Q.Oxygen is available in plenty in air yet fuels do not burn by themselves at room temperature. Explain.
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Start your 14-day free trial to unlock the full solution →The Arrhenius equation shows that the rate constant is extremely small at room temperature because the thermal energy is much smaller than the activation energy for combustion. So, even though oxygen is abundant, the reaction rate is negligible — fuels do not burn spontaneously.
The key lies not in the availability of oxygen, but in the energy barrier that must be overcome for the reaction to start. Think of it like a boulder at the top of a hill: it has plenty of gravitational potential energy, but it won’t roll down unless you give it a push past the small lip at the top. That push is the activation energy.
- The Arrhenius Equation governs reaction rates. For any chemical reaction, the rate constant is given by:
where is the frequency factor (how often molecules collide in the right orientation), is the activation energy (the minimum energy needed for the reaction to occur), is the gas constant, and is the absolute temperature.
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At room temperature, is small.
At , . For combustion reactions (like burning wood, petrol, or coal), the activation energy is typically in the range of –. So the ratio is huge — around to .
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The exponential factor crushes the rate.
Even a modest gives . That means the rate constant is astronomically small — effectively zero. Billions of oxygen molecules collide with the fuel every second, but almost none have enough energy to cross the barrier.
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Why a spark or flame works. …
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