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Erschienen in: Experimental Mechanics 1/2018

04.08.2017

An Experimental-Computational Correlated Study for Describing the Failure Characteristics of Concrete across Two Scale Levels: Mixture and Structural Component

verfasst von: A. Gheitasi, D. K. Harris, M. Hansen

Erschienen in: Experimental Mechanics | Ausgabe 1/2018

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Abstract

The failure characteristics of concrete, which are often brittle, are complex due variability in mix design, heterogeneity of the final man-made composite product, and the complexity associated with describing the corresponding mechanical response across different scale levels. Numerous experimental methods as well as numerical models have been developed to characterize the mechanical behavior of cementitious composites, but the major of these methods have focused on describing bulk response and are not well suited to characterize localized phenomena. Recent advances in the areas of multi-scale modeling and computational mechanics have shown promise for improving current capabilities, but these approaches also require experimental validation. This manuscript explores the extension of Digital Image Correlation (DIC) to fully characterize the behavior of concrete across different structural scales. The investigation leverages results from an experimental testing program at both mixture and structural member scale levels to evaluate the performance of two representative plasticity-based numerical models commonly used to describe the failure characteristics of concrete subjected to various states of stresses. The experimental study consisted of a series of compression, split tensile, and flexural tests. For the numerical models, the finite element method (FEM) was used to simulate concrete specimens at different scale levels. A comparison of the experimental and numerical results demonstrated that the numerical models are capable in predicting the ultimate capacities and global responses of the tested specimens. The minimum discrepancy between the results was observed in the pure compression tests, with less agreement observed in the presence of tensile stresses (i.e. split tensile and flexural tests at both scale levels). This can be attributed to the limitations of the selected material models in describing the tensile behavior of concrete beyond the elastic limit as well as the current shortcomings associated with numerical analyzes and their capabilities in describing the localized behavioral features such as crack initiation and propagation. Results from this investigation highlight the potential of DIC as a non-contact measurement technology to improve the performance of existing material models for traditional civil engineering materials, but also underscores its capabilities in development of new constitutive models for the next generation of innovative high performance materials.

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Literatur
1.
Zurück zum Zitat Mindess S, Young JF, Darwin D (2003) Concrete. Pearson Education Inc., Upper Saddle River Mindess S, Young JF, Darwin D (2003) Concrete. Pearson Education Inc., Upper Saddle River
2.
Zurück zum Zitat Roddenberry M, Kampmann R, Ansley MH, Bouchard N, Ping WV (2011) Failure Behavior of Concrete Cylinders under Different End Conditions. ACI Mater J 108(1):79 Roddenberry M, Kampmann R, Ansley MH, Bouchard N, Ping WV (2011) Failure Behavior of Concrete Cylinders under Different End Conditions. ACI Mater J 108(1):79
6.
Zurück zum Zitat ASTM C39 / C39M - 14a (2014) Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens. ASTM International, West Conshohocken ASTM C39 / C39M - 14a (2014) Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens. ASTM International, West Conshohocken
7.
Zurück zum Zitat ASTM C496 / C496M - 11 (2011) Standard Test Method for Splitting Tensile Strength of Cylindrical Concrete Specimens. ASTM International, West Conshohocken ASTM C496 / C496M - 11 (2011) Standard Test Method for Splitting Tensile Strength of Cylindrical Concrete Specimens. ASTM International, West Conshohocken
8.
Zurück zum Zitat Zi G, Kim J, Bažant ZP (2014) Size Effect on Biaxial Flexural Strength of Concrete. ACI Mater J 111(3):319 Zi G, Kim J, Bažant ZP (2014) Size Effect on Biaxial Flexural Strength of Concrete. ACI Mater J 111(3):319
9.
Zurück zum Zitat Bažant ZP, Yu Q (2011) Size-effect testing of cohesive fracture parameters and nonuniqueness of work-of-fracture method. J Eng Mech 137:580CrossRef Bažant ZP, Yu Q (2011) Size-effect testing of cohesive fracture parameters and nonuniqueness of work-of-fracture method. J Eng Mech 137:580CrossRef
10.
Zurück zum Zitat Bažant ZP (1984) Size Effect in Blunt Fracture: Concrete, Rock, Metal. J Eng Mech 110(4):518–535CrossRef Bažant ZP (1984) Size Effect in Blunt Fracture: Concrete, Rock, Metal. J Eng Mech 110(4):518–535CrossRef
11.
