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Thermal damage evolution of granite under slow and high-speed heating conditions

机译:慢速和高速加热条件下花岗岩的热损伤演化

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摘要

A continuum based numerical approach is used to investigate the effects of slow and high-speed heating, including the ISO 834 fire curve, on thermal cracking of granite. During slow heating, thermal stress variations are mainly controlled by the heterogeneous thermal expansion of mineral grains. As a result, the stress concentrations are more isolated and dispersedly distributed throughout the sample. High-speed heating produces large thermal gradients especially at the outer surface of the samples, inducing big thermal strain increments and subsequent high compressive stresses. Larger cracks are formed due to a wider range of concentrated tensile stresses inside the sample during high-speed heating. At low temperatures, slow heating has a stronger influcence on micro-cracking. Due to larger cracks and newly induced micro-cracks, high-speed heating has an increasingly important impact on crack pattern in granite at high temperatures. Although shear failures show a significant increase at 800 degrees C, tensile cracks are still the majority of total failures in both, slow and high-speed heating scenarios. The final crack pattern in granite under fire conditions is a result of different cracking behaviors caused by various heating rates. This consequently affects strength and final failure pattern of granite.
机译:基于连续的数值方法用于研究缓慢和高速加热的影响,包括ISO 834防火曲线,在花岗岩的热破裂上。在缓慢加热期间,热应力变化主要由矿物质的异质热膨胀来控制。结果,应力浓度更多分离并分散在整个样品中分散。高速加热产生大的热梯度,特别是在样品的外表面上,诱导大的热应变增量和随后的高压缩应力。由于在高速加热期间样品内部更宽的浓缩拉伸应力,形成较大的裂缝。在低温下,缓慢加热对微裂纹具有较强的发炎。由于较大的裂缝和新诱导的微裂纹,高速加热对高温下花岗岩中的裂纹图案产生了越来越重要的影响。虽然剪切故障显示出800摄氏度的显着增加,但拉伸裂缝仍然是总体故障的大部分,缓慢和高速加热场景。在火灾条件下花岗岩的最终裂纹图案是由各种加热速率引起的不同裂缝行为的结果。因此,这影响花岗岩的强度和最终失效模式。

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