Gears and Gear Trains free study note for Diploma / BTech.

Important terms:

  • Module (m): m=DTm = \frac{D}{T}

(a) Spur Gears

Key features

gear trains

(b) Helical Gears

Key features

(c) Bevel Gears

Key features

(d) Worm and Worm Wheel

Key features

Types of Gear Trains

(a) Simple Gear Train

Construction of a simple gear train

Working Principle

Characteristics

Velocity Ratio

Let,

Gear Ratio

(b) Compound Gear Train

Construction of compound gear train

Working Principle

Characteristics

Speed Relationship

Since Gear 2 and Gear 3 are fixed on the same shaft,N2=N3\boxed{N_2=N_3}

where

  • N2N_2โ€‹ = Speed of Gear 2
  • N3N_3โ€‹ = Speed of Gear 3

Gear Ratio

The gear ratio isGR=T2ร—T4T1ร—T3\boxed{GR = \frac{T_2 \times T_4} {T_1 \times T_3}}

Velocity Ratio

Let

  • T1T_1โ€‹ = Teeth on Gear 1
  • T2T_2โ€‹ = Teeth on Gear 2
  • T3T_3โ€‹ = Teeth on Gear 3
  • T4T_4โ€‹ = Teeth on Gear 4

Then

For Gear Pair 1N1N2=T2T1\frac{N_1}{N_2}=\frac{T_2}{T_1}For Gear Pair 2N3N4=T4T3\frac{N_3}{N_4}=\frac{T_4}{T_3}SinceN2=N3N_2=N_3Overall velocity ratioN1N4=T2T1ร—T4T3\boxed{\frac{N_1}{N_4} =\frac{T_2}{T_1} \times \frac{T_4}{T_3}}

(c) Reverted Gear Train

Component of a reverted gear train


Working Principle

Characteristics

Condition for a Reverted Gear Train

Pitch circle condition

Velocity Ratio

Gear Ratio

(d) Epicyclic (Planetary) Gear Train

Construction of an Epicyclic Gear Train

A. Sun Gear

B. Planet Gears

C. Planet Carrier (Arm)

D. Ring Gear (Annulus)

3. Principle of Working

  • Sun Gear
  • Ring Gear
  • Planet Carrier

Since there are three rotating members, numerous speed ratios can be obtained.

Example

Suppose:

  • Sun Gear = Driving member
  • Ring Gear = Fixed
  • Carrier = Output

Working:

  1. Sun gear rotates.
  2. Planet gears rotate around the sun.
  3. Since the ring gear cannot rotate, the planets walk around the inside of the ring gear.
  4. The carrier rotates at a reduced speed but with increased torque.

This arrangement is commonly used as a speed reducer.

Types of Epicyclic Gear Trains

A. Simple Planetary Gear Train

Applications:

B. Compound Planetary Gear Train

Applications:

C. Differential Planetary Gear Train

Applications:

6. Speed Ratio

The speed ratio depends upon:

  • Number of teeth
  • Fixed member
  • Input member
  • Output member

For a simple planetary gear train,

If

  • Sun Gear teeth = Zโ‚›
  • Ring Gear teeth = Zแตฃ

Then one common relation isฯ‰sโˆ’ฯ‰cฯ‰rโˆ’ฯ‰c=โˆ’ZrZs\frac{\omega_s-\omega_c}{\omega_r-\omega_c} = -\frac{Z_r}{Z_s}Where

  • ฯ‰โ‚› = Speed of Sun Gear
  • ฯ‰แตฃ = Speed of Ring Gear
  • ฯ‰๐šŒ = Speed of Carrier

This equation is known as the fundamental equation of epicyclic gear trains.

6. Comparison of Simple, Compound, and Reverted Gear Trains

7. Applications of Gear Trains

8. Advantages and Dis-advantages of Gear Trains


External Resources

  1. NPTEL course for gear trains.

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