LTC3890-2
7
38902f
TYPICAL PERFORMANCE CHARACTERISTICS
Total Input Supply Current
vs Input Voltage
EXTV
CC
Switchover and INTV
CC
Voltages vs Temperature
INTV
CC
Line Regulation
Maximum Current Sense Voltage
vs I
TH
Voltage
SENSE
Pin Input Bias Current
Maximum Current Sense
Threshold vs Duty Cycle
Current Limit
vs Feedback Voltage
Quiescent Current vs Temperature INTV
CC
vs Load Current
DUTY CYCLE (%)
0
MAXIMUM CURRENT SENSE VOLTAGE (mV)
50
40
60
70
80
38902 G15
30
20
20
40
50
100
80
60
10
30
90
70
I
LIM
= FLOAT
I
LIM
= INTV
CC
I
LIM
= GND
FEEDBACK VOLTAGE (MV)
0
MAXIMUM CURRENT SENSE VOLTAGE (mV)
40
60
800
38902 G16
20
0
200
400
500
80
30
50
10
70
600
100
300
700
I
LIM
= INTV
CC
I
LIM
= GND
I
LIM
= FLOAT
INPUT VOLTAGE (V)
0
SUPPLY CURRENT (µA)
200
300
20 30 35 40 45 50 55 60 651510525
38902 G10
150
100
50
250
NO LOAD
300µA LOAD
V
OUT
= 3.3V
FIGURE 13 CIRCUIT
TEMPERATURE (°C)
–75
4.0
EXTV
CC
AND INTV
CC
VOLTAGE (V)
4.2
4.6
4.8
5.0
6.0
5.4
–25
25 50 75
100
38902 G11
4.4
5.6
5.8
5.2
–50
0
125
150
INTV
CC
EXTV
CC
RISING
EXTV
CC
FALLING
INPUT VOLTAGE (V)
3.0
INTV
CC
VOLTAGE (V)
4.0
4.5
5.5
20 30 35 40 45 50 55 60 65151005 25
38902 G12
3.5
5.0
I
LOAD
= 10mA
V
SENSE
COMMON MODE VOLTAGE (V)
0
SENSE
CURRENT (µA)
20
38902 G14
400
300
10 15525
800
700
600
500
200
100
0
–100
TEMPERATURE (°C)
–75
QUIESCENT CURRENT (µA)
75
50250
38902 G17
60
50
–50 –25 75
45
30
40
35
80
70
65
55
100 125 150
V
IN
= 12V
LOAD CURRENT (mA)
0
INTV
CC
VOLTAGE (V)
5.25
40
38902 G18
4.50
20 60
4.00
5.50
5.00
4.75
4.25
80 100
EXTV
CC
= 5V
EXTV
CC
= 8.5V
EXTV
CC
= 0V
V
IN
= 12V
V
ITH
(V)
0
CURRENT SENSE THESHOLD (mV)
40
60
80
0.6 1.0
38902 G13
20
0
0.2 0.4
0.8 1.2 1.4
–20
–40
Burst Mode
OPERATION
PULSE-SKIPPING MODE
5% DUTY CYCLE
FORCED CONTINUOUS MODE
I
LIM
= FLOAT
I
LIM
= INTV
CC
I
LIM
= GND
LTC3890-2
8
38902f
TYPICAL PERFORMANCE CHARACTERISTICS
TRACK/SS Pull-Up Current
vs Temperature
Shutdown (RUN) Threshold
vs Temperature
Regulated Feedback Voltage
vs Temperature
SENSE
Pin Total Input Bias Current
vs Temperature
Shutdown Current
vs Input Voltage
Oscillator Frequency
vs Temperature
Undervoltage Lockout Threshold
vs Temperature
Oscillator Frequency
vs Input Voltage
Shutdown Current vs Temperature
INPUT VOLTAGE (V)
0
SHUTDOWN CURRENT (µA)
10
15
30
25
20 30 35 40 45 50 55 60 651510525
38902 G23
5
20
INPUT VOLTAGE (V)
344
OSCILLATOR FREQUENCY (kHz)
348
350
356
20 30 35 40 45 50 55 60 651510525
38902 G26
346
352
354
FREQ = GND
TEMPERATURE (°C)
–75
SENSE
CURRENT (µA)
50250
38902 G22
400
300
–25–50 75
800
700
600
500
200
100
0
–100
125100 150
V
OUT
> INTV
CC
+ 0.5V
V
OUT
< INTV
CC
– 0.5V
TEMPERATURE (°C)
–75
REGULATED FEEDBACK VOLTAGE (mV)
806
02550
38902 G21
800
796
–50 –25 75
794
792
808
804
802
798
100 125 150
TEMPERATURE (°C)
–75
FREQUENCY (kHz)
500
550
600
0 25 50 100
38902 G24
450
400
–50 –25
75 125 150
350
300
FREQ = GND
FREQ = INTV
CC
TEMPERATURE (°C)
–75
INTV
CC
VOLTAGE (V)
3.7
3.8
3.9
4.1
–25
75
100
38902 G25
3.6
4.2
4.0
–50
02550
125
150
FALLING
RISING
TEMPERATURE (°C)
8
SHUTDOWN CURRENT (µA)
12
14
22
20
25 50 75 100 125 150–25–75 –50 0
38902 G27
10
16
18
V
IN
= 12V
TEMPERATURE (°C)
–75
0.90
TRACK/SS CURRENT (µA)
0.95
1.00
1.05
1.10
–50 –25 0 755025
38902 G19
100 125 150
TEMPERATURE (°C)
–75
RUN PIN VOLTAGE (V)
1.30
1.35
1.40
05075
38902 G20
1.25
1.20
–50 –25
25 100 125 150
1.15
1.00
1.05
1.10
RUN1 FALLING
RUN2 RISING
RUN1 RISING
RUN2 FALLING
LTC3890-2
9
38902f
PIN FUNCTIONS
SENSE1
, SENSE2
(Pin 1, Pin 9): The (–) Input to the
Differential Current Comparators. When greater than
INTV
CC
– 0.5V, the SENSE
pin supplies current to the
current comparator.
