Hey peeps help me out:
june 07 ques 3 b
nov 07 ques 5 b ii
I apologize for the late reply.
Jun 07 p43.(b) You need to find the area under the graph shown in Fig 3.2 as said in the question itself. But you need to be careful because the units have to be converted to
metres and
volt per metre respectively.
Potential difference =
530 VNov 07 p45.(b)(ii) Again you need to find the area under graph as shown. Divide into different tirangles and trapeziums to improve accuracy.
Area under graph = (1/2 x 4 x 1) + (1/2 x 2 x 1) + 10 + 1/2(4 + 1.6)(2) + (1/2 x 4 x 1.4) + (1/2 x 4 x 0.2) = 21.8 cm
2 1 cm
2 = 0.125 mA x 1.25s = 1/6400 C
Hence initial charge = 1/6400 x 21.8 =
3400 uCHope it helps
