参数资料
型号: LT3837IFE#TRPBF
厂商: LINEAR TECHNOLOGY CORP
元件分类: 稳压器
英文描述: SWITCHING CONTROLLER, 110 kHz SWITCHING FREQ-MAX, PDSO16
封装: 4.40 MM, LEAD FREE, PLASTIC, TSSOP-16
文件页数: 8/28页
文件大小: 247K
代理商: LT3837IFE#TRPBF
LT3837
16
3837fc
APPLICATIONS INFORMATION
Setting Feedback Resistive Divider
Use the equation developed in the Operation section for
the feedback divider.
It is recommended that the Thevenin impedance of the
resistors on the FB Pin is roughly 3k for bias current
cancellation and other reasons.
For the example using primary winding sensing if
ESR = 0.002 and RDS(ON) = 0.004 then:
R
k
1
3
1 237
3 3 10
0 002 0 004
13
=
+
(
()
.
..
.
/
–.
.
0 7
22 75
=
k
So, choose 22.1k.
Current Sense Resistor Considerations
The external current sense resistor is used to control peak
primary switch current, which controls a number of key
converter characteristics including maximum power and
external component ratings. Use a noninductive current
sense resistor (no wire-wound resistors). Mounting the
resistor directly above an unbroken ground plane con-
nected with wide and short traces keeps stray resistance
and inductance low.
The dual sense pins allow for a fully Kelvined connection.
Make sure that SENSE+ and SENSEare isolated and con-
nect close to the sense resistor to preserve this.
Peak current occurs at 98mV of sense voltage VSENSE. So
the nominal sense resistor is VSENSE/IPK. For example, a
peak switch current of 10A requires a nominal sense resistor
of 0.010Ω. Note that the instantaneous peak power in the
sense resistor is 1W, and that it is rated accordingly. The
use of parallel resistors can help achieve low resistance,
low parasitic inductance and increased power capability.
Size RSENSE using worst-case conditions, minimum LP,
VSENSE and maximum VIN. Continuing the example, let us
assume that our worst-case conditions yield an IPK 10%
above nominal so IPK = 10.41A . If there is a 5% tolerance
on RSENSE and minimum VSENSE = 80mV, then RSENSE
105% = 88mV/10.41A and nominal RSENSE = 8.05mΩ.
Round to the nearest available lower value 8.0mΩ.
Selecting the Load Compensation Resistor
The expression for RCMP was derived in the Operation
section for primary winding sensing as:
RK
RDC
ESR R
RN
R
CMP
SENSE
DS ON
SP
=
()
+
=
1
()
S
S OUT
()
Continuing the example:
K
V
VEff
OUT
IN
1
33
988
0 417
=
= ()=
=
.
%
.
If ESR 0
0 002
0 004
0 417
80
1
..
.
()
Ω=
Ω
=
Ω
and R
R
m
DS ON
CMP
0
052
0 002
0 004
22 1
0 33
193
.
..
.
()
Ω+
Ω
k
This value for RCMP is a good starting point, but empiri-
cal methods are required for producing the best results.
This is because several of the required input variables are
difcult to estimate precisely. For instance, the ESR term
above includes that of the transformer secondary, but its
effective ESR value depends on high frequency behavior,
not simply DC winding resistance. Similarly, K1 appears
as a simple ratio of VIN to VOUT times (differential) ef-
ciency, but theoretically estimating efciency is not a
simple calculation.
The suggested empirical method is as follows:
1. Build a prototype of the desired supply including the
actual secondary components.
2. Temporarily ground the CCMP pin to disable the load
compensation function. Measure output voltage while
sweeping output current over the expected range.
Approximate the voltage variation as a straight line,
ΔVOUT/ΔIOUT = RS(OUT).
3. Calculate a value for the K1 constant based on VIN, VOUT
and the measured (differential) efciency.
4. Compute:
RK
R
R N
orN
CMP
SENSE
S OUT
SP
SF
= 11
()
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