参数资料
型号: LTC1871EMS
厂商: Linear Technology
文件页数: 12/36页
文件大小: 0K
描述: IC REG CTRLR BST FLYBK CM 10MSOP
标准包装: 50
PWM 型: 电流模式
输出数: 1
频率 - 最大: 1MHz
占空比: 97%
电源电压: 2.5 V ~ 36 V
降压:
升压:
回扫:
反相:
倍增器:
除法器:
Cuk:
隔离:
工作温度: -40°C ~ 85°C
封装/外壳: 10-TFSOP,10-MSOP(0.118",3.00mm 宽)
包装: 管件
LTC1871
APPLICATIONS INFORMATION
V IN(OFF) = 1.248V ? 1 +
V IN(ON) = 1.348V ? 1 +
temperature  rating.  The  junction  temperature  can  be
estimated using the following equations:
I Q(TOT) ≈ I Q + f ? Q G
P IC = V IN ? (I Q + f ? Q G )
T J = T A + P IC ? R TH(JA)
The total quiescent current I Q(TOT) consists of the static
supply current (I Q ) and the current required to charge and
discharge the gate of the power MOSFET. The 10-pin MSOP
package has a thermal resistance of R TH(JA) = 120°C/W.
As an example, consider a power supply with V IN = 5V and
V O = 12V at I O = 1A. The switching frequency is 500kHz,
and the maximum ambient temperature is 70°C. The power
MOSFET chosen is the IRF7805, which has a maximum
R DS(ON) of 11mΩ (at room temperature) and a maximum
total gate charge of 37nC (the temperature coef?cient of
the gate charge is low).
I Q(TOT) = 600μA + 37nC ? 500kHz = 19.1mA
P IC = 5V ? 19.1mA = 95mW
T J = 70°C + 120°C/W ? 95mW = 81.4°C
This demonstrates how signi?cant the gate charge current
can be when compared to the static quiescent current in
the IC.
To prevent the maximum junction temperature from being
exceeded, the input supply current must be checked when
operating in a continuous mode at high V IN . A tradeoff
between the operating frequency and the size of the power
MOSFET may need to be made in order to maintain a reliable
IC junction temperature. Prior to lowering the operating
frequency, however, be sure to check with power MOSFET
manufacturers for their latest-and-greatest low Q G , low
R DS(ON) devices. Power MOSFET manufacturing tech-
nologies are continually improving, with newer and better
performance devices being introduced almost yearly.
Output Voltage Programming
The output voltage is set by a resistor divider according
to the following formula:
The external resistor divider is connected to the output
as shown in Figure 1, allowing remote voltage sensing.
The resistors R1 and R2 are typically chosen so that the
error caused by the current ?owing into the FB pin dur-
ing normal operation is less than 1% (this translates to a
maximum value of R1 of about 250k).
Programming Turn-On and Turn-Off Thresholds with
the RUN Pin
The LTC1871 contains an independent, micropower voltage
reference and comparator detection circuit that remains
active even when the device is shut down, as shown in
Figure 8. This allows users to accurately program an input
voltage at which the converter will turn on and off. The
falling threshold voltage on the RUN pin is equal to the
internal reference voltage of 1.248V. The comparator has
100mV of hysteresis to increase noise immunity.
The turn-on and turn-off input voltage thresholds are
programmed using a resistor divider according to the
following formulas:
R2
R1
R2
R1
The resistor R1 is typically chosen to be less than 1M.
For applications where the RUN pin is only to be used as
a logic input, the user should be aware of the 7V Absolute
Maximum Rating for this pin! The RUN pin can be con-
nected to the input voltage through an external 1M resistor,
as shown in Figure 8c, for “always on” operation.
Application Circuits
A basic LTC1871 application circuit is shown in Figure 1.
External component selection is driven by the character-
istics of the load and the input supply. The ?rst topology
to be analyzed will be the boost converter, followed by
SEPIC (single ended primary inductance converter).
V O = 1.230V ? 1 +
R2
R1
1871fe
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