Zurück zum Zitat Bazant ZP, Planas J (1997) Fracture and size effect in concrete and other quasibrittle materials. CRC press Bazant ZP, Planas J (1997) Fracture and size effect in concrete and other quasibrittle materials. CRC press
12.
Zurück zum Zitat Fehling, E., Schmidt, M., Walraven, J., Leutbecher, T., and Fröhlich, S. (2014). Ultra-High Performance Concrete UHPC: Fundamentals, Design, Examples. John Wiley & Sons Fehling, E., Schmidt, M., Walraven, J., Leutbecher, T., and Fröhlich, S. (2014). Ultra-High Performance Concrete UHPC: Fundamentals, Design, Examples. John Wiley & Sons
13.
Zurück zum Zitat Graybeal BA (2006) Material property characterization of ultra-high performance concrete. Federal Highway Administration Report No. FHWA-HRT-06-103, McLean Graybeal BA (2006) Material property characterization of ultra-high performance concrete. Federal Highway Administration Report No. FHWA-HRT-06-103, McLean
14.
Zurück zum Zitat Li VC (2003) On engineered cementitious composites (ECC). J Adv Concr Technol 1(3):215–230CrossRef Li VC (2003) On engineered cementitious composites (ECC). J Adv Concr Technol 1(3):215–230CrossRef
15.
Zurück zum Zitat Maalej M, Li VC (1994) Flexural/tensile-strength ratio in engineered cementitious composites. J Mater Civ Eng 6(4):513–528CrossRef Maalej M, Li VC (1994) Flexural/tensile-strength ratio in engineered cementitious composites. J Mater Civ Eng 6(4):513–528CrossRef
16.
Zurück zum Zitat Hillerborg A, Modéer M, Petersson PE (1976) Analysis of crack formation and crack growth in concrete by means of fracture mechanics and finite elements. Cem Concr Res 6(6):773–781CrossRef Hillerborg A, Modéer M, Petersson PE (1976) Analysis of crack formation and crack growth in concrete by means of fracture mechanics and finite elements. Cem Concr Res 6(6):773–781CrossRef
17.
Zurück zum Zitat Etse GA, Willam K (1994) Fracture Energy Formulation for Inelastic Behavior of Plain Concrete. J Eng Mech 120(9):1983–2011CrossRefMATH Etse GA, Willam K (1994) Fracture Energy Formulation for Inelastic Behavior of Plain Concrete. J Eng Mech 120(9):1983–2011CrossRefMATH
18.
Zurück zum Zitat Bazant ZP, Cedolin L (1980) Fracture mechanics of reinforced concrete. J Eng Mech Div 106(6):1287–1306 Bazant ZP, Cedolin L (1980) Fracture mechanics of reinforced concrete. J Eng Mech Div 106(6):1287–1306
19.
Zurück zum Zitat Elfgren L (1989) Fracture mechanics of concrete structures from theory to applications: Report of the Technical Committee 90-FMA Fracture Mechanics to Concrete/Applications, RILEM (the International Union of Testing and Research Laboratories for Materials and Structures). Taylor and Francis Group Elfgren L (1989) Fracture mechanics of concrete structures from theory to applications: Report of the Technical Committee 90-FMA Fracture Mechanics to Concrete/Applications, RILEM (the International Union of Testing and Research Laboratories for Materials and Structures). Taylor and Francis Group
20.
Zurück zum Zitat Carpinteri A (1982) Application of fracture mechanics to concrete structures. J Struct Div 108(4):833–848 Carpinteri A (1982) Application of fracture mechanics to concrete structures. J Struct Div 108(4):833–848
21.
Zurück zum Zitat Anderson TL, Anderson T (2005) Fracture mechanics: fundamentals and applications. CRC press, New YorkMATH Anderson TL, Anderson T (2005) Fracture mechanics: fundamentals and applications. CRC press, New YorkMATH
22.
Zurück zum Zitat Shah SP, Swartz SE, Ouyang C (1995) Fracture mechanics of concrete: applications of fracture mechanics to concrete, rock and other quasi-brittle materials. John Wiley & Sons, New York Shah SP, Swartz SE, Ouyang C (1995) Fracture mechanics of concrete: applications of fracture mechanics to concrete, rock and other quasi-brittle materials. John Wiley & Sons, New York
23.
Zurück zum Zitat Chen WF (2007) Plasticity in reinforced concrete. J. Ross Publishing Chen WF (2007) Plasticity in reinforced concrete. J. Ross Publishing
24.
