• 제목/요약/키워드: blast-resistant design

검색결과 26건 처리시간 0.033초

플랜트 시설물의 확률론적 폭발 위험도에 따른 설계폭발하중 모델 개발 (Development of Design Blast Load Model according to Probabilistic Explosion Risk in Industrial Facilities)

  • 이승훈;최보영;김한수
    • 한국전산구조공학회논문집
    • /
    • 제37권1호
    • /
    • pp.1-8
    • /
    • 2024
  • 본 논문에서는 확률론적 처리기법을 적용하여 플랜트 시설물의 폭발 재현주기에 따른 폭발 위험도를 분석하였다. HSE에서 제공하는 누출 데이터, DNV에서 제시한 플랜트당 연간 누출 빈도, 다양한 연구진이 제시한 점화 확률을 고려하여 누출량에 따른 폭발 재현주기를 산정하였다. 산정된 폭발 재현주기를 통해 폭발 위험도를 증기운의 부피 및 반경, 폭발하중에 대하여 평가하였다. 재현주기에 따른 증기운의 반경과 과거 실제 증기운 폭발 사례, 내폭설계 가이드라인을 비교 분석하여 설계폭발하중 모델을 위한 기준거리를 제시하였다. 멀티에너지법을 통하여 폭발 재현주기에 따른 폭발하중의 범위를 분석하였으며, 설계폭발하중 모델의 기준이 되는 재현주기를 제안하였다. 본 연구의 결과로 플랜트 시설물에 대한 성능기반 내폭설계의 간략한 표준안으로 활용이 가능하다.

방폭설계의 이해 및 일반하중에 대해 설계된 건축물의 방폭성능 평가 (Understanding of Blast Resistant Design and Performance Evaluation of a Building designed for Conventional Loads)

  • 홍종국
    • 한국구조물진단유지관리공학회 논문집
    • /
    • 제22권4호
    • /
    • pp.83-90
    • /
    • 2018
  • 전 세계적으로 테러의 위협이 가중되고 일반 상업건축에 대한 방폭설계의 요구가 증가하고 있는 현실을 직시하여, 본 연구에서는 기본적인 방폭설계의 개념을 정립하고 실제 설계사례를 통하여 방폭성능을 평가하는데 목표를 두고 있다. 비록 지진하중과 폭파하중에는 많은 차이점이 있지만, 그 설계법은 구조물의 소성거동을 허용하고 연성을 갖도록 설계한다는 점에서 유사하다. 본 연구에서 제시된 대상 건물에 대한 방폭성능 평가를 통하여, 일반하중에 대하여 잘 설계된 건물은 어느 정도 수준의 방폭성능을 확보하는 것으로 나타났다. 그러나 구조물에 작용하는 폭파하중은 무기의 종류, 등가의 TNT량, 폭발점에서 목표물까지의 최단거리인 촛점거리 등에 따라 달라지기 때문에 일반화하기에는 무리가 있다. 희생구조물을 배치하거나 예상되는 폭발점에서 주요 구조부재까지의 촛점거리를 일정수준 이상으로 유지하는 건축 계획적인 노력은 건물의 방폭성능을 향상시킬 수 있는 쉽고 효과적인 방법이다.

Numerical analysis of reaction forces in blast resistant gates

  • Al-Rifaie, Hasan;Sumelka, Wojciech
    • Structural Engineering and Mechanics
    • /
    • 제63권3호
    • /
    • pp.347-359
    • /
    • 2017
  • Blast resistant gates are required to be lightweight and able to mitigate extreme loading effect. This may be achieved through innovative design of a gate and its supporting frame. The first is well covered in literature while the latter is often overlooked. The design of supporting frame depends mainly on the boundary conditions and corresponding reaction forces. The later states the novelty and the aim of this paper, namely, the analysis of reaction forces in supporting structure of rectangular steel gates subjected to "far-field explosions". Flat steel plate was used as simplified gate structure, since the focus was on reaction forces rather than behaviour of gate itself. The analyses include both static and dynamic cases using analytical and numerical methods to emphasize the difference between both approaches, and provide some practical hints for engineers. The comprehensive study of reaction forces presented here, cover four different boundary conditions and three length to width ratios. Moreover, the effect of explosive charge and stand-off distance on reaction forces was also covered. The analyses presented can be used for a future design of a possible "blast absorbing supporting frame" which will increase the absorbing properties of the gate. This in return, may lead to lighter and more operational blast resistant gates.

