usually used to detect the concentration of oxygen in exhaust gas flowing inside the exhaust manifold 43. Specifically, when a voltage for measuring the concentration of oxygen (hereinafter, referred to as ordinary voltage) is applied to the sensor cell 6 ID, oxygen contained in exhaust gas inside the internal space 6 IN is ionized at the measuring electrode 6 IB. Oxygen ions pass from the measuring electrode 61 B through the solid electrolyte layer 61 A and migrate to the reference electrode 61C. Oxygen ions that have reached the reference electrode 61 C return to oxygen through recombination, and the oxygen is released to the atmosphere introduction passage 61M. Migration of electrons due to the series of electrochemical reactions is measured by the sensor control unit 6 IF as an output current from the sensor cell 6 ID.
- a voltage for measuring the concentration of oxygen hereinafter, referred to as ordinary voltage
- the magnitude of the output current (in other words, the amount of oxygen ions that migrate between the electrode pair) is in a one-to-one correspondence with the concentration of oxygen in exhaust gas. That is, the output current from the sensor cell 61 D has a magnitude corresponding to the concentration of oxygen in exhaust gas.
- the output current is generally called limiting current.
- the concentration of oxygen in exhaust gas mainly depends on the air-fuel ratio of air-fuel mixture before combustion.
- the air-fuel ratio of air-fuel mixture can be estimated on the basis of the concentration of oxygen in exhaust gas. Therefore, the concentration of oxygen in exhaust gas is also referred to as the air-fuel ratio of exhaust gas.
- the concentration of oxygen in exhaust gas that is produced as a result of combustion of air-fuel mixture having a stoichiometric air-fuel ratio is substantially zero, and the air-fuel ratio of the exhaust gas is the stoichiometric air- fuel ratio.
- an applied voltage to the sensor cell 61D is referred to as applied voltage to the sensor 61
- an output current from the sensor cell 61 D is referred to as output current from the sensor 61.
- FIG. 3 A is a schematic graph that shows the correlation among an air- fuel ratio A/F of exhaust gas, an applied voltage Vs to the sensor 61 and an output current Is from the sensor 61.
- the air- fuel ratio A/F of exhaust gas and the magnitude of output current Is have a one-to-one correspondence when the applied voltage Vs falls within a specific range. Therefore, a voltage that falls within the range is used as an ordinary voltage V0 (see the alternate long and short dashed line in the graph).
- the ordinary voltage V0 is a fixed value (for example, 0.4 V) that is generally determined on the basis of an experiment, or the like.
- 3B is a schematic graph that shows the correlation between an air-fuel ratio A/F of exhaust gas and an output current Is when the applied voltage Vs is the ordinary voltage V0. As shown in the graph, the air-fuel ratio A/F of exhaust gas is uniquely identified on the basis of the output current Is.
- the value of the output current Is of the sensor 61 is measured by the sensor control unit 6 IF, and is transmitted to the electronic control unit 71.
- the electronic control unit 71 identifies (detects) the air- fuel ratio A/F of exhaust gas by applying the received value of the output current Is of the sensor 61 to the correlation shown in FIG. 3B.
- the sensor 61 provided in the engine 10 to which the embodied system is applied is a sensor having a characteristic of outputting a current (limiting current) that is in a one-to-one correspondence with the concentration of oxygen in exhaust gas.
- the sensor includes a solid electrolyte, the measuring electrode and the reference electrode (the electrode pair), and the diffusion-controlling layer.
- the solid electrolyte is able to conduct oxygen ions.
- the measuring electrode and the reference electrode are provided so as to sandwich the solid electrolyte.
- the diffusion-controlling layer is provided so as to cover the measuring electrode.
- the crank position sensor 65 is configured to output a signal indicating the rotation position of the crankshaft 28.
- the air flow meter 63 is configured to output a signal indicating the amount of air (intake air amount) per unit time, which is taken into the engine 10.
- the electronic control unit 71 calculates the amount of air that is introduced into the combustion chamber 23 on the basis of these signals.
- the accelerator operation amount sensor 64 outputs a signal indicating the opening degree of the accelerator pedal 51. On the basis of the signal, the electronic control unit 71 determines an output that is required of the engine 10.
- the electronic control unit 71 is an electronic circuit mainly formed of a known microcomputer including a CPU, a ROM, a RAM, and the like.
- the CPU of the electronic control unit 71 is configured to transmit command signals to the fuel injection valve 21, the throttle valve 34, the sensor 61, and the like, and receive signals that are output from the plurality of sensors 61 to 64.
- a method of detecting the concentration of SOx in the embodied system will be described with reference to FIG. 4 to FIG. 7.
- the embodied system detects the concentration of SOx in exhaust gas with the use of the sensor 61.
- the applied voltage Vs to the sensor 61 is gradually reduced from a specific first voltage VI to a specific second voltage V2
- the output current Is of the sensor 61 draws a unique waveform corresponding to the concentration of SOx in exhaust gas.
- the process of gradually reducing the applied voltage Vs to the sensor 61 from the first voltage VI to the second voltage V2 is referred to as sweep process.
- FIG. 4 is a schematic graph that shows an example of the waveform of output current of the sensor 61 when the sweep process is executed.
- the output current Is at the time when the applied voltage Vs decreases from the first voltage VI to the second voltage V2 (in the graph, the waveform that extends from point A to point C via point B, indicated by the continuous line) changes with the concentration of SOx in exhaust gas.
- the waveform changes with not only the concentration of SOx in exhaust gas but also the air-fuel ratio (the concentration of oxygen) of exhaust gas during the sweep process.
- the embodied system extracts a value indicating only the concentration of SOx in exhaust gas from the waveform of output current Is, and detects the concentration of SOx in exhaust gas on the basis of the extracted value.
- the embodied system controls the engine 10 so that the air- fuel ratio of exhaust gas during the sweep process is kept at a constant value.
- the output current Is corresponding to the constant value is used as an output component (reference value Iref) corresponding to the air-fuel ratio of exhaust gas.
- the first voltage VI and the second voltage V2 are higher than the ordinary voltage V0 for measuring the concentration of oxygen.
- the embodied system changes the applied voltage Vs from the ordinary voltage VO to the first voltage VI (in the graph, see the waveform from point D to point A, indicated by the dashed line).
- the embodied system reduces the applied voltage Vs from the second voltage V2 to the ordinary voltage VO (in the graph, see the waveform from point C to point D, indicated by the dashed line).
- the embodied system keeps the air- fuel ratio of exhaust gas at a constant value not only during execution of the sweep process (a period from point A via point B to point C) but also periods before and after the sweep process (a period from point D to point A and a period from point C to point D).
- the applied voltage Vs to the sensor 61 is the ordinary voltage VO (see point D in the graph).
- the embodied system executes the sweep process, the embodied system changes the applied voltage Vs from the ordinary voltage VO to the first voltage VI (see point A in the graph).
- SOx is reduced into sulfur in the sensor 61 (specifically, at the surface, or the like, of the measuring electrode 6 IB), and sulfur produced as a result of the reduction is accumulated in the sensor 61 (the surface, or the like, of the measuring electrode 6 IB).
- the amount of sulfur that is accumulated in the sensor 61 corresponds to the concentration of SOx in exhaust gas.
- the first voltage VI is higher than the ordinary voltage V0
- oxygen in exhaust gas is also ionized in the sensor 61
- a component other than SOx for example, H 2 0
- oxygen ions are emitted from the sensor 61 in accordance with the oxygen measuring principle (see the above description) of the sensor 61, and a substance (for example, H 2 ) that is produced as a result of decomposition of a component other than SOx is generally gas at the above-described temperature, so the substance is not accumulated in the sensor 61.
- the first voltage VI is an applied voltage at which sulfur that is produced as a result of reduction of SOx into sulfur in the sensor 61 is accumulated in the sensor 61.
- the first voltage VI is a voltage (for example, 1.0 V) that is confirmed by an experiment, or the like, in advance that the reduction and accumulation occur, and is recorded in the ROM of the electronic control unit 71.
- the output current Is of the sensor 61 increases (see point A in the graph) as shown in the graph because of the above-described reduction, and the like, of SOx.
- the output current Is at this time is a first value II .
- the embodied system executes the sweep process while keeping the air-fuel ratio of exhaust gas at a constant value.
- the embodied system gradually reduces the applied voltage Vs from the first voltage VI .
- oxidation of sulfur into SOx, decomposition of oxygen and decomposition of a component, other than SOx, in exhaust gas occur in the sensor 61. Therefore, an output component due to each of those reactions is included in the output current Is.
- the output component due to the component other than SOx is extremely small, and it may be ignored from the viewpoint of detecting the concentration of SOx.
- the output component Is during execution of the sweep process substantially includes the output component due to sulfur (specifically, SOx) and the output component due to oxygen.
- the output current Is may significantly change so as to reflect the fluctuations in the concentration of oxygen, and the accuracy of measuring the output component due to sulfur (specifically, SOx) may decrease. Therefore, the embodied system executes the sweep process while keeping the air- fuel ratio of exhaust gas at a constant value.
- the output component due to oxygen, included in the output current Is is kept constant (kept at the value of limiting current corresponding to the concentration of oxygen having the constant value)
- the output current Is does not fluctuate because of fluctuations in the concentration of oxygen.
- the output current Is draws the unique waveform corresponding to the concentration of SOx in exhaust gas. Specifically, as shown in the graph, the output current Is draws the waveform that once decreases from the first value II and increases again (see the continuous line that connects point A, point B and point C in the graph).
- the local minimum (hereinafter, referred to as peak value Ipeak) in the waveform has a value corresponding to the concentration of SOx in exhaust gas. That is, the waveform of output current Is has the peak value Ipeak corresponding to the concentration of SOx in exhaust gas.
- the embodied system completes the sweep process (see point C in the graph) at predetermined timing after the peak value Ipeak is output.
- the applied voltage Vs at the timing at which the sweep process is completed is the second voltage V2.
- the second voltage V2 is an applied voltage for obtaining the above-described unique waveform corresponding to the concentration of SOx in exhaust gas, and is an applied voltage at which sulfur is oxidized (reoxidized) into SOx in the sensor 61.
- the output current Is at the timing at which the sweep process is completed is a second value 12.
- the embodied system returns the applied voltage Vs to the ordinary voltage V0 (see point D in the graph).
- the embodied system keeps the air-fuel ratio of exhaust gas at the same constant value as the air-fuel ratio during the sweep process until the applied voltage Vs is returned to the ordinary voltage V0. Therefore, the embodied system uses, as the reference value Iref, the output current Is at the time when the applied voltage Vs is returned to the ordinary voltage V0.
