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Application of a mesh-free method to modelling brittle fracture and fragmentation of a concrete column during projectile impact

机译:无网格法在弹丸撞击过程中混凝土柱脆性断裂与破碎建模中的应用

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Damage by high-speed impact fracture is a dominant mode of failure in several applications of concrete structures. Numerical modelling can play a crucial role in understanding and predicting complex fracture processes. The commonly used mesh-based Finite Element Method has difficulties in accurately modelling the high deformation and disintegration associated with fracture, as this often distorts the mesh. Even with careful re-meshing FEM often fails to handle extreme deformations and results in poor accuracy. Moreover, simulating the mechanism of fragmentation requires detachment of elements along their boundaries, and this needs a fine mesh to allow the natural propagation of damage/cracks. Smoothed Particle Hydrodynamics (SPH) is an alternative particle based (mesh-less) Lagrangian method that is particularly suitable for analysing fracture because of its capability to model large deformation and to track free surfaces generated due to fracturing. Here we demonstrate the capabilities of SPH for predicting brittle fracture by studying a slender concrete structure (column) under the impact of a high-speed projectile. To explore the effect of the projectile material behaviour on the fracture process, the projectile is assumed to be either perfectly-elastic or elastoplastic in two separate cases. The transient stress field and the resulting evolution of damage under impact are investigated. The nature of the collision and the constitutive behaviour are found to considerably affect the fracture process for the structure including the crack propagation rates, and the size and motion of the fragments. The progress of fracture is tracked by measuring the average damage level of the structure and the extent of energy dissipation, which depend strongly on the type of collision. The effect of fracture property (failure strain) of the concrete due to its various compositions is found to have a profound effect on the damage and fragmentation pattern of the structure.
机译:在混凝土结构的几种应用中,高速冲击断裂造成的破坏是主要的破坏方式。数值建模可以在理解和预测复杂的断裂过程中发挥关键作用。常用的基于网格的有限元方法在准确建模与断裂相关的高变形和崩解方面存在困难,因为这经常会使网格变形。即使细心地重新啮合,FEM仍常常无法处理极端变形,并导致精度低下。此外,模拟碎裂机制需要沿其边界分离元素,而这需要细密的网格以允许损伤/裂纹的自然传播。平滑粒子流体动力学(SPH)是一种基于粒子的(无网格)拉格朗日方法,该方法特别适用于分析裂缝,因为它具有对大变形建模和跟踪由裂缝产生的自由表面的能力。在这里,我们通过研究高速射弹冲击下的细长混凝土结构(柱)来证明SPH预测脆性断裂的功能。为了探索弹丸材料行为对断裂过程的影响,在两种不同的情况下,弹丸被假定为完全弹性或弹塑性的。研究了瞬态应力场以及在冲击下损伤的演变情况。发现碰撞的性质和本构行为会显着影响结构的断裂过程,包括裂纹的扩展速率,碎片的大小和运动。通过测量结构的平均破坏程度和能量耗散程度来跟踪断裂的进展,这在很大程度上取决于碰撞的类型。人们发现,由于其各种组成,混凝土的断裂特性(破坏应变)的影响对结构的破坏和破碎模式具有深远的影响。

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