材料科学
灰浆
复合材料
断裂(地质)
断裂韧性
熔渣(焊接)
延展性(地球科学)
断裂力学
脆性
弯曲
扩展有限元法
硅酸盐水泥
水泥
有限元法
结构工程
蠕动
工程类
作者
Sumeru Nayak,Ahmet B. Kizilkanat,Narayanan Neithalath,Sumanta Das
标识
DOI:10.1061/(asce)mt.1943-5533.0002673
摘要
This paper presents fracture response of alkali-activated slag (AAS) mortars with up to 30% (by volume) of slag being replaced by waste iron powder which contains a significant fraction of elongated particles. The elongated iron particles act as micro-reinforcement and improve the crack resistance of AAS mortars by increasing the area of fracture process zone (FPZ). Increased area of FPZ signifies increased energy-dissipation which is reflected in the form of significant increase in the crack growth resistance as determined from R-curves. Fracture response of notched AAS mortar beams under three-point bending is simulated using extended finite element method (XFEM) to develop a tool for direct determination of fracture characteristics such as crack extension and fracture toughness in particulate-reinforced AAS mortars. Fracture response simulated using the XFEM based framework correlates well with experimental observations. The comprehensive fracture studies reported here provide an economical and sustainable means towards improving the ductility of AAS systems which are generally more brittle than their conventional ordinary portland cement counterparts.
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