- the embodied system detects the concentration of SOx in exhaust gas on the basis of the reference value Iref and the waveform of output current Is, obtained during the sweep process.
- the embodied system is able to analyze the output component due to the concentration of SOx in exhaust gas as distinguished from the output component due to another component.
- the embodied system identifies (detects) the concentration of SOx in exhaust gas on the basis of the absolute value DEFis of a difference between the peak value Ipeak and the reference value Iref.
- the concentration Csox of SOx increases as the absolute value DEFis of the difference increases. Therefore, the embodied system calculates the absolute value DEFis of the above-described difference from the waveform of output current Is during the sweep process and the reference value Iref, and applies the absolute value DEFis of the difference to the correlation shown in FIG. 5.
- the embodied system identifies (detects) the concentration Csox of SOx in exhaust gas.
- the correlation shown in FIG. 5 is determined by an experiment, or the like, in advance, and is recorded in the ROM of the electronic control unit 71.
- the reference value Iref is used to extract only the output component due to the concentration of SOx from the output current Is. Therefore, the reference value Iref can, for example, translate to the output current of the sensor at the time when the engine is controlled so that the concentration of oxygen in exhaust gas is the constant value in the case where the output current of the sensor depends on only the concentration of oxygen in exhaust gas.
- the embodied system does not necessarily need to detect the concentration of SOx in exhaust gas on the basis of the above-described absolute value DEFis of the difference.
- Other various detection methods can be employed. That is, the embodied system can analyze the waveform of output current by various methods.
- the embodied system can identify (detect) the concentration of SOx in exhaust gas on the basis of an area AREAis of a region surrounded by the waveform of output current Is during the sweep process and the reference value Iref. Specifically, the concentration Csox of SOx increases as the area AREAis increases. Therefore, the embodied system calculates the area AREAis of the region from the waveform of output current Is, and applies the area AREAis of the region to a map, or the like (not shown), determined in advance. Thus, the embodied system can detect the concentration Csox of SOx in exhaust gas.
- the embodied system can identify (detect) the concentration of SOx in exhaust gas on the basis of the absolute value tanOis of a rate of change in output current Is between the timing (point B in the graph) at which the output current Is is the peak value Ipeak and the timing (point E in the graph) at which the output current Is is the reference value Iref.
- the concentration Csox of SOx increases as the absolute value tanOis of the rate of change increases.
- the embodied system calculates the absolute value tanOis of the rate of change from the waveform of output current Is, and applies the absolute value tanOis of the rate of change to a map, or the like (not shown), determined in advance.
- the embodied system can detect the concentration Csox of SOx in exhaust gas.
- the second voltage V2 coincide with the ordinary voltage V0.
- the detection methods shown in FIG. 4 and FIG. 7 it is sufficient as long as the peak value Ipeak is acquired, so the second voltage V2 does not necessarily need to coincide with the ordinary voltage V0.
- the embodied system may use, as the second voltage V2, an applied voltage specified in advance when oxidation of sulfur into SOx occurs in the sensor 61 through an experiment, or the like, or may use, as the second voltage V2, an applied voltage at the time when it is confirmed on the basis of the output current Is that oxidation of sulfur is occurring while the sweep process is actually being executed.
- the embodied system just needs to gradually reduce the applied voltage Vs to the sensor 61 in the sweep process, and can employ various reducing modes.
- the applied voltage Vs may be continuously reduced or may be discretely reduced at appropriate intervals from the viewpoint (see the above description) of analyzing the waveform of output current Is.
- the rate of reduction in applied voltage Vs (the amount of reduction in applied voltage Vs per unit time) can be determined in consideration of a rate at which reoxidation from sulfur into SOx occurs in the sensor 61, a sensitivity of detecting a change in output current resulting from reoxidation, detection accuracy that is required of the embodied system, and the like.
- the voltage may be reduced at the same rate of reduction from the start of the sweep process to the completion of the sweep process or the voltage may be reduced at a varying rate of reduction.
- the rate of reduction in applied voltage Vs be not varied for each measurement(each measurement be carried out at the same rate of reduction).
- the embodied system may use, as the air- fuel ratio (constant value) of exhaust gas during the sweep process, a sweep process-dedicated target value determined in advance by an experiment, or the like, or a real air-fuel ratio at the time when the sweep process is actually started.
- the embodied system does not necessarily need to use, as the first voltage VI, the voltage at which it is confirmed through an experiment, or the like, in advance that reduction of SOx occurs.
- the applied voltage Vs is gradually increased from the applied voltage that is known to be lower than the first voltage VI (for example, the ordinary voltage V0 for detecting the concentration of oxygen), and the applied voltage Vs at the time when it is confirmed on the basis of the output current Is that reduction of SOx is occurring can be used.
- the embodied system detects a value due to the concentration of SOx (DEFis in FIG. 4, AREAis in FIG. 6 or tanOis in FIG. 7) in process of detecting the concentration of SOx in exhaust gas. Because this value is in a one-to-one correspondence with the concentration of SOx, this value substantially indicates the concentration of SOx. Therefore, a target to be detected by the embodied system (the concentration of SOx) can translate to at least one of the concentration of SOx in exhaust gas or a value that is in a one-to-one correspondence with the concentration of SOx.
- the embodied system executes the sweep process during a specific period (between time tl and time t2) after the timing at which a condition (described later in detail) for detecting the concentration of SOx in exhaust gas is satisfied, and detects the concentration of SOx in exhaust gas.
- the air-fuel ratio of exhaust gas changes on the basis of a required output, or the like, of the engine 10 irrespective of the detected concentration of SOx.
- the applied voltage Vs to the sensor 61 is set to the ordinary voltage V0.
- the output current Is of the sensor 61 at time tO is a value 10 corresponding to the air-fuel ratio of exhaust gas.
- the embodied system increases the applied voltage Vs from the ordinary voltage V0 to the first voltage VI in order to start the sweep process.
- the applied voltage Vs reaches the first voltage VI (see point A in the graph).
- the embodied system executes the sweep process while keeping the air-fuel ratio afl of exhaust gas at time tl . That is, the embodied system controls the engine 10 so that the air- fuel ratio of exhaust gas during execution of the sweep process is kept at the constant value afl (for example, the operating state of the engine 10 at time tl is kept as it is).
- Point A, point B and point C in the graph respectively correspond to point A, point B and point C in each of FIG. 4, FIG. 6 and FIG. 7.
- the air-fuel ratio at timing other than during execution of the sweep process is not specifically controlled to a constant value.
- the embodied system executes the sweep process during the period from time tl to time t2. Specifically, the embodied system gradually reduces the applied voltage Vs from the first voltage VI to the second voltage V2 at a constant rate while keeping the air-fuel ratio of exhaust gas at the constant value afl .
- the embodied system records the waveform of output current Is during the sweep process (the waveform that connects point A to point C via point B) in the RAM of the electronic control unit 71.
- the second voltage V2 is set to the same voltage as the ordinary voltage V0.
- the embodied system calculates the peak value Ipeak (see point B in the graph) on the basis of the output currents Is recorded in the RAM. In addition, the embodied system uses the output current Is at time t2 as the reference value Iref (see point C in the graph). At time t2, the sweep process completes. The embodied system calculates the absolute value DEFis of the difference between the peak value Ipeak and the reference value Iref.
- the embodied system detects the concentration Csox of SOx in exhaust gas by applying the absolute value DEFis of the difference to a map that expresses the correlation between the absolute value DEFis of the difference and the concentration of SOx in exhaust gas (which is recorded in the ROM of the electronic control unit 71, and see FIG. 5).
- the embodied system may use the absolute value DEFis of the difference itself in a process (for example, an alarm for informing a high concentration of SOx or measurement of the concentration of sulfur in fuel) as a value that is in a one-to-one correspondence with the concentration of SOx without obtaining the concentration Csox of SOx.
- a process for example, an alarm for informing a high concentration of SOx or measurement of the concentration of sulfur in fuel
- the embodied system does not necessarily need to detect the concentration of SOx as shown in FIG. 8.
- the embodied system can set the second voltage V2 to an applied voltage that does not coincide with the ordinary voltage V0.
- the second voltage V2 is the applied voltage Vs at which the sweep process is completed.
- the embodied system momentarily monitors the output current Is that is recorded in the RAM during the sweep process.
- the embodied system completes the sweep process at any timing after the output of the peak value Ipeak has been confirmed.
- the applied voltage Vs at the time when the embodied system completes the sweep process in this way is the second voltage V2 (see point C in graph).
- the output current Is at time t2 at which the sweep process completes includes not only the output component due to the air- fuel ratio of exhaust gas but also the output component due to the concentration of SOx. Therefore, the output current Is at the completion (time t2 in FIG. 8) of the sweep process cannot be used as the reference value Iref unlike the example of detection shown in FIG. 8. Therefore, in this example, an output current during the sweep process, measured by another oxygen concentration sensor (not shown) different from the sensor 61 , or an output current that is obtained by applying the air-fuel ratio of exhaust gas, estimated from the operating state of the engine 10 during the sweep process, to the map shown in FIG. 3B is used as the reference value Iref.
- the output characteristic of the other sensor and the output characteristic of the sensor 61 be the same or the output current of the other sensor be converted (corrected) to the output current of the sensor 61 and used.
- the process of detecting the concentration of SOx can be complicated as compared to the example of detection shown in FIG. 8.
- this example of detection is advantageous in that the length of time during which the sweep process is executed is shortened as compared to the example of detection shown in FIG. 8.
- the embodied system can use an air-fuel ratio, other than the air- fuel ratio afl of exhaust gas at the start (time tl) of the sweep process, as the air- fuel ratio (the concentration of oxygen) in exhaust gas during the sweep process.
- an air-fuel ratio other than the air- fuel ratio afl of exhaust gas at the start (time tl) of the sweep process
- the air- fuel ratio the concentration of oxygen
- a preset single fixed value a value selected from among a plurality of prepared fixed values, or the like, can be used as the air-fuel ratio of exhaust gas during the sweep process.
- the waveform of the output current Is during the sweep process occurs as a result of reoxidation of sulfur accumulated in the sensor 61. Therefore, the concentration of SOx in exhaust gas, which is detected by the embodied system, strictly indicates the concentration of SOx in exhaust gas at the timing at which sulfur is accumulated in the sensor 61 (at the start of the sweep process). On the other hand, depending on the configuration, arrangement, and the like, of the sensor 61, a certain length of time may be required in order to sufficiently accumulate sulfur having a sufficient amount for detecting the concentration of SOx.
