DP Physics (last assessment 2024)

Question 18M.2.HL.TZ2.8

Date	May 2018	Marks available	[Maximum mark: 10]	Reference code	18M.2.HL.TZ2.8
Level	HL	Paper	2	Time zone	TZ2
Command term	Calculate, Show that, State	Question number	8	Adapted from	N/A

[Maximum mark: 10]

18M.2.HL.TZ2.8

A negatively charged thundercloud above the Earth’s surface may be modelled by a parallel plate capacitor.

M18/4/PHYSI/HP2/ENG/TZ2/08

The lower plate of the capacitor is the Earth’s surface and the upper plate is the base of the thundercloud.

The following data are available.

$\begin{array}{*{20}{l}} {{\text{Area of thundercloud base}}}&{ = 1.2 \times {{10}^8}{\text{ }}{{\text{m}}^2}} \\ {{\text{Charge on thundercloud base}}}&{ = -25{\text{ C}}} \\ {{\text{Distance of thundercloud base from Earth's surface}}}&{ = 1600{\text{ m}}} \\ {{\text{Permittivity of air}}}&{ = 8.8 \times {{10}^{ - 12}}{\text{ F }}{{\text{m}}^{ - 1}}} \end{array}$

(a)

Show that the capacitance of this arrangement is C = 6.6 × 10^–7 F.

[1]

Markscheme

C = «ε $\frac{A}{d}$ =» 8.8 × 10^–12 × $\frac{{1.2 \times {{10}^8}}}{{1600}}$

«C = 6.60 × 10^–7 F»

[1 mark]

(b.i)

Calculate in V, the potential difference between the thundercloud and the Earth’s surface.

[2]

Markscheme

V = « $\frac{Q}{C}$ =» $\frac{{25}}{{6.6 \times {{10}^{ - 7}}}}$

V = 3.8 × 10⁷ «V»

Award [2] for a bald correct answer

[2 marks]

(b.ii)

Calculate in J, the energy stored in the system.

[2]

Markscheme

ALTERNATIVE 1

E = « $\frac{1}{2}$ QV =» $\frac{1}{2}$ × 25 × 3.8 × 10⁷

E = 4.7 × 10⁸ «J»

ALTERNATIVE 2

E = « $\frac{1}{2}$ CV² =» $\frac{1}{2}$ × 6.60 × 10^–7 × (3.8 × 10⁷)²

E = 4.7 × 10⁸ «J» / 4.8 × 10⁸ «J» if rounded value of V used

Award [2] for a bald correct answer

Allow ECF from (b)(i)

[2 marks]

Lightning takes place when the capacitor discharges through the air between the thundercloud and the Earth’s surface. The time constant of the system is 32 ms. A lightning strike lasts for 18 ms.

(c.i)

Show that about –11 C of charge is delivered to the Earth’s surface.

[3]

Markscheme

Q = « ${Q_0}{e^{ - \frac{t}{\tau }}}$ =» 25 × ${e^{ - \frac{{18}}{{32}}}}$