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LM2990
SNVS093G –JUNE 1999–REVISED MAY 2015
www.ti.com
8 Application and Implementation
NOTE
Information in the following applications sections is not part of the TI component
specification, and TI does not warrant its accuracy or completeness. TI’s customers are
responsible for determining suitability of components for their purposes. Customers should
validate and test their design implementation to confirm system functionality.
8.1 Application Information
The LM2990 is a 1-A negative voltage regulator with an operating VIN range of –6 V to –26 V, and a regulated
VOUT having 5% accuracy with a maximum rated IOUT current of 1 A. Efficiency is defined by the ratio of output
voltage to input voltage because the LM2990 is a linear voltage regulator. To achieve high efficiency, the dropout
voltage (VIN – VOUT) must be as small as possible, thus requiring a very low dropout LDO.
Successfully implementing an LDO in an application depends on the application requirements. If the
requirements are simply input voltage and output voltage, compliance specifications (such as internal power
dissipation or stability) must be verified to ensure a solid design. If timing, start-up, noise, PSRR, or any other
transient specification is required, the design becomes more challenging.
8.2 Typical Application
8.2.1 –5 V Post Regulator for an Isolated Switching Power Supply
Figure 20. Post Regulator for an Isolated Switching Power Supply
8.2.1.1 Design Requirements
For this design example, use the parameters listed in Table 1 as the input parameters.
Table 1. Design Parameters
DESIGN PARAMETER DESIGN REQUIREMENT
Input voltage –10 V, provided by the DC-DC converter switching at 1 MHz
Output voltage -5 V, ±10%
Output current 5 mA to 400 mA
RMS noise, 10 Hz to 100 kHz < 1 mVRMS, IOUT = 5 mA
PSRR at 1KHz > 45 dB, IOUT = 5 mA
8.2.1.2 Detailed Design Procedure
At 400-mA loading, the dropout of the LM2990 has 1-V maximum dropout over temperature, thus an –5 V
headroom is sufficient for operation over both input and output voltage accuracy. The efficiency of the LM2990 in
this configuration is VOUT / VIN = 50%.
To achieve the smallest form factor, the TO-263(KTT) package is selected. Input and output capacitors should be
selected in accordance with the External Capacitors section. Aluminum capacitances of 470 μF for the input and
50-μF capacitors for the output are selected. With an efficiency of 50% and a 400-mA maximum load, the internal
power dissipation is 2000 mW, which corresponds to 82.5°C junction temperature rise for the TO-263 package.
With an 25°C ambient temperature, the junction temperature is at 107.5°C.
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