FE Mechanical Practice Question Solution included after investigation
CASE E-058 Β· FE

The Spring That Deflected 25.6 mm Under 500 N

The spring force was 500 N, but the deflection depended strongly on wire diameter, coil diameter, and active coils.

β–Ά INTERACTIVE CASE FILE β€’ 5–10 MIN β€’ CLICK TO INVESTIGATE

Inspect, commit, prove, fix, and sign off.

Case E-058 engineering failure visual
HOW THIS WORKS

Think like
a real engineer.

Follow the investigation process used in the field β€” in five guided steps.

1

Inspect

Review the problem, diagram, and evidence.

2

Commit

Choose your hypothesis.

3

Prove

Run calculations and test your idea.

4

Fix

Select and validate a safe correction.

5

Sign Off

See the full debrief and key takeaways.

Case Brief

SAME PRINCIPLES. HIGHER STANDARDS.
PROBLEM STATEMENT

A helical compression spring has wire diameter 8 mm, mean coil diameter 64 mm, 8 active coils, and shear modulus G=80 GPa. It carries a 500 N load. A technician uses an arbitrary 50 N/mm stiffness. Determine the actual spring rate and deflection.

Mechanical Design Analysis Mechanical Design Verification Root Cause Analysis Safe Correction
E-058
INVESTIGATION WORKSPACE WORK THROUGH THE CASE β€” YOUR CHOICES MATTER.
πŸ”’
DEBRIEF (LOCKED)

Complete the investigation
to unlock the full debrief.

Find the root cause, confirm the fix, and see how this connects to the exam.

πŸ”’Root causeComplete the case
to reveal
πŸ”’Correct fixComplete the case
to reveal
πŸ”’Exam takeawayComplete the case
to reveal
CASE CLOSED Β· ENGINEERING VERDICT

What actually failed β€” and what should change.

What failed

A guessed spring rate was used.

What was missed

Wire diameter, coil diameter, active coils, and shear modulus determine k.

Corrected model

Compute k first, then use x=F/k.

QUICK ANSWER

For a helical compression spring, k=d⁴G/(8DΒ³N). With d=8 mm, D=64 mm, N=8, and G=80 GPa, kβ‰ˆ19.53 N/mm. A 500 N load therefore causes about 25.6 mm deflection.

ENGINEERING TAKEAWAY

Calculate helical spring rate from geometry and shear modulus, then use F=kx.

CASE QUESTIONS

Questions this case should settle.

What is the helical compression spring rate formula?

k=d⁴G/(8D³N) for the idealized linear model.

What happens if active coil count increases?

Spring stiffness decreases.

NEXT FE PRACTICE QUESTION

The 30 kW Shaft That Needed 239 NΒ·m of Torque

Mechanical Design Analysis Β· 5–10 min

Continue Practice β†’
WHAT YOU’LL LEARN

Real failures. Lasting skills.

Each case is designed to build the judgment, analysis, and confidence you need for engineering exams β€” and beyond.

  • Apply core engineering concepts to real-world problems
  • Practice structured troubleshooting and analysis
  • Strengthen exam-ready thinking through realistic scenarios
COMMON QUESTIONS
Do I need prior knowledge to use these cases?

Basic subject familiarity helps, but every case is designed to teach through the investigation itself.

How long does a case take?

Most cases are designed for a focused 5–10 minute investigation.

Are the cases aligned with engineering exams?

Each case is mapped to a verified exam, subject, topic, and misconception before publication.

What happens after I complete a case?

The sealed debrief unlocks with the root cause, corrected reasoning, fix, and takeaway.