Respuesta :
The solution for this is:
Work done = force * distance = m*a*d and power = energy/time
The vo=0 and vf = 25 m/s and t=7 sec. This gives...
3.6 m/s^2 as acceleration and d=87.5 meters and thus F=ma= 5400 N.
Energy = 5400*87.5 = 4.7E5 Joules (2 sig. figs) and Power = 67,500 Watts or 90 HP (2 sig. figs again).
Work done = force * distance = m*a*d and power = energy/time
The vo=0 and vf = 25 m/s and t=7 sec. This gives...
3.6 m/s^2 as acceleration and d=87.5 meters and thus F=ma= 5400 N.
Energy = 5400*87.5 = 4.7E5 Joules (2 sig. figs) and Power = 67,500 Watts or 90 HP (2 sig. figs again).
The average power delivered by the engine is [tex]67500\text{ watt}[/tex] or [tex]90\text{ hp}[/tex].
Further explanation:
Power is defined as the rate at which work is transferred. Its SI unit is watt or J/s. Average power is the average amount of work transferred per unit time.
First we calculate the average velocity of the car then after the distance traveled by car in [tex]7\text{ s}[/tex] and average power delivered can be determined.
Concept:
Work is defined as the dot product of force and displacement. Si unit of work is joule which is the work done by a force of 1 N in moving an object through a distance of 1 m in the direction of force.
Write the expression for average velocity as:
[tex]{V_{{\text{avg}}}} = \dfrac{{{V_{\text{i}}} + {V_{\text{f}}}}}{2}[/tex]
Here, [tex]{V_{\text{i}}}[/tex] is the initial velocity of the car and [tex]{V_{\text{f}}}[/tex] is the final velocity of the car.
Substitute [tex]0[/tex] for [tex]{V_{\text{i}}}[/tex] and [tex]25\text{ m/s}[/tex] for [tex]{V_{\text{f}}}[/tex] in the above expression.
[tex]\begin{aligned}{V_{{\text{avg}}}}&=\frac{{0+25\,{\text{m/s}}}}{2}\\&=12.5\text{ m/s}\\\end{aligned}[/tex]
Distance travelled by car in [tex]7\text{ s}[/tex] is determined by the following relation:
[tex]d = {V_{\text{avg}}\cdot t[/tex]
Substitute [tex]12.5\text{ m/s}[/tex] for [tex]{V_{{\text{avg}}}}[/tex] and [tex]7\text{ s}[/tex] for [tex]t[/tex] in the above expression.
[tex]\begin{aligned}d&=({1.5\,{\text{m/s}}})({7\,{\text{s}}})\\&=87.5\text{ m}\\\end{aligned}[/tex]
Acceleration of the car in time interval of [tex]7\text{ s}[/tex],
[tex]\begin{aligned}a&=\frac{{\Delta V}}{{\Delta t}}\\&=\frac{{{V_{\text{f}}} - {V_{\text{i}}}}}{{\Delta t}}\\\end{aligned}[/tex]
Substitute values for [tex]{V_{\text{f}}}[/tex], [tex]0[/tex] for [tex]{V_{\text{i}}}[/tex] and [tex]7\text{ s}[/tex] for [tex]\Delta t[/tex] in the above expression.
[tex]\begin{aligned}a&=\frac{{25-0}}{7}\\&=3.6\,{\text{m/}}{{\text{s}}^{\text{2}}}\\\end{aligned}[/tex]
From newtons second law,
[tex]F = ma[/tex]
Substitute [tex]1500\text{ kg}[/tex] for [tex]m[/tex] and [tex]3.6\text{ m/s}^2[/tex] for [tex]a[/tex] in the above expression.
[tex]\begin{aligned}F&=\left( {1500\,{\text{kg}}} \right)\left( {3.6\,{\text{m/}}{{\text{s}}^{\text{2}}}} \right)\\&=5400\,{\text{N}}\\\end{aligned}[/tex]
Write the expression for work transferred,
[tex]\boxed{W = Fd}[/tex]
Substitute [tex]5400\text{ N}[/tex] for [tex]F[/tex] and [tex]87.5\text{ m}[/tex] for [tex]d[/tex] in the above expression.
[tex]\begin{aligned}W&=\left( {5400\,{\text{N}}} \right)\left( {87.5\,{\text{m}}} \right)\\&=4.73 \times {10^5}\,{\text{J}}\\\end{aligned}[/tex]
Average power delivered by the engine is the work transfer per unit time.
[tex]\boxed{P = \dfrac{W}{t}}[/tex]
Here, [tex]P[/tex] is the power delivered, [tex]W[/tex] is the work transfer and [tex]t[/tex] is the time interval.
Substitute [tex]4.73 \times {10^5}\,{\text{J}}[/tex] for [tex]W[/tex] and [tex]7\text{ s}[/tex] for [tex]t[/tex] in the above expression.
[tex]\begin{aligned}P&=\frac{{\left( {4.73 \times {{10}^5}\,{\text{J}}} \right)}}{{\left( {7\,{\text{s}}} \right)}}\\&=67570\,{\text{W}}\\\end{aligned}[/tex]
Converting unit of Watt in hp,
Given that, [tex]\boxed{1\,{\text{hp}} = 746\,{\text{W}}}[/tex]
[tex]\begin{aligned}P&=\left( {67570\,{\text{W}}} \right)\left( {\frac{{1\,{\text{hp}}}}{{746\,{\text{W}}}}} \right) \\&=90.5\,{\text{hp}}\\\end{aligned}[/tex]
Thus, the average power delivered by the engine is [tex]67500\text{ watt}[/tex] or [tex]90\text{ hp}[/tex].
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Answer Details:
Grade: High School
Subject: Physics
Chapter: Kinematics
Keywords:
1500 kg, accelerate, 25 m/s, 25 meter per second, 7.0 s, average power, average velocity, distance, rate of work, force, momentum change, horse power, 90 hp, 90.5 hp, 67500 W, 67570 W, 4.7 times 10^5 j, 3.6 meter per sec^2, 3.6 m/s^2.
