Strength Characterization of Soils' Properties at High Strain Rates Using the Hopkinson Technique-A Review of Experimental Testing

被引:6
|
作者
Sobczyk, Kamil [1 ]
Chmielewski, Ryszard [1 ]
Kruszka, Leopold [1 ]
Rekucki, Ryszard [1 ]
机构
[1] Mil Univ Technol, Dept Mil Engn & Mil Infrastruct, Fac Civil Engn & Geodesy, 2 Gen Sylwester Kaliski Str, PL-00908 Warsaw, Poland
关键词
high strain rate; soil; split Hopkinson pressure bar; review; PARTICLE BREAKAGE; COMPRESSIVE BEHAVIOR; ENERGY-ABSORPTION; RATE DEFORMATION; MOISTURE-CONTENT; CALCAREOUS SAND; RATE RESPONSE; PRESSURE; CONFINEMENT; CONCRETE;
D O I
10.3390/ma15010274
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The paper presents a review of crucial experiments and the latest publications, presenting the previous and current trends in experimental research in 2018-2021 in the area of soil dynamic interaction based on the Hopkinson bar technique. A review of investigated experimental test stands was made, in particular, cohesive and non-cohesive soil specimens prepared with different dimensions and densities. From this study, it can be concluded that the dynamic response of the soil depends on many factors, e.g., density, cohesion, moisture and grain structure of the soil specimen. There is still a noticeable interest in SHPB experiments performed in both 1D and 3D versions under modified conditions (frozen/heated soil specimen, different degree of water saturation content of the soil sample) in a wide range of strain rates 10(2)-10(4) s(-1), which is a large field for further research. The need to learn about the characteristics of various types of soil (both cohesive and non-cohesive) for the selection of structural design solutions for the protection elements of critical infrastructure was emphasized.
引用
收藏
页数:29
相关论文
共 50 条
  • [11] Combined experimental and numerical analysis of bulge test at high strain rates using split Hopkinson pressure bar apparatus
    Ramezani, Maziar
    Ripin, Zaidi Mohd
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2010, 210 (08) : 1061 - 1069
  • [12] TESTING OF HYBRID NICKEL-POLYURETHANE FOAMS AT HIGH STRAIN-RATES USING HOPKINSON BAR AND DIGITAL IMAGE CORRELATION
    Adorna, Marcel
    Zlamal, Petr
    Fila, Tomas
    Falta, Jan
    Felten, Markus
    Fries, Michael
    Jung, Anne
    16TH YOUTH SYMPOSIUM ON EXPERIMENTAL SOLID MECHANICS, 2018, 18 : 72 - 76
  • [13] High strain rate characterization of plastics using polymeric split Hopkinson bar
    Sawas, O
    Brar, NS
    Ramamurthy, AC
    SHOCK COMPRESSION OF CONDENSED MATTER - 1995, 1996, 370 : 581 - 584
  • [14] High strain rate tensile testing using a split Hopkinson pressure bar apparatus
    Mohr, D.
    Gary, G.
    JOURNAL DE PHYSIQUE IV, 2006, 134 : 617 - 622
  • [15] Experimental technique for high temperature and high strain rate testing of CMCs
    Universidad de Navarra, San Sebastian, Spain
    Key Eng Mat, Pt 2 (737-744):
  • [16] Experimental technique for high temperature and high strain rate testing of CMCs
    Puente, I
    Sanchez, JM
    MartinMeizoso, A
    CMMC 96 - PROCEEDINGS OF THE FIRST INTERNATIONAL CONFERENCE ON CERAMIC AND METAL MATRIX COMPOSITES, PTS 1 AND 2, 1997, 127-3 : 737 - 744
  • [17] A split Hopkinson pressure bar for experimental investigation of dynamic pulverization under very high strain rates
    Jayawickrama, Eranga Gayanath
    Sekiguchi, Takuma
    Muto, Jun
    Sawa, Sando
    Nagahama, Hiroyuki
    Kono, Yoshio
    Bae, Kyung-Oh
    Shin, Hyung-Seop
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2023, 94 (09):
  • [18] AN EXPERIMENTAL-TECHNIQUE FOR SHEAR TESTING AT HIGH AND VERY HIGH-STRAIN RATES - THE CASE OF A MILD-STEEL
    KLEPACZKO, JR
    INTERNATIONAL JOURNAL OF IMPACT ENGINEERING, 1994, 15 (01) : 25 - 39
  • [19] A COMPRESSION TESTING TECHNIQUE AT HIGH-RATES OF STRAIN FOR SHEET METALS
    SATO, Y
    MATSUI, S
    KOBAYASHI, M
    TAKAHASHI, H
    JOURNAL DE PHYSIQUE, 1988, 49 (C-3): : 721 - 726
  • [20] An Experimental Method to Determine the Tensile Strength of Concrete at High Rates of Strain
    Erzar, B.
    Forquin, P.
    EXPERIMENTAL MECHANICS, 2010, 50 (07) : 941 - 955