参数资料
型号: LTC4000IGN#TRPBF
厂商: Linear Technology
文件页数: 30/40页
文件大小: 0K
描述: IC CHARGER BATTERY 28-SSOP
产品培训模块: LTC4000 60V Battery Charging Controller and Power Management
标准包装: 2,500
系列: PowerPath™
功能: 充电管理,电源管理
电池化学: 多化学
电源电压: 3 V ~ 60 V
工作温度: -40°C ~ 125°C
安装类型: 表面贴装
封装/外壳: 28-SSOP(0.154",3.90mm 宽)
供应商设备封装: 28-SSOP
包装: 带卷 (TR)
LTC4000
APPLICATIONS INFORMATION
? ? C C s + 1 ?
? ? R C –
(s) = g m4-7 ?
= ITH
g m10
? ? C C s + 1 ?
? ? R C –
? ?
L IC (s) = g m4 ?
C C s
? 20R IS ( R2 CIIMON s + 1 ) ?
( R1 + R2 ) C IIMON s + 1 ?
R2
g m8 = 0.33m
CC
IIMON
g m4 = 0.5m
C C
BIAS
R1
+
R C
R O4
R O10
APPENDIX—THELOOPTRANSFERFUNCTIONS
When a series resistor (R C ) and capacitor (C C ) is used
as the compensation network as shown in Figure 11, the
transfer function from the input of A4-A7 to the ITH pin
is simply as follows:
? ? 1 ? ?
V ITH ? g m10 ?
V FB ? R O4-7 ? C C s ?
? ?
? ?
where g m4-7 is the transconductance of error amplifier A4-
A7, typically 0.5mA/V; g m10 is the output amplifier (A10)
transconductance, R O4-7 is the output impedance of the
error amplifier, typically 50mΩ; and R O10 is the effective
output impedance of the output amplifier, typically 10mΩ
with the ITH pin open circuit.
Note this simplification is valid when g m10 ? R O10 ? R O4-7
? C C = A V10 ? R O4-7 ? C C is much larger than any other
poles or zeroes in the system. Typically A V10 ? R O4-7 = 5 ?
10 10 with the ITH pin open circuit. The exact value of g m10
and R O10 depends on the pull-up current and impedance
connected to the ITH pin respectively.
In most applications, compensation of the loops involves
picking the right values of R C and C C . Aside from picking
the values of R C and C C , the value of g m10 may also be
adjusted. The value of g m10 can be adjusted higher by
increasing the pull-up current into the ITH pin and its
value can be approximated as:
I + 5μA
50mV
The higher the value of g m10 , the smaller the lower limit
of the value of R C would be. This lower limit is to prevent
the presence of the right half plane zero.
Even though all the loops share this transfer function from
the error amplifier input to the ITH pin, each of the loops
has a slightly different dynamic due to differences in the
feedback signal path.
The Input Current Regulation Loop
The feedback signal for the input current regulation loop
is the sense voltage across the input current sense resis-
tor (R IS ).
This voltage is amplified by a factor of 20 and compared
to the voltage on the IL pin by the transconductance er-
ror amplifier (A4). This amplifier then drives the output
transconductance amplifier (A10) to appropriately adjust
the voltage on the ITH pin driving the external DC/DC
converter to regulate the input current across the sense
resistor (R IS ). This loop is shown in detail in Figure 20.
The simplified loop transmission is:
? ? 1 ? ?
? g m10
? ?
? ?
? ?
? ? ? Gmi p (s)
?
where Gmi p (s) is the transfer function from V ITH to the
input current of the external DC/DC converter.
R IS
IN I IN
C IN
IN CLN LTC4000
A8
20k A4
A10
C IIMON g m10 = 0.1m
60k
50μA – – ITH
1V – +
IL
R IL
4000 F20
Figure 20. Simplified Linear Model of the Input Current
Regulation Loop
4000fb
30
For more information www.linear.com/LTC4000
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