WO2006076109A1 - Indivudual cylinder controller for four-cylinder engine - Google Patents
Indivudual cylinder controller for four-cylinder engine Download PDFInfo
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- WO2006076109A1 WO2006076109A1 PCT/US2005/045119 US2005045119W WO2006076109A1 WO 2006076109 A1 WO2006076109 A1 WO 2006076109A1 US 2005045119 W US2005045119 W US 2005045119W WO 2006076109 A1 WO2006076109 A1 WO 2006076109A1
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- imbalances
- torque
- fuel
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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
- F02D41/008—Controlling each cylinder individually
- F02D41/0085—Balancing of cylinder outputs, e.g. speed, torque or air-fuel ratio
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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
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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
- F02D41/0002—Controlling intake air
- F02D2041/001—Controlling intake air for engines with variable valve actuation
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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
- F02D41/24—Electrical control of supply of combustible mixture or its constituents characterised by the use of digital means
- F02D41/26—Electrical control of supply of combustible mixture or its constituents characterised by the use of digital means using computer, e.g. microprocessor
- F02D41/28—Interface circuits
- F02D2041/286—Interface circuits comprising means for signal processing
- F02D2041/288—Interface circuits comprising means for signal processing for performing a transformation into the frequency domain, e.g. Fourier transformation
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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
- F02D41/1456—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 with sensor output signal being linear or quasi-linear with the concentration of oxygen
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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
- F02D41/1497—With detection of the mechanical response of the engine
Definitions
- This invention pertains to a method of detecting and correcting air- fuel ratio or torque imbalances in individual cylinders of a four-cylinder engine or banks of four cylinders in a V8 engine using a single sensor. More specifically, this invention pertains to the use of a frequency-domain characterization of the pattern of such imbalances in detecting and correcting them.
- A/F air-fuel ratio
- PCM powertrain control module
- the PCM is suitably programmed to operate in response to driver-initiated throttle and transmission gear lever position inputs and many sensors that supply important powertrain operating parameters.
- the PCM comprises a digital computer with appropriate processing memory and input-output devices and the like to manage engine fueling and ignition operations, automatic transmission shift operations and other vehicle functions.
- the computer receives signals from a number of sensors such as a crankshaft position sensor, and an exhaust oxygen sensor.
- the PCM works in a closed loop continuous feedback mode using the voltage signals from an oxygen sensor related to the oxygen content of the exhaust.
- the crankshaft angular position information from the crankshaft sensor and inputs from other sensors are used to manage timing and duration of fuel injector duty cycles.
- Zirconia-based, solid electrolyte oxygen sensors have been used for many years with PCMs for closed loop computer control of fuel injectors in applying gasoline to the cylinders of the engine in amounts near stoichiometric A/F.
- the PCM is programmed for engine operation near the stoichiometric A/F for the best performance of the three-way catalytic converter.
- a second refinement is to increase vehicle fuel economy by diluting the air-fuel mixture with excess air (lean burn) or with exhaust gas recirculation (external EGR).
- the maximum benefit is achieved at the highest dilute limit.
- the limit is constrained by the occurrence of partial burns and possibility of misfire in the cylinder(s) containing the leanest mixture. This happens due to maldistribution of air, fuel or EGR in different cylinders.
- a new capability for the control of each individual cylinder air-fuel ratio by software is needed.
- the intention would be to control only one variable (e.g., air, fuel or spark) to create uniform A/F or torque in all cylinders since only a single variable (e.g., A/F, O 2 or torque) would be measured.
- a single variable e.g., A/F, O 2 or torque
- single-loop feedback controllers around various sensors can operate independently to control air, fuel or spark in every cylinder.
- a new emission reduction strategy was developed for detecting and correcting fuel, air or spark imbalances between cylinders of a three-cylinder gasoline engine. That process is disclosed in U.S. Patent 6,668,812, titled “Individual Cylinder Controller for Three-Cylinder Engine and assigned to the assignee of this invention. This process for a three-cylinder engine has to be modified and expanded for a four-cylinder engine and an individual cylinder control strategy now needs to be developed for a four-cylinder gasoline engine.
