FIELD OF THE INVENTION
[0001] The present invention relates to a fuel injection system and, more particularly,
relates to a fuel injection system that more accurately detects pressure based on
pressure values from a plurality of pressure sensors.
[0002] Furthermore, the invention relates to a method of detecting pressure.
BACKGROUND OF THE INVENTION
[0003] Fuel injection systems with fuel rails (i.e., "common rail type fuel injection systems"
or "rail-type fuel injection systems") are known. In these systems, pressurized fuel
accumulates within the fuel rail, and the fuel is supplied to an engine via a fuel
injection valve.
[0004] Typically, a pressure sensor is included in this type of fuel injection system. The
pressure sensor is used to detect a pressure value within the fuel rail, and feedback
control of a fuel pump occurs to bring the fuel pressure in the fuel rail up to a
target pressure. More specifically, the fuel injection system controls the amount
of fuel pumped to the fuel rail according to the difference between the detected pressure
value and the target fuel pressures.
[0005] In many cases, the pressure sensor exhibits a certain amount of error when detecting
fuel pressure (i.e., the detected fuel pressure values have characteristic dispersion).
The dispersion can detrimentally affect the performance of the engine.
[0006] Fuel injection systems have been proposed in partial response to this problem. For
instance, document
JP 2003-161225 A discloses a rail-type fuel injection system that includes a plurality of fuel pressure
sensors. By including a plurality of fuel pressure sensors, the fuel pressure can
be more accurately detected. Specifically, the fuel pressure sensors each individually
detect a fuel pressure value, and these values are averaged in order to more accurately
detect the fuel pressure within the system.
[0007] However, even in these systems, dispersion of the detected fuel pressure values may
detrimentally affect the fuel injection performance. For instance, the dispersion
may cause the detected fuel pressure value to be skewed negatively, such that the
detected fuel pressure is too low. As a result, the fuel injection system may supply
too much fuel to the fuel rail and damage the system. Conversely; the dispersion may
cause the detected fuel pressure value to be skewed positively, such that the detected
fuel pressure is too high. As a result, the fuel injection system may supply too little
fuel to the fuel rail (e.g., when the engine is started, etc.).
[0008] A method of detecting pressure within a chamber of an engine comprising the features
summarized in the preamble of claim 1 and a fuel injection system for an engine comprising
the features summarized in the preamble of claim 6 are known from document
JP 2003-161225 A.
SUMMARY OF THE INVENTION
[0009] It is an object of the present invention to provide a method and a fuel injection
system having an improved pressure detecting accuracy and obtaining a pressure result
which improves the fuel injection performance.
[0010] This object is achieved by the method defined in claim 1 and by the fuel injection
system defined in claim 6.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
Fig. 1 is a schematic illustration of one embodiment of a rail type fuel injection
system disclosed herein;
Fig. 2 is a graphical illustration of results of operation of the fuel injection system
of Fig. 1;
Fig. 3 is a graphical illustration of results of operation of the fuel injection system
of Fig. 1;
Fig. 4 is a flow chart illustrating a method of operating the fuel injection system
of Fig. 1;
Fig. 5 is a graphical illustration of results of operation of the fuel injection system
of Fig. 1; and
Fig. 6 is a graphical illustration of results of operation of the fuel injection system
of Fig. 1.
DETAILED DESCRIPTION
[0012] Fig. 1 schematically illustrates one embodiment of a rail-type fuel injection system
5 for an engine 10. In one embodiment, engine 10 is a diesel engine 10; however, it
will be appreciated that the engine 10 could be of any suitable type.
[0013] As shown, the fuel injection system 5 includes a plurality of fuel injectors 11,
such as electromagnetic-type fuel injectors 11. Each injector 11 is in communication
with a cylinder of the engine 10, and supplies fuel thereto. The injectors 11 are
also in communication with a chamber, such as a fuel rail 12 (i.e., an accumulating
pressure pipe, etc.).
