Answer: Calculating Velocity of 1000kg Rocket After Launch

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The discussion focuses on calculating the acceleration and speed of a 1000kg weather rocket launched straight up. The rocket experiences constant acceleration for the first 16 seconds before the motor stops, and the altitude after 20 seconds is 5100m. The initial velocity (vo) is confirmed to be zero at launch. The calculations involve two phases: uniform acceleration for 16 seconds and free fall for the remaining 4 seconds. The final acceleration calculated by one participant is approximately 26.97 m/s², which is derived from the equations of motion.
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Homework Statement


A 1000kg weather rocket is launched straight up. The rocket motor provides a constant acceleration for 16s, then the motor stops. The rocket altitude 20s after launch is 5100m. You can ignore any effects of air resistance.

What was the rocket's acceleration during the first 16s?

What is the rocket's speed as it passes through a cloud 5100m above the ground?

i wasnt able to get started it...need solutions asap.

2. Homework Equations

v=vo+at
x=vot+0.5at^2
v^2=vo^2+2ad

3. The Attempt at a Solution
i don't know if vo is 0 or not, but i got 34 but its aint right.
 
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johnlu66 said:

Homework Statement


A 1000kg weather rocket is launched straight up. The rocket motor provides a constant acceleration for 16s, then the motor stops. The rocket altitude 20s after launch is 5100m. You can ignore any effects of air resistance.

What was the rocket's acceleration during the first 16s?

What is the rocket's speed as it passes through a cloud 5100m above the ground?

i wasnt able to get started it...need solutions asap.

2. Homework Equations

v=vo+at
x=vot+0.5at^2
v^2=vo^2+2ad

3. The Attempt at a Solution
i don't know if vo is 0 or not, but i got 34 but its aint right.

Welcome to PF.

Vo is zero when it is fired.

Since after 16 seconds the rocket stops, you have 2 phases to the problem. Uniform acceleration for 16 seconds and then gravitational trajectory thereafter.
 
LowlyPion said:
Welcome to PF.

Vo is zero when it is fired.

Since after 16 seconds the rocket stops, you have 2 phases to the problem. Uniform acceleration for 16 seconds and then gravitational trajectory thereafter.

well, how about final velocity? is it also zero? it seems not but i thought it should be zero after the 20 sec...omg

ok here is what i have changed,
for t = 16
v = a(16)
d= 0.5*a*(16)^2

for t = 4
v = 16a(4)
5100-d = 16a(4) - 9.8 (0.5)(4^2)

5100 = 128a + 64a - 78.4

solve for a? i got a = 26.97 this time
 

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