Methane reacts with steam to form $H_{2}$ $"H"_2$ and $CO$ $"CO"$ as shown. What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

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Methane reacts with steam to form $H_{2}$ $"H"_2$ and $CO$ $"CO"$ as shown. What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

${CH}_{4} + H_{2} O \to CO + 3 H_{2}$ $"CH"_4 + "H"_2"O" -> "CO" + 3"H"_2$

What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

a)100 cm³ b) 150cm³ c) 300cm³ d)200cm³

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Answer 1 · 2016-08-06T21:05:30

${300 cm}^{3}$ $"300 cm"^3$

Explanation:

The trick here is to realize that when two gases that take part in a chemical reaction are kept under the same conditions for pressure and temperature, their mole ratio in the balanced chemical equation is equivalent to a volume ratio.

$color(purple)(|bar(ul(color(white)(a/a)color(black)(n_1/n_2 = V_1/V_2)color(white)(a/a)|))) ->$ the mole ratio is equivalen to the volume ratio

The balanced chemical equation that describes your reaction looks like this

$"CH"_ (4(g)) + "H"_ 2"O"_ ((g)) -> "CO"_ ((g)) + color(red)(3)"H"_ (2(g))$

Notice that every mole of methane that takes part in the reaction produced $color(red)(3)$ moles of hydrogen gas. You know that the methane reacts under STP conditions.

Assuming that the hydrogen gas is also kept under STP conditions, you can say that the $1:color(red)(3)$ mole ratio that exists between the two chemical species in the balanced chemical equation will be equivalent to a $1:color(red)(3)$ volume ratio.

This means that your sample of methane will produce

$100 color(red)(cancel(color(black)("cm"^3"CH"_4))) * (color(red)(3)color(white)(.)"cm"^3 "H"_2)/(1color(red)(cancel(color(black)("cm"^3"CH"_4)))) = color(green)(|bar(ul(color(white)(a/a)color(black)("300 cm"^3"H"_2)color(white)(a/a)|)))$

You can double-check your answer by using the molar volume of a gas at STP, which is equal to $"22.7 L mol"^(-1)$ for STP conditions defined as a pressure of $"100 kPa"$ and a temperature of $0^@"C"$ .

The molar volume of a gas at STP tells you the volume occupied by one mole of an ideal gas kept under STP conditions. In your case, the volume of methane gas

$100 color(red)(cancel(color(black)("cm"^3))) * (1 color(red)(cancel(color(black)("dm"^3))))/(10^3color(red)(cancel(color(black)("cm"^3)))) * "1 L"/(1color(red)(cancel(color(black)("dm"^3)))) = "0.1 L"$

will contain

$0.1 color(red)(cancel(color(black)("L"))) * "1 mole CH"_4/(22.7color(red)(cancel(color(black)("L")))) = "0.004405 moles CH"_4$

under STP conditions. This means that your reaction will produce

$0.004405 color(red)(cancel(color(black)("moles CH"_4))) * (color(red)(3)color(white)(.)"moles H"_2)/(1color(red)(cancel(color(black)("mole CH"_4)))) = "0.0132 moles H"_2$

If the sample of hydrogen gas is kept under STP conditions, its volume will be equal to

$0.0132 color(red)(cancel(color(black)("moles H"_2))) * "22.7 L"/(1color(red)(cancel(color(black)("mole H"_2)))) = "0.30 L H"_2$

Convert this back to cubic centimeters to get

$0.30 color(red)(cancel(color(black)("L"))) * (1 color(red)(cancel(color(black)("dm"^3))))/(1 color(red)(cancel(color(black)("L")))) * (10^3"cm"^3)/(1color(red)(cancel(color(black)("dm"^3)))) = color(green)(|bar(ul(color(white)(a/a)color(black)("300 cm"^3"H"_2)color(white)(a/a)|)))$

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Methane reacts with steam to form $H_{2}$ $"H"_2$ and $CO$ $"CO"$ as shown. What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

${CH}_{4} + H_{2} O \to CO + 3 H_{2}$ $"CH"_4 + "H"_2"O" -> "CO" + 3"H"_2$

What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

a)100 cm³ b) 150cm³ c) 300cm³ d)200cm³

1 Answer

Explanation:

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"CH"_4 + "H"_2"O" -> "CO" + 3"H"_2CH4+H2O→CO+3H2"CH"_4 + "H"_2"O" -> "CO" + 3"H"_2 What volume of "H"_2H2"H"_2 can be obtained from "100 cm"^3100 cm3"100 cm"^3 of methane at STP? a)100 cm³ b) 150cm³ c) 300cm³ d)200cm³

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Explanation:

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Methane reacts with steam to form $H_{2}$ $"H"_2$ and $CO$ $"CO"$ as shown. What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

${CH}_{4} + H_{2} O \to CO + 3 H_{2}$ $"CH"_4 + "H"_2"O" -> "CO" + 3"H"_2$

What volume of $H_{2}$ $"H"_2$ can be obtained from ${100 cm}^{3}$ $"100 cm"^3$ of methane at STP?

a)100 cm³ b) 150cm³ c) 300cm³ d)200cm³