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.
1. 1.590 Mol
2. 274.408
3. Yes
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.
\(\Huge\boxed{\boxed{\boxed{\huge\mathbb{WELCOME~TO~OPENSTUDY} }}}\) 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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