Experiment 3: Kinetic and Static Friction — Worked Examples

These examples emphasize how the measured spring-balance force becomes a friction force only when the correct motion condition and normal force are identified.

Example 1: Coefficient of static friction

A 1.20 kg1.20\,\text{kg} block begins to move when a horizontal spring-balance reading reaches 5.40 N5.40\,\text{N}. Determine μs\mu_s using g=9.80665 m/s2g=9.80665\,\text{m/s}^2.

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Example 2: Coefficient of kinetic friction

The same block requires a steady horizontal pull of 4.10 N4.10\,\text{N} to move at approximately constant velocity. Determine μk\mu_k.

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Example 3: Effect of added load

A 0.300 kg0.300\,\text{kg} mass is placed on the 1.20 kg1.20\,\text{kg} block. If μk=0.348\mu_k=0.348, predict the kinetic friction force for a horizontal pull.

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Example 4: Static-friction threshold on an incline

A dry surface pair has μs=0.459\mu_s=0.459. Determine the ideal incline angle at which the block is just about to slide.

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Example 5: Uniform sliding angle

If μk=0.348\mu_k=0.348, at what ideal incline angle would a sliding block move with zero acceleration?

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Example 6: Friction coefficient from a force-versus-normal-force graph

A best-fit graph of measured kinetic friction fkf_k on the vertical axis versus normal force NN on the horizontal axis has slope 0.3720.372 and intercept 0.06 N0.06\,\text{N}. Interpret the result.

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Example 7: Upward pull changes the normal force

A 1.00 kg1.00\,\text{kg} block moves at constant velocity while pulled by F=4.00 NF=4.00\,\text{N} at 15∘15^\circ above horizontal. Determine μk\mu_k.

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Example 8: Distinguishing friction force from coefficient

Two trials on the same surface give (N,fk)=(8.0 N,2.9 N)(N,f_k)=(8.0\,\text{N},2.9\,\text{N}) and (14.0 N,5.1 N)(14.0\,\text{N},5.1\,\text{N}). Determine the coefficient in each trial and comment on consistency.

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