参数资料
型号: SC4518HSETRT
厂商: Semtech
文件页数: 8/15页
文件大小: 0K
描述: IC REG BUCK 2A 8-SOIC
标准包装: 1
类型: 降压(降压)
输出数: 1
输入电压: 4.4 V ~ 24 V
PWM 型: 电流模式
频率 - 开关: 600kHz
电流 - 输出: 2A
同步整流器:
工作温度: -40°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 8-SOIC(0.154",3.90mm 宽)
包装: 标准包装
供应商设备封装: 8-SO 裸露焊盘
产品目录页面: 1358 (CN2011-ZH PDF)
其它名称: SC4518HSEDKR
SC4518H
POWER MANAGEMENT
Application Information (Cont.)
I p ? p = ? I ? I OMAX
Maximum Load Current vs Input Voltage
L=10uH
I PEAK = I OMAX +
I p ? p
2
1.900
1.880
1.860
1.840
1.820
1.800
1.780
1.760
1.740
1.720
1.700
Vo=2.5V
Vo=3.3V
Vo=5V
After the required inductor value is selected, the proper
selection of the core material is based on the peak
inductor current and efficiency specifications. The core
must be able to handle the peak inductor current I PEAK
without saturation and produce low core loss during the
high frequency operation.
4
6
8
10
12
14
16
18
The power loss for the inductor includes its core loss and
without saturation and produce low core loss during the
Vi (V)
Figure 2. Theoretical maximum load current curves
Inductor Selection
The factors for selecting the inductor include its cost,
efficiency, size and EMI. For a typical SC4518H
application, the inductor selection is mainly based on its
value, saturation current and DC resistance. Increasing
the inductor value will decrease the ripple level of the
output voltage while the output transient response will
be degraded. Low value inductors offer small size and
fast transient responses while they cause large ripple
copper loss. If possible, the winding resistance should
be minimized to reduce inductor’s copper loss. The core
must be able to handle the peak inductor current I
PEAK
high frequency operation. The power loss for the inductor
includes its core loss and copper loss. If possible, the
winding resistance should be minimized to reduce
inductor’s copper loss. The core loss can be found in the
manufacturer’s datasheet. The inductor’s copper loss
can be estimated as follows:
P COPPER = I 2 LRMS ? R WINDING
Where:
I LRMS is the RMS current in the inductor. This current can
be calculated as follows:
currents, poor efficiencies and more output capacitance
to filter out the large ripple currents. The inductor should
be able to handle the peak current without saturating
I LRMS = I OMAX ? 1 +
1
3
? ? I 2
V O ? ( V I ? V O )
and its copper resistance in the winding should be as low
as possible to minimize its resistive power loss. A good
trade-off among its size, loss and cost is to set the
inductor ripple current to be within 15% to 30% of the
maximum output current.
The inductor value can be determined according to its
operating point under its continuous mode and the
switching frequency as follows:
L =
V I ? f s ? ? I ? I OMAX
Where:
fs = switching frequency,
? I = ratio of the peak to peak inductor current to the
output load current and
V O = output voltage.
The peak to peak inductor current is:
Output Capacitor Selection
Basically there are two major factors to consider in
selecting the type and quantity of the output capacitors.
The first one is the required ESR (Equivalent Series
Resistance) which should be low enough to reduce the
output voltage deviation during load changes. The second
one is the required capacitance, which should be high
enough to hold up the output voltage. Before the
SC4518H regulates the inductor current to a new value
during a load transient, the output capacitor delivers all
the additional current needed by the load. The ESR and
ESL of the output capacitor, the loop parasitic inductance
between the output capacitor and the load combined
with inductor ripple current are all major contributors to
the output voltage ripple. Surface mount ceramic
capacitors are recommended.
? 2007 Semtech Corp.
8
www.semtech.com
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