Knock detection method for dual-fuel compression ignition engines based on block vibration analysis

SAE-PP-00237

2/3/2021

Authors
Abstract
Content
A new knock detection method based on block vibration analysis, specially developed for dual-fuel compression ignition engines, is presented in this work. Experimental tests were carried out in a four-cylinder compression ignition engine at full and 60% of load, running at 2000, 2500, and 3200 rpm with different amounts of hydrogen and liquefied petroleum gas injected in the air inlet hose. Fuel flow was increased in approximately 10% energy share steps until knock was detected for both fuels. The maximum substitutions at full and 60% of load were 38%, 54% for hydrogen, and 57%, 63% for liquefied petroleum gas, respectively. The component of the block vibration signal that is sensitive to knock was determined by studying the block's resonant frequency, the influence of valve closing impacts, and comparing the block vibration recorded with knocking and non-knocking combustion. To quantify the knock intensity of a combustion cycle, four fast-computing metrics were tested selecting the maximum amplitude of filtered vibration for knock detection since it was the least sensitive to crankshaft speed. Two knock indexes for knock evaluation were compared, concluding that the pondered deviation from the reference index, proposed in this work, has a better performance. The knock threshold was achieved when the knock index was greater than 5 regardless of the substitute fuel, crankshaft speed, and engine load. Finally, the method was optimized for real-time knock detection.
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Citation
Anthony, L., "Knock detection method for dual-fuel compression ignition engines based on block vibration analysis," SAE MobilityRxiv™ Preprint, submitted February 3, 2021, https://doi.org/10.47953/SAE-PP-00237.
Additional Details
Publisher
Published
2/3/2021
Product Code
SAE-PP-00237
Content Type
Pre-Print Article
Language
English