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PIMB063T-R68MS-63 数据表(PDF) 18 Page - Texas Instruments

部件名 PIMB063T-R68MS-63
功能描述  22-V Input, 10-A Integrated FET Converter With Ultra-Low Quiescent ( ULQ)
PDF  29 Pages
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制造商  TI1 [Texas Instruments]
网页  http://www.ti.com
标志 TI1 - Texas Instruments

PIMB063T-R68MS-63 数据表(HTML) 18 Page - Texas Instruments

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(
)
2
OUT
LOAD(max)
OUT(min_ over)
LOAD(release)
OUT
L
I
C
2
V
V
´ D
=
´ D
´
(
)2
OUT
SW
LOAD(max)
MIN(off )
IN(min)
OUT(min_ under)
IN(min)
OUT
LOAD(insert)
SW
MIN(off )
OUT
IN(min)
V
t
L
I
t
V
C
V
V
2
V
t
t
V
V
æ
ö
´
´ D
´
+
ç
÷
ç
÷
è
ø
=
æ
ö
æ
ö
-
ç
÷
´ D
´
´
-
´
ç
÷
ç
÷
ç
÷
è
ø
è
ø
SW
0
f
f
200 kHz
4
=
=
TPS51362
SLUSBB6A – FEBRUARY 2013 – REVISED JUNE 2013
www.ti.com
Stability Considerations
The switching frequency of the design example is 800 kHz (which is set by the MODE pin, see Table 3). For D-
CAP2 mode operation, it is generally recommended to have a unity gain crossover (f0) of less than 1/4 or 1/3 of
the switching frequency, which is approximately between 200 kHz and 266 kHz. In this design example, use 1/4.
(7)
Given the range of the recommended unity gain crossover frequency, the power stage design is flexible, as long
as the L-C double pole frequency is less than 10% of f0.
When the above criteria is met, the internal compensation network provides sufficient phase boost at the unity
gain crossover frequency such that the converter is stable with sufficient phase margin (greater than 60 deg.).
When the ESR frequency of the output bulk capacitor is in the vicinity of the unity gain crossover frequency of
the loop, additional phase boost can be achieved. This applies to higher ESR output bulk capacitor, POSCAP
and SPCAP.
When the ESR frequency of the output capacitor is beyond the unity gain crossover frequency of the control
loop, no additional phase boost is achieved. This applies to low or ultra low ESR output capacitor, such as
MLCCs.
For this application example,consider only all MLCCs for output capacitors. Based on Equation 3 and Equation 7,
the minimum capacitance for stable operation is calculated to be 110 µF.
Transient considerations
IDYN(max) = 4 A
di/dt = 2.5 A/µs
VOUT deviation = ±3% for the given transient
Use Equation 8 and Equation 9 to estimate the amount of capacitance needed for a given dynamic load/release.
(8)
(9)
Based on these calculation, to meet the transient requirement, the minimum amount of capacitance in this design
is 164 µF.
Considering both stability and transient, the minimum capacitance is 164 µF. The design example uses 8, 22-µF
capacitors with minor consideration of the MLCC derating for both DC and AC effect.
Step Eight: Select decoupling and peripheral components.
For the TPS51362, peripheral capacitors use the following minimum values of ceramic capacitance. X5R or
better temperature coefficient is recommended. Tighter tolerance and higher voltage rating are always
appropriate.
V5IN decoupling
≥ 2.2 µF, ≥ 10 V
VREF decoupling 0.1 µF to 1 µF,
≥ 4 V
Bootstrap capacitor
≥ 0.1 µF, ≥ 10 V
Pull-up resistors on PGOOD, 100 k
Ω
Step Nine: Layout guidelines.
Figure 22 applies to the layer where device is situated. Additional reinforcement of VIN, PGND, and VOUT
through vias are always recommended.
18
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Copyright © 2013, Texas Instruments Incorporated
Product Folder Links: TPS51362



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