10.8
대기 CO_2는 콘크리트의 기공을 관통하고, 습기가 있는 경우 탄산을 형성하고, 이는 수화된 시멘트의 수산화칼슘과 반응하여 탄산칼슘을 형성합니다. 이 과정은 콘크리트의 부피를 줄이고 탄산화 수축이라고 합니다.
반응 중에 생성된 탄산칼슘이 콘크리트의 기공을 채우면서 콘크…
습기가 있는 상태에서 콘크리트 표면으로 유입되는 대기 중 이산화탄소는 탄산으로 변하고, 탄산은 수화 시멘트의 수산화칼슘과 화학적으로 반응하여 탄산칼슘과 물을 형성합니다.
반응 중에 생성된 탄산칼슘은 콘크리트 기공에 침전되는 반면, 방출된 물은 미반응 시멘트의 수화를 돕습니다.
이것은 탄산 수축으로 알려진 콘크리트의 수축을 초래합니다.
탄화는 콘크리트 표면에서 시작하여 천천히 안쪽으로 이동합니다.
진행 상황은 콘크리트의 투과성, 수분 수준, 이산화탄소 함량 및 주변 공기의 상대 습도에 따라 달라집니다.
탄화가 진행됨에 따라 수화된 시멘트 페이스트의 알칼리성 특성이 중화됩니다.
결과적으로, 산소와 수분이 콘크리트에 침투하면 그 안에 내장된 철근의 부식이 발생할 수 있습니다.
일반적으로 콘크리트의 탄화 정도를 평가하기 위해 갓 깨진 표면에 페놀프탈레인을 분사합니다.
분홍색으로 변하는 영역은 유리 수산화칼슘의 존재를 나타내며 탄산이 없음을 나타내고 원래 색상을 유지하는 영역은 탄산화를 나타냅니다.
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Q1: What chemical reaction causes carbonation shrinkage in concrete?
Atmospheric carbon dioxide enters concrete pores and forms carbonic acid in the presence of moisture. This acid reacts with calcium hydroxide in the hydrated cement, producing calcium carbonate and water. The calcium carbonate deposits in the pores, causing concrete volume to contract, while the released water aids hydration of unreacted cement.
Q2: How does carbonation progress through concrete?
Carbonation starts at the concrete surface and moves inward slowly. Its progression rate depends on the concrete's permeability, moisture level, atmospheric carbon dioxide content, and relative humidity. Water-filled pores slow carbon dioxide diffusion, so concrete shielded from rainfall but exposed to moist air experiences more significant carbonation than periodically rain-rinsed concrete.
Q3: What are the effects of carbonation on concrete properties?
Carbonation slightly reduces concrete permeability as calcium carbonate fills pores and slightly enhances strength through continued cement hydration. However, it neutralizes the alkaline nature of the cement paste. When carbonation reaches reinforcement steel, the loss of alkalinity allows moisture and oxygen to penetrate, significantly increasing the risk of steel corrosion.
Q4: Why does carbonation increase the risk of reinforcement corrosion?
The alkaline environment of hydrated cement normally protects embedded steel from corrosion. Carbonation neutralizes this alkalinity, removing the protective barrier. If oxygen and moisture then penetrate the concrete and reach the reinforcement steel, corrosion becomes likely, compromising the structural integrity of the concrete member.
Q5: How is carbonation depth measured in concrete?
A freshly broken concrete surface is sprayed with phenolphthalein indicator solution. Non-carbonated areas containing free calcium hydroxide turn pink, while carbonated areas retain their original color. This color contrast reveals the carbonation depth and helps assess how far the carbonation process has advanced into the concrete.
Q6: What factors influence the rate of carbonation in concrete?
Carbonation rate is controlled by concrete permeability, moisture content, atmospheric carbon dioxide levels, and ambient relative humidity. Lower permeability slows carbon dioxide diffusion. Higher moisture content in pores also reduces diffusion rates. Environmental conditions with moderate humidity and higher CO2 concentrations accelerate carbonation compared to very wet or very dry conditions.
Q7: How does carbonation differ from other forms of shrinkage in concrete?
Carbonation shrinkage results from a chemical reaction between atmospheric CO2 and cement paste components, causing volume reduction and potential reinforcement corrosion. Unlike drying shrinkage, which occurs from moisture loss, carbonation is driven by atmospheric carbon dioxide penetration and can occur even in moist environments, making it a distinct deterioration mechanism.