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首页> 外文期刊>Cement & concrete composites >Tensile strength of a calcium-aluminate cementitious composite reinforced with basalt textile in a high-temperature environment
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Tensile strength of a calcium-aluminate cementitious composite reinforced with basalt textile in a high-temperature environment

机译:高温环境下玄武岩纤维增强铝酸钙水泥基复合材料的拉伸强度

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The effect of elevated temperatures on basalt textile reinforced calcium aluminate cementitious composite is reported. After being exposed for 1 h at various constant temperature levels, samples were tested in hot as well as after cooling down at room temperature conditions (termed as residual tests). Targeted constant temperatures considered varied from 25 up to 400 degrees C, representing the range that affects the main dehydration of hydration products present in the matrix. The residual mechanical response of basalt fabric at similar temperature ranges was also measured. Thermogravimetry and X-ray diffraction analysis were used to study phase changes as a function of temperature. Scanning electron microscopy (SEM) was used to study damage processes in the fiber matrix interfaces. Results indicate that the tensile strength of composites in residual conditions is higher than that in hot conditions. This traced back the mechanism that the fabric-coating visco-elastic/plastic interface changes with temperature, which affects the textile-cementitious adhesion properties. When the composite was tested in hot conditions, a much more aggressive loss of the load-carrying capacity was observed. With increasing temperature, the hot tests, showed a significant reduction in tensile strength, elastic modulus and strain capacity. Ultimate direct tensile strength values obtained under hot condition were, on average, 50% lower than the residual ones. (C) 2016 Elsevier Ltd. All rights reserved.
机译:据报道,高温对玄武岩纺织增强铝酸钙水泥复合材料的影响。在各种恒定温度下暴露1小时后,在高温以及在室温条件下冷却后测试样品(称为残留测试)。所考虑的目标恒定温度从25摄氏度到400摄氏度不等,代表了影响基质中存在的水合产物主要脱水的范围。还测量了玄武岩织物在类似温度范围内的残余机械响应。使用热重分析和X射线衍射分析来研究相变随温度的变化。扫描电子显微镜(SEM)用于研究纤维基质界面中的损伤过程。结果表明,复合材料在残余条件下的拉伸强度高于高温条件下的拉伸强度。这可以追溯到织物涂层的粘弹性/塑料界面随温度变化而影响织物水泥粘结性能的机理。当在高温条件下对复合材料进行测试时,观察到更大的承载能力损失。随着温度的升高,热试验表明抗张强度,弹性模量和应变能力显着降低。在热条件下获得的极限直接拉伸强度值平均比残余值低50%。 (C)2016 Elsevier Ltd.保留所有权利。

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