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When decane undergoes complete combustion, a mixture of carbon dioxide and water is formed - Edexcel - GCSE Chemistry - Question 4 - 2016 - Paper 1

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When decane undergoes complete combustion, a mixture of carbon dioxide and water is formed. Complete the balanced equation for this reaction. 2C₁₀H₂₂ + O₂ → CO₂ + H... show full transcript

Worked Solution & Example Answer:When decane undergoes complete combustion, a mixture of carbon dioxide and water is formed - Edexcel - GCSE Chemistry - Question 4 - 2016 - Paper 1

Step 1

Complete the balanced equation for this reaction.

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Answer

To balance the combustion reaction of decane, we start with the reaction:

2C10H22+O2CO2+H2O2C_{10}H_{22} + O_2 → CO_2 + H_2O

  1. Count Carbon Atoms: There are 20 carbon atoms in 2C₁₀H₂₂, which means we need 20 CO₂ produced.

    CO2=20CO_2 = 20

  2. Count Hydrogen Atoms: There are 44 hydrogen atoms in 2C₁₀H₂₂, which means we need 22 H₂O produced.

    H2O=22H_2O = 22

  3. Balance Oxygen Atoms: The total oxygen from the products is:

    20CO2imes2=40extO20 CO_2 imes 2 = 40 ext{ O} 22H2Oimes1=22extO22 H_2O imes 1 = 22 ext{ O}

Total Oxygen needed = 40 + 22 = 62 oxygen atoms, which means:

$$rac{62}{2} = 31 O_2$$

Thus, the complete balanced equation is:

2C10H22+31O220CO2+22H2O2C_{10}H_{22} + 31O_2 → 20CO_2 + 22H_2O

Step 2

Which of the following is the empirical formula for butane?

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Answer

To find the empirical formula for butane (C₄H₁₀), we must simplify the molecular formula.

  1. Determine the ratio: The number of carbon (C) atoms is 4, and the number of hydrogen (H) atoms is 10.
  2. Divide by the greatest common divisor (GCD): The GCD of 4 and 10 is 2.
  3. Simplify:
    • Carbon: 42=2\frac{4}{2} = 2.
    • Hydrogen: 102=5\frac{10}{2} = 5.

Therefore, the empirical formula is C₂H₅. The options provided must be evaluated:

  • A CH
  • B CH₂
  • C C₄H₁₀

The correct answer from the above is B CH₂, which simplifies to an empirical formula.

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