Unit 6: Elementary Turbine Design - Subjective Questions

ASE202 — Propulsion-I • Practice Questions with Detailed Answers

20 questions

1

Define a gas turbine and explain the basic functions of its turbine section.

2

Distinguish between impulse and reaction turbines.

3

Explain how inlet and outlet velocity triangles are constructed for an axial-flow turbine stage.

4

Derive the Euler turbine work equation for an axial turbine stage.

5

Define blade efficiency, diagram efficiency and stage efficiency of a turbine.

6

Derive the condition for maximum blade efficiency of an ideal single-stage impulse turbine.

7

Define the degree of reaction and explain its physical significance in a turbine stage.

8

Describe the characteristics and advantages of a 50 percent reaction or Parsons turbine stage.

9

Why is turbine compounding necessary? Classify the principal methods of compounding.

10

Explain the construction, working and limitations of a velocity-compounded impulse turbine.

11

Describe pressure compounding and compare it with velocity compounding.

12

Explain pressure-velocity compounding and state where it is useful.

13

Explain why multistaging is used in gas turbines and describe the distribution of work among stages.

14

Define stage loading coefficient and flow coefficient. Explain their importance in turbine stage design.

15

Explain the principal parameters used to evaluate turbine stage performance.

16

Discuss the major aerodynamic and mechanical losses that reduce turbine efficiency.

17

Discuss the principal factors that limit turbine design.

18

Why is turbine-blade cooling required? Explain its effect on turbine performance and blade life.

19

Describe and compare the principal methods used to cool turbine blades.

20

An ideal impulse stage receives gas at an absolute velocity of at to the wheel direction. The blade speed is , the gas leaves the rotor axially, and the mass flow is . Calculate the specific work, diagram efficiency and power output.