Steel and Composite Structures
Volume 48, Number 1, 2023, pages 43-57
DOI: 10.12989/scs.2023.48.1.043
Experimental and numerical investigation on flexural response of reinforced rubberized concrete beams using waste tire rubber
Memduh Karalar, Hakan Ozturk and Yasin Onuralp Ozkilic
Abstract
The impacts of waste tire rubber (WTR) on the bending conduct of reinforced concrete beams (RCBs) are
investigated in visualization of experimental tests and 3D finite element model (FEM) using both ANSYS and SAP2000.
Several WTR rates are used in total 4 various full scale RCBs to observe the impact of WTR rate on the rupture and bending
conduct of RCBs. For this purpose, the volumetric ratios (Vf) of WTR were chosen to change to 0%, 2.5%, 5% and 7.5% in the
whole concrete. In relation to experimental test consequences, bending and rupture behaviors of the RCBs are observed. The
best performance among the beams was observed in the beams with 2.5% WTR. Furthermore, as stated by test consequences, it
is noticed that while WTR rate in the RCBs is improved, max. bending in the RCBs rises. For test consequences, it is clearly
recognized as WTR rate in the RCB mixture is improved from 0% to 2.5%, deformation value in the RCB remarkably rises
from 3.89 cm to 7.69 cm. This consequence is markedly recognized that WTR rates have a favorable result on deformation
values in the RCBs. Furthermore, experimental tests are compared to 3D FEM consequences via using ANSYS software. In the
ANSYS, special element types are formed and nonlinear multilinear misses plasticity material model and bilinear misses
plasticity material model are chosen for concrete and compression and tension elements. As a consequence, it is noticed that
each WTR rates in the RCBs mixture have dissimilar bending and rupture impacts on the RCBs. Then, to observe the impacts of
WTR rate on the constructions under near-fault ground motions, a reinforced-concrete building was modelled via using
SAP2000 software using 3-D model of the construction to complete nonlinear static analysis. Beam, column, steel haunch
elements are modeled as nonlinear frame elements. Consequently, the seismic impacts of WTR rate on the lateral motions of
each floor are obviously investigated particularly. Considering reduction in weight of structure and capacity of the members with
using waste tire rubber, 2.5% of WTR resulted in the best performance while the construction is subjected to near fault
earthquakes. Moreover, it is noticeably recognized that WTR rate has opposing influences on the seismic displacement behavior
of the RC constructions.
Key Words
bending behavior, finite element analysis, rupture conduct, reinforced concrete beam, waste tire rubber, earthquake
Address
Memduh Karalar:Department of Civil Engineering, Zonguldak Bulent Ecevit, 71450, K