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Gold-ionic liquid nanofluids with preferably tribological properties and thermal conductivity

机译:具有优选的摩擦学性质和导热性的金离子液体纳米流体

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摘要

Gold/1-butyl-3-methylimidazolium hexafluorophosphate (Au/[Bmim][PF6]) nanofluids containing different stabilizing agents were fabricated by a facile one-step chemical reduction method, of which the nanofluids stabilized by cetyltrimethylammonium bromide (CTABr) exhibited ultrahighly thermodynamic stability. The transmission electron microscopy, UV-visible absorption, Fourier transform infrared, and X-ray photoelectron characterizations were conducted to reveal the stable mechanism. Then, the tribological properties of these ionic liquid (IL)-based gold nanofluids were first investigated in more detail. In comparison with pure [Bmim][PF6] and the nanofluids possessing poor stability, the nanofluids with high stability exhibited much better friction-reduction and anti-wear properties. For instance, the friction coefficient and wear volume lubricated by the nanofluid with rather low volumetric concentration (1.02 × 10-3%) stabilized by CTABr under 800 N are 13.8 and 45.4% lower than that of pure [Bmim][PF6], confirming that soft Au nanoparticles (Au NPs) also can be excellent additives for high performance lubricants especially under high loads. Moreover, the thermal conductivity (TC) of the stable nanofluids with three volumetric fraction (2.55 × 10-4, 5.1 × 10-4, and 1.02 × 10-3%) was also measured by a transient hot wire method as a function of temperature (33 to 81°C). The results indicate that the TC of the nanofluid (1.02 × 10-3%) is 13.1% higher than that of [Bmim][PF6] at 81°C but no obvious variation at 33°C. The conspicuously temperature-dependent and greatly enhanced TC of Au/[Bmim][PF6] nanofluids stabilized by CTABr could be attributed to micro-convection caused by the Brownian motion of Au NPs. Our results should open new avenues to utilize Au NPs and ILs in tribology and the high-temperature heat transfer field.
机译:通过一种简便的一步化学还原法制备了包含不同稳定剂的金/ 1-丁基-3-甲基咪唑六氟磷酸盐(Au / [Bmim] [PF6])纳米流体,其中十六烷基三甲基溴化铵(CTABr)稳定了纳米流体。热力学稳定性。进行了透射电子显微镜,紫外可见吸收,傅立叶变换红外和X射线光电子表征,以揭示稳定的机理。然后,首先更详细地研究了这些基于离子液体(IL)的金纳米流体的摩擦学特性。与纯的[Bmim] [PF6]和稳定性较差的纳米流体相比,具有高稳定性的纳米流体表现出更好的减摩和抗磨性能。例如,在800 N下,由CTABr稳定的体积浓度很低(1.02×10 -3 %)的纳米流体润滑的摩擦系数和磨损量分别比纯[[ Bmim] [PF6],证实了柔软的Au纳米颗粒(Au NPs)也是高性能润滑剂的优良添加剂,尤其是在高负荷下。此外,具有三个体积分数(2.55×10 -4 ,5.1×10 -4 和1.02×10 )的稳定纳米流体的热导率(TC) -3 %)也是通过瞬态热线法测量的,是温度(33至81°C)的函数。结果表明,在[81]时,纳米流体的TC(1.02×10 -3 %)比[Bmim] [PF6]高13.1%,但在33°C时无明显变化。由CTABr稳定的Au / [Bmim] [PF6]纳米流体的明显依赖温度的变化和大大提高的TC可以归因于Au NP布朗运动引起的微对流。我们的研究结果应为在摩擦学和高温传热领域中利用金纳米粒子和金纳米粒子开辟新途径。

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