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LT1769CFE 参数 Datasheet PDF下载

LT1769CFE图片预览
型号: LT1769CFE
PDF下载: 下载PDF文件 查看货源
内容描述: [Constant-Current/ Constant-Voltage 2A Battery Charger with Input Current Limiting]
分类和应用: 电池光电二极管
文件页数/大小: 16 页 / 219 K
品牌: Linear Systems [ Linear Systems ]
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LT1769  
U
W U U  
APPLICATIONS INFORMATION  
Input and Output Capacitors  
ramping up when VC pin voltage reaches 0.7V and full  
current is achieved with VC at 1.1V. With a 0.33µF capaci-  
tor, thetimetoreachfullchargecurrentisabout10msand  
itisassumedthatinputvoltagetothechargerwillreachfull  
value in less than 10ms. The capacitor can be  
increasedupto1µFiflongerinputstart-uptimesareneeded.  
In the 2A Lithium-Ion Battery Charger (Figure 1), the input  
capacitor (CIN) is assumed to absorb all input switching  
ripple current in the converter, so it must have adequate  
ripple current rating. Worst-case RMS ripple current will  
be equal to one half of the output charge current. Actual  
capacitance value is not critical. Solid tantalum capacitors  
such as the AVX TPS and Sprague 593D series have high  
ripple current rating in a relatively small surface mount  
package, but caution must be used when tantalum capaci-  
tors are used for input bypass. High input surge currents  
are possible when the adapter is hot-plugged to the  
charger and solid tantalum capacitors have a known  
failure mechanism when subjected to very high turn-on  
surge currents. Selecting a high voltage rating on the  
capacitor will minimize problems. Consult with the manu-  
facturerbeforeuse.Alternativesincludenewhighcapacity  
ceramic (5µF to 20µF) from Tokin or United Chemi-Con/  
Marcon, et al. Sanyo OS-CON can also be used.  
In any switching regulator, conventional time-based soft-  
starting can be defeated if the input voltage rises much  
slower than the time out period. This happens because the  
switching regulators in the battery charger and the com-  
puter power supply are typically supplying a fixed amount  
of power to the load. If the input voltage comes up slowly  
compared to the soft-start time, the regulators will try to  
deliver full power to the load when the input voltage is still  
well below its final value. If the adapter is current limited,  
it cannot deliver full power at reduced output voltages and  
the possibility exists for a quasi “latch” state where the  
adapter output stays in a current limited state at reduced  
output voltage. For instance, if maximum charger plus  
computer load power is 25W, a 15V adapter might be  
current limited at 2A. If adapter voltage is less than  
(25W/2A = 12.5V) when full power is drawn, the adapter  
voltage will be pulled down by the constant 25W load until  
it reaches a lower stable state where the switching regu-  
lators can no longer supply full load. This situation can be  
preventedbyutilizingundervoltagelockout,sethigherthan  
the minimum adapter voltage where full power can be  
achieved.  
The output capacitor (COUT) is also assumed to absorb  
output switching ripple current. The general formula for  
capacitor ripple current is:  
V
BAT  
0.29 (V ) 1 –  
BAT  
(
)
V
CC  
I
=
RMS  
(L1)(f)  
For example, VCC = 16V, VBAT = 8.4V, L1 = 20µH,  
and f = 200kHz, IRMS = 0.3A.  
Afixedundervoltagelockoutof7VisbuiltintotheLT1769.  
This 7V threshold can be increased by adding a resistive  
divider to the UV pin as shown in Figure 2. Internal lockout  
is performed by clamping the VC pin low. The VC pin is  
released from its clamped state when the UV pin rises  
above 7V and is pulled low when the UV pin drops below  
6.5V (0.5V hysteresis). At the same time UVOUT goes high  
with an external pull-up resistor. This signal can be used  
to alert the system that charging is about to start. The  
charger will start delivering current about 4ms after VC is  
released, as set by the 0.33µF capacitor. A resistor divider  
is used to set the desired VCC lockout voltage as shown in  
Figure 2. A typical value for R6 is 5k and R5 is found from:  
EMI considerations usually make it desirable to minimize  
ripple current in the battery leads. Beads or inductors can  
be added to increase battery impedance at the 200kHz  
switching frequency. Switching ripple current splits be-  
tween the battery and the output capacitor depending on  
the ESR of the output capacitor and the battery imped-  
ance. IftheESRofCOUT is0.2andthebatteryimpedance  
is raised to 4with a bead or inductor, only 5% of the  
ripple current will flow into the battery.  
Soft-Start and Undervoltage Lockout  
The LT1769 is soft-started by the 0.33µF capacitor on the  
VC pin. On start-up, the VC pin voltage will quickly rise to  
0.5V, then ramp at a rate set by the internal 45µA pull-up  
current and the external capacitor. Charge current starts  
R6(V – V )  
IN  
UV  
R5 =  
V
UV  
1769fa  
9