SLVAFU0 April   2024 TPS61377

 

  1.   1
  2.   Abstract
  3.   Trademarks
  4. 1Introduction
  5. 2Analysis of Dual Polarity Voltage Rails Design With Boost Converter
    1. 2.1 Analysis of Factors Affecting Negative Voltage Rail
    2. 2.2 Improvement of Gap Between Negative Voltage Rail and Positive Voltage Rail
  6. 3Boost Converter ± Quick Calculator Design
  7. 4Demo and Test
    1. 4.1 Simulation Results
    2. 4.2 Demo Board Example
  8. 5Summary
  9. 6References

Improvement of Gap Between Negative Voltage Rail and Positive Voltage Rail

Figure 2-2 shows the improvement. To select appropriate R3 and forward voltage of D1 can improve the gap. The negative voltage rail formula can be edited as Equation 5. For best practice have the design meet Equation 6 to reduce the gap. To reduce the gap in full load current range, the commendation is to design to eliminate the forward voltage drop. And can simplify the Equation 7 to Equation 8.

Equation 5. -VOUT2=VOUT1+VD1+IOUT11-D×R3-ICHG1+ICHG2×RCHG-VD2-VD3
Equation 6. VD1+IOUT11-D×R3= 1D(1-D)×IOUT2×RCHG+VD2+VD3
Equation 7. IOUT1×R3= 1D×IOUT2×RCHG
Equation 8. R3= 1D×RCHG×IOUT2IOUT1
GUID-74729BC1-0374-499E-880E-F63E6291B2FB-low.png Figure 2-2 Improvement of Voltage Gap Between Negative Voltage Rail and Positive Voltage Rail