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CS5305 Folha de dados(PDF) 21 Page - ON Semiconductor

Nome de Peças CS5305
Descrição Electrónicos  Three?뭁hase Synchronous Switching Step?묭own Controller with Single Wire Current Sharing
PDF  33 Pages
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Fabricante Electrônico  ONSEMI [ON Semiconductor]
Página de início  http://www.onsemi.com
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CS5305 Folha de dados(HTML) 21 Page - ON Semiconductor

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CS5305
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connection point for a compensation capacitor for the share
adjust amplifier.
CHOOSING EXTERNAL COMPONENTS
FOR THE CS5305
ROCSET and ROSC
The ROSC lead of the CS5305 provides a fixed 1 V
reference to the user. A resistive divider is connected from
ROSC to ground as shown in Figure 35. The center tap of the
divider is connected to the OCSET lead. The total
resistance from the ROSC lead to ground programs the
oscillator frequency for the converter according to the chart
in Figure 36.
The resistive divider also sets a voltage on the OCSET lead.
This voltage programs the module overcurrent trip point. The
module overcurrent comparator, or OC Comparator, uses the
OCSET lead voltage as the reference against which the
module output current signal is compared. The output current
of each phase is given as (VCSx − VCSREF) divided by the
equivalent series resistance of the inductor. The voltage
information (VCSx − VCSREF) is gained up by a factor of 3.7
and summed for all three phases at the non−inverting input of
the OC Comparator. The fault latch is set if the module
overcurrent limit is exceeded. This results in “hiccup−mode”
operation until the overcurrent condition is cleared.
R1
ROCSET
ROSC
OCSET
ROSC = R1 + ROCSET
Figure 35.
Figure 36. FOSC vs. R1 + ROCSET
100
R1 + ROSCSET (kΩ)
300
400
500
600
700
800
900
200
10
20
30
40
50
60
70
Additionally, the total value of resistance between ROSC
and ground also programs the VFB pin bias current. VFB bias
current is equal to 0.333 V divided by the total resistance
from ROSC to ground. This current is used to generate the
droop function in the adaptive voltage positioning circuitry
and is discussed further in that section.
Current Sense Components
Current sense components are chosen for two reasons.
First, the value of RCSx and CCSx should be chosen to meet
the criterion:
(RCSx)(CCSx) w (L) (ESRL)
where L is the inductor value and ESRL is the inductor
equivalent series resistance. Meeting this criterion will
ensure that the module overcurrent limit is not exceeded
during current transients. Second, RCSx and CCSx should be
chosen to add a small amount of ramp to the system. This
will provide stable, jitter−free operation. The amount of
ramp voltage required depends on several factors: supply
voltage, output voltage (DAC code), switching frequency
and board layout all affect the amount of artificial ramp
required to some degree. The power supply designer should
be aware that choosing the value of artificial ramp is a
trade−off. As artificial ramp amplitude increases, the system
becomes less prone to duty cycle jitter, but transient
response will suffer. Adding 20 mV of artificial ramp is a
good compromise and can be used to start design.
The current sense ramp is generated from the square wave
obtained at the switching node of each phase by using an RC
filter. The RC filter components for the CSx leads should be
chosen to satisfy the following formula:
RCSx CCSx v
(VOUT) 1 * VOUT VCC
(fOSC)(VRAMP)
Choose a convenient standard value for CCSx and solve for
the value of RCSx. Each of the three output phases requires
its own RC combination.
An RC filter is also required for the CSREF connection.
This filter may use the same value of capacitance identified
for the CS1, CS2 and CS3 leads, but the value of resistance
should be one third that of RCSx:
RCSREF + RCSx 3
This change is necessary to compensate for the difference
in bias current between the CSREF lead and each CSx lead.
The schematic in Figure 37 shows the connection of these
components.
RCSx
CCSx
CCSREF
RCSREF = RCSx/3
CSREF
VOUT
Switch
Node x
L1
CSx
Figure 37.



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