Extending Lean and Exhaust Gas Recirculation-Dilute Operating Limits of a Modern Gasoline Direct-Injection Engine Using a Low-Energy Transient Plasma Ignition System

Author:

Sevik James1,Wallner Thomas1,Pamminger Michael1,Scarcelli Riccardo1,Singleton Dan2,Sanders Jason2

Affiliation:

1. Argonne National Laboratory, Lemont, IL 60439 e-mail:

2. Transient Plasma Systems, Inc., Torrance, CA 90501 e-mail:

Abstract

The efficiency improvement and emissions reduction potential of lean and exhaust gas recirculation (EGR)-dilute operation of spark-ignition gasoline engines is well understood and documented. However, dilute operation is generally limited by deteriorating combustion stability with increasing inert gas levels. The combustion stability decreases due to reduced mixture flame speeds resulting in significantly increased combustion initiation periods and burn durations. A study was designed and executed to evaluate the potential to extend lean and EGR-dilute limits using a low-energy transient plasma ignition system. The low-energy transient plasma was generated by nanosecond pulses and its performance compared to a conventional transistorized coil ignition (TCI) system operated on an automotive, gasoline direct-injection (GDI) single-cylinder research engine. The experimental assessment was focused on steady-state experiments at the part load condition of 1500 rpm 5.6 bar indicated mean effective pressure (IMEP), where dilution tolerance is particularly critical to improving efficiency and emission performance. Experimental results suggest that the energy delivery process of the low-energy transient plasma ignition system significantly improves part load dilution tolerance by reducing the early flame development period. Statistical analysis of relevant combustion metrics was performed in order to further investigate the effects of the advanced ignition system on combustion stability. Results confirm that at select operating conditions EGR tolerance and lean limit could be improved by as much as 20% (from 22.7 to 27.1% EGR) and nearly 10% (from λ = 1.55 to 1.7) with the low-energy transient plasma ignition system.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference21 articles.

1. Draft Inventory of U.S. Greenhouse Gas Emissions and Sinks: 1990–2013;National Greenhouse Gas Emissions Data,2015

2. Fourth Climate Action Report to the UN Framework Convention on Climate Change: Projected Greenhouse Gas Emissions;U.S. Department of State,2007

3. Annual Energy Outlook 2013 With Projections to 2040;U.S. Energy Information Administration,2013

4. Plasma Assisted Ignition and Combustion;J. Phys. D: Appl. Phys.,2006

5. The Role of Non-Thermal Transient Plasma for Enhanced Flame Ignition in C2H4–Air;J. Phys. D: Appl. Phys.,2011

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