- the concentration of SOx which is detected by the embodied system, indicates the average value of the concentration of SOx in exhaust gas during a period during which sulfur is accumulated in the sensor 61.
- the CPU of the electronic control unit 71 executes a routine shown in FIG. 10, executes the sweep process while controlling the engine 10 so that the air- fuel ratio (the concentration of oxygen) of exhaust gas is kept at a constant value, and detects the concentration of SOx in exhaust gas.
- the CPU executes the routine of detecting the concentration of SOx in FIG. 10 each time a predetermined time elapses.
- the CPU proceeds to step 1005, and determines whether the condition for detecting the concentration of SOx is satisfied at present timing.
- the condition is satisfied when the engine 10 is operated in a steady state and the concentration of SOx has not been detected once from when a vehicle on which the engine 10 is mounted is refueled last time to the present timing.
- step 1010 the CPU makes affirmative determination in step 1005, and proceeds to step 1010.
- the CPU transmits, to the sensor 61 (to the sensor control unit 6 IF), a command signal for increasing the applied voltage Vs to the sensor 61 to the first voltage VI .
- the sensor 61 increases the applied voltage Vs to the first voltage VI .
- the CPU transmits, to the sensor 61 , a command signal for keeping the applied voltage Vs at the ordinary voltage V0.
- step 1015 the CPU starts control for keeping the concentration of oxygen in exhaust gas at a constant value.
- the CPU keeps the air-fuel ratio of exhaust gas by, while considering the intake air amount, adjusting a fuel injection amount so that the air- fuel ratio (the concentration of oxygen) of exhaust gas is kept at the present timing (the start timing of the sweep process).
- the constant value in this example is the value of the concentration of oxygen in exhaust gas at the timing at which the sweep process is started. Because the concentration of oxygen in exhaust gas (air-fuel ratio) is stabilized through this control, this control is also referred to as stabilizing control.
- step 1020 the CPU transmits, to the sensor 61, a command signal for gradually reducing the applied voltage Vs from the first voltage VI to the second voltage V2, the CPU records, in the RAM, the waveform of output current Is received from the sensor 61.
- the second voltage V2 is set to the same voltage as the ordinary voltage V0.
- the CPU proceeds to step 1035.
- the CPU calculates the peak value Ipeak of the output current Is on the basis of the waveform of output current Is during the sweep process.
- the waveform of output current Is is recorded in the RAM.
- the CPU calculates the rate of change in the output current Is at intervals of a predetermined time from the start timing of the sweep process, and calculates the output current Is at the timing at which the rate of change is zero (the timing at which the rate of change is inverted from a positive value to a negative value) as the peak value Ipeak.
- the CPU may calculate a minimum value among the output currents Is (sample values) recorded in the RAM as the peak value Ipeak.
- step 1040 the CPU calculates the absolute value DEFis of the difference between the peak value Ipeak and the reference value Iref.
- step 1045 the CPU identifies the concentration Csox of SOx by applying the calculated absolute value DEFis of the difference to a lookup table (Map (DEFis) in the flowchart) that expresses the correlation between the concentration Csox of SOx and the absolute value DEFis of the above-described difference. That is, in step 1045, the concentration Csox of SOx is detected.
- Map DEFis
- step 1095 the CPU proceeds to step 1095, and once ends the routine.
- the CPU makes negative determination in step 1005, directly proceeds to step 1095, and ends the routine.
- the embodied system executes the sweep process while controlling the engine 10 so that the concentration of oxygen in exhaust gas (air-fuel ratio) is kept at a constant value, and identifies (detects) the concentration Csox of SOx in exhaust gas on the basis of the reference value Iref and the waveform of output current Is of the sensor 61 during the sweep process.
- the embodied system is able to accurately detect the concentration Csox of SOx in exhaust gas while excluding the influence of components other than SOx in exhaust gas (for example, oxygen and H 2 0) as much as possible.
- the invention is not limited to the above-described embodiment.
- the sensor 61 included in the engine 10 to which the embodied system is applied is a single-cell sensor having the single sensor cell 6 ID.
- the engine 10 may include a sensor having a plurality of the sensor cells 61 D (for example, dual-cell sensor) instead of the sensor 61.
- FIG. 11 is a schematic view that shows the schematic configuration of the dual-cell sensor.
- the dual-cell sensor 62 includes a sensor cell 62D1 and a sensor cell 62D2.
- the sensor cell 62D1 includes a solid electrolyte layer 62 Al , a measuring electrode 62B1 and a reference electrode 62C1.
- the sensor cell 62D2 includes a solid electrolyte layer 62A2, a measuring electrode 62B2 and a reference electrode 62C2.
- the sensor cell 62D1 is also referred to as upstream-side cell.
- the sensor cell 62D2 is also referred to as downstream-side cell.
- the dual-cell sensor 62 further includes a diffusion-controlling layer 62E, a sensor control unit 62F, a first alumina layer 62G, a second alumina layer 62H, a third alumina layer 621, a fourth alumina layer 62J, a fifth alumina layer 62K, a sixth alumina layer 62L and a heater 62M.
- a diffusion-controlling layer 62E a sensor control unit 62F
- a first alumina layer 62G a second alumina layer 62H
- a third alumina layer 621 a fourth alumina layer 62J
- a fifth alumina layer 62K a sixth alumina layer 62L
- a heater 62M heater
- an atmosphere introduction passage 62N and an internal space 620 are formed in the dual-cell sensor 62.
- the dual-cell sensor 62 discharges oxygen in exhaust gas to the outside of the internal space 6 IN with the use of the upstream-side cell 62D1, the dual-cell sensor 62 is able to detect the concentration of SOx in exhaust gas with the use of the downstream-side cell 62D2.
- the output component due to oxygen is not substantially included in the output current of the downstream-side cell 62D2. Therefore, in comparison with the case where the single-cell sensor is used (in . the case of the embodied system), the influence of a change in the concentration of oxygen in exhaust gas on detection of the concentration of SOx is small.
- the engine 10 to which the embodied system is applied is a gasoline engine; however, the control system or method according to the invention may also be applied to a diesel engine.
- the embodied system uses a method of keeping the operating state of the engine 10 at the start timing of the sweep process up to the completion timing of the sweep process as control for keeping the air-fuel ratio (the concentration of oxygen) in exhaust gas during the sweep process at a constant value (stabilizing control) (see step 1015 in FIG. 10).
- stabilizing control the air-fuel ratio of exhaust gas during the sweep process.
- the system according to the invention may control the engine 10 so that the air- fuel ratio of exhaust gas is subjected to feedback control while the air-fuel ratio of exhaust gas during the sweep process is momentarily acquired as stabilizing control.
- the embodied system can use a method of executing feedback control over the fuel injection amount so that, after the intake air amount is determined on the basis of the required output of the engine 10, the air- fuel ratio of exhaust gas coincides with a constant value.
- the system according to the invention can use a method of adjusting the intake air amount, the EGR amount, and the like, so that, after the fuel injection amount is determined on the basis of the required output of the engine 10, the air-fuel ratio of exhaust gas coincides with a constant value as stabilizing control.
- the system according to the invention can use a method of compensating for an insufficient amount of output with the motor while controlling the engine 10 so that the air- fuel ratio of exhaust gas is kept at a constant value.
- the system according to the invention can be configured to estimate the amount of a sulfur component (the concentration of sulfur) that is contained in fuel on the basis of the concentration of SOx in exhaust gas.
- concentration of sulfur in fuel generally depends on the type, or the like, of fuel. Therefore, the concentration of SOx in exhaust gas just needs to be acquired each time fuel is supplied to the engine from the viewpoint of estimating the concentration of sulfur in fuel.
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Abstract
A control system for an engine including a limiting current sensor, the control system includes an ECU. The ECU is configured to detect a concentration of SOx in exhaust gas; control the engine such that the concentration of oxygen in exhaust gas is kept at a constant value; execute a sweep process for gradually reducing an applied voltage to the sensor from a first voltage to a second voltage, sulfur is produced in the sensor at the first voltage, sulfur is oxidized in the sensor at the second voltage; and detect the concentration of SOx in exhaust gas based on a waveform of output current of the sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the sensor, the value of limiting current of the sensor corresponding to the concentration of oxygen having the constant value.
Description
CONTROL SYSTEM AND CONTROL METHOD FOR INTERNAL COMBUSTION
ENGINE
BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The invention relates to a control system and control method for an internal combustion engine, which detect the concentration of SOx in exhaust gas with the use of a limiting current sensor that is able to detect the concentration of oxygen in exhaust gas from the internal combustion engine.
2. Description of Related Art
[0002] As a sensor that detects the concentration of oxygen in exhaust gas, there is known a limiting current sensor including a solid electrolyte, a pair of electrodes (an electrode pair formed of a measuring electrode and a reference electrode) and a diffusion-controlling layer (diffusion resistance layer). The solid electrolyte is able to conduct oxygen ions. The pair of electrodes are provided so as to sandwich the solid electrolyte. The diffusion-controlling layer is provided so as to cover the measuring electrode.
[0003] The principle of detecting the concentration of oxygen in exhaust gas with the use of the above sensor is as follows. Initially, when a voltage is applied to the electrode pair so that a predetermined potential difference is generated between the electrode pair, oxygen in exhaust gas is ionized at the measuring electrode. Oxygen ions pass through the solid electrolyte and migrate to the reference electrode, and then return into oxygen at the reference electrode through recombination. Migration of electrons due to the series of electrochemical reactions is output as a current from the electrode pair. Because the diffusion-controlling layer is controlling migration of oxygen to the measuring electrode, the magnitude of current that is output from the electrode pair is in a one-to-one correspondence with the concentration of oxygen in exhaust gas. Thus, when a current that is output from the electrode pair is measured, the concentration of oxygen in exhaust gas is identified (detected) on the basis of the measured current.
[0004] As one of such detecting devices, there is a detecting device that detects the concentration of a component other than oxygen (for example, the concentration of H20, that is, humidity) by utilizing the fact that a molecular that is decomposed at the measuring electrode varies as the magnitude of voltage that is applied to the electrode pair
varies. Specifically, the detecting device uses a sensor having two sets of electrode pair (an upstream-side electrode pair and a downstream-side electrode pair). The detecting device initially applies a voltage having a magnitude of decomposing oxygen to the upstream-side electrode pair, and emits oxygen in exhaust gas to the outside of the sensor. Subsequently, the detecting device applies a voltage having a magnitude of decomposing H20 to the downstream-side electrode pair, and measures a current that is output from the downstream-side electrode pair. The detecting device identifies the concentration of H20 in exhaust gas on the basis of the current. Thus, the detecting device is able to measure a current that is output because of H20 as distinguished from a current that is output because of oxygen, so it is possible to accurately detect the concentration of H20 (see, for example, Japanese Patent Application Publication No. 2-122255 (JP 2-122255 A)).
