Morphology and Properties of Crystalline Polymers with Fiber Structure
- 1 January 1972
- journal article
- Published by SAGE Publications in Textile Research Journal
- Vol. 42 (1) , 20-30
- https://doi.org/10.1177/004051757204200105
Abstract
The morphological properties as derived from wide- and small-angle x-ray scattering, IR dichroism, electron spin resonance, and electron microscopy, and the anisotropy of mechanical properties of the fiber structure can be well explained by the microfibrillar concept developed on the basis of a detailed study of plastic deformation and fracture of polymer single crystals. The microfibrils bridging the cracks of a fractured crystal contain in axial direction a regular alternation of crystal blocks and amorphous layers containing chain folds, chain ends and a large ratio (between 5 and 30%) of tie mole cules providing the high longitudinal elastic modulus and strength. With lateral dimensions between 100 and 300 Å and a length of about 10 μ, they represent the strong structural element of the fiber. Lateral fit of crystal blocks of adjacent microfibrils produces the lamellae oriented more or less perpendicular to the fiber axis. They are a secondary structural element contributing to the lateral elastic modulus and strength. But the relatively easy axial slip of microfibrils, not substantially hampered by lamellae, yields the high shear compliance which is inexplicable by any model based on lamellae as primary element of fiber structure. The fracture of fibers in the tensile test most probably initiates at point defects of the microfibrillar or fibrillar superlattice, i.e., at the ends of microfibrils. The density of such defects as derived from the probable dimensions of microfibrils agrees very well with the observed number of ruptured chains.Keywords
This publication has 33 references indexed in Scilit:
- Density of drawn polyethyleneJournal of Polymer Science Part B: Polymer Letters, 1971
- Infrared studies of drawn polyethylene part I. Changes in orientation and conformation of highly drawn linear polyethyleneJournal of Macromolecular Science, Part B, 1970
- Uses of electron paramagnetic resonance in studying fractureJournal of Polymer Science Part A-1: Polymer Chemistry, 1970
- Röntgenkleinwinkeluntersuchungen zur struktur der fehlgeordneten bereiche in verstreektem polyäthylen. Teil I: Absolutintensität der röntgenkleinwinkelstreuungDie Makromolekulare Chemie, 1968
- The temperature dependence of tensile modulus in anisotropic polyethylene sheetsJournal of Macromolecular Science, Part B, 1968
- Surface Replicas of Drawn Polyethylene. III. The Morphology of Drawing with Neck FormationJournal of Applied Physics, 1967
- Thermodynamic Properties of Drawn Linear PolyethyleneJournal of Applied Physics, 1965
- Diffusion Kinetics of Orange-II in Nylon 661Textile Research Journal, 1965
- Chain folding in oriented 66‐nylon fibersJournal of Polymer Science Part B: Polymer Letters, 1964
- The preparation and properties of fractions from high density polyethylenesJournal of Chemical Technology & Biotechnology, 1964