[0014] A pump 13 is in communication with the fuel rail 12. Fuel is accumulated in the fuel
rail 12 in accordance with the operation of the high pressure pump 13. The pump 13
includes a suction metering valve 13a (SCV), such as an electromagnetic valve. Fuel
is pumped from a fuel tank 15 by a feed pump 14 and moves into the pump 13 through
the suction metering valve 13a.
[0015] In one embodiment, for example, the target fuel pressure within the fuel rail 12
is about 180 MPa, and the resisting pressure of the fuel rail 12 is about 200 MPa.
[0016] The fuel injection system 5 also includes a plurality of pressure sensors 16, 17.
It will be appreciated that the fuel injection system 5 could include any number of
pressure sensors 16, 17. The pressure sensors 16, 17 are each able to individually
detect the fuel pressure (i.e., the pressure value) within the fuel rail 12. The pressure
sensors 16, 17 then generate signals correlating to the detected pressure values.
[0017] Also, in one embodiment, the fuel injection system 5 includes a relief valve (not
shown). The relief valve can be of any suitable type, such as an electromagnetic valve
or a mechanical valve. When the detected fuel pressure value is too high, the relief
valve is opened to thereby reduce the pressure within the fuel rail 12.
[0018] The fuel injection system 5 further includes an ECU 20. The ECU 20 is an electronic
control unit having a known microcomputer with a CPU, ROM, RAM, EEPROM, etc. The ECU
20 is in communication with the pressure sensors 16, 17, and the ECU 20 receives the
signals generated by the pressure sensors 16, 17. Then, by processing the signals
in a manner to be described in greater detail below, the ECU 20 generates a "pressure
result," which accurately correlates to the actual pressure within the fuel rail 12.
[0019] The ECU 20 also receives other signals from various sensors (not shown) in the engine
10, such as a rotating speed sensor, an acceleration aperture sensor, etc., to detect
an operating condition of the engine 10. The ECU 20 also determines an appropriate
target pressure value of the fuel rail 12 based on the particular operating condition
of the engine 10. Then, ECU 20 feedback-controls the pump 13 to change the pressure
within the fuel rail 12 such that the "pressure result" detected within the fuel rail
12 approximately equals the target pressure of the fuel rail 12. Thus, the fuel injection
from the injectors 11 to the respective combustion chambers is controlled.
[0020] The operation of the ECU 20 will now be discussed in more detail. The pressure values
detected by the pressure sensors 16, 17 are averaged. Each of the pressure sensors
16, 17 has characteristic dispersion such that the pressure values are dispersed by
this characteristic dispersion. However, the dispersion of this common rail pressure
can be statistically set to, for example, 1/√2 by averaging the two sensor detecting
values.
[0021] Generally, if the number of sensors is N and the characteristic dispersion (i.e.,
allowance tolerance) of the sensor simplex is ±α, then the averaging processing is
performed (i.e., the distribution of characteristic dispersion is generated and the
distribution result is generated) based on the detecting signal of each sensor 16,
17, and the characteristic dispersion statistically becomes ±α/√N. Accordingly, the
dispersion amount is reduced, and the fuel injection system 5 is able to reduce detecting
error.
[0022] As shown in Fig. 5, an example of the distribution of the characteristic dispersion
in the sensor simplex is provided and labeled as the line P1. The distribution result
generated by processing the distribution of characteristic dispersion is shown by
a dotted line labeled P2. Accordingly, as represented in Fig. 5, the detecting accuracy
of the fuel injection system 5 is improved.
[0023] Also, the distribution result is offset. In one embodiment, for instance, the distribution
result is offset positively such that an upper limit of the distribution result is
approximately equal to an upper limit of the distribution of characteristic dispersion.
As such, it is unlikely that the calculated pressure result will be lower than the
actual fuel pressure. Thus, it is unlikely that the fuel system will be overpressurized.