[0005] Hereinafter, the limiting current sensor that is able to detect the concentration of oxygen in exhaust gas is referred to as oxygen concentration sensor, the voltage that is applied to the electrode pair of the sensor is referred to as applied voltage to the sensor, and the current that is output from the electrode pair is referred to as output current of the sensor. The internal combustion engine is referred to as engine.
[0006] The amount of sulfur component contained in fuel for the engine is generally an extremely small amount. However, depending on a region, or the like, in which the engine is used, fuel having a relatively high concentration of sulfur may be used. In this case, sulfur oxides (SOx) that are produced during combustion can cause white smoke, or the like, of exhaust gas. Therefore, it is desired to measure the concentration of sulfur in fuel. The inventors of the invention have studied that the concentration of SOx in exhaust gas is detected as a parameter related to the concentration of sulfur in fuel.
[0007] Specifically, the inventors of the invention have studied whether it is possible to detect the concentration of SOx in exhaust gas by using the method employed in the above-described detecting device. As a result of the study, it has been found that, when a voltage having a magnitude of decomposing SOx (in other words, reducing SOx into sulfur) is applied to the electrode pair of the oxygen concentration sensor, not only SOx but also a component other than SOx in exhaust gas also decomposes, and it has been found that it is not easy to measure only an output current due to SOx separately. That is, with the method employed in the existing device, there is a case where it is difficult to accurately detect the concentration of SOx in exhaust gas.
SUMMARY OF THE INVENTION
[0008] The invention provides a control system and a control method that are able
to accurately detect the concentration of SOx in exhaust gas from an engine.
[0009] A first aspect of the invention provides a control system for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas. The control system includes an electronic control unit. The electronic control unit is configured to: (i) detect a concentration of SOx in exhaust gas; (ii) control the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value; (iii) execute a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and (iv) detect the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the sensor, the value of limiting current of the limiting current sensor corresponding to the concentration of oxygen having the constant value.
[0010] According to the experiment and consideration of the inventors of the invention, when the sweep process for reducing the applied voltage to the limiting current sensor from the first voltage to the second voltage is executed, the waveform of output current of the limiting current sensor includes an output component due to reoxidation of sulfur into SOx in the limiting current sensor (output component due to the concentration of SOx in exhaust gas) and an output component due to the concentration of oxygen in exhaust gas; however, the waveform of output current of the limiting current sensor does not substantially include an output component due to another component.
[0011] Therefore, the control system executes the sweep process while keeping the concentration of oxygen in exhaust gas at the constant value. Thus, the output component due to the concentration of oxygen is kept constant, thus preventing fluctuations in the concentration of oxygen from disturbing the waveform of output current. The system according to the invention analyzes the waveform of output current while considering the output component due to the concentration of oxygen (that is, the reference value). As a result, the system according to the invention is able to measure only the output component due to the concentration of SOx by extracting the output component from the output current of the limiting current sensor.
[0012] Thus, with the above configuration, it is possible to accurately detect the concentration of SOx in exhaust gas.
[0013] With the above configuration, in process of detecting the concentration of SOx in exhaust gas, the output component due to the concentration of SOx is detected. The output component is in a one-to-one correspondence with the concentration of SOx, so the output component substantially indicates the concentration of SOx. Therefore, the concentration of SOx in the invention can translate to at least one of the concentration of SOx in exhaust gas or a value that is in a one-to-one correspondence with the concentration of SOx.
[0014] The system according to the invention does not simply measure an output current for each applied voltage. The system is able to measure only an output current component due to SOx in exhaust gas separately through a specific process according to the invention called sweep process. As a result, it has been difficult to distinguish SOx from other components in exhaust gas, whereas the system according to the invention is able to accurately detect the concentration of SOx in exhaust gas. In this way, the system according to the invention has an advantageous effect as compared to the existing system.
[0015] The reference value may be acquired when the sweep process is actually executed or may be acquired by consulting a map, or the like, determined in advance through an experiment, or the like.
[0016] In the case where the reference value is acquired when the sweep process is actually executed, if the timing of acquiring the reference value and the timing of executing the sweep process are excessively apart from each other, there is a possibility that the detection accuracy of the concentration of SOx decreases, for example, if the output characteristic of the limiting current sensor has changed with time. Therefore, in order to accurately detect the concentration of SOx as much as possible, it is desirable that the timing of acquiring the reference value and the timing of executing the sweep process be close to each other as much as possible.
[0017] In the control system, the second voltage may coincide with an applied voltage that is used when the concentration of oxygen in exhaust gas is detected, and the reference value may be a value of output current of the limiting current sensor at timing at which the applied voltage to the limiting current sensor is reduced to the second voltage in the sweep process.
[0018] According to the experiment, and the like, of the inventors, when the sweep process is executed, usually, reoxidation of the entire sulfur accumulated in the limiting current sensor completes before the second voltage reaches the applied voltage that is used at the time when the concentration of oxygen in exhaust gas is detected. Therefore, although the second voltage itself is a voltage at which oxidation of sulfur can
occur, the output current at the time when the applied voltage is the second voltage substantially includes only the output component due to oxygen.
[0019] With the above configuration, the output current at the timing at which the applied voltage is reduced to the second voltage is used as the reference value. The system according to the aspect acquires the reference value at the timing at which the sweep process has completed, so acquiring the reference value and executing the sweep process are substantially successively carried out. Thus, the system according to the aspect is able to further accurately detect the concentration of SOx in exhaust gas in comparison with the case where the timing of acquiring the reference value and the timing of executing the sweep process are apart from each other.
[0020] In the case where the reference value is acquired by consulting a map, or the like, determined in advance through an experiment, or the like, for example, the correlation between the concentration of oxygen and the limiting current, which is prepared for measuring the concentration of oxygen, may be utilized.
[0021] In the control system, the electronic control unit may be configured to prestore a correlation between the concentration of oxygen in exhaust gas and the value of limiting current, and the reference value may be a value of limiting current, which is obtained by applying the concentration of oxygen having the constant value to the correlation.
[0022] With the above configuration, if the concentration of oxygen in exhaust gas (constant value) during the sweep process is acquired, it is not required to separately carry out measurement, or the like, for determining the reference value. With the above configuration, it is possible to simply and quickly detect the concentration of SOx. Because the correlation is prestored, the system according to the aspect is able to reliably determine the reference value even when the concentration of oxygen in exhaust gas (constant value) during the sweep process varies for the concentration of SOx.
[0023] According to the experiment, and the like, of the inventors, the waveform of output current of the limiting current sensor during execution of the sweep process includes an extreme value (a peak value of output current) that changes with the concentration of SOx in exhaust gas (for example, see FIG. 4). In the above configuration, as one mode of detecting the concentration of SOx in exhaust gas, the concentration of SOx is obtained from the absolute value of a difference between the extreme value and the reference value.
[0024] In the control system, the electronic control unit may be configured to use an extreme value of output current of the limiting current sensor during execution of the
sweep process as a value indicating a characteristic of the waveform of the output current, the electronic control unit may be configured to detect the concentration of SOx in exhaust gas such that the concentration of SOx increases as the absolute value of a difference between the extreme value and the reference value increases, and the second voltage may be an applied voltage lower than an applied voltage at which the extreme value is output.
[0025] With the above configuration, it is possible to detect the concentration of SOx in exhaust gas without requiring complicated calculation. The correlation between the absolute value of the difference between the extreme value and the reference value and the concentration of SOx in exhaust gas can be determined by an experiment, or the like, in advance.
[0026] A second aspect of the invention provides a control method for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas. The control method includes: detecting a concentration of SOx in exhaust gas; controlling the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value; executing a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and detecting the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the limiting current sensor, the value of limiting current of the limiting current sensor corresponding to the concentration of oxygen having the constant value.
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Features, advantages, and technical and industrial significance of exemplary embodiments of the invention will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
FIG. 1 is a schematic view that shows the schematic configuration of an internal combustion engine to which a control system according to an embodiment of the invention is applied;
FIG. 2 is a schematic view that shows the schematic configuration of a limiting current oxygen concentration sensor (single-cell sensor) according to the embodiment;
FIG. 3A and FIG. 3B are schematic graphs that show the output characteristics of the
limiting current oxygen concentration sensor according to the embodiment;
FIG. 4 is a schematic graph that shows an example of the waveform of output current of the sensor when a sweep process is executed according to the embodiment;
FIG. 5 is a schematic graph that shows the correlation between a concentration of SOx in exhaust gas and an output of the sensor according to the embodiment;
FIG. 6 is a schematic graph that shows an example of the waveform of output current of the sensor when the sweep process is executed according to the embodiment;
FIG. 7 is a schematic graph that shows an example of the waveform of output current of the sensor when the sweep process is executed according to the embodiment;
FIG. 8 is a time chart that shows an example of the correlation among an air- fuel ratio of exhaust gas (a concentration of oxygen in exhaust gas), an applied voltage to the sensor and an output current of the sensor according to the embodiment;
FIG. 9 is a time chart that shows another example of the correlation among an air-fuel ratio of exhaust gas (a concentration of oxygen in exhaust gas), an applied voltage to the sensor and an output current of the sensor according to the embodiment;
FIG. 10 is a flowchart that shows a routine that is executed by the control system according to the embodiment; and
FIG. 11 is a schematic view that shows the schematic configuration of a limiting current oxygen concentration sensor (dual-cell sensor) according to the embodiment.
DETAILED DESCRIPTION OF EMBODIMENTS
[0028] FIG. 1 shows the schematic configuration of an internal combustion engine 10 to which a control system according to an embodiment of the invention (hereinafter, referred to as embodied system) is applied.
[0029] The engine 10 is a spark ignition internal combustion engine (so-called gasoline engine). The engine 10 includes a body portion 20, an intake system 30, an exhaust system 40, an accelerator pedal 51, a plurality of sensors 61 to 64, and an electronic control unit 71. The body portion 20 includes a fuel injection valve 21 , an ignition plug 22, a combustion chamber 23, a fuel pump 24, a fuel supply tube 25, a piston 26, a connecting rod 27 and a crankshaft 28. The intake system 30 includes an intake valve 31, an intake port 32, an intake manifold 33, a throttle valve 34, an intake pipe 35 and an air cleaner 36. The exhaust system 40 includes an exhaust valve 41, an exhaust port 42, an exhaust manifold 43, an exhaust gas purification catalyst 44 and an exhaust pipe 45. The plurality of sensors 61 to 64 include a limiting current oxygen concentration sensor 61, a crank position sensor 65, an air flow meter 63 and an accelerator operation
amount sensor 64.
