参数资料
型号: DC859A
厂商: Linear Technology
文件页数: 6/32页
文件大小: 0K
描述: EVAL BOARD FOR LTC4267
设计资源: DC859A Design File
DC859A Schematic
标准包装: 1
主要目的: 电源管理,以太网供电(POE)
嵌入式:
已用 IC / 零件: LTC4267
已供物品:
LTC4267
14
4267fc
PWRGD
C1
5F
MIN
VPORTN
POUT
1.125V
300k
R9
100k
LTC4267
THERMAL SHUTDOWN
UVLO
4267 F06
TO
PSE
+
+
ITH/RUN
PGND
the LTC4267 will attempt to quickly charge capacitor C1
using an internal secondary current limit circuit. In this
scenario, the PSE current limit should provide the overall
limit for the circuit. For slower rising inputs, the 375mA
current limit in the LTC4267 will set the charge rate of the
capacitor C1. In either case, the PWRGD signal may go
inactive briey while the capacitor is charged up to the
new line voltage. In the design of a PD, it is necessary
to determine if a step in the input voltage will cause the
PWRGD signal to go inactive and how to respond to this
event. In some designs, it may be desirable to lter the
PWRGD signal so that intermittent power bad conditions
are ignored. Figure 7 demonstrates a method to insert a
lowpass lter on the power good interface.
For PD designs that use a large load capacitor and also
consume a lot of power, it is important to delay activation
of the switching regulator with the PWRGD signal. If the
regulator is not disabled during the current-limited turn-on
sequence, the PD circuitry will rob current intended for
charging up the load capacitor and create a slow rising
input, possibly causing the LTC4267 to go into thermal
shutdown.
The PWRGD pin connects to an internal open drain, 100V
transistor capable of sinking 1mA. Low impedance to
VPORTN indicates power is good. PWRGD is high imped-
ance during signature and classication probing and in
the event of a thermal overload. During turn-off, PWRGD
is deactivated when the input voltage drops below 30V.
In addition, PWRGD may go active briey at turn-on for
fast rising input waveforms. PWRGD is referenced to the
VPORTN pin and when active, will be near the VPORTN po-
tential. Connect the PWRGD pin to the switching regulator
circuitry as shown in Figure 7.
Figure 6. LTC4267 Power Good
APPLICATIO S I FOR ATIO
WU
UU
Figure 7. Power Good Interface Examples
PD Interface Thermal Protection
The LTC4267 PD Interface includes thermal overload
protection in order to provide full device functionality
in a miniature package while maintaining safe operat-
ing temperatures. Several factors create the possibility
of signicant power dissipation within the LTC4267. At
turn-on, before the load capacitor has charged up, the
instantaneous power dissipated by the LTC4267 can be
as much as 10W. As the load capacitor charges up, the
power dissipation in the LTC4267 will decrease until it
reaches a steady-state value dependent on the DC load
current. The size of the load capacitor determines how
fast the power dissipation in the LTC4267 will subside. At
room temperature, the LTC4267 can typically handle load
capacitors as large as 800F without going into thermal
shutdown. With large load capacitors, the LTC4267 die
temperature will increase by as much as 50°C during a
single turn-on sequence. If for some reason power were
removed from the part and then quickly reapplied so that
the LTC4267 had to charge up the load capacitor again, the
temperature rise would be excessive if safety precautions
were not implemented.
The LTC4267 PD interface protects itself from thermal
damage by monitoring the die temperature. If the die
4267 F07
LTC4267
VPORTN
POUT
PGND
VPORTP
ITH/RUN
TO
PSE
–48V
+
C1
5F
100V
ALTERNATE ACTIVE-HIGH ENABLE FOR PVCC PIN
SEE APPLICATIONS INFORMATION SECTION
ACTIVE-HIGH ENABLE FOR RUN PIN WITH INTERNAL PULL-UP
R18
10k
R9
100k
D6
MMBD4148
C15
0.047F
Q1
FMMT2222
LTC3803
GND
OPTIONAL
AUXILIARY
SWITCHING
REGULATOR
PWRGD
PGND
LTC4267
VPORTN
POUT
PGND
VPORTP
PVCC
TO
PSE
–48V
+
C1
5F
100V
R18
10k
R9
100k
D6
MMBD4148
C15
0.047F
Q1
FMMT2222
PWRGD
PGND
RSTART
CPVCC
C17
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