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秸秆混凝土组合楼板弯曲性能的数值模拟分析

Numerical Simulation Analysis of the Bending Performance of Straw-Concrete Combined Floor Slabs.

作者信息

Li Shuoran, Chen Yufei, Wang Haibiao, Liu Jida, Li Lin, Liu Jingyi

机构信息

School of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150040, China.

出版信息

Materials (Basel). 2025 Feb 27;18(5):1070. doi: 10.3390/ma18051070.

Abstract

Straw-concrete combined floor slabs consist of straw boards, shear-resistant connectors, and concrete slabs. These slabs offer various advantages over traditional reinforced concrete slabs due to the straw boards' properties of excellent insulation and sound absorption. Research using ABAQUS software created 15 composite floor models to study the impact of connection methods, bond strength, connector spacing, and thickness of straw and concrete on the flexural performance. Results indicated that the composite floor slab with adhesive bonding had a 7.34% and 17.34% higher load-carrying capacity than the bolt-connected and self-tapping screw-connected composite floor slabs, respectively. Increasing bond strength from 40 MPa to 60 MPa improved the load-carrying capacity of self-tapping nail-connected slabs by 80.84%. Connector spacing negatively correlated with slab capacity, while increasing the thickness of straw boards or concrete slabs enhanced the ultimate load-carrying capacity, with the latter having a more significant effect. Midspan deflection and flexural capacity were calculated using the converted cross-section method and static calculation formulas, with theoretical and simulated values showing good agreement, offering guidance for engineering applications.

摘要

秸秆混凝土组合楼板由秸秆板、抗剪连接件和混凝土板组成。由于秸秆板具有优异的保温和吸音性能,这些楼板相对于传统钢筋混凝土楼板具有多种优势。使用ABAQUS软件进行的研究创建了15个组合楼板模型,以研究连接方式、粘结强度、连接件间距以及秸秆和混凝土厚度对弯曲性能的影响。结果表明,粘结连接的组合楼板的承载能力分别比螺栓连接和自攻螺钉连接的组合楼板高7.34%和17.34%。将粘结强度从40MPa提高到60MPa,自攻钉连接楼板的承载能力提高了80.84%。连接件间距与楼板承载能力呈负相关,而增加秸秆板或混凝土板的厚度可提高极限承载能力,后者的影响更为显著。采用换算截面法和静力计算公式计算跨中挠度和抗弯能力,理论值与模拟值吻合良好,为工程应用提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d02/11901182/8c925d9de7bf/materials-18-01070-g001.jpg

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