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Hydration of Cement01:24

Hydration of Cement

921
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...
921
Soundness of Cement01:17

Soundness of Cement

569
The soundness of cement refers to the ability of cement paste to retain its volume after setting. Unsound cement can lead to expansion and structural damage due to the presence of free lime, magnesia, and calcium sulfate. Free lime hydrates very slowly, expanding and causing unsoundness, which is difficult to detect because it intercrystallizes with other compounds. Magnesia also reacts with water, forming crystals that can disrupt the cement's structure. Calcium sulfate can create...
569
Physical and Chemical Properties of Matter02:57

Physical and Chemical Properties of Matter

166.4K
The characteristics that enable us to distinguish one substance from another are called properties.
166.4K
Portland Cement01:21

Portland Cement

678
Portland cement is the essential binding ingredient in concrete, made from finely ground materials including lime, iron, silica, and alumina. Lime is derived primarily from limestone, marble, marl, seashells, and clays, which also supply iron and alumina, while silica is sourced from sand, chalk, and bauxite. Contemporary manufacturing of Portland cement is a significant source of carbon dioxide emissions, prompting research into reducing its content in concrete through alternative...
678
Fineness of Cement01:15

Fineness of Cement

518
The fineness of cement directly influences the rate of hydration, as the hydration begins at the surface of the cement particles. In addition to hydration, the fineness of cement is vital for various properties of concrete including workability, gypsum requirement, and long-term behavior. The fineness of cement is represented in terms of the specific surface of cement which is typically measured in square meters per kilogram, with several methods available for this determination.
Direct...
518
Strength of Cement01:20

Strength of Cement

499
Strength tests for cement are not performed directly on neat cement paste due to difficulty in obtaining consistent, reliable specimens. Instead, cement is typically tested in the form of cement-sand mortar.
For compressive strength tests, ASTM C 109-05 standards prescribe a cement-sand mix ratio of 1:2.75 and a water/cement ratio of 0.485 for making 2-inch cubes. These cubes are mixed, cast, and cured in saturated lime water at 23°C until testing. Flexural strength testing, outlined in...
499

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Related Experiment Video

Updated: Feb 3, 2026

The Effect of Construction and Demolition Waste Plastic Fractions on Wood-Polymer Composite Properties
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The Effect of Construction and Demolition Waste Plastic Fractions on Wood-Polymer Composite Properties

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A Novel, Multifunctional, Floatable, Lightweight Cement Composite: Development and Properties.

Zhenyu Huang1, Fang Wang2, Yingwu Zhou3

  • 1Guangdong Provincial Key Laboratory of Durability of Marine Civil Engineering, Shenzhen University, Shenzhen 518060, China. huangzhenyu@szu.edu.com.

Materials (Basel, Switzerland)
|October 24, 2018
PubMed
Summary

A novel floatable, lightweight cement composite (FLCC) was developed using glass microspheres and polyethylene fibers. The optimal FLCC exhibits high strength, low thermal conductivity, and low density, suitable for structural applications.

Keywords:
cenospherescompressive strengthfiber-reinforcedfloating concreteglass microsphereslightweight concrete

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Area of Science:

  • Materials Science
  • Civil Engineering
  • Structural Engineering

Background:

  • Lightweight concrete is crucial for reducing structural self-weight and enhancing energy efficiency.
  • Existing lightweight aggregate concretes often face limitations in strength or workability.
  • Novel materials are needed for applications like floating structures and insulating elements.

Purpose of the Study:

  • To develop a multifunctional, floatable, lightweight cement composite (FLCC).
  • To investigate the effects of glass microspheres and polyethylene fibers on FLCC properties.
  • To evaluate the mechanical, thermal, and water tightness performance of FLCC for structural engineering.

Main Methods:

  • Experimental production of eight FLCC mixtures with varying glass microsphere types, polyethylene fiber content, and water-to-binder ratios.
  • Evaluation of mechanical properties: compressive, flexural, and tensile strengths, and modulus of elasticity.
  • Assessment of water tightness via sorptivity measurements and energy efficiency via thermal conductivity tests.

Main Results:

  • The optimal FLCC achieved an oven-dry density of 750 kg/m³ and compressive strength up to 41 MPa.
  • Low thermal conductivity (0.152 W/mK) and very low sorptivity were recorded.
  • Microstructural analysis confirmed uniform microsphere distribution and triaxial compression, contributing to high strength.

Conclusions:

  • The developed FLCC is a promising material for structural engineering applications, offering a balance of strength, low density, and thermal insulation.
  • Optimized polyethylene fiber content enhances tensile resistance and ductility.
  • The material is suitable for floating concrete structures, insulating elements, and load-bearing panels where self-weight is a concern.