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Experimental study on the nucleate boiling heat transfer characteristics of a water-based multi-walled carbon nanotubes nanofluid in a confined space

机译:密闭空间中水基多壁碳纳米管纳米流体的核沸腾传热特性的实验研究

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摘要

Experimental investigation of nucleate boiling heat transfer of a water-based multi-walled carbon nanotubes (MWCNTs) nanofluid in a confined space is presented in this study. First, the effects of four different surfactants on the stability of the nanofluids were investigated and the suitable surfactant gum acacia (GA) was selected for the boiling experiments. Then, the boiling experiments of the nanofluids with various volume fractions (0.005–0.2%) of the MWCNTs were conducted at a sub-atmospheric pressure of 1 × 10−3 Pa and the test heat fluxes are from 100 to 740 kW/m2. Furthermore, GA with four different mass fractions was respectively dissolved in the nanofluids to investigate the effect of the GA concentration on the boiling heat transfer. The effects of the heat flux, the concentrations of the MWCNTs and surfactants, the bubble behaviors and the surface conditions after the boiling processes have been analyzed. The results show that the MWCNTs nanofluid can enhance boiling heat transfer as compared to the base fluid. This is mainly caused by the nanoparticles deposition on the boiling surface result in increasing the surface roughness and reducing surface contact angle. It is also found that addition of GA can inhibit the deposition of the nanoparticles but may reduce the boiling heat transfer coefficient of the nanofluids. According to the experimental results, the maximum heat transfer coefficient enhancement ratio can reach 40.53%. It is also noticed that the heat transfer enhancement ratio decreases with increasing the heat flux at lower heat fluxes from 100 to 340 kW/m2 while it increases with increasing the heat flux at higher fluxes from 340 to 740 kW/m2. At the lower heat fluxes, the deposition layer increases the frequency of bubble formation and thus the boiling heat transfer is strengthened. While at the high heat fluxes, the increasing heat flux may strengthen the capability of the nanoparticles deposition and the disturbance of the nanoparticles and increase the enhancement ratio of heat transfer coefficient.
机译:本研究提出了在受限空间中水基多壁碳纳米管(MWCNTs)纳米流体的核沸腾传热的实验研究。首先,研究了四种不同表面活性剂对纳米流体稳定性的影响,并选择了合适的表面活性剂阿拉伯树胶(GA)进行沸腾实验。然后,在低于大气压1×10-3 Pa的条件下,对具有不同体积分数(0.005-0.2%)MWCNT的纳米流体进行了沸腾实验,测试热通量为100至740 kW / m2。此外,将具有四个不同质量分数的GA分别溶解在纳米流体中,以研究GA浓度对沸腾传热的影响。分析了热通量,MWCNT和表面活性剂的浓度,沸腾过程后的气泡行为和表面条件的影响。结果表明,与基础流体相比,MWCNTs纳米流体可增强沸腾传热。这主要是由于纳米颗粒在沸腾表面上的沉积导致表面粗糙度增加和表面接触角减小。还发现GA的添加可以抑制纳米颗粒的沉积,但是可以降低纳米流体的沸腾传热系数。根据实验结果,最大传热系数提高率可达40.53%。还应注意的是,传热增强率随着较低热通量下的热通量从100到340 kW / m2的增加而降低,而随着较高通量下的通量从340 kW / m2到740 kW / m2的增加而增加。在较低的热通量下,沉积层增加了气泡形成的频率,从而增强了沸腾传热。当处于高热通量时,增加的热通量可以增强纳米颗粒的沉积能力和纳米颗粒的扰动,并提高热传递系数的提高率。

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