欢迎访问ic37.com |
会员登录 免费注册
发布采购

LTC1629I-PG 参数 Datasheet PDF下载

LTC1629I-PG图片预览
型号: LTC1629I-PG
PDF下载: 下载PDF文件 查看货源
内容描述: 多相,高效率,同步降压型开关稳压器 [PolyPhase, High Efficiency, Synchronous Step-Down Switching Regulators]
分类和应用: 稳压器开关
文件页数/大小: 28 页 / 332 K
品牌: Linear [ Linear ]
 浏览型号LTC1629I-PG的Datasheet PDF文件第20页浏览型号LTC1629I-PG的Datasheet PDF文件第21页浏览型号LTC1629I-PG的Datasheet PDF文件第22页浏览型号LTC1629I-PG的Datasheet PDF文件第23页浏览型号LTC1629I-PG的Datasheet PDF文件第24页浏览型号LTC1629I-PG的Datasheet PDF文件第26页浏览型号LTC1629I-PG的Datasheet PDF文件第27页浏览型号LTC1629I-PG的Datasheet PDF文件第28页  
LTC1629/LTC1629-PG  
U
W U U  
APPLICATIO S I FOR ATIO  
Simplified Visual Explanation of How a 2-Phase  
Controller Reduces Both Input and Output RMS Ripple  
Current  
subtracts current from the (VIN - VOUT)/L charging current  
resultingfromthestagewhichhasitstopMOSFETon. The  
output ripple current is:  
A multiphase power supply significantly reduces the  
amount of ripple current in both the input and output  
capacitors.TheRMSinputripplecurrentisdividedby,and  
the effective ripple frequency is multiplied up by the  
number of phases used (assuming that the input voltage  
isgreaterthanthenumberofphasesusedtimestheoutput  
voltage). The output ripple amplitude is also reduced by,  
and the effective ripple frequency is increased by the  
number of phases used. Figure 10 graphically illustrates  
the principle.  
12D 1D  
(
)
2VOUT  
fL  
IRIPPLE  
=
12D +1  
where D is duty factor.  
The input and output ripple frequency is increased by the  
number of stages used, reducing the output capacity  
requirements. When VIN is approximately equal to NVOUT  
as illustrated in Figures 3 and 4, very low input and output  
ripple currents result.  
The worst-case RMS ripple current for a single stage  
design peaks at twice the value of the output voltage . The  
worst-case RMS ripple current for a two stage design  
results in peaks at 1/4 and 3/4 of input voltage. When the  
RMS current is calculated, higher effective duty factor  
results and the peak current levels are divided as long as  
the currents in each stage are balanced. Refer to Applica-  
tion Note 19 for a detailed description of how to calculate  
RMS current for the single stage switching regulator.  
Figures 3 and 4 help to illustrate how the input and output  
currents are reduced by using an additional phase. The  
input current peaks drop in half and the frequency is  
doubled for a 2-phase converter. The input capacity re-  
quirement is reduced theoretically by a factor of four! A  
ceramic input capacitor with its unbeatably low ESR  
characteristic can be used.  
Again, the interesting result of 2-phase operation results  
in no output ripple at VOUT = VIN/2. The addition of more  
phases by phase locking additional controllers always  
results in no net input or output ripple at VOUT/VIN ratios  
equal to the number of stages implemented. Designing a  
systemwithamultipleofstagesclosetotheVOUT/VIN ratio  
will significantly reduce the ripple voltage at the input and  
outputs and thereby improve efficiency, physical size, and  
heat generation of the overall switching power supply.  
SINGLE PHASE  
SW V  
I
CIN  
I
COUT  
Figure 4 illustrates the RMS input current drawn from the  
input capacitance versus the duty cycle as determined by  
the ratio of input and output voltage. The peak input RMS  
currentlevelofthesinglephasesystemisreducedby50%  
in a 2-phase solution due to the current splitting between  
the two stages.  
DUAL PHASE  
SW1 V  
SW2 V  
I
I
L1  
L2  
An interesting result of the multi-phase solution is that the  
VIN whichproducesworst-caseripplecurrentfortheinput  
capacitor, VOUT = VIN/2, in the single phase design pro-  
duces zero input current ripple in the 2-phase design.  
I
CIN  
The output ripple current is reduced significantly when  
compared to the single phase solution using the same  
inductance value because the VOUT/L discharge current  
term from the stage(s) that has its bottom MOSFET on  
I
COUT  
1629 F10  
RIPPLE  
Figure 10. Single and PolyPhase Current Waveforms  
25  
 复制成功!