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Damping Force and Loading Position Dependence of Mass Sensitivity of Magnetoelastic Biosensors in Viscous Liquid

机译:粘弹性液体中磁弹性生物传感器的阻尼力和载荷位置依赖性

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摘要

We established the vibration governing equation for a magnetoelastic (ME) biosensor with target loading in liquid. Based on the equation, a numerical simulation approach was used to determine the effect of the target loading position and viscous damping coefficient on the node (“blind points”) and mass sensitivity (Sm) of an ME biosensor under different order resonances. The results indicate that viscous damping force causes the specific nodes shift but does not affect the overall variation trend of Sm as the change of target loading position and the effect on Sm gradually reduces when the target approaches to the node. In addition, Sm decreases with the increase of viscous damping coefficient but the tendency becomes weak at high-order resonance. Moreover, the effect of target loading position on Sm decreases with the increase of viscous damping coefficient. Finally, the results provide certain guidance on improving the mass sensitivity of an ME biosensor in liquid by controlling the target loading position.
机译:我们建立了具有目标负载在液体中的磁弹性(ME)生物传感器的振动控制方程。基于该方程,使用数值模拟方法确定目标加载位置和粘性阻尼系数对ME生物传感器在不同阶次共振下的节点(“盲点”)和质量灵敏度(Sm)的影响。结果表明,当目标接近节点时,粘性阻尼力会引起特定节点的位移,但不会影响Sm的总体变化趋势,因为目标加载位置的变化以及对Sm的影响逐渐减小。另外,Sm随着粘性阻尼系数的增加而降低,但是在高次共振时该趋势变弱。此外,目标加载位置对Sm的影响随粘性阻尼系数的增加而减小。最后,该结果为通过控制目标加载位置提高液体中ME生物传感器的质量灵敏度提供了一定的指导。

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