Mechanical properties and failure behavior of additively manufactured Al2O3 lattice structures infiltrated with phenol-formaldehyde resin

IF 5.1 2区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Ceramics International Pub Date : 2024-07-04 DOI:10.1016/j.ceramint.2024.07.038
Ke Zhong, Zhiguo Wang, Jin Cui, Xuehua Yu, Zhangjing Yu, Yichao Wang, Zhenfeng He, Yuhui Zhao, Jibin Zhao
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Abstract

The lightweight design and load-bearing capacity of underwater vehicles remain perennial focal points. Ceramic lattice structures (CLSs) offer significant weight reduction while maximizing structural strength; however, their inherent brittleness poses a limitation. To optimize the performance of CLSs for underwater vehicle applications, a biomimetic Al2O3/phenol-formaldehyde (PF) resin composite structure (APCS) was proposed and fabricated by infiltrating additive-manufactured Al2O3 lattice structures (ALSs) with PF. Comprehensive assessments of the quasi-static mechanical properties were conducted using both experimental and simulation methods. The specific compressive strength and specific energy absorption of the APCSs under quasi-static compressive loading exhibited remarkable improvements, with the maximum values achieved from the body-centered cubic (BCC)/PF structure increasing by ∼15.23 and ∼307.93 times, respectively. In contrast to ALSs, the failure process of APCSs was gradual, with the confining pressure introduced by the PF promoting transverse crack propagation and layer-by-layer failure, thereby strengthening the ceramic lattice. Toughing mechanisms (i.e., crack arrest, crack deflection, and branching) were also observed in the APCSs. Furthermore, the simulation results aligned well with the experimental results, providing an in-depth analysis of internal damage and crack propagation. The improvements introduced by the composite structure in this study provide a reliable approach for obtaining lightweight and strong materials, thereby accelerating the application of ceramic-based materials in underwater vehicles.

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渗入苯酚-甲醛树脂的添加剂制造 Al2O3 晶格结构的力学性能和失效行为
水下航行器的轻质设计和承载能力仍是长期关注的焦点。陶瓷晶格结构(CLS)可显著减轻重量,同时最大限度地提高结构强度;然而,其固有的脆性却带来了限制。为了优化 CLS 在水下航行器应用中的性能,我们提出了一种仿生物 Al2O3/苯酚-甲醛(PF)树脂复合结构(APCS),并通过将添加剂制造的 Al2O3 晶格结构(ALS)与 PF 相渗透来制造这种结构。实验和模拟方法对准静态力学性能进行了全面评估。在准静态抗压负载下,APCSs 的比抗压强度和比能量吸收均有显著提高,其中体心立方(BCC)/PF 结构的最大值分别提高了 ∼15.23 倍和∼307.93 倍。与 ALS 相比,APCS 的破坏过程是渐进的,PF 带来的约束压力促进了横向裂纹扩展和逐层破坏,从而强化了陶瓷晶格。在 APCS 中还观察到了韧性机制(即裂纹停止、裂纹偏转和分支)。此外,模拟结果与实验结果非常吻合,为深入分析内部损伤和裂纹扩展提供了依据。本研究中复合结构的改进为获得轻质高强度材料提供了一种可靠的方法,从而加快了陶瓷基材料在水下航行器中的应用。
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来源期刊
Ceramics International
Ceramics International 工程技术-材料科学:硅酸盐
CiteScore
9.40
自引率
15.40%
发文量
4558
审稿时长
25 days
期刊介绍: Ceramics International covers the science of advanced ceramic materials. The journal encourages contributions that demonstrate how an understanding of the basic chemical and physical phenomena may direct materials design and stimulate ideas for new or improved processing techniques, in order to obtain materials with desired structural features and properties. Ceramics International covers oxide and non-oxide ceramics, functional glasses, glass ceramics, amorphous inorganic non-metallic materials (and their combinations with metal and organic materials), in the form of particulates, dense or porous bodies, thin/thick films and laminated, graded and composite structures. Process related topics such as ceramic-ceramic joints or joining ceramics with dissimilar materials, as well as surface finishing and conditioning are also covered. Besides traditional processing techniques, manufacturing routes of interest include innovative procedures benefiting from externally applied stresses, electromagnetic fields and energetic beams, as well as top-down and self-assembly nanotechnology approaches. In addition, the journal welcomes submissions on bio-inspired and bio-enabled materials designs, experimentally validated multi scale modelling and simulation for materials design, and the use of the most advanced chemical and physical characterization techniques of structure, properties and behaviour. Technologically relevant low-dimensional systems are a particular focus of Ceramics International. These include 0, 1 and 2-D nanomaterials (also covering CNTs, graphene and related materials, and diamond-like carbons), their nanocomposites, as well as nano-hybrids and hierarchical multifunctional nanostructures that might integrate molecular, biological and electronic components.
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