湍流热流体系统中的机舱爆炸。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-01 DOI:10.1063/5.0223320
Ramesh S Bhavi, Sivakumar Sudarsanan, Manikandan Raghunathan, Anaswara Bhaskaran, R I Sujith
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引用次数: 0

摘要

在热流体系统中,突然过渡到高振幅周期性振荡状态是灾难性的。通常情况下,在改变控制参数时,这些系统中的突然过渡表现为波动振幅的突然跳变。与此相反,我们在实验中发现了湍流反应流系统中的卡式爆炸,在窄控制参数范围内,我们观察到波动振幅快速上升的连续分岔。观察到的转变是通过迸发状态促成的,迸发状态由大振幅周期性振荡纪元和低振幅周期性振荡纪元组成。迸发状态的振幅高于传统渐变过渡中间歇状态的迸发振幅,这在湍流反应流系统中已有报道。在迸发状态下,我们观察到废气的温度波动与迸发的振幅包络相关,其时间尺度变化较慢。我们还提出了一个热声系统现象学模型来描述观测到的鸭嘴式爆炸。利用该模型,我们解释了大振幅爆发的发生是由于卡式气流爆炸分岔机制的慢-快动力学造成的。
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Canard explosions in turbulent thermo-fluid systems.

A sudden transition to a state of high-amplitude periodic oscillations is catastrophic in a thermo-fluid system. Conventionally, upon varying the control parameter, a sudden transition is observed as an abrupt jump in the amplitude of the fluctuations in these systems. In contrast, we present an experimental discovery of a canard explosion in a turbulent reactive flow system where we observe a continuous bifurcation with a rapid rise in the amplitude of the fluctuations within a narrow range of control parameters. The observed transition is facilitated via a state of bursting, consisting of the epochs of large amplitude periodic oscillations amidst the epochs of low-amplitude periodic oscillations. The amplitude of the bursts is higher than the amplitude of the bursts of an intermittency state in a conventional gradual transition, as reported in turbulent reactive flow systems. During the bursting state, we observe that temperature fluctuations of the exhaust gas vary at a slower time scale in correlation with the amplitude envelope of the bursts. We also present a phenomenological model for thermoacoustic systems to describe the observed canard explosion. Using the model, we explain that the large amplitude bursts occur due to the slow-fast dynamics at the bifurcation regime of the canard explosion.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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