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CS5323GDWR20 датащи(PDF) 14 Page - ON Semiconductor

номер детали CS5323GDWR20
подробное описание детали  Three-Phase Buck Controller with 5-Bit DAC
PDF  16 Pages
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производитель  ONSEMI [ON Semiconductor]
домашняя страница  http://www.onsemi.com
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CS5323GDWR20 датащи(HTML) 14 Page - ON Semiconductor

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14
Then choose the inductor value and inherent resistance
to satisfy L/RL = R × C.
For ideal current sense compensation the ratio of L and
RL is fixed, so the values of L and RL will be a
compromise typically with the maximum value RL
limited by conduction losses or inductor temperature
rise and the minimum value of L limited by ripple
current.
3. For resistive current sensing choose L and RS to
provide a steady state ramp greater than 25 mV.
L RS + (VIN * VOUT)
TON 25 mV
Again the ratio of L and RL is fixed and the values of
L and RS will be a compromise.
4. Calculate the high frequency output impedance
(ConverterZ) of the converter during transients. This
is the impedance of the Output filter ESR in parallel
with the power stage output impedance (PwrstgZ)
and will indicate how far from the original level
(
∆VR) the output voltage will typically recover to
within one switching cycle. For a good transient
response
∆VR should be less than the peak output
voltage overshoot or undershoot.
DVR + ConverterZ
ESR
ConverterZ
+
PwrstgZ
ESR
PwrstgZ
) ESR
where:
PwrstgZ
+ RS
CSA Gain 3
Multiply the converterZ by the output current step size
to calculate where the output voltage should recover to
within the first switching cycle after a transient. If the
ConverterZ is higher than the value required to recover
to where the adaptive positioning is set the remainder
of the recovery will be controlled by the error amp
compensation and will typically recover in 10 – 20
µs.
DVR + DIOUT
ConverterZ
Make sure that
∆VR is less than the expected peak
transient for a good transient response.
5. Adjust L and RL or RS as required to meet the best
combination of transient response, steady state output
voltage ripple and pulse width jitter.
Current Limit
When the sum of the Current Sense amplifiers (VITOTAL)
exceeds the voltage on the ILIM pin the part will enter hiccup
mode. For inductive sensing the ILIM pin voltage should be
set based on the inductor resistance (or current sense
resistor) at max temperature and max current. To set the level
of the ILIM pin:
6. VI(LIM) + R
IOUT(LIM)
CS to ILIM Gain
where:
R is RL or RS;
IOUT(LIM) is the current limit threshold.
For the overcurrent to work properly the inductor time
constant (L/R) should be
≤ the Current sense RC. If the
RC is too fast, during step loads the current waveform
will appear larger than it is (typically for a few hundred
µs) and may trip the current limit at a level lower than
the DC limit.
Adaptive Positioning
7. To set the amount of voltage positioning below the
DAC setting at no load connect a resistor (RV(FB))
between the output voltage and the VFB pin. Choose
RV(FB) as;
RV(FB) + NL Position VFB Bias Current
See Figure 4 for VFB Bias Current.
8. To set the difference in output voltage between no load
and full load, connect a resistor (RV(DRP)) between the
VDRP and VFB pins. RV(DRP) can be calculated in two
steps. First calculate the difference between the VDRP
and VFB pin at full load. (The VFB voltage should be
the same as the DAC voltage during closed loop
operation.) Then choose the RV(DRP) to source enough
current across RV(FB) for the desired change in output
voltage.
DVV(DRP) + IOUTFL
R
CS to VDRP Gain
where:
R = RL or RS for one phase;
IOUTFL is the full load output current.
RV(DRP) + DVDRP
RV(FB) DVOUT
Calculate Input Filter Capacitor Current Ripple
The procedure below assumes that phases do not overlap
and output inductor ripple current (P–P) is less than the
average output current of one phase.
9. Calculate Input Current
IIN +
VOUT
IOUT
(Efficiency
VIN)
10. Calculate Duty Cycle (per phase).
Duty Cycle
+
VOUT
(Efficiency
VIN)
11. Calculate Apparent Duty Cycle.
Apparent Duty Cycle
+ Duty Cycle
# of Phases
12. Calculate Input Filter Capacitor Ripple Current. Use
the chart in Figure 13 to calculate the normalized
ripple current (KRMS) based on the reciprocal of
Apparent Duty Cycle. Then multiply the input current
by KRMS to obtain the Input Filter Capacitor Ripple
Current.
Ripple (RMS)
+ IIN
KRMS



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