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Additives and Fillers in Concrete01:29

Additives and Fillers in Concrete

117
Additives and fillers are integral to enhancing the properties of concrete. Pozzolans and blast-furnace slag are additives or admixtures due to their reactions with calcium hydroxide released during cement hydration. Fillers, which are finely ground and similar in fineness to Portland cement, improve concrete attributes such as workability density, and reduce capillary bleeding or cracking. Some fillers possess hydraulic properties or participate in benign reactions within the cement paste.
The...
117
Fiber Reinforced Concrete01:22

Fiber Reinforced Concrete

108
Fiber-reinforced concrete significantly enhances the structural and nonstructural properties of traditional concrete by incorporating fibers like steel, glass, and polymers. These fibers, varying from natural ones such as sisal and cellulose to manufactured ones like polypropylene and Kevlar, are mixed into hydraulic cement with aggregates. Steel fibers, often preferred for their robustness, contribute to improved ductility, toughness, and post-cracking performance. The concrete is classified...
108
Superplasticizers01:30

Superplasticizers

107
Superplasticizers are advanced admixtures that enhance the workability of concrete by lowering the water content without compromising the strength of the material. These substances are highly effective water reducers, improving concrete flow, making it easier to work with, and enabling concrete to reach inaccessible areas or densely reinforced sections without mechanical vibration. The key components in superplasticizers are either sulfonated melamine or naphthalene formaldehyde condensates,...
107
Accelerated Curing of Concrete01:25

Accelerated Curing of Concrete

201
Accelerating concrete curing is achieved by applying heat and additional moisture. This process accelerates the hydration of the cement, resulting in an earlier strength gain in the concrete. Steam curing is a method wherein the concrete products are either transported through a chamber on a conveyor belt or encased in plastic, allowing steam at atmospheric pressure to circulate freely around them. This process begins with a phase of moist curing that typically lasts between 3 to 5 hours, after...
201
Effects of Air-entrainment in Concrete01:28

Effects of Air-entrainment in Concrete

117
Air entrainment in concrete significantly enhances the material's durability, especially in environments subjected to freeze-thaw cycles. Introducing small air bubbles into the concrete mix acts as internal voids that accommodate the expansion of water when it freezes, thereby alleviating internal stress and preventing structural cracks. This function is crucial in climates with significant freezing and thawing, as it protects the concrete from repeated stresses that could lead to premature...
117
Concrete01:20

Concrete

396
Concrete is a vital construction material extensively used worldwide, primarily valued for its strength, durability, and versatility, which it provides for various structural designs. Concrete generally comprises ingredients like Portland cement, coarse gravel, fine sand, and water. Concrete can be mixed by simple hand methods or industrially at computer-controlled plants. The mixture consists of aggregates and a paste made from water and Portland cement. This paste coats the aggregates and,...
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Updated: Jul 30, 2025

Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration
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Nanomaterials as Promising Additives for High-Performance 3D-Printed Concrete: A Critical Review.

Mehrdad Razzaghian Ghadikolaee1,2, Elena Cerro-Prada2, Zhu Pan3,4

  • 1Nanomaterials Research Centre, School of Civil Engineering, Iran University of Science and Technology, Tehran 13114-16846, Iran.

Nanomaterials (Basel, Switzerland)
|May 13, 2023
PubMed
Summary

Adding nano- and micro-scale additives to three-dimensional (3D) printed concrete (3DPC) enhances its fresh and hardened properties. These additives improve thixotropy, reduce porosity, and increase mechanical strength, paving the way for advanced construction materials.

Keywords:
3D printingadditivesconcretedigital fabricationnanomaterials

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Area of Science:

  • Materials Science
  • Civil Engineering
  • Additive Manufacturing

Background:

  • Three-dimensional (3D) printed concrete (3DPC) is a transformative digital fabrication technology in construction.
  • Optimizing 3DPC performance relies heavily on precise mix design and the incorporation of advanced additives.
  • Nano- and micro-scale additives are increasingly explored to enhance 3DPC properties.

Purpose of the Study:

  • To comprehensively review the design properties of 3DPC incorporating nano- and micro-scale additives.
  • To analyze the impact of these additives on both fresh and hardened states of 3DPC.
  • To identify current research gaps and future research directions for additive-enhanced 3DPC.

Main Methods:

  • Literature review of studies on nano- and micro-additive incorporation in 3DPC.
  • Analysis of fresh state properties including thixotropy, yield stress, and viscosity recovery.
  • Evaluation of hardened state characteristics such as porosity, permeability, and mechanical strength.

Main Results:

  • Nanomaterials act as thickeners, improving thixotropic behavior and structural build-up in 3DPC.
  • Additives lead to higher yield stress and better viscosity recovery, crucial for printability.
  • Incorporation of nano- and micro-additives results in reduced porosity and permeability, and enhanced mechanical strengths.

Conclusions:

  • Nano- and micro-additives significantly enhance the performance of 3DPC in both fresh and hardened states.
  • Further research is needed to fully understand the impact on hardened properties and specific 3DPC types (e.g., lightweight).
  • Investigating the effect on inter-layer bond strength and exploring sustainable waste/biomass-derived additives are key future directions.