参数资料
型号: MAX15031ATE+
厂商: Maxim Integrated Products
文件页数: 13/17页
文件大小: 0K
描述: IC BOOST CONV/CURRENT MON 16TQFN
产品培训模块: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
标准包装: 75
应用: 转换器电流监控器,APD 偏压应用
输入电压: 2.7 V ~ 11 V
输出数: 1
输出电压: 3.7 V ~ 76 V
工作温度: -40°C ~ 125°C
安装类型: 表面贴装
封装/外壳: 16-WQFN 裸露焊盘
供应商设备封装: 16-TQFN-EP(4x4)
包装: 托盘
80V, 300mW Boost Converter and Current
Monitor for APD Bias Applications
Diode Selection
The MAX15031’s high switching frequency demands a
high-speed rectifier. Schottky diodes are recommend-
ed for most applications because of their fast recovery
time and low forward-voltage drop. Ensure that the
diode’s peak current rating is greater than the peak
inductor current. Also the diode reverse-breakdown
voltage must be greater than V OUT . The output voltage
of the boost converter.
Output Filter Capacitor Selection
For most applications, use a small output capacitor of
0.1μF or greater. To achieve low output ripple, a capaci-
tor with low ESR, low ESL, and high capacitance value
should be selected. If tantalum or electrolytic capacitors
are used to achieve high capacitance values, always
add a smaller ceramic capacitor in parallel to bypass
the high-frequency components of the diode current.
The higher ESR and ESL of electrolytic capacitors
increase the output ripple and peak-to-peak transient
voltage. Assuming the contribution from the ESR and
capacitor discharge equals 50% (proportions may vary),
calculate the output capacitance and ESR required for a
specified ripple using the following equations:
For very low output ripple applications, the output of the
boost converter can be followed by an RC filter to further
reduce the ripple. Figure 2 shows a 100 Ω (R F ), 0.1μF
(C F ) filter used to reduce the switching output ripple to
1mV P-P with a 0.1mA load or 2mV P-P with a 4mA load.
The output-voltage regulation resistor-divider must remain
connected to the diode and output capacitor node.
Use X7R ceramic capacitors for more stability over the full
temperature range. Use an X5R capacitor for -40°C to
+85°C applications.
Input Capacitor Selection
Bypass PWR to PGND with a 1μF (min) ceramic capaci-
tor and bypass IN to PGND with a 1μF (min) ceramic
capacitor. Depending on the supply source imped-
ance, higher values may be needed. Make sure that the
input capacitors are close enough to the IC to provide
adequate decoupling at IN and PWR as well. If the lay-
out cannot achieve this, add another 0.1μF ceramic
capacitor between IN and PGND (or PWR and PGND)
in the immediate vicinity of the IC. Bulk aluminum elec-
trolytic capacitors may be needed to avoid chattering
at low input voltage. In case of aluminum electrolytic
capacitors, calculate the capacitor value and ESR of
η x V IN_MIN x 0.5 x Δ V IN ? ? S
ESR [ m Ω ] =
C OUT [ μ F ] =
I OUT
0.5 x Δ V OUT
ESR [ m Ω ] =
? ?
? I LPEAK xL OPTIMUM ?
? T S ? ?
? (V OUT ? V IN_MIN ) ?
0.5 x Δ V OUT
I O UT
the input capacitor using the following equations:
V OUT x I OUT ? I LPEAK x L OPTIMUM x V OUT ?
C IN [ μ F ] = ? T ? ?
V IN_MIN (V OUT ? V I N _MIN ) ? ?
0.5 x Δ V IN x η x V IN_MIN
V OUT x I OUT
L1
C IN
IN
D1
R F
100 Ω
V IN = 2.7V TO 5.5V
PWR
LX
V OUT
CNTR L
SHDN
R 2
MAX15031
FB
C OUT1
C F
0.1 μ F
CP
C PWR
C CP
CN
BIAS
R 1
PGND
SGND
Figure 2. Typical Operating Circuit with RC Filter
______________________________________________________________________________________
13
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