Shift Solenoid A (SSA), Shift Solenoid B (SSB), Shift Solenoid C (SSC) and Shift Solenoid D (SSD)
| Item | Description |
|---|---|
| A | Low Current |
| B | High Current |
| 1 | High Exhaust |
| 2 | SREG Circuit Fluid (Supply) |
| 3 | Low Pressure To Clutch Regulator And Latch Valves |
| 4 | Low Exhaust |
| 5 | SREG Circuit Fluid (Supply) |
| 6 | High Pressure To Clutch Regulator And Latch Valves |
| 7 | SSA Variable Force Solenoid (VFS) |
| 8 | SSC VFS |
SSB and SSD use inverse proportional operation. As the current from the PCM decreases, the pressure from the solenoid increases. As the current from the PCM increases, the pressure from the solenoid decreases. SSB and SSD are supplied hydraulic pressure from the SREG circuit.
With zero current, SSB and SSD fully open the hydraulic valves which applies maximum hydraulic pressure to the regulator and latch valves to apply the clutch that it controls. With maximum current to the solenoids, the hydraulic valve fully closes to apply zero amount of hydraulic pressure to the regulator and latch valves of the clutch that it controls and releases the clutch.
Shift solenoids A through D are VFS that vary hydraulic pressure by actuating a hydraulic valve.
The PCM applies variable current to the shift solenoids which varies pressure in the hydraulic circuit to the regulator and latch valves of the clutch that it controls.
SSA and SSC use proportional operation. As the current from the PCM decreases, the pressure from the solenoid decreases. As the current from the PCM increases, the pressure from the solenoid increases. SSA and SSC are supplied hydraulic pressure from the SREG circuit.
With zero current, SSA and SSC fully close the hydraulic valves which applies zero amount of hydraulic pressure to the regulator and latch valves of the clutch that it controls and releases the clutch. With maximum current to the solenoids, the hydraulic valves fully open for maximum pressure to the regulator and latch valves to apply the clutch.