Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites
In the concrete industry, various R&D efforts have been devoted to self-healing technology, which can maintain the long-term performance of concrete structures, which is important in terms of sustainable development. Cracks in cement composites occur and propagate because of various internal and...
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doaj-24bb10416b13483cb25baac29f3e92652021-08-26T14:01:05ZengMDPI AGMaterials1996-19442021-08-01144578457810.3390/ma14164578Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement CompositesSe-Jin Choi0Ji-Hwan Kim1Hyojin Jeong2Ja-Sung Lee3Tae-Uk Lim4Haye Min Ko5Sung Hoon Kim6Wonsuk Jung7Department of Architectural Engineering, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaDepartment of Architectural Engineering, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaDepartment of Chemistry, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaDepartment of Electronics Convergence Engineering, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaSchool of Mechanical Engineering, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon 34134, KoreaDepartment of Chemistry & Wonkwang, Institute of Material Science and Technology, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaDepartment of Electronics Convergence Engineering & Wonkang, Institute of Material Science and Technology, Wonkwang University, 460 Iksan-daero, Iksan 54538, KoreaSchool of Mechanical Engineering, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon 34134, KoreaIn the concrete industry, various R&D efforts have been devoted to self-healing technology, which can maintain the long-term performance of concrete structures, which is important in terms of sustainable development. Cracks in cement composites occur and propagate because of various internal and external factors, reducing the composite’s stability. Interest in “self-healing” materials that can repair cracks has led researchers to embed self-healing capsules in cement composites. Overcoming the limitations of polymer capsules produced by chemical manufacturing methods, three-dimensional (3D) printing can produce capsules quickly and accurately and offers advantages such as high material strength, low cost, and the ability to fabricate capsules with complex geometries. We performed structural analysis simulations, experimentally evaluated the mechanical properties and solubility of poly(lactic acid) (PLA) capsules, and examined the effect of the capsule wall thickness and printing direction on cement composites embedded with these capsules. Thicker capsules withstood larger bursting loads, and the capsule rupture characteristics varied with the printing angle. Thus, the capsule design parameters must be optimized for different environments. Although the embedded capsules slightly reduced the compressive strength of the cement composites, the benefit of the encapsulated self-healing agent is expected to overcome this disadvantage.https://www.mdpi.com/1996-1944/14/16/45783D-printed capsulemechanical propertysolubilitycement compositecompressive strength |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Se-Jin Choi Ji-Hwan Kim Hyojin Jeong Ja-Sung Lee Tae-Uk Lim Haye Min Ko Sung Hoon Kim Wonsuk Jung |
spellingShingle |
Se-Jin Choi Ji-Hwan Kim Hyojin Jeong Ja-Sung Lee Tae-Uk Lim Haye Min Ko Sung Hoon Kim Wonsuk Jung Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites Materials 3D-printed capsule mechanical property solubility cement composite compressive strength |
author_facet |
Se-Jin Choi Ji-Hwan Kim Hyojin Jeong Ja-Sung Lee Tae-Uk Lim Haye Min Ko Sung Hoon Kim Wonsuk Jung |
author_sort |
Se-Jin Choi |
title |
Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites |
title_short |
Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites |
title_full |
Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites |
title_fullStr |
Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites |
title_full_unstemmed |
Simulated and Experimental Investigation of the Mechanical Properties and Solubility of 3D-Printed Capsules for Self-Healing Cement Composites |
title_sort |
simulated and experimental investigation of the mechanical properties and solubility of 3d-printed capsules for self-healing cement composites |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2021-08-01 |
description |
In the concrete industry, various R&D efforts have been devoted to self-healing technology, which can maintain the long-term performance of concrete structures, which is important in terms of sustainable development. Cracks in cement composites occur and propagate because of various internal and external factors, reducing the composite’s stability. Interest in “self-healing” materials that can repair cracks has led researchers to embed self-healing capsules in cement composites. Overcoming the limitations of polymer capsules produced by chemical manufacturing methods, three-dimensional (3D) printing can produce capsules quickly and accurately and offers advantages such as high material strength, low cost, and the ability to fabricate capsules with complex geometries. We performed structural analysis simulations, experimentally evaluated the mechanical properties and solubility of poly(lactic acid) (PLA) capsules, and examined the effect of the capsule wall thickness and printing direction on cement composites embedded with these capsules. Thicker capsules withstood larger bursting loads, and the capsule rupture characteristics varied with the printing angle. Thus, the capsule design parameters must be optimized for different environments. Although the embedded capsules slightly reduced the compressive strength of the cement composites, the benefit of the encapsulated self-healing agent is expected to overcome this disadvantage. |
topic |
3D-printed capsule mechanical property solubility cement composite compressive strength |
url |
https://www.mdpi.com/1996-1944/14/16/4578 |
work_keys_str_mv |
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