关于超高性能混凝土-普通混凝土复合板的柔性性能研究
Zizhou Sun1, Xianjing Li2, Chao Liu1
1College of Civil Engineering, Tongji University, Shanghai 200092, China.
Materials (Basel, Switzerland)
|September 28, 2024
概括
超高性能混凝土-普通混凝土 (UHPC-NC) 复合板显示出极好的曲性能和在桥梁中具有很高的承载能力. 增加UHPC厚度和钢筋比率可以显著提高结构完整性和承载能力.
科学领域:
- 土木工程 土木工程是指土木工程.
- 材料科学 材料科学 材料科学
背景情况:
- 超高性能混凝土 (UHPC) 在桥梁建设中越来越多地用于用普通混凝土 (NC) 创建复合结构.
- UHPC-NC复合结构旨在提高桥梁路面层的承载能力.
研究的目的:
- 为了研究 UHPC-NC 复合板的柔性性能,在压缩区内使用 UHPC.
- 评估这些复合结构的协同行为,故障模式和承载能力.
主要方法:
- 对UHPC-NC复合板进行实验测试.
- 数字模拟以建模结构行为.
- 理论分析,以开发柔能力的预测公式.
主要成果:
- 刻的UHPC-NC接口表现出良好的粘合,防止滑动,并确保负载下协同应力.
- 复合板表现出曲故障,表明良好的合作性能和具有高承载能力的独特故障模式.
- 增加UHPC厚度提高了曲能力高达15%;增加钢筋比率提高了它高达181%.
结论:
- UHPC-NC复合板为桥梁应用提供卓越的曲性能和高承载能力.
- 开发的公式准确地预测了这些复合板的柔性能力,与实验数据有很好的一致性.
相关概念视频
Behavior of Concrete Under Compressive Load
149
Concrete exhibits specific behaviors under different compressive loads. Understanding this is crucial for understanding its structural integrity. When concrete undergoes uniaxial compression, it tends to develop cracks that run parallel to the direction of the force. These parallel cracks stem from localized tensile stresses that occur perpendicular to the compression direction. Additionally, angled cracks may appear due to the formation of shear planes.
As the concrete specimen fractures under...
As the concrete specimen fractures under...
149
Fiber Reinforced Concrete
71
Fiber-reinforced concrete significantly enhances the structural and nonstructural properties of traditional concrete by incorporating fibers like steel, glass, and polymers. These fibers, varying from natural ones such as sisal and cellulose to manufactured ones like polypropylene and Kevlar, are mixed into hydraulic cement with aggregates. Steel fibers, often preferred for their robustness, contribute to improved ductility, toughness, and post-cracking performance. The concrete is classified...
71
Abrasion Resistance of Concrete
107
Abrasion resistance is an essential characteristic of concrete that determines its durability and longevity under various wear conditions. Concrete surfaces are vulnerable to different types of abrasion. For instance, surfaces may wear down due to the constant movement of vehicles or be eroded by solids carried in water, as seen in concrete canal linings. Specific tests are conducted to measure the abrasion resistance of concrete.
One such test is the revolving disc test, where three plates...
One such test is the revolving disc test, where three plates...
107
Strength of Cement
127
Strength tests for cement are not performed directly on neat cement paste due to difficulty in obtaining consistent, reliable specimens. Instead, cement is typically tested in the form of cement-sand mortar.
For compressive strength tests, ASTM C 109-05 standards prescribe a cement-sand mix ratio of 1:2.75 and a water/cement ratio of 0.485 for making 2-inch cubes. These cubes are mixed, cast, and cured in saturated lime water at 23°C until testing. Flexural strength testing, outlined in...
For compressive strength tests, ASTM C 109-05 standards prescribe a cement-sand mix ratio of 1:2.75 and a water/cement ratio of 0.485 for making 2-inch cubes. These cubes are mixed, cast, and cured in saturated lime water at 23°C until testing. Flexural strength testing, outlined in...
127
Fatigue Strength of Concrete
171
Fatigue, in the context of materials science and engineering, refers to the weakening or failure of a material caused by repeatedly applied loads, even if these loads are below the strength limit of the material. Fatigue strength in concrete is a critical property that influences its durability and longevity. Concrete can fail in two ways due to fatigue. Static fatigue or creep rupture occurs under a constant load or one that increases slowly. The other failure mode is due to cyclical or...
171
Relation Between Tensile Strength and Compressive Strength of Concrete
177
Concrete is a fundamental building material, and understanding its strengths is crucial for construction projects. The relationship between its tensile and compressive strengths is intricate, showing that while these strengths are related, they do not increase at the same rate. Tensile strength's growth is slower and is affected by various factors such as the methods used for testing, the size and shape of the specimen, the texture of the aggregate used, and the moisture content of the...
177


