Problem 2
Cathodic protection is widely used to prevent metal corrosion by attaching a more active sacrificial metal to the structure. (a) In an experiment on protecting steel in seawater, a 25.0 g zinc block was attached to a steel apparatus. After some time, the block was reweighed at 28.0 g; assume that the only oxidation product is adhering to the block (, g mol). Calculate the percentage of zinc that has oxidised. (b) Find the maximum service time (in hours) of this 25.0 g zinc block if the average protective current generated is 25 mA. (c) A steel ship hull with an immersed area of 1000 m requires an average protective current density of 2.5 mA m. If zinc sacrificial anodes are used and 10 % of the zinc is lost to secondary processes, calculate the mass of zinc required per year (365 days).
Step 1 of 3: Percentage of oxidised zinc
Analysis
Each mole of converted to gains g mol of hydroxide mass. A 3.0 g increase corresponds to 0.0882 mol of zinc consumed, i.e. 5.766 g out of 25.0 g = 23.06 % (matches the official key: 23.06 %).