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External mechanical disturbances compensation with a passive differential measurement principle in nanoforce sensing using diamagnetic levitation

机译:在使用反磁悬浮的纳米力感测中采用被动差分测量原理补偿外部机械干扰

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Nanoforce sensors using passive magnetic springs associated to a macroscopic seismic mass are known to be a possible alternative to force sensors based on elastic microstructures like Atomic Force Microscopes if the nanoforces that have to be measured are characterized by a bandwidth limited to a few Hertz. The estimation of the unknown force applied to the seismic mass is based on the deconvolution of the noisy measurement of the mass displacement which has an under-damped dynamic. Despite their high performances in terms of linearity, resolution and measurement range, such force sensors are extremely sensitive to low frequency environmental mechanical disturbances, like the angular variations of the anti-vibration table supporting the device or the residual seismic vibrations that are not filtered by the table. They are also sensitive to the temperature evolution of the ambient air. The evaluation, modeling and compensation of such environmental disturbances have to be specifically studied in the context of magnetic springs associated to a macroscopic seismic mass because of their important negative effects in terms of low frequency drifts and oscillatory disturbances. This article presents an estimation and a passive compensation strategy of the low frequency and non-stationary mechanical disturbances that is based on a differential principle. This approach is applied to a nanoforce sensor based on diamagnetic levitation developed in the last decade. It does not necessitate to add new types of sensors in the measurement chain such as very high resolution and low frequency inclinometers or accelerometers in order to estimate the mechanical disturbances. In term of performances, the force estimation error remains in the nanonewton level over periods of time of several minutes when external temperature remains constant. (C) 2015 Elsevier B.V. All rights reserved.
机译:如果必须测量的纳米力的特征是带宽限制在几赫兹以内,那么使用与宏观地震质量关联的无源磁性弹簧的纳米力传感器可以替代基于弹性微结构(如原子力显微镜)的力传感器。施加到地震质量上的未知力的估算是基于对质量位移的噪声测量值的反卷积,该测量值具有不足的动态阻尼。尽管它们在线性,分辨率和测量范围方面具有很高的性能,但这种力传感器对低频环境机械干扰极为敏感,例如支撑设备的防振台的角度变化或未被过滤的残余地震振动桌子。它们还对环境空气的温度变化敏感。这种环境干扰的评估,建模和补偿必须在与宏观地震质量相关的磁性弹簧的背景下进行专门研究,因为它们在低频漂移和振荡干扰方面具有重要的负面影响。本文介绍了基于微分原理的低频和非平稳机械干扰的估计和被动补偿策略。这种方法应用于基于近十年来发展的抗磁悬浮的纳米力传感器。不必在测量链中添加新型传感器,例如超高分辨率和低频倾角计或加速度计,以估算机械干扰。在性能方面,当外部温度保持恒定时,力估计误差在几分钟的时间内保持在纳米牛顿水平。 (C)2015 Elsevier B.V.保留所有权利。

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