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首页> 外文期刊>International journal of multiscale computational engineering >Blast Analysis of Enclosure Masonry Walls Using Homogenization Approaches
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Blast Analysis of Enclosure Masonry Walls Using Homogenization Approaches

机译:均质化方法对围护砌体墙进行爆破分析

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摘要

A simple rigid-plastic homogenization model for the analysis of enclosure masonry walls subjected to blast loads is presented. The model is characterized by a few material parameters, is numerically inexpensive and very stable, and allows full parametric studies of entire walls subject to blast pressures. With the aim of considering the actual brickwork strength along vertical and horizontal axes, masonry out-of-plane anisotropic failure surfaces are obtained by means of a compatible homogenized limit analysis approach. In the model, a 3D system of rigid infinitely strong bricks connected by joints reduced to interfaces is identified with a 2D Kirchhoff-Love plate. For the joints, which obey an associated flow rule, a Mohr-Coulomb failure criterion with a tension cutoff and a linearized elliptic compressive cap is considered. In this way, the macroscopic masonry failure surface is obtained as a function of the macroscopic bending, torque, and in-plane forces by means of a linear programming problem in which the internal power dissipated is minimized. Triangular Kirchhoff-Love elements with linear interpolation of the displacements field and constant moment within each element are used at a structural level. In this framework, a simple quadratic programming problem is obtained to analyze entire walls subjected to blast loads. The multiscale strategy presented is adopted to predict the behavior of a rectangular wall supported on three sides (left, bottom, and right) representing an envelope wall in a building and subjected to a standardized blast load. The top edge of the wall is assumed unconstrained due to an imperfect connection (often an inter-layer material is used to prevent damage in the in-fill wall). A comparison with a standard elastic-plastic heterogeneous 3D analysis conducted with a commercial FE code is also provided for a preliminary verification of the procedure at a structural level. The good agreement found and the very limited computational effort required for the simulations conducted with the presented model indicate that the proposed simple tool can be used by practitioners for the safety assessment of out-of-plane loaded masonry panels subjected to blast loading. An exhaustive parametric analysis is finally conducted with different wall thicknesses, joint tensile strengths, and dynamic pressures, corresponding to blast loads (in kilograms of TNT) ranging from small to large.
机译:提出了一种简单的弹塑性均质化模型,用于分析爆炸荷载作用下的围墙砌体墙。该模型的特点是具有一些材料参数,价格低廉且非常稳定,并且可以对承受爆炸压力的整个墙进行完整的参数研究。为了考虑沿垂直和水平轴的实际砖砌强度,通过兼容的均质极限分析方法获得了砌体面外各向异性破坏面。在该模型中,使用2D Kirchhoff-Love板识别了3D刚性无限坚固的砖块,该砖块通过减少到界面的接头连接。对于遵守相关流动规则的接头,考虑具有拉力截止和线性化椭圆形压缩帽的Mohr-Coulomb破坏准则。以此方式,借助于线性编程问题获得了宏观的砌体破坏面,该宏观的砌体破坏面是宏观的弯曲,扭矩和平面内力的函数,在线性编程中,耗散的内部功率最小。在结构级别使用具有位移场的线性插值和每个元素内的恒定矩的三角Kirchhoff-Love元素。在此框架中,获得了一个简单的二次规划问题来分析承受爆炸载荷的整个墙体。采用提出的多尺度策略来预测支撑在代表建筑物围护墙的三个侧面(左,下和右)上的矩形墙的行为,并承受标准化的爆炸荷载。假定壁壁的顶部边缘由于连接不良而不受约束(通常使用夹层材料来防止填充壁损坏)。还提供了与使用商业FE代码进行的标准弹塑性异质3D分析的比较,以在结构级别对程序进行初步验证。发现的良好协议以及使用该模型进行仿真所需的非常有限的计算工作量表明,从业人员可以使用所提出的简单工具对承受爆炸荷载的平面外荷载砌体面板进行安全评估。最后,对不同的壁厚,接头抗拉强度和动压力进行了详尽的参数分析,对应的爆炸载荷(以千克TNT计)从小到大。

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