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The viscosity deviation of magnetic fluids for microactuator due to temperature changes

机译:微致动因温变化引起的磁流体的粘度偏差

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Experiments were performed to investigate the characteristics of magnetic fluids on a micro scale for the purpose of applications to a micro pump, which is the core device of Lab on a chip in medicine and biology. This work took an advantage of the phenomenon that the viscosity of a magnetic fluid decreases sharply as the temperature increases gradually. The magnetic fluid flowing through a trapezoidal silicon microchannel was heated below the temperature at which the magnetism in the magnetic fluid is not lost. As the temperature increases, the magnetic fluid became less viscid. This in turn made the pressure drop in the microchannel. Thus, this pressure drop of the heated magnetic fluid and the corresponding temperature were measured. The microchannel was fabricated by MEMS technology. Since the sheet resistance is as high as 10.6μΩ, platinum was selected as the material of the folded film heater with the length and the thickness of 7.26 cm and 1000 A on Pyrex glass, respectively. At a proper temperature, if a magnetic fluid is applied to the magnetic field and its viscosity decreases, the response time and the net unidirectional flow of actuators such as a micro pump are expected to be improved.
机译:进行实验以研究微尺度的磁流体的特性,以便应用于微泵,这是医学和生物学中芯片的实验室核心装置。这项工作采用了磁性流体粘度随着温度逐渐增加而急剧下降的现象的优点。流过梯形硅微通道的磁性流体在低于磁性流体中的磁体不会丢失的温度下加热。随着温度升高,磁性流体变得较少。这反过来使微通道的压力降落。因此,测量加热磁性流体和相应温度的该压降。微通道由MEMS技术制造。由于薄层电阻高达10.6μΩ,因此分别选择铂作为折叠薄膜加热器的材料,其长度和厚度为7.26cm和1000a在Pyrex玻璃上。在适当的温度下,如果将磁流体施加到磁场,并且其粘度降低,则期望改善诸如微泵的致动器的响应时间和净单向流动。

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