Diesel Engine performance improvement in a 1-D engine model using Particle Swarm Optimization
A particle swarm optimization (PSO) technique was implemented to improve the engine development and optimization process to simultaneously reduce emissions and improve the fuel efficiency. The optimization was performed on a 4-stroke 4-cylinder GT-Power based 1-D diesel engine model. To ac...
Main Author: | |
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Format: | Article |
Language: | English |
Published: |
De Gruyter
2015-12-01
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Series: | Nonlinear Engineering |
Subjects: | |
Online Access: | https://doi.org/10.1515/nleng-2015-0017 |
Summary: | A particle swarm optimization (PSO) technique
was implemented to improve the engine development and
optimization process to simultaneously reduce emissions
and improve the fuel efficiency. The optimization was performed
on a 4-stroke 4-cylinder GT-Power based 1-D diesel
engine model. To achieve the multi-objective optimization,
a merit function was defined which included the parameters
to be optimized: Nitrogen Oxides (NOx), Nonmethyl
hydro carbons (NMHC), Carbon Monoxide (CO),
Brake Specific Fuel Consumption (BSFC). EPA Tier 3 emissions
standards for non-road diesel engines between 37
and 75 kW of output were chosen as targets for the optimization.
The combustion parameters analyzed in this
study include: Start of main Injection, Start of Pilot Injection,
Pilot fuel quantity, Swirl, and Tumble. The PSO was
found to be very effective in quickly arriving at a solution
that met the target criteria as defined in the merit function.
The optimization took around 40-50 runs to find the most
favourable engine operating condition under the constraints
specified in the optimization. In a favourable case
with a high merit function values, the NOx+NMHC and CO
values were reduced to as low as 2.9 and 0.014 g/kWh, respectively.
The operating conditions at this point were: 10
ATDC Main SOI, -25 ATDC Pilot SOI, 0.25 mg of pilot fuel,
0.45 Swirl and 0.85 tumble. These results indicate that late
main injections preceded by a close, small pilot injection
are most favourable conditions at the operating condition
tested. |
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ISSN: | 2192-8010 2192-8029 |