首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Microstructure-based modelling of arbitrary deformation histories of filler-reinforced elastomers
【24h】

Microstructure-based modelling of arbitrary deformation histories of filler-reinforced elastomers

机译:基于微观结构的填料增强弹性体任意变形历史的建模

获取原文
获取原文并翻译 | 示例
           

摘要

A physically motivated theory of rubber reinforcement based on filler cluster mechanics is presented considering the mechanical behaviour of quasi-statically loaded elastomeric materials subjected to arbitrary deformation histories. This represents an extension of a previously introduced model describing filler induced stress softening and hysteresis of highly strained elastomers. These effects are referred to the hydrodynamic reinforcement of rubber elasticity due to strain amplification by stiff filler clusters and cyclic breakdown and re-aggregation (healing) of softer, already damaged filler clusters. The theory is first developed for the special case of outer stress-strain cycles with successively increasing maximum strain. In this more simple case, all soft clusters are broken at the turning points of the cycle and the mechanical energy stored in the strained clusters is completely dissipated, i.e. only irreversible stress contributions result Nevertheless, the description of outer cycles involves already all material parameters of the theory and hence they can be used for a fitting procedure. In the general case of an arbitrary deformation history, the cluster mechanics of the material is complicated due to the fact that not all soft clusters are broken at the turning points of a cycle. For that reason additional reversible stress contributions considering the relaxation of clusters upon retraction have to be taken into account for the description of inner cycles. A special recursive algorithm is developed constituting a frame of the mechanical response of encapsulated inner cycles. Simulation and measurement are found to be in fair agreement for CB and silica filled SBR/BR and EPDM samples, loaded in compression and tension along various deformation histories.
机译:提出了一种基于填充团簇力学的橡胶增强物理激励理论,该模型考虑了承受任意变形历史的准静态加载弹性体材料的力学行为。这代表了先前引入的模型的扩展,该模型描述了填料引起的高应变弹性体的应力软化和滞后现象。这些作用被称为橡胶弹性的流体动力增强,这归因于刚性填料簇的应变放大以及较软的,已经损坏的填料簇的循环破裂和重新聚集(修复)。该理论首先针对外部应力-应变循环的特殊情况而提出,并随着最大应变的不断增加而增加。在这种更简单的情况下,所有软团簇在循环的转折点处破裂,并且完全消除了存储在应变团簇中的机械能,即仅产生了不可逆的应力贡献。然而,外循环的描述已经包含了所有的材料参数。理论,因此它们可以用于拟合过程。在任意变形历史的一般情况下,由于并非所有软团簇都在循环的转折点处断裂,因此材料的团簇力学非常复杂。因此,在描述内部循环时,必须考虑考虑到回缩时团簇松弛的其他可逆应力贡献。开发了一种特殊的递归算法,该算法构成了封装内循环的机械响应框架。对于填充了CB和二氧化硅的SBR / BR和EPDM样品,沿各种变形历史对其施加压缩和拉伸,模拟和测量结果完全吻合。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号