1 Answer

Denis Pshenov · Answer 1 · 2023-06-28T21:54:45+0000

Given data:

Mass of the jet;

$m=120000\text{ kg}$

Initial horizontal velocity of the jet while levels off,

$u_x=90\text{ m/s}$

Final horizontal velocity of the jet while levels off,

$v_y=90\text{ m/s}$

While the levels off the horizontal velocity is constant.

Initial vertical velocity of the jet while levels off,

$u_y=27\text{ m/s}$

Final vertical velocity of the jet while levels off,

Time;

$t=17\text{ s}$

Part (1),

The horizontal acceleration of the jet while levels off is given as,

Substituting all known values,

$\begin{gathered} a_x=\frac{(90\text{ m/s})-(90\text{ m/s})}{17\text{ s}} \\ =0 \end{gathered}$

The net horizontal force on the airplane as it levels off is given as,

Substituting all known values,

$\begin{gathered} F_x=(120000\text{ kg})*0 \\ =0\text{ N} \end{gathered}$

Therefore, the net horizontal force on the airplane as it levels off is 0 N.

Part (2)

The vertical acceleration of the jet while levels off is given as,

Substituting all known values,

$\begin{gathered} a_y=\frac{(0)-(27\text{ m/s})}{17\text{ s}} \\ \approx-1.59\text{ m/s}^2 \end{gathered}$

The net vertical force on the airplane as it levels off is given as,

Substituting all known values,

$\begin{gathered} F_y=(120000\text{ kg})*(-1.59\text{ m/s}^2) \\ =190800\text{ N} \end{gathered}$

Therefore, the net vertical force on the airplane as it levels off is 190800 N.

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