Tensile Viscoelastic Properties of Spunbonded Nonwoven Polypropylene Backing

The tensile elastic and viscoelastic properties of a nonwoven polypropylene backing, used as the main structural component during the processing of unfinished tufted carpets, are characterized in this study. Since the carpet is subjected to stretching in both the machine and cross-directions during the dyeing and drying processes, the various tensile properties are important material parameters. The average modulus of the untufted nonwoven substrate was 83,100 N/(m width) or 58.8 g/tex with a coefficient of variation of 12% within a roll. Based on the nominal thickness of 0.003 m of the carpet, the modulus was calculated at 27.7 MPa. The average modulus for the tufted substrate was 5.3 MPa (15,900 N/m width or 11.3 g/tex) with a coefficient of variation of 21 %. Since the dyeing and drying operations proceed at temperatures in the vicinity of 100°C, and the stresses and strains are applied for a time ranging up to 10 minutes, the time-dependent tensile properties are also significant at these elevated temperatures. Viscoelastic tests showed that the stress relaxation modulus for the tufted nonwoven substrate was of the order of 1 MPa and rather insensitive to temperatures over the range of 72 to 100°C. Viscoelastic models consisting of spring and dashpot elements were used to model the creep and stress-relaxation response. Variations ob served in tensile modulus, creep compliance, and stress-relaxation modulus suggest that the stress bearing structure, including filament density and bond strength, is not uniform in the nonwoven fabric.

[1]  V. K. Kothari,et al.  61—THE AIR-PERMEABILITY OF NON-WOVEN FABRICS , 1974 .

[2]  T. H. Grindstaff,et al.  Computer Model for Predicting Point-Bonded Nonwoven Fabric Strength, Part I , 1986 .

[3]  S. Backer,et al.  Relationships between the Structural Geometry of a Fabric and its Physical Properties; Part VII: Mechanics of Nonwovens: Orthotropic Behavior , 1963 .

[4]  Alan McGown,et al.  Uniaxial strength testing of woven and nonwoven geotextiles , 1984 .

[5]  John L. Crouse,et al.  Pesticide Barrier Performance of Selected Nonwoven Fabrics in Laboratory Capillary and Pressure Penetration Testing , 1990 .

[6]  Charles J. Shimalla,et al.  Thermomechanical Behavior of Nonwovens , 1976 .

[8]  C. W. Ericson,et al.  Spunbonded Nonwoven Fabric Studies , 1973 .

[9]  John W. S. Hearle,et al.  1–STUDIES OF ADHESIVE-BONDED NON-WOVEN FABRICS PART IV : A COMPARISON OF THEORETICAL PREDICTIONS AND EXPERIMENTAL OBSERVATIONS , 1982 .

[10]  J. Hearle,et al.  Nonwoven Fabric Studies1: Part III: The Anisotropy of Nonwoven Fabrics2 , 1963 .

[11]  J. Whitwell,et al.  Studies of Nonwovens , 1970 .

[12]  G. den Hoedt,et al.  Creep and relaxation of geotextile fabrics , 1986 .

[13]  John W. S. Hearle,et al.  3—STUDIES OF ADHESIVE-BONDED NON-WOVEN FABRICS PART I: A THEORETICAL MODEL OF TENSILE RESPONSE INCORPORATING BINDER DEFORMATION , 1979 .

[14]  G. Lamb,et al.  Influences of Fiber Geometry on the Performance of Nonwoven Air Filters , 1980 .

[15]  Y. Shoshani Effect of Nonwoven Backings on the Noise Absorption Capacity of Tufted Carpets , 1990 .

[16]  Stanley Backer,et al.  Some Principles of Nonwoven Fabrics1 , 1960 .