[0024] More specifically, as shown in Fig. 6, when the number of sensors is N and the characteristic
dispersion (i.e., the allowance tolerance) of the sensor simplex is ±α [MPa], the
difference between the upper limit value of the characteristic dispersion of the sensor
simplex and the upper limit value of the distribution result is α-αl√N
. Thus, the distribution result is correspondingly offset positively as shown by the
line labeled P3 in Fig. 6.
[0025] Also, in one embodiment, the distribution result is offset negatively in the same
manner. For instance, the distribution result is offset negatively such that a lower
limit of the distribution result is approximately equal to the lower limit of the
distribution of characteristic dispersion. As such, the distribution result can be
offset negatively at engine start or at another suitable time. Accordingly, the rise
in pressure of the fuel rail 12 will be hastened by offsetting the distribution result
negatively, thereby improving fuel injection at the engine starting time or other
suitable time.
[0026] Referring now to Fig. 2, another embodiment is illustrated having a dispersion of
±5 MPa as simplex characteristics. The solid line A in Fig. 2 shows the characteristic
dispersion of the sensor simplex. The characteristic dispersion of the sensor simplex
is distributed within the range of ±5 Mpa. Thus, the upper limit value is 5 MPa, and
the lower limit value is -5 MPa.
[0027] When the averaging processing is executed (i.e., when the distribution result is
generated), the dispersion statistically becomes:

As shown in Fig. 2, this distribution result is distributed as shown by a dotted line
B, and the values of the upper and lower limits of the dispersion respectively become
B1 = 3.5355 MPa and B2 = -3.5355 MPa. Thus, the dispersion amount can be reduced about
30 percent, thereby allowing the fuel injection system 5 to detect pressure more accurately.
[0028] Also, when the averaging processing is executed by using three sensors, the dispersion
after the averaging processing statistically becomes:

In Fig. 2, the distribution result is distributed as shown by a two-dotted chain line
(labeled C), and the values of the upper and lower limits of the dispersion respectively
become C1 = 2.8868 MPa and C2 = -2.8868 MPa. Thus, the dispersion amount can be reduced
40 percent or more. It will be appreciated that as the number of sensors is increased,
the dispersion amount can be reduced, but its effect appears by a square root. Therefore,
it is considered that a reducible ratio is gradually reduced.
[0029] Further, if dispersion occurs and the pressure result obtained by ECU 20 (i.e., the
detected pressure of the fuel rail 12) is value lower than the actual pressure of
the fuel rail 12, the ECU 20 may excessively raise the fuel pressure. This could negatively
impact the operation of the engine 10 and/or cause damage to the fuel injection system
5.
[0030] Therefore, in this embodiment, the distribution result is offset positively. For
instance, as shown in Fig. 3, the processing results of such a system are shown. In
this embodiment, the fuel injection system 5 includes two pressure sensors 16, 17
having the dispersion of ±5 MPa as simplex characteristics. The distribution of the
characteristic dispersion of the sensor simplex is shown by a solid line labeled A',
and the distribution result is shown by a dotted line labeled B'. The distribution
result is offset positively as shown by a two-dotted chain line labeled B".
[0031] In the embodiment shown, the offset amount is "A1 - B1" at a maximum. Using the numerical
values given above, the offset amount is:

This is shown by the curve B" in Fig. 3. Also, the lower limit is shifted from point
B2 to point X. Thus, X is expressed as:

Also, the upper limit value of the distribution result is approximately equal to the
upper limit value of distribution of the characteristic dispersion.
[0032] In one embodiment, the maximum pressure usable in the system is raised by the difference
between point A2 and point X (e.g., 5 - 2.071 ≈ 2.9 MPa). The maximum pressure of
the fuel rail 12 is controlled by the distribution result on the negative side due
to feedback control. Thus, it is necessary to have a limit (i.e., a limit with respect
to the resisting pressure) in the fuel rail maximum pressure in accordance with the
dispersion amount on the negative side. In one embodiment, the limit of the fuel rail
pressure is relaxed by changing the lower limit value of the distribution result as
mentioned above (namely, by the changing B2 → X in Fig. 3) so that the maximum pressure
is raised. Further, in this embodiment, the upper limit value of the distribution
result on the positive side is not changed. Therefore, the system is more reliable.
