参数资料
型号: ISL6567IRZ-TS2698
厂商: Intersil
文件页数: 18/25页
文件大小: 0K
描述: IC REG CTRLR BUCK PWM VM 24-QFN
标准包装: 6,000
PWM 型: 电压模式
输出数: 1
频率 - 最大: 1.5MHz
占空比: 66%
电源电压: 4.9 V ~ 5.5 V
降压:
升压:
回扫:
反相:
倍增器:
除法器:
Cuk:
隔离:
工作温度: -40°C ~ 85°C
封装/外壳: 24-VFQFN 裸露焊盘
包装: 带卷 (TR)
ISL6567
through 20 assume a VCC voltage of 5V, the design aid curves
(optional)
can be translated to a different VCC voltage by translating
them in the amount of the voltage differential, to the left for a
lower VCC voltage, or to the right for a higher VCC voltage.
Should the simple series bias resistor configuration fall short
of providing the necessary bias current, the internal shunt
regulator can be used in conjunction with an external BJT
transistor to increase the shunt regulator current. Figure 21
details such an implementation utilizing a PNP transistor.
E/A
POR
CIRCUIT
-
ISL6567
EXTERNAL CIRCUIT
PVCC
Q1
R1
VCC
V IN
Selection of R 1 can be based on the graphs provided for the
passive regulator configuration. Maximum power dissipation
+
inside Q 1 will take place when maximum voltage is applied to
the circuit and the ISL6567 is disabled; determine I VREGMAX
by reverse-use of the graph in Figure 18 and use the obtained
number to calculate Q 1 power dissipation.
ISL6567
EXTERNAL CIRCUIT
VREF
SHUNT REGULATOR
VREG
R2
PVCC
V IN
FIGURE 22. INTERNAL SHUNT REGULATOR USE WITH EXTERNAL
NPN TRANSISTOR (ACTIVE CONFIGURATION)
POR
CIRCUIT
VCC
Q1
R1
FREQUENCY COMPENSATION
The ISL6567 multi-phase converter behaves in a similar
manner to a voltage-mode controller. This section highlights the
E/A
-
+
R2
(optional)
design consideration for a voltage-mode controller requiring
external compensation. To address a broad range of
applications, a type-3 feedback network is recommended (see
VREF
VREG
Figure 23).
C2
SHUNT REGULATOR
FIGURE 21. INTERNAL SHUNT REGULATOR USE WITH EXTERNAL
PNP TRANSISTOR (ACTIVE CONFIGURATION)
R1
R2
C1
C3
COMP
FB
ISL6567
An NPN transistor can also be used to increase the maximum
available bias current, as shown in Figure 22. Used as a series
pass element, Q 1 will dissipate the most power when the
circuit is enabled and operational, and the input voltage, V IN , is
at its highest level.
With the series pass element configuration shown in
Figure 22, the difference between the input and the regulation
level at the VCC pin has to be higher than the lowest
acceptable V CE of Q 1 (may choose to run Q 1 into saturation,
but must consider the reduced gain). Thus, R 2 has to be
chosen such that it will provide appropriate base current at
lowest V CE of Q 1 . Next, ensure the ISL6567’s I VREGMAX is not
exceeded when the input voltage swings to its highest extreme
(assume base current goes to 0 when the IC is disabled). R 1 is
an optional circuit element: it can be added to offset some of
the power dissipation in Q 1 , but it also reduces the available
V CE for Q 1 . If utilizing such a series resistor, check that it does
not impede on the proper operation at the lowest input voltage
and choose a power rating corresponding to the highest bias
current that the ISL6567 may require to drive the switching
MOSFETs.
18
R3
V DIFF (V OUT )
FIGURE 23. COMPENSATION CONFIGURATION FOR ISL6567
CIRCUIT
Figure 24 highlights the voltage-mode control loop for a
synchronous-rectified buck converter, applicable, with a small
number of adjustments, to the multi-phase ISL6567 circuit. The
output voltage (V OUT ) is regulated to the reference voltage, VREF,
level. The error amplifier output (COMP pin voltage) is compared
with the oscillator (OSC) modified saw-tooth wave to provide a
pulse-width modulated wave with an amplitude of V IN at the
PHASE node. The PWM wave is smoothed by the output filter
(L and C). The output filter capacitor bank’s equivalent series
resistance is represented by the series resistor E.
FN9243.4
August 9, 2011
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