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Fire resistance of ultra-high performance strain hardening cementitious composite: Residual mechanical properties and spalling resistance

机译:超高性能应变硬化水泥复合材料的耐火性:剩余机械性能和剥落抗性

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Ultra high performance strain hardening cementitious composites (UHP-SHCC) is a special type of cement-based composite material with outstanding mechanical and protective performance at room temperature. But its fire performance is unknown and there is a lack of research in this aspect. This study presents an experimental program to study fire resistance of UHP-SHCC under two aspects, viz. high-temperature explosive spalling resistance and residual mechanical performance after a fire. Both compressive strength and tensile strength of UHP-SHCC were found to deteriorate with increasing exposure temperature. Tensile strain-hardening feature of UHP-SHCC would be lost at 200 degrees C and above. It was found that PE fibers are found not effective in mitigating explosive spalling, although they start to melt at 144 degrees C. FE-SEM (Field Emission Scanning Electron Microscopy) and EDX (Energy Dispersive X-ray) techniques were used to study the state of fiber, fiber/matrix interaction, and microcracks development. Microscopic study found that melted PE fibers were still present in the cementitious matrix, and the melting did not introduce more microcracks. Furthermore, it was difficult for melted PE fibers to diffuse through the matrix, thus providing the reason that PE fibers did not mitigate explosive spalling in UHPSHCC. (C) 2018 Elsevier Ltd. All rights reserved.
机译:超高性能应变硬化水泥复合材料(UHP-SHCC)是一种特殊类型的水泥基复合材料,在室温下具有出色的机械和保护性能。但它的火力表现未知,在这方面缺乏研究。本研究提出了一种实验计划,用于研究UHP-SHCC下的两个方面,VIZ的耐火性。火灾后的高温爆炸性剥落耐久性和剩余机械性能。发现UHP-SHCC的抗压强度和拉伸强度随着曝光温度的增加而劣化。 UHP-SHCC的拉伸应变硬化特征将在200摄氏度和更高的上方丢失。发现PE纤维未在减轻爆炸剥落中没有有效,尽管它们在144℃下开始熔化Fe-SEM(场发射扫描电子显微镜)和EDX(能量分散X射线)技术来研究光纤状态,纤维/矩阵相互作用和微裂纹开发。微观研究发现,熔化的PE纤维仍然存在于水泥基质中,并且熔化不会引入更多的微裂纹。此外,融化的PE纤维难以通过基质扩散,从而提供PE纤维在UHPSHCC中没有减轻爆炸性剥落的原因。 (c)2018年elestvier有限公司保留所有权利。

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