GOAL Apply Newton's second law in one dimension, together with the Propellr. equations of kinematics. PROBLEM An airboat with mass 3.50 x 10' kg, including the passen- ger, has an engine that produces a net horizontal force of 7.70 x 10' N, after accounting for forces of resistance (see Fig. 4.7). (a) Find the accel- eration of the airboat. (b) Starting from rest, how long does it take the airboat to reach a speed of 12.0 m/s? (c) After reaching that speed, the pilot turns off the engine and drifts to a stop over a distance of 50.0 m. Find the resistance force, assuming it's constant. Figure 4.7 (Example 4.1)

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GOAL Apply Newton's second law in one dimension, together with the Propeller.
equations of kinematics.
PROBLEM An airboat with mass 3.50 x 10° kg, including the passen-
ger, has an engine that produces a net horizontal force of 7.70 x 102 N,
after accounting for forces of resistance (see Fig. 4.7). (a) Find the accel-
eration of the airboat. (b) Starting from rest, how long does it take the
airboat to reach a speed of 12.0 m/s? (c) After reaching that speed, the
pilot turns off the engine and drifts to a stop over a distance of 50.0 m.
Find the resistance force, assuming it's constant.
Figure 4.7 (Example 4.1)
Transcribed Image Text:GOAL Apply Newton's second law in one dimension, together with the Propeller. equations of kinematics. PROBLEM An airboat with mass 3.50 x 10° kg, including the passen- ger, has an engine that produces a net horizontal force of 7.70 x 102 N, after accounting for forces of resistance (see Fig. 4.7). (a) Find the accel- eration of the airboat. (b) Starting from rest, how long does it take the airboat to reach a speed of 12.0 m/s? (c) After reaching that speed, the pilot turns off the engine and drifts to a stop over a distance of 50.0 m. Find the resistance force, assuming it's constant. Figure 4.7 (Example 4.1)
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