Palomba et al., 2018 - Google Patents
Single and double-layer honeycomb sandwich panels under impact loadingPalomba et al., 2018
- Document ID
- 3639303814595240985
- Author
- Palomba G
- Epasto G
- Crupi V
- Guglielmino E
- Publication year
- Publication venue
- International Journal of Impact Engineering
External Links
Snippet
Honeycomb sandwich structures have excellent energy absorption capabilities, combined with good mechanical properties and low density. These characteristics make them ideal for the transportation industry, which has a growing interest in reaching higher safety standards …
- 210000003660 Reticulum 0 title abstract description 83
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Palomba et al. | Single and double-layer honeycomb sandwich panels under impact loading | |
Crupi et al. | Prediction model for the impact response of glass fibre reinforced aluminium foam sandwiches | |
Xie et al. | Mechanical properties of Nomex honeycomb sandwich panels under dynamic impact | |
Sun et al. | On the structural parameters of honeycomb-core sandwich panels against low-velocity impact | |
Sun et al. | Low-velocity impact behaviour of sandwich panels with homogeneous and stepwise graded foam cores | |
Crupi et al. | Collapse modes in aluminium honeycomb sandwich panels under bending and impact loading | |
Ozdemir et al. | Energy absorption in lattice structures in dynamics: Experiments | |
Özen et al. | Low-energy impact response of composite sandwich panels with thermoplastic honeycomb and reentrant cores | |
Liu et al. | Impact responses of sandwich panels with fibre metal laminate skins and aluminium foam core | |
Palomba et al. | Collapse modes of aluminium honeycomb sandwich structures under fatigue bending loading | |
Crupi et al. | Comparison of aluminium sandwiches for lightweight ship structures: Honeycomb vs. foam | |
Zhang et al. | Drop-weight impact behavior of honeycomb sandwich panels under a spherical impactor | |
Balaganesan et al. | Energy absorption and ballistic limit of nanocomposite laminates subjected to impact loading | |
Karsandik et al. | Impact behavior of sandwich composites for aviation applications: A review | |
Susainathan et al. | Experimental investigation of impact behavior of wood-based sandwich structures | |
Anderson et al. | Experimental investigation of low-velocity impact characteristics of sandwich composites | |
Zhu et al. | Analytical investigation and optimal design of sandwich panels subjected to shock loading | |
Xu et al. | An experimental investigation into the high velocity penetration resistance of CFRP and CFRP/aluminium laminates | |
Arora et al. | Dynamic response of full-scale sandwich composite structures subject to air-blast loading | |
Davies et al. | Impact on composite structures | |
Fatt et al. | Perforation of honeycomb sandwich plates by projectiles | |
Laliberte et al. | Post-impact fatigue damage growth in fiber–metal laminates | |
Foo et al. | A modified energy-balance model to predict low-velocity impact response for sandwich composites | |
Fatt et al. | Dynamic models for low-velocity impact damage of composite sandwich panels–Part B: Damage initiation | |
Sturm et al. | Failure of CFRP airframe sandwich panels under crash-relevant loading conditions |