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首页> 外文期刊>ACS Omega >Devising Carbon Nanotube, Green Tea, and Polyaniline Based Nanocomposite plus Investigating Its Rheological together with Bactericidal Efficacies
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Devising Carbon Nanotube, Green Tea, and Polyaniline Based Nanocomposite plus Investigating Its Rheological together with Bactericidal Efficacies

机译:设计碳纳米管,绿茶和聚酰氯基纳米复合材料加上其流变效果和杀菌效率

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Subsequently, engines are designed to operate at low viscosity engine oils. Low viscosity oils take less power from engines, bring down the internal drag, cut the fuel consumption, and ultimately improve the engine’s efficiency. Considering this focus, an approach has been made to formulate a multiwalled carbon nanotube based green tea and polyaniline nanocomposite, that is, GT/MWCNT/PANI, and incorporate it in engine oil (base fluid). The objective was to reduce the viscosity of engine oil by examining the effects of the constant shear rate and varying shear rates on the viscosity of Castrol class 15W-40 engine oil. The investigation was performed at a constant temperature of 25 °C for a fixed volume fraction of 0.1% GT/MWCNT/PANI in engine oil on the experimental setup rheometer from Anton Paar Series. Primordial findings revealed that, at a constant shear rate of 100 s–1, engine oil viscosity was lowered from 0.221000 to 0.001402 Pa·s, that is, 99% reduction in viscosity of the engine oil, after incorporating the GT/MWCNT/PANI nanocomposite. Furthermore, a new correlation has been proposed considering the experimental and theoretical models with an average percentage error of 0.040%. Also, at varying shear rates, up to 90 s–1, the shear viscosity of nanofluid decreases significantly, leading to shear-thinning behavior of the nanofluid, while at a shear rate of >90 s–1, it shows Newtonian behavior. Besides, the ternary nanocomposite with 0.2 wt % GT/MWCNT/PANI also showed significant bactericidal effects with the zones of inhibition of 19, 18, and 15 mm against Gram-negative (Pseudomonas aeruginosa, Escherichia coli) and Gram-positive (Staphylococcus aureus) bacteria, respectively, as measured using the well diffusion method.
机译:随后,发动机设计用于低粘度发动机油。低粘度油从发动机的电力降低,降低内部阻力,降低燃料消耗,并最终提高发动机的效率。考虑到这一重点,已经进行了一种方法,用于制备多壁碳纳米管的绿茶和聚苯胺纳米复合材料,即GT / MWCNT / PANI,并将其掺入发动机油(基础流体)中。目的是通过检查恒定剪切速率和不同剪切速率对Castrol级15W-40发动机油粘度的影响来降低发动机油的粘度。该研究在25℃的恒定温度下进行,在Anton PAAR系列的实验设置流变仪上的发动机油中的0.1%GT / MWCNT / PANI的固定体积分数。原始发现显示,在100S-1的恒定剪切速率下,发动机油粘度从0.221000降至0.001402Pa·s,即纳入GT / MWCNT / PANI后,发动机油的粘度降低99%。纳米复合材料。此外,已经提出了一种新的相关性,考虑到平均百分比误差为0.040%的实验和理论模型。此外,在不同的剪切速率下,高达90秒的剪切速率,纳米流体的剪切粘度显着降低,导致纳米流体的剪切稀疏行为,而在剪切速率> 90s-1的剪切速率上显示出牛顿行为。此外,具有0.2wt%gt / mwcnt / pani的三元纳米复合材料还显示出与抑制19,18和15mm的抑制区域的显着杀菌效果,对革兰阴性(假单胞菌铜绿假单胞菌,大肠杆菌)和革氏阳性(金黄色葡萄球菌葡萄球菌通过使用孔扩散法测量的细菌分别。

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