Effects of material and drilling uncertainties on artificial ground freezing of cement-admixed soils

被引:48
作者
Liu, Yong [1 ]
Hu, Jun [2 ]
Xiao, Huawen [1 ]
Chen, Elton J. [3 ]
机构
[1] Natl Univ Singapore, Dept Civil & Environm Engn, Singapore, Singapore
[2] Hainan Univ, Coll Civil Engn & Architecture, Haikou, Hainan, Peoples R China
[3] Huazhong Univ Sci & Technol, Sch Civil Engn & Mech, Wuhan, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
artificial ground freezing; cement-admixed soils; heat transfer; random fields; finite-element modelling; THERMAL-CONDUCTIVITY; CLAY; STRENGTH; VARIABILITY; MECHANISM; MODEL; HEAT;
D O I
10.1139/cgj-2016-0707
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The artificial ground freezing method can be used jointly with the deep cement mixing method during break-in and break-out processes of shield machines in a tunnel shaft. The frozen ground can fully cut off groundwater seepage, thus ensuring a watertight working platform. Cement-admixed soils can restrict frost heave and thaw-induced settlement because of the decreased permeability. Both methods can also enhance mechanical strength of the soil to enable construction to proceed. Two main sources of heterogeneity are likely to influence the freezing effect: spatial variability in in situ water content in natural soil and spatial variability in binder concentration in cement-admixed soils. Furthermore, positioning error when installing freeze pipes can also affect freezing efficiency. This study simulates in situ water content and binder concentration as Gaussian random fields, whereby variations in the thermophysical properties are estimated. Positioning error is also assessed by prescribing an incline angle in freeze pipes. The influences of those two sources of spatial variability as well as positioning error are examined with random finite-element analyses and statistical characteristics are estimated based on the results. Results are tabulated to offer practitioners a rule of thumb for estimating additional efforts needed in artificial ground freezing, accounting for variations in the thermophysical properties and positioning errors in installing freeze pipes.
引用
收藏
页码:1659 / 1671
页数:13
相关论文
共 63 条
  • [1] Characterization and Estimation of Geotechnical Variability in Ankara Clay: A Case History
    Akbas, Sami
    Kulhawy, Fred
    [J]. GEOTECHNICAL AND GEOLOGICAL ENGINEERING, 2010, 28 (05) : 619 - 631
  • [2] GROUND FREEZING FOR SUPPORT OF OPEN EXCAVATIONS
    BRAUN, B
    SHUSTER, J
    BURNHAM, E
    [J]. ENGINEERING GEOLOGY, 1979, 13 (1-4) : 429 - 453
  • [3] A statistical model for the unconfined compressive strength of deep-mixed columns
    Chen, E. J.
    Liu, Y.
    Lee, F. -H.
    [J]. GEOTECHNIQUE, 2016, 66 (05): : 351 - 365
  • [4] Physicochemical and engineering behavior of cement treated clays
    Chew, SH
    Kamruzzaman, AHM
    Lee, FH
    [J]. JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2004, 130 (07) : 696 - 706
  • [5] Yielding-compressibility-strength relationship for an artificially cemented soil cured under stress
    Consoli, NC
    Rotta, GV
    Prietto, PDM
    [J]. GEOTECHNIQUE, 2006, 56 (01): : 69 - 72
  • [6] COOKE P, 1979, BIOMETRIKA, V66, P367, DOI 10.1093/biomet/66.2.367
  • [7] A generalized thermal conductivity model for soils and construction materials
    Côté, J
    Konrad, JM
    [J]. CANADIAN GEOTECHNICAL JOURNAL, 2005, 42 (02) : 443 - 458
  • [8] Ding L., 2015, GEOTECHNICAL ENG INF, P431, DOI [10.1680/ecsmge.60678.vol2.045, DOI 10.1680/ECSMGE.60678.VOL2.045]
  • [9] Dong H., 2015, FOREST ENG, V31, P114
  • [10] Fang Y.S., 2006, J GEOENGINEERING, V1, P41