단부처리시설물의 충격흡수구조설계에 따른 방호성능 개선 연구Study on the Improvement of Protective Performance by Structure Design for the Shock Attenuation Mechanism of an End Terminal
- Other Titles
- Study on the Improvement of Protective Performance by Structure Design for the Shock Attenuation Mechanism of an End Terminal
- Authors
- 백경윤; 우수성; 심도식; 박원균; 송대빈
- Issue Date
- Nov-2022
- Publisher
- 한국기계가공학회
- Keywords
- End Terminal(단부처리시설물); Guard Rail(가드레일); Finite Element Analysis(유한요소해석); Crash Test(충돌시험); Crash Simulation(모의충돌시험)
- Citation
- 한국기계가공학회지, v.21, no.11, pp 23 - 28
- Pages
- 6
- Indexed
- KCI
- Journal Title
- 한국기계가공학회지
- Volume
- 21
- Number
- 11
- Start Page
- 23
- End Page
- 28
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/29576
- DOI
- 10.14775/ksmpe.2022.21.11.023
- ISSN
- 1598-6721
2288-0771
- Abstract
- In the event of a collision with the end of a vehicle guardrail, the high rigidity continues to pose a threat to the safety of passengers; hence, an end treatment facility must be mandatorily installed. This requires a shock-absorbing mechanism design to reduce the impact on the occupant and a shock-absorbing structure that can protect the occupant from an abrupt deceleration movement. In this study, the structure of a guardrail was improved. For a head-on collision of a vehicle with an end treatment facility, the impact absorption performance owing to the structure of the guardrail was observed by a simulation using ABAQUS, a finite element analysis program. To improve the impact absorption performance of the end treatment facility, we designed a structure in which a groove is formed in the guardrail, pressed in the longitudinal direction, and then pushed backward according to the groove shape to absorb the impact. The calculation of the reaction force of the collision member according to the guardrail groove shape showed that the wave shape had the lowest reaction force. The actual crash test report also satisfied the absorption performance evaluation with excellent results for the passenger protection performance evaluation criteria (THIV((Theoretical Head Impact Velocity)) 15.7% and PHD (Post-impact Head Deceleration) 21.17%).
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Collections - 농업생명과학대학 > 생물산업기계공학과 > Journal Articles

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