Part D dy Use the results from Parts B and C in the product rule of differentiation to find a simplified expression for the vertical velocity of the car, vy(t) = dt ► View Available Hint(s) vy(t) = Submit dy dt Part E yoe-at (cos(wt) + aw cos(wt)) -ayo²e-2at-w cos(wt) sin(wt) -yoeat (a cos(wt) + w sin(wt)) awy²e-2at cos(wt) sin(wt) Correct In this example we used both the chain and product rules of differentiation to obtain an expression for the (vertical) velocity-time relationship for the car from its position-time relationship. Previous Answers vy(0.25 s) = Evaluate the numerical value of the vertical velocity of the car at time t = 0.25 s using the expression from Part D, where yo = 0.75 m, a = 0.95 1/s, and w = 6.3 rad/s. ► View Available Hint(s) μÀ Value Units ?

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Chapter1: Units, Trigonometry. And Vectors
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Part D
dy
Use the results from Parts B and C in the product rule of differentiation to find a simplified expression for the vertical velocity of the car, vy(t): dt
► View Available Hint(s)
vy(t)
=
Submit
Part E
dy
dt
-at (cos(wt) + aw cos(wt))
w cos(wt) sin(wt)
-yoe-at (a cos(wt) + w sin(wt))
awy²e-2 cos(wt) sin(wt)
Yoe
-ayo²e-2at
Previous Answers
-2at
Correct
In this example we used both the chain and product rules of differentiation to obtain an expression for the (vertical) velocity-time relationship for the car from its position-time relationship.
Evaluate the numerical value of the vertical velocity of the car at time t
-
= 0.25 s using the expression from Part D, where yo = 0.75 m, a = 0.95 1/s, and w = 6.3 rad/s.
► View Available Hint(s)
μÀ
Vy(0.25 s) = Value
Units
?
Transcribed Image Text:Part D dy Use the results from Parts B and C in the product rule of differentiation to find a simplified expression for the vertical velocity of the car, vy(t): dt ► View Available Hint(s) vy(t) = Submit Part E dy dt -at (cos(wt) + aw cos(wt)) w cos(wt) sin(wt) -yoe-at (a cos(wt) + w sin(wt)) awy²e-2 cos(wt) sin(wt) Yoe -ayo²e-2at Previous Answers -2at Correct In this example we used both the chain and product rules of differentiation to obtain an expression for the (vertical) velocity-time relationship for the car from its position-time relationship. Evaluate the numerical value of the vertical velocity of the car at time t - = 0.25 s using the expression from Part D, where yo = 0.75 m, a = 0.95 1/s, and w = 6.3 rad/s. ► View Available Hint(s) μÀ Vy(0.25 s) = Value Units ?
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Follow-up Question
An engineer is considering possible trajectories to use for emergency descent of a lunar module from low moon orbit to the lunar surface and decides to investigate one for which the vertical component of velocity as a function of time is described by vy(t) = voe
0.49 km/s, to = 390 s, and σ = 65 s.
U0 =
Part F
For this trajectory, what would the vertical component of acceleration for the module be at time tm = too = 325 s? Recall that acceleration is the derivative of velocity with respect to time.
► View Available Hint(s)
0
O
μÃ
dây (325 s) = Value
dt
Units
?
(t-to)²
202 where
Transcribed Image Text:An engineer is considering possible trajectories to use for emergency descent of a lunar module from low moon orbit to the lunar surface and decides to investigate one for which the vertical component of velocity as a function of time is described by vy(t) = voe 0.49 km/s, to = 390 s, and σ = 65 s. U0 = Part F For this trajectory, what would the vertical component of acceleration for the module be at time tm = too = 325 s? Recall that acceleration is the derivative of velocity with respect to time. ► View Available Hint(s) 0 O μà dây (325 s) = Value dt Units ? (t-to)² 202 where
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