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Warm Up4-28-16 1.What is the standard temperature and pressure (STP)? 2. How much space does 1 mole of hydrogen gas occupy at STP? 3. How many torr are.

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Presentation on theme: "Warm Up4-28-16 1.What is the standard temperature and pressure (STP)? 2. How much space does 1 mole of hydrogen gas occupy at STP? 3. How many torr are."— Presentation transcript:

1 Warm Up4-28-16 1.What is the standard temperature and pressure (STP)? 2. How much space does 1 mole of hydrogen gas occupy at STP? 3. How many torr are in 5 atm? Agenda -Turn in pHet lab -Notes Unit 10-3 -WS The gas law Homework May 2 - Bring book May 3 - Quiz unit 10 May 18 - Retake deadline

2 Unit 10-3 The Gas Laws Mathematical relationships between volume, temperature, pressure and amount of gas

3 Kelvin Temperature Scale Kelvin scale based gas movements 0°K all gasses are frozen known as absolute zero °K = 273 + °C

4 Boyle’s Law: Pressure & Volume As pressure increases, volume decreases ↑P ↓V ↓P ↑V P 1 V 1 = P 2 V 2

5 Boyle’s Law Think about why this is true: –Pressure is caused by gas molecules hitting the container –If the volume of the container is decreased, the same number of gas molecules are moving in a much smaller area & will hit the container more often

6 Boyle’s Law: Example 1 A sample of oxygen gas has a volume of 150 mL when its pressure is 0.947 atm. What will the volume of the gas be at a pressure of 0.987 atm? Given: V 1 = 150 mL P 1 = 0.947 atm P 2 = 0.987 atm Find: V2V2V2V2

7 Boyle’s Law: Example 1 Given: V 1 = 150 mL P 1 = 0.947 atm P 2 = 0.987 atm Find: V2V2V2V2 Plan: P1V1P1V1P1V1P1V1= P2V2P2V2P2V2P2V2 P1V1P1V1P1V1P1V1= V2V2V2V2 P2P2P2P2 Solve: V2V2V2V2= (0.947atm)(150 mL) 0.987 atm V2V2V2V2= 144 mL ↑P ↓V ? yes Check: ↑P ↓V ? yes

8 Boyle’s Law: Example 2 A gas has a pressure of 1.26 atm and occupies a volume of 7.40 L. If the gas is compressed to a volume of 2.93 L, what will its pressure be? Given: P 1 = 1.26 atm V 1 = 7.40 L V 2 = 2.93 L Find: P2P2P2P2

9 Boyle’s Law: Example 2 Given: P 1 = 1.26 atm V 1 = 7.40 L V 2 = 2.93 L Find: P2P2P2P2 Plan: P1V1P1V1P1V1P1V1= P2V2P2V2P2V2P2V2 P1V1P1V1P1V1P1V1= P2P2P2P2 V2V2V2V2 Solve: P2P2P2P2= (1.26atm)(7.40 L) 2.93 L P2P2P2P2= 3.18 atm Check: ↓V ↑P ? yes

10 Charles’ Law: Volume & Temperature When temperature increases, volume increases ↑T ↑V ↓T ↓ V V1V1 = V2V2 T1T1 T2T2 All temperatures must be in Kelvin!!!

11 Charles’ Law Think about why this is true: –Increase in temp. causes molecules to move faster –Faster molecules  more collisions –More collisions  more pressure inside container –More pressure  bigger volume

12 Charles’s Law: Example 1 A sample of neon gas occupies a volume of 752 mL at 25 ºC. What volume will the gas occupy at 50 ºC? Given: V 1 = 752 mL T 1 = 25 ºC + 273 = 298 K T 2 = 50 ºC + 273 = 323 K Find: V2V2V2V2

13 Charles’s Law: Example 1 Given: V 1 = 752 mL T 1 = 25 ºC + 273 = 298 K T 2 = 50 ºC + 273 = 323 K Find: V2V2V2V2 Plan: V1V1V1V1= V2V2V2V2 T1T1T1T1 T2T2T2T2 V 1 T 2 = V2V2V2V2 T1T1T1T1 Solve: V2V2V2V2= (752 mL)(323 K) 298 K V2V2V2V2= 815 mL Check: ↑T ↑ V ? yes