- a process is provided that would correct any imbalance in air or fuel delivery amongst all cylinders of a four-cylinder engine or. separately in either bank of a V8 engine.
- Such imbalances are detectable using, for example, an oxygen sensor, a wide range air-fuel ratio (A/F) sensor, or an engine torque sensor.
- A/F air-fuel ratio
- the benefits in terms of emissions reduction, fuel economy and drivability will depend on the degree of A/F imbalances or torque imbalances present in the engine and are engine dependent. In general, it is estimated that the benefit would depend on exhaust system configuration as well. For example, the benefit in a V8 engine with dual banks of unequal pipe lengths is larger when a single sensor is used for control and when fuel injectors have larger tolerances.
- a principal cause, but not necessarily the sole cause, of cylinder A/F imbalances in a fuel-injected engine is differences in the delivery rates of the fuel injectors.
- Fuel injectors are intricate, precision-made devices, but the delivery rates of "identical" injectors may vary by as much as ⁇ 5%.
- the normal operation of a set of such injectors may be expected to lead to the delivery of varying amounts of fuel in the respective cylinders even when the PCM specifies identical "injector on" times. If the air flow rate or the exhaust gas recirculation rate is not varying in proportion with the fuel imbalances, there can be significant differences in A/F and/or torque among cylinders.
- a template consists of a unique pattern of -1, 0 and +1 units of A/F (or torque), or a multiple thereof, in each cylinder.
- A/F control negative and positive signs imply fuel-rich and fuel -lean A/F, respectively, and 0 implies stoichiometric A/F for a particular cylinder exhaust event.
- the values of -1 and +1 simply indicate rich and lean A/F without regard to the magnitude of the departure of the ratio from the stoichiometric value, typically about 14.7 for most common gasoline fuels available today.
- each cylinder could experience a rich or lean A/F when the PCM is trying to control the overall A/F at the stoichiometric ratio.
- the patterns of all possibilities are not independent of each other.
- the number of independent basic patterns in this representation is equal to the number of cylinders.
- any unknown pattern of imbalances can be reduced to a unique combination of four patterns T 1 , T 2 , T 3 and T 4 as shown in Figure 1.
- template T 1 is the pattern +1, +1, +1, +1 (for example, rich A/F) for cylinders 1, 2, 3, 4 respectively.
- Template T 2 is the pattern -1, +1, -1, +1 (e.g., alternating rich and lean A/F) for cylinders 1, 2, 3, 4 respectively.
- Template T 3 is the pattern +1, 0, -1, 0.
- Template 4 has the pattern 0, +1, 0, -1.
- an imbalance (V) in, for example, air-fuel ratio (A/F) or in torque can be determined as follows:
- V biTi + b 2 T 2 + b 3 T 3 + b 4 T 4
- the coefficients may have positive or negative values or the value of zero.
- the coefficient bj is a constant determined by the magnitude of the measured imbalances. Often it is preferred that the coefficients have values expressed as percentages of the cylinder weighting factors of the templates.
- Each template of cylinder imbalances yields a discrete frequency spectrum of output data (e.g., oxygen sensor data or torque sensor data) with non-zero magnitudes only at a finite number of frequencies.
- output data e.g., oxygen sensor data or torque sensor data
- certain frequency spectrum characteristics are found and can be utilized in control of individual cylinders in accordance with this invention.
- the frequency spectrum has only two lines. The first line is at a fundamental frequency CO 1 corresponding to the engine speed. The second line is at twice the fundamental frequency.
- the non-zero magnitudes at Q 1 and 2(O 1 ) are coupled so that they increase or decrease together.
- T 3 and T 4 are templates characterized by a sequence of +1, 0, -1 cylinder values.
- this template does not need to be used in detecting imbalances a l3 a 2; a 3 and a 4 .
- the total imbalances under closed loop A/F control can be detected by appropriate mathematical comparison with data compiled from experimentally predetermined values for patterns T 2 , T 3 , and T 4 .
