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Physics For Engineers2D

Work, Energy, and Power - Theory & Concepts - Power Work Rate

A comprehensive overview of Work, Energy, and Power, exploring energy transfer, conservation, and efficiency.

Open the complete lesson
Interactive engineering simulation

Mechanical Work & Power Vector Simulator

Move the block along the path and rotate the force vector. Visually decompose the force into its parallel and perpendicular components to prove that only forces along the displacement perform work.

θ = 30°
Applied Force magnitude (F)
150 N
N
0500

Drag for exploration or enter an exact value. Press Enter to apply; Escape restores the current value.

Displacement (d)
8.0 m
m
1.030.0

Drag for exploration or enter an exact value. Press Enter to apply; Escape restores the current value.

Elapsed Time (t)
12 s
s
160

Drag for exploration or enter an exact value. Press Enter to apply; Escape restores the current value.

Force Angle from motion (θ)
30 deg
deg
0180

Drag for exploration or enter an exact value. Press Enter to apply; Escape restores the current value.

Motion Scrubber (Timeline)
0.45
0.001.00

Drag for exploration or enter an exact value. Press Enter to apply; Escape restores the current value.

Governing Equations
Work Equation
W=Fdcos(θ)W = F \cdot d \cdot \cos(\theta)
Average Power
P=WtP = \frac{W}{t}
Visual vector projections of force, parallel work, and motion directionFF·cosθdisplacement path (d = 8 m)
Total Work Transferred (W)
1,039.23 J
Avg Power Rate (P)
86.60 W
Parallel force component (F·cosθ)
129.90 N
Perpendicular force (F·sinθ)
75.00 N
Model scope and verification

Use the displayed units and idealizations, then verify the governing balance or compatibility equation before interpreting the result.