For a fixed mass of gas at a constant temperature, the pressure p is inversely proportional to the volume V
Graph of pressure against volume for a fixed mass of gas at three different temperatures, with T1 < T2 < T3. The curves are called isotherms (i.e. the temperature along each curve is constant)
Graph of pressure against reciprocal of the volume for a fixed mass of gas at three different temperatures, with T1 < T2 < T3. In this case, the isotherms are straight lines
pV = constant
p1V1 = p2V2
For a fixed mass of gas at constant pressure, the volume V is directly proportional to the absolute temperature T
Graph of volume against temperature for a fixed mass of gas at three different pressures, with p1 < p2 < p3
For a fixed mass of gas at constant volume, the pressure p is directly proportional to the absolute temperature T
Graph of pressure against temperature for a fixed mass of gas at three different volumes, with V1 < V2 < V3
An ideal gas occupies a volume equal to 5.0 × 10–4 m3. Its pressure is 2.0 × 106 Pa and its temperature is 40°C. The gas is then heated and reaches a temperature of 80°C. It also expands to a new volume of 6.0 × 10–4 m3.Determine the new pressure of the gas.
Step 1: Write down the given quantities
Remember to:
Step 2: Write down the equation for the three gas laws combined
Step 3: Rearrange the equation to calculate the unknown final pressure p2
Step 4: Substitute numbers into the equation
p2 = 1.9 × 106 Pa
When dealing with gas laws problems, always remember to convert temperatures from degrees Celsius (°C) to kelvin (K).After you solve a problem using any of the gas laws (or all of them combined), always check whether your final result makes physically sense - e.g. if you are asked to calculate the final pressure of a fixed mass of gas being heated at constant volume, your result must be greater than the initial pressure given in the problem (since Gay- Lussac's law states that pressure and absolute temperature are directly proportional at constant volume).
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