- Reference values for template patterns T 2 , T 3 and T 4 are established on a balanced four-cylinder engine (i.e., all cylinders initially at stoichiometric A/F, any other specified A/F or torque reference level) by operating the engine with calibrated fuel injectors (or intake valves) to intentionally successively impose the three template cylinder variation patterns at the desired fuel-rich or fuel-lean levels (or air flow rates, respectively).
- This calibration process is conducted at selected representative operational speeds and loads for the engine over a sufficient number of engine cycles to obtain the corresponding O 2 sensor (wide range A/F sensor or torque sensor) output at successive crankshaft positions.
- O 2 sensor wide range A/F sensor or torque sensor
- a wide-range A/F sensor or a torque sensor is used.
- pattern T 3 could be produced by a lean imbalance of +10% of stoichiometric A/F in cylinder #1, a rich imbalance of -10% of the stoichiometric A/F in cylinder #3 while cylinders #2 and #4 are operated at the stoichiometric A/F. Then, imbalances of like magnitude could be imposed in accordance with the T 2 and T 4 patterns. For example, assuming 24X available crankshaft position signals over one crankshaft revolution, oxygen sensor data would be collected by the PCM every 15° of crankshaft revolution. In a V8 engine, we will have six samples collected per event. If desired, we may obtain one averaged sample per engine event.
- the discrete spectrum is represented by a vector of given phase angle and magnitude information at various frequencies related to the base engine speed and its higher harmonics.
- This information, together with interpolated data or suitable analytical equations, is stored in PCM table lookups for reference by the PCM during the cylinder air or fuel imbalance detection in a vehicle.
- the DFT vectors for the chosen templates, T 2 , T 3 and T 4 are mutually orthogonal by construction.
- the detection process is initiated by the PCM and includes collecting and storing oxygen sensor (or wide range A/F or torque sensor) data at successive crank angle signals over a few engine cycles.
- oxygen sensor or wide range A/F or torque sensor
- One complete fueling cycle providing, for example, 48 data points may be suitable. But it will usually be preferred to collect data over several cycles.
- This data is subjected to discrete Fourier transformation to obtain the phase and magnitude representing a single vector of imbalances.
- the detected air or fuel imbalance vector is mathematically decomposed to determine the respective contributions of the three mutually orthogonal reference vectors, T 2 , T 3 and T 4 , in the total vector of measured imbalances.
- the coordinates of the imbalance vector in terms of the phase angles of the reference vectors and the proportion of their respective magnitudes are determined by known mathematical practices.
- the conversion of the imbalance vector into three component vectors permits the correction for the fueling imbalances by the PCM.
- the PCM determines the "opposite" of the three components of imbalances vectors, i.e., vectors that have the same magnitude but are of 180° phase difference, and calculates the air or fueling corrections that must thereafter be applied to each fuel injector (or intake valve lift) to correct the imbalances otherwise present in the respective cylinders. These fuel injector or intake valve lift corrections are applied cycle after cycle until the detected level of imbalances is brought below a given threshold.
- the subject process may be used in response to the signals from a current production exhaust oxygen sensor, a wide-range exhaust A/F sensor, a crankshaft torque sensor or other suitable sensors used by a PCM for fuel, air or spark control in a four-cylinder engine.
- fuel control to individual cylinders can be accomplished by PCM control of fuel injector "on time”.
- air distribution to the four cylinder banks can be managed by PCM control of air inlet valve actuators.
- detected imbalances in torque from individual cylinders can be corrected by PCM control of fuel or air delivery or spark timing with respect to each cylinder.
- Figure 1 is a graphical representation of four reference fueling imbalance templates, labeled T 1 to T 4 , used in the practice of this invention for a four-cylinder engine.
- the horizontal axis represents cylinder number, the upward arrows represent fuel lean A/F and the downward arrows represent fuel rich A/F for the respective cylinders around the reference value of stoichiometry (or other selected A/F).
- Also shown in Figure 1 is an example of an unknown fuel imbalance template with equations showing the contributing relationships of the reference templates to the unknown imbalance template.
- FIG. 2 illustrates the projections of an imbalance vector T onto its orthogonal components T2 (@ ⁇ 2 , where ⁇ 2 is the 2 nd harmonic of engine speed), and T 3 and T 4 (both @ CO 1 , where (Q 1 is the 1 st harmonic).
