A 2810-kg test rocket is launched vertically from the launch pad. Its fuel (of n
ID: 1638479 • Letter: A
Question
A 2810-kg test rocket is launched vertically from the launch pad. Its fuel (of negligible mass) provides a thrust force so that its vertical velocity as a function of time is given by v(t)=At+Bt2, where A and B are constants and time is measured from the instant the fuel is ignited. At the instant of ignition, the rocket has an upward acceleration of 1.80 m/s2 and 1.90 s later an upward velocity of 2.35 m/s .
Part A: Determine A. --> I got this correct: 1.80 m/s2
Part B: Determine B. --> I got this correct: -0.296 m/s3
Part C: At 3.10 s after fuel ignition, what is the acceleration of the rocket? --> I keep getting this wrong on the online HW and I can't see why. My answer is:
at t = 3.10s, a=1.80 m/s2+2(-0.296 m/s3)(3.10 s) = -0.0352
Please help!
Also, for the rest of the problem...
Part D: At 3.10 s after fuel ignition,what thrust force does the burning fuel exert on it, assume no air resistance? Express the thrust in newtons.
Part E: What thrust force does the burning fuel exert on it, assume no air resistance? Express the thrust as a multiple of the rocket's weight.
Part F: What was the initial thrust due to the fuel?
Thanks in advance to all you respond!
Explanation / Answer
The velocity is given by:
v(t) = At + Bt2
=> a(t) = dv/dt = A + 2Bt
at t = 0s, a(t) = 1.8 m/s2
therefore, 1.8 = A + 2B(0)
=> A = 1.8 m/s2
so, v(t) = 1.8t + Bt2
and at t = 1.9s, v(t) = 2.35 m/s
=> 2.35 = 1.8(1.9) + B(1.9)2
=> B = - 0.2964 m/s3
therefore, v(t) = 1.8t - 0.2964t2
C] at, t = 3.1s,
a(t) = 1.8 + 2(-0.2964)(3.1) = - 0.0377 m/s2
D] F = ma = 2810 x -0.0377 = - 105.86 N
this is the thrust exerted by the burning fuel.
E] Rocket's weight = W = mg = - 2810 (9.8) = - 27538 N
therefore, the thrust exerted by burning fuel in terms of the weight will be: F = 105.86/27538 = 0.003844W.
F] Initial thrust due to the fuel will be,
F = 2810 (1.8) = 5058 N.
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