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Experimental investigation on heat transfer of n-decane-ZnO nanofluids in a horizontal tube under supercritical pressure

机译:超临界压力下水平管中N-癸烷 - ZnO纳米流体传热的实验研究

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摘要

Kerosene-based nanofluid is the potential cryogenic propellant for regenerative cooling system applied in scramjet. The heat transfer characteristics of n-decane with ZnO nanoparticle have been experimentally investigated in a horizontal tube. The flowing nanofluids are pressurized to a supercritical pressure of 3 MPa and heated at non-cracking temperature range under two different heating power. The experimental volume flow rate is fixed at 0.5 ml/s. Results indicate that the test section could be divided into subcritical zone, pseudo-critical zone and supercritical zone. ZnO nanoparticles mainly influence the heat transfer by changing the fluids thermo-physical properties, rather than influencing flow pattern, at pseudo-critical and supercritical zones. At pseudo-critical zone, ZnO nanoparticles modify initial position of pseudo-boiling and enlarge ranges by weakening the pseudo-boiling effect. Compared to n-decane, nanoparticles postpone the temperature of Nu number increasing to the maximum and weaken the heat transfer deterioration. At supercritical zone, the addition of ZnO nanoparticles could further enhance heat transfer. Under supercritical pressure, 0.2 wt% n-decane-ZnO effectively enhanced heat transfer and the Nu increased more than 20%. Based on the experimental results, heat transfer correlations of nanofluids under supercritical pressure are obtained and the calculated values match experimental results well with a reasonable deviation.
机译:基于煤油的纳米流体是应用在瘙痒刺戳的再生冷却系统的潜在低温推进剂。用ZnO纳米粒子的N-癸烷的热传递特性在水平管中进行了实验研究。流动的纳米流体在3MPa的超临界压力下加压,并在两种不同的加热功率下在非裂化温度范围内加热。实验体积流速固定在0.5ml / s。结果表明,试验部分可分为亚临界区,伪关键区和超临界区。 ZnO纳米颗粒主要通过改变流体热物理性质来影响传热,而不是在伪临界和超临界区域处影响流动模式。在伪关键区,通过削弱假沸腾效果,ZnO纳米粒子改变伪沸腾和放大范围的初始位置。与N-癸烷相比,纳米粒子推迟NU数的温度,增加到最大值并削弱传热劣化。在超临界区,加入ZnO纳米颗粒可以进一步增强传热。在超临界压力下,0.2wt%N-癸烷-ZNO有效增强了传热,NU增加了20%以上。基于实验结果,获得了超临界压力下纳米流体的传热相关性,并且计算值与合理偏差良好匹配实验结果。

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