- T 3 is perpendicular to T 4 in the O 1 plane and T 2 is on the. ⁇ 2 axis, and perpendicular to the plane formed by T 3 and T 4 .
- Figures 3 A-3C are flow diagrams of a suitable algorithm for the offline computation of responses to pure T 2 , T 3 and T 4 imbalances of magnitude d 2 o, d 3 o and d 4 o in a balanced four-cylinder engine.
- Figures 4A-4B is a flow diagram of an algorithm for the real-time detection of fueling imbalances in a four-cylinder engine.
- Figure 5 is a flow diagram of a single-axis method for the real-time correction of first harmonic fueling imbalances for a four-cylinder engine.
- Figure 6 is a flow diagram of a total magnitude method for the realtime correction of first harmonic fueling imbalances for a four-cylinder engine.
- Figure 7 is a flow diagram for real-time correction of second harmonic fueling imbalances in a four cylinder engine.
- Figures 8A-8D present an algorithm flow chart for an overall individual cylinder fuel control incorporating the above-mentioned previous steps.
- Figure 10 is a graph illustrating an example of two possible discrete Fourier transform (DFT) vectors T 3 and T 4 with their respective magnitudes and phase angles ⁇ 3 and ⁇ 4 .
- DFT discrete Fourier transform
- Figure 11 is a graph illustrating a generic imbalance vector (magnitude R and phase angle, ⁇ ) and template T 3 and T 4 contributions with magnitudes R 3 and R 4 and phase angles ⁇ 3 and ⁇ 4 .
- the angles between the measured imbalance vector and the individual contributing imbalances vectors T 3 and T 4 are identified as ⁇ 3 and ⁇ 4 , respectively.
- any arbitrary pattern of cylinder-to-cylinder differences in A/F ratio can be represented by a combination of simpler basic A/F patterns here referred to as "templates".
- a template consists of a unique pattern of -1, 0 and +1 units of A/F in each cylinder only.
- the value zero denotes stoichiometric mass air-fuel ratio (A/F), and negative and positive signs imply fuel-rich and fuel-lean A/F, respectively.
- the value zero may denote a specified relatively high A/F, and then negative and positive signs imply fuel-richer and fuel-leaner A/F, respectively.
- any unknown pattern of imbalances can be reduced to a combination of four basic patterns T 1 , T 2 , T 3 and T 4 shown in Figure 1.
- Template 1 has the pattern +1, +1, +1, +1 for cylinders 1, 2, 3 and 4, respectively.
- This pattern represents a complete fueling cycle for cylinders 1-4, respectively, of the engine although the actual fueling sequence may be in the order of cylinder 1, 3, 4, 2.
- Template 2 is the pattern -1, +1, -1, +1 for cylinders 1, 2, 3 and 4;
- Template 3 represents the pattern +1, 0, -1, 0 and Template 4 represents the pattern 0, +1, 0, -1.
- the top template illustrates a four-cylinder engine operating situation of unknown A/F imbalances (a ⁇ , a 2 , a 3 and a 4 ) for cylinders 1, 2, 3 and 4, respectively).
- any pattern of such unknown cylinder imbalances can be uniquely related to the above four templates by appropriate weighting factors Cb 1 , b 2 , b 3 , b 4 ) applied respectively to the values of the terms of each template T 1 , T 2 , T 3 and T 4 .
- Figure 1 shows the applicable equations relating fueling imbalances a ls a 2 , a 3 and a 4 to their cylinder counterparts in the four reference templates.
- the knowledge of the sets of coefficients (b l5 b 2 , b 3 , b 4 ) is equivalent to knowledge of the unknown values of the imbalances (ai, a 2 , a 3 and a 4 ) in the engine's four cylinders.
- the coefficients (bi, b 2 , b 3 , b 4 ) may have positive or negative values or the value of zero. Often it is preferred that the coefficients have values expressed as percentages of the cylinder weighting factors of the templates.
- a close examination of cylinder imbalance templates reveals the following properties.
