Towards Accurate In-situ Static Yield Stress Measurement For 3D Concrete Printing: A Study On Novel Fast Penetration Test
Abstract
The accurate measurement of static yield stress is crucial for the success of 3D concrete printing (3DCP), ensuring the stability and buildability of printed layers. Traditional methods, like rotational rheometry, face limitations in applicability for 3DCP due to issues with portability. This paper introduces a novel fast penetration test approach for determining static yield stress of cement-based printing materials, using an automatic, portable device tailored for in-situ measurements. The influence of key test parameters, including penetration speed and probe geometry are investigated. Different theoretical frameworks including force equilibrium, fluid dynamics, and solid plasticity models are evaluated for calculating static yield stress from penetration force. The optimal penetration speed was found to be 0.5 mm/s, achieving the highest correlation with traditional rheometer test results (R2 = 0.96). Both conical and spherical probes demonstrated acceptable correlations with vane test results (R2 = 0.96 and 0.95, respectively) with no significant difference. While the force equilibrium and fluid dynamic methods overestimated yield stress by 240 % and 140 %, respectively, the solid plasticity approach emerged as the most accurate, aligning within 12 % of static yield stress values obtained from the vane rheometer.
Recommended Citation
A. Fasihi and N. A. Libre, "Towards Accurate In-situ Static Yield Stress Measurement For 3D Concrete Printing: A Study On Novel Fast Penetration Test," Journal of Building Engineering, vol. 108, article no. 113002, Elsevier, Aug 2025.
The definitive version is available at https://doi.org/10.1016/j.jobe.2025.113002
Department(s)
Civil, Architectural and Environmental Engineering
Keywords and Phrases
3D concrete printing; Fast penetration test; Fluid dynamics; Rheological properties; Solid plasticity; Static yield stress; Theoretical framework
International Standard Serial Number (ISSN)
2352-7102
Document Type
Article - Journal
Document Version
Citation
File Type
text
Language(s)
English
Rights
© 2025 Elsevier, All rights reserved.
Publication Date
15 Aug 2025
