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Related Concept Videos

Hydration of Cement01:24

Hydration of Cement

316
Hydration of cement is a chemical reaction between cement particles and water. This process occurs primarily through two mechanisms: through-solution and topochemical. In the through-solution process, anhydrous compounds dissolve into their constituents, hydrates form in the solution, and then precipitate from the supersaturated solution. The topochemical process involves solid-state reactions at the cement particle surface. The through-solution process dominates the topochemical process at the...
316
Strength and Heat of Hydration01:29

Strength and Heat of Hydration

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The hydration of cement is an exothermic reaction in which heat is generated as cement hydrates. This heat of hydration is critical to cement's strength development. The rate at which this heat is generated affects the temperature rise, with a majority of the heat being released early in the hydration process, half within the first three days, and about 75% within the first week.
The heat of hydration for each cement compound is significant; for instance, tricalcium aluminate (C3A) and...
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Accelerators01:17

Accelerators

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Accelerators in concrete serve as admixtures to speed up the hardening process, enabling the concrete to achieve early strength faster. Although accelerators do not necessarily impact the time it takes concrete to set, they reduce this time in practice. A common accelerator is calcium chloride, which is particularly useful for hastening early strength development in cold weather or for rapid repair jobs that require quick heat generation after mixing.
The effectiveness of calcium chloride can...
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Types of Cement I01:21

Types of Cement I

164
Portland cement comes in several types, each with distinct properties and applications based on their chemical composition and hydration characteristics:
Type I (Ordinary Portland Cement) is widely used for general construction where special properties are not required. It has moderate sulfate resistance and heat of hydration.
Type II (Modified Cement) offers moderate resistance to sulfate attack and a lower rate of heat development compared to Type I. It is suitable for structures in...
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Additives and Fillers in Concrete01:29

Additives and Fillers in Concrete

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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...
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Accelerated Curing of Concrete01:25

Accelerated Curing of Concrete

206
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...
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Related Experiment Video

Updated: Aug 9, 2025

Production and Analysis of Sporosarcina pasteurii Biocement Bricks Using Custom 3D-Printed Molds for Unconfined Compression Tests
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Recent Advances in C-S-H Nucleation Seeding for Improving Cement Performances.

Ana Cuesta1, Alejandro Morales-Cantero1, Angeles G De la Torre1

  • 1Departamento de Química Inorgánica, Cristalografía y Mineralogía, Universidad de Málaga, 29071 Málaga, Spain.

Materials (Basel, Switzerland)
|February 25, 2023
PubMed
Summary

This review explores the use of calcium silicate hydrate (C-S-H) nucleation seeding in cement to improve early and late mechanical performance. By accelerating hydration and refining microstructure, seeding may help overcome the strength loss caused by replacing Portland clinker with supplementary materials. The process also appears to enhance ettringite formation and reduce porosity, which could improve durability. While promising, the long-term effects and full benefits of seeding are still being studied. The review highlights the potential for this technique in various construction applications, including low-temperature concreting and precasting.

Keywords:
C-S-H nanoseedsacceleratorsadmixturesettringitemicrostructureC-S-H seedingCement hydrationEarly strength developmentSustainable construction materials

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Area of Science:

  • Cement chemistry and materials science
  • Construction materials engineering
  • Sustainable building technologies

Background:

The construction industry faces pressure to reduce its environmental impact, particularly the CO2 emissions from cement production. Portland clinker replacement with supplementary cementitious materials is a common strategy. However, this substitution often leads to reduced early mechanical strength due to slower pozzolanic reactions. Accelerator admixtures are used to mitigate this issue. Calcium silicate hydrate (C-S-H) nucleation seeding is emerging as a promising solution. It may enhance early hydration and microstructure without affecting long-term performance. This approach could also improve porosity and durability. The need for a detailed review of recent findings is clear. Prior research has shown the benefits of C-S-H seeding in various applications. However, the full extent of its impact remains under investigation. This gap motivates a focused analysis of recent reports in the field.

Purpose Of The Study:

This review aims to evaluate recent findings on calcium silicate hydrate nucleation seeding in cement systems. The focus is on commercially available admixtures and their effects on hydration and mechanical performance. The study addresses the challenge of early strength development in low-clinker cements. It explores how seeding influences both early and late-age properties. The goal is to assess the potential of this technique for broader construction applications. The review also considers the impact on porosity and durability. It highlights the need for a clearer understanding of long-term benefits. The authors aim to provide a synthesis of current knowledge to guide future research and application.

Main Methods:

The authors conducted a literature review of recent studies on C-S-H nucleation seeding in cementitious systems. They focused on commercially available admixtures and their effects on hydration. The review included analysis of hydration kinetics and mechanical strength data. They examined the influence of seeding on ettringite precipitation and porosity. The study considered both early and late-age performance metrics. The authors compared findings across different cement types and applications. They assessed the consistency of reported outcomes. The review aimed to identify trends and unresolved questions in the field.

Main Results:

C-S-H nucleation seeding appears to accelerate early hydration and improve mechanical strength. The seeding process enhances ettringite precipitation and refines porosity in the binder. These changes contribute to better early-age performance without compromising long-term strength. The seeded systems show potential for use in low-temperature concreting and precasting. The porosity refinement may lead to improved durability, though this remains to be confirmed. The review highlights the effectiveness of seeding in optimizing microstructure. It notes that the benefits extend beyond traditional alite hydration acceleration. The findings suggest that seeding could be a valuable tool in sustainable cement design.

Conclusions:

The review suggests that C-S-H nucleation seeding may offer a viable solution for improving cement performance. It supports the acceleration of hydration and microstructure optimization in low-clinker systems. The seeding process may enhance ettringite formation and porosity refinement. These effects could lead to better early and late mechanical strengths. The potential for improved durability is noted, though further study is needed. The authors propose that this technique could be applied in various construction contexts. They suggest that future work should focus on confirming long-term benefits. The findings highlight the need for continued research into seeding mechanisms.

C-S-H nucleation seeding may accelerate early hydration and improve mechanical strength without compromising long-term performance.

Seeding appears to enhance ettringite precipitation, contributing to better microstructure and early strength development.

Porosity refinement may improve durability by reducing permeability and increasing density in the cement matrix.

Seeding is proposed to be useful in low-temperature concreting, precasting, and shotcrete applications.

The review suggests that late-age mechanical strength is not compromised and may even be improved by seeding.

The authors note that the durability benefits of seeded binders remain to be properly established through further research.