- Each template has a discrete frequency spectrum with non-zero magnitudes only at a finite number of frequencies.
- the spectrum has two lines only. The first line is at a fundamental frequency CO 1 corresponding to the engine speed. The second frequency is twice the fundamental frequency.
- a Fourier series analysis of the A/F signal indicates that the frequency spectrum of the A/F signal consists of multiple (infinite) harmonics but the spectrum is dominated by the first and second harmonics.
- the first (or fundamental) harmonic CO 1 depends on engine speed. Higher harmonics are integer multiples of the fundamental frequency CO 1 .
- any single linearly independent pattern of imbalances chosen from the set [-1, 0, +1] will constitute a possible solution, though incomplete, and will be referred to as a balancing template.
- the frequency spectrum of each balancing template in general, is composed of up to three frequencies. With the average A/F controlled by the main fuel controller in current production systems, the DC component of imbalances (T 1 in Figure 1) will become irrelevant and may be excluded. This leaves us with only three balancing templates with non-zero discrete frequency spectrums consisting of two frequencies only.
- Figure 9 is a graph illustrating an example of a discrete Fourier transform DFT of A/F signal (for example from a warmed up exhaust O 2 sensor) in a four cylinder engine.
- exhaust sensor or torque sensor signals are subjected to Fourier transforms.
- n 0, 1,..., N-I
- the Fourier transform is defined by the following expression:
- N total number of data points
- k ' number of spectral lines in the Fourier transform.
- DFT Discrete Fourier Transform
- the Discrete Fourier Transform maps N complex numbers x(n) into N complex numbers X(k). In this case, the samples from sensor signal x(n) have real parts only.
- the sensor is sampled at a rate compatible with the recovery of the first harmonic and for a length of at least one full engine cycle.
- a fast or discrete Fourier transform (FFT or DFT) of the A/F signal is performed and the amplitude of the first harmonic is computed. Magnitudes larger than a given threshold at each mode indicate a significant imbalance at that mode.
- the corrective templates are imposed individually and simultaneously to reduce the level of total imbalances to near zero.
- the control signal uses the logical templates corresponding to various modes and modal shapes (i.e. discrete modes).
- DMC Discrete Modal Control
- the method is still effective, up to very high precision, where the A/F signal may be non-periodic. All these factors point to a method with robustness as its main attribute. This technique is simple to understand and easy to implement and has led to a powerful technique for individual cylinder A/F or torque control.
- the sensor signal is sampled at a predetermined rate (preferably in tandem with engine events) and for a predetermined period of time (preferably a number of engine cycles) and processed according to the following sequence of three steps: I. Determination of base templates spectrum phase angle and magnitude information. This constitutes the calibration step and is carried out a priori (offline) and stored as table lookups (or as analytic functions) for real-time individual cylinder fuel control.
- Imbalance vector T is mathematically resolved into, contributions of the pure template vectors T 2 , T 3 and T 4 .
- Template vectors T 2 , T 3 and T 4 are mutually orthogonal as seen in Figure 2.
- T 3 and T 4 are determined at the first harmonic, GDi, and T 2 at the second harmonic, ⁇ 2 .
- T 3 and T 4 lie in the CQ 1 plane and T 2 lies on the ⁇ 2 axis.
- This step constitutes the calibration phase where the individual templates of known nominal magnitudes d 3 o and d 4 o (say 10%, for templates T 3 and T 4 , respectively) are directly imposed on a balanced engine first.
- the frequency spectrum of the resulting signal (A/F, O 2 or crankshaft torque sensor) in terms of its phase and magnitude information is determined at the given engine speed. This information is stored in table lookups for references during the detection phase.
- Either a fast Fourier transform (FFT) or discrete Fourier transform (DFT) is used to fill the table lookups at different engine speeds and for various loads (MAP or MAF). This step is, essentially a calibration requirement and is executed offline. If desired, data for various operating conditions can also be curve-fitted so that a simpler .analytic function for the spectrum is derived.
- FFT fast Fourier transform
- DFT discrete Fourier transform
- the selected or measured engine and MAP or MAF values together with engine speed (rpm) are stored in the PCM as indicated at block 300 of Figure 3A.