[0030] As shown in FIG. 2, the limiting current oxygen concentration sensor 61 (hereinafter referred to as sensor 61) includes a sensor cell 6 ID, a diffusion-controlling layer 6 IE, a sensor control unit 6 IF, a first alumina layer 61G, a second alumina layer 61H, a third alumina layer 611, a fourth alumina layer 61J, a fifth alumina layer 61 K and a heater 61L. The sensor cell 61D is formed of a solid electrolyte layer 61 A, a measuring electrode 61B and a reference electrode 61C. An atmosphere introduction passage 61M and an internal space 6 IN are formed in the sensor 61. The sensor 61 is a single-cell sensor having the single sensor cell 6 ID.
[0031] The sensor 61 is provided at the exhaust manifold 43 such that a distal end
(a distal end at a side at which the diffusion-controlling layer 61E is provided) is exposed to exhaust gas. In consideration of the possibility that the concentration of SOx in exhaust gas changes by the exhaust gas purification catalyst 44, the sensor 61 is provided on the upstream side of the exhaust gas purification catalyst 44.
[0032] The solid electrolyte layer 61 A is made of zirconia, or the like, that is able to conduct oxygen ions. The measuring electrode 61B and the reference electrode 61C are made of platinum group elements, such as platinum and rhodium, or an alloy including any one of the platinum group elements. The measuring electrode 61 B and the reference electrode 61 C are arranged so as to sandwich the solid electrolyte layer 61 A. The measuring electrode 61 B is arranged on one-side wall face of the solid electrolyte layer 61 A (specifically, on an wall face that defines the internal space 6 IN). The reference electrode 61 C is arranged on the other-side wall face of the solid electrolyte layer 61 A (specifically, a wall face that defines the atmosphere introduction passage 61M).
[0033] The sensor control unit 61 F is connected to the sensor cell 6 ID such that the measuring electrode 61 B is a cathode and the reference electrode 61C is an anode. The sensor control unit 61F is connected to the heater 61 L so as to be able to supply electric power to the heater 61L. The sensor control unit 6 IF is connected to the electronic control unit 71.
[0034] The sensor control unit 61F receives a command signal from the electronic control unit 71, applies the sensor cell 61 D with a voltage corresponding to the command signal, and transmits the value of current that is output from the sensor cell 6 ID to the electronic control unit 71. The sensor control unit 61F receives a command signal from the electronic control unit 71, and supplies the heater 61 L with an electric power corresponding to the command signal.
[0035] Application of a voltage to the sensor cell 61D is carried out by applying a
voltage to the measuring electrode 61B and the reference electrode 61C so that a potential difference according to the command signal from the electronic control unit 71 is generated between the measuring electrode 61 B and the reference electrode 61C (between an electrode pair).
[0036] The internal space 6 IN is a space defined by the solid electrolyte layer
61 A, the diffusion-controlling layer 6 IE, the first alumina layer 61 G and the second alumina layer 61H. The internal space 61N is separated by the diffusion-controlling layer 61E from a sensor outside (the inside of the exhaust manifold 43). The diffusion-controlling layer 61E has a porous structure. The diffusion-controlling layer 61 E controls the rate of transfer of exhaust gas from the exhaust manifold 43 to the internal space 61N (by extension, diffusion of exhaust gas into the solid electrolyte layer 61 A). The atmosphere introduction passage 61M is open to the atmosphere outside the sensor 61.
[0037] The sensor 61 is usually used to detect the concentration of oxygen in exhaust gas flowing inside the exhaust manifold 43. Specifically, when a voltage for measuring the concentration of oxygen (hereinafter, referred to as ordinary voltage) is applied to the sensor cell 6 ID, oxygen contained in exhaust gas inside the internal space 6 IN is ionized at the measuring electrode 6 IB. Oxygen ions pass from the measuring electrode 61 B through the solid electrolyte layer 61 A and migrate to the reference electrode 61C. Oxygen ions that have reached the reference electrode 61 C return to oxygen through recombination, and the oxygen is released to the atmosphere introduction passage 61M. Migration of electrons due to the series of electrochemical reactions is measured by the sensor control unit 6 IF as an output current from the sensor cell 6 ID. Because of the function of the diffusion-controlling layer 6 IE, the magnitude of the output current (in other words, the amount of oxygen ions that migrate between the electrode pair) is in a one-to-one correspondence with the concentration of oxygen in exhaust gas. That is, the output current from the sensor cell 61 D has a magnitude corresponding to the concentration of oxygen in exhaust gas. The output current is generally called limiting current.
[0038] Incidentally, the concentration of oxygen in exhaust gas mainly depends on the air-fuel ratio of air-fuel mixture before combustion. Conversely, the air-fuel ratio of air-fuel mixture can be estimated on the basis of the concentration of oxygen in exhaust gas. Therefore, the concentration of oxygen in exhaust gas is also referred to as the air-fuel ratio of exhaust gas. In accordance with such naming, for example, the concentration of oxygen in exhaust gas that is produced as a result of combustion of air-fuel mixture having a stoichiometric air-fuel ratio is substantially zero, and the air-fuel
ratio of the exhaust gas is the stoichiometric air- fuel ratio. Hereinafter, an applied voltage to the sensor cell 61D is referred to as applied voltage to the sensor 61 , and an output current from the sensor cell 61 D is referred to as output current from the sensor 61.
[0039] FIG. 3 A is a schematic graph that shows the correlation among an air- fuel ratio A/F of exhaust gas, an applied voltage Vs to the sensor 61 and an output current Is from the sensor 61. As shown in the graph, the air- fuel ratio A/F of exhaust gas and the magnitude of output current Is (limiting current) have a one-to-one correspondence when the applied voltage Vs falls within a specific range. Therefore, a voltage that falls within the range is used as an ordinary voltage V0 (see the alternate long and short dashed line in the graph). The ordinary voltage V0 is a fixed value (for example, 0.4 V) that is generally determined on the basis of an experiment, or the like. FIG. 3B is a schematic graph that shows the correlation between an air-fuel ratio A/F of exhaust gas and an output current Is when the applied voltage Vs is the ordinary voltage V0. As shown in the graph, the air-fuel ratio A/F of exhaust gas is uniquely identified on the basis of the output current Is.
[0040] In the embodied system, the value of the output current Is of the sensor 61 is measured by the sensor control unit 6 IF, and is transmitted to the electronic control unit 71. The electronic control unit 71 identifies (detects) the air- fuel ratio A/F of exhaust gas by applying the received value of the output current Is of the sensor 61 to the correlation shown in FIG. 3B.
[0041] In this way, the sensor 61 provided in the engine 10 to which the embodied system is applied is a sensor having a characteristic of outputting a current (limiting current) that is in a one-to-one correspondence with the concentration of oxygen in exhaust gas. The sensor includes a solid electrolyte, the measuring electrode and the reference electrode (the electrode pair), and the diffusion-controlling layer. The solid electrolyte is able to conduct oxygen ions. The measuring electrode and the reference electrode are provided so as to sandwich the solid electrolyte. The diffusion-controlling layer is provided so as to cover the measuring electrode. In the sensor having the above configuration, an applied voltage to the sensor can translate to a voltage that is applied to the electrode pair in order to generate a potential difference between the electrode pair. An output current of the sensor can translate to a current that is output from the electrode pair.
[0042] Referring back to FIG. 1, the crank position sensor 65 is configured to output a signal indicating the rotation position of the crankshaft 28. The air flow meter 63 is configured to output a signal indicating the amount of air (intake air amount) per unit time, which is taken into the engine 10. The electronic control unit 71 calculates the
amount of air that is introduced into the combustion chamber 23 on the basis of these signals. The accelerator operation amount sensor 64 outputs a signal indicating the opening degree of the accelerator pedal 51. On the basis of the signal, the electronic control unit 71 determines an output that is required of the engine 10.
[0043] The electronic control unit 71 is an electronic circuit mainly formed of a known microcomputer including a CPU, a ROM, a RAM, and the like. The CPU of the electronic control unit 71 is configured to transmit command signals to the fuel injection valve 21, the throttle valve 34, the sensor 61, and the like, and receive signals that are output from the plurality of sensors 61 to 64.
[0044] A method of detecting the concentration of SOx in the embodied system will be described with reference to FIG. 4 to FIG. 7. The embodied system detects the concentration of SOx in exhaust gas with the use of the sensor 61. According to the experiment and consideration of the inventors, it has been found that, when the applied voltage Vs to the sensor 61 is gradually reduced from a specific first voltage VI to a specific second voltage V2, the output current Is of the sensor 61 draws a unique waveform corresponding to the concentration of SOx in exhaust gas. Hereinafter, the process of gradually reducing the applied voltage Vs to the sensor 61 from the first voltage VI to the second voltage V2 is referred to as sweep process.
[0045] Initially, the outline of the sweep process will be described. FIG. 4 is a schematic graph that shows an example of the waveform of output current of the sensor 61 when the sweep process is executed. The output current Is at the time when the applied voltage Vs decreases from the first voltage VI to the second voltage V2 (in the graph, the waveform that extends from point A to point C via point B, indicated by the continuous line) changes with the concentration of SOx in exhaust gas. However, the waveform changes with not only the concentration of SOx in exhaust gas but also the air-fuel ratio (the concentration of oxygen) of exhaust gas during the sweep process. Therefore, the embodied system extracts a value indicating only the concentration of SOx in exhaust gas from the waveform of output current Is, and detects the concentration of SOx in exhaust gas on the basis of the extracted value. In order to accurately carry out the detection, the embodied system controls the engine 10 so that the air- fuel ratio of exhaust gas during the sweep process is kept at a constant value. The output current Is corresponding to the constant value is used as an output component (reference value Iref) corresponding to the air-fuel ratio of exhaust gas.
[0046 J As shown in the graph, the first voltage VI and the second voltage V2 are higher than the ordinary voltage V0 for measuring the concentration of oxygen. Thus, in
the case where the concentration of oxygen is measured with the use of the sensor 61, when the sweep process is started, the embodied system changes the applied voltage Vs from the ordinary voltage VO to the first voltage VI (in the graph, see the waveform from point D to point A, indicated by the dashed line). When the sweep process has completed, the embodied system reduces the applied voltage Vs from the second voltage V2 to the ordinary voltage VO (in the graph, see the waveform from point C to point D, indicated by the dashed line). In the example shown in the graph, for the sake of convenience, the embodied system keeps the air- fuel ratio of exhaust gas at a constant value not only during execution of the sweep process (a period from point A via point B to point C) but also periods before and after the sweep process (a period from point D to point A and a period from point C to point D).
