Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations

Investigations of large commercial aircraft impact effect on nuclear power plant (NPP) buildings have been drawing extensive attentions, particularly after the 9/11 event, and this paper aims to numerically assess the damage and vibrations of NPP buildings subjected to aircrafts crash. In Part I of...

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Main Authors: Z.R. Li, Z.C. Li, Z.F. Dong, T. Huang, Y.G. Lu, J.L. Rong, H. Wu
Format: Article
Language:English
Published: Elsevier 2021-09-01
Series:Nuclear Engineering and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1738573321001509
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spelling doaj-cf678955c7e54f6ca096a1d34d66fa872021-07-17T04:32:42ZengElsevierNuclear Engineering and Technology1738-57332021-09-0153930853099Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulationsZ.R. Li0Z.C. Li1Z.F. Dong2T. Huang3Y.G. Lu4J.L. Rong5H. Wu6School of Aerospace Engineering, Beijing Institute of Technology, Beijing, 100081, ChinaState Key Laboratory of Nuclear Power Safety Monitoring Technology and Equipment, China Nuclear Power Engineering Co., Ltd, Shenzhen, Guangdong, 518172, China; China Nuclear Power Design Co., Ltd, Shenzhen, Guangdong, 518172, ChinaState Key Laboratory of Nuclear Power Safety Monitoring Technology and Equipment, China Nuclear Power Engineering Co., Ltd, Shenzhen, Guangdong, 518172, China; China Nuclear Power Design Co., Ltd, Shenzhen, Guangdong, 518172, ChinaState Key Laboratory of Nuclear Power Safety Monitoring Technology and Equipment, China Nuclear Power Engineering Co., Ltd, Shenzhen, Guangdong, 518172, China; China Nuclear Power Design Co., Ltd, Shenzhen, Guangdong, 518172, ChinaInstitute of System Engineering, CAEP, Mianyang, 621900, Sichuan, ChinaSchool of Aerospace Engineering, Beijing Institute of Technology, Beijing, 100081, ChinaDepartment of Disaster Mitigation for Structures, College of Civil Engineering, Tongji University, Shanghai, 200092, China; Corresponding author.Investigations of large commercial aircraft impact effect on nuclear power plant (NPP) buildings have been drawing extensive attentions, particularly after the 9/11 event, and this paper aims to numerically assess the damage and vibrations of NPP buildings subjected to aircrafts crash. In Part I of present paper, two shots of reduce-scaled model test of aircraft impact on NPP were conducted based on the large rocket sled loading test platform. In the present part, the numerical simulations of both scaled and prototype aircraft impact on NPP buildings are further performed by adopting the commercial program LS-DYNA. Firstly, the refined finite element (FE) models of both scaled aircraft and NPP models in Part I are established, and the model impact test is numerically simulated. The validities of the adopted numerical algorithm, constitutive model and the corresponding parameters are verified based on the experimental NPP model damages and accelerations. Then, the refined simulations of prototype A380 aircraft impact on a hypothetical NPP building are further carried out. It indicates that the NPP building can totally withstand the impact of A380 at a velocity of 150 m/s, while the accompanied intensive vibrations may still lead to different levels of damage on the nuclear related equipment. Referring to the guideline NEI07-13, a maximum acceleration contour is plotted and the shock damage propagation distances under aircraft impact are assessed, which indicates that the nuclear equipment located within 11.5 m from the impact point may endure malfunction. Finally, by respectively considering the rigid and deformable impacts mainly induced by aircraft engine and fuselage, an improved Riera function is proposed to predict the impact force of aircraft A380.http://www.sciencedirect.com/science/article/pii/S1738573321001509Nuclear power plantAircraftImpactShock damage propagation distanceVibration
collection DOAJ
language English
format Article
sources DOAJ
author Z.R. Li
Z.C. Li
Z.F. Dong
T. Huang
Y.G. Lu
J.L. Rong
H. Wu
spellingShingle Z.R. Li
Z.C. Li
Z.F. Dong
T. Huang
Y.G. Lu
J.L. Rong
H. Wu
Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
Nuclear Engineering and Technology
Nuclear power plant
Aircraft
Impact
Shock damage propagation distance
Vibration
author_facet Z.R. Li
Z.C. Li
Z.F. Dong
T. Huang
Y.G. Lu
J.L. Rong
H. Wu
author_sort Z.R. Li
title Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
title_short Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
title_full Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
title_fullStr Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
title_full_unstemmed Damage and vibrations of nuclear power plant buildings subjected to aircraft crash part II: Numerical simulations
title_sort damage and vibrations of nuclear power plant buildings subjected to aircraft crash part ii: numerical simulations
publisher Elsevier
series Nuclear Engineering and Technology
issn 1738-5733
publishDate 2021-09-01
description Investigations of large commercial aircraft impact effect on nuclear power plant (NPP) buildings have been drawing extensive attentions, particularly after the 9/11 event, and this paper aims to numerically assess the damage and vibrations of NPP buildings subjected to aircrafts crash. In Part I of present paper, two shots of reduce-scaled model test of aircraft impact on NPP were conducted based on the large rocket sled loading test platform. In the present part, the numerical simulations of both scaled and prototype aircraft impact on NPP buildings are further performed by adopting the commercial program LS-DYNA. Firstly, the refined finite element (FE) models of both scaled aircraft and NPP models in Part I are established, and the model impact test is numerically simulated. The validities of the adopted numerical algorithm, constitutive model and the corresponding parameters are verified based on the experimental NPP model damages and accelerations. Then, the refined simulations of prototype A380 aircraft impact on a hypothetical NPP building are further carried out. It indicates that the NPP building can totally withstand the impact of A380 at a velocity of 150 m/s, while the accompanied intensive vibrations may still lead to different levels of damage on the nuclear related equipment. Referring to the guideline NEI07-13, a maximum acceleration contour is plotted and the shock damage propagation distances under aircraft impact are assessed, which indicates that the nuclear equipment located within 11.5 m from the impact point may endure malfunction. Finally, by respectively considering the rigid and deformable impacts mainly induced by aircraft engine and fuselage, an improved Riera function is proposed to predict the impact force of aircraft A380.
topic Nuclear power plant
Aircraft
Impact
Shock damage propagation distance
Vibration
url http://www.sciencedirect.com/science/article/pii/S1738573321001509
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