- a set of parameter values regarding the magnitude of templates T 2 , T 3 and T 4 named d 2 o, d 30 and d 40 , respectively, is stored.
- an imbalance magnitude of 10% of the stoichiometric A/F may be used for each of d 2 o, d 30 and d 40 .
- the process then proceeds as follows: [0058] 1. Choose two independent templates T 3 & T 4 . These templates may be characterized by
- T 3 [+1, 0, -1, 0]
- T 4 [0, +1, 0, -I].
- the resolution ⁇ r would then be 3607m (i.e., 15° in V8).
- Apply template T 3 imbalances of magnitude d 30 as shown in box 318 (j 3).
- N w cycles To eliminate the effects of fuel transients, it is preferred to wait N w cycles before measuring the system response. The crankshaft angle is measured (block 320), monitored (block 322) and checked (block 324, figure 3B) to insure that the required number of wait cycles N w are elapsed before date collection.
- Figure 10 is a graph illustrating an example of two possible DFT (T 3 ) and DFT (T 4 ) vectors with their respective magnitudes and phase angles ⁇ 3 and ⁇ 4 .
- the phase angles of the templates are generally 120° apart.
- the Cartesian coordinates of these vectors can be determined by projecting on the x and y axes.
- step IH For O 2 sensor-based calibration, due to the non-linearity of the sensor, the calibration has to be carried out at different levels of imposed A/F imbalances. Alternatively, one can approximate the non-linear calibration curves conservatively and then through iterative corrections (i.e., step IH).
- W(Oj) is the value of the signal, due to unknown imbalances, measured at crank angle ⁇ ; and index 'm' is such that the sensor is measured for at least one full engine cycle (i.e. two engine revolutions) at a minimal sampling rate of 4X (desirable rate > 8X).
- index f; and gi are entered from previously defined table lookups in step I.
- FIG. 4A-4B A complete detailed flowchart of the imbalances detection process (step II) for the templates T 3 and T 4 is attached as Figures 4A-4B.
- the procedure requires the detection of the magnitude of DFT (AfF) at the 2 nd harmonic only.
- the detection process begins by measuring manifold pressure (MAP) or intake airflow rate (MAF) and engine speed (rpm) in block 400. Then the number of cycles N F required for DFT calculation and the number of teeth on the crankshaft encoder (m) are specified, block 402.
- MAP manifold pressure
- MAF intake airflow rate
- rpm engine speed
- m number of cycles required for DFT calculation and the number of teeth on the crankshaft encoder
- initialization of the index for crank angle (k) and DFT cylinder imbalance components takes place.
- crank position ( ⁇ k ) is measured (block 406), and when the index exceeds the total number of teeth (block 408), both the index and the teeth angle are adjusted as in block 410. Otherwise, for the current shaft position, the corresponding sine and cosine parameters in block 412 are retrieved from the calibration procedure described above.
- the oxygen sensor (or torque sensor) output W( ⁇ k ) at this crank position ⁇ k is recorded in block 414.
- Method A The Single-Axis Projection (SAP) Method
- SAP Single-Axis Projection
- FIG. 11 illustrates the imbalance vector (magnitude R and phase angle ⁇ ) and template vectors T 3 and T 4 with magnitudes R 3 and R 4 and phase angles ⁇ 3 and ⁇ 4 .
- This figure is a schematic illustration of various DFT vectors of interest. The angles between the measured imbalance vector and template vectors of T 3 and T 4 are identified as ⁇ 3 and ⁇ 4 , respectively.
- the unknown components X 3 and X 4 are now calculated from solving the above set of two equations:
- templates Ti of opposite magnitude -d This is achieved by adding appropriate patterns of offsets (related to' the template) to average' cylinder fuel pulse width in each cylinder. For example to apply -6% in T 3 with a pattern [+1, 0, -1, 0], we remove 6% from cylinder 1 fuel, add 6% to cylinder 4, and leave cylinders 2 and 3 fuel unchanged (with the firing sequence 1342). [0081] The above single-shot approach would immediately eliminate the A/F imbalances of the fundamental frequency in a 4-cylinder (or V8 engine with dual exhaust system). Similarly, application of a template T 2 with a pattern of [-1, +1, -1, +1] of magnitude -d 2 will immediately remove the effect of imbalances at the 2 nd harmonic.
