9. A balloon can be stretched to a maximum radius of 10.5 cm. The balloon is filled with 3.0 L of helium gas at a pressure of 755 torr and a temperature of 298 K. The balloon is then allowed to rise. If the balloon bursts at an atmospheric pressure of 431 mmHg, what must the temperature have been at that point? The formula for the volume of a sphere is V = 4/3rtr.

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Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Chapter 9 Worksheet
9. A balloon can be stretched to a maximum radius of 10.5 cm. The balloon is filled with 3.0 L of
helium gas at a pressure of 755 torr and a temperature of 298 K. The balloon is then allowed to
rise. If the balloon bursts at an atmospheric pressure of 431 mmHg, what must the temperature
have been at that point? The formula for the volume of a sphere is V = 4/3rtr.
%3D
10. Mixtures of helium and oxygen are used in scuba diving tanks to help prevent "the bends". For
a particular dive, 46.0 liters of helium and 12.0 liters of oxygen gas (at 25 °C and 1.0 atm) were
pumped into a tank with a volume of 5.0 L (at 25 °C).
a. How many moles of each gas are present inside the tank?
b. What is the partial pressure of each gas inside the tank?
the ha
c. What is the total pressure inside the tank?
10
11. A molecule of a certain gas is composed of 30.4% nitrogen and 69.6% oxygen. A 50.42-g sample
of the molecule is placed in a 15.0-L sealed container and heated to 100.0 °C, resulting in a
pressure of 850.0 mmHg. What is the name of the gas?
12. The smell of rotten eggs comes from dihydrogen monosulfide, which is created through
anaerobic respiration of bacteria in low-oxygen environments. In the lab, however, it can be
synthesized by reacting aluminum sulfide with water, with aluminum hydroxide as a byproduct.
A chemist synthesizes dihydrogen monosulfide and collects 37.8 mL over water at 298 K and 762
mmHg. Assuming water was the excess reactant, what mass of aluminum sulfide was reacted?
13. The composition of the atmosphere is relatively constant, with the exception of humidity; the
amount of water vapor in the atmosphere can vary from day to day and location to location. A
1.0-L sample of atmosphere at 298 K is isolated and found to contain the following mixture with
the indicated partial pressures: 586.0 mmHg N2, 158.0 mmHg O2, 6.3 mmHg Ar, and 0.9 mmHg
of trace gases. Water vapor is also present. The sample has a total pressure of 760.0 mmHg.
What is a) the partial pressure and b) the mol fraction of H2O?
14. Most gas law problems can be solved by assuming the gas behaves ideally. With the van der
Waals equation, this can be tested fairly easily. If a 0.1000-mol sample of nitrogen gas is placed
in a 2.500-L flask at 298.0 K, what is the percent error in the pressure when you assume an ideal
gas instead of a real gas?
Transcribed Image Text:Chapter 9 Worksheet 9. A balloon can be stretched to a maximum radius of 10.5 cm. The balloon is filled with 3.0 L of helium gas at a pressure of 755 torr and a temperature of 298 K. The balloon is then allowed to rise. If the balloon bursts at an atmospheric pressure of 431 mmHg, what must the temperature have been at that point? The formula for the volume of a sphere is V = 4/3rtr. %3D 10. Mixtures of helium and oxygen are used in scuba diving tanks to help prevent "the bends". For a particular dive, 46.0 liters of helium and 12.0 liters of oxygen gas (at 25 °C and 1.0 atm) were pumped into a tank with a volume of 5.0 L (at 25 °C). a. How many moles of each gas are present inside the tank? b. What is the partial pressure of each gas inside the tank? the ha c. What is the total pressure inside the tank? 10 11. A molecule of a certain gas is composed of 30.4% nitrogen and 69.6% oxygen. A 50.42-g sample of the molecule is placed in a 15.0-L sealed container and heated to 100.0 °C, resulting in a pressure of 850.0 mmHg. What is the name of the gas? 12. The smell of rotten eggs comes from dihydrogen monosulfide, which is created through anaerobic respiration of bacteria in low-oxygen environments. In the lab, however, it can be synthesized by reacting aluminum sulfide with water, with aluminum hydroxide as a byproduct. A chemist synthesizes dihydrogen monosulfide and collects 37.8 mL over water at 298 K and 762 mmHg. Assuming water was the excess reactant, what mass of aluminum sulfide was reacted? 13. The composition of the atmosphere is relatively constant, with the exception of humidity; the amount of water vapor in the atmosphere can vary from day to day and location to location. A 1.0-L sample of atmosphere at 298 K is isolated and found to contain the following mixture with the indicated partial pressures: 586.0 mmHg N2, 158.0 mmHg O2, 6.3 mmHg Ar, and 0.9 mmHg of trace gases. Water vapor is also present. The sample has a total pressure of 760.0 mmHg. What is a) the partial pressure and b) the mol fraction of H2O? 14. Most gas law problems can be solved by assuming the gas behaves ideally. With the van der Waals equation, this can be tested fairly easily. If a 0.1000-mol sample of nitrogen gas is placed in a 2.500-L flask at 298.0 K, what is the percent error in the pressure when you assume an ideal gas instead of a real gas?
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