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ACT3704NH-T 参数 Datasheet PDF下载

ACT3704NH-T图片预览
型号: ACT3704NH-T
PDF下载: 下载PDF文件 查看货源
内容描述: 12V线性模式电池充电器锂离子/锂聚合物电池 [12V Linear-Mode Battery Charger for Li+/Li-polymer Cells]
分类和应用: 电池
文件页数/大小: 15 页 / 453 K
品牌: ACTIVE-SEMI [ ACTIVE-SEMI, INC ]
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ACT3704  
Rev2, 26-Jul-07  
FUNCTIONAL DESCRIPTION  
Table 1:  
Charge Current Programming  
The ACT3704 is an intelligent, stand-alone Con-  
stant-Current, Constant-Voltage control (CC/CV),  
linear-mode, single-cell charger for Lithium-Based  
cell chemistries. The device incorporates current  
and voltage sense circuitry, an internal 12V power  
MOSFET, a 120°C thermal-regulation loop that mini-  
mizes total charge time, a complete state-machine  
that implements charge safety features, and circuitry  
that eliminates the reverse-blocking diode required  
by conventional charger designs.  
R
ISET(k)  
Charge Current (mA)  
89  
64  
56  
47  
297  
413  
470  
562  
33  
27  
800  
989  
The ACT3704 features an accurate charge termina-  
tion voltage, programmable fast-charge constant  
current, and a programmable charge safety timeout  
period. Other features include current-limited nSTAT  
and nEOC outputs that can directly drive LED indi-  
cators without external resistors or provide a logic-  
level status signal to the host microprocessor.  
The RISET values in Table 1 are standard 1%. Note  
that the actual charging current may be limited to a  
current that is lower than the programmed fast-  
charge current due to the ACT3704’s internal ther-  
mal-regulation loop. See the Thermal Regulation  
Loop section for more information.  
CC/CV Regulation Loop  
At the core of the ACT3704 is a CC/CV regulation  
loop, which regulates either current or voltage as  
necessary to ensure fast and safe charging of the  
battery.  
Thermal Regulation Loop  
The ACT3704 features an internal thermal regula-  
tion loop that reduces the charging current as nec-  
essary to ensure that the die temperature does not  
rise beyond the thermal regulation threshold of  
120°C. This feature protects the ACT3704 against  
excessive junction temperature and makes the  
ACT3704 more accommodating to aggressive ther-  
mal designs. Note, however, that attention to good  
thermal designs is required to achieve the fastest  
possible charge time by maximizing charge current.  
In a normal charge cycle, this loop regulates the cur-  
rent to the value set by RISET. Charging continues at  
this current until the battery voltage reaches the  
charge termination voltage. At this point the CV loop  
takes over, and charge current is allowed to de-  
crease as necessary to maintain charging at the  
charge termination voltage.  
In order to account for the extended total charge  
time resulting from operation in thermal regulation  
mode, the charge timeout periods are extended  
proportionally to the reduction in charge current. In  
order to ensure a safe charge, the maximum time-  
out periods are limited to 2x the room temperature  
values.  
Setting The Charge Termination Voltage  
The ACT3704 offers two pin-programmable battery  
termination voltages; connect ADJ to G to select a  
4.10V termination voltage, connect ADJ to IN (or to  
a voltage greater than 1.4V) to select a 4.20V termi-  
nation voltage.  
The conditions that cause the ACT3704 to reduce  
charge current in accordance to the internal thermal  
regulation loop can be approximated by calculating  
the power dissipated in the part. Most of the power  
dissipation is generated from the internal charge  
MOSFET (Q1 in the Functional Block Diagram).  
The power dissipation is calculated to be approxi-  
mately:  
Charge Current Programming  
The maximum charging current is programmed by  
an external resistor (RISET) connected from ISET to  
G.  
Calculate RISET as follows:  
R
= 22k×  
(
1.20V / IBAT  
)
(1)  
ISET  
PD =  
(
V -VBAT ×IBAT  
)
(3)  
Where IBAT is Amps.  
IN  
The voltage at ISET is fixed at 1.20V, and the maxi-  
mum charge current at BAT is set by:  
PD is the power dissipated, VIN is the input supply  
voltage, VBAT is the battery voltage and IBAT is the  
charge current. The approximate ambient tempera-  
IBAT = 22k×  
(
1.20V / R  
)
(2)  
ISET  
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Copyright © 2007 Active-Semi, Inc.