CO2 is always present in natural water. Explain its effect (

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 Multiple Choice QuestionsShort Answer Type

181. Write the Nernst equation and emf of the following cells at 298 k.
Mg(s) | Mg2+ (0.001 M) || Cu2+ (0.0001 M) | Cu(s)
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182. Write the Nernst equation and emf of the following cells at 298 k.
Fe(s) | Fe2+ (0.001 M) || H+ (1M) | H2 (g) (1 bar) | Pt(s)
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183. Write the Nernst equation and emf of the following cells at 298 k.
Sn(s) | Sn2+ (0.050 M) || H+(0.020 M) H2(g) (1bar) Pt (s)
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184. Write the Nernst equation and emf of the following cells at 298 k.
Pt(s) | Br2 (l) | Br (0.010 M) || H+ (0.030 M) | + H2(g) (1 bar) | Pt(s).
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185. What is corrosion? What are the factors which affect corrosion?
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186. CO2 is always present in natural water. Explain its effect (increases, stops or no effect) on rusting of iron.


CO2 increases rusting of iron: CO2 present in water is in the form of H2CO3. H2CO3dissociates into H+ and HCO3-.

H2CO3 = HCO3-+H+H2O = H++OH-2H++2e  H2

Hydroxyl ion or bicarbonate ions attack the iron surface to form anodic regions in which iron loses electrons and pass on to ferrous sulphate which is further oxidised to ferric state by oxygen of the air. The released electrons move towards the cathode region where H+ions are converted into hydrogen gas.

Fe Fe2++2e-O2 = 2H2O + 4e-  4OH-4Fe+3O2+2×H2O  2 Fe2O3. XH2O

Thus CO2 increases rusting because H2COgives H+ which gain electrons to form H2 gas. The electrons are released by iron.
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187. Rusting of iron is quicker in saline water than in ordinary water. Explain.
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188. We can use aluminium in place of zinc for cathodic protection of rusting. Comment.
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189. How is cathodic protection of Iron different from its galvanisation?
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 Multiple Choice QuestionsLong Answer Type

190. Define conductivity and molar conductivity for the solution of an electrolyte. Discuss their variaion with concentration.
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