具有三重周期性最小表面结构的超高性能混凝土及其互穿相复合材料的各向异性和力学特性

Ba-Anh Le, B. Tran, Thai-Son Vu, Quoc-Bao Nguyen, Hoang-Quan Nguyen, Xavier Chateau
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摘要

本研究通过数值方法探讨了具有三重周期性最小表面(TPMS)的超高性能混凝土(UHPC)和超高性能混凝土-钢材互穿相复合材料(IPC)的各向异性、冲击相波传播、抗屈曲性和自然振动,包括片状和实心陀螺型、原始型、菱形和 I-WP。实验验证了数值模型在聚乳酸(PLA)基 TPMS 晶格和带有 TPMS 核心的聚乳酸水泥 IPC 的杨氏模量方面的准确性,发现 IPC 的最高百分比差异为 15%,晶格的最高百分比差异为 17%。结果表明,在其他晶格中,无论固体密度如何变化,具有片状 Gyroid 的 UHPC 材料对不同取向的极端各向异性反应最小,因此是建筑材料的理想候选材料。有趣的是,与基于 UHPC 的 TPMS 晶格相比,IPC 的各向异性要小得多,无论固体密度和 TPMS 拓扑结构如何变化,它几乎都表现出各向同性,因此可以自由选择 TPMS 类型来制造 IPC,而无需过多考虑各向异性。带有 TPMS 的 UHPC 和 IPC 梁的相位波和抗弯强度随 TPMS 固体密度的降低而非线性降低,但在固有振动频率的情况下几乎呈线性模式。研究发现,UHPC 材料和具有片状 Gyroid 晶格的 IPC 具有最低的相位波速,并表现出最小的波传播各向异性,这表明它是 UHPC 材料抑制外部冲击引起的破坏性能量的理想候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ANISOTROPY AND MECHANICAL CHARACTERISTICS OF ULTRA-HIGH PERFORMANCE CONCRETE AND ITS INTERPENETRATING PHASE COMPOSITE WITH TRIPLY PERIODIC MINIMAL SURFACE ARCHITECTURES
This work numerically explores the anisotropy, impact phase wave propagation, buckling resistance, and natural vibration of ultra-high performance concrete (UHPC) and UHPC-steel interpenetrating phase composite (IPC) with triply periodic minimal surfaces (TPMSs), including sheet and solid Gyroid, Primitive, Diamond, and I-WP. The experiment is conducted verifying the accuracy of the numerical model in terms of Young's modulus of polylactic acid (PLA)-based TPMS lattices and PLA-cement IPCs with TPMS cores, with the highest percent difference of 15% found for IPCs and 17% found for lattice. The results indicate that UHPC material with sheet Gyroid exhibits the least extreme anisotropy in response to the varying orientation among other lattices regardless of the change of solid density, making it the ideal candidate for construction materials. Interestingly, compared to UHPC-based TPMS lattice, IPCs possess a much smaller anisotropy and exhibit almost isotropy regardless the variation of solid density and TPMS topology, offering a free selection of TPMS type to fabricate IPCs without much care of anisotropy. The phase wave and buckling resistance of UHPC- and IPC-based beams with TPMSs nonlinearly decrease with a drop of TPMS solid density, but it is the almost linear pattern for the case of natural vibration frequency. UHPC material and IPC with sheet Gyroid lattice are found to possess the lowest phase wave velocity and exhibit the least anisotropy of wave propagation, showing it as an ideal candidate for UHPC material to suppress the destructive energy induced by the external impact.
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