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Monotonic and cyclic behavior of high-strength concrete with polypropylene fibers at high temperature

机译:聚丙烯纤维高强混凝土在高温下的单调和循环行为

摘要

Experimental studies were conducted to examine the monotonic and cyclic response of high-strength concrete (HSC) with polypropylene (PP) fibers at 2 kg/m3 (0.125 lb/ft3) at temperatures up to 700°C (1292°F). At temperatures below 500°C (932°F), HSC with PP fibers is a brittle material with a relatively steep descending branch in the stress-strain curve (that is, the postpeak part of the stress-strain curve). Compressive strength decreases rapidly when the temperature increases from room temperature to 100°C (212°F) but recovers when the temperature increases from 100 to 400°C (212 to 752°F). From 400 to 500°C (752 to 932°F), it drops sharply and there is a strength loss of 50% at 500°C (932°F). A further increase in temperature only leads to a slight reduction in the compressive strength. At 700°C (1292°F), the strength loss is approximately 55%. Peak strain increases considerably with increasing temperature. Based on the test data, a complete stress-strain relationship is proposed. Examination with a scanning electron microscope shows distinct changes in the morphology of concrete, caused by exposure to elevated temperatures. Cyclic stress strain envelopes at 500 and 700°C (932 and 1292°F) match the stress-strain relationship of monotonic loading. In particular, the unloading plastic strain ratio varies linearly with the unloaded strain ratio and progresses at a faster rate as compared with that obtained at room temperature. This indicates that the variation of the unloading strain ratio is sensitive to the change in temperature, particularly at high temperature.
机译:进行了实验研究,以检验在700℃(1292°F)的温度下,聚丙烯(PP)纤维以2 kg / m3(0.125 lb / ft3)的高强度混凝土(HSC)的单调和循环响应。在低于500°C(932°F)的温度下,带有PP纤维的HSC是一种脆性材料,其应力-应变曲线(即应力-应变曲线的峰值后部分)中具有相对陡峭的下降分支。当温度从室温升高到100°C(212°F)时,抗压强度迅速降低,但是当温度从100升高到400°C(212到752°F)时,抗压强度会恢复。从400到500°C(752到932°F),它会急剧下降,在500°C(932°F)时强度损失为50%。温度的进一步升高仅导致抗压强度的轻微降低。在700°C(1292°F)时,强度损失约为55%。峰值应变随着温度的升高而显着增加。根据测试数据,提出了一个完整的应力-应变关系。用扫描电子显微镜检查表明,暴露于高温会导致混凝土形态发生明显变化。 500和700°C(932和1292°F)下的循环应力应变包络线与单调加载的应力应变关系相匹配。特别地,卸载塑性应变比与卸载应变比线性变化,并且与在室温下获得的速度相比,以更快的速度进行。这表明卸载应变比的变化对温度的变化敏感,特别是在高温下。

著录项

  • 作者

    Lam ESS; Wu B; Liu Q; Ho IFY;

  • 作者单位
  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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