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Durability of ultra-high performance concrete in tension under cold weather conditions

机译:寒冷天气条件下超高性能混凝土的耐久性

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Freezing and thawing resistance is a key characteristic for concrete materials in cold weather conditions. In this study, the tensile properties and elastic modulus of ultra-high performance concrete (UHPC) under accelerated freeze-thaw cycles are characterized. Six series of UHPC specimens are experimentally tested with a well-designed direct tension test (DTT) method to capture complete tensile stress-strain responses. Both the dynamic and wave moduli of elasticity of UHPC are measured at specific cycles using the standard impact test and self designed "smart aggregate" technology, respectively. Long term freezing and thawing cyclic conditioning of UHPC samples results in reductions of elastic modulus, tensile strength, strain capacity, and energy absorption capacity. The tensile stress-strain curves of UHPC demonstrate distinct descending with increasing freeze-thaw cycles, particularly in the strain softening region. The energy-based approach is found to be more sensitive and effective than the elastic modulus-based approach when evaluating material deterioration over time and capturing accumulative material degradation subjected to rapidly-repeated freezing and thawing actions. As from the test results, UHPC is characterized as a very durable cementitious material, but it is not inherently unconquerable. Extended freezing and thawing actions can still lead to deterioration of the material, with respect to its elastic modulus, tensile strength, energy absorption capacity, etc. As demonstrated, the DTT method can be used to effectively characterize the long-term performance of UHPC in tension under cold weather conditions.
机译:冷冻和解冻抗性是寒冷天气条件下混凝土材料的关键特性。在该研究中,特征在于,在加速冻融循环下的超高性能混凝土(UHPC)的拉伸性能和弹性模量。通过精心设计的直接张力试验(DTT)方法实验测试了六系列的UHPC标本,以捕获完全拉伸应力 - 应变响应。使用标准冲击试验和自动设计的“智能聚合”技术,在特定循环中测量UHPC的动态和波模型的动态和波模型。长期冷冻和解冻UHPC样品的循环条件导致弹性模量,拉伸强度,应变能力和能量吸收能力的降低。 UHPC的拉伸应力 - 应变曲线表现出随着冻融循环的增加而下降,特别是在应变软化区中。发现基于能量的方法比基于时间的基于模量的方法更敏感而有效,当时评估材料劣化和捕获经受快速重复的冷冻和解冻动作的累积材料劣化。从测试结果中,UHPC的特征是非常耐用的水泥材料,但它并不是固有的不可判断。扩展冰冻和解冻动作仍然可以导致材料的劣化,相对于其弹性模量,拉伸强度,能量吸收容量等,如所示,可用于有效地表征UHPC的长期性能寒冷天气条件下的紧张局势。

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