Q8 (16 Marks) Refrigeration & Air Conditioning 🔥 Repeated 2x in exams
MEKG • Written Exam

Explain vapor compression refrigeration cycle on T-S and P-H diagram and explain the purpose of EACH of the following:

(a) Expansion valve (4)

(b) Room thermostat (4)

(c) High pressure cut out. (4)

(d) Equalizing line. (4)

Appeared In: Aug 2026Mar 2024

Verified Model Answer (Text Solution)

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Vapor Compression Refrigeration Cycle

The vapour compression refrigeration cycle consists of four main processes:

  1. Compression – 1 → 2
  2. Condensation – 2 → 3
  3. Expansion – 3 → 4
  4. Evaporation – 4 → 1

1. T-S Diagram

  • 1 → 2: Compression: Refrigerant vapour from the evaporator is compressed in the compressor. Ideally, compression is isentropic, so entropy remains constant.
  • 2 → 3: Condensation: High-pressure, high-temperature vapour passes through the condenser and rejects heat to the surroundings. The refrigerant changes from vapour to liquid.
  • 3 → 4: Expansion: High-pressure liquid passes through the expansion valve. Pressure and temperature drop suddenly. The process is approximately constant enthalpy (isenthalpic).
  • 4 → 1: Evaporation: The low-pressure refrigerant absorbs heat from the refrigerated space and evaporates, producing the cooling effect.

2. P-H Diagram

  • 1 → 2: Pressure and enthalpy increase during compression.
  • 2 → 3: Pressure remains approximately constant while heat is rejected and the refrigerant condenses.
  • 3 → 4: Pressure drops through the expansion valve, while enthalpy remains approximately constant.
  • 4 → 1: Pressure remains approximately constant while the refrigerant absorbs heat and evaporates.
Part (a)

Expansion Valve

The expansion valve:

  • Reduces the pressure of the liquid refrigerant from condenser pressure to evaporator pressure.
  • Causes a corresponding drop in refrigerant temperature.
  • Meters the correct quantity of refrigerant entering the evaporator.
  • Produces a mixture of liquid and vapour at the evaporator inlet.
  • The expansion process is approximately isenthalpic, i.e. h₃ = h₄.

Purpose: To provide the required pressure reduction and control the refrigerant flow into the evaporator.

Part (b)

Room Thermostat

The room thermostat controls the temperature of the refrigerated space.

  • It senses the room/cold-space temperature.
  • When the temperature rises above the set value, it starts or keeps the compressor running.
  • When the required temperature is reached, it stops the compressor or signals the control system to stop it.
  • It therefore prevents excessive cooling and maintains the required room temperature.

Purpose: To automatically maintain the refrigerated space at the desired temperature.

Part (c)

High-Pressure Cut-Out

The high-pressure cut-out is a safety device fitted on the high-pressure side of the refrigeration system.

  • It senses the discharge/condenser pressure.
  • If the pressure rises above the preset safe limit, it stops the compressor.
  • It protects the compressor, condenser and other components from excessive pressure.
  • Causes of high pressure may include poor condenser cooling, dirty condenser, inadequate cooling-water/air flow, overcharging or non-condensable gases.
  • The fault should be investigated and rectified before restarting the system.

Purpose: To protect the refrigeration plant against dangerously high discharge pressure.

Part (d)

Equalizing Line

The equalizing line is normally associated with a thermostatic expansion valve (TXV).

  • It connects the evaporator outlet/suction line to the pressure-sensing side of the TXV.
  • It allows the TXV to sense the actual evaporator outlet pressure.
  • This pressure is used together with the sensing-bulb temperature to control the refrigerant flow and maintain the required superheat.
  • It is particularly important where there is a significant pressure drop between the evaporator outlet and the TXV sensing point.

Purpose: To transmit the actual evaporator pressure to the TXV so that the valve can correctly control refrigerant flow and maintain proper superheat.

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