Characterization of pore structure in cement-based materials using pressurization–depressurization cycling mercury intrusion porosimetry (PDC-MIP)

水银孔隙仪 压汞法 座舱增压 水泥 材料科学 复合材料 矿物学 多孔性 多孔介质 化学
作者
Jian Zhou,Guang Ye,Klaas van Breugel
出处
期刊:Cement and Concrete Research [Elsevier BV]
卷期号:40 (7): 1120-1128 被引量:244
标识
DOI:10.1016/j.cemconres.2010.02.011
摘要

Abstract Numerous mercury intrusion porosimetry (MIP) studies have been carried out to investigate the pore structure in cement-based materials. However, the standard MIP often results in an underestimation of large pores and an overestimation of small pores because of its intrinsic limitation. In this paper, an innovative MIP method is developed in order to provide a more accurate estimation of pore size distribution. The new MIP measurements are conducted following a unique mercury intrusion procedure, in which the applied pressure is increased from the minimum to the maximum by repeating pressurization–depressurization cycles instead of a continuous pressurization followed by a continuous depressurization. Accordingly, this method is called pressurization–depressurization cycling MIP (PDC-MIP). By following the PDC-MIP testing sequence, the volumes of the throat pores and the corresponding ink-bottle pores can be determined at every pore size. These values are used to calculate pore size distribution by using the newly developed analysis method. This paper presents an application of PDC-MIP on the investigation of the pore size distribution in cement-based materials. The experimental results of PDC-MIP are compared with those measured by standard MIP. The PDC-MIP is further validated with the other experimental methods and numerical tool, including nitrogen sorption, backscanning electron (BSE) image analysis, Wood's metal intrusion porosimetry (WMIP) and the numerical simulation by the cement hydration model HYMOSTRUC3D.
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