- Initial pressure p₁
- 100
- Initial volume V₁
- 2
- Initial temperature T₁
- 300K
- Final pressure p₂
- 150
- Final temperature T₂
- 350K
1.5556
Open with these values1.5556unit of V₁
Result: 1.5556 unit of V₁Pressure times volume divided by temperature stays the same for a fixed amount of gas. That one line contains Boyle, Charles and Gay-Lussac at once. Enter both pressures, both temperatures in kelvin and the starting volume; halving the pressure while doubling the kelvin quadruples the volume.
Held fixed: Initial pressure p₁ 100.000, Initial volume V₁ 2.000, Initial temperature T₁ 300.00 K, Final pressure p₂ 150.000.
| Final temperature T₂ (K) | Result |
|---|---|
| 100.00 | 0.4444 |
| 200.00 | 0.8889 |
| 300.00 | 1.3333 |
| 350.00Your value | 1.5556 |
| 400.00 | 1.7778 |
| 500.00 | 2.2222 |
| 600.00 | 2.6667 |
| 700.00 | 3.1111 |
1.5556
Open with these values4.0000
Open with these values89.6000
Open with these valuesV₂ = p₁ × V₁ × T₂ ÷ (T₁ × p₂)
| p₁, V₁, T₁, p₂, T₂ | Change | Final volume V₂ |
|---|---|---|
| 2, 5, 400, 4, 200 | colder and squeezed | 1.2500 |
| 1, 1, 273.15, 1, 373.15 | heated only | 1.3661 |
| 100, 2, 300, 150, 350 | warmer but squeezed | 1.5556 |
| 100, 1, 250, 50, 500 | warmer and released | 4.0000 |
| 101.325, 10, 300, 202.65, 600 | both doubled | 10.0000 |
| 760, 22.4, 273.15, 380, 546.3 | both doubled | 89.6000 |
It states that pressure times volume divided by absolute temperature is constant for a fixed amount of gas. It merges Boyle's law, Charles's law and Gay-Lussac's law into one equation.
Any, as long as both use the same one, because only their ratio enters the formula. The volume comes back in whatever unit the starting volume used.
Because the equation divides by it. A Celsius value of zero would divide by zero, and negative Celsius values would flip the sign of a volume.
When the amount of gas itself changes, or when you want the number of moles rather than a before-and-after comparison. The combined law cancels the amount out.
Information, not professional advice.
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