Q2 (16 Marks) Electric Machines (Motors & Generators) 🔥 Repeated 6x in exams
MET • Written Exam

Compare methods of obtaining speed regulation of three-phase induction motors generally used in tankers by means of:

(a) Rotor resistance

(b) Cascade system

(c) Pole-changing

Give examples where each system may be employed with advantage.

Appeared In: Mar 2025 - 1Jun 2024Dec 2020Dec 2019Oct 2022Aug 2018

✓ Verified Model Answer (Text Solution)

Structured for DG Shipping MEO Class II examination scoring criteria.

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Three main methods of speed regulation for three-phase induction motors used on tankers are rotor resistance, cascade system, and pole-changing.

Each method operates on a different principle and is suited to particular shipboard applications depending on the load, torque, and speed control requirements.

(a) Rotor Resistance Method

Principle:

  • This method is applicable only to slip-ring (wound-rotor) induction motors.
  • Additional resistance is inserted into the rotor circuit through the slip rings.
  • By increasing the rotor resistance, the slip increases, resulting in a reduction in motor speed.

Speed can be controlled smoothly while maintaining high starting torque.

Application & Advantage:

  • Suitable for applications requiring high starting torque and variable speed under load.
  • Provides fine speed control and is simple and cost-effective, though it suffers from power loss in the external resistors and reduced efficiency.

Examples:

  • Cargo winches
  • Crane motors
  • Grain elevators
  • Cargo and ballast pumps (where gradual speed control is required)

(b) Cascade System (Concatenation)

Principle:

  • Two slip-ring induction motors are mechanically coupled.
  • The rotor circuit of the first motor is electrically connected to the stator circuit of the second motor.
  • Depending on the polarity and connection, this system provides up to four discrete speeds.
  • The combined system allows the supply frequency to be divided between the two motors, producing multiple synchronous speeds.

Application & Advantage:

  • Useful where two or more fixed speeds are required without complex circuitry.
  • Offers higher torque at lower speeds and smooth transition between speed stages.
  • Though more complex mechanically, it allows efficient control in heavy-duty machinery requiring multiple fixed speeds.

Examples:

  • Multi-stage centrifugal pumps
  • Compressors
  • Large ventilation fans and machinery requiring distinct speed stages on tankers

(c) Pole-Changing Method

Principle:

  • In this method, the number of poles in the stator winding is altered by reconfiguring the connections.
  • As synchronous speed depends on the number of poles, changing the pole number changes the speed.

$$N_{s}=\frac{120f}{P}$$

  • This method is used mainly with squirrel-cage induction motors.

Application & Advantage:

  • Provides two or more discrete fixed speeds (commonly a two-speed arrangement).
  • Mechanically simple, reliable, and requires no external resistors or complex controls.
  • Efficient and well-suited where two-speed operation (high/low) is sufficient for operational flexibility.

Examples:

  • Ballast pumps (high speed for filling, low speed for stripping)
  • Cargo oil pumps
  • Engine room and cargo ventilation fans

Summary:

Method

Motor Type

Speed Control Type

Efficiency

Typical Applications

Rotor Resistance

Slip-ring

Continuous

Low (due to power loss in resistors)

Winches, cranes, cargo pumps

Cascade System

Slip-ring (two motors)

Step-wise (2–4 speeds)

Moderate

Multi-stage pumps, compressors

Pole-Changing

Squirrel-cage

Fixed steps (2 speeds)

High

Ballast pumps, fans, ventilation systems

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