IP Library Granted Patent US 8,521,402
Granted Patent B2
US 8,521,402 · App. 13/182,593 · Granted Aug 27, 2013

Method for controlling the air supply in a cylinder of a four-stroke internal combustion engine with controlled ignition

Inventor: Renzo Ruggiano (Bologna, IT)
Assignee: Magneti Marelli S.p.A.
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Quick Facts
Patent No.
US 8,521,402
App. No.
13/182,593
Granted
Aug 27, 2013
Kind
B2
Abstract

A method for controlling air supply in a cylinder of a four-stroke internal-combustion engine with controlled ignition includes steps of: determining, in a phase prior to a suction phase, an estimate of mass of desired air to be sucked into the cylinder during the suction phase; determining, in a phase prior to the suction phase, a forecast of suction pressure during the suction phase; determining, in a phase prior to the suction phase, programming of suction of air as a function of the estimate of the mass of the desired air to be sucked into the cylinder during the suction phase and of the forecast of the suction pressure during the suction phase; and controlling, until an end of an exhaust phase, the suction of air into the cylinder by piloting a control device for implementation of an intake valve according to the programming of the suction of air.

Claims (17)

1. Method of controlling the aspiration of air into a four-stroke internal combustion engine ( 1 ) with controlled ignition comprising at least one cylinder ( 2 ), an intake collector ( 5 ) that feeds fresh air into the cylinder ( 2 ) through at least one intake valve ( 6 ), an injector ( 10 ) that injects fuel into the cylinder ( 2 ), and a control device ( 13 ) for the implementation of the intake valve ( 6 ); the control method comprises the steps of:

determining, in a phase prior to the suction phase, a first estimate of the mass (M AIR-DES-1 ) of the desired air to be sucked into the cylinder ( 2 ) during suction phase;

determining, in a phase prior to the suction phase, a first forecast (P PR-1 ) of the suction pressure during the suction phase by a first forecast algorithm that uses previous measures (P M ) of the suction pressure;

determining, in a phase prior to the suction phase, an initial programming of the suction of air as a function of the first estimate of the mass (M AIR-DES-1 ) of the desired air to be sucked into the cylinder ( 2 ) during the suction phase and of the first forecast (P PR-1 ) of the suction pressure during the suction phase;

controlling, until the end of the exhaust phase, the aspiration of air into the cylinder ( 2 ) by piloting the control device ( 13 ) for the implementation of the intake valve ( 6 ) according to the initial programming of the suction of air; and

determining a measure (P M-S ) of the suction pressure at the end of exhaust phase;

the control method is characterized in that it comprises the additional steps of:

determining, at the end of the exhaust phase, a second forecast (P PR-2 ) of the suction pressure during the suction phase by a second forecast algorithm that also uses the measure (P M-S ) of the suction pressure at the end of exhaust phase;

determining, the end of the exhaust phase, a final programming of air suction as a function of the second forecast (P PR-2 ) of the suction pressure during the suction phase and of the initial programming of air suction; and

controlling, starting from the suction phase, the suction of air into the cylinder ( 2 ) by piloting the control device ( 13 ) for the implementation of the intake valve ( 6 ) according to the final programming of air suction.

2. Control method according to claim 1 , wherein the first forecast algorithm is identical to the second forecast algorithm.

3. Control method according to claim 1 , wherein the first forecast algorithm is different from the second forecast algorithm.

4. Control method according to claim 3 , wherein the second forecast algorithm makes a linear extrapolation of a measure (P PR-2 ) of the suction pressure at the end of the expansion phase and a measure (P M-S ) of the suction pressure at the end of exhaust phase to determine the second forecast (P PR-2 ) of the suction pressure during the suction phase.

5. Control method according to claim 1 , comprising the additional step of determining, at the end of exhaust phase, the final programming of the air suction as a function of the second forecast (P PR-2 ) of the pressure suction during the suction phase, as a function of the first estimate of the mass (M AIR-DES-1 ) of the desired air to be sucked into the cylinder ( 2 ) during the suction phase, and as a function of the initial programming of the air suction.

6. Control method according to claim 1 comprising the additional steps of:

determining at the end of exhaust phase, a second estimate of the mass (M AIR-DES-2 ) of desired air to be sucked into the cylinder ( 2 ) during the suction phase; and

determining, at the end of exhaust phase, the final programming of air suction as a function of the second forecast (P PR-2 ) of the suction pressure during the suction phase, as a function of the second estimate of the mass (M AIR-DES-2 ) of desired air to be sucked into the cylinder ( 2 ) during the suction phase and as a function of the initial programming of air suction.

Assignments (2)
CHANGE OF NAME Recorded Oct 16, 2020
From: MAGNETI MARELLI S.P.A.
To: MARELLI EUROPE S.P.A.
Reel/Frame 054090/0733 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2012
From: RUGGIANO, RENZO
To: MAGNETI MARELLI S.P.A.
Reel/Frame 027598/0521 →
Priority Claims (1)
IT B02010A0447 · Jul 14, 2010 · national
Continuity (1)
Related Publication 20120089318A1 · Apr 12, 2012