Moisture effect on compressive behavior of concrete under dynamic loading

Ji-kai Zhou , Ning Ding

Journal of Central South University ›› 2014, Vol. 21 ›› Issue (12) : 4714 -4722.

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Journal of Central South University ›› 2014, Vol. 21 ›› Issue (12) : 4714 -4722. DOI: 10.1007/s11771-014-2481-7
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Moisture effect on compressive behavior of concrete under dynamic loading

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Abstract

The effect of moisture content upon compressive mechanical behavior of concrete under impact loading was studied. The axial rapid compressive loading tests of over 50 specimens with five different saturations were executed. The technique “split Hopkinson pressure bar” (SHPB) was used. The impact velocity was 10 m/s with corresponding strain rate of 50 s−1. The compressive behavior of materials was measured in terms of stress-strain curves, dynamic compressive strength, dynamic increase factor (DIF) and critical strain at a maximum stress. The data obtained from test indicate that both ascending and descending portions of stress-stain curves are affected by moisture content. However, the effect is noted to be more significant in ascending portion of the stress-strain curves. Dynamic compressive strength is higher at lower moisture content and weaker at higher moisture content. Furthermore, under nearly saturated condition, an increase in compressive strength can be found. The effect of moisture content on the average DIF of concrete is not significant. The critical compressive strain of concrete does not change with moisture content.

Keywords

concrete / split Hopkinson pressure bar / high strain rate / compressive behavior / moisture content

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Ji-kai Zhou, Ning Ding. Moisture effect on compressive behavior of concrete under dynamic loading. Journal of Central South University, 2014, 21(12): 4714-4722 DOI:10.1007/s11771-014-2481-7

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References

[1]

NeithalathN. Analysis of moisture transport in mortars and concrete using sorption diffusion approach [J]. ACI Materials Journal, 2006, 103: 209-217

[2]

TianM-g, YiW-jian. Dynamic behavior of reinforced concrete frame structure during construction [J]. Journal of Central South University of Technology, 2008, 15(3): 418-422

[3]

SpraggR P, CastroJ, LiW, Pour-ghazM, HuangP T, WeissJ. Wetting and drying of concrete using aqueous solutions containing deicing salts [J]. Cement and Concrete Composites, 2011, 33(5): 535-542

[4]

YurtdasI, BurlionN, ShaoJ F, LiA. Evolution of the mechanical behavior of a high performance self-compacting concrete under drying [J]. Cement and Concrete Composites, 2011, 33(3): 380-388

[5]

BartlettF M, Mac GregorJ G. Effect of moisture condition on concrete core strengths [J]. ACI Materials Journal, 1994, 91(3): 227-236

[6]

KannaV, OlsonR A, JenningH M. Effect of shrinkage and moisture content on the physical characteristics of blended cement mortars [J]. Cement and Concrete Research, 1998, 28(10): 1467-1477

[7]

RossiP, FoutlemondeF. Effect of loading rate on the tensile behavior of concrete: Description of the physical mechanisms [J]. Materials and Structures, 1996, 29(2): 116-118

[8]

CadoniE, LabibesK, AlbertiniC, BerraM, Giangrasso. Strain-rate effect of the tensile behavior of concrete at different relative humidity levels [J]. Materials and Structures, 2001, 34(1): 21-26

[9]

YanD-m, LinGao. Dynamic properties of concrete in direct tension [J]. Cement and Concrete Research, 2006, 36(7): 1371-1378

[10]

MoriK, UebayashiK, FujikakeK, OhnoT, SatohH. Influence of moisture content on compressive and tensile strength properties of concrete under high strain-rates [J]. Journal of Structural Engineering-ECE, 2001, 47(3): 1673-1681

[11]

KlepaczkoJ R, BraraA. An experimental method for dynamic tensile testing of concrete by spalling [J]. International Journal of Impact Engineering, 2001, 25(4): 557-560

[12]

BraraA, KlepaczkoJ R. Experimental characterization of concrete in dynamic tension [J]. Mechanics of Materials, 2006, 38(3): 253-267

[13]

HarrisD W, MohorovicC E, DolenT P. Dynamic properties of mass concrete obtained from dam cores [J]. ACI Materials Journal, 2000, 97(3): 290-296

[14]

KimK, LimY M. Simulation of rate dependent fracture in concrete using an irregular lattice model [J]. Cement and Concrete Composites, 2011, 33(9): 949-955

[15]

ZhouJ-k, ChenX-dong. Stress-strain behavior and statistical continuous damage model of cement mortar under high strain rates [J]. Journal of Materials in Civil Engineering, 2013, 25(1): 120-130

[16]

ChenX-d, WuS-x, ZhouJ-kai. Experimental and modeling study of dynamic mechanical properties of cement paste, mortar and concrete [J]. Construction and Building Materials, 2013, 47: 419-430

[17]

ChenX-d, WuS-x, ZhouJ-kai. Experimental study and analytical formulation of mechanical behavior of concrete [J]. Construction and Building Materials, 2013, 47: 662-670

[18]

WuS-x, ChenX-d, ZhouJ-kai. Influence of strain rate and water content on mechanical behavior of dam concrete [J]. Construction and Building Materials, 2012, 36: 448-457

[19]

WuS-x, ChenX-d, ZhouJ-kai. Tensile strength of concrete under static and intermediate strain rates: Correlated results from different testing methods [J]. Nuclear Engineering and Design, 2012, 250: 173-183

[20]

ChenX-d, WuS-x, ZhouJ-k, ChenY-z, QinA-ping. Effect of testing method and strain rate on stress-strain behavior of concrete [J]. Journal of Materials in Civil Engineering, 2013, 25: 1752-1761

[21]

GalleC. Effect of drying on cement-based materials pore structure as identified by mercury intrusion porosimetry—A comparative study between oven-, vacuum-, and freeze-drying [J]. Cement and Concrete Research, 2001, 31(10): 1467-1477

[22]

WoldesenbetE, PeterS. Volume fraction effect on high strain rate properties of syntactic foam composites [J]. Journal of Material Science, 2009, 44(6): 1528-1539

[23]

WangQ Z, ZhangS, XieH P. Rock dynamic fracture toughness tested with holed-cracked flattened Brazillian discs diametrically impact by SHPB and its size effect [J]. Experimental Mechanics, 2010, 50(7): 877-885

[24]

AlbertiniC, CadoniE, LabibesK. Study of the mechanical properties of plain concrete under dynamic loading [J]. Experimental Mechanics, 1999, 39(2): 137-141

[25]

FeldmanR F, BeaudoinJ J. Pretreatment of hydrated cement paste for mercury intrusion measurements [J]. Cement and Concrete Research, 1991, 21(2): 297-308

[26]

YurtdasI, BurlionN, SkoczylasF. Experimental characterization of the drying effect on uniaxial mechanical behavior of mortar [J]. Materials and Structures, 2004, 37(3): 170-176

[27]

VusserJ H MExtensile hydraulic fracturing of porous materials [D], 1998, Delft, Delft University

[28]

LiQ M, MengH. About the dynamic strength enhancement of concrete-like materials in a split Hopkinson pressure bar test [J]. International Journal of Solids and Structures, 2003, 40(2): 343-360

[29]

HentzS, DonzeF V, DaudevilleL. Discrete element modelling of concrete submitted to dynamic loading at high strain rates [J]. Computers and Structures, 2004, 82(29): 2509-2524

[30]

ZhouX Q, HaoH. Modeling of compressive behavior of concrete-like materials at high strain rate [J]. International Journal of Solids and Structures, 2008, 45(17): 4648-4661

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