参数资料
型号: NCP1583DR2GEVB
厂商: ON Semiconductor
文件页数: 9/16页
文件大小: 0K
描述: EVAL BOARD FOR NCP1583DR2G
产品变化通告: Product Obsolescence 24/Jan/2011
设计资源: NCP1583 EVB BOM
NCP1583DR2GEVB Gerber Files
标准包装: 1
主要目的: DC/DC,步降
输出及类型: 1,非隔离
输出电压: 0.8V
输入电压: 4.5 ~ 12 V
稳压器拓扑结构: 降压
频率 - 开关: 350kHz
板类型: 完全填充
已供物品:
已用 IC / 零件: NCP1583
其它名称: NCP1583DR2GEVBOS
NCP1582, NCP1582A, NCP1583
results in larger values of output capacitance to maintain
tight output voltage regulation. In contrast, smaller values of
inductance increase the regulator ’s maximum achievable
slew rate and decrease the necessary capacitance, at the
expense of higher ripple current. The peak ? to ? peak ripple
EA
Gm
R1
current is given by the following equation:
C C
C P
Ipk * pkLOUT +
VOUT(1 * D)
LOUT 350 kHz
,
R C
V REF
+
R2
where Ipk ? pk LOUT is the peak to peak current of the output.
From this equation it is clear that the ripple current increases
as L OUT decreases, emphasizing the trade ? off between
dynamic response and ripple current.
Feedback and Compensation
The NCP158x allows the output of the DC ? DC converter
to be adjusted from 0.8 V to 5.0 V via an external resistor
divider network. The controller will try to maintain 0.8 V at
the feedback pin. Thus, if a resistor divider circuit was
placed across the feedback pin to V OUT , the controller will
regulate the output voltage proportional to the resistor
divider network in order to maintain 0.8 V at the FB pin.
V OUT
R1
FB
R2
Figure 12. Type II Transconductance Error
Amplifier
Figure 12 shows a typical Type II transconductance error
amplifier (EOTA). The compensation network consists of
the internal error amplifier and the impedance networks ZIN
(R 1 , R 2 ) and external Z FB (R c , C c and C p ). The
compensation network has to provide a closed loop transfer
function with the highest 0 dB crossing frequency to have
fast response (but always lower than F SW /8) and the highest
gain in DC conditions to minimize the load regulation. A
stable control loop has a gain crossing with ? 20 dB/decade
slope and a phase margin greater than 45 ° . Include
worst ? case component variations when determining phase
margin. Loop stability is defined by the compensation
network around the EOTA, the output capacitor, output
inductor and the output divider. Figure 13. shows the open
loop and closed loop gain plots.
Compensation Network Frequency:
The inductor and capacitor form a double pole at the
The relationship between the resistor divider network
above and the output voltage is shown in the following
equation:
frequency
FLC +
1
2 p @ LO @ C O
R2 + R1
VREF
VOUT * VREF
.
The ESR of the output capacitor creates a “zero” at the
frequency,
Resistor R1 is selected based on a design tradeoff between
efficiency and output voltage accuracy. For high values of
FESR +
1
2 p @ ESR @ CO
FZ +
R1 there is less current consumption in the feedback
network, However the trade off is output voltage accuracy
due to the bias current in the error amplifier. The output
voltage error of this bias current can be estimated using the
following equation (neglecting resistor tolerance):
The zero of the compensation network is formed as,
1
2 p @ RCCC
The pole of the compensation network is calculated as,
Error% +
0.1 m A
VREF
R1
100%.
FP +
1
2 p @ R C @ C P
Once R1 has been determined, R2 can be calculated.
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