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TC1301A bảng dữ liệu(PDF) 17 Page - Microchip Technology

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Giải thích chi tiết về linh kiện  Dual LDO with Microcontroller RESET Function
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TC1301A bảng dữ liệu(HTML) 17 Page - Microchip Technology

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© 2008 Microchip Technology Inc.
DS21798C-page 17
TC1301A/B
6.0
APPLICATION CIRCUITS/
ISSUES
6.1
Typical Application
The TC1301A/B is used for applications that require
the integration of two LDO’s and a microcontroller
RESET.
FIGURE 6-1:
Typical Application Circuit
TC1301A/B.
6.1.1
APPLICATION INPUT CONDITIONS
6.2
Power Calculations
6.2.1
POWER DISSIPATION
The internal power dissipation within the TC1301A/B is
a function of input voltage, output voltage, output
current and quiescent current. The following equation
can be used to calculate the internal power dissipation
for each LDO.
EQUATION 6-1:
In addition to the LDO pass element power dissipation,
there is power dissipation within the TC1301A/B as a
result of quiescent or ground current. The power
dissipation as a result of the ground current can be
calculated using the following equation. The VIN pin
quiescent current and the VDET pin current are both
considered. The VIN current is a result of LDO
quiescent current, while the VDET current is a result of
the voltage detector current.
EQUATION 6-2:
The total power dissipated within the TC1301A/B is the
sum of the power dissipated in both of the LDO’s and
the P(IGND) term. Because of the CMOS construction,
the typical IGND for the TC1301A/B is 116 µA.
Operating at a maximum of 4.2V results in a power
dissipation of 0.5 milliWatts. For most applications, this
is small compared to the LDO pass device power
dissipation and can be neglected.
The
maximum
continuous
operating
junction
temperature specified for the TC1301A/B is 125°C. To
estimate the internal junction temperature of the
TC1301A/B, the total internal power dissipation is
multiplied by the thermal resistance from junction to
ambient (R
θ
JA) of the device. The thermal resistance
from junction to ambient for the 3x3 DFN8 pin package
is estimated at 41°C/W.
Package Type = 3x3 DFN8
Input Voltage Range = 2.7V to 4.2V
VIN maximum = 4.2V
VIN typical = 3.6V
VOUT1 = 300 mA maximum
VOUT2 = 150 mA maximum
System RESET Load = 10 k
Ω
8
4
1
2
3
RESET
GND
VDET
BATTERY
COUT1
1µF Ceramic
X5R
CIN
1µF
TC1301A
COUT2
1 µF Ceramic
X5R
Cbypass
10 nF Ceramic
Bypass
VIN
7
2.7V
to
4.2V
VOUT2
6
SHDN2
ON/OFF Control VOUT2
System RESET
2.8V @ 300 mA
1.8V
5
VOUT1
8
4
1
2
3
RESET
BATTERY
COUT1
1 µF Ceramic
X5R
CIN
1µF
TC1301B
COUT2
1µF Ceramic
X5R
Bypass
VIN
7
2.7V
to
4.2V
VOUT2
6
SHDN2
ON/OFF Control VOUT2
System RESET
2.8V @ 300 mA
1.8V
5
ON/OFF Control VOUT1
VOUT1
@ 150 mA
GND
@ 150 mA
SHDN1
P
LDO
V
IN MAX
)
()
V
OUT MIN
()
() I
OUT MAX
)
()
×
=
Where:
PLDO
=
LDO Pass device internal power
dissipation
VIN(MAX)
=
Maximum input voltage
VOUT(MIN)
=
LDO minimum output voltage
P
IGND
()
V
IN MAX
()
I
VIN
I
VDET
+
()
×
=
Where:
PI(GND)
=
Total current in ground pin
VIN(MAX)
=
Maximum input voltage
IVIN
=
Current flowing in the VIN pin with
no output current on either LDO
output
IVDET
=
Current in the VDET pin with
RESET loaded



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