参数资料
型号: ISL6263BHRZ-T
厂商: Intersil
文件页数: 14/18页
文件大小: 0K
描述: IC DC/DC BUCK CTRLR 1PH 32-QFN
标准包装: 6,000
应用: 转换器,Intel IMVP-6
输入电压: 5 V ~ 25 V
输出数: 1
输出电压: 0.41 V ~ 1.29 V
工作温度: -10°C ~ 100°C
安装类型: 表面贴装
封装/外壳: 32-VFQFN 裸露焊盘
供应商设备封装: 32-QFN(5x5)
包装: 带卷 (TR)
ISL6263B
G 1 ( T ) = ---------------------------------------------------------------------
( 1 + 0.00393 ? ( T – 25 ° C ) )
The first step in droop load line compensation is to adjust
R NTCEQ , and R S such that the correct droop voltage
appears even at light loads between the VSUM and VO pins.
As a rule of thumb, the voltage drop V N across the R NTCEQ
network, is set to be 0.3 to 0.8 times V DCR . This gain,
defined as G 1 , provides a reasonable amount of light load
signal from which to derive the droop voltage.
The NTC network resistor value is dependent on
temperature and is given by Equation 9:
where G 1target is the desired ratio of V n / V DCR . Therefore,
the temperature characteristics G 1 is described by
Equation 14:
G 1t arg et
(EQ. 14)
It is recommended to begin your droop design using the
R NTC , R NTCS , and R NTCP component values of the
evaluation board available from Intersil.
R N ( T ) = ------------------------------------------------------------------------
( R NTC + R NTCS ) ? R NTCP
R NTC + R NTCS + R NTCP
(EQ. 9)
The gain of the droop amplifier circuit is expressed in
Equation 15:
R DRP1
G 1 , the gain of V N to V DCR , is also dependent on the
temperature of the NTC thermistor:
R DRP2
k droopamp = 1 + -------------------
(EQ. 15)
G 1 ( T ) = -------------------------------
R N ( T ) + R S
R N ( T )
(EQ. 10)
The inductor DCR is a function of temperature and is
After determining R S and R NTCEQ networks, use
Equation 16 to calculate the droop resistances R DRP1 and
R DRP2 .
R DRP2 = ? ? ------------------------------------------- ? – 1 ? ? R DRP1
approximately given by Equation 11:
DCR ( T ) = DCR 25 ° C ? ( 1 + 0.00393 ? ( T – 25 ° C ) )
(EQ. 11)
? ? R droop ? ?
? ? DCR ? G 1 ( 25 ° C ) ? ?
(EQ. 16)
The droop amplifier output voltage divided by the total load
current is given by Equation 12:
R droop = G 1 ( T ) ? DCR 25 ° C ? ( 1 + 0.00393 ? ( T – 25 ° C ) ) ? k droopamp
(EQ. 12)
R droop is the actual load line slope, and 0.00393 is the
temperature coefficient of the copper. To make R droop
independent of the inductor temperature, it is desired to
have:
R droop is 8m Ω per Intel IMVP-6+ specification and R DRP1 is
typically 1k Ω .
The effectiveness of the R NTCEQ network is sensitive to the
coupling coefficient between the NTC thermistor and the
inductor. The NTC thermistor should be placed in the closet
proximity of the inductor.
To see whether the NTC network successfully compensates
the DCR change over temperature, one can apply full load
current and wait for the thermal steady state and see how
G 1 ( T ) ? ( 1 + 0.00393 ? ( T – 25 ° C ) ) ? G 1t arg et
(EQ. 13)
much the output voltage deviates from the initial voltage
reading. A good compensation can limit the drift to less than
2mV. If the output voltage is decreasing when the temperature
increases, that ratio between the NTC thermistor value and
the rest of the resistor divider network has to be increased.
VDD
OCP
?
+
10 μ A
+
OCSET
VSUM
R OCSET
R S
+
DROOP
?
DFB
DROOP
?
VO
V DCR
FIGURE 8. EQUIVALENT MODEL FOR DROOP CIRCUIT USING INDUCTOR DCR CURRENT SENSING
14
FN6388.3
July 8, 2010
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