subject
Chemistry, 12.01.2021 04:50 alayjared12374

For the balanced equation shown below, if the reaction of 65.9 grams of C2H4O produces a 75.9% yield, how many grams of H2O would be produced? Equation: 2C2H4O +5O2 --> 4CO2 + 4H2O

Actual Yield () x 100 = %
Theoretical Yield ( )

ansver
Answers: 2

Another question on Chemistry

question
Chemistry, 21.06.2019 17:00
What mass of carbon dioxide is produced from the complete combustion of 4.50×10−3 g of methane?
Answers: 2
question
Chemistry, 22.06.2019 09:50
When balancing a chemical equation:
Answers: 1
question
Chemistry, 22.06.2019 14:30
For the reaction shown, find the limiting reactant for each of the following initial amounts of reactants. 4al(s)+3o2(g)→2al2o3(s) a) 1 molal, 1 mol o2 b) 4 molal, 2.6 mol o2 c) 16 molal, 13 mol o2 d) 7.4 molal, 6.5 mol o2
Answers: 3
question
Chemistry, 22.06.2019 16:30
Ammonium perchlorate nh4clo4 is the solid rocket fuel used by the u.s. space shuttle. it reacts with itself to produce nitrogen gas n2 , chlorine gas cl2 , oxygen gas o2 , water h2o , and a great deal of energy. what mass of nitrogen gas is produced by the reaction of 2.1g of ammonium perchlorate?
Answers: 2
You know the right answer?
For the balanced equation shown below, if the reaction of 65.9 grams of C2H4O produces a 75.9% yield...
Questions
question
Biology, 19.05.2021 19:20
question
Mathematics, 19.05.2021 19:20
question
Mathematics, 19.05.2021 19:20
question
Chemistry, 19.05.2021 19:20
question
History, 19.05.2021 19:20
Questions on the website: 13722361