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一种用于测量软材料内部三轴应力状态的新型多轴压力传感器探头。

A Novel Multi-Axial Pressure Sensor Probe for Measuring Triaxial Stress States Inside Soft Materials.

机构信息

Department of Industrial Engineering, University of Padua, Via Venezia 1, 35131 Padua, Italy.

Department of Quality and Mechanical Engineering, Mid Sweden University, Campus Östersund Kunskapens väg 8, SE-831 25 Östersund, Sweden.

出版信息

Sensors (Basel). 2021 May 17;21(10):3487. doi: 10.3390/s21103487.

Abstract

This paper presents the concept, design, construction, and validation of a novel probe based on the hexadic disposition of six pressure sensors suitable for measuring triaxial stress states inside bulky soft materials. The measurement of triaxial stress states inside bulk materials such as brain tissue surrogates is a challenging task needed to investigate internal organs' stress states and validate FE models. The purpose of the work was the development and validation of a 17 × 17 × 17 mm probe containing six pressure sensors. To do so, six piezoresistive pressure sensors of 6 mm diameter were arranged into an hexad at three cartesian axes and bisecting angles, based on the analytical solution of the stress tensor. The resulting probe was embedded in a soft silicone rubber of known characteristics, calibrated under cyclic compression and shear in three orientations, and statically validated with combined loads. A calibration matrix was computed, and validation tests allowed us to estimate Von Mises stress under combined stress with an error below 6%. Hence, the proposed probe design and method can give indications about the complex stress state developing internally to soft materials under triaxial high-strain fields, opening applications in the analysis of biological models or physical surrogates involving parenchyma organs.

摘要

本文提出了一种基于六维排布的六传感器探头的概念、设计、制作和验证,该探头适用于测量大块软材料内部的三轴应力状态。测量块状材料(如脑组织替代品)内部的三轴应力状态是一项具有挑战性的任务,需要研究内部器官的应力状态并验证有限元模型。本工作的目的是开发和验证一个包含六个压力传感器的 17×17×17mm 的探头。为此,基于应力张量的解析解,将六个直径为 6mm 的压阻式压力传感器布置在三个笛卡尔轴和等分角的六边形上。将得到的探头嵌入到具有已知特性的软硅橡胶中,在三个方向上进行循环压缩和剪切校准,并进行静态联合载荷验证。计算了一个校准矩阵,验证测试允许我们在联合应力下估计 Von Mises 应力,误差低于 6%。因此,所提出的探头设计和方法可以为软材料在三轴高应变场下内部复杂的应力状态提供指示,为涉及实质器官的生物模型或物理替代品的分析开辟了应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2dd9/8155985/4c960c69a4ba/sensors-21-03487-g0A1.jpg

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