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New insights into creep and creep recovery of hardened cement paste at micro scale

机译:微尺度蠕变和蠕变水泥浆蠕变回收的新见解

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Indentation technique has been a popular way to measure the micro creep of cementitious materials. However, several aspects concerning the measured indentation creep (e.g., recoverable or irrecoverable, the underlying mechanisms) are still unclear. This study investigated the micro creep and creep recovery of mature cement paste by indentation technique. Continuous stiffness measurement tests were first carried out to determine the indentation force required to measure the homogeneous properties of cement paste. Then the micro creep and creep recovery of cement paste were measured via microindentation tests that contain a holding stage at the maximum indentation force and a reholding stage incorporated into the unloading stage. It is found that both the recoverable creep and irrecoverable creep can be measured by the microindentation tests. The micro recoverable creep of cement paste that mainly evolves over the loading stage is about 30-40% of the total creep, and the logarithm of the micro creep recovery rate decreases bilinearly with respect to time, which are consistent with the observed creep recovery at macro scale. The long-term creep rate of cement paste appears independent of loading duration, holding duration, indentation force amplitude, and unloading duration of the microindentation tests, suggesting it is an intrinsic material parameter. The identification of recoverable and irrecoverable creep at micro scale can contribute to a better understanding of the creep mechanisms of cementitious materials. (C) 2020 Elsevier Ltd. All rights reserved.
机译:压痕技术是测量水泥材料的微蠕虫的流行方式。然而,关于测量的凹进蠕变的若干方面(例如,可回收或无法恢复,潜在的机制)仍然不明朗。本研究通过压痕技术研究了微蠕变和成熟水泥膏的蠕变回收。首先进行连续的刚度测量试验以确定测量水泥浆料均匀性质所需的压痕力。然后通过在最大压痕力下含有保持阶段的微观蠕变和蠕变回收水泥浆料的微蠕变和蠕变恢复,并将其包含在卸载阶段中的重固定阶段。发现可回收的蠕变和不可恢复的蠕变可以通过微观测试来测量。水泥浆料的微恢复蠕变,主要在加载阶段演变为总蠕变的30-40%,微蠕变恢复速率的对数相对于时间逐渐降低,这与观察到的蠕变恢复一致宏观规模。水泥浆料的长期蠕变速率出现独立于装载持续时间,保持持续时间,压痕力幅度和微观测试测试的卸载持续时间,表明它是内在材料参数。在微观尺度上识别可回收和无法恢复的蠕变可以更好地理解水泥材料的蠕变机制。 (c)2020 elestvier有限公司保留所有权利。

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