- Figure 5 is a flow diagram summarizing the algorithm for performing the correction process by Method A:
- the required correction is then a combination of templates T 3 and T 4 of magnitude -d 3 and -d 4 , respectively.
- Figure 6 is a flow diagram summarizing the algorithm for . performing the correction process by Method B for first harmonic imbalances
- Templates T 3 and T 4 (i.e., Templates T 3 and T 4 ).
- Figure 7 is a flow diagram summarizing the algorithm for performing the correction process by Method B for second harmonic imbalances.
- 6 and 7 may be needed to achieve the corrections by the total magnitude method. This is particularly true when an 02 sensor is used to detect and correct the imbalances at the stoichiometric A/F.
- T 0 is the time between successive injections in the same cylinder.
- the sensor is sampled at a rate T s where T s ⁇ T 0 M with n > 1 to avoid aliasing though an event-based sampling is preferred with synchronization with the crankshaft encoder (e.g. 24X in V8 engine).
- Detection of imbalances at the frequency ⁇ 0 also requires a sensor with the same minimum bandwidth (usually 2-5 times wider). The bandwidth requirement also imposes constraints on the upper limit on engine speed at which the imbalances can effectively be detected. [00119]
- the necessary information at any operating condition was developed.
- the wait-time is directly related to the engine and sensor system transportation delays.
- Step III by computing template T 2 , T 3 and T 4 contributions d 2j d 3 and d 4 , respectively.
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- Combustion & Propulsion (AREA)
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- General Engineering & Computer Science (AREA)
- Combined Controls Of Internal Combustion Engines (AREA)
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE112005003378T DE112005003378B4 (en) | 2005-01-13 | 2005-12-12 | Single cylinder controller for four-cylinder engine |
| CN2005800465652A CN101103192B (en) | 2005-01-13 | 2005-12-12 | Individual cylinder controllers for four-cylinder engines |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/035,390 | 2005-01-13 | ||
| US11/035,390 US7027910B1 (en) | 2005-01-13 | 2005-01-13 | Individual cylinder controller for four-cylinder engine |
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| Publication Number | Publication Date |
|---|---|
| WO2006076109A1 true WO2006076109A1 (en) | 2006-07-20 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2005/045119 Ceased WO2006076109A1 (en) | 2005-01-13 | 2005-12-12 | Indivudual cylinder controller for four-cylinder engine |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US7027910B1 (en) |
| CN (1) | CN101103192B (en) |
| DE (1) | DE112005003378B4 (en) |
| WO (1) | WO2006076109A1 (en) |
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| US7473675B2 (en) | 2005-02-25 | 2009-01-06 | Solutions Biomed, Llc | Disinfectant systems and methods comprising a peracid, alcohol, and transition metal |
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| DE102018204450B4 (en) * | 2018-03-22 | 2021-12-23 | Vitesco Technologies GmbH | Method for testing a variable valve lift control of an internal combustion engine |
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- 2005-12-12 CN CN2005800465652A patent/CN101103192B/en not_active Expired - Lifetime
- 2005-12-12 DE DE112005003378T patent/DE112005003378B4/en not_active Expired - Lifetime
- 2005-12-12 WO PCT/US2005/045119 patent/WO2006076109A1/en not_active Ceased
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| Publication number | Priority date | Publication date | Assignee | Title |
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| US7473675B2 (en) | 2005-02-25 | 2009-01-06 | Solutions Biomed, Llc | Disinfectant systems and methods comprising a peracid, alcohol, and transition metal |
Also Published As
| Publication number | Publication date |
|---|---|
| CN101103192B (en) | 2012-08-29 |
| DE112005003378T5 (en) | 2008-03-20 |
| DE112005003378B4 (en) | 2010-04-29 |
| CN101103192A (en) | 2008-01-09 |
| US7027910B1 (en) | 2006-04-11 |
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