Javascript must be enabled to continue!
Detecting Knock in Noisy Spark Ignition Engines
View through CrossRef
<div class="htmlview paragraph">This paper examines three strategies of detecting knock that are less dependent of engine noise. The first strategy uses the exhaust temperature, the second uses a dithering method (systematically advancing and retarding the timing), while the third uses the standard deviation of knock intensity as the indicator of knock intensity.</div>
<div class="htmlview paragraph">The first strategy proves to be difficult to detect knock since the exhaust temperature is strongly dependent on the combustion efficiency instead of knock intensity. The second strategy uses a conventional accelerometer but discriminates against mechanical noise by subtracting the knock intensity during the retarded part from that of the advanced part of a dither cycle. This approach is found to require averaging the signals over large number of engine cycles and using large dither amplitude. The third strategy uses the Difference of Knock Intensity strategy where two cycle standard deviation is used. The last strategy was shown to improve the signal to noise ratio by at least a factor of two, even at high engine speed (4800 rpm). The strategy was implemented and was able to keep the timing within 5 CAD.</div>
Title: Detecting Knock in Noisy Spark Ignition Engines
Description:
<div class="htmlview paragraph">This paper examines three strategies of detecting knock that are less dependent of engine noise.
The first strategy uses the exhaust temperature, the second uses a dithering method (systematically advancing and retarding the timing), while the third uses the standard deviation of knock intensity as the indicator of knock intensity.
</div>
<div class="htmlview paragraph">The first strategy proves to be difficult to detect knock since the exhaust temperature is strongly dependent on the combustion efficiency instead of knock intensity.
The second strategy uses a conventional accelerometer but discriminates against mechanical noise by subtracting the knock intensity during the retarded part from that of the advanced part of a dither cycle.
This approach is found to require averaging the signals over large number of engine cycles and using large dither amplitude.
The third strategy uses the Difference of Knock Intensity strategy where two cycle standard deviation is used.
The last strategy was shown to improve the signal to noise ratio by at least a factor of two, even at high engine speed (4800 rpm).
The strategy was implemented and was able to keep the timing within 5 CAD.
</div>.
Related Results
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 ...
Large-eddy simulation analysis of knock in a direct injection spark ignition engine
Large-eddy simulation analysis of knock in a direct injection spark ignition engine
Downsized spark ignition engines running under high loads have become more and more attractive for car manufacturers because of their increased thermal efficiency and lower CO
...
A Pressure-Oscillation-Based RON Estimation Method for Spark Ignition Fuels beyond RON 100
A Pressure-Oscillation-Based RON Estimation Method for Spark Ignition Fuels beyond RON 100
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 p...
Individual Cylinder Knock Detection Based on Ion Current Sensing: Correlation Analysis
Individual Cylinder Knock Detection Based on Ion Current Sensing: Correlation Analysis
This paper addresses issues related with the measurement, analysis and real-time control of knocking combustions in high-performance spark-ignition engines. In particular, the rela...
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...
Knock Control on Small Four-Two-Wheeler Engines
Knock Control on Small Four-Two-Wheeler Engines
<div class="section abstract"><div class="htmlview paragraph">Today, knock control is part of standard automotive engine
management systems. The structure-borne noise o...
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 ...
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...

