Impulsively-Laser Excitation and Propagation of Ultrasonic Waves through Nanomagnetic Fluid

IF 0.2 Q4 INSTRUMENTS & INSTRUMENTATION Devices and Methods of Measurements Pub Date : 2021-01-01 DOI:10.21122/2220-9506-2021-12-3-211-219
A. Baev, A. I. Мitkovets, M. Asadchaya, A. Mayorov
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Abstract

Magnetic fluids belong to the class of nanomaterials with a high gain of light absorption, aggregative and sedimentation stability as well as controllability by external fields, which is of interest to use in the field of optoacoustics. The purpose of the work was to experimentally study the effect of the optoacoustic transformation in a magnetic fluid, depending on the concentration of magnetic colloidal particles, boundary conditions, intensity of the laser as well as to identify the possibilities of using the magnetic fluid as an element of the optoacoustic transformation in a number of applications.A brief analysis of the optoacoustic transformation mechanism in a magnetic fluid was carried out and a technique and an installation that implements the shadow measurement variant developed. A Lotis type laser was used as a source of ultrasonic pulse-laser excitation in magnetic fluids. A quartz and air were used as a material transmitting the energy of laser radiation in a magnetic fluid. Receiving of ultrasound signals was made by a piezoelectric probe at a working frequency of 5 MHz. In the measurement process, the concentration of the dispersed phase in tmagnetic fluid was varied from zero to 8 % and the energy in the impulse – from zero to 10 mJ.For the first time, it was established that: a) an amplitude of the function of the optoacoustic transformation in a magnetic fluid, depending on the concentration of the dispersed phase, has a maximum determined by the fluid physical properties and boundary conditions; b) for all samples within the measurement error, a quasilinear dependence of the specified amplitude of energy in the laser pulse in the range of 0–8 MJ has been established.A number ways of the optoacoustic effects in magnetic fluids to use in ultrasonic testing, measuring the intensity of the laser radiation had been suggested.
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超声波在纳米磁流体中的脉冲激光激发与传播
磁性流体是一类具有高光吸收增益、聚集沉降稳定性和外场可控性的纳米材料,在光声学领域具有重要的应用价值。这项工作的目的是通过实验研究磁流体中光声转换的影响,这取决于磁性胶体颗粒的浓度、边界条件、激光强度,以及确定在许多应用中使用磁流体作为光声转换元素的可能性。对磁流体中的光声转换机理进行了简要分析,开发了一种实现阴影测量变体的技术和装置。采用Lotis型激光器作为磁流体中超声脉冲激光激励源。用石英和空气作为磁性流体中传输激光辐射能量的材料。超声波信号由压电探头接收,工作频率为5mhz。在测量过程中,磁流体中分散相的浓度在0 ~ 8%之间变化,脉冲能量在0 ~ 10 mJ之间变化。首次确定了:a)磁流体中光声变换函数的振幅取决于分散相的浓度,其最大值由流体的物理性质和边界条件决定;b)对于测量误差范围内的所有样品,在0-8 MJ范围内建立了激光脉冲中指定能量幅值的拟线性关系。提出了利用磁流体中的光声效应测量激光辐射强度的几种方法。
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来源期刊
Devices and Methods of Measurements
Devices and Methods of Measurements INSTRUMENTS & INSTRUMENTATION-
自引率
25.00%
发文量
18
审稿时长
8 weeks
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