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Determination of initial degree of hydration for improvement of early-age properties of concrete using ultrasonic wave propagation

机译:超声波传播法测定初始水化度以改善混凝土的早期性能

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During the first few hours after mixing, the properties of concrete change between different types of material behaviour. Fresh concrete is during mixing a Bingham material, gradually attaining solid body properties with considerable compressive strength and stiffness. The development of mechanical properties can be described by the degree of hydration. For the prediction of mechanical properties of early-age concrete as well as for the prediction of stresses caused by differences of temperature and autogenous shrinkage, it is essential to know the initial degree of hydration, from which on the development of strength and stiffness can be assumes to begin. This paper deals with the determination of the end of the dormant phase by using ultrasonic pulse velocity techniques. Using compression wave and shear wave transducers the hardening of concrete is observed under adiabatic curing conditions. From the development of dynamic Young's modulus and Poisson's ratio a model of the initial degree of hydration is derived to improve existing models of the development of tensile strength and modulus of elasticity for very early-age concrete. A procedure to determinate an upper and lower bound for the end of setting time is presented. Typical results are presented for different concrete compositions, especially for high strength concrete.
机译:在混合后的最初几个小时内,混凝土的性能会在不同类型的材料性能之间发生变化。新鲜混凝土是在混合宾汉姆材料的过程中逐渐获得具有显着抗压强度和刚度的固体特性。机械性能的发展可以用水合度来描述。为了预测早期混凝土的机械性能以及预测由温度和自发收缩引起的应力,必须知道初始水化程度,由此可以确定强度和刚度。假设开始。本文利用超声脉冲速度技术来确定休眠阶段的终点。使用压缩波和剪切波换能器,可在绝热固化条件下观察到混凝土的硬化。从动态杨氏模量和泊松比的发展中,得出了初始水合度的模型,以改进现有的发展非常早期混凝土的抗张强度和弹性模量的模型。提出了确定凝固时间结束时的上限和下限的过程。给出了针对不同混凝土组成(尤其是高强度混凝土)的典型结果。

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