纸质出版:2018
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[1]马启锋,刘汉龙,肖杨,蒋翔.高应力作用下钙质砂压缩及颗粒破碎特性试验研究[J].防灾减灾工程学报,2018,38(06):1020-1025.
马启锋, 刘汉龙, 肖杨, et al. Compression and Particle Breakage Features of Calcareous Sand under High Stress[J]. 2018, 38(6): 1020-1025.
[1]马启锋,刘汉龙,肖杨,蒋翔.高应力作用下钙质砂压缩及颗粒破碎特性试验研究[J].防灾减灾工程学报,2018,38(06):1020-1025. DOI: 10.13409/j.cnki.jdpme.2018.06.017.
马启锋, 刘汉龙, 肖杨, et al. Compression and Particle Breakage Features of Calcareous Sand under High Stress[J]. 2018, 38(6): 1020-1025. DOI: 10.13409/j.cnki.jdpme.2018.06.017.
钙质砂是我国南海岛礁建设的主要材料
因其特殊的生物成因和独特的颗粒结构
其工程力学特性与常见陆源砂有较大差异。通过自行设计的高强加载压力室在三轴固液耦合试验机下对钙质砂进行终止应力在2~100MPa间的侧限压缩试验
研究了钙质砂在高应力水平下的压缩和颗粒破碎特性
并通过相同试验工况下的石英砂单向压缩试验来进行对比研究。试验结果表明:在高应力作用下
钙质砂比石英砂的压缩变形量大
钙质砂的压缩屈服应力在2MPa左右
远小于石英砂。钙质砂和石英砂在高应力作用下均会产生明显颗粒破碎
但钙质砂在应力作用下先于石英砂产生颗粒破碎。通过对颗粒破碎进行量化分析发现
两种砂样的颗粒破碎程度均先随应力的增大而增大
随后出现趋于稳定的趋势。
Calcareous sand is the main material for construction in the islets of the South China Sea.Because of its special biological origin and unique granular structure
its engineering mechanics characteristics are different from those of common terrigenous sand.A series of one-dimensional compression tests with final stress changed from 2 up to 100 MPa were conducted on calcareous sand to study its compression and breakage characteristics.These tests were carried out with triaxial solid-liquid coupling testing machine.The pressure chamber was made of high strength steel in this experiment to avoid test error caused by deformation of steel mold.And parallel uniaxial compression tests were carried out on quartz sand for comparative study with the same test conditions.The results show that the compression deformation of calcareous sand was larger than quartz sand and the yield stress of calcareous sand
which was about 2 MPa
was less than quartz sand.During the test
significant particle breakage was found both in calcareous sand and quartz sand.However
particle crushing of calcareous samples happened earlier than quartz sand.It was found that the degree of particle breakage of the two sand samples increases at first with the increase of load stress
and then tend to be stable
through a quantitative analysis on particle breakage.
钙质砂动力液化特性的试验研究 [J]. 刘汉龙,胡鼎,肖杨,陈育民. 防灾减灾工程学报 . 2015(06)
钙质砂室内载荷试验研究 [J]. 王新志,汪稔,孟庆山,刘晓鹏. 岩土力学 . 2009(01)
侧限条件下钙质砂压缩和破碎特性试验研究 [J]. 张家铭,汪稔,石祥锋,李建国,陈海洋. 岩石力学与工程学报 . 2005(18)
钙质砂颗粒的形状分析 [J]. 陈海洋,汪稔,李建国,张家铭. 岩土力学 . 2005(09)
土体颗粒破碎研究进展 [J]. 张家铭,汪稔,张阳明,陈复兵. 岩土力学 . 2003(S2)
钙质砂不排水性状的损伤-滑移耦合作用分析 [J]. 汪稔,孙吉主. 水利学报 . 2002(07)
钙质砂物理力学性质初探 [J]. 刘崇权,汪稔. 岩土力学 . 1998(01)
颗粒破碎对钙质砂变形及强度特性的影响 [J]. 吴京平,褚瑶,楼志刚. 岩土工程学报 . 1997(05)
钙质土力学性质研究现状与进展 [J]. 刘崇权,杨志强,汪稔. 岩土力学 . 1995(04)
Particle breakage and deformation of carbonate sands with wide range of densities during compression loading process [J] . Yang Xiao,Hanlong Liu,Qingsheng Chen,Qifeng Ma,Yuzhou Xiang,Yingren Zheng. Acta Geotechnica . 2017 (5)
Evolutionary-based approaches for determining the deviatoric stress of calcareous sands [J] . Habib Shahnazari,Mohammad A. Tutunchian,Reza Rezvani,Fatemeh Valizadeh. Computers and Geosciences . 2013
Crushing of Soil Particles [J] . Bobby O. Hardin. Journal of Geotechnical Engineering . 1985 (10)
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