A frictionless ski jump is designed such that at the bottom of the hill, there is a short flat section. After the flat section, the slope continues into a ramp of vertical height 0.08 m, at an angle 40 degrees (relative to the horizontal). The top of the ski jump is 475 m high off the ground. Block A of mass 19kg is released from the top of the slope so that it slides down and makes a perfectly elastic collision with Block B of mass 8.93kg. This causes the Block B to slide up the frictionless ramp and undergo projectile motion, before landing a horizontal distance x m away from the ramp. MA Part 1 тв Ꮎ x What is the speed of Block B (in m/s), immediately after the perfectly elastic collision? VB = number (rtol=0.05, atol=1e-08) m/s ? Part 2 What is the horizontal distance (in m) that Block B travels after it goes off the ramp (x)? x = number (rtol=0.05, atol=1e-08) m
A frictionless ski jump is designed such that at the bottom of the hill, there is a short flat section. After the flat section, the slope continues into a ramp of vertical height 0.08 m, at an angle 40 degrees (relative to the horizontal). The top of the ski jump is 475 m high off the ground. Block A of mass 19kg is released from the top of the slope so that it slides down and makes a perfectly elastic collision with Block B of mass 8.93kg. This causes the Block B to slide up the frictionless ramp and undergo projectile motion, before landing a horizontal distance x m away from the ramp. MA Part 1 тв Ꮎ x What is the speed of Block B (in m/s), immediately after the perfectly elastic collision? VB = number (rtol=0.05, atol=1e-08) m/s ? Part 2 What is the horizontal distance (in m) that Block B travels after it goes off the ramp (x)? x = number (rtol=0.05, atol=1e-08) m
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Transcribed Image Text:A frictionless ski jump is designed such that at the bottom of the hill, there is a short
flat section.
After the flat section, the slope continues into a ramp of vertical height 0.08 m, at an
angle 40 degrees (relative to the horizontal).
The top of the ski jump is 475 m high off the ground.
Block A of mass 19kg is released from the top of the slope so that it slides down and
makes a perfectly elastic collision with Block B of mass 8.93kg. This causes the Block B
to slide up the frictionless ramp and undergo projectile motion, before landing a
horizontal distance x m away from the ramp.
MA
Part 1
тв
Ꮎ
x
What is the speed of Block B (in m/s), immediately after the perfectly elastic
collision?
VB = number (rtol=0.05, atol=1e-08)
m/s
?
Part 2
What is the horizontal distance (in m) that Block B travels after it goes off the
ramp (x)?
x = number (rtol=0.05, atol=1e-08)
m
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