
Considering the limiting reactant, what is the mass of iron produced from 75.0 g of iron...
9.If 45.5 g of molten iron(II) oxide reacts with of 21.0 g of magnesium, what is the mass of iron produced?FeO(l)+Mg(l)⟶ΔFe(l)+MgO(s) 10.If 59.0 g of molten iron(III) oxide reacts with 30.7 g of aluminum, what is the mass of iron produced?Fe2O3(l)+Al(l)⟶ΔFe(l)+Al2O3(s)
Considering the limiting reactant, what mass of cobalt (III) sulfide (214.07 g/mole) is produced from 0.750 g of cobalt and 0.350 g of sulfur? 2Co(s)+ 3S(s) -----> Co2S3(s)
4. What is the limiting reactant, theoretical yield, and % yield of iron metal (in kg) if 76.0 kg of Fe2O3 reacts with 22.1 kg of carbon to produce 42.3 kg Fe according to the following reaction: 2Fe2O3(s) + 3C(s) 4Fe(s) + 3CO2(g) Limiting Reactant - Fezoz Mass of Fe₂O₂ = 760kg Mole of Fe₂O₃ =475 grud Mass of carbon 22.1kg Mole of carbon = 1841.7 mol Theor. Yield =53.12 kg % Yield = 79.7%
Considering the limiting reactant concept, how many moles of C are produced from the reaction of 2.00 mole A and 4.50 mole B? A(g) + 3B(g) -----> 2C(g)
What mass of iron(III) oxide is produced from excess iron metal and 6.8 L of oxygen gas at 102.5°C and 871 torr? 4 Fe () +3 02 (8) +2 Fe2O3 (8) g Fe 3
Chemistry question
Using limiting reactant
Chemistry limiting reactant question . Iron (111) oxide with H to from iron and water according to the following reaction Fe234 +3H2(g) 2 Fe (s) + 3 H₂0 (3) If we start with 14,9g of iron (TL) oxide and 31.39 of hydrogen, how many grams (g) of water? question 2 Ethane (GHC) reacts with oxygen to form dioxide and water according to the following reaction 2C2H6c9) +703 (4) >4 (0, 2) + 6H40.9) If we...
Calculations Sheet Thermochemistry 2 Part 2: Hydrochloric Acid + Magnesium The strategy for these calculations are similar to those in Part I. In Part 2, magnes reagent. Volume of hydrochloric acid solution 75.0 mL Part 1. In Part 2, magnesium is the limiting Density of hydrochloric acid solution 102 g ml." dem Mass of hydrochloric acid solution (d-m/V) Specific heat capacity of hydrochloric acid solution 4.68 9.84 °C C Change in temperature for reaction AH(-MSAT) Mass of magnesium mol Moles...
3. Determine the limiting reactant and the mass of AlCl3 produced by reacting 15.0 g of Al with 30.0 g of Cly according to the following chemical equation. The molar mass of AICI is 133.33 g/mol. A1 = 26.98 g/mol 2 Al(s) + 3 Cl2 (g) → 2 AlCl3(s) C1 = 35.45 g/mol A) Al is the limiting reactant, 32.4 g of AlCl3 produced. B) Al is the limiting reactant, 74.1 g of AlCl3 produced. C) Cl2 is the limiting...
lab help please, ive answered a few questions need help on the
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4. Consider the following problem and answer each question below to help you answer the overall questions posed here. This question is based on the reaction that you wrote in Question 3. A chemist allows 85.4 g of iron (II) chloride to react with 49.8g of hydrogen sulfide. How many grams of hydrochloric acid could be produced? How many moles of iron (II) chloride are present in...
In the thermite reaction, iron (III) oxide is reduced by aluminum to give molten iron, Fe2O3 (s) + 2 Al (s) --> 2 Fe (l) + Al2O3 (s) If you begin with 10.0 g of Fe2O3 and 20.0 g Al, Which reactant is limiting? What mass of Fe can be produced? What mass of the excess reactant remains after the limiting reactant is consumed? Set up an amounts table for this problem.