混凝土中的离子运输受到不同干湿比率下的持续压缩应力
Wenqi Ma1, Renchi Zhang2, Xiang Li1
1School of Civil Engineering, Changde Vocational Technical College, Changde 415000, China.
Materials (Basel, Switzerland)
|September 27, 2025
概括
干湿时间比在压力应力下的混凝土中显著影响离子运输,特别是在沿海结构中. 了解这一点对于评估混凝土在具有挑战性的环境中的耐用性至关重要.
科学领域:
- 材料科学 材料科学 材料科学
- 土木工程 土木工程是指土木工程.
- 腐蚀科学 腐蚀科学
背景情况:
- 离子运输对于混凝土的耐用性至关重要,特别是在沿海环境中.
- 现有的研究往往忽略了干湿时间比对负载下化物透的影响.
- 沿海结构面临着定期的干湿周期,加速物质退化.
研究的目的:
- 研究压力负荷和干湿时间比对混凝土中离子传输的综合影响.
- 考虑到这些因素,开发一种可靠的化物扩散模型.
- 为混凝土结构的耐用性评估提供更强的理论支持.
主要方法:
- 在混凝土样本上进行加速化物离子透实验.
- 在不同的压力压力水平和干湿时间比下分析化物运输.
- 开发和验证化物扩散系数模型.
主要成果:
- 干湿时间比显著增强化物离子运输,特别是在高压力下.
- 无论应力如何,对流带深度为5毫米,干湿比为7:1,不论应力如何.
- 7:1的干湿比和0.5的压力强度应力水平与自然浸泡相比,化物度增加了756.4%.
结论:
- 干湿时间比是影响化物在压力负荷下透到混凝土中的关键因素.
- 开发的模型准确地预测了化物扩散,包括干湿周期和压力.
- 这些发现对于改善海洋环境中混凝土结构的耐用性设计和评估至关重要.
相关概念视频
Testing Water Quality
368
When the quality of water for concrete preparation is uncertain, its impact on the setting time of cement and compressive strength of mortar is assessed by comparison with de-ionized or distilled water benchmarks. American Society for Testing and Materials (ASTM) C1602 requires the setting times to be within 90 minutes of the control, British Standard (BS) 3146:1980 allows a 30-minute variance in the initial setting, while British Standards European Norm (BS EN) 1008 specifies initial setting...
368
Water Cement Ratio
1.1K
The water-cement ratio is pivotal in defining concrete's quality. This ratio, a balance between the weight of water and cement in the mix, shapes the concrete's strength, durability, and resistance to environmental factors. As identified by Abrams’ law, less water in the mix equates to stronger concrete. However, water is essential not only for the chemical process of hydration but also for the concrete's workability and compaction. While hydration chemically binds water and...
1.1K
Aggregate Cement Ratio
541
The Aggregate Cement ratio refers to the weight of aggregate divided by the weight of cement in a concrete mix. Altering this ratio has profound effects on the concrete's properties. This ratio plays a pivotal role in determining the strength, workability, and durability of concrete. When the Aggregate Cement ratio is higher, the mix is leaner, meaning it has less cement paste to lubricate the aggregate, potentially making the concrete less workable. Such mixes, known as lean, enhance the...
541
Alkali Aggregate Reaction in Concrete
472
The alkali-aggregate reaction in concrete involves natural siliceous minerals in aggregates reacting with alkaline hydroxides derived from cement alkalis. This reaction forms an alkali-silica gel that absorbs water, swells, and increases in volume, which is confined by the surrounding cement paste, creating internal pressures that crack and disrupt the concrete. The extent of expansion and damage can be partly attributed to the alkali-silica reaction's osmotic hydraulic pressure and the...
472
Relation Between Tensile Strength and Compressive Strength of Concrete
646
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...
646
Creep in Concrete
1.1K
Creep refers to the time-dependent increase in strain under a sustained load, excluding other time-dependent deformations associated with shrinkage, swelling, and thermal expansion in concrete. The primary mechanism behind creep involves the loss of physically adsorbed water from the calcium silicate hydrate within the hydrated cement paste. This process is further exacerbated by concrete's non-linear stress-strain relationship, microcrack development in the interfacial transition zone, and...
1.1K


