Question #3c164

1 Answer
A08
May 6, 2017

sciencehq.com

Referring to the figure above
Change in velocity vector# = vecv_B-vecv_A#
# => Delta vecv=(vecv_B) + (-vecv_A)#

Angle between two velocity vectors is #=40^@#
Since the person moves with with constant speed #v#, we have
#|vecv_A|=|vecv_B|=v#

Magnitude of Resultant vector # |Delta vecv|= sqrt(v^² + v^² - 2v^²cos40^@)#
#= sqrt(2v^²(1 - cos40^@))#

Using the identity
#cos2x = 1 – 2sin^²(x)#
#=> 1 - cos2x = 2sin^²x #, we get

# |Delta vecv|= sqrt(2v^²(2sin^²20^@)) = 2vsin20^@#

Proved.

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