Zhao Junhua, Yu Peishi, Dong Shuhong
Jiangsu Key Laboratory of Advanced Food Manufacturing Equipment and Technology, Jiangnan University, Wuxi 214122, China.
Materials (Basel). 2016 Mar 25;9(4):234. doi: 10.3390/ma9040234.
The crosslink density plays a key role in the mechanical response of the amorphous polymers in previous experiments. However, the mechanism of the influence is still not clear. In this paper, the influence of crosslink density on the failure behavior under tension and shear in amorphous polymers is systematically studied using molecular dynamics simulations. The present results indicate that the ultimate stresses and the broken ratios (the broken bond number to all polymer chain number ratios) increase, as well as the ultimate strains decrease with increasing crosslink density. The strain concentration is clearer with the increase of crosslink density. In other words, a higher crosslink density leads to a higher strain concentration. Hence, the higher strain concentration further reduces the fracture strain. This study implies that the mechanical properties of amorphous polymers can be dominated for different applications by altering the molecular architecture.
在先前的实验中,交联密度在非晶态聚合物的力学响应中起着关键作用。然而,其影响机制仍不明确。本文采用分子动力学模拟系统地研究了交联密度对非晶态聚合物拉伸和剪切失效行为的影响。目前的结果表明,随着交联密度的增加,极限应力和断裂比(断裂键数与所有聚合物链数之比)增加,而极限应变减小。随着交联密度的增加,应变集中更明显。换句话说,较高的交联密度导致较高的应变集中。因此,较高的应变集中进一步降低了断裂应变。本研究表明,通过改变分子结构,可以控制非晶态聚合物的力学性能以用于不同的应用。