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Gas Law Notes Chemistry Semester II Ideal Gas Law Combined Gas Law And Guy Lussac’s Law.

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Presentation on theme: "Gas Law Notes Chemistry Semester II Ideal Gas Law Combined Gas Law And Guy Lussac’s Law."— Presentation transcript:

1 Gas Law Notes Chemistry Semester II Ideal Gas Law Combined Gas Law And Guy Lussac’s Law

2 Ideal Gas Equation  The variables of the physical nature of gases:  n : the number of particles (moles)  P : pressure  V : volume  T : temperature expressed always in K

3 Ideal Gas Equation  Charles stated that volume varies directly with temperature  Boyle stated volume varies inversely with pressure  So…combining these notions, we can set pressure * volume = to a constant * temperature, where the constant is the same every time it is calculated.  Mathematically this is shown…

4 Ideal Gas Law Boyle’s Law pressure times volume = a constant Charles’ Law: volume is proportional to temperature Combining the two yields the ideal gas law Restated Ideal Gas Law: …

5 Ideal Gas Law nR is a constant, n is the moles and R is the universal gas constant R =8.31 L kPa /mol K

6 Ideal Gas Law Problem  What is the volume of a container holding 2.00 moles of a substance at 831.67 kPa and 500K?

7 Problem Set Up  P = 831.67 kPa  V = ? n = 2.00 moles T = 500K R = 8.31 L kPa/moles K  PV = nRT

8 Problem cont’d  831.67*V = 2.00*8.31*500  V = 9.99 L

9 Combined Gas Law  Lab experiments are rarely at STP, usually mathematical corrections must be made.  Corrections are made by multiplying of the original volume (V 1 ) by 2 ratios (1 for temperature and the other for pressure)  The math derivation looks like this:

10 Combined Gas Law Or… Since n is the same on both sides of the equation…

11 Combined Gas Law

12 Combined Gas Law Problems  A 7.51 m 3 volume @ 59.9 kPa and 5 °C should be corrected to STP. What is the new volume?  P 1 V 1 = P 2 V 2 T 1 T 2

13 Set Up  V 1 = 7.51 m 3  P 1 = 59.9 kPa  T 1 = 5 °C  P 2 = 101.3 kPa  T 2 = 0 °C  V 2 = ? Find this  Remember convert T to Kelvin!  Now solve it!

14 Solution  59.9 * 7.51 = 101.3 * V 2 278 273  59.9 * 7.51 * 273 = V 2 278 * 101.3  V 2 = 4.36 m 3

15 next question…  Another problem: A helium balloon with volume = 410mL is cooled from 27 °C to -27 °C. P is reduced from 110 kPa to 25 kPa. What is the new V of gas @ the lower temp. and pressure?

16 Set Up  V 1 = 410 mL  P 1 = 110 kPa  T 1 = 27 °C  P 2 = 25 kPa  T 2 = -27 °C  V 2 = ? Find this

17 Answer  V 2 = 1479 mL

18 Guy Lussac’s Law Guy Lussac’s Law relates pressure and temperature…. To be used when volume and moles are kept constant

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