Tailored Nanostructured HDPE Wax/UHMWPE Reactor Blends as Additives for Melt-Processable All-Polyethylene Composites and in Situ UHMWPE Fiber Reinforcement

Специально сформированные наноструктурированные реакторные смеси воска HDPE и UHMWPE в качестве добавок для перерабатываемых в расплаве полностью полиэтиленовых композитов и формирования волокон UHMWPE in situ
Daniel Hofmann, Alexander Kurek, Ralf Thomann, Jeremia Schwabe, Stefan Mark, Markus Enders, Timo Hees, Rolf Mülhaupt
2017-10-13

HDPE wax/UHMWPE reactor blendsflow-induced oriented crystallizationin situ UHMWPE fiber reinforcementself-reinforced polyethyleneshish-kebab nanostructures
Tailored polyethylene reactor blend additives (RB) with ultrabroad bimodal molar mass distributions comprise nanophase-separated ultrahigh molar mass polyethylene (UHMWPE) uniformly dispersed in polyethylene wax. During injection molding of high-density polyethylene (HDPE) together with variable amounts of the nanophase-separated HDPE wax/UHMWPE (70/30) additive (RB30) flow-induced oriented crystallization affords shish-kebab fiber-like UHMWPE nanostructures accounting for efficient HDPE self-reinforcement. RB additives are readily prepared by ethylene polymerization on silica-supported two-site chromium catalysts which simultaneously produce HDPE wax together with disentangled nanoplatelet-like UHMWPE. The presence of HDPE wax is essential for lowering melt viscosity at high UHMWPE content. Since HDPE wax crystallizes onto extended-chain UHMWPE shish to form kebab structures, high HDPE wax content is tolerated without encountering emission problems and impairing mechanical properties as observed in the absence of UHMWPE. This in situ reinforcement substantially improves HDPE toughness/stiffness/strength balance as reflected by simultaneously increased Young’s modulus (+365%), tensile strength (+392%), and impact resistance (+197%). The performance of self-reinforced polyethylene (PE-SRC) is far superior to that of melt-blended UHMWPE/HDPE and the majority of PE nanocomposites. Neither hazardous UHMWPE nanoparticles nor alien inorganic nanofillers are required.
1
During injection molding, flow-induced crystallization forms oriented, shish-kebab-like UHMWPE nanostructures that provide efficient in situ HDPE self-reinforcement.
2
HDPE wax lowers melt viscosity at high UHMWPE content and crystallizes around UHMWPE shish structures, allowing high wax loading without emission problems or mechanical-property deterioration.
3
Nanophase-separated reactor blends contain ultrahigh-molar-mass polyethylene uniformly dispersed in polyethylene wax, enabling melt-processable all-polyethylene additives.
4
The resulting self-reinforced polyethylene simultaneously increases Young’s modulus by 365%, tensile strength by 392%, and impact resistance by 197%.
5
The self-reinforced material outperforms melt-blended UHMWPE/HDPE and most polyethylene nanocomposites without requiring hazardous UHMWPE nanoparticles or inorganic nanofillers.

HDPE/UHMWPE reactor-blend additives and the resulting melt-processable self-reinforced all-polyethylene composites

The effects of nanophase-separated UHMWPE content and HDPE wax on flow-induced shish-kebab formation, in situ fiber reinforcement, melt processability, and the toughness–stiffness–strength balance of HDPE composites

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2017-10-13
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Authors
Daniel Hofmann
Alexander Kurek
Ralf Thomann
Jeremia Schwabe
Stefan Mark
Markus Enders
Timo Hees
Rolf Mülhaupt
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