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Chemistry 13 Online
OpenStudy (yelsaebanerb):

On a spring day, you take a road trip through Yakima, WA, in a sports car. You start out at a temperature of 21°C, but the temperature in Yakima will reach a peak of 51°C. Each tire on your car hold 15.6 L of nitrogen gas at a starting pressure of 249 kPa. The tires will burst when the internal pressure (Pb) exceeds 269 kPa for 10 minutes. Answer the following questions and show your work. (no work = no credit) •How many moles of nitrogen gas are in each tire? •What would the tire pressure be at peak temperature in Yakima? •Will the tires burst in Yakima? Explain.

OpenStudy (wwb00):

1. 1.590 Mol

OpenStudy (wwb00):

2. 274.408

OpenStudy (wwb00):

3. Yes

OpenStudy (yelsaebanerb):

Thank you so much! My answers are VERY similar. I just needed to double check. • 1.589mol •274kPa •yes because this value is greater than the bursting pressure of 269 kPa.

rebeccaxhawaii (rebeccaxhawaii):

\(\Huge\boxed{\boxed{\boxed{\huge\mathbb{WELCOME~TO~OPENSTUDY} }}}\) Hey i have made this to hopefully answer any questions you may have. But if it doesn't feel free to pm me c: http://openstudy.com/users/rebeccaxhawaii#/updates/56f5205ce4b07a8c82287f75 Good Luck with your studies! \(\Huge\heartsuit\)

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