Fontenier B, Hault-Dubrulle A, Drazetic P, Fontaine C, Naceur H
Laboratory LAMIH UMR 8201 CNRS, University of Valenciennes, 59313 Valenciennes, France.
Laboratory LAMIH UMR 8201 CNRS, University of Valenciennes, 59313 Valenciennes, France.
J Mech Behav Biomed Mater. 2016 Oct;63:44-55. doi: 10.1016/j.jmbbm.2016.06.008. Epub 2016 Jun 10.
The use of highly sensitive soft materials has become increasingly apparent in the last few years in numerous industrial fields, due to their viscous and damping nature. Unfortunately these materials remain difficult to characterize using conventional techniques, mainly because of the very low internal forces supported by these materials especially under high strain-rates of deformation. The aim of this work is to investigate the dynamic response of a polymer gel brain analog material under specific rotational-impact experiments. The selected polymer gel commercially known as Sylgard 527 has been studied using a specific procedure for its experimental characterization and numerical modeling. At first an indentation experiment was conducted at several loading rates to study the strain rate sensitivity of the Sylgard 527 gel. During the unloading several relaxation tests were performed after indentation, to assess the viscous behavior of the material. A specific numerical procedure based on moving least square approximation and response surface method was then performed to determine adequate robust material parameters of the Sylgard 527 gel. A sensitivity analysis was assessed to confirm the robustness of the obtained material parameters. For the validation of the obtained material model, a second experiment was conducted using a dynamic rotational loading apparatus. It consists of a metallic cylindrical cup filled with the polymer gel and subjected to an eccentric transient rotational impact. Complete kinematics of the cup and the large strains induced in the Sylgard 527 gel, have been recorded at several patterns by means of optical measurement. The whole apparatus was modeled by the Finite Element Method using explicit dynamic time integration available within Ls-dyna(®) software. Comparison between the physical and the numerical models of the Sylgard 527 gel behavior under rotational choc shows excellent agreements.
在过去几年中,由于其粘性和阻尼特性,高灵敏度软材料在众多工业领域的应用愈发明显。不幸的是,使用传统技术对这些材料进行表征仍然困难,主要是因为这些材料承受的内力非常低,尤其是在高应变率变形情况下。这项工作的目的是研究一种聚合物凝胶脑模拟材料在特定旋转冲击实验下的动态响应。已使用特定程序对商业上称为Sylgard 527的选定聚合物凝胶进行了实验表征和数值建模研究。首先,在几种加载速率下进行了压痕实验,以研究Sylgard 527凝胶的应变率敏感性。在卸载过程中,压痕后进行了几次松弛测试,以评估材料的粘性行为。然后,基于移动最小二乘近似和响应面方法执行了特定的数值程序,以确定Sylgard 527凝胶的适当稳健材料参数。进行了敏感性分析以确认所获得材料参数的稳健性。为了验证所获得的材料模型,使用动态旋转加载装置进行了第二个实验。它由一个装满聚合物凝胶的金属圆柱杯组成,并受到偏心瞬态旋转冲击。通过光学测量,已在几种模式下记录了杯子的完整运动学以及Sylgard 527凝胶中产生的大应变。整个装置使用有限元方法通过Ls-dyna(®)软件中可用的显式动态时间积分进行建模。旋转冲击下Sylgard 527凝胶行为的物理模型与数值模型之间的比较显示出极好的一致性。