q A =-2µC

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E B (C). E tot. E B (C)= k.q B /BC 2 E B (C)=3.10 7 N/C (E=F/q) 6 cm ↔ 3.10 7 N/C. E B (C). q C 0. F opposé à E. 2 cm ↔ 10 7 N/C. E A (C). - PowerPoint PPT Presentation

Transcript of q A =-2µC

C

qA=-2µC qB=+3µC

q>0

EB(C)

F

EB(C)=k.qB/BC2

EB(C)=3.107N/C (E=F/q)

6 cm ↔ 3.107N/C

EB(C)

2 cm ↔ 107N/C EA(C)

EC(C)=7,2.106N/C

1,44 cm ↔ 7,2.106N/C

Etot= EA + EB

Etot

5,2 cm ↔ 2,6.107N/C

qC=-4µC

F=qC.EqC<0 donc F opposé à E

F=│q│.EF= 4.10-6.2,6.107

F= 104 N

Échelle pour les forces : 100 N↔ 10 cm104 N ↔ 10,4 cm

FA/C

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