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Generation and Propagation Characteristics of an Auto-Ignition Flame Kernel Caused by the Oblique Shock in a Supersonic Flow Regime
by
Liu, Jian
, Sunden, Bengt
, Xu, Mengyao
, Xi, Wenxiong
, Liu, Chaoyang
in
Air flow
/ auto-ignition
/ Cameras
/ Engineering and Technology
/ Fluid Mechanics
/ Heat
/ initial flame kernel
/ Lasers
/ Maskinteknik
/ Mechanical Engineering
/ oblique shock
/ Propagation
/ recirculating region
/ Shock waves
/ Strömningsmekanik
/ supersonic flow
/ Teknik
/ Velocity
2022
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Generation and Propagation Characteristics of an Auto-Ignition Flame Kernel Caused by the Oblique Shock in a Supersonic Flow Regime
by
Liu, Jian
, Sunden, Bengt
, Xu, Mengyao
, Xi, Wenxiong
, Liu, Chaoyang
in
Air flow
/ auto-ignition
/ Cameras
/ Engineering and Technology
/ Fluid Mechanics
/ Heat
/ initial flame kernel
/ Lasers
/ Maskinteknik
/ Mechanical Engineering
/ oblique shock
/ Propagation
/ recirculating region
/ Shock waves
/ Strömningsmekanik
/ supersonic flow
/ Teknik
/ Velocity
2022
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Generation and Propagation Characteristics of an Auto-Ignition Flame Kernel Caused by the Oblique Shock in a Supersonic Flow Regime
by
Liu, Jian
, Sunden, Bengt
, Xu, Mengyao
, Xi, Wenxiong
, Liu, Chaoyang
in
Air flow
/ auto-ignition
/ Cameras
/ Engineering and Technology
/ Fluid Mechanics
/ Heat
/ initial flame kernel
/ Lasers
/ Maskinteknik
/ Mechanical Engineering
/ oblique shock
/ Propagation
/ recirculating region
/ Shock waves
/ Strömningsmekanik
/ supersonic flow
/ Teknik
/ Velocity
2022
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Generation and Propagation Characteristics of an Auto-Ignition Flame Kernel Caused by the Oblique Shock in a Supersonic Flow Regime
Journal Article
Generation and Propagation Characteristics of an Auto-Ignition Flame Kernel Caused by the Oblique Shock in a Supersonic Flow Regime
2022
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Overview
The auto-ignition caused by oblique shocks was investigated experimentally in a supersonic flow regime, with the incoming flow at a Mach number of 2.5. The transient characteristics of the auto-ignition caused by shock evolvements were recorded with a schlieren photography system, and the initial flame kernel generation and subsequent propagation were recorded using a high-speed camera. The fuel mixing characteristics were captured using NPLS (nanoparticle-based planar laser scattering method). This work aimed to reveal the flame spread mechanism in a supersonic flow regime. The effects of airflow total temperature, fuel injection pressure, and cavity length in the process of auto-ignition and on the auto-ignitable boundary were investigated and analyzed. From this work, it was found that the initial occurrence of auto-ignition is first induced by oblique shocks and then propagated upstream to the recirculation region, to establish a sustained flame. The auto-ignition performance can be improved by increasing the injection pressure and airflow total temperature. In addition, a cavity with a long length has benefits in controlling the flame spread from the induced state to a sustained state. The low-speed recirculating region created in the cavity is beneficial for the flame spread, which has the function of flame-holding and prevents the flame from being blown away.
Publisher
MDPI AG
Subject
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