If the same margin degree is set, the usable pressure can be increased.
[0033] Fig. 4 is a flow chart showing the method of operating the fuel injection system
5. The ECU 20 repeatedly executes this method of operation in a predetermined angle
period (or time period).
[0034] As shown in Fig. 4, the method begins in step S101, in which the ECU 20 receives
the plurality of pressure values (e.g., A/D values) detected by the pressure sensors
16, 17. Then, in step S102, the ECU 20 generates and processes the distribution of
characteristic dispersion to thereby generate the distribution result as described
above.
[0035] Next, in step S103, the distribution result is offset either positively or negatively
as described above. In one embodiment, the offset amount is "α-α/√N" when the tolerance
of one side of the simplex dispersion is ±α and the number of used common rail pressure
sensors is N. Thus, if α is equal to 5 MPa and N is equal to 2, the offset amount
is equal to approximately:

Thus, the distribution result is offset by this amount, and the pressure result obtained
is based on the offset distribution result.
[0036] Thereafter, in step S104, a target pressure of the fuel rail 12 is determined according
to the current operating condition of the engine. In one embodiment, the ECU 20 references
one or more look-up tables to thereby determine the target pressure of the fuel rail
12. Then, in step S105, the ECU 20 feedback controls the fuel pump 13 such that the
pressure result approximately equals the target pressure.
[0037] Accordingly, the accuracy of the fuel injection amount of the injector 11 can be
improved due to the improved pressure detecting accuracy of the fuel injection system
5. Furthermore, the maximum pressure of the fuel rail 12 can be increased without
reducing the operating life of the fuel injection system 5.
[0038] As mentioned above, an allowance level of the characteristic dispersion of a sensor
simplex can be relaxed by improving the detecting accuracy of the common rail pressure
by averaging the plurality of pressure values detected by the pressure sensors 16,
17. Therefore, a reduction in yield of the common rail pressure sensor can be restrained.
[0039] Furthermore, the distribution result can be offset such that the upper limit value
of the distribution result is approximately equal to an upper limit of the distribution
of characteristic dispersion. However, it will be appreciated that the distribution
result could be offset such that the upper limit values are not equal. For example,
in one embodiment, the distribution result is offset such that the upper limit value
of the distribution result is less than the upper limit of the distribution of characteristic
dispersion. In such a case, the detecting accuracy of the fuel injection system 5
can be improved and the maximum pressure of the fuel rail 12 can be increased.
[0040] Moreover, when the pressure of the fuel rail 12 is raised (e.g., at an engine starting
time), the detected pressure values obtained from the pressure sensors 16, 17 may
exceed the actual pressure of the fuel rail 12, and the fuel pressure may not be raised
quickly enough. Thus, as described above, the distribution result can be offset negatively
at engine start or at another suitable time. Accordingly, the rise in pressure of
the fuel rail 12 will be hastened by offsetting the distribution result negatively,
thereby improving fuel injection at the engine starting time or other suitable time.
[0041] Also, in one embodiment, it is possible to switch whether or not the distribution
result is offset based on the operating state of the engine 10, etc. Further, it is
possible to switch whether the distribution result is offset positively or offset
negatively based on the operating state of the engine 10, etc.
[0042] The present invention has been described in an illustrative manner. It is to be understood
that the terminology, which has been used, is intended to be in the nature of words
of description rather than of limitation. Many modifications and variations of the
present invention are possible in light of the above teachings. Therefore, within
the scope of the appended claims, the present invention may be practiced other than
as specifically described.
