Acoustical Studies on Beryllium Oxide/Silicone Oil Nanofluids

T. M. A. Britto, A. Jeevaraj
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引用次数: 1

Abstract

Molecular interactions of Silicone oil based Beryllium oxide nanofluids have been studied using ultrasonic parameters at room temperature. BeO nanoparticles synthesized by chemical precipitation method was used to prepare silicone oil based BeO nanofluids. BeO nanofluids were prepared by dispersing synthesized BeO nanoparticles in the Silicone Oil base fluid with the help of sonication. Ultrasonic velocity for particle-fluid mixtures of Silicone oil with BeO has been carried out for different volume fraction (0 to 0.003) at 0.0005 intervals at room temperature. The data experimentally measured has been used to estimate the various acoustical and thermodynamical parameters. The behavior of these parameters in this particle fluid system has been discussed in terms of inter/intramolecular interactions with respect to concentration. The particle base fluid molecular interactions in the nanofluids cause an increment in velocity value of Silicone oil based nanofluids. The propagation of ultrasonic waves causes impedance which increases the intermolecular distance between the molecules. The transmission and reflection modes of sound waves in the nanoparticle and base fluid molecules are noted by the specific acoustic impedance. It is noted that the acoustic impedance value increases with rise in concentration owing to the molecular interaction between BeO and silicone oil fluid molecules affecting the structural arrangement.
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氧化铍/硅油纳米流体的声学研究
在室温下,利用超声参数研究了硅油基氧化铍纳米流体的分子相互作用。利用化学沉淀法合成的BeO纳米颗粒制备硅油基BeO纳米流体。利用超声波将合成的BeO纳米颗粒分散在硅油基液中制备BeO纳米流体。在室温下,对不同体积分数(0 ~ 0.003)的硅油- BeO颗粒-流体混合物在0.0005间隔下的超声速度进行了研究。实验测量的数据被用来估计各种声学和热力学参数。从分子间/分子内相互作用的角度讨论了这些参数在颗粒流体系统中的行为。纳米流体中粒子基流体与分子的相互作用使硅油基纳米流体的流速值增大。超声波的传播引起阻抗,从而增加了分子间的距离。声波在纳米粒子和基流体分子中的传播和反射模式由特定的声阻抗来记录。由于BeO与硅油流体分子之间的分子相互作用影响了结构排列,声阻抗值随浓度的增加而增加。
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来源期刊
Sensor Letters
Sensor Letters 工程技术-电化学
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审稿时长
6 months
期刊介绍: The growing interest and activity in the field of sensor technologies requires a forum for rapid dissemination of important results: Sensor Letters is that forum. Sensor Letters offers scientists, engineers and medical experts timely, peer-reviewed research on sensor science and technology of the highest quality. Sensor Letters publish original rapid communications, full papers and timely state-of-the-art reviews encompassing the fundamental and applied research on sensor science and technology in all fields of science, engineering, and medicine. Highest priority will be given to short communications reporting important new scientific and technological findings.
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