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LM2576-ADJ 参数 Datasheet PDF下载

LM2576-ADJ图片预览
型号: LM2576-ADJ
PDF下载: 下载PDF文件 查看货源
内容描述: 轻松切换3.0A降压稳压器 [Easy Switcher 3.0A Step-Down Voltage Regulator]
分类和应用: 稳压器
文件页数/大小: 28 页 / 288 K
品牌: MOTOROLA [ MOTOROLA ]
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LM2576  
currents require a large value output capacitor (in the range  
of thousands of µF). The recommended range of inductor  
values for the negative boost regulator is the same as for  
inverting converter design.  
Figure 29. Inverting Buck–Boost Regulator Shutdown  
Circuit Using a PNP Transistor  
Shutdown  
+V  
Another important point is that these negative boost  
converters cannot provide current limiting load protection in  
the event of a short in the output so some other means, such  
as a fuse, may be necessary to provide the load protection.  
Off  
Input  
0
On  
R2  
5.6 k  
Delayed Start–up  
+V  
in  
+V  
in  
1
There are some applications, like the inverting regulator  
already mentioned above, which require a higher amount of  
start–up current. In such cases, if the input power source is  
limited, this delayed start–up feature becomes very useful.  
To provide a time delay between the time when the input  
voltage is applied and the time when the output voltage  
comes up, the circuit in Figure 31 can be used. As the input  
voltage is applied, the capacitor C1 charges up, and the  
voltage across the resistor R2 falls down. When the voltage  
on the ON/OFF pin falls below the threshold value 1.3 V, the  
regulator starts up. Resistor R1 is included to limit the  
maximum voltage applied to the ON/OFF pin. It reduces the  
power supply noise sensitivity, and also limits the capacitor  
C1 discharge current, but its use is not mandatory.  
LM2576–XX  
C
in  
100  
µF  
Q1  
2N3906  
5
ON/OFF  
3
Gnd  
R1  
12 k  
–V  
out  
NOTE: This picture does not show the complete circuit.  
Negative Boost Regulator  
This example is a variation of the buck–boost topology and  
it is called negative boost regulator. This regulator  
experiences relatively high switch current, especially at low  
input voltages. The internal switch current limiting results in  
lower output load current capability.  
The circuit in Figure 30 shows the negative boost  
configuration. The input voltage in this application ranges  
from –5.0 V to –12 V and provides a regulated –12 V output.  
If the input voltage is greater than –12 V, the output will rise  
above –12 V accordingly, but will not damage the regulator.  
When a high 50 Hz or 60 Hz (100 Hz or 120 Hz  
respectively) ripple voltage exists, a long delay time can  
cause some problems by coupling the ripple into the ON/OFF  
pin, the regulator could be switched periodically on and off  
with the line (or double) frequency.  
Figure 31. Delayed start–up Circuitry  
+V  
in  
+V  
in  
LM2576–XX  
1
Figure 30. Negative Boost Regulator  
C1  
0.1  
5
ON/OFF  
3
Gnd  
µF  
C
in  
100 µF  
C
out  
2200  
Low Esr  
R1  
47 k  
4
µ
F
R2  
47 k  
V
in  
Feedback  
Output  
2
LM2576–12  
1
C
in  
1N5820  
3
5
Gnd  
ON/OFF  
100 µF  
NOTE: This picture does not show the complete circuit.  
V
= –12 V  
out  
Undervoltage Lockout  
Typical Load Current  
Some applications require the regulator to remain off until  
the input voltage reaches a certain threshold level. Figure 32  
shows an undervoltage lockout circuit applied to a buck  
regulator. A version of this circuit for buck–boost converter is  
shown in Figure 33. Resistor R3 pulls the ON/OFF pin high  
and keeps the regulator off until the input voltage reaches a  
100 µH  
400 mA for V = –5.2 V  
V
in  
in  
750 mA for V = –7.0 V  
in  
–5.0 V to –12 V  
Design Recommendations:  
The same design rules as for the previous inverting  
buck–boost converter can be applied. The output capacitor  
C
must be chosen larger than would be required for a what  
out  
standard buck converter. Low input voltages or high output  
20  
MOTOROLA ANALOG IC DEVICE DATA  
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