参数资料
型号: MAX630CSA+
厂商: Maxim Integrated Products
文件页数: 8/14页
文件大小: 0K
描述: IC REG BOOST 0.15A 8SOIC
产品培训模块: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
标准包装: 100
类型: 升压(升压)
输出数: 1
输入电压: 2 V ~ 16.5 V
频率 - 开关: 40kHz
电流 - 输出: 150mA
同步整流器:
工作温度: 0°C ~ 70°C
安装类型: 表面贴装
封装/外壳: 8-SOIC(0.154",3.90mm 宽)
包装: 管件
供应商设备封装: 8-SOIC
CMOS Micropower Step-Up
Switching Regulator
V ESR PK x ESR = ? IN ? xESR ( Voltsp ? p )
? V ?
? 2 Lf ?
Filter Capacitor
The output-voltage ripple has two components, with
approximately 90 degrees phase difference between
them. One component is created by the change in the
capacitor’s stored charge with each output pulse. The
other ripple component is the product of the capacitor’s
charge/discharge current and its effective series resis-
tance (ESR). With low-cost aluminum electrolytic
capacitors, the ESR-produced ripple is generally larger
than that caused by the change in charge.
= I
where V IN is the coil input voltage, L is its inductance, f
is the oscillator frequency, and ESR is the equivalent
series resistance of the filter capacitor.
The output ripple resulting from the change in charge
on the filter capacitor is:
When large values (>50k Ω ) are used for the voltage-
setting resistors, R1 and R2 of Figure 1, stray capaci-
tance at the V FB input can add a lag to the feedback
response, destabilizing the regulator, increasing low-
frequency ripple, and lowering efficiency. This can
often be avoided by minimizing the stray capacitance
at the V FB node. It can also be remedied by adding a
lead compensation capacitor of 100pF to 10nF in paral-
lel with R1 in Figure 1.
DC-DC Converter Configurations
DC-DC converters come in three basic topologies:
buck, boost, and buck-boost (Figure 2). The MAX630 is
usually operated in the positive-voltage boost circuit,
where the output voltage is greater than the input.
The boost circuit is used where the input voltage is
always less than the desired output and the buck circuit
is used where the input is greater than the output. The
buck-boost circuit inverts, and can be used with, input
where , Q = t DIS x PEAK
V dQ =
Q
C
I
2
BOOST CONVERTER
and , I PEAK = t CHG x
V IN
L
+
V dQ =
V IN ( t CHG )( t DIS )
2 LC
V BATT
S 1
CONTROL
SECTION
V OUT > V BATT
where t CHG and t DIS are the charge and discharge
times for the inductor (1/2f can be used for nominal cal-
culations).
Oscillator Capacitor, C X
BUCK CONVERTER
-
The oscillator capacitor, C X , is a noncritical ceramic or
silver mica capacitor. C X can also be calculated by:
S 1
+
? C INT INT ? 5 pF , see text )
C X =
2 . 14 X 10 ? 6
f
( C
V BATT
CONTROL
SECTION
V OUT < V BATT
where f is the desired operating frequency in Hertz, and
C INT is the sum of the stray capacitance on the C X pin
and the internal capacitance of the package. The internal
capacitance is typically 1pF for the plastic package and
3pF for the CERDIP package. Typical stray capacitances
BUCK-BOOST CONVERTER
-
are about 3pF for normal PC board layouts, but will be
significantly higher if a socket is used.
S 1
-
Bypassing and Compensation
Since the inductor-charging current can be relatively
V BATT
CONTROL
SECTION
|V OUT | < OR > V BATT
large, high currents can flow through the ground con-
nection of the MAX630/MAX4193. To prevent unwanted
feedback, the impedance of the ground path must be
as low as possible, and supply bypassing should be
used for the device.
Figure 2. DC-DC Converter Configurations
+
8
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