Cargando…

Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology

With the recent development of 3D printing technology, concrete materials are sometimes used in 3D printing. Concrete structures based on 3D printing have been characterized to have the form of multiple layer build-up. Unlike general concrete structures, therefore, the 3D-printed concrete can be reg...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Kyeongjin, Park, Sangmin, Kim, WooSeok, Jeong, Yoseok, Lee, Jaeha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5744284/
http://dx.doi.org/10.3390/ma10121349
_version_ 1783288713189523456
author Kim, Kyeongjin
Park, Sangmin
Kim, WooSeok
Jeong, Yoseok
Lee, Jaeha
author_facet Kim, Kyeongjin
Park, Sangmin
Kim, WooSeok
Jeong, Yoseok
Lee, Jaeha
author_sort Kim, Kyeongjin
collection PubMed
description With the recent development of 3D printing technology, concrete materials are sometimes used in 3D printing. Concrete structures based on 3D printing have been characterized to have the form of multiple layer build-up. Unlike general concrete structures, therefore, the 3D-printed concrete can be regarded as an orthotropic material. The material property of the 3D-printed concrete’s interface between layers is expected to be far different from that of general concrete bodies since there are no aggregate interlocks and weak chemical bonding. Such a difference finally affects the structural performance of concrete structures even though the interfaces are formed before initial setting of the concrete. The current study mainly reviewed the changes in fracture energy (toughness) with respect to various environmental conditions of such interface. Changes in fracture energies of interfaces between concrete layers were measured using low-speed Crack Mouth Opening Displacement (CMOD) closed loop concrete fracture test. The experimental results indicated reduction in fracture energy as well as tensile strengths. To improve the tensile strength of interfaces, the use of bridging materials is suggested. Since it was assumed that reduction in fracture energy could be a cause of shear strength, to evaluate the reduced structural performance of concrete structure constructed with multiple interfaces by 3D printing technology, the shear strength of RC beam by 3D printing technology was predicted and compared with that of plain RC beam. Based on the fracture energy measured in this study, Modified Compression Field Theory (MCFT) theory-applied Vector 2 program was employed to predict the degree of reduction in shear strength without considering stirrups. Reduction factors were presented based on the obtained results to predict the reduction in shear strength due to interfaces before initial setting of the concrete.
format Online
Article
Text
id pubmed-5744284
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-57442842017-12-31 Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology Kim, Kyeongjin Park, Sangmin Kim, WooSeok Jeong, Yoseok Lee, Jaeha Materials (Basel) Article With the recent development of 3D printing technology, concrete materials are sometimes used in 3D printing. Concrete structures based on 3D printing have been characterized to have the form of multiple layer build-up. Unlike general concrete structures, therefore, the 3D-printed concrete can be regarded as an orthotropic material. The material property of the 3D-printed concrete’s interface between layers is expected to be far different from that of general concrete bodies since there are no aggregate interlocks and weak chemical bonding. Such a difference finally affects the structural performance of concrete structures even though the interfaces are formed before initial setting of the concrete. The current study mainly reviewed the changes in fracture energy (toughness) with respect to various environmental conditions of such interface. Changes in fracture energies of interfaces between concrete layers were measured using low-speed Crack Mouth Opening Displacement (CMOD) closed loop concrete fracture test. The experimental results indicated reduction in fracture energy as well as tensile strengths. To improve the tensile strength of interfaces, the use of bridging materials is suggested. Since it was assumed that reduction in fracture energy could be a cause of shear strength, to evaluate the reduced structural performance of concrete structure constructed with multiple interfaces by 3D printing technology, the shear strength of RC beam by 3D printing technology was predicted and compared with that of plain RC beam. Based on the fracture energy measured in this study, Modified Compression Field Theory (MCFT) theory-applied Vector 2 program was employed to predict the degree of reduction in shear strength without considering stirrups. Reduction factors were presented based on the obtained results to predict the reduction in shear strength due to interfaces before initial setting of the concrete. MDPI 2017-11-24 /pmc/articles/PMC5744284/ http://dx.doi.org/10.3390/ma10121349 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kim, Kyeongjin
Park, Sangmin
Kim, WooSeok
Jeong, Yoseok
Lee, Jaeha
Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title_full Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title_fullStr Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title_full_unstemmed Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title_short Evaluation of Shear Strength of RC Beams with Multiple Interfaces Formed before Initial Setting Using 3D Printing Technology
title_sort evaluation of shear strength of rc beams with multiple interfaces formed before initial setting using 3d printing technology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5744284/
http://dx.doi.org/10.3390/ma10121349
work_keys_str_mv AT kimkyeongjin evaluationofshearstrengthofrcbeamswithmultipleinterfacesformedbeforeinitialsettingusing3dprintingtechnology
AT parksangmin evaluationofshearstrengthofrcbeamswithmultipleinterfacesformedbeforeinitialsettingusing3dprintingtechnology
AT kimwooseok evaluationofshearstrengthofrcbeamswithmultipleinterfacesformedbeforeinitialsettingusing3dprintingtechnology
AT jeongyoseok evaluationofshearstrengthofrcbeamswithmultipleinterfacesformedbeforeinitialsettingusing3dprintingtechnology
AT leejaeha evaluationofshearstrengthofrcbeamswithmultipleinterfacesformedbeforeinitialsettingusing3dprintingtechnology