A Study on Shock Absorption Characteristics of Honeycomb-Inserted Bollards
Open Access
- 26 April 2020
- journal article
- research article
- Published by MDPI AG in Applied Sciences
- Vol. 10 (9), 3014
- https://doi.org/10.3390/app10093014
Abstract
Lack of shock absorption capability of conventional steel bollards causes significant vehicle damage and, consequently, high repair costs. This research studies a solution to reduce vehicle damage by inserting polylactic acid (PLA) honeycomb structures. A honeycomb-inserted bollard was designed based on numerical simulations using LS-DYNA, which yielded the bollard designed for actual vehicle-bollard collision experiments. Simulation efforts were focused on calculating the acceleration characteristics when a vehicle collides with steel and honeycomb-inserted bollards. Compared to the simulated steel bollards, 20 MPa yield-strength honeycomb-inserted bollard showed 0.017 s delay in the maximum acceleration occurrence time, reduction of the maximum acceleration of 37.4% of that of steel bollards, and a 13.1% reduction in the B-pillar maximum acceleration. Actual vehicle-bollard collision experiments, with a gyro-sensor installed at the test vehicle front bumper frame, also proved improved shock absorption characteristics of the honeycomb-inserted bollards. An experiment with honeycomb-inserted bollard showed a 0.783 s delay in the maximum acceleration occurrence time, a significant delay when compared to steel bollards. The maximum acceleration measured by the gyro-sensor was 0.35 × 103 m/s2 when the simulation predicted it to be 0.388 × 103 m/s2, proving the similarity in the simulations and experiments. Thus, this study of shock absorption characteristics promised reduced damage to vehicles and lower repair cost.Keywords
All Related Versions
Funding Information
- Ministry of SMEs and Startups (C0532741)
This publication has 14 references indexed in Scilit:
- In-plane crashworthiness of bio-inspired hierarchical honeycombsComposite Structures, 2018
- Design analysis of hybrid composite anti-ram bollard subjected to impulsive loadingsComposite Structures, 2018
- Aluminum honeycomb sandwich for protective structures of earth moving machinesProcedia Structural Integrity, 2018
- Influence of reinforcement in the honeycomb structures under axial compressive loadThin-Walled Structures, 2017
- Performance Evaluation and Proposal on Standard Establishment of the Bollard Through Impact AnalysisJournal of the Korean Association for Spatial Structures, 2016
- Test and numerical simulation of truck collision with anti-ram bollardsInternational Journal of Impact Engineering, 2014
- Simulation Analysis of Car Front Collision Based on LS-DYNA and Hyper WorksJournal of Transportation Technologies, 2014
- Effect of Bead Shape in Aluminum Crash Box for Effective Impact Energy Absorption Under Low- Velocity Impact ConditionTransactions of the Korean Society of Mechanical Engineers - A, 2012
- Prediction to Shock Absorption Energy of an Aluminum HoneycombJournal of the Korean Society for Aeronautical & Space Sciences, 2011
- Prediction of crushing behaviour of honeycomb structuresInternational Journal of Crashworthiness, 2003