[0047] Specifically, when the sensor 61 is used to detect the air- fuel ratio of exhaust gas, the applied voltage Vs to the sensor 61 is the ordinary voltage VO (see point D in the graph). When the embodied system executes the sweep process, the embodied system changes the applied voltage Vs from the ordinary voltage VO to the first voltage VI (see point A in the graph). Thus, SOx is reduced into sulfur in the sensor 61 (specifically, at the surface, or the like, of the measuring electrode 6 IB), and sulfur produced as a result of the reduction is accumulated in the sensor 61 (the surface, or the like, of the measuring electrode 6 IB). The amount of sulfur that is accumulated in the sensor 61 corresponds to the concentration of SOx in exhaust gas.
[0048] This is because sulfur (S) is a solid at a temperature at which the sensor 61 is usually used and sulfur (S) accumulates in the sensor 61 without volatizing from the sensor 61. In addition, this is because, as well as the fact that the value of limiting current in the sensor 61 increases as the concentration of oxygen in exhaust gas increases, the amount of SOx that is accumulated per unit time in the sensor 61 increases as the concentration of SOx in exhaust gas increases.
[0049] Because the first voltage VI is higher than the ordinary voltage V0, when the applied voltage Vs is the first voltage VI , oxygen in exhaust gas is also ionized in the sensor 61, and a component other than SOx (for example, H20) in exhaust gas can also be decomposed in the sensor 61. However, oxygen ions are emitted from the sensor 61 in accordance with the oxygen measuring principle (see the above description) of the sensor 61, and a substance (for example, H2) that is produced as a result of decomposition of a component other than SOx is generally gas at the above-described temperature, so the substance is not accumulated in the sensor 61. Thus, when the applied voltage Vs is the first voltage VI , only sulfur is substantially accumulated in the sensor 61.
[0050] In this way, the first voltage VI is an applied voltage at which sulfur that is produced as a result of reduction of SOx into sulfur in the sensor 61 is accumulated in the sensor 61. In this example, the first voltage VI is a voltage (for example, 1.0 V) that is confirmed by an experiment, or the like, in advance that the reduction and accumulation occur, and is recorded in the ROM of the electronic control unit 71.
[0051] When the applied voltage Vs is changed from the ordinary voltage V0 to the first voltage VI, the output current Is of the sensor 61 increases (see point A in the graph) as shown in the graph because of the above-described reduction, and the like, of SOx. The output current Is at this time is a first value II .
[0052] Subsequently, the embodied system executes the sweep process while keeping the air-fuel ratio of exhaust gas at a constant value. Thus, the embodied system gradually reduces the applied voltage Vs from the first voltage VI . During execution of the sweep process, oxidation of sulfur into SOx, decomposition of oxygen and decomposition of a component, other than SOx, in exhaust gas occur in the sensor 61. Therefore, an output component due to each of those reactions is included in the output current Is. However, according to the experiment, and the like, of the inventors, the output component due to the component other than SOx is extremely small, and it may be ignored from the viewpoint of detecting the concentration of SOx. Thus, the output component Is during execution of the sweep process substantially includes the output component due to sulfur (specifically, SOx) and the output component due to oxygen.
[0053] Therefore, if the concentration of oxygen in exhaust gas excessively fluctuates during execution of the sweep process, the output current Is may significantly change so as to reflect the fluctuations in the concentration of oxygen, and the accuracy of measuring the output component due to sulfur (specifically, SOx) may decrease. Therefore, the embodied system executes the sweep process while keeping the air- fuel ratio of exhaust gas at a constant value. Thus, because the output component due to oxygen, included in the output current Is, is kept constant (kept at the value of limiting current corresponding to the concentration of oxygen having the constant value), the output current Is does not fluctuate because of fluctuations in the concentration of oxygen.
[0054] As a result, the output current Is draws the unique waveform corresponding to the concentration of SOx in exhaust gas. Specifically, as shown in the graph, the output current Is draws the waveform that once decreases from the first value II and increases again (see the continuous line that connects point A, point B and point C in the graph). For example, the local minimum (hereinafter, referred to as peak value Ipeak) in the waveform has a value corresponding to the concentration of SOx in exhaust gas.
That is, the waveform of output current Is has the peak value Ipeak corresponding to the concentration of SOx in exhaust gas.
[0055] The embodied system completes the sweep process (see point C in the graph) at predetermined timing after the peak value Ipeak is output. The applied voltage Vs at the timing at which the sweep process is completed is the second voltage V2. In this way, the second voltage V2 is an applied voltage for obtaining the above-described unique waveform corresponding to the concentration of SOx in exhaust gas, and is an applied voltage at which sulfur is oxidized (reoxidized) into SOx in the sensor 61. The output current Is at the timing at which the sweep process is completed is a second value 12.
[0056] After that, the embodied system returns the applied voltage Vs to the ordinary voltage V0 (see point D in the graph). As described above, in the example shown in the graph, the embodied system keeps the air-fuel ratio of exhaust gas at the same constant value as the air-fuel ratio during the sweep process until the applied voltage Vs is returned to the ordinary voltage V0. Therefore, the embodied system uses, as the reference value Iref, the output current Is at the time when the applied voltage Vs is returned to the ordinary voltage V0.
[0057] The embodied system detects the concentration of SOx in exhaust gas on the basis of the reference value Iref and the waveform of output current Is, obtained during the sweep process. Thus, the embodied system is able to analyze the output component due to the concentration of SOx in exhaust gas as distinguished from the output component due to another component.
[0058] As an example of the detection, as shown in the graph, the embodied system identifies (detects) the concentration of SOx in exhaust gas on the basis of the absolute value DEFis of a difference between the peak value Ipeak and the reference value Iref. Specifically, according to the experiment, and the like, of the inventors, as shown in FIG. 5, the concentration Csox of SOx increases as the absolute value DEFis of the difference increases. Therefore, the embodied system calculates the absolute value DEFis of the above-described difference from the waveform of output current Is during the sweep process and the reference value Iref, and applies the absolute value DEFis of the difference to the correlation shown in FIG. 5. Thus, the embodied system identifies (detects) the concentration Csox of SOx in exhaust gas. The correlation shown in FIG. 5 is determined by an experiment, or the like, in advance, and is recorded in the ROM of the electronic control unit 71.
[0059] As described above, the reference value Iref is used to extract only the
output component due to the concentration of SOx from the output current Is. Therefore, the reference value Iref can, for example, translate to the output current of the sensor at the time when the engine is controlled so that the concentration of oxygen in exhaust gas is the constant value in the case where the output current of the sensor depends on only the concentration of oxygen in exhaust gas.
[0060] The principle of occurrence of the peak value Ipeak of output current during execution of the sweep process is not apparent at this point in time. However, in cyclic voltammetry that is a general method of measuring the electrochemical property of a physical object, it is known that the peak of response current occurs near an oxidation-reduction potential because of a rate-controlling phenomenon of electrons or oxides. A phenomenon similar to this phenomenon is presumed to be occurring during the sweep process of the invention.
[0061] Another method of detecting the concentration of SOx will be described. The embodied system does not necessarily need to detect the concentration of SOx in exhaust gas on the basis of the above-described absolute value DEFis of the difference. Other various detection methods can be employed. That is, the embodied system can analyze the waveform of output current by various methods.
[0062] For example, as shown in FIG. 6, the embodied system can identify (detect) the concentration of SOx in exhaust gas on the basis of an area AREAis of a region surrounded by the waveform of output current Is during the sweep process and the reference value Iref. Specifically, the concentration Csox of SOx increases as the area AREAis increases. Therefore, the embodied system calculates the area AREAis of the region from the waveform of output current Is, and applies the area AREAis of the region to a map, or the like (not shown), determined in advance. Thus, the embodied system can detect the concentration Csox of SOx in exhaust gas.
[0063] For example, as shown in FIG. 7, the embodied system can identify (detect) the concentration of SOx in exhaust gas on the basis of the absolute value tanOis of a rate of change in output current Is between the timing (point B in the graph) at which the output current Is is the peak value Ipeak and the timing (point E in the graph) at which the output current Is is the reference value Iref. Specifically, the concentration Csox of SOx increases as the absolute value tanOis of the rate of change increases. Therefore, the embodied system calculates the absolute value tanOis of the rate of change from the waveform of output current Is, and applies the absolute value tanOis of the rate of change to a map, or the like (not shown), determined in advance. Thus, the embodied system can detect the concentration Csox of SOx in exhaust gas.
[0064] Incidentally, from the viewpoint of the detection accuracy of the concentration of SOx, in the detection method shown in FIG. 6, it is desirable that the second voltage V2 coincide with the ordinary voltage V0. On the other hand, in the detection methods shown in FIG. 4 and FIG. 7, it is sufficient as long as the peak value Ipeak is acquired, so the second voltage V2 does not necessarily need to coincide with the ordinary voltage V0. In this way, the embodied system may use, as the second voltage V2, an applied voltage specified in advance when oxidation of sulfur into SOx occurs in the sensor 61 through an experiment, or the like, or may use, as the second voltage V2, an applied voltage at the time when it is confirmed on the basis of the output current Is that oxidation of sulfur is occurring while the sweep process is actually being executed.
[0065] The embodied system just needs to gradually reduce the applied voltage Vs to the sensor 61 in the sweep process, and can employ various reducing modes. For example, the applied voltage Vs may be continuously reduced or may be discretely reduced at appropriate intervals from the viewpoint (see the above description) of analyzing the waveform of output current Is. The rate of reduction in applied voltage Vs (the amount of reduction in applied voltage Vs per unit time) can be determined in consideration of a rate at which reoxidation from sulfur into SOx occurs in the sensor 61, a sensitivity of detecting a change in output current resulting from reoxidation, detection accuracy that is required of the embodied system, and the like. The voltage may be reduced at the same rate of reduction from the start of the sweep process to the completion of the sweep process or the voltage may be reduced at a varying rate of reduction. However, in order to increase the detection accuracy of the concentration of SOx, it is desirable that the rate of reduction in applied voltage Vs be not varied for each measurement(each measurement be carried out at the same rate of reduction).
