Skip to content

Course home

3 Quantitative chemistry

3 Quantitative chemistry

EasyMediumHard
123456789101112131415161718192021222324252627282930313233343536373839404142
Question 9

A student investigated the reaction between zinc powder and dilute sulfuric acid. The equation for the reaction is:

Zn(s)+H2SO4(aq)→ZnSO4(aq)+H2(g) \text{Zn}(\text{s}) + \text{H}_2\text{SO}_4(\text{aq}) \rightarrow \text{ZnSO}_4(\text{aq}) + \text{H}_2(\text{g}) Zn(s)+H2​SO4​(aq)→ZnSO4​(aq)+H2​(g)

The student used a conical flask connected to a gas syringe. They added 25 cm3 of dilute sulfuric acid to a chosen mass of zinc powder, quickly inserted the stopper, and recorded the volume of gas collected after the reaction finished. They repeated this for several different masses of zinc powder.

The table below shows the volume of gas collected in four trials using a mass of 1.5 g of zinc powder:

TrialVolume of gas produced (cm3\text{cm}^3cm3)
158
222
356
459

Answer the following questions:

a.

Identify the gas produced and collected in this investigation.

[1]
b.

What was the independent variable in this investigation?

[1]
c.

Give one control variable that must be kept constant to ensure a fair test.

[1]
d.

Which trial gave an anomalous result? Calculate the mean volume of gas produced using only the non-anomalous trials (give your answer to 1 decimal place).

[3]
e.

Suggest one practical error that could explain this anomalous result.

[1]
Markscheme

3 Quantitative chemistry Questions

  1. GCSE
  2. /Chemistry
  3. /3 Quantitative chemistry

Question bank