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相关概念视频

Adaptations that Reduce Water Loss01:57

Adaptations that Reduce Water Loss

Though evaporation from plant leaves drives transpiration, it also results in loss of water. Because water is critical for photosynthetic reactions and other cellular processes, evolutionary pressures on plants in different environments have driven the acquisition of adaptations that reduce water loss.
Drying Shrinkage01:21

Drying Shrinkage

When hardened concrete is exposed to air with a relative humidity of less than 100 percent, it begins to lose the free water within its capillaries. As this water evaporates, the water initially adsorbed onto the calcium silicate hydrates migrates towards these now empty spaces and eventually evaporates as well. Over time, as more water leaves, the volume of the concrete decreases, a phenomenon known as drying shrinkage.
A portion of this drying shrinkage can be reversed; if the concrete is...
Cold Weather Concreting01:27

Cold Weather Concreting

When freshly poured concrete is exposed to freezing temperatures before it has set, the water within the concrete can freeze. This expansion disrupts the setting process, delays chemical reactions necessary for hardening, and increases the volume of pores within the hardened concrete, which weakens its overall structure. If the concrete manages to reach an appreciable strength before it freezes, the damage can be somewhat mitigated.
To counteract the negative impacts of cold weather, ensuring...
Frost Action on Concrete01:27

Frost Action on Concrete

Concrete structures in cold climates, such as those along roadsides, can retain moisture. This moisture makes them susceptible to frost-related damage when temperatures fall below freezing. Adding moisture worsens the damage during temperature fluctuations, leading to repeated freezing and thawing. De-icing salts, spread over these structures to melt ice, add to the freeze-thaw cycle, and draw even more moisture into the concrete.
This freeze-thaw cycle primarily causes surface scaling, where...
Frost Resistant Concrete01:29

Frost Resistant Concrete

Concrete's susceptibility to frost damage during freeze-thaw cycles demands strategic measures to enhance its frost resistance. Employing techniques like air entrainment, adjusting the water-cement ratio, proper curing, and selecting appropriate aggregates are essential.
Introducing microscopic air bubbles into the concrete mix through air entrainment creates small voids that accommodate ice expansion, thereby reducing internal pressures and preventing cracking. The optimal amount of entrained...
Design Example: Managing Concrete Workability01:14

Design Example: Managing Concrete Workability

This example deals with managing the workability of concrete for a raft foundation project under hot weather conditions. Workability is crucial for ensuring the concrete is easy to place, compact, and finish. In this scenario, a slump test — a common method to measure the workability of fresh concrete — initially indicated low workability. This was attributed to the rapid water loss from the concrete mix, exacerbated by the high temperatures causing the course aggregates to heat up.
To address...

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相关实验视频

Updated: May 14, 2026

Preparation and High-temperature Anti-adhesion Behavior of a Slippery Surface on Stainless Steel
10:52

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脱冰性能演变,通过调节表面地形来增加疏水性.

Wei Weng1, Xiaoyang Zheng2, Mizuki Tenjimbayashi3

  • 1Research Center for Macromolecules and Biomaterials, National Institute for Materials Science (NIMS), Tsukuba, Japan.

Science and technology of advanced materials
|April 4, 2024
PubMed
概括

表面地形显著影响除冰性能. 微纹理分量决定了冰的粘附强度,这对于开发有效的抗结冰表面至关重要.

关键词:
超水性 超水性脱冰处理 脱冰处理冰的粘附性 冰的粘附性模拟冰块脱落的模拟界面强度分布的界面强度分布表面地形图表 表面地形图表

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Fabrication of Superhydrophobic Metal Surfaces for Anti-Icing Applications
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Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars
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科学领域:

  • 材料科学 材料科学 材料科学
  • 表面工程是什么?表面工程是什么?
  • 部落学 (tribology) 是一个学科.

背景情况:

  • 了解地表拓在解冰中的作用至关重要,但尚未完全阐明.
  • 现有的研究缺乏统一的参数来描述地形对冰粘附的影响.

研究的目的:

  • 为了研究表面地形和冰粘附强度之间的定量关系.
  • 确定控制除冰性能的关键地形参数.
  • 探索疏水性和除冰能力之间的相关性.

主要方法:

  • 在保持不变的表面化学性质的同时,制造四个有纹理的表面,具有不同的微纹理大小.
  • 在开发的表面上测量冰的粘附强度.
  • 用有限元法 (FEM) 模拟进行冰脱落分析.
  • 分析冰和表面之间的界面强度分布.

主要成果:

  • 冰的粘附强度与微纹理的面积分数成正比.
  • 局部粘合强化被认为是微纹理分数增强粘附的机制.
  • 关键的地形参数取决于界面强度分布.
  • 表面疏水性和除冰性能之间没有明确的相关性.

结论:

  • 表面地形,特别是微纹理分量,是去冰的决定性因素.
  • 界面强度分布决定了冰粘附的相关地形参数.
  • 疏水性和除冰性能由不同的地形因素决定,并没有直接关系.