공기 중 폭발하중에 대한 창호시스템의 방폭설계 절차에 관한 고찰 (A Review on the Blast Resistant Design for Glazing and Window Systems Subject to High-explosive Loadings)

  • 허영철;정태영;오성근
    • 한국소음진동공학회논문집
    • /
    • 제20권12호
    • /
    • pp.1229-1235
    • /
    • 2010
  • Anti-terrorism design for public buildings as well as military facilities is important to minimize the mass casualties from terrorist attacks. Also, well designed glazing and window systems can reduce the potential injury of human caused by scattering fragment of a glazing. In this paper, blast resistant design for glazing and window systems is investigated based on the U.S. Standard. The design procedures include minimum requirements for the design, standard practice for design evaluation of the glazing and standard test method for evaluation of the performance.

뉴스초점: 폭발하중을 받는 방호구조물의 계획과 설계 (Planning and Design of Protective Structures under Blast Loading)

  • 변근주;남진원;변재한;김호전
    • 기술사
    • /
    • 제44권5호
    • /
    • pp.36-41
    • /
    • 2011
  • Design of blast resistant structures (protective structures) require the adequate design and construction practices as well as the knowledge of characteristics of the blast loads, behavior of structures and their components under these loads. This paper focuses on how to design and evaluate the structures for blast resistance, and provides principles and discussion on analysis and design capability in protective technology and recommendations.

  • PDF

신뢰성 해석에 의한 내폭 CFRP-steel 복합구조의 최적화 설계 (Design Optimization of Blast Resistant CFRP-steel Composite Structure Based on Reliability Analysis)

  • 김정중;노혁천
    • 복합신소재구조학회 논문집
    • /
    • 제3권4호
    • /
    • pp.10-16
    • /
    • 2012
  • This study presents the effectiveness of a composite structure at improving blast resistance. The proposed composite structure consists of carbon fiber reinforced polymer (CFRP) and steel layers. While CFRP layer is used for blast energy reflection due to its high strength, steel layer is used for blast energy absorption due to its high ductility. A dynamic model is used to simulate the elastoplastic behavior of the proposed composite structure subject to blast load. Considering the magnitude variations of a blast event, the probability of failure of each layer is evaluated using reliability analysis. By assigning design probability of failure of each layer in the composite structure, the thickness of layers is optimized. A case study for the design of CFRP-steel composite structure subjected to an uncertain blast event is also presented.

Pressure impulse diagrams for simply-supported steel columns based on residual load-carrying capacities

  • Park, Jong Yil;Krauthammer, Theodor
    • Structural Engineering and Mechanics
    • /
    • 제39권2호
    • /
    • pp.287-301
    • /
    • 2011
  • This paper is focused on the residual capacity of steel columns, as a damage criterion. Load-Impulse (P-I) diagrams are frequently used for analysis, design, or assessment of blast resistant structures. The residual load carrying capacity of a simply supported steel column was derived as a damage criterion based on a SDOF computational approach. Dimensionless P-I diagrams were generated numerically with this quantitative damage criterion. These numerical P-I diagrams were used to show that traditional constant ductility ratios adopted as damage criteria are not appropriate for either the design or damage assessment of blast resistant steel columns, and that the current approach could be a much more appropriate alternative.

Experimental and numerical investigation of RC sandwich panels with helical springs under free air blast loads

  • Rashad, Mohamed;Wahab, Mostafa M.A.;Yang, T.Y.
    • Steel and Composite Structures
    • /
    • 제30권3호
    • /
    • pp.217-230
    • /
    • 2019
  • One of the most important design criteria in underground structure is to design lightweight protective layers to resist significant blast loads. Sandwich blast resistant panels are commonly used to protect underground structures. The front face of the sandwich panel is designed to resist the blast load and the core is designed to mitigate the blast energy from reaching the back panel. The design is to allow the sandwich panel to be repaired efficiently. Hence, the underground structure can be used under repeated blast loads. In this study, a novel sandwich panel, named RC panel - Helical springs- RC panel (RHR) sandwich panel, which consists of normal strength reinforced concrete (RC) panels at the front and the back and steel compression helical springs in the middle, is proposed. In this study, a detailed 3D nonlinear numerical analysis is proposed using the nonlinear finite element software, AUTODYN. The accuracy of the blast load and RHR Sandwich panel modelling are validated using available experimental results. The results show that the proposed finite element model can be used efficiently and effectively to simulate the nonlinear dynamic behaviour of the newly proposed RHR sandwich panels under different ranges of free air blast loads. Detailed parameter study is then conducted using the validated finite element model. The results show that the newly proposed RHR sandwich panel can be used as a reliable and effective lightweight protective layer for underground structures.