参数资料
型号: MAX8756ETI+
厂商: Maxim Integrated Products
文件页数: 16/30页
文件大小: 0K
描述: IC CNTRL DUAL PS 28-TQFN
产品培训模块: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
标准包装: 60
应用: 控制器,笔记本电脑电源系统
输入电压: 4 V ~ 26 V
输出数: 2
输出电压: 1.5V,1.8V,1 V ~ 2.3 V
工作温度: 0°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 28-WFQFN 裸露焊盘
供应商设备封装: 28-TQFN-EP(4x4)
包装: 管件
Interleaved High-Efficiency, Dual Power-Supply
Controllers for Notebook Computers
Fixed-Frequency,
Current-Mode PWM Controller
The heart of each current-mode PWM controller is a
multi-input, open-loop comparator that sums two sig-
nals: the output-voltage error signal with respect to the
reference voltage and the slope-compensation
ramp (Figure 3). The MAX8716/MAX8717/MAX8756/
MAX8757 use a direct-summing configuration,
approaching ideal cycle-to-cycle control over the out-
put voltage without a traditional error amplifier and the
phase shift associated with it. The MAX8716/MAX8717/
MAX8756/MAX8757 use a relatively low loop gain,
allowing the use of low-cost output capacitors. The low
loop gain results in the 0.1% typical load-regulation
error and helps reduce the output capacitor size and
cost by shifting the unity-gain crossover frequency to a
Frequency Selection (FSEL)
The FSEL input selects the PWM mode switching fre-
quency. Table 3 shows the switching frequency based
on the FSEL connection. High-frequency operation opti-
mizes the application for the smallest component size,
trading off efficiency due to higher switching losses.
This may be acceptable in ultra-portable devices where
the load currents are lower. Low-frequency operation
offers the best overall efficiency at the expense of com-
ponent size and board space.
Forced-PWM Mode
To maintain low ripple fixed-frequency operation, drive
SKIP_ high to put the output into forced-PWM mode.
This disables the zero-crossing comparator and allows
negative inductor current. During forced-PWM mode,
lower level.
FB
CSH
(0.05 x V LIMIT FOR MAX8756)
REF / 2
CSL
0.1 x V LIMIT
0.2 x V LIMIT
SLOPE COMP
SOFT-START
SOFT-STOP
ON
AGND
R
SKIP
DECODE
S
Q
DH DRIVER
SKIP
V LIMIT
OSC
-1.2 x V LIMIT
S
R
Q
DL DRIVER
3mV
Figure 3. PWM-Controller Functional Diagram
16
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