Electrical Disintegration of Reinforced Concrete: Experiment and Simulation

IF 1.8 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
R. A. Bakeev, A. S. Yudin, N. S. Kuznetsova, D. V. Zhgun, Yu. P. Stefanov
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Abstract

The paper reports on physical experiments on disintegration of reinforced concrete by the electric pulse method based on the Vorobiev effect. Concrete is fractured under the action of a compression wave propagating from the discharge channel between the electrode on the concrete surface and the reinforcement. Disintegration experiments are conducted on pebble concrete. It is shown that a single pulse results in separate cracks in the material on retention of its integrity. Disintegration of concrete and cavitation at the point of application of the electrode begin after the second or third pulse. Computer simulation is made for the action of an expanding discharge channel on reinforced concrete. A structural model of reinforced concrete is plotted, explicitly taking into account its main constituents, namely, cement, stone inclusions, and reinforcement. The inelastic behavior of cement is described within the modified Drucker–Prager–Nikolaevsky model with the nonassociated flow rule for quasi-brittle media. Cracking is simulated using the fracture criterion based on tensile stresses. The performed numerical simulation confirms the conclusions of the physical experiment: a single pulse causes the formation of separate cracks parallel to the free surface, and the network of horizontal, vertical and inclined cracks appears in the cement after 2–3 pulses, resulting in a cavity at the point of application of the electrode. Cavitation in reinforced concrete is governed by the presence of stone inclusions, whose boundaries serve as sites of redistribution of maximum tensile stresses and formation of vertical and inclined cracks, as well as of accumulation of irreversible strains and stresses retained in the cement after the first pulse.

Abstract Image

钢筋混凝土的电解体:实验与模拟
本文报道了基于沃罗别夫效应的钢筋混凝土电脉冲崩解物理实验。在混凝土表面电极与钢筋之间的放电通道传播的压缩波的作用下,混凝土发生断裂。对卵石混凝土进行了崩解试验。结果表明,单脉冲在保持材料完整性的前提下,会在材料中产生单独的裂纹。在第二次或第三次脉冲后,在电极的应用点开始混凝土的解体和空化。利用计算机模拟了膨胀泄流通道对钢筋混凝土的作用。绘制了钢筋混凝土的结构模型,明确考虑了其主要成分,即水泥,石材夹杂物和钢筋。水泥的非弹性行为用准脆性介质的非关联流动规则的改进Drucker-Prager-Nikolaevsky模型来描述。采用基于拉应力的断裂准则模拟裂纹。所进行的数值模拟证实了物理实验的结论:单脉冲使水泥中形成平行于自由表面的独立裂缝,2-3脉冲后水泥中出现水平、垂直和倾斜裂缝网络,导致电极施加点出现空腔。钢筋混凝土中的空化是由石包裹体的存在所控制的,石包裹体的边界是最大拉应力重新分布的地点,是垂直和倾斜裂缝的形成地点,也是第一次脉冲后水泥中保留的不可逆应变和应力的积累地点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physical Mesomechanics
Physical Mesomechanics Materials Science-General Materials Science
CiteScore
3.50
自引率
18.80%
发文量
48
期刊介绍: The journal provides an international medium for the publication of theoretical and experimental studies and reviews related in the physical mesomechanics and also solid-state physics, mechanics, materials science, geodynamics, non-destructive testing and in a large number of other fields where the physical mesomechanics may be used extensively. Papers dealing with the processing, characterization, structure and physical properties and computational aspects of the mesomechanics of heterogeneous media, fracture mesomechanics, physical mesomechanics of materials, mesomechanics applications for geodynamics and tectonics, mesomechanics of smart materials and materials for electronics, non-destructive testing are viewed as suitable for publication.
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