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Statistical modeling to determine resonant frequency information present in combustion chamber pressure signals

机译:统计建模以确定燃烧室压力信号中存在的共振频率信息

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摘要

A statistical modeling method to accurately determine combustion chamber resonance is proposed and demonstrated. This method utilises Markov-chain Monte Carlo (MCMC) through the use of the Metropolis-Hastings (MH) algorithm to yield a probability density function for the combustion chamber frequency and find the best estimate of the resonant frequency, along with uncertainty. The accurate determination of combustion chamber resonance is then used to investigate various engine phenomena, with appropriate uncertainty, for a range of engine cycles. It is shown that, when operating on various ethanol/diesel fuel combinations, a 20% substitution yields the least amount of inter-cycle variability, in relation to combustion chamber resonance.
机译:提出并证明了一种统计建模方法,可以准确地确定燃烧室的共振。该方法通过使用Metropolis-Hastings(MH)算法利用马尔可夫链蒙特卡罗(MCMC)算法来得出燃烧室频率的概率密度函数,并找到谐振频率的最佳估计值以及不确定性。燃烧室共振的精确确定然后用于研究在一定范围的发动机循环中具有适当不确定性的各种发动机现象。结果表明,当以各种乙醇/柴油燃料组合运行时,相对于燃烧室共振,20%的置换产生最小的循环间可变性。

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