Zurück zum Zitat Meschke G, Macht J, Lackner R (1998) A damage-plasticity model for concrete accounting for fracture-induced anisotropy. Computational modelling of concrete structures: Proceedings of the EURO-C 1998 Conference on Computational Modelling of Concrete Structures, Badgastein, 31 March - 3 April 1998, vol. 1 Meschke G, Macht J, Lackner R (1998) A damage-plasticity model for concrete accounting for fracture-induced anisotropy. Computational modelling of concrete structures: Proceedings of the EURO-C 1998 Conference on Computational Modelling of Concrete Structures, Badgastein, 31 March - 3 April 1998, vol. 1
25.
Zurück zum Zitat Lee J, Fenves GL (1998) Plastic-Damage Model for Cyclic Loading of Concrete Structures. J Eng Mech 124(8):892–900CrossRef Lee J, Fenves GL (1998) Plastic-Damage Model for Cyclic Loading of Concrete Structures. J Eng Mech 124(8):892–900CrossRef
26.
Zurück zum Zitat Lubliner J, Oliver J, Oller S, Oñate E (1989) A plastic-damage model for concrete. Int J Solids Struct 25(3):299–326CrossRef Lubliner J, Oliver J, Oller S, Oñate E (1989) A plastic-damage model for concrete. Int J Solids Struct 25(3):299–326CrossRef
27.
Zurück zum Zitat Wu JY, Li J, Faria R (2006) An energy release rate-based plastic-damage model for concrete. Int J Solids Struct 43(3–4):583–612CrossRefMATH Wu JY, Li J, Faria R (2006) An energy release rate-based plastic-damage model for concrete. Int J Solids Struct 43(3–4):583–612CrossRefMATH
28.
Zurück zum Zitat Yazdani S, Schreyer HL (1990) Combined Plasticity and Damage Mechanics Model for Plain Concrete. J Eng Mech 116(7):1435–1450CrossRef Yazdani S, Schreyer HL (1990) Combined Plasticity and Damage Mechanics Model for Plain Concrete. J Eng Mech 116(7):1435–1450CrossRef
29.
Zurück zum Zitat Pantazopoulou IIASJ (1989) Fracture Energy-Based Plasticity Formulation of Plain Concrete. J Eng Mech 115(6):1183–1204CrossRef Pantazopoulou IIASJ (1989) Fracture Energy-Based Plasticity Formulation of Plain Concrete. J Eng Mech 115(6):1183–1204CrossRef
30.
Zurück zum Zitat Voyiadjis GZ, Taqieddin ZN, Kattan PI (2008) Anisotropic damage–plasticity model for concrete. Int J Plast 24(10):1946–1965CrossRefMATH Voyiadjis GZ, Taqieddin ZN, Kattan PI (2008) Anisotropic damage–plasticity model for concrete. Int J Plast 24(10):1946–1965CrossRefMATH
31.
Zurück zum Zitat Mazars J, Pijaudier-Cabot G (1989) Continuum damage theory-application to concrete. J Eng Mech 115(2):345–365CrossRef Mazars J, Pijaudier-Cabot G (1989) Continuum damage theory-application to concrete. J Eng Mech 115(2):345–365CrossRef
32.
Zurück zum Zitat Moës N, Belytschko T (2002) Extended finite element method for cohesive crack growth. Eng Fract Mech 69(7):813–833CrossRef Moës N, Belytschko T (2002) Extended finite element method for cohesive crack growth. Eng Fract Mech 69(7):813–833CrossRef
33.
Zurück zum Zitat Roth S-N, Léger P, Soulaïmani A (2015) A combined XFEM–damage mechanics approach for concrete crack propagation. Comput Methods Appl Mech Eng 283:923–955MathSciNetCrossRef Roth S-N, Léger P, Soulaïmani A (2015) A combined XFEM–damage mechanics approach for concrete crack propagation. Comput Methods Appl Mech Eng 283:923–955MathSciNetCrossRef
34.
Zurück zum Zitat Asferg JL, Poulsen PN, Nielsen LO (2007) A consistent partly cracked XFEM element for cohesive crack growth. Int J Numer Methods Eng 72(4):464–485CrossRefMATH Asferg JL, Poulsen PN, Nielsen LO (2007) A consistent partly cracked XFEM element for cohesive crack growth. Int J Numer Methods Eng 72(4):464–485CrossRefMATH
35.
