F02M25/10

ADJUSTING A FUEL ON-BOARD A VEHICLE
20170282708 · 2017-10-05 ·

Techniques for separating a fuel on-board a vehicle include mixing an input fuel stream and a fluid solvent; separating the mixture into a first liquid fuel stream and a second liquid fuel stream, the first liquid fuel stream including a first portion of the input fuel stream defined by a first auto-ignition characteristic value and the fluid solvent, the second liquid fuel stream including a second portion of the input fuel stream defined by a second auto-ignition characteristic value that is different than the first auto-ignition characteristic value; separating the first liquid fuel stream into the fluid solvent and the first portion of the input fuel stream; directing the first portion of the input fuel stream to a first fuel tank on the vehicle; and directing the second portion of the input fuel stream to a second fuel tank on the vehicle.

METHOD FOR OPERATING AN ENGINE
20220034284 · 2022-02-03 ·

Systems and methods for controlling fuel factions delivered to different cylinders are provided. In one example, a controller is configured to, during a single engine cycle and responsive to a first condition, deliver a lower fraction of a first fuel into a donor cylinder in comparison to a fraction of the first fuel being injected into a non-donor cylinder and deliver a higher fraction of a second fuel into the donor cylinder in comparison to a fraction of the second fuel being injected into the non-donor cylinder.

METHOD FOR OPERATING AN ENGINE
20220034284 · 2022-02-03 ·

Systems and methods for controlling fuel factions delivered to different cylinders are provided. In one example, a controller is configured to, during a single engine cycle and responsive to a first condition, deliver a lower fraction of a first fuel into a donor cylinder in comparison to a fraction of the first fuel being injected into a non-donor cylinder and deliver a higher fraction of a second fuel into the donor cylinder in comparison to a fraction of the second fuel being injected into the non-donor cylinder.

Engines Including Air-Separation Emissions Mitigation Systems and Methods for Operating the Same

A method for operating an internal combustion engine includes passing air to a separation unit, separating the air into a nitrogen-enriched air stream and an oxygen-enriched air stream with the separation unit, passing the nitrogen-enriched air stream to a mixing chamber in communication with the separation unit, detecting a nitrogen content within the nitrogen-enriched air stream, based at least in part on the detected nitrogen content within the nitrogen-enriched air stream, moving an air valve between a closed position, in which the air valve restricts flow of an air stream to the mixing chamber, and an open position, in which the air stream flows to the mixing chamber through the air valve, passing the nitrogen-enriched air stream to a combustion chamber, passing a fuel to the combustion chamber, and combusting the fuel and the nitrogen-enriched air stream within the combustion chamber, thereby moving a piston within the combustion chamber.

System and method for engine boosting

An internal combustion engine may be coupled to a two-step engine boosting system to provide desired boost to the engine to meet torque demand. The two-step engine boosting system may first provide boost to the engine by nitrous oxide injection into the engine, followed by switching to providing boost from a frame rail air boosting system to generate the desired boost. Air from an air pump coupled to a transmission of the engine may flow air to the frame rail air boosting system for storage and for subsequent use in providing boost to the engine.

System and method for engine boosting

An internal combustion engine may be coupled to a two-step engine boosting system to provide desired boost to the engine to meet torque demand. The two-step engine boosting system may first provide boost to the engine by nitrous oxide injection into the engine, followed by switching to providing boost from a frame rail air boosting system to generate the desired boost. Air from an air pump coupled to a transmission of the engine may flow air to the frame rail air boosting system for storage and for subsequent use in providing boost to the engine.

AUTOMOBILE HYDROGEN AND OXYGEN GENERATOR

An automobile hydrogen oxygen generator includes an electrolytic hydrogen-oxygen generator, a motor, a battery, a filter and a circuit board. The electrolytic hydrogen-oxygen generator has water therein, an electrolytic tank connected to the battery, a relay sandwiched between the electrolytic tank and the battery and connected to the circuit board which is connected to an ignition switch. The filter is connected to the motor via air inlet and the electrolytic hydrogen-oxygen generator is connected to the air inlet via an air conduit.

AUTOMOBILE HYDROGEN AND OXYGEN GENERATOR

An automobile hydrogen oxygen generator includes an electrolytic hydrogen-oxygen generator, a motor, a battery, a filter and a circuit board. The electrolytic hydrogen-oxygen generator has water therein, an electrolytic tank connected to the battery, a relay sandwiched between the electrolytic tank and the battery and connected to the circuit board which is connected to an ignition switch. The filter is connected to the motor via air inlet and the electrolytic hydrogen-oxygen generator is connected to the air inlet via an air conduit.

Hydrogen reformer using exhaust gas
11318436 · 2022-05-03 · ·

Provided is a hydrogen reformer using exhaust gas, comprising: a catalytic reaction unit which generates a reforming gas containing hydrogen when exhaust gas generated in an engine and fuel are supplied thereto; and a heat exchange chamber which is mounted on an outer surface of the catalytic reaction unit and exchanges heat between the exhaust gas and the catalytic reaction unit to supply heat that is required for an endothermic reaction of the catalytic reaction unit, wherein heat of the exhaust gas is used for the endothermic reaction of a catalyst, such that a separate heat source for the endothermic reaction is unnecessary.

Internal combustion engine, combustion systems, and related methods and control methods and systems
11773765 · 2023-10-03 ·

Embodiments disclosed herein relate to internal combustion engines, combustion systems that include such internal combustion engines, and controls for controlling operation of the combustion engine. The internal combustion engine may include one or more mechanisms for injecting fuel, air, fuel-air mixture, or combinations thereof directly into one or more cylinders, and controls may operate or direct operation of such mechanisms.