Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs

The main objectives of this study are to evaluate the effect of geometrical constraints of plain concrete and reinforced concrete slabs on the Wenner four-point concrete electrical resistivity (ER) test through numerical and experimental investigation and to propose measurement recommendations for l...

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Main Authors: Kevin Paolo V. Robles, Jurng-Jae Yee, Seong-Hoon Kee
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/21/13/4622
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spelling doaj-2f4d047215b4408dba4b2637508a8fc42021-07-15T15:46:08ZengMDPI AGSensors1424-82202021-07-01214622462210.3390/s21134622Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete SlabsKevin Paolo V. Robles0Jurng-Jae Yee1Seong-Hoon Kee2Department of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, KoreaDepartment of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, KoreaDepartment of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, KoreaThe main objectives of this study are to evaluate the effect of geometrical constraints of plain concrete and reinforced concrete slabs on the Wenner four-point concrete electrical resistivity (ER) test through numerical and experimental investigation and to propose measurement recommendations for laboratory and field specimens. First, a series of numerical simulations was performed using a 3D finite element model to investigate the effects of geometrical constraints (the dimension of concrete slabs, the electrode spacing and configuration, and the distance of the electrode to the edges of concrete slabs) on ER measurements of concrete. Next, a reinforced concrete slab specimen (1500 mm (width) by 1500 mm (length) by 300 mm (thickness)) was used for experimental investigation and validation of the numerical simulation results. Based on the analytical and experimental results, it is concluded that measured ER values of regularly shaped concrete elements are strongly dependent on the distance-to-spacing ratio of ER probes (i.e., distance of the electrode in ER probes to the edges and/or the bottom of the concrete slabs normalized by the electrode spacing). For the plain concrete, it is inferred that the thickness of the concrete member should be at least three times the electrode spacing. In addition, the distance should be more than twice the electrode spacing to make the edge effect almost negligible. It is observed that the findings from the plain concrete are also valid for the reinforced concrete. However, for the reinforced concrete, the ER values are also affected by the presence of reinforcing steel and saturation of concrete, which could cause disruptions in ER measurements.https://www.mdpi.com/1424-8220/21/13/4622electrical resistivity of concretegeometrical constraintreinforcing steelsaturation
collection DOAJ
language English
format Article
sources DOAJ
author Kevin Paolo V. Robles
Jurng-Jae Yee
Seong-Hoon Kee
spellingShingle Kevin Paolo V. Robles
Jurng-Jae Yee
Seong-Hoon Kee
Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
Sensors
electrical resistivity of concrete
geometrical constraint
reinforcing steel
saturation
author_facet Kevin Paolo V. Robles
Jurng-Jae Yee
Seong-Hoon Kee
author_sort Kevin Paolo V. Robles
title Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
title_short Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
title_full Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
title_fullStr Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
title_full_unstemmed Effect of the Geometrical Constraints to the Wenner Four-Point Electrical Resistivity Test of Reinforced Concrete Slabs
title_sort effect of the geometrical constraints to the wenner four-point electrical resistivity test of reinforced concrete slabs
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2021-07-01
description The main objectives of this study are to evaluate the effect of geometrical constraints of plain concrete and reinforced concrete slabs on the Wenner four-point concrete electrical resistivity (ER) test through numerical and experimental investigation and to propose measurement recommendations for laboratory and field specimens. First, a series of numerical simulations was performed using a 3D finite element model to investigate the effects of geometrical constraints (the dimension of concrete slabs, the electrode spacing and configuration, and the distance of the electrode to the edges of concrete slabs) on ER measurements of concrete. Next, a reinforced concrete slab specimen (1500 mm (width) by 1500 mm (length) by 300 mm (thickness)) was used for experimental investigation and validation of the numerical simulation results. Based on the analytical and experimental results, it is concluded that measured ER values of regularly shaped concrete elements are strongly dependent on the distance-to-spacing ratio of ER probes (i.e., distance of the electrode in ER probes to the edges and/or the bottom of the concrete slabs normalized by the electrode spacing). For the plain concrete, it is inferred that the thickness of the concrete member should be at least three times the electrode spacing. In addition, the distance should be more than twice the electrode spacing to make the edge effect almost negligible. It is observed that the findings from the plain concrete are also valid for the reinforced concrete. However, for the reinforced concrete, the ER values are also affected by the presence of reinforcing steel and saturation of concrete, which could cause disruptions in ER measurements.
topic electrical resistivity of concrete
geometrical constraint
reinforcing steel
saturation
url https://www.mdpi.com/1424-8220/21/13/4622
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