Zurück zum Zitat Lilliu G, van Mier JGM (2003) 3D lattice type fracture model for concrete. Eng Fract Mech 70(7–8):927–941CrossRef Lilliu G, van Mier JGM (2003) 3D lattice type fracture model for concrete. Eng Fract Mech 70(7–8):927–941CrossRef
36.
Zurück zum Zitat Liu JX, Deng SC, Zhang J, Liang NG (2007) Lattice type of fracture model for concrete. Theor Appl Fract Mech 48(3):269–284CrossRef Liu JX, Deng SC, Zhang J, Liang NG (2007) Lattice type of fracture model for concrete. Theor Appl Fract Mech 48(3):269–284CrossRef
37.
Zurück zum Zitat Cusatis G, Bažant ZP, Cedolin L (2006) Confinement-shear lattice CSL model for fracture propagation in concrete. Comput Methods Appl Mech Eng 195(52):7154–7171CrossRefMATH Cusatis G, Bažant ZP, Cedolin L (2006) Confinement-shear lattice CSL model for fracture propagation in concrete. Comput Methods Appl Mech Eng 195(52):7154–7171CrossRefMATH
38.
Zurück zum Zitat Li S, Liu WK (2002) Meshfree and particle methods and their applications. Appl Mech Rev 55(1):1–34CrossRef Li S, Liu WK (2002) Meshfree and particle methods and their applications. Appl Mech Rev 55(1):1–34CrossRef
39.
Zurück zum Zitat William K, Warnke E (1975) Constitutive model for the triaxial behavior of concrete William K, Warnke E (1975) Constitutive model for the triaxial behavior of concrete
40.
Zurück zum Zitat MacGregor JG, Wight JK, Teng S, Irawan P (1997) Reinforced concrete: Mechanics and design. Prentice Hall, Upper Saddle River MacGregor JG, Wight JK, Teng S, Irawan P (1997) Reinforced concrete: Mechanics and design. Prentice Hall, Upper Saddle River
41.
Zurück zum Zitat ACI Committee. Building code requirements for structural concrete (ACI 318–08) and commentary. American Concrete Institute, International Organization for Standardization ACI Committee. Building code requirements for structural concrete (ACI 318–08) and commentary. American Concrete Institute, International Organization for Standardization
42.
Zurück zum Zitat Gheitasi A, Harris DK (2014) Failure characteristics and ultimate load-carrying capacity of redundant composite steel girder bridges: Case study. J Bridg Eng 20:05014012CrossRef Gheitasi A, Harris DK (2014) Failure characteristics and ultimate load-carrying capacity of redundant composite steel girder bridges: Case study. J Bridg Eng 20:05014012CrossRef
43.
Zurück zum Zitat Gheitasi A, Harris DK (2014) Overload flexural distribution behavior of composite steel girder bridges. J Bridg Eng 20(5):04014076CrossRef Gheitasi A, Harris DK (2014) Overload flexural distribution behavior of composite steel girder bridges. J Bridg Eng 20(5):04014076CrossRef
44.
Zurück zum Zitat Gheitasi A, Harris DK (2015) Redundancy and Operational Safety of Composite Stringer Bridges with Deteriorated Girders. J Perform Constr Facil 30(2):04015022CrossRef Gheitasi A, Harris DK (2015) Redundancy and Operational Safety of Composite Stringer Bridges with Deteriorated Girders. J Perform Constr Facil 30(2):04015022CrossRef
45.
Zurück zum Zitat Gheitasi A, Harris DK (2015) Performance assessment of steel–concrete composite bridges with subsurface deck deterioration. Structure 2:8–20CrossRef Gheitasi A, Harris DK (2015) Performance assessment of steel–concrete composite bridges with subsurface deck deterioration. Structure 2:8–20CrossRef
46.
Zurück zum Zitat Sofi FA, Steelman JS (2017) Parametric Influence of Bearing Restraint on Nonlinear Flexural Behavior and Ultimate Capacity of Steel Girder Bridges. J Bridg Eng 22(7):04017033CrossRef Sofi FA, Steelman JS (2017) Parametric Influence of Bearing Restraint on Nonlinear Flexural Behavior and Ultimate Capacity of Steel Girder Bridges. J Bridg Eng 22(7):04017033CrossRef
47.
Zurück zum Zitat Ross BE, Hamilton HT (2011) Evaluation of strain gage lengths for testing limestone and granite aggregate concretes. Constr Build Mater 25(1):406–408CrossRef Ross BE, Hamilton HT (2011) Evaluation of strain gage lengths for testing limestone and granite aggregate concretes. Constr Build Mater 25(1):406–408CrossRef
48.
