• 全国中文核心期刊
  • 中国科技核心期刊
  • 美国工程索引(EI)收录期刊
  • Scopus数据库收录期刊
SUN Yi-fei, GAO Yu-feng, JU Wen. Fractional plasticity and its application in constitutive model for sands[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(8): 1535-1541. DOI: 10.11779/CJGE201808021
Citation: SUN Yi-fei, GAO Yu-feng, JU Wen. Fractional plasticity and its application in constitutive model for sands[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(8): 1535-1541. DOI: 10.11779/CJGE201808021

Fractional plasticity and its application in constitutive model for sands

More Information
  • Received Date: July 18, 2017
  • Published Date: August 24, 2018
  • It has been recognized that the stress-dilatancy and stress-strain relationship of sand depend on the material state. The plastic flow direction does not usually coincide with the corresponding loading direction but evolves with the material state. To consider such non-associativity, an additional plastic potential surface that is independent of the yielding surface is usually assumed. A state parameter is then incorporated into the material constants of the plastic potential surface, which brings more model parameters where some of them even have no physical meanings. Unlike the traditional plasticity theory, the fractional plasticity is established on non-local fractional operators and gradients where the derivatives of a stress point are determined not only by the state of the stress point of interest but also by the loading history before reaching this point. Therefore, without the necessity of assuming an additional plastic potential (yielding) surface, a state-dependent non-associated fractional plasticity model for sands can be easily developed by conducting fractional order derivatives on the yielding (plastic potential) surface. To validate the proposed model, a series of drained and undrained triaxial compression test results of different sands are simulated and then compared. A good agreement between the model simulations and the corresponding test results can be observed.
  • [1]
    LEE K L, SEED H B.Drained strength characteristics of sands[J]. Journal of Soil Mechanics and Foundation Divison, ASCE, 1967, 93(6): 117-141.
    [2]
    VERDUGO R, ISHIHARA K.The steady state of sandy soils[J]. Soils and Foundations, 1996, 36(2): 81-91.
    [3]
    ISHIHARA K, TATSUOKA F, YASUDA S.Undrained deformation and liquefaction of sand under cyclic stresses[J]. Soils and Foundations, 1975, 15(1): 29-44.
    [4]
    DOANH T, HOANG M T, ROUX J N, et al.Stick-slip behaviour of model granular materials in drained triaxial compression[J]. Granular Matter, 2013, 15(1): 1-23.
    [5]
    BEEN K, JEFFERIES M G.A state parameter for sands[J]. Géotechnique, 1985, 22(6): 99-112.
    [6]
    MUIR WOOD D, BELKHEIR K, LIU D.Strain softening and state parameter for sand modelling[J]. Géotechnique, 1994, 44(2): 335-339.
    [7]
    LI X.A sand model with state-dapendent dilatancy[J]. Géotechnique, 2002, 52(3): 173-186.
    [8]
    SUN Y, SHEN Y.Constitutive model of granular soils using fractional order plastic flow rule[J]. Internaitonal Journal of Geomechanics, ASCE, 2017, 04017025.
    [9]
    SUN Y, XIAO Y.Fractional order model for granular soils under drained cyclic loading[J]. International Journal of Numerical and Analytical Methods in Geomechanics, 2017, 41(4): 555-577.
    [10]
    LI X, DAFALIAS Y.Dilatancy for cohesionless soils[J]. Géotechnique, 2000, 50(4): 449-460.
    [11]
    RUSSELL A R, KHALILI N.A bounding surface plasticity model for sands exhibiting particle crushing[J]. Canadian Geotechnical Journal, 2004, 41(6): 1179-1192.
    [12]
    XIAO Y, LIU H, CHEN Y, et al.State-dependent constitutive model for rockfill materials[J]. International Journal Geomechanics, ASCE, 2014, 15(5): 04014075.
    [13]
    XIAO Y, LIU H, CHEN Y, JIANG J.Bounding surface model for rockfill materials dependent on density and pressure under triaxial stress conditions[J]. Journal of Engineering Mechanics, ASCE, 2014, 140(4): 04014002.
    [14]
    YANG J, LI X.State-dependent strength of sands from the perspective of unified modeling[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 2004, 130(2): 186-198.
    [15]
    SUN Y, XIAO Y. Fractional order plasticity model for granular soils subjected to monotonic triaxial compression[J]. International Journal of Solids and Structures, 2017, 118/119: 224-234.
    [16]
    DAFALIAS Y F, TAIEBAT M.SANISAND-Z: zero elastic range sand plasticity model[J]. Géotechnique, 2016, 66(12): 999-1013.
    [17]
    PASTOR M, ZIENKIEWICZ O C, CHAN A H C. Generalized plasticity and the modelling of soil behaviour[J]. International Journal of Numerical and Analytical Methods in Geomechanics, 1990, 14(3): 151-190.
    [18]
    DAFALIAS Y F.Bounding surface plasticity I: mathematical foundation and hypoplasticity[J]. Journal of Engineering Mechanics, ASCE, 1986, 112(9): 966-987.
    [19]
    SUMELKA W.A note on non-associated Drucker-Prager plastic flow in terms of fractional calculus[J]. Journal of Theoretical and Applied Mechanics, 2014, 52(2): 571-574.
    [20]
    李广信. 土的清华弹塑性模型及其发展[J]. 岩土工程学报, 2006, 28(1): 1-10.
    (LI Guang-xin.Characteristics and development of tsinghua elasto-plastic model for soil[J]. Chinese Journal of Geotechnical Engineering, 2006, 28(1): 1-10. (in Chinese))
    [21]
    YIN D, WU H, CHENG C, et al.Fractional order constitutive model of geomaterials under the?condition of triaxial test[J]. International Journal of Numerical and Analytical Methods in Geomechanics, 2013, 37(8): 961-972.
    [22]
    PODLUBNY I.Fractional differential equations: an introduction to fractional derivatives, fractional differential equations, to methods of their solution and some of their applications[M]. San Diego: Academic Press, 1998.
    [23]
    LI X, WANG Y.Linear representation of steady-state line for sand[J]. Journal of Geotechnical and Geoenvironmental Engineering, ASCE, 1998, 124(12): 1215-1217.
    [24]
    SCHOFIELD A, WROTH P.Critical state soil mechanics[M]. London: McGraw-Hill, 1968.

Catalog

    Article views (419) PDF downloads (213) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return