论文标题
流动诱导的分子比对对聚合物界面的焊接和强度的影响
Effect of flow-induced molecular alignment on welding and strength of polymer interfaces
论文作者
论文摘要
融合细丝制造形成的结构通常比传统技术制造的结构较弱,并且在连续层之间的焊缝上失败。可能影响强度的一个因素是流动引起的沉积材料对齐。最近的工作表明,对齐方式降低了纠缠密度,因此应通过扩散加速焊接。在这里,粗粒分子模拟用于测试分子比对对扩散和焊缝强度的影响。虽然标准措施显示纠缠密度的降低,但对界面的扩散率没有变化,或者在整个界面上的纠缠速率或形成速率没有变化。链重定位的时间也保持等于平衡分离时间$τ_d$。尽管如此,机械测试的模拟表明,由对齐状态形成的焊缝要弱,直到几美元$τ_d$。这不是因为焊缝本身较弱,而是因为在焊缝附近的对齐材料比未对齐的材料弱。焊接系统的最大剪切强度和拉伸断裂能与具有相同比对的散装系统相同。
Structures formed by fused filament fabrication are often substantially weaker than those made with conventional techniques, and fail at the welds between successive layers. One factor that may influence strength is flow-induced alignment of deposited material. Recent work suggests that alignment reduces the entanglement density and thus should accelerate welding by diffusion. Here, coarse-grained molecular simulations are used to test the effect of molecular alignment on diffusion and weld strength. While standard measures show a decrease of the entanglement density with alignment, there is no change in the rate of diffusion normal to the interface or the rate of formation of entanglements across the interface. The time for chain reorientation also remains equal to the equilibrium disentanglement time $τ_d$. Despite this, simulations of mechanical tests show that welds formed from aligned states are weaker until several $τ_d$. This is not because the weld itself is weaker, but because aligned material near the weld is weaker than unaligned material. The maximum shear strength and tensile fracture energy of welded systems are the same as bulk systems with the same alignment.