Singh et al., 2016 - Google Patents
Impact Response of Quasi‐Isotropic Asymmetric Carbon Fabric/Epoxy Laminate Infused with MWCNTsSingh et al., 2016
View PDF- Document ID
- 91792665045126084
- Author
- Singh N
- Rawat P
- Singh K
- Publication year
- Publication venue
- Advances in Materials Science and Engineering
External Links
Snippet
Effect of embedding multiwalled carbon nanotubes (MWCNTs) on low velocity impact response of quasi‐isotropic asymmetric laminate of plain woven carbon fabric/epoxy was investigated. Laminates were embedded with 0 wt.%, 2 wt.%, and 5 wt.% MWCNTs to …
- 239000002048 multi walled nanotube 0 title abstract description 119
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Dhawan et al. | Effect of natural fillers on mechanical properties of GFRP composites | |
Soliman et al. | On and off-axis tension behavior of fiber reinforced polymer composites incorporating multi-walled carbon nanotubes | |
Burkov et al. | Mechanical properties of carbon‐fiber‐reinforced epoxy composites modified by carbon micro‐and nanofillers | |
Singh et al. | Impact Response of Quasi‐Isotropic Asymmetric Carbon Fabric/Epoxy Laminate Infused with MWCNTs | |
Truong et al. | Tensile Behavior of Carbon Fiber‐Reinforced Polymer Composites Incorporating Nanomaterials after Exposure to Elevated Temperature | |
Shukla et al. | An assessment of flexural performance of liquid nitrogen conditioned glass/epoxy composites with multiwalled carbon nanotube | |
Singh et al. | Mechanical behavior of glass/epoxy composite laminate with varying amount of MWCNTs under different loadings | |
El Moumen et al. | Mechanical behavior of carbon nanotubes-based polymer composites under impact tests | |
Kang et al. | Hybrid effects of carbon-glass FRP sheets in combination with or without concrete beams | |
Gao et al. | Axial compression of hierarchically structured carbon nanotube fiber embedded in epoxy | |
Nomula et al. | Creep performance of CNT reinforced glass fiber/epoxy composites: Roles of temperature and stress | |
Rahmat et al. | Enhanced shear performance of hybrid glass fiber–epoxy laminates modified with boron nitride nanotubes | |
Cheng et al. | Low Temperature‐Based Flexural Properties of Carbon Fiber/Epoxy Composite Laminates Incorporated with Carbon Nanotube Sheets | |
Tate et al. | Tension–tension fatigue performance and stiffness degradation of nanosilica-modified glass fiber-reinforced composites | |
Liu et al. | Quasi-static mechanical response and corresponding analytical model of laminates incorporating with nanoweb interlayers | |
Soltannia et al. | Parametric Study of Strain Rate Effects on Nanoparticle‐Reinforced Polymer Composites | |
Takeda et al. | Cryogenic mechanical properties of woven glass/epoxy composites modified with multi-walled carbon nanotube and n-butyl glycidyl ether under tensile static and cyclic loadings | |
Kebede Kassa et al. | Bending response analysis of a laminated, tapered, curved, composite panel made from an agglomerated and wavy MWCNT–glass fiber–polymer hybrid | |
Azimpour-Shishevan et al. | Low velocity impact behavior of twill basalt/epoxy composites modified by graphene nanoparticles | |
Hossain et al. | Improved thermomechanical properties of carbon fiber reinforced epoxy composite using amino functionalized XDCNT | |
Bhowmik et al. | Influence of multiwalled carbon nanotube on progressive damage of epoxy/carbon fiber reinforced structural composite | |
Ganesh Gupta K et al. | Development of advanced fiber‐reinforced polymer composites by polymer hybridization technique: Emphasis on cure kinetics, mechanical, and thermomechanical performance | |
Kuronuma et al. | Fracture behaviour of cracked carbon nanotube‐based polymer composites: experiments and finite element simulations | |
Gilorkar et al. | Thermal buckling of sisal and glass hybrid woven composites: experimental investigation | |
Liu et al. | Interlaminar properties of carbon nanotubes modified carbon fibre fabric reinforced polyimide composites |