Q.The volume of any gas at 100°C is 1 litre. At which temperature will its volume become 3 litre while pressure remains constant?
(A) 300°C
(B) 300 K
(C) 846 K
(D) 846°C
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Combined Gas Law
The Combined Gas Law: One Rule to Rule Them All
You already know that gases are sensitive. Squeeze them, they get smaller. Heat them, they expand. But what happens when you do both at once? That’s where the Combined Gas Law comes in — it’s the single equation that handles pressure, volume, and temperature changing together.
The Intuition: A Balloon in Two Hands
Imagine a balloon filled with air. Now picture two things happening at the same time:
- You push on the balloon (increase pressure). The balloon shrinks.
- You also put the balloon in the sun (increase temperature). The balloon expands.
Which wins? The Combined Gas Law tells you the net result. It’s like having two forces pulling in opposite directions — the law gives you the final size and pressure after both changes.
The Combined Gas Law only works when the amount of gas (number of molecules) stays constant. If you add or remove gas, you need a different rule.
The Three Individual Laws It Combines
Before the combined version, scientists discovered three separate relationships:
- Boyle’s Law (constant temperature): P1V1=P2V2 — pressure and volume are inversely related.
- Charles’s Law (constant pressure): T1V1=T2V2 — volume and temperature are directly related.
- Gay-Lussac’s Law (constant volume): T1P1=T2P2 — pressure and temperature are directly related.
Each law holds one variable fixed. But in real life, nothing stays fixed. The Combined Gas Law is the merger of all three.
The Precise Statement
T1P1V1=T2P2V2
Where:
- P = pressure (any unit, as long as it’s the same on both sides)
- V = volume (any unit, consistent)
- T = absolute temperature (must be in Kelvin, never Celsius or Fahrenheit)
The subscripts 1 and 2 refer to “before” and “after” the change.
Why Temperature Must Be in Kelvin
This is the most common mistake. Celsius and Fahrenheit have negative numbers. If you plug in 0∘C, you get division by zero — nonsense. Kelvin starts at absolute zero (−273.15∘C), so all temperatures are positive and proportional to actual molecular motion.
Never use Celsius or Fahrenheit in gas law calculations. Convert to Kelvin first: TK=TC+273.15.
How to Use It: A Simple Strategy
When you see a problem where pressure, volume, and temperature all change, follow these steps:
- Identify what’s given and what’s asked. Write down P1, V1, T1, P2, V2, T2 — some will be unknown.
- Convert all temperatures to Kelvin.
- Plug into T1P1V1=T2P2V2.
- Solve for the unknown. If you need V2, rearrange: V2=T1P2P1V1T2.
Worked Example
A gas occupies 5.0 L at 2.0 atm and 300 K. What volume will it occupy at 1.0 atm and 400 K?
Step 1: P1=2.0, V1=5.0, T1=300, P2=1.0, T2=400, V2=? …
At constant pressure, a gas's volume and absolute temperature are directly proportional (Charles' law), which lets us find the new temperature. …
The gas's volume becomes 3 litres at 846°C (1119 K).
At constant pressure, by Charles' law: T1V1=T2V2
Given V1=1 L at T1=100°C=373 K, and V2=3 L:
…
- CBSE 2026Set ANNUAL1 markMCQQ.The volume of a given mass of a gas at 27°C, 1 atmospheric pressure is 100 cc, its volume at same pressure and at 327°C would be:(a) 200 cc(b) 20 cc(c) 2 cc(d) None of the above
›Reveal solutionSolution
Using V1/T1=V2/T2 (Charles's Law) with Kelvin temperatures gives V2=200 cc.
At constant pressure, Charles's Law states T1V1=T2V2, where temperatures must be in kelvin.
…
- CBSE 2025Set ANNUAL1 markMCQQ.The volume of any gas at 100°C is 1 litre. At which temperature will its volume become 3 litre while pressure remains constant? (A) 300°C (B) 300 K (C) 846 K (D) 846°C
›Reveal solutionSolution
The gas's volume becomes 3 litres at 846°C (1119 K).
At constant pressure, by Charles' law: T1V1=T2V2
Given V1=1 L at T1=100°C=373 K, and V2=3 L:
…
- CBSE 2024Set ANNUAL1 markMCQQ.If car tyres are hot, pressure of gas molecules in them would be(a) high(b) low(c) same as before heating(d) may be high or low
›Reveal solutionSolution
By Gay-Lussac's law (P ∝ T at constant volume), heating the gas inside a tyre raises the pressure of the gas molecules.
For a fixed volume of gas (the tyre's volume is roughly constant), the ideal gas law PV = nRT gives P ∝ T when V and n are constant.
…
- CBSE 2023Set ANNUAL1 markMCQQ.Boyle's law is applicable for an(1) adiabatic process(2) isothermal process(3) isobaric process(4) isochoric process
›Reveal solutionSolution
Boyle's law explicitly requires the gas's temperature to be held fixed, which is exactly the definition of an isothermal process.
Boyle's law states that for a fixed mass of gas at constant temperature, pressure is inversely proportional to volume:
PV = constant (at constant T)
…
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