[0066] The embodied system may use, as the air- fuel ratio (constant value) of exhaust gas during the sweep process, a sweep process-dedicated target value determined in advance by an experiment, or the like, or a real air-fuel ratio at the time when the sweep process is actually started.
[0067] The embodied system does not necessarily need to use, as the first voltage VI, the voltage at which it is confirmed through an experiment, or the like, in advance that reduction of SOx occurs. For example, as the first voltage VI, before the sweep process is actually executed, the applied voltage Vs is gradually increased from the applied voltage that is known to be lower than the first voltage VI (for example, the ordinary voltage V0 for detecting the concentration of oxygen), and the applied voltage Vs at the time when it is confirmed on the basis of the output current Is that reduction of SOx is occurring can be
used.
[0068] The embodied system detects a value due to the concentration of SOx (DEFis in FIG. 4, AREAis in FIG. 6 or tanOis in FIG. 7) in process of detecting the concentration of SOx in exhaust gas. Because this value is in a one-to-one correspondence with the concentration of SOx, this value substantially indicates the concentration of SOx. Therefore, a target to be detected by the embodied system (the concentration of SOx) can translate to at least one of the concentration of SOx in exhaust gas or a value that is in a one-to-one correspondence with the concentration of SOx.
[0069] An example of detection at the time when the above-described detection method is actually applied to the engine 10 will be described with reference to FIG. 8 and FIG. 9. In this example, the embodied system executes the sweep process during a specific period (between time tl and time t2) after the timing at which a condition (described later in detail) for detecting the concentration of SOx in exhaust gas is satisfied, and detects the concentration of SOx in exhaust gas.
[0070] Specifically, at time tO in FIG. 8, the air-fuel ratio of exhaust gas changes on the basis of a required output, or the like, of the engine 10 irrespective of the detected concentration of SOx. At time tO, in order to measure the air-fuel ratio of exhaust gas with the use of the sensor 61, the applied voltage Vs to the sensor 61 is set to the ordinary voltage V0. The output current Is of the sensor 61 at time tO is a value 10 corresponding to the air-fuel ratio of exhaust gas.
[0071] After that, at the predetermined timing, the embodied system increases the applied voltage Vs from the ordinary voltage V0 to the first voltage VI in order to start the sweep process. At time tl in the graph, the applied voltage Vs reaches the first voltage VI (see point A in the graph). In this example, the embodied system executes the sweep process while keeping the air-fuel ratio afl of exhaust gas at time tl . That is, the embodied system controls the engine 10 so that the air- fuel ratio of exhaust gas during execution of the sweep process is kept at the constant value afl (for example, the operating state of the engine 10 at time tl is kept as it is). Point A, point B and point C in the graph respectively correspond to point A, point B and point C in each of FIG. 4, FIG. 6 and FIG. 7. However, different from the examples shown in FIG. 4, FIG. 6 and FIG. 7, in this example, the air-fuel ratio at timing other than during execution of the sweep process is not specifically controlled to a constant value.
[0072] The embodied system executes the sweep process during the period from time tl to time t2. Specifically, the embodied system gradually reduces the applied voltage Vs from the first voltage VI to the second voltage V2 at a constant rate while
keeping the air-fuel ratio of exhaust gas at the constant value afl . The embodied system records the waveform of output current Is during the sweep process (the waveform that connects point A to point C via point B) in the RAM of the electronic control unit 71. In this example, the second voltage V2 is set to the same voltage as the ordinary voltage V0.
[0073] The embodied system calculates the peak value Ipeak (see point B in the graph) on the basis of the output currents Is recorded in the RAM. In addition, the embodied system uses the output current Is at time t2 as the reference value Iref (see point C in the graph). At time t2, the sweep process completes. The embodied system calculates the absolute value DEFis of the difference between the peak value Ipeak and the reference value Iref. The embodied system detects the concentration Csox of SOx in exhaust gas by applying the absolute value DEFis of the difference to a map that expresses the correlation between the absolute value DEFis of the difference and the concentration of SOx in exhaust gas (which is recorded in the ROM of the electronic control unit 71, and see FIG. 5).
[0074] After the sweep process completes (after time t2), the applied voltage Vs is kept at the ordinary voltage V0, and the air-fuel ratio of exhaust gas is detected again. After time t2, the air-fuel ratio of exhaust gas changes on the basis of the required output, and the like, of the engine 10 again.
[0075] After the embodied system calculates the absolute value DEFis of the above-described difference, the embodied system may use the absolute value DEFis of the difference itself in a process (for example, an alarm for informing a high concentration of SOx or measurement of the concentration of sulfur in fuel) as a value that is in a one-to-one correspondence with the concentration of SOx without obtaining the concentration Csox of SOx.
[0076] Another detection example will be described. The embodied system does not necessarily need to detect the concentration of SOx as shown in FIG. 8. For example, as shown in FIG. 9, the embodied system can set the second voltage V2 to an applied voltage that does not coincide with the ordinary voltage V0. The second voltage V2 is the applied voltage Vs at which the sweep process is completed. Specifically, in this example, the embodied system momentarily monitors the output current Is that is recorded in the RAM during the sweep process. The embodied system completes the sweep process at any timing after the output of the peak value Ipeak has been confirmed. The applied voltage Vs at the time when the embodied system completes the sweep process in this way is the second voltage V2 (see point C in graph).
[0077] In this example, there is a possibility that the output current Is at time t2 at
which the sweep process completes includes not only the output component due to the air- fuel ratio of exhaust gas but also the output component due to the concentration of SOx. Therefore, the output current Is at the completion (time t2 in FIG. 8) of the sweep process cannot be used as the reference value Iref unlike the example of detection shown in FIG. 8. Therefore, in this example, an output current during the sweep process, measured by another oxygen concentration sensor (not shown) different from the sensor 61 , or an output current that is obtained by applying the air-fuel ratio of exhaust gas, estimated from the operating state of the engine 10 during the sweep process, to the map shown in FIG. 3B is used as the reference value Iref. When another sensor is used, in order to increase the detection accuracy of the concentration of SOx, it is desirable that the output characteristic of the other sensor and the output characteristic of the sensor 61 be the same or the output current of the other sensor be converted (corrected) to the output current of the sensor 61 and used.
[0078] In this example of detection, the process of detecting the concentration of SOx can be complicated as compared to the example of detection shown in FIG. 8. However, this example of detection is advantageous in that the length of time during which the sweep process is executed is shortened as compared to the example of detection shown in FIG. 8.
[0079] In addition, the embodied system can use an air-fuel ratio, other than the air- fuel ratio afl of exhaust gas at the start (time tl) of the sweep process, as the air- fuel ratio (the concentration of oxygen) in exhaust gas during the sweep process. For example, a preset single fixed value, a value selected from among a plurality of prepared fixed values, or the like, can be used as the air-fuel ratio of exhaust gas during the sweep process.
[0080] As described above, the waveform of the output current Is during the sweep process occurs as a result of reoxidation of sulfur accumulated in the sensor 61. Therefore, the concentration of SOx in exhaust gas, which is detected by the embodied system, strictly indicates the concentration of SOx in exhaust gas at the timing at which sulfur is accumulated in the sensor 61 (at the start of the sweep process). On the other hand, depending on the configuration, arrangement, and the like, of the sensor 61, a certain length of time may be required in order to sufficiently accumulate sulfur having a sufficient amount for detecting the concentration of SOx. In this case, the concentration of SOx, which is detected by the embodied system, indicates the average value of the concentration of SOx in exhaust gas during a period during which sulfur is accumulated in the sensor 61.
[0081] An actual operation of the embodied system will be described with reference to FIG. 10. In the embodied system, the CPU of the electronic control unit 71 executes a routine shown in FIG. 10, executes the sweep process while controlling the engine 10 so that the air- fuel ratio (the concentration of oxygen) of exhaust gas is kept at a constant value, and detects the concentration of SOx in exhaust gas.
[0082] Specifically, the CPU executes the routine of detecting the concentration of SOx in FIG. 10 each time a predetermined time elapses. When the process of the routine is started, the CPU proceeds to step 1005, and determines whether the condition for detecting the concentration of SOx is satisfied at present timing. In this example, the condition is satisfied when the engine 10 is operated in a steady state and the concentration of SOx has not been detected once from when a vehicle on which the engine 10 is mounted is refueled last time to the present timing.
[0083] When the above condition is satisfied, the CPU makes affirmative determination in step 1005, and proceeds to step 1010. In this step, the CPU transmits, to the sensor 61 (to the sensor control unit 6 IF), a command signal for increasing the applied voltage Vs to the sensor 61 to the first voltage VI . In accordance with the command signal, the sensor 61 increases the applied voltage Vs to the first voltage VI . Before transmitting the command signal, the CPU transmits, to the sensor 61 , a command signal for keeping the applied voltage Vs at the ordinary voltage V0.
[0084] Subsequently, the CPU proceeds to step 1015. In this step, the CPU starts control for keeping the concentration of oxygen in exhaust gas at a constant value. In this example, the CPU keeps the air-fuel ratio of exhaust gas by, while considering the intake air amount, adjusting a fuel injection amount so that the air- fuel ratio (the concentration of oxygen) of exhaust gas is kept at the present timing (the start timing of the sweep process). Thus, the constant value in this example is the value of the concentration of oxygen in exhaust gas at the timing at which the sweep process is started. Because the concentration of oxygen in exhaust gas (air-fuel ratio) is stabilized through this control, this control is also referred to as stabilizing control.
[0085] Subsequently, the CPU proceeds to step 1020. In this step, while the CPU transmits, to the sensor 61, a command signal for gradually reducing the applied voltage Vs from the first voltage VI to the second voltage V2, the CPU records, in the RAM, the waveform of output current Is received from the sensor 61. In this example, the second voltage V2 is set to the same voltage as the ordinary voltage V0.
[0086] Subsequently, the CPU proceeds to step 1025. In this step, the CPU records, in the RAM, the output current Is at the timing at which the applied voltage Vs has
reached the second voltage V2 (= ordinary voltage V0) as the reference value Iref. After that, the CPU proceeds to step 1030, and completes stabilizing control.
[0087] Subsequently, the CPU proceeds to step 1035. In this step, the CPU calculates the peak value Ipeak of the output current Is on the basis of the waveform of output current Is during the sweep process. The waveform of output current Is is recorded in the RAM. For example, the CPU calculates the rate of change in the output current Is at intervals of a predetermined time from the start timing of the sweep process, and calculates the output current Is at the timing at which the rate of change is zero (the timing at which the rate of change is inverted from a positive value to a negative value) as the peak value Ipeak. Alternatively, for example, the CPU may calculate a minimum value among the output currents Is (sample values) recorded in the RAM as the peak value Ipeak.
