LEMON Manuals: Even more car manuals for everyone
Home >> Land Rover >> 2019 >> Range Rover Sport Supercharged Dynamic >> Repair and Diagnosis >> External Pages >> Different variant/trim >> Section 19 (Fuel Charging And Controls - Turbocharger - TDV6 3.0L Diesel -- Range Rover Sport/L494) >> Fuel Charging And Controls - Turbocharger - TDV6 3.0L Diesel >> Description And Operation >> Gen 2 Single Turbocharger (G2055158) >> Operation >> Principles Of Variable Vane Operation

Principles Of Variable Vane Operation

WARNING: This page is about a different variant/trim than selected.

Exhaust gases are used to drive the compressor wheel. The compressor wheel draws in clean air, which is supplied to the charge air coolers in a compressed form.

The VGT turbocharger allows the optimum inlet geometry (inlet area and flow angle) to be used over a wide range of engine operating conditions. This allows a rapid response speed and higher charge air pressures at low engine speeds. The variable vane angle determines both the inlet area as well as the flow angle, as controlled by the Powertrain Control Module (PCM) via the VGT vane actuator. The variable vanes allow efficient use of the exhaust gas energy which improves turbocharger and engine efficiency.

Schematic Diagram - Variable Vane Operation 

G14058610Courtesy of JAGUAR LAND ROVER NORTH AMERICA, LLC

A = LOW ENGINE SPEED; B = INTERMEDIATE ENGINE SPEED; C = MAXIMUM ENGINE SPEED. 

ITEM DESCRIPTION
1 Powertrain Control Module (PCM)
2 Primary vane actuator
3 Turbine housing
4 Variable vanes
5 Compressor wheel

Low Engine Speed:  At low engine speeds the volume of exhaust gas is low, so the vanes are moved towards the closed position to reduce the turbine inlet area. This reduction causes an increase in the gas velocity into the turbine wheel, thereby increasing turbine speed and charge air pressure.

Intermediate Engine Speed:  As the engine speed increases and the volume of exhaust gas increases the vanes are moved towards the open position to increase the turbine inlet area and maintain the gas velocity.

Maximum Engine Speed:  At maximum engine speed the vanes are almost fully open maintaining the gas velocity into the turbine wheel.

When the vehicle is driven at high altitudes the ambient pressure reduces, causing the compressor wheel to rotate faster to achieve the same charge air pressure. To prevent the turbine wheel from over-speeding under these conditions, the Powertrain Control Module (PCM) protects the turbocharger by opening the vanes further to reduce the turbine wheel speed. This is known as the altitude margin of the turbocharger, which occurs at altitudes above 2000 meters. Below 2000 meters altitude compensation is not necessary. The PCM uses an internal barometric pressure sensor to monitor altitude.

The maximum position of the turbocharger vanes (fully open) is also an emergency default position in the event of an electrical fault. This lowers the chance of engine damage due to excessive charge air pressure.