1. A method of detecting pressure within a chamber (12) of an engine (10), comprising
detecting a plurality of pressure values of the chamber (12) with a plurality of pressure
sensors (16, 17);
averaging the plurality of detected pressure values and generating a distribution
result (P2) based on the averaged pressure values; and
obtaining a pressure result,
the method being characterized by the steps of
generating a distribution (P1) of the characteristic dispersion of a sensor simplex
based on the plurality of detected pressure values;
offsetting the distribution result (P2) for generating an offset distribution result
(P3), wherein the offset distribution result (P3) is offset such that an upper limit
thereof is approximately equal to an upper limit of the distribution (P1) of the characteristic
dispersion of a sensor simplex, or such that a lower limit of the offset distribution
result (P3) is approximately equal to a lower limit of the distribution (P1) of the
characteristic dispersion of a sensor simplex; and
obtaining the pressure result based on the offset distribution result (P3).
2. The method of claim 1, further comprising:
determining a target pressure of the chamber (12); and
feedback controlling a fuel pump (13) to change pressure within the chamber (12) such
that the pressure result approximately equals the target pressure.
3. The method of claim 1 or 2, wherein offsetting the distribution result (P2) comprises
offsetting the distribution result (P2) positively such that an upper limit of the
offset distribution result (P3) is approximately equal to an upper limit of the distribution
(P1) of the characteristic dispersion.
4. The method of claim 1 or 2, wherein offsetting the distribution result (P2) comprises
offsetting the distribution result (P2) negatively such that a lower limit of the
offset distribution result (P3) is approximately equal to a lower limit of the distribution
(P1) of the characteristic dispersion.
5. The method of claim 3 or 4, wherein the number of the plurality of pressure sensors
(16, 17) is N wherein the characteristic dispersion is ±α, and wherein offsetting
the distribution result satisfies α - α/√N.
6. A fuel injection system (5) for an engine (10) with a chamber (12), the fuel injection
system (5) comprising
a plurality of pressure sensors (16, 17) for detecting a plurality of pressure values
within the chamber (12); and
an ECU (20) that receives the plurality of pressure values detected by the plurality
of pressure sensors (16, 17),
wherein the ECU (20) averages the plurality of detected pressure values and generates
a distribution result (P2) based on the averaged pressure values, and
wherein the ECU (20) obtains a pressure result,
characterized
in that the ECU (20) generates a distribution (P1) of the characteristic dispersion of a
sensor simplex based on the plurality of detected pressure values,
in that the ECU (20) offsets the distribution result (P2) such that an upper limit thereof
is approximately equal to an upper limit of the distribution (P1) of the characteristic
dispersion of a sensor simplex, or such that a lower limit of the offset distribution
result (P3) is approximately equal to a lower limit of the distribution (P1) of the
characteristic dispersion of a sensor simplex, and
in that the ECU (20) obtains the pressure result based on the offset distribution result
(P3).
7. The fuel injection system (5) of claim 6, wherein the engine (10) further comprises
a fuel pump (13) that supplies fuel to the chamber (12), wherein the ECU (20) determines
a target pressure of the chamber (12), and wherein the ECU (20) feedback controls
the fuel pump (13) to change pressure within the chamber (12) such that the pressure
result approximately equals the target pressure.
8. The fuel injection system (5) of claim 6 or 7, wherein the ECU (20) offsets the distribution
result (P2) positively such that an upper limit of the offset distribution result
(P3) is approximately equal to an upper limit of the distribution (P1) of the characteristic
dispersion.
9. The fuel injection system (5) of claim 6 or 7, wherein the ECU (20) offsets the distribution
result (P2) negatively such that a lower limit of the offset distribution result (P3)
is approximately equal to a lower limit of the distribution (P1) of the characteristic
dispersion.
10. The fuel injection system (5) of claim 8 or 9, wherein the number of the plurality
of pressure sensors (16, 17) is N, wherein the characteristic dispersion is ±α, and
wherein the ECU (20) offsets the distribution result so as to satisfy α - α/√N.