[0088] Subsequently, the CPU proceeds to step 1040. In this step, the CPU calculates the absolute value DEFis of the difference between the peak value Ipeak and the reference value Iref. The CPU proceeds to step 1045. In this step, the CPU identifies the concentration Csox of SOx by applying the calculated absolute value DEFis of the difference to a lookup table (Map (DEFis) in the flowchart) that expresses the correlation between the concentration Csox of SOx and the absolute value DEFis of the above-described difference. That is, in step 1045, the concentration Csox of SOx is detected.
[0089] After that, the CPU proceeds to step 1095, and once ends the routine. When the condition for detecting the concentration of SOx is not satisfied at the time when step 1005 of the routine is executed, the CPU makes negative determination in step 1005, directly proceeds to step 1095, and ends the routine.
[0090] In this way, the embodied system executes the sweep process while controlling the engine 10 so that the concentration of oxygen in exhaust gas (air-fuel ratio) is kept at a constant value, and identifies (detects) the concentration Csox of SOx in exhaust gas on the basis of the reference value Iref and the waveform of output current Is of the sensor 61 during the sweep process. Thus, the embodied system is able to accurately detect the concentration Csox of SOx in exhaust gas while excluding the influence of components other than SOx in exhaust gas (for example, oxygen and H20) as much as possible.
[0091] The invention is not limited to the above-described embodiment. Various alternative embodiments may be employed within the scope of the invention. For example, the sensor 61 included in the engine 10 to which the embodied system is applied
is a single-cell sensor having the single sensor cell 6 ID. Instead, the engine 10 may include a sensor having a plurality of the sensor cells 61 D (for example, dual-cell sensor) instead of the sensor 61.
[0092] FIG. 11 is a schematic view that shows the schematic configuration of the dual-cell sensor. As shown in the drawing, the dual-cell sensor 62 includes a sensor cell 62D1 and a sensor cell 62D2. The sensor cell 62D1 includes a solid electrolyte layer 62 Al , a measuring electrode 62B1 and a reference electrode 62C1. The sensor cell 62D2 includes a solid electrolyte layer 62A2, a measuring electrode 62B2 and a reference electrode 62C2. The sensor cell 62D1 is also referred to as upstream-side cell. The sensor cell 62D2 is also referred to as downstream-side cell.
[0093] The dual-cell sensor 62 further includes a diffusion-controlling layer 62E, a sensor control unit 62F, a first alumina layer 62G, a second alumina layer 62H, a third alumina layer 621, a fourth alumina layer 62J, a fifth alumina layer 62K, a sixth alumina layer 62L and a heater 62M. In addition, an atmosphere introduction passage 62N and an internal space 620 are formed in the dual-cell sensor 62. The dual-cell sensor 62, as well as the sensor 61 (see FIG. 2), just needs to be provided at the exhaust manifold 43.
[0094] After the dual-cell sensor 62 discharges oxygen in exhaust gas to the outside of the internal space 6 IN with the use of the upstream-side cell 62D1, the dual-cell sensor 62 is able to detect the concentration of SOx in exhaust gas with the use of the downstream-side cell 62D2. Thus, when the concentration of SOx is detected by the dual-cell sensor 62, the output component due to oxygen is not substantially included in the output current of the downstream-side cell 62D2. Therefore, in comparison with the case where the single-cell sensor is used (in . the case of the embodied system), the influence of a change in the concentration of oxygen in exhaust gas on detection of the concentration of SOx is small. However, even with the dual-cell sensor 62, there is a case where oxygen in exhaust gas is not completely removed by the upstream-side cell 62D1 and oxygen is slightly included in exhaust gas toward the downstream-side cell 62D2. Therefore, by applying the control system or method according to the invention to the engine including the dual-cell sensor 62, it is possible to accurately detect the concentration of SOx.
[0095] In addition, the engine 10 to which the embodied system is applied is a gasoline engine; however, the control system or method according to the invention may also be applied to a diesel engine.
[0096] The embodied system uses a method of keeping the operating state of the engine 10 at the start timing of the sweep process up to the completion timing of the sweep
process as control for keeping the air-fuel ratio (the concentration of oxygen) in exhaust gas during the sweep process at a constant value (stabilizing control) (see step 1015 in FIG. 10). With this method, it is not necessarily required to momentarily acquire the air- fuel ratio of exhaust gas during the sweep process. However, the system according to the invention may control the engine 10 so that the air- fuel ratio of exhaust gas is subjected to feedback control while the air-fuel ratio of exhaust gas during the sweep process is momentarily acquired as stabilizing control. For example, the embodied system can use a method of executing feedback control over the fuel injection amount so that, after the intake air amount is determined on the basis of the required output of the engine 10, the air- fuel ratio of exhaust gas coincides with a constant value. In the case where the engine 10 is a diesel engine, the system according to the invention can use a method of adjusting the intake air amount, the EGR amount, and the like, so that, after the fuel injection amount is determined on the basis of the required output of the engine 10, the air-fuel ratio of exhaust gas coincides with a constant value as stabilizing control. In the case where the engine 10 is used in combination with a motor, or the like (for example, in the case where the engine 10 is mounted on a hybrid vehicle), the system according to the invention can use a method of compensating for an insufficient amount of output with the motor while controlling the engine 10 so that the air- fuel ratio of exhaust gas is kept at a constant value.
[0097] The system according to the invention can be configured to estimate the amount of a sulfur component (the concentration of sulfur) that is contained in fuel on the basis of the concentration of SOx in exhaust gas. The concentration of sulfur in fuel generally depends on the type, or the like, of fuel. Therefore, the concentration of SOx in exhaust gas just needs to be acquired each time fuel is supplied to the engine from the viewpoint of estimating the concentration of sulfur in fuel.
Claims
1. A control system for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas, the control system comprising:
an electronic control unit configured to:
(i) detect a concentration of SOx in exhaust gas;
(ii) control the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value;
(iii) execute a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and
(iv) detect the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the limiting current sensor, the value of limiting current of the limiting current sensor corresponding to the concentration of oxygen having the constant value.
2. The control system according to claim 1, wherein
the second voltage coincides with an applied voltage that is used when the concentration of oxygen in exhaust gas is detected, and
the reference value is a value of output current of the limiting current sensor at timing at which the applied voltage to the limiting current sensor is reduced to the second voltage in the sweep process.
3. The control system according to claim 1, wherein
the electronic control unit is configured to prestore a correlation between the concentration of oxygen in exhaust gas and the value of limiting current, and
the reference value is a value of limiting current, which is obtained by applying the concentration of oxygen having the constant value to the correlation.
4. The control system according to any one of claims 1 to 3, wherein
the electronic control unit is configured to use an extreme value of output current of
the limiting current sensor during execution of the sweep process as a value indicating a characteristic of the waveform of the output current,
the electronic control unit is configured to detect the concentration of SOx in exhaust gas such that the concentration of SOx increases as the absolute value of a difference between the extreme value and the reference value increases, and
the second voltage is an applied voltage lower than an applied voltage at which the extreme value is output.
5. A control method for an internal combustion engine including a limiting current sensor, the limiting current sensor capable of detecting a concentration of oxygen in exhaust gas, the control method comprising:
detecting a concentration of SOx in exhaust gas;
controlling the internal combustion engine such that the concentration of oxygen in exhaust gas is kept at a constant value;
executing a sweep process for gradually reducing an applied voltage to the limiting current sensor from a first voltage to a second voltage, the first voltage being a voltage at which sulfur is produced as a result of reduction of SOx in the limiting current sensor, the second voltage being a voltage at which sulfur is oxidized into SOx in the limiting current sensor; and
detecting the concentration of SOx in exhaust gas based on a waveform of output current of the limiting current sensor during execution of the sweep process and a reference value, the reference value being a value of limiting current of the limiting current sensor, the value of limiting current of the limiting current sensor corresponding to the concentration of oxygen having the constant value.
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| JP2014-030966 | 2014-02-20 | ||
| JP2014030966A JP2015155665A (en) | 2014-02-20 | 2014-02-20 | Control device for internal combustion engine |
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| WO2015124992A1 true WO2015124992A1 (en) | 2015-08-27 |
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| PCT/IB2015/000192 Ceased WO2015124992A1 (en) | 2014-02-20 | 2015-02-18 | Control system and control method for internal combustion engine |
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| WO (1) | WO2015124992A1 (en) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN108120760A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | The control method of gas-detecting device and gas-detecting device |
| CN108120759A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | Control device for gas-detecting device and the control method for gas-detecting device |
| CN108120753A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | Gas-detecting device |
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| JP6235270B2 (en) | 2013-08-23 | 2017-11-22 | 株式会社Soken | Control device and control method for internal combustion engine |
| JP5910648B2 (en) | 2014-02-20 | 2016-04-27 | トヨタ自動車株式会社 | Control device for internal combustion engine |
| JP6061103B2 (en) * | 2014-11-26 | 2017-01-18 | トヨタ自動車株式会社 | Control device for internal combustion engine |
| JP2018096842A (en) * | 2016-12-13 | 2018-06-21 | トヨタ自動車株式会社 | Gas detector |
| JP6652044B2 (en) * | 2016-12-19 | 2020-02-19 | トヨタ自動車株式会社 | Gas detector |
| JP6624041B2 (en) * | 2016-12-19 | 2019-12-25 | トヨタ自動車株式会社 | Gas detector |
| JP6683956B2 (en) * | 2017-02-13 | 2020-04-22 | トヨタ自動車株式会社 | Gas detector |
| JP6583302B2 (en) * | 2017-02-13 | 2019-10-02 | トヨタ自動車株式会社 | Gas detector |
| JP7115335B2 (en) * | 2019-01-23 | 2022-08-09 | トヨタ自動車株式会社 | Control device for internal combustion engine |
| JP7552667B2 (en) * | 2022-09-14 | 2024-09-18 | トヨタ自動車株式会社 | vehicle |
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| CN108120760A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | The control method of gas-detecting device and gas-detecting device |
| CN108120759A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | Control device for gas-detecting device and the control method for gas-detecting device |
| CN108120753A (en) * | 2016-11-30 | 2018-06-05 | 丰田自动车株式会社 | Gas-detecting device |
| CN108120753B (en) * | 2016-11-30 | 2019-10-18 | 丰田自动车株式会社 | Gas detection device |
| CN108120759B (en) * | 2016-11-30 | 2020-06-23 | 丰田自动车株式会社 | Control device for gas detection device and control method for gas detection device |
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