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LCVT 参数 Datasheet PDF下载

LCVT图片预览
型号: LCVT
PDF下载: 下载PDF文件 查看货源
内容描述: 36V ,2A , 2.8MHz降压型开关稳压器 [36V, 2A, 2.8MHz Step-Down Switching Regulator]
分类和应用: 稳压器开关
文件页数/大小: 24 页 / 327 K
品牌: Linear [ Linear ]
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LT3684  
APPLICATIONS INFORMATION  
V
= 12V, FRONT PAGE APPLICATION  
OUT  
LT3684  
CURRENT MODE  
POWER STAGE  
m
SW  
OUTPUT  
ERROR  
AMPLIFIER  
g
= 3.5mho  
I
L
C
PL  
R1  
1A/DIV  
FB  
g
=
m
330µmho  
ESR  
+
1.265V  
C1  
+
V
3M  
OUT  
100mV/DIV  
C1  
POLYMER  
OR  
TANTALUM  
CERAMIC  
V
GND  
C
10µs/DIV  
3684 F03  
R
C
R2  
C
F
Figure 3. Transient Load Response of the LT3684 Front Page  
Application as the Load Current is Stepped from 500mA to  
C
C
1500mA. V  
= 3.3V  
OUT  
3684 F02  
may improve the transient response. Figure 3 shows the  
transient response when the load current is stepped from  
500mA to 1500mA and back to 500mA.  
Figure 2. Model for Loop Response  
Loop compensation determines the stability and transient  
performance. Designing the compensation network is a  
bit complicated and the best values depend on the ap-  
plication and in particular the type of output capacitor. A  
practical approach is to start with one of the circuits in  
this data sheet that is similar to your application and tune  
the compensation network to optimize the performance.  
Stability should then be checked across all operating  
conditions, including load current, input voltage and  
temperature. The LT1375 data sheet contains a more  
thorough discussion of loop compensation and describes  
how to test the stability using a transient load. Figure 2  
shows an equivalent circuit for the LT3684 control loop.  
The error amplifier is a transconductance amplifier with  
finite output impedance. The power section, consisting of  
the modulator, power switch and inductor, is modeled as  
a transconductance amplifier generating an output cur-  
BOOST and BIAS Pin Considerations  
Capacitor C3 and the internal boost Schottky diode (see  
the Block Diagram) are used to generate a boost volt-  
age that is higher than the input voltage. In most cases  
a 0.22µF capacitor will work well. Figure 2 shows three  
ways to arrange the boost circuit. The BOOST pin must be  
more than 2.3V above the SW pin for best efficiency. For  
outputs of 3V and above, the standard circuit (Figure 4a)  
is best. For outputs between 2.8V and 3V, use a 1µF boost  
capacitor. A 2.5V output presents a special case because it  
is marginally adequate to support the boosted drive stage  
whileusingtheinternalboostdiode.ForreliableBOOSTpin  
operation with 2.5V outputs use a good external Schottky  
diode (such as the ON Semi MBR0540), and a 1µF boost  
capacitor (see Figure 4b). For lower output voltages the  
boost diode can be tied to the input (Figure 4c), or to  
another supply greater than 2.8V. The circuit in Figure 4a  
is more efficient because the BOOST pin current and BIAS  
pin quiescent current comes from a lower voltage source.  
You must also be sure that the maximum voltage ratings  
of the BOOST and BIAS pins are not exceeded.  
rent proportional to the voltage at the V pin. Note that  
C
the output capacitor integrates this current, and that the  
capacitor on the V pin (C ) integrates the error ampli-  
C
C
fier output current, resulting in two poles in the loop. In  
most cases a zero is required and comes from either the  
output capacitor ESR or from a resistor R in series with  
C
C . This simple model works well as long as the value  
C
The minimum operating voltage of an LT3684 application  
is limited by the minimum input voltage (3.6V) and by the  
maximum duty cycle as outlined in a previous section. For  
of the inductor is not too high and the loop crossover  
frequency is much lower than the switching frequency.  
A phase lead capacitor (C ) across the feedback divider  
PL  
3684f  
14