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Self-Healing of Microcracks in Engineered Cementitious Composites (ECC) Under a Natural Environment

机译:自然环境下工程胶结复合材料(ECC)中微裂纹的自修复

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This paper builds on previous self-healing engineered cementitious composites (ECC) research by allowing ECC to heal outdoors, in the natural environment, under random and sometimes extreme environmental conditions. Development of an ECC material that can heal itself in the natural environment could lower infrastructure maintenance costs and allow for more sustainable development in the future by increasing service life and decreasing the amount of resources and energy needed for repairs. Determining to what extent current ECC materials self-heal in the natural environment is the first step in the development of an ECC that can completely heal itself when exposed to everyday environmental conditions. This study monitored outdoor ECC specimens for one year using resonant frequency (RF) and mechanical reloading to determine the rate and extent of self-healing in the natural environment. It was found that the level of RF, stiffness, and first cracking strength recovery increased as the duration of natural environment exposure increased. For specimens that underwent multiple damage cycles, it was found that the level of recovery was highly dependent on the average temperature and amount of precipitation between each damage event. However, RF, stiffness, and first cracking strength recovery data for specimens that underwent multiple loading cycles suggest that self-healing functionality can be maintained under multiple damage events.
机译:本文基于以前的自修复工程胶结复合材料(ECC)研究,它允许ECC在自然环境中的户外环境中,在随机甚至有时是极端的环境条件下进行修复。可以在自然环境中治愈的ECC材料的开发可以降低基础设施的维护成本,并通过延长使用寿命和减少维修所需的资源和能源的数量,在未来实现更可持续的发展。确定ECC材料在自然环境中自我修复的程度是开发ECC的第一步,当暴露于日常环境条件时,ECC可以完全自我修复。这项研究使用共振频率(RF)和机械加载对室外ECC样本进行了一年的监测,以确定自然环境中自我修复的速度和程度。发现随着自然环境暴露时间的延长,RF,刚度和第一抗裂强度的恢复水平增加。对于经历了多次破坏循环的标本,发现恢复水平高度依赖于每个破坏事件之间的平均温度和降水量。但是,经过多次加载循环的样品的RF,刚度和首次开裂强度恢复数据表明,在多种损坏事件下都可以保持自愈功能。

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