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相关概念视频

Testing Water Quality01:14

Testing Water Quality

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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...
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The hydration of cement takes place within the water-filled capillary pores. However, environmental elements can disrupt this process by evaporating water from the concrete surfaces. Sealed concrete with a water-cement ratio below 0.5 experiences self-desiccation, leading to water loss. The water loss in concrete is mitigated by curing. This technique involves keeping the concrete saturated to maintain the necessary temperature and moisture conditions, to optimally fill the spaces in the cement...
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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.
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Concreting at elevated temperatures accelerates the hydration process, leading to quicker setting but potentially reducing the long-term strength of the concrete structure. Additionally, low air humidity fosters rapid moisture loss from the concrete, resulting in reduced workability, pronounced plastic shrinkage, and a higher likelihood of crazing.
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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.
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在水凝中进行水密封,以达到极端温度的耐受性

Xiaochen Zhang1, Dong Li1, Xuxu Yang2,3,4,5

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概括

研究人员开发了"水凝"以在极端温度下保持稳定. 这种方法使聚合物网络中的水停滞不前,防止脆性,并保持从-115°C到143°C的灵活性.

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科学领域:

  • 材料科学
  • 聚合物化学
  • 生物技术

背景情况:

  • 水凝是水膨胀的聚合物网络,容易因水蒸发或结而变硬和脆.
  • 温度波动对水凝的稳定性和应用构成重大挑战.

研究的目的:

  • 引入一种新的策略,称为"水凝",用于在广泛的温度范围内增强水凝的稳定性.
  • 在极端热条件下证明水凝保护的有效性.

主要方法:

  • 使用硫酸在水凝聚合物网络中固定水分子以创建强大的连接.
  • 整合一个牺牲网络来保护主要的聚合物网络免受结构崩.
  • 使用酸盐多烯胺双网水凝作为模型系统.

主要成果:

  • 水凝的软度和伸展性得以保持.
  • 在极端温度范围 - - 115°C至143°C内,水凝表现出了显著的稳定性.
  • 这种方法在各种水凝和溶液中被证明有效.

结论:

  • 液压锁提供了一个强大的解决方案,以防止水凝因温度而降解.
  • 这种技术对于在极端温度下保存和观察材料和生物标本具有广泛的意义.
  • 该战略显著扩大了水凝应用的操作温度窗口.