Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures

To demonstrate printability and fire performance of 3D printable fibre reinforced cementitious materials at elevated temperatures, large-scaling printing and fire performance testing are required for engineering applications. In this work, a mixture design of 3D printable fibre reinforced cementitio...

Full description

Bibliographic Details
Main Authors: Yiwei Weng, Mingyang Li, Zhixin Liu, Wenxin Lao, Bing Lu, Dong Zhang, Ming Jen Tan
Format: Article
Language:English
Published: Taylor & Francis Group 2019-07-01
Series:Virtual and Physical Prototyping
Subjects:
Online Access:http://dx.doi.org/10.1080/17452759.2018.1555046
_version_ 1797678677244248064
author Yiwei Weng
Mingyang Li
Zhixin Liu
Wenxin Lao
Bing Lu
Dong Zhang
Ming Jen Tan
author_facet Yiwei Weng
Mingyang Li
Zhixin Liu
Wenxin Lao
Bing Lu
Dong Zhang
Ming Jen Tan
author_sort Yiwei Weng
collection DOAJ
description To demonstrate printability and fire performance of 3D printable fibre reinforced cementitious materials at elevated temperatures, large-scaling printing and fire performance testing are required for engineering applications. In this work, a mixture design of 3D printable fibre reinforced cementitious composite (3DPFRCC) for large-scale printing was developed. A structure with dimensions of 78 × 60 × 90 cm (L × W × H) was printed by a gantry printer in 150 min, which demonstrates that the developed 3DPFRCC mixture possesses good buildability. The rheological property, setting-time, and mechanical properties under normal and elevated temperatures of the developed 3DPFRCC were then characterised. Final results indicate that the developed 3DPFRCC is suitable for engineering applications due to its good printability and mechanical properties under normal and elevated temperatures.
first_indexed 2024-03-11T23:03:23Z
format Article
id doaj.art-307ed60101b54d7db8acbbc53311691d
institution Directory Open Access Journal
issn 1745-2759
1745-2767
language English
last_indexed 2024-03-11T23:03:23Z
publishDate 2019-07-01
publisher Taylor & Francis Group
record_format Article
series Virtual and Physical Prototyping
spelling doaj.art-307ed60101b54d7db8acbbc53311691d2023-09-21T14:38:01ZengTaylor & Francis GroupVirtual and Physical Prototyping1745-27591745-27672019-07-0114328429210.1080/17452759.2018.15550461555046Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperaturesYiwei Weng0Mingyang Li1Zhixin Liu2Wenxin Lao3Bing Lu4Dong Zhang5Ming Jen Tan6Nanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityNanyang Technological UniversityTo demonstrate printability and fire performance of 3D printable fibre reinforced cementitious materials at elevated temperatures, large-scaling printing and fire performance testing are required for engineering applications. In this work, a mixture design of 3D printable fibre reinforced cementitious composite (3DPFRCC) for large-scale printing was developed. A structure with dimensions of 78 × 60 × 90 cm (L × W × H) was printed by a gantry printer in 150 min, which demonstrates that the developed 3DPFRCC mixture possesses good buildability. The rheological property, setting-time, and mechanical properties under normal and elevated temperatures of the developed 3DPFRCC were then characterised. Final results indicate that the developed 3DPFRCC is suitable for engineering applications due to its good printability and mechanical properties under normal and elevated temperatures.http://dx.doi.org/10.1080/17452759.2018.15550463d printingfibre reinforced cementitious materialsrheological propertieslarge-scale printinghigh temperatures
spellingShingle Yiwei Weng
Mingyang Li
Zhixin Liu
Wenxin Lao
Bing Lu
Dong Zhang
Ming Jen Tan
Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
Virtual and Physical Prototyping
3d printing
fibre reinforced cementitious materials
rheological properties
large-scale printing
high temperatures
title Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
title_full Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
title_fullStr Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
title_full_unstemmed Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
title_short Printability and fire performance of a developed 3D printable fibre reinforced cementitious composites under elevated temperatures
title_sort printability and fire performance of a developed 3d printable fibre reinforced cementitious composites under elevated temperatures
topic 3d printing
fibre reinforced cementitious materials
rheological properties
large-scale printing
high temperatures
url http://dx.doi.org/10.1080/17452759.2018.1555046
work_keys_str_mv AT yiweiweng printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT mingyangli printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT zhixinliu printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT wenxinlao printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT binglu printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT dongzhang printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures
AT mingjentan printabilityandfireperformanceofadeveloped3dprintablefibrereinforcedcementitiouscompositesunderelevatedtemperatures