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ST1S32 Datasheet(PDF) 18 Page - STMicroelectronics

Part # ST1S32
Description  4 A DC step-down switching regulator
PDF  29 Pages
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Manufacturer  STMICROELECTRONICS [STMicroelectronics]
Direct Link  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

ST1S32 Datasheet(HTML) 18 Page - STMicroelectronics

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Application information
ST1S32
18/29
Doc ID 023246 Rev 1
Equation 22
For the ceramic (MLCC) capacitor the capacitive component of the ripple dominates the
resistive one. While for the electrolythic capacitor the opposite is true.
As the compensation network is internal, the output capacitor should be selected in order to
have a proper phase margin and then a stable control loop.
The equations of Section 4.2 help to check loop stability, given the application conditions,
the value of the inductor and the output capacitor.
In Table 8 some capacitor series are listed.
5.4
Thermal dissipation
The thermal design is important to prevent the thermal shutdown of the device if junction
temperature goes above 150 °C. The three different sources of loss within the device are:
a)
conduction losses due to the on-resistance of the high-side switch (RHS) and low-
side switch (RLS); these are equal to:
Equation 23
where D is the duty cycle of the application. Note that the duty cycle is theoretically given by
the ratio between VOUT and VIN, but actually it is slightly higher to compensate the losses of
the regulator.
b)
switching losses due to high-side Power MOSFET turn-on and off; these can be
calculated as:
Table 8.
Output capacitors
Manufacturer
Series
Cap value (
μF)
Rated voltage (V)
ESR (m
Ω)
Murata
GRM32
22 to 100
6.3 to 25
< 5
GRM31
10 to 47
6.3 to 25
< 5
Panasonic
ECJ
10 to 22
6.3
< 5
EEFCD
10 to 68
6.3
15 to 55
Sanyo
TPA/B/C
100 to 470
4 to 16
40 to 80
TDK
C3225
22 to 100
6.3
< 5
ΔV
OUT
ESR
ΔI
MAX
⋅
ΔI
MAX
8C
OUT
f
SW
⋅⋅
------------------------------------------
+
=
P
COND
R
HS
I
OUT
2
DR
LS
I
OUT
2
1D
–
()
⋅⋅
+
⋅⋅
=



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