Received Date: March 16, 2016 Accepted Date: April 06, 2016 Published Date:April 11, 2016
Citation:Abatta LR, Arroyo CR, Vaca AV, Debut A, Goyos L, et al. (2016) Analysis of the Fracture of Steel Reinforcing Bars under Low Cycle Fatigue. Biol Med (Aligarh) 8:285. doi:10.4172/0974-8369.1000285
Copyright: © 2016 Abatta LR, et al. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution and reproduction in any medium, provided the original author and source are credited.
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In this work we have analyzed the dynamic behavior of steel reinforcing bars under low cycle force-controlled fatigue measurements. We compare the results obtained for rebars produced by three steel companies of Ecuador, which fulfill the technical requirements of the national standards specified in ASTM A706. The measurements were carried out by using an universal testing machine model MTS 810. To determine the critical factors on the dynamic response of reinforcing bars, we have characterized the fractured section by macroscopic parameters and employing the Scanning Electron Microscopy (SEM). The results obtained point out that, although the three companies produce rebars with similar static behavior exist important differences on their dynamical properties.
Low cycle fatigue; Steel reinforcing bars; ASTM A706
Steel reinforcing bars, also known as rebars, are largely used in the construction industry to strengthen and hold concrete structures together. The mechanical parameters used for the characterization of rebars are the yield strength, the ultimate strength and the elongation. Such parameters fully characterize the static mechanical behavior of rebars while the dynamical characteristics are largely ignored in most of the specifications [1,2]. One of the reasons to not take into account the dynamical properties is the complexity and cost of the experimental setup. Another reason is the fact that the dynamic values critically depend on the manufacturing procedures and the alloy composition of the steel, which are hardly reproducible. However, the knowledge of the dynamic properties is essential for predicting the effects due to tsunamis, earthquakes, tornadoes and hurricanes on buildings and infrastructures. For example, during a seismic event, the concrete structures are subjected to lateral loads, which are mostly concentrated in the junctions (Figure 1) and results in structural failure [3,4]. Reversible loads applied to a structure produce the fracture of the concrete section (Figure 2) which evidence that the energy dissipation limit has been reached. In the current study, the dynamic response of steel reinforcing bars has been evaluated under low cycle forcecontrolled fatigue measurements. We compare the results obtained for rebars of 12 mm of diameter produced by three different Ecuadorian companies, which have achieved the technical standards for commercialization.
Figure 1: Simulation of the distribution of moments for a seismic event. In the top-left it can be observed that the fracture starts at the joints of a structure. In the left panel, it can be observed the distribution of moments for the structure shown in the top-right where red and yellow denote positive and negative moments respectively.
This research has been focused on corrugated steel rebars of 12 mm of diameter and yield strength of 412 MPa conforming to ASTM A706. The rebars are currently made and sold in Ecuador by three important companies, which will be denoted as yellow, white and red in the rest of the paper. The rebars, directly obtained from the market, were cut in lengths of 40 cm and marked every 60 mm in order to measure the percent of elongation at the end of each test.
Then, each rebar was anchored to the universal testing machine MTS 810 by its ends using grips and a longitudinal force was applied. To simulate the loading and unloading tension of a seismic event, we have applied a sinusoidal wave at a frequency 1 Hz. To ensure reproducibility, we have performed low cycle force-controlled fatigue measurements in 10 different rebars of each company.
In Figure 3, it is represented a typical low cycle force-controlled fatigue test performed at room temperature 25°C. The low cycle forcecontrolled fatigue tests are performed under tensile stress and focused in the plastic deformation stage once the elastic limit of the material has been reached. The rebar is elongated during 1 s and then the force is relaxed. Successive cycles were applied until the breaking of the rebar. At the end of the test the number of cycles before the breaking and the percentage of elongation of the fractured segment are registered for each rebar.
The microstructures observed on the SEM images of the fractured sections, shown in Figure 4, are typical of a fracture due to fatigue . It is important to note that in all the experiments performed the cracking or fracture starts at the end or beginning of a corrugation.
As observed in Figure 5a, all three type of samples (e.g. white, yellow and red) have similar percentage of elongation, which is according to the Ecuadorian standards, as it is mentioned in INEN 2167 (2011). The Yellow rebar has better behavior under dynamic loads resulting in up to 32 cycles, as observed in Figure 5b.
With the aim of characterize the dynamic behavior of steel reinforcing bars, we have performed low cycle force-controlled fatigue test on rebars of three different Ecuadorian steel companies. Although the static characteristics of the rebars are quite similar, there are notable differences on the dynamic response. As it is observed in the results of our measurements, the number of cycles before the breaking is always higher for Yellow rebars, resulting in a better dynamic behavior than the others. However, the unknown about the alloy composition and the procedures of production make it hard to conclude which are the critical factors. Further work is in progress in order to determine the essential parameters, which determine the dynamic behavior of steel reinforcing bars.