How many moles of iron are needed to produce 33.8 L of hydrogen gas according to the following reaction at 0 °C and 1 atm? iron(s) + hydrochloric acid (aq) → iron (II) chloride (aq) + hydrogen (g) moles Amount = •Retry Ex is group attemp ining 06/07/2023 16:04

Chemistry for Engineering Students
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Author:Lawrence S. Brown, Tom Holme
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Chapter5: Gases
Section: Chapter Questions
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How many moles of iron are needed to produce 33.8 L of hydrogen gas according to the following reaction at 0 °C and
1 atm?
iron(s) +hydrochloric acid (aq) → iron(II) chloride (aq) + hydrogen (g)
Amount =
moles
vetry Ention
vis group attempre...
ining
06/07/2023 16:04
Transcribed Image Text:How many moles of iron are needed to produce 33.8 L of hydrogen gas according to the following reaction at 0 °C and 1 atm? iron(s) +hydrochloric acid (aq) → iron(II) chloride (aq) + hydrogen (g) Amount = moles vetry Ention vis group attempre... ining 06/07/2023 16:04
A 1.56 mol sample of Ar gas is confined in a 39.7 liter container at 37.0 °C.
If the volume of the gas sample is decreased to 19.8 L, holding the temperature constant, the pressure will increase.
Which of the following kinetic theory ideas apply?
(Select all that apply.)
At lower volumes molecules have higher average speeds.
With higher average speeds, on average the molecules hit the walls of the container with more force.
With less available volume, the molecules hit the walls of the container more often.
For a given gas at constant temperature, the force per collision is constant. Some other factor must cause the
pressure increase.
None of the above.
06/07/2023 15:59
Transcribed Image Text:A 1.56 mol sample of Ar gas is confined in a 39.7 liter container at 37.0 °C. If the volume of the gas sample is decreased to 19.8 L, holding the temperature constant, the pressure will increase. Which of the following kinetic theory ideas apply? (Select all that apply.) At lower volumes molecules have higher average speeds. With higher average speeds, on average the molecules hit the walls of the container with more force. With less available volume, the molecules hit the walls of the container more often. For a given gas at constant temperature, the force per collision is constant. Some other factor must cause the pressure increase. None of the above. 06/07/2023 15:59
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