Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams
Microcellular polypropylene (PP)/wood fiber composite foams were fabricated via batch foaming assisted by supercritical CO2 (scCO2). Effects of wood fibers on rheology, crystallization, and foaming behaviors of PP were comprehensively investigated. The obtained results showed that the incorporation...
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doaj-537235bca10b43f5ab76dd51ab115e1f2020-11-24T21:46:34ZengMDPI AGMaterials1996-19442018-12-0112110610.3390/ma12010106ma12010106Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene FoamsYongming Song0Youyong Wang1Hao Li2Qiling Zong3Ailing Xu4Key Laboratory of Bio-based Material Science and Technology (Ministry of Education), Material Science and Engineering College, Northeast Forestry University, Harbin 150040, ChinaKey Laboratory of Bio-based Material Science and Technology (Ministry of Education), Material Science and Engineering College, Northeast Forestry University, Harbin 150040, ChinaKey Laboratory of Bio-based Material Science and Technology (Ministry of Education), Material Science and Engineering College, Northeast Forestry University, Harbin 150040, ChinaKey Laboratory of Bio-based Material Science and Technology (Ministry of Education), Material Science and Engineering College, Northeast Forestry University, Harbin 150040, ChinaKey Laboratory of Bio-based Material Science and Technology (Ministry of Education), Material Science and Engineering College, Northeast Forestry University, Harbin 150040, ChinaMicrocellular polypropylene (PP)/wood fiber composite foams were fabricated via batch foaming assisted by supercritical CO2 (scCO2). Effects of wood fibers on rheology, crystallization, and foaming behaviors of PP were comprehensively investigated. The obtained results showed that the incorporation of wood fibers increased the complex viscosity and the storage modulus of the PP matrix. Jeziorny’s model for non-isothermal crystallization kinetics indicated that wood fibers did not change the crystal growth. However, the crystallization rate of the PP matrix was decreased to a certain extent with increasing wood fiber loadings. The wood fiber exerts a noticeable role in improving the cell density and reducing the cell size, despite decreasing the expansion ratio. Interestingly, a “small-sized cells to large-sized cells” gradient cell structure was found around the wood fibers, implying cell nucleation was induced at the interface between wood fiber and PP matrix. When wood fiber loadings were specifically increased, a desirable microcellular structure was obtained. However, further increasing the wood fiber loadings deteriorated the cell structure. Moreover, the crystallinity of the composite foams initially decreased and then slightly increased with increasing wood fiber loadings, while the crystal size decreased.http://www.mdpi.com/1996-1944/12/1/106polypropylenewood fiberrheologynon-isothermal crystallizationsupercritical CO2microcellular foaming |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yongming Song Youyong Wang Hao Li Qiling Zong Ailing Xu |
spellingShingle |
Yongming Song Youyong Wang Hao Li Qiling Zong Ailing Xu Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams Materials polypropylene wood fiber rheology non-isothermal crystallization supercritical CO2 microcellular foaming |
author_facet |
Yongming Song Youyong Wang Hao Li Qiling Zong Ailing Xu |
author_sort |
Yongming Song |
title |
Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams |
title_short |
Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams |
title_full |
Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams |
title_fullStr |
Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams |
title_full_unstemmed |
Role of Wood Fibers in Tuning Dynamic Rheology, Non-Isothermal Crystallization, and Microcellular Structure of Polypropylene Foams |
title_sort |
role of wood fibers in tuning dynamic rheology, non-isothermal crystallization, and microcellular structure of polypropylene foams |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2018-12-01 |
description |
Microcellular polypropylene (PP)/wood fiber composite foams were fabricated via batch foaming assisted by supercritical CO2 (scCO2). Effects of wood fibers on rheology, crystallization, and foaming behaviors of PP were comprehensively investigated. The obtained results showed that the incorporation of wood fibers increased the complex viscosity and the storage modulus of the PP matrix. Jeziorny’s model for non-isothermal crystallization kinetics indicated that wood fibers did not change the crystal growth. However, the crystallization rate of the PP matrix was decreased to a certain extent with increasing wood fiber loadings. The wood fiber exerts a noticeable role in improving the cell density and reducing the cell size, despite decreasing the expansion ratio. Interestingly, a “small-sized cells to large-sized cells” gradient cell structure was found around the wood fibers, implying cell nucleation was induced at the interface between wood fiber and PP matrix. When wood fiber loadings were specifically increased, a desirable microcellular structure was obtained. However, further increasing the wood fiber loadings deteriorated the cell structure. Moreover, the crystallinity of the composite foams initially decreased and then slightly increased with increasing wood fiber loadings, while the crystal size decreased. |
topic |
polypropylene wood fiber rheology non-isothermal crystallization supercritical CO2 microcellular foaming |
url |
http://www.mdpi.com/1996-1944/12/1/106 |
work_keys_str_mv |
AT yongmingsong roleofwoodfibersintuningdynamicrheologynonisothermalcrystallizationandmicrocellularstructureofpolypropylenefoams AT youyongwang roleofwoodfibersintuningdynamicrheologynonisothermalcrystallizationandmicrocellularstructureofpolypropylenefoams AT haoli roleofwoodfibersintuningdynamicrheologynonisothermalcrystallizationandmicrocellularstructureofpolypropylenefoams AT qilingzong roleofwoodfibersintuningdynamicrheologynonisothermalcrystallizationandmicrocellularstructureofpolypropylenefoams AT ailingxu roleofwoodfibersintuningdynamicrheologynonisothermalcrystallizationandmicrocellularstructureofpolypropylenefoams |
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1725901297268293632 |