SLVSI14A March 2026 – September 2026 TPS922152
PRODUCTION DATA
For this design, the input bus voltage is a 60V rail with 10% variation. The output is 16 white LEDs in series and the inductor current ripple by requirement is less than 60% of maximum inductor current. To ensure compliance, the low-side FET current limit must not be exceeded during full-load operation. Specifically, peak current of inductor must be lower than the current limit. Additionally, the ripple current should be optimized to maintain reasonable inductor core and copper losses. After determining the target ripple current, use Equation 7 to calculate the recommended value of the switching inductor LSW.
where
With the chosen inductor value, the user can calculate the actual inductor current ripple using Equation 8.
To ensure reliable operation, the inductor's rated RMS current IL_RMS and saturation current IL_SAT must meet or exceed the maximum current levels defined by the system requirements. This prevents inductor overheating and magnetic saturation. During power-up, transient events, or fault conditions, the inductor current may surge beyond normal operating levels and approach the converter's current limit. To account for these surges, it is recommended to select an inductor with a saturation current IL_SAT equal to or greater than the converter's current limit. The equations for peak inductor current IL_PEAK and RMS current IL_RMS are provided in Equation 9 and Equation 10, respectively.
In this design, VBUS_MAX = 66V, VLED = 48V, ILED = 5A, FSW = 400kHz, select KIND = 0.6, the calculated switching inductance is 10.9µH. Select the closest standard 10µH ferrite inductor with an IL_RMS of 9.4A and an IL_SAT of 12.7A. A 10µH inductor is chosen. With this inductor, the ripple, peak, and rms currents of the inductor are 3.2A, 6.6A, and 5A, respectively.