Question

A mixture of 0.148 moles of C is reacted with 0.117 moles of O2 in a...

A mixture of 0.148 moles of C is reacted with 0.117 moles of O2 in a sealed, 10.0 L vessel at 500.0 K, producing a mixture of CO and CO2. $$3C(s)+2O2​(g) 2CO(g)+CO2​(g) The total pressure is 0.682 atm. What is the partial pressure of CO?

Homework Answers

Answer #1

Please like this answer. THANK YOU

All the best for your future.

Know the answer?
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for?
Ask your own homework help question
Similar Questions
A mixture of 0.154 moles of C is reacted with 0.117 moles of O2 in a...
A mixture of 0.154 moles of C is reacted with 0.117 moles of O2 in a sealed, 10.0 L vessel at 500.0 K, producing a mixture of CO and CO2. 3C(s)+2O2​(g) ---> 2CO(g)+CO2​(g) The total pressure is 0.691 atm. What is the partial pressure of CO?
A mixture of 0.143 moles of C is reacted with 0.117 moles of O2 in a...
A mixture of 0.143 moles of C is reacted with 0.117 moles of O2 in a sealed, 10.0 L vessel at 500.0 K, producing a mixture of CO and CO2. The limiting reagent of the below reaction is carbon. 3C(s)+2O2​(g) CO2​(g)+2CO(g) For 0.143 moles of carbon, determine the amounts of products (both the CO and CO2) formed in this reaction. Also determine the amount of O2 remaining and the mole fraction for CO.
1)A reaction vessel at 27 ∘C contains a mixture of SO2(P= 3.10 atm ) and O2(P=...
1)A reaction vessel at 27 ∘C contains a mixture of SO2(P= 3.10 atm ) and O2(P= 1.00 atm ). When a catalyst is added the reaction 2SO2(g)+O2(g)⇌2SO3(g) takes place. At equilibrium the total pressure is 3.85 atm. -Find the value of Kc. 2)A sample of SO3 is introduced into an evacuated sealed container and heated to 600 K. The following equilibrium is established: 2SO3(g)⇌2SO2(g)+O2(g). The total pressure in the system is found to be 3.0 atm and the mole fraction...
Part A: What is the mole fraction of O2 in a mixture of 15.1 g of...
Part A: What is the mole fraction of O2 in a mixture of 15.1 g of O2, 8.17 g of N2, and 2.45 g of H2? Part B: What is the mole fraction of N2 in a mixture of 15.1 g of O2, 8.17 g of N2, and 2.45 g of H2? Part C: What is the mole fraction of H2 in a mixture of 15.1 g of O2, 8.17 g of N2, and 2.45 g of H2? Part D:...
Suppose that Daniel has a 2.00 L bottle that contains a mixture of O2, N2, and...
Suppose that Daniel has a 2.00 L bottle that contains a mixture of O2, N2, and CO2 under a total pressure of 5.00 atm. He knows that the mixture contains 0.29 mol N2 and that the partial pressure of CO2 is 0.350 atm. If the temperature is 273 K, what is the partial pressure of O2? answer in atm
A mixture of CO(g) and O2(g) in a 1.1 −L container at 1.0×103 K has a...
A mixture of CO(g) and O2(g) in a 1.1 −L container at 1.0×103 K has a total pressure of 2.3 atm . After some time the total pressure falls to 1.8 atm as the result of the formation of CO2. Find the mass (in grams) of CO2 that forms.
A gas phase that is at equilibrium with respect to the following reaction at 500 K...
A gas phase that is at equilibrium with respect to the following reaction at 500 K contains carbon dioxide, carbon monoxide, and oxygen. 2CO2(g) → 2CO(g) + O2(g) a) Calculate the equilibrium partial pressure of oxygen if the carbon dioxide partial pressure is 0.20 atm and the carbon monoxide partial pressure is 0.40 atm. The ∆G°f values for CO2 and CO at 500 K are -94.389 kcal/mol and -37.140 kcal/mol, respectively. b) Calculate the total pressure at equilibrium if the...
A) If 30.8 g of O2 are mixed with 30.8 g of H2 and the mixture...
A) If 30.8 g of O2 are mixed with 30.8 g of H2 and the mixture is ignited, what mass of water is produced? B) Iron is produced from its ore by the reactions: 2C(s)+O2(g) → 2CO(g) Fe2O3(s)+3CO(g) → 2Fe(s) + 3co2(g) How many moles of O2(g) are needed to produce 9.5 moles of Fe(s)? C) Which of the following equations correctly describes the combustion of CH4and O2to produce water (H2O) and carbon dioxide (CO2)? a)     CH4 + O2 ...
A mixture of 0.2000 mol of CO2 , 0.1000 mol of H2 , and 0.1600 mol...
A mixture of 0.2000 mol of CO2 , 0.1000 mol of H2 , and 0.1600 mol of H2O is placed in a 2.000-L vessel. The following equilibrium is established at 500 K : CO2(g)+H2(g)←−→CO(g)+H2O(g) Calculate the initial partial pressure of CO2 .         Calculate the initial partial pressure of H2 . Calculate the initial partial pressure of H2O . At equilibrium PH2O=3.51atm . Calculate the equilibrium partial pressure of CO2 .
Determine the number of moles of each gas present in a mixture of CH4 and C2H6...
Determine the number of moles of each gas present in a mixture of CH4 and C2H6 in a 2.00-L vessel at 25°C and 1.72 atm, given that the partial pressure of CH4 is 0.45 atm. What is the number of moles of CH4? mol What is the number of moles of C2H6? mol
ADVERTISEMENT
Need Online Homework Help?

Get Answers For Free
Most questions answered within 1 hours.

Ask a Question
ADVERTISEMENT