Ask a New Question
Menu

In the reaction 2C8H18+25O2=16Co2+18H2 when

  1. In the reaction 2C8H18+25O2=16Co2+18H2 when 52.7g of octane(C8H18) burns in oxygen the persentage yield of Co2 is 82.5% what is
    1. answers icon 1 answer
    2. Brkti asked by Brkti
    3. views icon 120 views
  2. Calculate the standard enthalpy change for the reaction:2C8H18(l) + 17O2(g) --> 16CO(g) + 18H2O(l) Given: 2C8H18(l) + 25O2(g)
    1. answers icon 1 answer
    2. Anon asked by Anon
    3. views icon 2,181 views
  3. Calculate the standard enthalpy change for the reaction 2C8H18(l)+17O2(g)> 16CO(g) + 18H2O(l)Given
    1. answers icon 2 answers
    2. Nicole asked by Nicole
    3. views icon 4,264 views
  4. Identify the percent yield when 28.16 g of CO2 are formed from the reaction of 456.93 g of C8H18 with 256.0 g of O2.2C8H18 +
    1. answers icon 1 answer
    2. Nicolas asked by Nicolas
    3. views icon 3,581 views
  5. HOW MANY GRAMS OF OCTANE WOULD BE NEEDED TO RELEASE 3,500 kJ OF HEAT?2C8H18 + 25O2-----> 16CO2 + 18H2O DeltaH= -5,530 kJ/mole of
    1. answers icon 1 answer
    2. Matthew asked by Matthew
    3. views icon 776 views
  6. How many moles of water are produced in 2C8H18(g) + 25O2(g) →16CO2(g) +18 H2O(g)
    1. answers icon 1 answer
    2. views icon 30 views
  7. 2C8H18(g)+25O2(g)-->16CO2(g)+18H2O(g)0.290mol of octane is allowed to react with 0.600mol of oxygen.The limiting reactant is
    1. answers icon 2 answers
    2. Rose asked by Rose
    3. views icon 3,199 views
  8. 2C8H18(g)+25O2(g)+16CO2(g)+18H2O(g)0.290mol of octane is allowed to react with 0.600mol of oxygen.The limiting reactant is
    1. answers icon 1 answer
    2. Rose asked by Rose
    3. views icon 1,306 views
  9. Problem#9: Consider the fuel octane (the main component of gasoline) and its combustion reaction2C8H18(l) + 25O2(g) → 16CO2(g)
    1. answers icon 1 answer
    2. Sarah asked by Sarah
    3. views icon 1,360 views
  10. What mass of oxygen gas, O2, from the air is consumed in the combustion of 702 g of octane, C8H18, one of the principal
    1. answers icon 1 answer
    2. Jeremiah latkuoth asked by Jeremiah latkuoth
    3. views icon 77 views