Zurück zum Zitat Sutton MA, Orteu JJ, Schreier H (2009) Image correlation for shape, motion and deformation measurements: basic concepts, theory and applications. Springer Science & Business Media Sutton MA, Orteu JJ, Schreier H (2009) Image correlation for shape, motion and deformation measurements: basic concepts, theory and applications. Springer Science & Business Media
49.
Zurück zum Zitat Ghorbani R, Matta F, Sutton M (2014) Full-field deformation measurement and crack mapping on confined masonry walls using digital image correlation. Exp Mech 55(1):227–243CrossRef Ghorbani R, Matta F, Sutton M (2014) Full-field deformation measurement and crack mapping on confined masonry walls using digital image correlation. Exp Mech 55(1):227–243CrossRef
50.
Zurück zum Zitat Croom BP, Sutton MA, Zhao X, Matta F, Ghorbani R (2015) Modeling of asphalt roof shingle-sealant structures for prediction of local delamination under high wind loads. Eng Struct 96:100–110CrossRef Croom BP, Sutton MA, Zhao X, Matta F, Ghorbani R (2015) Modeling of asphalt roof shingle-sealant structures for prediction of local delamination under high wind loads. Eng Struct 96:100–110CrossRef
51.
Zurück zum Zitat Sadek S, Iskander M, Liu J (2003) Accuracy of Digital Image Correlation for Measuring Deformations in Transparent Media. J Comput Civ Eng 17(2):88–96CrossRef Sadek S, Iskander M, Liu J (2003) Accuracy of Digital Image Correlation for Measuring Deformations in Transparent Media. J Comput Civ Eng 17(2):88–96CrossRef
52.
Zurück zum Zitat Chehab G, Seo Y, Kim Y (2007) Viscoelastoplastic Damage Characterization of Asphalt–Aggregate Mixtures Using Digital Image Correlation. Int J Geomechanics 7(2):111–118CrossRef Chehab G, Seo Y, Kim Y (2007) Viscoelastoplastic Damage Characterization of Asphalt–Aggregate Mixtures Using Digital Image Correlation. Int J Geomechanics 7(2):111–118CrossRef
53.
Zurück zum Zitat Kemeny J, Devgan A, Hagaman R, Wu X (1993) Analysis of Rock Fragmentation Using Digital Image Processing. J Geotech Eng 119(7):1144–1160CrossRef Kemeny J, Devgan A, Hagaman R, Wu X (1993) Analysis of Rock Fragmentation Using Digital Image Processing. J Geotech Eng 119(7):1144–1160CrossRef
54.
Zurück zum Zitat Dutton M, Take W, Hoult N (2013) Curvature Monitoring of Beams Using Digital Image Correlation. J Bridg Eng 19(3):05013001CrossRef Dutton M, Take W, Hoult N (2013) Curvature Monitoring of Beams Using Digital Image Correlation. J Bridg Eng 19(3):05013001CrossRef
55.
Zurück zum Zitat Lin D, Wang H, Luo H (2004) Assessment of Fire-Damaged Mortar Using Digital Image Process. J Mater Civ Eng 16(4):383–386CrossRef Lin D, Wang H, Luo H (2004) Assessment of Fire-Damaged Mortar Using Digital Image Process. J Mater Civ Eng 16(4):383–386CrossRef
56.
Zurück zum Zitat Divya P, Viswanadham B, Gourc J (2013) Evaluation of Tensile Strength-Strain Characteristics of Fiber-Reinforced Soil through Laboratory Tests. J Mater Civ Eng 26(1):14–23CrossRef Divya P, Viswanadham B, Gourc J (2013) Evaluation of Tensile Strength-Strain Characteristics of Fiber-Reinforced Soil through Laboratory Tests. J Mater Civ Eng 26(1):14–23CrossRef
57.
Zurück zum Zitat McGinnis M, Pessiki S (2015) Experimental Study of the Core-Drilling Method for Evaluating In Situ Stresses in Concrete Structures. J Mater Civ Eng 28:04015099CrossRef McGinnis M, Pessiki S (2015) Experimental Study of the Core-Drilling Method for Evaluating In Situ Stresses in Concrete Structures. J Mater Civ Eng 28:04015099CrossRef
58.
