参数资料
型号: LTC3816IFE#PBF
厂商: Linear Technology
文件页数: 25/44页
文件大小: 0K
描述: IC CONTROLLER S-PHASE 38TSSOP
标准包装: 50
应用: 控制器,Intel IMVP-6,IMVP-6.5?
输入电压: 4.5 V ~ 36 V
输出数: 1
输出电压: 0.013 V ~ 1.5 V
工作温度: -40°C ~ 125°C
安装类型: 表面贴装
封装/外壳: 38-TFSOP (0.173",4.40mm 宽)裸露焊盘
供应商设备封装: 38-TSSOP 裸露焊盘
包装: 管件
LTC3816
APPLICATIONS INFORMATION
A LC =
V OUT 1 + sR ESR ? C BULK
(
)
V SW
s L L OUT L OUT + 1
+ SR C
C
?
1 + sR ESR BULK CER
f LC ( DOUBLE _ POLE ) =
f ESR ( ZERO ) =
f CER ( POLE ) =
2 π ? R ESR
1 + sA ( SR ) ( SR )
+ s B
V SERVO
1 + sR ESR BULK
V OUT
1 + sA ( DCR ) ( DCR )
+ s B
V SERVO
1 + sR ESR ? C BULK
V OUT
V COMP ( 1 + sR C ? C C ) ( 1 + sR 1 ? C FF )
?
C ? C ?
V SERVO
sR 1 ( C C + C C 1 ) ? 1 + s R C C C 1 ?
LCFilter
The external inductor and output capacitor combination
causes a second order LC roll-off at the output with 180°
of phase shift. At higher frequencies, the reactance of the
output capacitor approaches its ESR, and the roll-off due to
the capacitor stops, leaving –20dB/decade and 90° of phase
shift. Beyond the ESR zero, the ceramic capacitor creates a
high frequency pole. The LC filter transfer function, poles
and zero locations are given by the following equations:
2
1
C ? C
C OUT
1
2 π L L C OU T
1
2 π ? R ESR ? C BULK
1
C BULK ? C CER
C OUT
where:
R L includes DCR, sense resistance, PCB trace resistance
and the turn-on resistance of the power MOSFET.
L L includes the inductor inductance, PCB trace induc-
tance and sense resistor ESL.
C OUT = C BULK + C CER
AITC and Differential Amplifiers
With the sense resistor configuration, the AITC and the
differential amplifiers add a double zero and a pole in the
vicinity of the feedback loop crossover frequency, f C , and
multiple poles at higher frequencies. The simplified low
frequency transfer function from the regulator output node
to the SERVO pin, as shown in Figure 14a, is given by the
following equation:
2
? C
where:
A (SR) = R ESR ? C BULK + A G(SR) ? R SEN ? C OUT
B (SR) = A G(SR) ? R SEN ? R ESR ? C BULK ? C CER
Similarly, for the DCR configuration with NTC compen-
sation, the simplified low frequency transfer function is
given by:
2
where:
A (DCR) = R ESR ? C BULK + A G(DCR) ? R DCR ? C OUT
B (DCR) = A G(DCRN) ? R DCR ? R ESR ? C BULK ? C CER
Note that with either the sense resistor or the DCR current
sense configuration, the AVP circuitry introduces a pole at
the same location as the LC lowpass filter ESR zero. This
cancels the increase in gain and phase caused by the ESR
zero. Fortunately, the zero in the AVP transfer function is
typically within the closed-loop bandwidth and provides a
beneficial phase boost at the crossover frequency.
Error Amplifier
The error amplifier provides most of the low frequency
loop gain and servos the switcher output voltage to the
VID DAC potential minus the AVP droop. After selecting
the inductor, the output capacitor and the AVP component
values, the control loop is compensated by tailoring the
frequency response of the error amplifier. A typical LTC3816
application uses Type 3 compensation to frequency com-
pensate the feedback loop. Figure 14a and Figure 14b
show the LTC3816 error amplifier Type 3 configuration.
The transfer function of this amplifier is given by the fol-
lowing equation:
= –
? C C + C C 1 ?
The error amplifier component values can be obtained
using the following guidelines.
3816f
  
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