10.10
Le bétonnage massif désigne le processus de mise en place de grands volumes de béton, comme dans les barrages-poids. La chaleur générée pendant le pro…
Lorsque de grands volumes de béton sont placés, si la température du béton à la surface et à l’intérieur est différente, des fissures thermiques peuvent se produire.
Pour atténuer la fissuration thermique, le mélange de béton utilise du ciment à faible chaleur, des pouzzolanes telles que des cendres volantes, des agrégats refroidis avec des particules angulaires et un adjuvant réducteur d’eau.
Les ingrédients sont ensuite mélangés à l’aide d’eau glacée pour produire du béton frais à une température d’environ 45 degrés Fahrenheit.
Le béton frais est ensuite placé dans des coffrages en matériaux thermiquement isolants.
Le recouvrement des surfaces de la structure avec des surfaces jointes en plastique contrôle les pertes de chaleur.
De plus, des tuyaux de refroidissement peuvent être intégrés dans la structure pour faciliter le refroidissement après le bétonnage.
Pour assurer l'isolation de la structure, des thermocouples sont positionnés à différents endroits pour surveiller la température du béton.
Le coffrage et l’isolation sont maintenus en place jusqu’à deux semaines pour les sections d’une épaisseur supérieure à vingt pouces.
Cependant, pour les grandes sections de béton retenues à l’extérieur, la construction doit avoir lieu dans des ascenseurs et des joints de mouvement doivent être prévus à des endroits appropriés pour éviter la fissuration.
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Q1: Why does thermal cracking occur in mass concrete?
Thermal cracking in mass concrete results from temperature gradients between the concrete's surface and interior regions. During cement hydration, heat is generated internally, but the surface cools faster, creating differential cooling rates. This temperature difference induces tensile stress that exceeds the concrete's strength, causing types of non-structural cracks in concrete to develop.
Q2: What materials are used in mass concrete mixes to reduce heat generation?
Mass concrete mixes incorporate low-heat cement and pozzolans such as fly ash to minimize temperature rise during hydration. Pre-cooled angular aggregates and water-reducing admixtures further manage heat generation. Fresh concrete is mixed using chilled water to achieve an initial temperature of approximately 45 degrees Fahrenheit, reducing thermal stress development.
Q3: How is temperature controlled after concrete placement in mass concreting?
Temperature control after placement involves multiple strategies: formwork made of thermally insulating materials retains heat, plastic-coated quilts cover surfaces to prevent heat loss, and cooling pipes embedded in the structure facilitate active cooling. Thermocouples positioned throughout the concrete mass monitor temperature continuously, ensuring insulation effectiveness and allowing adjustments as needed.
Q4: How long should formwork and insulation remain in place for thick concrete sections?
For concrete sections thicker than twenty inches, formwork and insulation must remain in place for at least two weeks. This extended duration allows the concrete to cool gradually and uniformly, reducing thermal stress and minimizing the risk of cracking. Premature removal could expose the concrete to rapid temperature changes.
Q5: What construction techniques prevent cracking in large externally restrained concrete sections?
For large externally restrained concrete sections, construction proceeds in lifts or layers rather than as a single pour. Movement joints are strategically positioned throughout the structure to accommodate stress and strain caused by temperature changes. These joints allow the concrete to expand and contract safely, preventing the development of uncontrolled cracks.
Q6: What role do thermocouples play in mass concreting operations?
Thermocouples are temperature sensors positioned at strategic locations throughout the concrete mass to continuously monitor internal and surface temperatures. This monitoring ensures that insulation systems are functioning effectively and that the concrete is cooling at acceptable rates. Temperature data guides decisions about formwork removal timing and additional cooling interventions.
Q7: How do pozzolans contribute to thermal crack mitigation in mass concrete?
Pozzolans like fly ash reduce the heat generated during cement hydration by partially replacing Portland cement in the concrete mix. This lower heat generation decreases the temperature rise within the concrete mass, reducing the thermal gradient between surface and interior regions. Lower temperature differentials result in reduced tensile stress and decreased cracking risk.