Zurück zum Zitat Chu T, Ranson W, Sutton MA (1985) Applications of digital-image-correlation techniques to experimental mechanics. Exp Mech 25(3):232–244CrossRef Chu T, Ranson W, Sutton MA (1985) Applications of digital-image-correlation techniques to experimental mechanics. Exp Mech 25(3):232–244CrossRef
59.
Zurück zum Zitat Lu H, Cary P (2000) Deformation measurements by digital image correlation: implementation of a second-order displacement gradient. Exp Mech 40(4):393–400CrossRef Lu H, Cary P (2000) Deformation measurements by digital image correlation: implementation of a second-order displacement gradient. Exp Mech 40(4):393–400CrossRef
60.
Zurück zum Zitat Pan B, Qian K, Xie H, Asundi A (2009) Two-dimensional digital image correlation for in-plane displacement and strain measurement: a review. Meas Sci Technol 20(6):062001CrossRef Pan B, Qian K, Xie H, Asundi A (2009) Two-dimensional digital image correlation for in-plane displacement and strain measurement: a review. Meas Sci Technol 20(6):062001CrossRef
61.
Zurück zum Zitat Schreier H, Orteu J-J, Sutton MA (2009) Image correlation for shape, motion and deformation measurements. Springer US, New YorkCrossRef Schreier H, Orteu J-J, Sutton MA (2009) Image correlation for shape, motion and deformation measurements. Springer US, New YorkCrossRef
62.
Zurück zum Zitat ANSYS v. 15.0 (2014) ANSYS Reference Manual. ANSYS, Inc., Canonsburg ANSYS v. 15.0 (2014) ANSYS Reference Manual. ANSYS, Inc., Canonsburg
63.
Zurück zum Zitat ASTM C78 / C78M - 16 (2016) Standard Test Method for Flexural Strength of Concrete (Using Simple Beam with Third-Point Loading). ASTM International, West Conshohocken ASTM C78 / C78M - 16 (2016) Standard Test Method for Flexural Strength of Concrete (Using Simple Beam with Third-Point Loading). ASTM International, West Conshohocken
64.
Zurück zum Zitat Gheitasi A (2014) Performance Evaluation of Damage-Integrated Composite Steel Girder Highway Bridges. Doctor of Philosophy, University of Virginia, CharlottesvilleCrossRef Gheitasi A (2014) Performance Evaluation of Damage-Integrated Composite Steel Girder Highway Bridges. Doctor of Philosophy, University of Virginia, CharlottesvilleCrossRef
65.
Zurück zum Zitat Gheitasi A, Harris DK A Performance-Based Framework for Bridge Preservation Based on Damage-Integrated System-Level Behavior. Proc., Transportation Research Board 93rd Annual Meeting Gheitasi A, Harris DK A Performance-Based Framework for Bridge Preservation Based on Damage-Integrated System-Level Behavior. Proc., Transportation Research Board 93rd Annual Meeting
66.
Zurück zum Zitat Alipour M, Sherif M, Bagheri A, Gheitasi A, Harris DK, Ozbulut OE Application of Systematic FE Model Updating using Digital Image Correlation for Full-Field Non-Contact Measurement. Proc 2015 International Digital Image Correlation Society (IDICS) Workshop and Conference Alipour M, Sherif M, Bagheri A, Gheitasi A, Harris DK, Ozbulut OE Application of Systematic FE Model Updating using Digital Image Correlation for Full-Field Non-Contact Measurement. Proc 2015 International Digital Image Correlation Society (IDICS) Workshop and Conference
67.
Zurück zum Zitat Dizaji MS, Alipour M, Harris DK (2017) Leveraging Vision for Structural Identification: A Digital Image Correlation Based Approach. International Digital Imaging Correlation Society, Springer, pp 121–124 Dizaji MS, Alipour M, Harris DK (2017) Leveraging Vision for Structural Identification: A Digital Image Correlation Based Approach. International Digital Imaging Correlation Society, Springer, pp 121–124
Metadaten
Titel
An Experimental-Computational Correlated Study for Describing the Failure Characteristics of Concrete across Two Scale Levels: Mixture and Structural Component
verfasst von
A. Gheitasi
D. K. Harris
M. Hansen
Publikationsdatum
04.08.2017
Verlag
Springer US
Erschienen in
Experimental Mechanics / Ausgabe 1/2018
Print ISSN: 0014-4851
Elektronische ISSN: 1741-2765
DOI
https://doi.org/10.1007/s11340-017-0319-6

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