A 3509 be comesbullef trouelling ofembeddedd in325.0mis20strifes dnd I be comes a 5u4gblock of uood that is sitingtable top.horizoatalon aO.) De tor mine the Speced of the bock f wood afterhas be come enbe ddeb' in itrthe bo llet

20 A. A 35.09 bullet fravelling ot 325.0mis. bullet travelling ot 325.0mis skrifes dnd d be comes a 5449 embedded in block of uoodl that is sitting table top. g on a horizoa tal De ter mine the Speed of the Hock wood after wood afer the bo llet hos be come enhe ddeb' in it

20 A. A 35.09 bullet fravelling ot 325.0mis. bullet travelling ot 325.0mis skrifes dnd d be comes a 5449 embedded in block of uoodl that is sitting table top. g on a horizoa tal De ter mine the Speed of the Hock wood after wood afer the bo llet hos be come enhe ddeb' in it

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Question

A 3509 be comes
bullef trouelling of
embeddedd in
325.0mis
20
strifes dnd I be comes a 5u4g
block of uood that is siting
table top.
horizoatal
on a
O.) De tor mine the Speced of the bock f wood after
has be come enbe ddeb' in it
r
the bo llet

Expert Solution

Concept

The linear momentum remains conserved in collision.

Using conservation of linear momentum

P_initial = P_final

Where P_initial = Total initial linear momentum, P_final = Total final linear momentum

Answer

Mass of bullet is m₁ = 35 g = 0.035 kg

Mass of block is m₂ = 544 g = 0.544 kg

The initial velocity of the bullet is v₁ = 325.0 m/s

The initial velocity of the block is v₂ = 0 m/s (at rest)

Let V be the velocity of the block after the bullet embedded in the block.

Using conservation of the linear momentum

P_initial = P_final

m₁ v₁+ m₂ v₂ = (m₁ + m₂) V

0.035 × 325 + 0.544 × 0 = (0.035 + 0.544) × V

11.375 = 0.579 × V

V = 19.646 m/s

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