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LTC1435CG 参数 Datasheet PDF下载

LTC1435CG图片预览
型号: LTC1435CG
PDF下载: 下载PDF文件 查看货源
内容描述: 高效率,低噪声同步降压型开关稳压器 [High Efficiency Low Noise Synchronous Step-Down Switching Regulator]
分类和应用: 稳压器开关
文件页数/大小: 20 页 / 407 K
品牌: Linear [ Linear ]
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LTC1435  
U
W U U  
APPLICATIONS INFORMATION  
only solution is to limit the rise time of the switch drive so  
that the load rise time is limited to approximately  
(25)(CLOAD). Thusa10µFcapacitorwouldrequirea250µs  
rise time, limiting the charging current to about 200mA.  
MOSFET and the synchronous MOSFET. If the two  
MOSFETs have approximately the same RDS(ON), then  
the resistance of one MOSFET can simply be summed  
with the resistances of L and RSENSE to obtain I2R  
losses. For example, if each RDS(ON) = 0.05,  
RL = 0.15, and RSENSE = 0.05, then the total  
resistance is 0.25. This results in losses ranging  
from 3% to 10% as the output current increases from  
0.5A to 2A. I2R losses cause the efficiency to drop at  
high output currents.  
Automotive Considerations:  
Plugging into the Cigarette Lighter  
As battery-powered devices go mobile, there is a natural  
interest in plugging into the cigarette lighter in order to  
conserveorevenrechargebatterypacksduringoperation.  
But before you connect, be advised: you are plugging into  
the supply from hell. The main battery line in an automo-  
bileisthesourceofanumberofnastypotentialtransients,  
including load dump, reverse battery and double battery.  
4. Transition losses apply only to the topside MOSFET(s),  
and only when operating at high input voltages (typi-  
cally 20V or greater). Transition losses can be esti-  
mated from:  
Transition Loss = 2.5 (VIN)1.85(IMAX)(CRSS)(f)  
Load dump is the result of a loose battery cable. When the  
cablebreaksconnection,thefieldcollapseinthealternator  
can cause a positive spike as high as 60V which takes  
several hundred milliseconds to decay. Reverse battery is  
just what it says, while double battery is a consequence of  
tow truck operators finding that a 24V jump start cranks  
cold engines faster than 12V.  
Other losses, including CIN and COUT ESR dissipative  
losses, Schottky conduction losses during dead-time,  
and inductor core losses, generally account for less  
than 2% total additional loss.  
Checking Transient Response  
The network shown in Figure 7 is the most straightfor-  
ward approach to protect a DC/DC converter from the  
ravages of an automotive battery line. The series diode  
prevents current from flowing during reverse battery,  
while the transient suppressor clamps the input voltage  
during load dump. Note that the transient suppressor  
should not conduct during double battery operation, but  
muststillclamptheinputvoltagebelowbreakdownofthe  
converter. Although the LT1435 has a maximum input  
voltage of 36V, most applications will be limited to 30V  
The regulator loop response can be checked by looking at  
the load transient response. Switching regulators take  
several cycles to respond to a step in DC (resistive) load  
current.Whenaloadstepoccurs,VOUT immediatelyshifts  
by an amount equal to (ILOAD)(ESR), where ESR is the  
effective series resistance of COUT. ILOAD also begins to  
charge or discharge COUT which generates a feedback  
error signal. The regulator loop then acts to return VOUT to  
its steady-state value. During this recovery time VOUT can  
be monitored for overshoot or ringing which would indi-  
cate a stability problem. The ITH external components  
shown in the Figure 1 circuit will provide adequate com-  
pensation for most applications.  
by the MOSFET BVDSS  
.
12V  
50A I RATING  
PK  
V
IN  
A second, more severe transient is caused by switching in  
loads with large (>1µF) supply bypass capacitors. The  
discharged bypass capacitors are effectively put in paral-  
lel with COUT, causing a rapid drop in VOUT. No regulator  
can deliver enough current to prevent this problem if the  
load switch resistance is low and it is driven quickly. The  
LTC1435  
TRANSIENT VOLTAGE  
SUPPRESSOR  
GENERAL INSTRUMENT  
1.5KA24A  
1435 F07  
Figure 7. Automotive Application Protection  
14  
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