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27 November, 00:47

Methane and hydrogen sulfide form when hydrogen reacts with carbon disulfide. Identify the excess reagent and calculate how much remains after 36 L of H2 reacts with 12 L of CS2. 4H2 (g) + CS2 (g) → CH4 (g) + 2H2S (g)

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  1. 27 November, 01:13
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    There will be produced 9L of CH4 and 18 L of H2S. There will remain 3 L of CS2

    Explanation:

    Step 1: Data given

    volume of H2 = 36.00 L

    volume of CS2 = 12 L

    Step 2 = the balanced equation

    4H2 (g) + CS2 (g) → CH4 (g) + 2H2S (g)

    Step 3: Calculate number of moles of H2

    1 mol = 22.4 L

    36 L = 1.607 mol

    Step 4: Calculate moles of CS2

    1 mol = 22.4 L

    12 L = 0.5357 moles

    Step 5: Calculate the limiting reactant

    For 4 moles of H2 we need 1 mol of CS2 to produce 1 mol of CH4 and 2 moles of H2S

    H2 is the limiting reactant. It will completely be consumed. (1.607 moles)

    CS2 is in excess. There will react 1.607/4 = 0.40175 moles

    There will remain 0.5357 - 0.40175 = 0.13395 moles of CS2

    0.13395 moles of CS2 = 3 L

    Step 6: Calculate products

    For 4 moles of H2 we need 1 mol of CS2 to produce 1 mol of CH4 and 2 moles of H2S

    For 1.607 moles of H2 we'll have 0.40175 moles of CH4 ( = 9L) and 0.8035 moles of H2S = (18L)

    There will be produced 9L of CH4 and 18 L of H2S. There will remain 3 L of CS2
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