山东大学学报 (工学版) ›› 2026, Vol. 56 ›› Issue (1): 72-79.doi: 10.6040/j.issn.1672-3961.0.2024.266
• 土木工程 • 上一篇
江大海1,刘亚珍2,齐迪1,吕斌1,宫海霞1,王楚怡2,张宏博2
JIANG Dahai1, LIU Yazhen2, QI Di1, LÜ Bin1, GONG Haixia1, WANG Chuyi2, ZHANG Hongbo2
摘要: 为揭示高速液压夯处治粉土地基的力学特性,通过模拟不同夯击能作用,开展压实粉土室内大三轴试验,确定不同夯击能及围压条件下粉土应力-应变规律,并基于邓肯-张模型确定计算力学参数。结果表明,随着夯击能的增大,粉土试件峰值应力增大,其中经150 kJ能级处治后的粉土地基峰值应力最大可达396 kPa,为70 kJ能级处治地基的1.3~1.5倍,不同夯击能条件下,150 kJ能级处治后的地基剪缩现象最为明显;同夯击能级条件下,随着围压的增加,粉土试件的峰值应力增大,且峰值应力对应的应变增大,150 kJ夯击能级处治后的土体在200 kPa围压下的峰值应力可达530 kPa,为相同处治条件100 kPa围压下的2倍。参考邓肯-张计算模型,计算了不同夯击能处治后粉土地基的力学参数,研究成果为高速液压夯技术推广应用提供理论支撑。
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