Ultrafast Stiffening of Concentrated Thermoresponsive Mineral-Suspensions (2022-07)¶
, Mehdipour Iman, , , Bauchy Mathieu, Garboczi Edward, , ,
Journal Article - Materials & Design, Vol. 221
Abstract
Extrusion-based 3D printing with rapidly hardening polymeric materials is capable of building almost any conceivable structure. However, concrete, one of the most widely used materials for large-scale structural components, is generally based on inorganic binder materials like Portland cement. Unlike polymeric materials, a lack of precise control of the extent and rate of solidification of cement-based suspensions is a major issue that affects the ability to 3D-print geometrically complex structures. Here, we demonstrate a novel method for controllable-rapid solidification of concentrated mineral suspensions that contain a polymer binder system based on epoxy and thiol precursors as well as one or more mineral fillers like quartz and calcite. The thermally triggered epoxy-thiol condensation polymerization induces 50 °C and 90 °C achieving average stiffening rates up to 400 Pa/s. The use of nucleophilic initiators such rapid stiffening of the hybrid suspensions (0.30 / 0.60), at trigger temperatures ranging between as 1-methylimidazole provides control over the activation temperature and curing rate, thereby helping to achieve an adjustable induction period and excellent thermal latency. By using multiple techniques, we provide guidelines to create designer compositions of mineral suspensions that utilize thermal triggers to achieve thermal latency and ultrafast stiffening – prerequisite attributes for 3D-manufacturing of topologically-optimized structural components.
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20 References
- Anton Ana-Maria, Bedarf Patrick, Yoo Angela, Dillenburger Benjamin et al. (2020-09)
Concrete Choreography:
Prefabrication of 3D Printed Columns - Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
3D Printing Using Concrete-Extrusion:
A Roadmap for Research - Gosselin Clément, Duballet Romain, Roux Philippe, Gaudillière-Jami Nadja et al. (2016-03)
Large-Scale 3D Printing of Ultra-High-Performance Concrete:
A New Processing Route for Architects and Builders - Hambach Manuel, Möller Hendrik, Neumann Thomas, Volkmer Dirk (2016-08)
Portland-Cement-Paste with Aligned Carbon-Fibers Exhibiting Exceptionally High Flexural Strength (>100 MPa) - Khalil Noura, Aouad Georges, Cheikh Khadija, Rémond Sébastien (2017-09)
Use of Calcium-Sulfoaluminate-Cements for Setting-Control of 3D Printing Mortars - Khalil Noura, Rémond Sébastien, Baz Bilal, Aouad Georges (2018-09)
Characterization of 3D Printing Mortars Made with OPC-CSA Mixes - Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
Particle-Bed 3D Printing in Concrete Construction:
Possibilities and Challenges - Mechtcherine Viktor, Bos Freek, Perrot Arnaud, Silva Wilson et al. (2020-03)
Extrusion-Based Additive Manufacturing with Cement-Based Materials:
Production Steps, Processes, and Their Underlying Physics - Mohan Manu, Rahul Attupurathu, Schutter Geert, Tittelboom Kim (2020-10)
Extrusion-Based Concrete 3D Printing from a Material Perspective:
A State of the Art Review - Perrot Arnaud, Rangeard Damien, Pierre Alexandre (2015-02)
Structural Build-Up of Cement-Based Materials Used for 3D Printing-Extrusion-Techniques - Reiter Lex, Wangler Timothy, Anton Ana-Maria, Flatt Robert (2020-05)
Setting-on-Demand for Digital Concrete:
Principles, Measurements, Chemistry, Validation - Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2018-06)
The Role of Early-Age Structural Build-Up in Digital Fabrication with Concrete - Roussel Nicolas (2018-05)
Rheological Requirements for Printable Concretes - Roussel Nicolas, Bessaies-Bey Hela, Kawashima Shiho, Marchon Delphine et al. (2019-08)
Recent Advances on Yield-Stress and Elasticity of Fresh Cement-Based Materials - Schutter Geert, Lesage Karel (2018-09)
Active Control of Properties of Concrete:
A (P)Review - Schutter Geert, Lesage Karel, Mechtcherine Viktor, Nerella Venkatesh et al. (2018-08)
Vision of 3D Printing with Concrete:
Technical, Economic and Environmental Potentials - Soto Borja, Agustí-Juan Isolda, Hunhevicz Jens, Joss Samuel et al. (2018-05)
Productivity of Digital Fabrication in Construction:
Cost and Time-Analysis of a Robotically Built Wall - Vantyghem Gieljan, Corte Wouter, Shakour Emad, Amir Oded (2020-01)
3D Printing of a Post-Tensioned Concrete Girder Designed by Topology-Optimization - Wolfs Robert, Bos Freek, Salet Theo (2018-02)
Early-Age Mechanical Behaviour of 3D Printed Concrete:
Numerical Modelling and Experimental Testing - Wolfs Robert, Suiker Akke (2019-06)
Structural Failure During Extrusion-Based 3D Printing Processes
3 Citations
- Kandy Sharu, Remke Sebastian, Ranganathan Thiyagarajan, Wani Shubham et al. (2025-01)
Design and Function of Thermoresponsive-Ultrafast Stiffening Suspension Formulations for 3D Printing - Dai Xiaodi, Kandy Sharu, Neithalath Narayanan, Kumar Aditya et al. (2024-11)
Thermally Stimulated Stiffening and Fly-Ash’s Alkaline-Activation by Ca(OH)2 Addition Facilitates 3D Printing - Remke Sebastian, Sant Gaurav, Gädt Torben (2023-12)
Investigation of a Hybrid Binder System for Large-Scale 3D Printing
BibTeX
@article{kand_mehd_neit_kuma.2022.USoCTMS,
author = "Sharu Bhagavathi Kandy and Iman Mehdipour and Narayanan Neithalath and Aditya Kumar and Mathieu Bauchy and Edward J. Garboczi and Samanvaya Srivastava and Torben Gädt and Gaurav Sant",
title = "Ultrafast Stiffening of Concentrated Thermoresponsive Mineral-Suspensions",
doi = "10.1016/j.matdes.2022.110905",
year = "2022",
journal = "Materials & Design",
volume = "221",
}
Formatted Citation
S. B. Kandy, “Ultrafast Stiffening of Concentrated Thermoresponsive Mineral-Suspensions”, Materials & Design, vol. 221, 2022, doi: 10.1016/j.matdes.2022.110905.
Kandy, Sharu Bhagavathi, Iman Mehdipour, Narayanan Neithalath, Aditya Kumar, Mathieu Bauchy, Edward J. Garboczi, Samanvaya Srivastava, Torben Gädt, and Gaurav Sant. “Ultrafast Stiffening of Concentrated Thermoresponsive Mineral-Suspensions”. Materials & Design 221 (2022). https://doi.org/10.1016/j.matdes.2022.110905.