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Design Example: Sustainability in Concrete Building01:26

Design Example: Sustainability in Concrete Building

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As the construction industry moves towards more eco-friendly practices, concrete's adaptability and its ability to incorporate sustainable features make it a key material in the drive towards greener building solutions.
There are multiple approaches to achieve sustainability in a commercial concrete building. For instance, construct a concrete parking area under the building, utilizing pervious concrete paver blocks in open areas to facilitate rainwater collection through an underground...
341
Waterproofing and Anti-Bacterial Admixtures in Concrete01:22

Waterproofing and Anti-Bacterial Admixtures in Concrete

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Concrete's susceptibility to water absorption is due to the capillary action within the pores of its hydrated cement paste. This action draws water in, creating the need for waterproofing admixtures to prevent such penetration. The efficacy of these admixtures is contingent upon the water pressure, with variations arising from different conditions such as rain, capillary rise, or hydrostatic pressure in structures intended to hold water.
Waterproofing admixtures render concrete hydrophobic,...
193
Prestressed Concrete01:20

Prestressed Concrete

638
Prestressed concrete is a construction technique designed to enhance the strength and durability of concrete structures. This method involves the application of a pre-set tension to high-strength steel strands used as reinforcement before the concrete is subjected to its working loads. The primary aim of prestressing is to place the concrete in a state of compression, in order to counteract the tensile forces it will experience in service. This pre-compression helps prevent crack formation in...
638
Non-destructive Tests for Concrete Strength01:12

Non-destructive Tests for Concrete Strength

397
The rebound hammer test, also known as the Schmidt hammer test, is a non-destructive technique for evaluating the hardness of concrete and, indirectly, the strength of concrete. It operates on the principle that the rebound of a spring-driven mass from a concrete surface correlates to the surface's hardness. The device comprises a mass within a tubular housing, a spring mechanism, and a plunger that strikes the concrete. Upon release, the energy imparted to the mass by the spring causes it...
397
Pumped Concrete01:13

Pumped Concrete

284
Concrete in large quantities can be pumped across long distances for placing in inaccessible sites. This system comprises a hopper that receives concrete from a mixer, a pump to propel the concrete, and pipelines that facilitate its delivery.
For direct-acting pumps, the concrete enters the pump via the inlet valve under the action of gravity and suction created by the movement of the piston. This concrete is then forced into the pipeline and out through the outlet valve by the forward movement...
284
Permeability of Concrete01:25

Permeability of Concrete

404
Permeability in the context of concrete refers to how easily liquids or gases can pass through the material. This quality is crucial for assessing the water-tightness and durability of concrete structures and their resistance to chemical attacks. Concrete permeability can be determined through comparative laboratory tests. These tests typically involve sealing a concrete specimen from the sides, applying water pressure to the top surface with pressure, and measuring the amount of water passing...
404

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Advanced Self-Healing Asphalt Reinforced by Graphene Structures: An Atomistic Insight
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Self-Compacted Concrete with Self-Protection and Self-Sensing Functionality for Energy Infrastructures.

Alonso Maria Cruz1, Puentes Javier1

  • 1Eduardo Torroja Institute for Construction Sciences (IETcc-CSIC), Construction Dpt. Serrano Galvache 4, 28033 Madrid, Spain.

Materials (Basel, Switzerland)
|March 6, 2020
PubMed
Summary

This study shows that self-compacted concrete (SCC) with carbon nanotubes (CNT) and carbon microfibers (CMF) offers self-protection and self-sensing capabilities. The hybrid additive enhances durability and damage resistance after high-temperature exposure.

Keywords:
CMFCNTPZRSCCelectrical resistivityself-diagnosisthermal fatigue

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Area of Science:

  • Materials Science
  • Civil Engineering
  • Nanotechnology

Background:

  • Self-compacted concrete (SCC) is advanced construction material.
  • Developing smart concrete with self-protection and self-sensing is crucial for structural health monitoring.
  • Hybrid systems incorporating carbon nanomaterials offer enhanced properties.

Purpose of the Study:

  • To investigate the self-protection and self-sensing functionalities of SCC incorporating a hybrid system of carbon nanotubes (CNT) and carbon microfibers (CMF).
  • To evaluate the self-sensing ability at room temperature and self-protection after thermal fatigue.
  • To assess the influence of different aggregates and binder compositions on these properties.

Main Methods:

  • Fabrication of SCC with a hybrid CNT+CMF additive, high supplementary mineral additions (30% BFS, 20% FA), and various aggregates (basalt, limestone, clinker).
  • Assessment of self-diagnosis using electrical resistivity (ER) and piezoresistivity (PZR) in compression mode.
  • Evaluation of thermal fatigue resistance through mechanical tests and crack measurements after heat cycles (290-550 °C).

Main Results:

  • SCC with CNT+CMF hybrid additive demonstrated enhanced self-protection, maintaining higher residual strength and reduced microcracking after thermal fatigue.
  • Significant reductions in electrical resistivity were observed, indicating functionalization.
  • Piezoresistivity (PZR) confirmed the self-diagnosis capability of the functionalized SCC.
  • Optimal performance for self-sensing sensitivity was achieved when the CNT+CMF content was within the percolation region.

Conclusions:

  • The hybrid CNT+CMF system effectively imparts self-protection and self-sensing functionalities to SCC.
  • The material exhibits resilience to high-temperature cycles, with the hybrid additive mitigating damage.
  • Maximizing CNT+CMF content within the percolation region is recommended for enhanced self-sensing sensitivity.