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Experimental Investigation of Cool Flame Behavior of Isolated n-Decane/Ethanol Droplet under Microgravity

机译:微沉降下分离的N-癸烷/乙醇液滴冷却火焰行为的实验研究

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To investigate the effect of ethanol concentration on the cool flame characteristics of isolated binary fuel droplet, experiments and numerical simulations on n-decane/ethanol droplet were conducted, varying the volume fractions of ethanol. Ambient pressure was set to atmospheric pressure and the temperature was varied from 600 to 660 K. Under these conditions, although cool flame was observed for n-decane, it did not induce hot flame ignition. CCD camera and K-type thermocouple were used to measure the droplet diameter and cool flame temperature, respectively. Moreover, one dimensional numerical simulation was performed with the fully transient numerical model. In addition to the assumptions on species flux, temperature continuity, fugacity equilibrium was assumed to simulate the evaporation process of multicomponent droplet. After the n-decane droplet was inserted into the hot ambience, evaporation was suddenly promoted and the temperature near the droplet surface decreased due to the cooling effect of evaporation. After the ignition of cool flame, the thermocouple nearest to the droplet showed the highest temperature, which implies that large heat release occurred near the droplet. When ethanol was added to n-decane, the cool flame ignition delay became longer. This is probably because the vapor formation of n-decane was delayed due to the high volatility of ethanol. However, the cool flame temperature was not significantly varied by the volume fraction of ethanol. This is probably because n-decane and OC10H19OOH accumulating at the cool flame location was almost the same for all conditions.
机译:为了研究乙醇浓度对分离的二元燃料液滴的冷火焰特性的影响,进行了N-癸烷/乙醇液滴的实验和数值模拟,改变乙醇的体积分数。环境压力设定为大气压,温度从600〜660k变化。在这些条件下,虽然观察到N-癸烷的冷火焰,但它没有诱导热火焰点火。 CCD相机和K型热电偶分别用于测量液滴直径和冷火焰温度。此外,用完全瞬态数值模型进行了一维数值模拟。除了物种通量的假设外,假设温度连续性,假定均衡,模拟多组分液滴的蒸发过程。在将N-癸烷液滴插入热氛围之后,突然促进蒸发,并且由于蒸发的冷却效果而液滴表面附近的温度降低。在冷却火焰点火之后,最靠近液滴的热电偶显示出最高温度,这意味着液滴附近发生大的热释放。当将乙醇加入到N-癸烷时,冷却火焰点火延迟变长。这可能是因为由于乙醇的高挥发性,延迟了N-癸烷的蒸汽形成。然而,通过乙醇的体积分数没有显着变化的冷却火焰温度。这可能是因为在很酷的火焰位置累积的N-癸烷和OC 10H19OOH对于所有条件几乎相同。

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