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Experimental Study on Mechanical Property and Pore Distribution of Limestone Specimens after Heat Treatment under Different Heating Conditions

机译:不同加热条件下热处理后石灰石标本力学性能和孔隙分布的试验研究

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The thermal effect of rocks not only depends on the temperature level but also may be influenced by the factors including heating environment, heating rate, and cooling method. In this study, approximate vacuum (V) and air circulation (A) heating condition are, respectively, applied on the limestone specimens in the whole heating process. Then, physical, mechanical, and nuclear magnetic resonance (NMR) tests were carried out to investigate the effect of heating conditions on the rock properties. The results show that heating conditions have significant effects on mechanical properties of limestone specimens (including peak strength, elasticity modulus, secant modulus, and crack initiation stress), which are due to the interference effect on the oxidation and thermal decomposition. It is worth noting that the significant temperature range of the heating condition is 450 ~ 750°C, during which the mechanical performances of heat-treated specimens under V condition obviously outperform those under A condition. Combining the NMR results and the microstructure images from scanning electron microscope (SEM) technology, the evolution of pore distribution was revealed. As temperature increases from room temperature to 900°C, porosity increases gradually. However, pore distribution changes from small and medium pores dominating to large pore dominating and then to medium pore dominating. For limestone specimens after high-temperature treatment above 450°C, mineral crystals may melt and reconsolidate, filling in some of the previously large pores generated by thermal decomposition.
机译:岩石的热效应不仅取决于温度水平,而且可能受到加热环境,加热速率和冷却方法的因素的影响。在该研究中,近似真空(V)和空气循环(A)加热条件施加在整个加热过程中的石灰石标本上。然后,进行了物理,机械和核磁共振(NMR)测试,以研究加热条件对岩石性能的影响。结果表明,加热条件对石灰石试样的力学性能(包括峰强度,弹性模量,所述裂纹引发应力)具有显着影响,这是由于对氧化和热分解的干扰作用。值得注意的是,加热条件的显着温度范围为450〜750°C,在此期间,在V条件下的热处理样品的机械性能明显优于条件下的。将NMR结果和微观结构图像与扫描电子显微镜(SEM)技术相结合,揭示了孔隙分布的演变。随着温度从室温增加到900℃,孔隙率逐渐增加。然而,孔隙分布从占大型孔隙的中小孔隙中的孔隙分布变化,然后向中孔占据主导地位。对于高温处理后450℃以上的石灰石试样,矿物晶体可以熔化并重新渗透,填充通过热分解产生的一些先前大的孔。

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