1. Verfahren zum Erfassen von Druck innerhalb einer Kammer (12) einer Maschine (10) mit
den Schritten
Erfassen einer Vielzahl von Druckwerten der Kammer (12) mit einer Vielzahl von Drucksensoren
(16, 17);
Mitteln der Vielzahl von erfassten Druckwerten und Erzeugen eines Verteilungsergebnisses
(P2) basierend auf den gemittelten Druckwerten; und
Erhalten eines Druckergebnisses,
wobei das Verfahren gekennzeichnet ist durch die Schritte
Erzeugen einer Verteilung (P1) der charakteristischen Verteilung eines Sensorsimplex
basierend auf der Vielzahl der erfassten Druckwerte;
Verschieben des Verteilungsergebnisses (P2) zum Erzeugen eines verschobenen Verteilungsergebnisses
(P3), wobei das verschobene Verteilungsergebnis (P3) derart verschoben ist, dass eine
Obergrenze von diesem in etwa gleich einer Obergrenze der Verteilung (P1) der charakteristischen
Verteilung eines Sensorsimplex ist, oder derart, dass eine Untergrenze des verschobenen
Verteilungsergebnisses (P3) in etwa gleich einer Untergrenze der Verteilung (P1) der
charakteristischen Verteilung eines Sensorsimplex ist; und
Erhalten des Druckergebnisses basierend auf dem verschobenen Verteilungsergebnis (P3).
2. Verfahren gemäß Anspruch 1, das ferner die Schritte aufweist:
Bestimmen eines Solldrucks der Kammer (12); und
Regeln einer Kraftstoffpumpe (13), um den Druck innerhalb der Kammer (12) derart zu
ändern, dass das Druckergebnis in etwa den Solldruck erreicht.
3. Verfahren gemäß Anspruch 1 oder 2, wobei das Verschieben des Verteilungsergebnisses
(P2) ein Verschieben des Verteilungsergebnisses (P2) in einer positiven Art derart
umfasst, dass eine Obergrenze des verschobenen Verteilungsergebnisses (P3) in etwa
gleich einer Obergrenze der Verteilung (P1) der charakteristischen Verteilung ist.
4. Verfahren gemäß Anspruch 1 oder 2, wobei ein Verschieben des Verteilungsergebnisses
(P2) ein Verschieben des Verteilungsergebnisses (P2) auf negative Art derart aufweist,
dass eine Untergrenze des verschobenen Verteilungsergebnisses (P3) in etwa gleich
einer Untergrenze der Verteilung (P1) der charakteristischen Verteilung ist.
5. Verfahren gemäß Anspruch 3 oder 4, wobei die Anzahl von der Vielzahl von Drucksensoren
(16, 17) N ist, wobei die charakteristische Verteilung ± α ist und wobei das Verschieben
des Verteilungsergebnisses

erfüllt.
6. Kraftstoffeinspritzsystem (5) für eine Maschine (10) mit einer Kammer (12), wobei
das Kraftstoffeinspritzsystem (5) aufweist
eine Vielzahl von Drucksensoren (16, 17) zum Erfassen einer Vielzahl von Druckwerten
innerhalb der Kammer (12); und
eine ECU (20), die die Vielzahl von Druckwerten aufnimmt, die durch die Vielzahl von
Drucksensoren (16, 17) erfasst wurden,
wobei die ECU (20) die Vielzahl von erfassten Druckwerten mittelt und basierend auf
den gemittelten Druckwerten ein Verteilungsergebnis (P2) erzeugt, und
wobei die ECU (20) ein Druckergebnis erhält, dadurch gekennzeichnet, dass
die ECU (20) eine Verteilung (P1) der charakteristischen Verteilung eines Sensorsimplex
basierend auf der Vielzahl von erfassten Druckwerten erzeugt,
die ECU (20) das Verteilungsergebnis (P2) derart verschiebt, dass sich eine Obergrenze
von dieser in etwa einer Obergrenze der Verteilung (P1) der charakteristischen Verteilung
eines Sensorsimplex nähert oder derart, dass eine Untergrenze des verschobenen Verteilungsergebnis
(P3) in etwa gleich der Untergrenze der Verteilung (P1) der charakteristischen Verteilung
eines Sensorsimplex ist, und
dadurch, dass die ECU (20) das Druckergebnis basierend auf dem verschobenen Verteilungsergebnis
(P3) erhält.
