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二元矿物掺合料改性混凝土的动态压缩行为及断裂机理

Dynamic Compressive Behavior and Fracture Mechanisms of Binary Mineral Admixture-Modified Concrete.

作者信息

Bu Jianqing, Liu Qin, Zhang Longwei, Li Shujie, Zhang Liping

机构信息

Key Laboratory of Ministry of Education of Roads and Railway Engineering Safety Control, Shijiazhuang Tiedao University, Shijiazhuang 050043, China.

School of Civil Engineering, Shijiazhuang Tiedao University, Shijiazhuang 050043, China.

出版信息

Materials (Basel). 2025 Jun 18;18(12):2883. doi: 10.3390/ma18122883.

Abstract

Fly ash and slag powder, as two of the most widely utilized industrial solid waste-based mineral admixtures, have demonstrated through extensive validation that their combined incorporation technology effectively enhances the mechanical properties and microstructural characteristics of concrete. Systematic investigations remain imperative regarding material response mechanisms under dynamic loading conditions. This study conducted microstructural analysis, static compression tests, and dynamic Split Hopkinson Pressure Bar (SHPB) impact compression tests on concrete specimens, complemented by dynamic impact simulations employing an established three-dimensional mesoscale concrete aggregate model. Through integrated analysis of macroscopic mechanical test results, mesoscale numerical simulations, and microstructural characterization data, the research systematically elucidated the influence mechanisms of different mineral admixture combinations on concrete's dynamic mechanical behavior, energy dissipation characteristics, and fracture mechanisms. The results showed that all specimens exhibited strain rate enhancement characteristics as the strain rate increased. As the admixture approach transitioned from non-admixture to single admixture and subsequently to binary admixture, the dynamic strength, elastic modulus, and DIF of concrete increased progressively. Both the energy dissipation capacity and its proportion relative to total energy absorption showed continuous enhancement. The simulated stress-strain curves, failure modes, and fracture processes show good agreement with experimental results, this effectively verifies both the scientific validity of the mesoscale concrete model's multiscale modeling approach and the reliability of the numerical simulations. Compared to FHC1, FMHC1's mesoscale structure can more effectively convert externally applied energy into stored internal energy, thereby achieving superior dynamic compressive energy dissipation capacity.

摘要

粉煤灰和矿渣粉作为两种应用最为广泛的工业固体废弃物基矿物掺合料,大量验证表明其复合掺入技术能有效提升混凝土的力学性能和微观结构特性。对于动态荷载作用下材料的响应机制,仍需进行系统研究。本研究对混凝土试件进行微观结构分析、静态压缩试验和动态霍普金森压杆(SHPB)冲击压缩试验,并采用已建立的三维细观混凝土骨料模型进行动态冲击模拟。通过对宏观力学试验结果、细观数值模拟和微观结构表征数据的综合分析,系统阐明了不同矿物掺合料组合对混凝土动态力学行为、能量耗散特性及断裂机制的影响机理。结果表明,随着应变率的增加,所有试件均呈现出应变率增强特性。随着掺合方式从无掺合料过渡到单掺合料,再到双掺合料,混凝土的动态强度、弹性模量和动力增强系数逐渐增大。能量耗散能力及其占总能量吸收的比例均持续增强。模拟得到的应力-应变曲线、破坏模式和断裂过程与试验结果吻合良好,有效验证了细观混凝土模型多尺度建模方法的科学性以及数值模拟的可靠性。与FHC1相比,FMHC1的细观结构能更有效地将外部施加的能量转化为储存的内能,从而具有更优异的动态抗压能量耗散能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67d3/12195568/9fbc6a71e91e/materials-18-02883-g001.jpg

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