Penetration resistance of reinforced concrete slab subjected to rigid projectile impact based on finite element and analytical models

IF 7.4 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Irfan Ali, Xu Long
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Abstract

The growing diversity of projectile shapes has significantly fueled research into the penetration resistance of reinforced concrete (RC) targets subjected to rigid projectile impact, with penetration depth emerging as a critical determinant. Accurate prediction of penetration depth is paramount for designing protective structures, yet this remains challenging due to the scarcity of strain rate dependent experimental data. This study bridges this gap through comprehensive finite element simulations, evaluating the penetration performance of 200 mm thick RC slab under normal impact by projectiles with a constant diameter of 25.3 mm. Strain rate dependent concrete strengths ranged from 20 to 135 MPa, and impact velocities spanned from 100 to 1000 m/s. An RC slab (675 × 675 × 200 mm) was modeled using 8-node hexahedral solid elements, with validated by comparing experimental and numerical results. Strain rate effect by concrete damage plasticity model based numerical simulations were conducted for projectiles with varying nose shapes (i.e., ogive, hemispherical and flat) as well as masses of 0.386, 0.771, and 1 kg. This study investigates the influence of projectile characteristics and target properties governing the penetration depth and the corresponding impact velocities. Results demonstrate that the penetration depth declines as the concrete strength escalates, with ogive-shaped projectiles consistently achieving a superior penetration. Furthermore, increased projectile mass and velocity markedly amplify the penetration depth, although higher-strength concrete exhibits stronger resistance. An analytical model, derived from the cavity expansion theory effectively quantifies the effects of these parameters, with an acceptable agreement observed between analytical and numerical results, underscoring its reliability and accuracy.
射弹形状的日益多样化极大地推动了对钢筋混凝土(RC)目标在刚性射弹冲击下的抗穿透性的研究,而穿透深度则成为一个关键的决定因素。准确预测穿透深度对于设计防护结构至关重要,但由于应变率相关实验数据的缺乏,预测穿透深度仍具有挑战性。本研究通过全面的有限元模拟弥补了这一不足,评估了 200 毫米厚的 RC 板在直径恒定为 25.3 毫米的射弹正常冲击下的穿透性能。与应变速率相关的混凝土强度范围为 20 至 135 兆帕,冲击速度范围为 100 至 1000 米/秒。使用 8 节点六面体实体元素对 RC 板(675 × 675 × 200 毫米)进行建模,并通过比较实验结果和数值结果进行验证。通过基于混凝土损伤塑性模型的数值模拟,对不同弹头形状(即椭圆形、半球形和扁平形)以及质量为 0.386、0.771 和 1 千克的弹丸进行了应变率效应分析。本研究调查了弹丸特性和目标属性对穿透深度和相应冲击速度的影响。结果表明,穿透深度随着混凝土强度的增加而减小,椭圆形弹丸的穿透力更强。此外,虽然强度较高的混凝土表现出更强的抗冲击性,但弹丸质量和速度的增加会明显加大穿透深度。由空腔膨胀理论推导出的分析模型有效地量化了这些参数的影响,分析结果与数值结果之间的一致性可以接受,这突出了其可靠性和准确性。
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来源期刊
Construction and Building Materials
Construction and Building Materials 工程技术-材料科学:综合
CiteScore
13.80
自引率
21.60%
发文量
3632
审稿时长
82 days
期刊介绍: Construction and Building Materials offers an international platform for sharing innovative and original research and development in the realm of construction and building materials, along with their practical applications in new projects and repair practices. The journal publishes a diverse array of pioneering research and application papers, detailing laboratory investigations and, to a limited extent, numerical analyses or reports on full-scale projects. Multi-part papers are discouraged. Additionally, Construction and Building Materials features comprehensive case studies and insightful review articles that contribute to new insights in the field. Our focus is on papers related to construction materials, excluding those on structural engineering, geotechnics, and unbound highway layers. Covered materials and technologies encompass cement, concrete reinforcement, bricks and mortars, additives, corrosion technology, ceramics, timber, steel, polymers, glass fibers, recycled materials, bamboo, rammed earth, non-conventional building materials, bituminous materials, and applications in railway materials.
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