7. Kraftstoffeinspritzsystem (5) gemäß Anspruch 6, wobei die Maschine (10) ferner eine
Kraftstoffpumpe (13) aufweist, die Kraftstoff zu der Kammer (12) zuführt,
wobei die ECU (20) einen Solldruck der Kammer (12) bestimmt und wobei die ECU (20)
die Kraftstoffpumpe (13) regelt, um den Druck innerhalb der Kammer (12) derart zu
ändern, dass sich das Druckergebnis dem Solldruck in etwa nähert.
8. Kraftstoffeinspritzsystem (5) gemäß Anspruch 6 oder 7,
wobei die ECU (20) das Verteilungsergebnis (P2) auf positive Art derart verschiebt,
dass eine Obergrenze des verschobenen Verteilungsergebnisses (P3) im Wesentlichen
gleich einer Obergrenze der Verteilung (P1) der charakteristischen Verteilung ist.
9. Kraftstoffeinspritzsystem (5) gemäß Anspruch 6 oder 7,
wobei die ECU (20) das Verteilungsergebnis (P2) auf negative Art derart verschiebt,
dass eine Untergrenze der verschobenen Verteilungsergebnisses (P3) im Wesentlichen
gleich einer Untergrenze der Verteilung (P1) der charakteristischen Verteilung ist.
10. Kraftstoffeinspritzsystem (5) gemäß Anspruch 8 oder 9, wobei die Anzahl von der Vielzahl
von Drucksensoren (16, 17) N ist, wobei die charakteristische Verteilung ± α ist und
wobei die ECU (20) das Verteilungsergebnis so verschiebt, dass

erfüllt ist.
1. Procédé de détection d'une pression régnant dans une chambre (12) d'un moteur (10),
consistant à
détecter, à l'aide d'une pluralité de capteurs de pression (16, 17), une pluralité
de valeurs de pression de ladite chambre (12) ;
établir une moyenne de la pluralité de valeurs de pression détectées, et produire
un résultat de distribution (P2) sur la base des valeurs de pression moyennées ; et
obtenir un résultat de pression,
le procédé étant caractérisé par les étapes consistant à
générer une distribution (P1) de la dispersion caractéristique d'un simplex de détection,
sur la base de la pluralité de valeurs de pression détectées ;
décaler le résultat de distribution (P2) pour produire un résultat de distribution
décalé (P3), sachant que ledit résultat de distribution décalé (P3) est désaxé de
telle sorte qu'une limite supérieure de ce dernier soit approximativement égale à
une limite supérieure de la distribution (P1) de la dispersion caractéristique d'un
simplex de détection, ou de telle sorte qu'une limite inférieure du résultat de distribution
décalé (P3) soit approximativement égale à une limite inférieure de la distribution
(P1) de la dispersion caractéristique d'un simplex de détection ; et
obtenir le résultat de pression sur la base du résultat de distribution décalé (P3).
2. Procédé selon la revendication 1, consistant par ailleurs à
déterminer une pression de consigne de la chambre (12) ; et
commander rétroactivement une pompe de carburant (13) afin de faire varier la pression,
à l'intérieur de ladite chambre (12), de telle sorte que le résultat de pression soit
approximativement égal à ladite pression de consigne.
