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ISL6366 参数 Datasheet PDF下载

ISL6366图片预览
型号: ISL6366
PDF下载: 下载PDF文件 查看货源
内容描述: 双6相+ 1相PWM控制器,用于VR12 / IMVP7应用 [Dual 6-Phase + 1-Phase PWM Controller for VR12/IMVP7 Applications]
分类和应用: 控制器
文件页数/大小: 44 页 / 1744 K
品牌: INTERSIL [ Intersil ]
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ISL6366  
6. Run the actual board under full load again with the proper  
PHASE  
resistors connected to the “TCOMP” pin.  
7. Record the output voltage as V1 immediately after the output  
voltage is stable with the full load. Record the output voltage  
as V2 after the VR reaches the thermal steady state.  
ISENS-  
ISL6366  
8. If the output voltage increases over 2mV as the temperature  
increases, i.e. V2 - V1 > 2mV, reduce “TCOMP” value; if the  
output voltage decreases over 2mV as the temperature  
increases, i.e. V1 - V2 > 2mV, increase “TCOMP” values.  
o C  
External Temperature Compensation  
ISENS+  
When the “OFF” code of TCOMP is selected, then the internal  
current source is not thermally compensated, i.e, the integrated  
temperature compensation function is disabled. However, one  
external temperature compensation network, shown in  
Figure 24, can be used to cancel the temperature impact on the  
droop (i.e., load line).  
FIGURE 25. NTC WITH L/DCR MATCHING NETWORK FOR  
THERMAL COMPESNATION  
IMON  
C O M P  
ISL6366  
ISL6366  
F B  
o C  
ID R O O P  
o C  
FIGURE 26. NTC WITH IMON NETWORK FOR THERMAL  
COMPESNATION  
V O U T  
FIGURE 24. EXTERNAL TEMPERATURE COMPENSATION FOR  
LOAD LINE  
Hard-wired Registers (Patent  
Pending)  
The sensed current will flow out of the FB pin and develop a droop  
To set registers for VR12/IMVP7 applications using lowest pin-  
count package and with lowest overall cost, Intersil has  
developed a high resolution ADC using a patented technique with  
simple 1%, 100ppm/k or better temperature coefficient resistor  
divider, as shown in Figure 27. The same type of resistors are  
preferred so that it has similar change over temperature. In  
addition, the divider is comparing to the internal divider off VCC  
and GND nodes and therefore must refer to VCC and GND pins,  
not through any RC decoupling network.  
voltage across the resistor equivalent (R ) between the FB pin  
and VOUT sensing node. If R resistance reduces as the  
FB  
temperature increases, the temperature impact on the droop can  
be compensated. An NTC resistor can be placed close to the power  
FB  
stage and used to form R . Due to the nonlinear temperature  
FB  
characteristics of the NTC, a resistor network is needed to make  
the equivalent resistance between the FB pin and VOUT sensing  
node inversely proportional to the temperature.  
This external temperature compensation network can only  
compensate the temperature impact on the droop, while it has no  
impact to the sensed current inside ISL6366. Therefore, this  
network cannot compensate for the temperature impact on the  
overcurrent protection function. In addition, NTC could pick up  
phase switching noise and easily inject into the loop. This method  
is typically not recommended.  
EXTERNAL CIRCUIT  
VCC  
ISL6366  
R
UP  
REGISTER  
TABLE  
ADC  
Furthermore, the NTC can be placed with L/DCR matching  
network to thermally compensate the sensed current, or with  
IMON network to thermally compensate the IMON voltage  
(typically need to set internal overcurrent trip higher than IMON  
OCP trip), as shown in Figures 25 and 26, respectively. These  
methods are typically applicable to both VR0 and VR1 for  
non-droop applications.  
R
DW  
FIGURE 27. SIMPLIFIED RESISTOR DIVIDER ADC  
FN6964.0  
January 3, 2011  
32  
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