Javascript must be enabled to continue!
A Pressure-Oscillation-Based RON Estimation Method for Spark Ignition Fuels beyond RON 100
View through CrossRef
Knock in spark ignition (SI) engines occurs when the air–fuel mixture in the combustion chamber ignites spontaneously ahead of the flame front, reducing combustion efficiency and possibly leading to engine damage if left unattended. The use of knock sensors to prevent it is common practice in modern engines. Another measure to mitigate knock is the use of higher-octane fuels. The American Society for Testing and Materials’ (ASTM) determination of the Research Octane Number (RON) and Motor Octane Number (MON) of spark ignition fuels has been based on measuring cylinder pressure rise at the onset of knock since its inception in the 1930s. This is achieved through a low-pass filtered pressure signal. Knock detection in contemporary engines, however, relies on measuring engine vibrations caused by high-frequency pressure oscillations during knock. The difference between conditions in which fuels are evaluated for their octane rating and the conditions that generate a knock intensity signal from the knock sensor suggests a potential difference between octane rating and the knock limit typically identified by a contemporary knock sensor. To address this disparity, a modified RON measurement method has been developed, incorporating pressure oscillation measurements. This test method addresses the historical lack of correlation between RON and high-frequency pressure oscillation intensity during knock. Using toluene standardization fuels (TSFs) as a reference, the obtained results demonstrate excellent high-frequency knock intensity-based RON estimations for gasoline. The method is able to differentiate between two fuels that share the same ASTM RON, associating them with a RON-like metric that is more aligned with their performance in a modern SI engine. This alternative method could potentially serve as a template for an upgrade to the existing ASTM RON method without significantly disrupting the current approach. Additionally, its capability to evaluate fuels beyond RON 100 opens the door to assessing a wider range of fuels for antiknock properties and the intensity of fuel oscillations during knocking combustion.
Title: A Pressure-Oscillation-Based RON Estimation Method for Spark Ignition Fuels beyond RON 100
Description:
Knock in spark ignition (SI) engines occurs when the air–fuel mixture in the combustion chamber ignites spontaneously ahead of the flame front, reducing combustion efficiency and possibly leading to engine damage if left unattended.
The use of knock sensors to prevent it is common practice in modern engines.
Another measure to mitigate knock is the use of higher-octane fuels.
The American Society for Testing and Materials’ (ASTM) determination of the Research Octane Number (RON) and Motor Octane Number (MON) of spark ignition fuels has been based on measuring cylinder pressure rise at the onset of knock since its inception in the 1930s.
This is achieved through a low-pass filtered pressure signal.
Knock detection in contemporary engines, however, relies on measuring engine vibrations caused by high-frequency pressure oscillations during knock.
The difference between conditions in which fuels are evaluated for their octane rating and the conditions that generate a knock intensity signal from the knock sensor suggests a potential difference between octane rating and the knock limit typically identified by a contemporary knock sensor.
To address this disparity, a modified RON measurement method has been developed, incorporating pressure oscillation measurements.
This test method addresses the historical lack of correlation between RON and high-frequency pressure oscillation intensity during knock.
Using toluene standardization fuels (TSFs) as a reference, the obtained results demonstrate excellent high-frequency knock intensity-based RON estimations for gasoline.
The method is able to differentiate between two fuels that share the same ASTM RON, associating them with a RON-like metric that is more aligned with their performance in a modern SI engine.
This alternative method could potentially serve as a template for an upgrade to the existing ASTM RON method without significantly disrupting the current approach.
Additionally, its capability to evaluate fuels beyond RON 100 opens the door to assessing a wider range of fuels for antiknock properties and the intensity of fuel oscillations during knocking combustion.
Related Results
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Abstract
Introduction
Hospitals are high-risk environments for infections. Despite the global recognition of these pathogens, few studies compare microorganisms from community-acqu...
Innovative developments in the field of intensification of fuel-air mixtures ignition
Innovative developments in the field of intensification of fuel-air mixtures ignition
The article discusses the intensification of fuel-air mixtures ignition in internal combustion engines with positive ignition. The conditions of operation of the spark plug in the ...
Pengaruh Penggunaan Busi Standar, Dan Busi Iridium Terhadap Daya Dan Torsi Pada MesinYamaha Force One
Pengaruh Penggunaan Busi Standar, Dan Busi Iridium Terhadap Daya Dan Torsi Pada MesinYamaha Force One
Abstract
A spark plug is a part of an internal combustion engine with an electrode tip in the combustion chamber. Spar...
Fuel Spray Combustion of Waste Cooking Oil and Palm Oil Biodiesel: Direct Photography and Detailed Chemical Kinetics
Fuel Spray Combustion of Waste Cooking Oil and Palm Oil Biodiesel: Direct Photography and Detailed Chemical Kinetics
<div class="section abstract"><div class="htmlview paragraph">This paper studies the ignition processes of two biodiesel from two different feedstock sources, namely wa...
Optical Measurement of Spark Deflection Inside a Pre-chamber for Spark-Ignition Engines
Optical Measurement of Spark Deflection Inside a Pre-chamber for Spark-Ignition Engines
<div class="section abstract"><div class="htmlview paragraph">The start of combustion in a spark-ignited engine is highly dependent upon the conditions between the two ...
EFFECT OF IGNITION SYSTEM IN MOTORCYCLE TO PERFORMANCE AND EXHAUST GAS EMISSIONS WITH FUEL RON 88, RON 90, AND RON 92
EFFECT OF IGNITION SYSTEM IN MOTORCYCLE TO PERFORMANCE AND EXHAUST GAS EMISSIONS WITH FUEL RON 88, RON 90, AND RON 92
In the automotive field, the development of motorcycle ignition systems has been able to improve engine performance more fuel efficient. TCI has the advantage of transferring high ...
Evaluation of a Passive Prechamber Design to Enable Turbulent Jet Ignition in a Retrofitted Compressed Natural Gas Spark Ignition Engine: A Computational Fluid Dynamics–Based Analysis With Comparison Against the Conventional Spark Plug Mode
Evaluation of a Passive Prechamber Design to Enable Turbulent Jet Ignition in a Retrofitted Compressed Natural Gas Spark Ignition Engine: A Computational Fluid Dynamics–Based Analysis With Comparison Against the Conventional Spark Plug Mode
Abstract
Compressed natural gas (CNG) is a promising alternative fuel for spark ignition engines due to its widespread availability and potential to reduce CO2 em...
Study on the image recognition of ammonia ignition process induced by methanol micro-jet
Study on the image recognition of ammonia ignition process induced by methanol micro-jet
<div class="section abstract"><div class="htmlview paragraph">Ammonia is regarded as a possible carbon-free energy source for engines, drawing more and more attention. ...