14 Charles’s Law: Example 2 A helium balloon has a volume of 2.75 L at 20 ºC. If you bring it outside on a cold day, the volume decreases to 2.46 L. What is the outside temperature in ºC? Given: V 1 = 2.75 L T 1 = 20 ºC + 273 = 293 K V 2 = 2.46 L Find: T2T2T2T2

15 Charles’s Law: Example 2 Given: V 1 = 2.75 L T 1 = 20 ºC + 273 = 293 K V 2 = 2.46 L Find: T2T2T2T2 Plan: V1V1V1V1= V2V2V2V2 T1T1T1T1 T2T2T2T2 V 2 T 1 = T2T2T2T2 V1V1V1V1 Solve: T2T2T2T2= (2.46 L)(293 K) 2.75 L T2T2T2T2= 262 K – 273 = -11 ºC Check: ↓V ↓↓ ↓↓ T ? yes

16 Gay-Lussac’s Law: Pressure & Temperature When temperature increases, pressure increases ↑T ↑P ↓T ↓P P1P1 = P2P2 T1T1 T2T2 Remember: all temperatures must be in Kelvin!!!

17 Gay-Lussac’s Law Think about why this is true: –Increase in temp. causes molecules to move faster –Faster molecules  more collisions –More collisions  more pressure inside container

18 Gay-Lussac’s Law: Example 1 Gas in an aerosol can is at a pressure of 3.00 atm 25 ºC. What would the pressure be in the can at 52 ºC? Given: P 1 = 3.00 atm T 1 = 25 ºC + 273 = 298 K T 2 = 52 ºC + 273 = 325 K Find: P2P2P2P2

19 Gay-Lussac’s Law : Example 1 Given: P 1 = 3.00 atm T 1 = 25 ºC + 273 = 298 K T 2 = 52 ºC + 273 = 325 K Find: P2P2P2P2 Plan: P1P1P1P1= P2P2P2P2 T1T1T1T1 T2T2T2T2 P 1 T 2 = P2P2P2P2 T1T1T1T1 Solve: P2P2P2P2= (3.00 atm)(325 K) 298 K P2P2P2P2= 3.27 atm Check: ↑T ↑P ? yes

20 Gay-Lussac’s Law: Example 2 Before you leave on a road trip, the pressure in your car tires is 1.8 atm at 20 ºC. After driving all day, the pressure gauge read 1.9 atm. What temperature (in ºC) are your tires? Given: P 1 = 1.8 atm T 1 = 20 ºC + 273 = 293 K P 2 = 1.9 atm Find: T2T2T2T2

21 Gay-Lussac’s Law : Example 2 Given: P 1 = 1.8 atm T 1 = 20 ºC + 273 = 293 K P 2 = 1.9 atm Find: T2T2T2T2 Plan: P1P1P1P1= P2P2P2P2 T1T1T1T1 T2T2T2T2 P 2 T 1 = T2T2T2T2 P1P1P1P1 Solve: T2T2T2T2= (1.9 atm)(293 K) 1.8 atm T2T2T2T2= 310 K – 273 = 37 ºC Check: ↑P ↑↑ ↑↑ T ? yes

22 Combined Gas Law: Pressure, Volume &Temperature Combines all three gas laws into one equation!! P1V1P1V1 = P2V2P2V2 T1T1 T2T2 temperatures must be in Kelvin!!!

23 Combined Law: Example 1 A helium filled balloon has a volume of 50.0 L at 25 ºC and 1.08 atm. What volume will it have at 0.855 atm and 10 ºC? Given: V 1 = 50.0 L P 1 = 1.08 atm T 1 = 25 ºC + 273 = 298 K P 2 = 0.855 atm T 2 = 10 ºC + 273 = 283 K V 2= Find: V2V2V2V2

24 Combined Law: Example 2 A sample of air has a volume of 140.0 mL at 67 ºC under 2 atm. At what temperature will its volume be 50.0 mL under 2 atm? Given: V 1 = 140.0 L T 1 = 67 ºC + 273 = 340 K V 2 = 50.0 mL P 1 = P 2 Find: T2T2T2T2

25 Quiz Topics Tuesday 1.KMT 2.Properties of Gases 3.Combined gas law calculation 4.P, V, T relationship 5.Converting Celsius to Kelvin

26 Assignments Summary WS 10-3 practice (due next class) If you are a junior and would like to be a chemistry lab assistant (T.A.) for next year let me know.

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