Crack formation in eccentrically compressed reinforced concrete elements subjected to combined compression and torsion

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Рұқсат ақылы немесе тек жазылушылар үшін

Аннотация

A calculation methodology and analytical model are presented for determining deformation parameters and crack width in eccentrically compressed reinforced concrete elements subjected to combined compression and torsion. The analytical relationships are derived using static equilibrium equations under the simultaneous action of torsional moment and eccentric loading, taking into account the deformation effect proposed by Vl.I. Kolchunov. The physical essence of this effect lies in the fact that upon failure of the tensile concrete and crack formation, the crack opening displacements are restrained by the reaction of the reinforcing bar, resulting in a nonlinear curvature of the crack profile. This phenomenon is accounted for in the analytical relationships when determining the relative mutual displacements of concrete and reinforcement between two adjacent cracks. Using the derived analytical relationships, the crack width in a lightly reinforced eccentrically compressed concrete element under combined compression and torsion is calculated. The computational results are compared with experimental data obtained from testing structural elements under the considered stress state, as well as with results from design methods specified in Russian and international standards. It is shown that the proposed analytical relationships satisfactorily reflect the quantitative values of experimentally measured crack widths in reinforced concrete elements under the given complex stress state.

Толық мәтін

Рұқсат жабық

Авторлар туралы

M. Amelina

National Research Moscow State University of Civil Engineering

Хат алмасуға жауапты Автор.
Email: margo.dremova@mail.ru

Postgraduate Student 

Ресей, 26, Yaroslavskoe Highway, Moscow, 129337

Vl. Kolchunov

National Research Moscow State University of Civil Engineering; Scientific-Research Institute of Building Physics of RAACS

Email: vlik52@mail.ru

Doctor of Sciences (Engineering) 

Ресей, 26, Yaroslavskoe Highway, Moscow, 129337; 21, Lokomotivniy Driveway, Moscow, 127238

N. Fedorova

National Research Moscow State University of Civil Engineering; Scientific-Research Institute of Building Physics of RAACS

Email: fedorovanv@mgsu.ru

Doctor of Sciences (Engineering) 

Ресей, 26, Yaroslavskoe Highway, Moscow, 129337; 21, Lokomotivniy Driveway, Moscow, 127238

Әдебиет тізімі

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Әрекет
1. JATS XML
2. Fig. 1. Design model of an eccentrically compressed reinforced concrete element under torsion: а – force diagram in the spatial section; b – spatial crack pattern; c – equivalent box section; d – cross-section for determining shear forces in the box-section wall due to torsional moment

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3. Fig. 2. Characteristic strain diagrams in inclined reinforcement bars according to the model [15, 15]: а – for distributed cracking; b – for a single crack

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4. Fig. 3. Characteristic experimental stress diagrams (key points T1, T2, T3...T7) in longitudinal and inclined reinforcement bars and concrete in regions between adjacent cracks (а), and stress diagrams in the reinforcement-concrete interaction zone for determining relative strains at crack faces (b)

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5. Fig. 4. Test specimen configuration of lightweight high-strength reinforced concrete element: а – formwork; b – reinforcement layout; c – general view in test setup

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6. Fig. 5. Experimental crack pattern (а) and general failure mode (b) for specimen 1K-1

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