Continuously Variable Valve Lift Assembly
The Continuously Variable Valve Lift (CVVL) assembly is a non-serviceable assembly for control of the intake valve lift. The CVVL assembly temperature sensor can be removed from the CVVL assembly if required. The CVVL assembly is fixed to the top of the camshaft carrier by 10 bolts.
There is no mechanical connection between the inlet valves and the camshaft, instead of direct operation, the inlet camshaft operates four small oil pumps which charge four hydraulic accumulators.
The CVVL assembly ultimately allows the control of air in to the cylinder by delaying the valve opening, or closing the valve early.
| ITEM | DESCRIPTION |
|---|---|
| 1 | Intermediate Pressure Chamber |
| 2 | Solenoid Valve |
| 3 | Pressure Accumulator |
| 4 | Cam Follower |
| 5 | Camshaft |
| 6 | Inlet Valve |
| 7 | Brake Unit |
| 8 | Temperature Sensor |
| 9 | High Pressure Chamber |
| 10 | Pump Unit |
As the camshaft rotates the cam lobe lift translates to pump piston movement and creates the hydraulic pressure achieved within the unit. The high pressure chamber is the hydraulic connection between the pump, brake unit and solenoid valve where pressures of up to 150 bar can be reached.
When the solenoid valve is closed the oil operates as a 'hydraulic pushrod' through the brake unit opening the intake valve. When the solenoid valve is opened some of the oil pressure is relieved from the high pressure chamber back in to the intermediate pressure chamber, effectively 'shortening' the length of the 'hydraulic pushrod' and the amount of valve lift.
When the solenoid valve is opened the pressure accumulator feeds the relieved oil back to the high pressure chamber ensuring the chamber has a constant de-aerated oil supply. The brake unit, as well as acting as a Hydraulic valve Lash Adjustment (HLA), also regulates the valve closing speed.
When the solenoid is opened for early intake valve closing, the valve spring causes the valve to enter a 'ballistic flight phase'. An 'uncontrolled' period of travel as the valve does not close by following the cam profile. To prevent excessive closure speeds that can cause damage to the valve, the brake unit acts as a hydraulic brake to ensure a gentle, controlled seating of the valve.
The solenoid switching time is controlled by the PCM based on calculated engine load values from existing sensors. The CVVL temperature sensor is the only additional sensor for the system.
CVVL Hydraulic Circuit Schematic
| ITEM | DESCRIPTION |
|---|---|
| 1 | Solenoid |
| 2 | Engine Oil Supply |
| 3 | Check Valve |
| 4 | Intermediate Chamber |
| 5 | Pressure Accumulator |
| 6 | Oil Return |
| 7 | CVVL Oil Temperature Sensor |
| 8 | Brake Unit |
| 9 | Intake Valve |
| 10 | Engine Oil Supply |
| 11 | Roller Finger Cam Follower |
| 12 | Camshaft |
| 13 | Hydraulic Tappet |
| 14 | Pump Unit |
The CVVL assembly ultimately allows the control of air in to the cylinder by delaying the valve opening, or by closing the valve early. There are four operating modes.
CVVL Operating Modes:
- Full lift mode - the valves are fully opened and closed as during conventional control by the camshaft. This mode is used at high engine speeds to obtain maximum engine power.
- Late Intake Valve Opening Mode (LIVO) - the opening of the intake valves are delayed when starting the engine and during idling. The valves open for a shorter period and at a lower lift providing precise control of the exact amount of air entering the cylinder. As a result fuel economy is improved during idling periods. During a cold start, only a small amount of cold air enters the cylinder, meaning the engine starts more easily.
- Early Intake Valve Closing Mode (EIVC) - is activated during low to medium engine speeds. The intake valves are closed hydraulically before the camshaft profile would normally allow. This reduces pumping losses, increases the engine output and prevents an undesirable backflow of the fuel mixture into the intake ports.
- Composite mode - at very low engine speeds and loads, a combination of the LIVO mode and the EIVC mode is used as it provides a stable combustion.
Solenoid
There are 4 solenoids in use in the CVVL system; 1 per cylinder. Each solenoid is supplied with a dedicated live and ground from the PCM and is Pulse Width Modulated (PWM) controlled to regulate its position.
To enable the rapid action of the solenoid valve, a special operating strategy was developed with the lowest possible current requirements. This resulted in a current profile consisting of several phases.
At rest the solenoid valve has no current supply and is in the open position.
At the first phase of activation the solenoid valve is supplied with a current, which pre-magnetises the valve but does not switch it.
In order to ensure a rapid and precise energizing procedure, an increased current is applied at the exact time of switching. This is determined by the PCM depending on sensor input for the current operating conditions.
After the solenoid valve has been fully activated, the current is reduced to a holding current, which maintains the solenoid valve in the closed position. Again depending on operating conditions, the PCM software controls the point in time at which the solenoid opens by completely switching off the holding current.
In the event of a CVVL solenoid failure, a total loss of valve lift occurs on the related cylinder and the engine will enter 'limp-home' mode, running on the 3 remaining cylinders. The driver will experience misfires and a reduction in performance.
CVVL BRAKE UNIT
The brake unit is a slave cylinder that converts the hydraulic pressure of the pump into the movement of the intake valve via a hydraulic valve lash adjustment element. The brake unit design not only gives a controlled closure of the valve but also enables a rapid opening speed as the braking element of the unit is by-passed by the use of a check valve during the opening phase.
It is a critical part of the unit set up that the valve lash adjustment is reset if the unit is removed from the cylinder head.
Where it is necessary to remove and refit the CVVL unit, the brake pistons must be reset by pressing down all CVVL brakes to make sure that they are all in the reset position using the Jaguar Land Rover special tool (CVVL guide pins - JLR-303-1639). Once the unit has been reset and the tool removed a visual check that the piston is sitting inside the sleeve should be made. The tool will reset the brake unit position from A to position B as in figure E202344
| ITEM | DESCRIPTION |
|---|---|
| 1 | Brake unit Piston |
| 2 | Reset tool |
| A | Piston prior to reset |
| B | Piston correctly reset |
CVVL OIL TEMPERATURE SENSOR
The CVVL oil temperature sensor is located on the front CVVL unit and provides feedback to the PCM on the temperature of the high pressure oil in both CVVL units.
This information is used by the PCM to determine oil viscosity and allows accurate solenoid switching time compensation across a wide engine temperature range -40°C (-40°F) to 150°C (302°F).
The sensor has a two pin connector which provides a temperature signal input to the PCM and a ground connection. The sensor has a NTC element and is specifically calibrated for use at low temperatures. It is possible to remove the CVVL temperature sensor from the assembly if required.
In the event of failure of the CVVL oil temperature sensor, reduced accuracy in control of the CVVL system will occur, resulting in a slight reduction in performance and fuel economy.