A charge particle enters a uniform magnetic field with velocity vector at angle of 45∘ with the magnetic field. The pitch of the helical path followed by the particle is P. The radius of the helix will be
A
√2Pπ
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B
P2π
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C
√2P
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D
P√2π
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Solution
The correct option is BP2π ∵pitch(P)=v∥×T=vcosθ×T=vcosθ×(2πmqB).........(1)
From (1) we get,
P=v√2×2πmqB.......(2)
Radius, r=mv⊥qB=mvsin45∘qB=mv√2qB.......(3)
On dividing (3) by (4) we get,
Pr=2π
∴r=P2π
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Hence, option (c) is the correct answer.