3. Procédé selon la revendication 1 ou 2, dans lequel le décalage du résultat de distribution
(P2) comprend un décalage positif dudit résultat de distribution (P2), de telle sorte
qu'une limite supérieure du résultat de distribution décalé (P3) soit approximativement
égale à une limite supérieure de la distribution (P1) de la dispersion caractéristique.
4. Procédé selon la revendication 1 ou 2, dans lequel le décalage du résultat de distribution
(P2) comprend un décalage négatif dudit résultat de distribution (P2), de telle sorte
qu'une limite inférieure du résultat de distribution décalé (P3) soit approximativement
égale à une limite inférieure de la distribution (P1) de la dispersion caractéristique.
5. Procédé selon la revendication 3 ou 4, dans lequel le nombre de la pluralité de capteurs
de pression (16, 17) est exprimé par N, sachant que la dispersion caractéristique
est ± α ; et dans lequel un décalage du résultat de distribution satisfait à α - α/√N.
6. Système (5) d'injection de carburant destiné à un moteur (10) muni d'une chambre (12),
ledit système (5) d'injection de carburant comprenant
une pluralité de capteurs de pression (16, 17) pour détecter une pluralité de valeurs
de pression à l'intérieur de ladite chambre (12) ; et
une unité de commande électronique (20) qui reçoit la pluralité de valeurs de pression
détectées par la pluralité de capteurs de pression (16, 17),
sachant que l'unité de commande électronique (20) établit une moyenne de la pluralité
de valeurs de pression détectées et produit un résultat de distribution (P2) sur la
base des valeurs de pression moyennées, et
sachant que ladite unité de commande électronique (20) obtient un résultat de pression,
caractérisé
par le fait que l'unité de commande électronique (20) génère une distribution (P1) de la dispersion
caractéristique d'un simplex de détection, sur la base de la pluralité de valeurs
de pression détectées ;
par le fait que ladite unité de commande électronique (20) décale le résultat de distribution (P2)
de telle sorte qu'une limite supérieure de ce dernier soit approximativement égale
à une limite supérieure de la distribution (P1) de la dispersion caractéristique d'un
simplex de détection, ou de telle sorte qu'une limite inférieure du résultat de distribution
décalé (P3) soit approximativement égale à une limite inférieure de la distribution
(P1) de la dispersion caractéristique d'un simplex de détection ; et
par le fait que ladite unité de commande électronique (20) obtient le résultat de pression sur la
base du résultat de distribution décalé (P3).
7. Système (5) d'injection de carburant, selon la revendication 6, dans lequel le moteur
(10) comporte, en outre, une pompe de carburant (13) qui délivre du carburant à la
chambre (12) ; dans lequel l'unité de commande électronique (20) détermine une pression
de consigne de ladite chambre (12) ; et dans lequel ladite unité de commande électronique
(20) commande rétroactivement la pompe de carburant (13) pour faire varier la pression,
à l'intérieur de ladite chambre (12), de telle sorte que le résultat de pression soit
approximativement égal à ladite pression de consigne.
8. Système (5) d'injection de carburant, selon la revendication 6 ou 7, dans lequel l'unité
de commande électronique (20) décale positivement le résultat de distribution (P2)
de façon telle qu'une limite supérieure du résultat de distribution décalé (P3) soit
approximativement égale à une limite supérieure de la distribution (P1) de la dispersion
caractéristique.
9. Système (5) d'injection de carburant, selon la revendication 6 ou 7, dans lequel l'unité
de commande électronique (20) décale négativement le résultat de distribution (P2)
de façon telle qu'une limite inférieure du résultat de distribution décalé (P3) soit
approximativement égale à une limite inférieure de la distribution (P1) de la dispersion
caractéristique.
10. Système (5) d'injection de carburant, selon la revendication 8 ou 9, dans lequel le
nombre de la pluralité de capteurs de pression (16, 17) est exprimé par N, sachant
que la dispersion caractéristique est ± α ; et dans lequel l'unité de commande électronique
(20) décale le résultat de distribution de façon à satisfaire à α - α/√N.