欢迎访问ic37.com |
会员登录 免费注册
发布采购

CTX50-1 参数 Datasheet PDF下载

CTX50-1图片预览
型号: CTX50-1
PDF下载: 下载PDF文件 查看货源
内容描述: 500毫安低电压降压型同步 [500mA Low Voltage Step-Down Synchronous]
分类和应用:
文件页数/大小: 12 页 / 96 K
品牌: Linear [ Linear ]
 浏览型号CTX50-1的Datasheet PDF文件第4页浏览型号CTX50-1的Datasheet PDF文件第5页浏览型号CTX50-1的Datasheet PDF文件第6页浏览型号CTX50-1的Datasheet PDF文件第7页浏览型号CTX50-1的Datasheet PDF文件第9页浏览型号CTX50-1的Datasheet PDF文件第10页浏览型号CTX50-1的Datasheet PDF文件第11页浏览型号CTX50-1的Datasheet PDF文件第12页  
LTC1504A  
U
W U U  
APPLICATIONS INFORMATION  
Table 2. Representative Surface Mount Inductors  
electrolytic capacitors at the output and can use larger  
valued inductors to minimize the required output capaci-  
torvalue.NotethattheRMScurrentintheoutputcapacitor  
is slightly more than half of the inductor ripple current—  
much smaller than the RMS current in the input bypass  
capacitor. Output capacitor lifetime is usually not a factor  
in typical LTC1504A applications.  
CORE  
CORE  
PART  
VALUE  
MAX DC  
TYPE MATERIAL HEIGHT  
CoilCraft  
DT3316-473  
DT3316-104  
DO1608-473  
DO3316-224  
47µH  
100µH  
47µH  
1A  
Shielded  
Shielded  
Open  
Ferrite  
Ferrite  
Ferrite  
Ferrite  
5.1mm  
5.1mm  
3.2mm  
5.5mm  
0.8A  
0.5A  
0.8A  
220µH  
Open  
Coiltronics  
CTX50-1  
CTX100-2  
CTX50-1P  
CTX100-2P  
TP3-470  
Large value ceramic capacitors used as output bypass  
capacitors provide excellent ESR characteristics but can  
cause loop compensation difficulties. See the Loop Com-  
pensation section.  
50µH  
100µH  
50µH  
100µH  
47µH  
47µH  
0.65A  
0.63A  
0.66A  
0.55A  
0.55A  
0.72A  
Toroid  
Toroid  
Toroid  
Toroid  
Toroid  
Toroid  
KoolMµ®  
KoolMµ  
Type 52  
Type 52  
Ferrite  
4.2mm  
6mm  
4.2mm  
6mm  
2.2mm  
3mm  
TP3-470  
Ferrite  
Loop Compensation  
Sumida  
CDRH62-470  
CDRH73-101  
CD43-470  
CD54-101  
47µH  
100µH  
47µH  
0.54A  
0.50A  
0.54A  
0.52A  
Shielded  
Shielded  
Open  
Ferrite  
Ferrite  
Ferrite  
Ferrite  
3mm  
Loop compensation is strongly affected by the output  
capacitor. From a loop stability point of view, the output  
inductor and capacitor form a series RLC resonant circuit,  
with the L set by the inductor value, the C by the value of  
the output capacitor and the R dominated by the output  
capacitors ESR. The amplitude response and phase shift  
due to these components is compensated by a network of  
Rs and Cs at the COMP pin to (hopefully) close the  
feedback loop in a stable manner. Qualitatively, the L and  
C of the output stage form a 2nd order roll-off with 180°  
of phase shift; the R due to ESR forms a single zero at a  
somewhat higher frequency that reduces the roll-off to  
first order and reduces the phase shift to 90°.  
3.4mm  
3.2mm  
4.5mm  
100µH  
Open  
Output Capacitor  
The output capacitor affects the performance of the  
LTC1504A in a couple of ways: it provides the first line of  
defenseduringatransientloadstepandithas alargeeffect  
on the compensation required to keep the LTC1504A  
feedback loop stable. Transient load response of an  
LTC1504A circuit is controlled almost entirely by the  
output capacitor and the inductor. In steady load opera-  
tion,theaveragecurrentintheinductorwillmatchtheload  
current. When the load current changes suddenly, the  
inductor is suddenly carrying the wrong current and  
requires a finite amount of time to correct itself—at least  
several switch cycles with typical LTC1504A inductor  
values. Even if the LTC1504A had psychic abilities and  
could instantly assume the correct duty cycle, the rate of  
change of current in the inductor is still related to its value  
and cannot change instantaneously.  
If the output capacitor has a relatively high ESR, the zero  
comes in well before the initial phase shift gets all the way  
to 180° and the loop only requires a single small capacitor  
from COMP to GND to remain stable (Figure 4a). If, on the  
other hand, the output capacitor is a low ESR type to  
maximizetransientresponse, theESRzerocanincreasein  
frequency by a decade or more and the output stage phase  
shift can get awfully close to 180° before it turns around  
and comes back to 90°. Large value ceramic, OS-CON  
electrolytic and low impedance tantalum capacitors fall  
into this category. These loops require an additional zero  
to be inserted at the COMP pin; a series RC in parallel with  
asmallerCtogroundwillusuallyensurestability.Figure 4b  
shows a typical compensation network which will opti-  
mize transient response with most output capacitors.  
Adjustable output parts can add a feedforward capacitor  
across the feedback resistor divider to further improve  
Until the inductor current adjusts to match the load cur-  
rent, the output capacitor has to make up the difference.  
Applications that require exceptional transient response  
(2% or better for instantaneous full-load steps) will re-  
quire relatively large value, low ESR output capacitors.  
Applications with more moderate transient load require-  
ments can often get away with traditional standard ESR  
Kool Mµ is a registered trademark of Magnetics, Inc..  
8
 复制成功!