IP Library › Granted Patent US 12,523,182
Granted Patent B2
US 12,523,182 · App. 18/765,911 · Granted Jan 13, 2026

Fuel injector control strategy using fuel bulk modulus for fuel injector command determination

Inventors: Mitchell B. Juchems (Eureka, IL); Andrew O. Marrack (Peoria Heights, IL)
Assignee: Caterpillar Inc.
F02D19/0605F02D19/0649F02D19/0673F02D19/0689F02D2200/0602F02D2200/0614
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Quick Facts
Patent No.
US 12,523,182
App. No.
18/765,911
Granted
Jan 13, 2026
Kind
B2
Abstract

A dual fuel system includes a fuel injector having a fuel pressurization plunger, and a fueling control unit structured to determine a fuel bulk modulus term based upon a volume change value (dV) and a pressure change value (dP) for a fuel pressurized in the fuel injector. The fueling control unit is further structured to determine fuel injector control commands by way of map lookups on fueling maps selected on the basis of the fuel bulk modulus term. Related apparatus and methodology are also disclosed.

Claims (40)

1 . A dual fuel system comprising:

a fuel injector including therein a plunger cavity, an injection valve, and a fuel pressurization plunger;

a fueling control unit coupled to the fuel injector and structured to:

determine a volume change value (dV) for a fuel containing at least one of a first fuel and a second fuel, pressurized in the fuel injector via advancing the plunger in the plunger cavity, while the fuel injector is deadheaded such that the injection valve remains closed;

determine a pressure change value (dP) for the fuel containing at least one of the first fuel and the second fuel;

calculate a fuel bulk modulus term based upon dV and dP;

determine a fuel injector control command based upon the fuel bulk modulus term; and

output the fuel injector control command to the fuel injector.

2 . The dual fuel system of claim 1 wherein the fuel injector includes a cam coupled to the plunger, and a spill valve, and the fueling control unit is structured to determine dV based upon valve timing parameters of the spill valve.

3 . The dual fuel system of claim 2 further comprising a pressure transducer, and wherein the fueling control unit is further structured to determine dP based upon a fuel pressure measurement of the pressure transducer.

4 . The dual fuel system of claim 3 wherein the pressure transducer is located to sense a fuel pressure pulse outside of the plunger cavity and caused by opening the spill valve.

5 . The dual fuel system of claim 4 wherein the fueling control unit is further structured to calculate dP via comparing the sensed fuel pressure pulse to a reference fuel pressure.

6 . The dual fuel system of claim 5 wherein the reference fuel pressure is determined in situ.

7 . The dual fuel system of claim 1 wherein the fueling control unit is further structured to determine the fuel injector control command via a map lookup on a fueling map selected on the basis of the fuel bulk modulus term.

8 . The dual fuel system of claim 7 wherein the fueling control unit is further structured to select, based on the fuel bulk modulus term, the fueling map from among a plurality of stored fueling maps each specific to a different fuel or a different fuel blend.

9 . The dual fuel system of claim 1 further comprising a first fuel supply containing the first fuel, a second fuel supply containing the second fuel, and a fuel admission valve assembly structured to selectively fluidly connect the first fuel supply or the second fuel supply to the fuel injector.

10 . The dual fuel system of claim 9 wherein the first fuel includes a higher cetane number fuel, and the second fuel includes a lower cetane number fuel.

11 . A method of operating a fuel system comprising:

advancing a plunger in a plunger cavity in a fuel injector to pressurize a fuel in the plunger cavity, while the fuel injector is deadheaded such that an injection valve of the fuel injector remains closed;

determining a volume change value (dV) for the fuel;

determining a pressure change value (dP) for the fuel;

outputting a fuel injector control command based upon dV and dP; and

opening an injection valve in the fuel injector responsive to the fuel injector control command to inject the fuel into a cylinder in an engine.

12 . The method of claim 11 further comprising calculating a fuel bulk modulus term based on dV and dP, and determining the fuel injector control command, based on the fuel bulk modulus term, via a map lookup on a fueling map specific to the fuel.

13 . The method of claim 12 wherein the fuel includes a first fuel injected in a first engine cycle, and further comprising calculating a second fuel bulk modulus term, determining a second fuel injector control command, based on the second fuel bulk modulus term, via a map lookup on a second fueling map specific to a second fuel, and opening the injection valve responsive to the second fuel injector control command to inject the second fuel in a second engine cycle.

14 . The method of claim 13 wherein the first fuel includes a higher cetane number fuel and the second fuel includes a lower cetane number fuel.

15 . The method of claim 11 further comprising sensing a fuel pressure pulse, and wherein the determining dP includes determining dP based on the sensed fuel pressure pulse.

16 . The method of claim 15 wherein the sensed fuel pressure pulse is produced by opening a spill valve in the fuel injector.

17 . The method of claim 15 wherein the determining dP includes comparing the sensed fuel pressure pulse to a reference fuel pressure.

18 . The method of claim 11 wherein the determining dV includes determining dV based on a valve arrival timing and a valve return timing of the spill valve.

19 . A fuel control system comprising:

a fueling control unit structured via control communication with a fuel injector to:

determine a volume change value (dV) for a fuel pressurized in the fuel injector via advancing a plunger in a plunger cavity in the fuel injector, while the fuel injector is deadheaded such that an injection valve of the fuel injector remains closed;

determine a pressure change value (dP) for the fuel pressurized in the fuel injector;

calculate a fuel bulk modulus term indicative of a fuel type of the fuel, based upon dV and dP;

determine a fuel injector control command for outputting to the fuel injector to control at least one of an injection pressure or an injection timing of the fuel, based upon the fuel bulk modulus term; and

output the fuel injector control command to the fuel injector.

20 . The fuel system of claim 19 wherein:

the fueling control unit is further structured to determine the fuel injector control command via a map lookup on a fueling map; and

select, based on the fuel bulk modulus term, the fueling map from among a plurality of stored fueling maps each specific to a different fuel or a different fuel blend.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2024
From: JUCHEMS, MITCHELL B.; MARRACK, ANDREW O.
To: CATERPILLAR INC.
Reel/Frame 067927/0560 →
Continuity (1)
Related Publication 20260009363A1 · Jan 8, 2026
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