环境固化偏高岭土稳定压土砖墙水泥土砂浆接缝抗弯性能研究

IF 1.8 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Edmond Didier Medongou Tejiogho, Christopher Kanali, François Ngapgue, Isaac Fundi Sanewu
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引用次数: 0

摘要

本研究研究了偏高岭土稳定压缩土砖(CEB)墙的抗弯性能,重点研究了它们在容易受到侧向荷载的地区作为可持续材料的潜力。虽然偏高岭土稳定的ceb为填充应用提供了足够的抗压强度,但墙壁的弯曲强度对于抵抗侧向力至关重要。ceb和迫击炮之间的粘结在这种强度中起着关键作用。该研究旨在通过确定合适的水泥土砂浆混合物和偏高岭土(MK)含量来优化这种粘结。稳定水平表示为CEB_MKX,偏高岭土替代百分比(X)范围为0% to 19%, in increments of 2%. Five CEB samples for each metakaolin content were tested for physical, mechanical, and thermal properties according to WD-ARS 1333 Edition, 2018. The optimum metakaolin content was found to be 11%, with the best cement-soil mortar mix at a ratio of 1:0.75:5.25, based on 28-day compressive strength tests in accordance with BS EN 998–2. Walls made with metakaolin-stabilized CEBs (Characteristic flexural strength, f xk $$ {f}_{xk} $$  = 0.43 ± 0.02 MPa) showed a 79.17% improvement in flexural strength (under four-point loading of five samples) compared to unstabilized bricks walls ( f xk $$ {f}_{xk} $$  = 0.24 ± 0.01 MPa), meeting and exceeding the standards set by British 5628, 2005 for lateral load resistance. Strain gauges and Linear Displacement Transducers were used to measure strain and deflection at the mid-height of the walls during testing. This research supports the development of design guidelines for eco-friendly stabilized earth bricks, promoting sustainable building solutions.
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Flexural Performance of Ambient-Cured Metakaolin-Stabilized Compressed Earth Brick Walls With Cement-Soil Mortar Joints

Flexural Performance of Ambient-Cured Metakaolin-Stabilized Compressed Earth Brick Walls With Cement-Soil Mortar Joints

This study investigates the flexural performance of metakaolin-stabilized compressed earth brick (CEB) walls with cement-soil mortar joints, focusing on their potential as sustainable materials in regions prone to lateral loads. While metakaolin-stabilized CEBs offer sufficient compressive strength for infill applications, the flexural strength of the walls is critical for resisting lateral forces. The bond between the CEBs and the mortar plays a key role in this strength. The research aimed to optimize this bond by determining the appropriate cement-soil mortar mix and metakaolin (MK) content for stabilization. Stabilization levels were represented as CEB_MKX, with metakaolin replacement percentages (X) ranging from 0% to 19%, in increments of 2%. Five CEB samples for each metakaolin content were tested for physical, mechanical, and thermal properties according to WD-ARS 1333 Edition, 2018. The optimum metakaolin content was found to be 11%, with the best cement-soil mortar mix at a ratio of 1:0.75:5.25, based on 28-day compressive strength tests in accordance with BS EN 998–2. Walls made with metakaolin-stabilized CEBs (Characteristic flexural strength, f xk $$ {f}_{xk} $$  = 0.43 ± 0.02 MPa) showed a 79.17% improvement in flexural strength (under four-point loading of five samples) compared to unstabilized bricks walls ( f xk $$ {f}_{xk} $$  = 0.24 ± 0.01 MPa), meeting and exceeding the standards set by British 5628, 2005 for lateral load resistance. Strain gauges and Linear Displacement Transducers were used to measure strain and deflection at the mid-height of the walls during testing. This research supports the development of design guidelines for eco-friendly stabilized earth bricks, promoting sustainable building solutions.

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CiteScore
5.10
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