超临界流体
聚氨酯
热塑性聚氨酯
弹性(材料科学)
材料科学
热塑性塑料
复合材料
化学
有机化学
弹性体
作者
Xiulu Gao,Chenyang Niu,Jiaqi Wang,Yue Wu,Yichong Chen,Ling Zhao,Dongdong Hu
标识
DOI:10.1016/j.jcou.2025.103061
摘要
Supercritical CO 2 foaming can produce cushioning materials with excellent performance, such as thermoplastic polyurethane (TPU) foam. However, TPU foam generally face the issues of low mechanical resilience and hard recycling. The foaming properties of TPU and the dimensional stability of the product are affected by the molecular structure of the matrix. In this study, the diphenylmethane diisocyanate (MDI) masterbatch, a special modifier for TPU, was selected to prepare modified TPU with micro-crosslinking structure and chain extension. The micro-crosslinking structure limited the large-scale relaxation of molecular chains and enhanced the rheological properties and foaming behavior of TPU. The maximum expansion ratio of TPU foam was increased from 14.5 to 28.3. The shrinkage problem was optimized through CO 2 /N 2 foaming. TPU foams with different stabilized expansion ratios (7–15.9) were produced by changing the N 2 partial pressure. The ultra-high expansion ratio and uniform cell structure provided high relative stress softening (>95 %), low relative hysteresis loss (∆ U / U ≈5 %) and excellent resilience (∼70.1 %) for TPU foam. This product is promised to realize light-weighting and efficient energy recovery of TPU foam. After a closed-loop sustainable recycling and foaming process, the recyclable RTPU foam still maintained high expansion ratio and low energy loss. • TPU with micro-crosslinking structure and chain extension is successfully produced by introducing MDI masterbatch. • TPU2 foam modified by 2 wt% MDI masterbatch has a stabilized expansion ratio of 15.9. • TPU foam exhibits excellent mechanical resilience, low energy loss (∼5 %) and high drop ball resilience (70.1 %). • TPU with micro-crosslinking structure achieves recyclability and foamability.
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