FREQ (Pin 2): The frequency control pin for the internal
VCO. Connecting the pin to GND forces the VCO to a fixed
low frequency of 350kHz. Connecting the pin to INTV
CC
forces the VCO to a fixed high frequency of 535kHz.
Other frequencies between 50kHz and 900kHz can be
programmed using a resistor between FREQ and GND.
An internal 20µA pull-up current develops the voltage to
be used by the VCO to control the frequency.
PHASMD (Pin 3): Control Input to Phase Selector which
determines the phase relationships between control-
ler 1, controller 2 and the CLKOUT signal. Pulling this
pin to ground forces TG2 and CLKOUT to be out of phase
180° and 60° with respect to TG1. Connecting this pin to
INTV
CC
forces TG2 and CLKOUT to be out of phase 240°
and 120° with respect to TG1. Floating this pin forces TG2
and CLKOUT to be out of phase 180° and 90° with respect
to TG1. Refer to Table 1.
CLKOUT (Pin 4): Output clock signal available to daisy-
chain other controller ICs for additional MOSFET driver
stages/phases. The output levels swing from INTV
CC
to
ground.
PLLIN/MODE (Pin 5): External Synchronization Input to
Phase Detector and Forced Continuous Mode Input. When
an external clock is applied to this pin, the phase-locked
loop will force the rising TG1 signal to be synchronized
with the rising edge of the external clock. When not syn-
chronizing to an external clock, this input, which acts on
both controllers, determines how the LTC3890-2 operates
at light loads. Pulling this pin to ground selects Burst Mode
operation. An internal 100k resistor to ground also invokes
Burst Mode operation when the pin is floated. Tying this pin
to INTV
CC
forces continuous inductor current operation.
Tying this pin to a voltage greater than 1.2V and less than
INTV
CC
– 1.3V selects pulse-skipping operation.
SGND (Pins 6, Exposed Pad Pin 33): Small-signal ground
common to both controllers, must be routed separately
from high current grounds to the common (–) terminals
of the C
IN
capacitors. The exposed pad must be soldered
to PCB ground for rated thermal performance.
RUN1, RUN2 (Pin 7, Pin 8): Digital Run Control Inputs
for Each Controller. Forcing RUN1 below 1.16V or RUN2
below 1.20V shuts down that controller. Forcing both of
these pins below 0.7V shuts down the entire LTC3890-2,
reducing quiescent current to approximately 14µA.
INTV
CC
(Pin 19): Output of the Internal Linear Low Dropout
Regulator. The driver and control circuits are powered from
this voltage source. Must be decoupled to power ground
with a minimum of 4.7µF ceramic or other low ESR ca-
pacitor. Do not use the INTV
CC
pin for any other purpose.
EXTV
CC
(Pin 20): External Power Input to an Internal LDO
Connected to INTV
CC
. This LDO supplies INTV
CC
power,
bypassing the internal LDO powered from V
IN
whenever
EXTV
CC
is higher than 4.7V. See EXTV
CC
Connection in the
Applications Information section. Do not float or exceed
14V on this pin.
PGND (Pin 21): Driver Power Ground. Connects to the
sources of bottom (synchronous) N-channel MOSFETs
and the (–) terminal(s) of C
IN
.
V
IN
(Pin 22): Main Supply Pin. A bypass capacitor should
be tied between this pin and the signal ground pin.
BG1, BG2 (Pin 23, Pin 18): High Current Gate Drives
for Bottom (Synchronous) N-Channel MOSFETs. Voltage
swing at these pins is from ground to INTV
CC
.
BOOST1, BOOST2 (Pin 24, Pin 17): Bootstrapped Supplies
to the Topside Floating Drivers. Capacitors are connected
between the BOOST and SW pins and Schottky diodes are
tied between the BOOST and INTV
CC
pins. Voltage swing
at the BOOST pins is from INTV
CC
to (V
IN
+ INTV
CC
).
SW1, SW2 (Pin 25, Pin 16): Switch Node Connections
to Inductors.

LTC3890HUH-2#TRPBF

Mfr. #:
Manufacturer:
Analog Devices / Linear Technology
Description:
Switching Voltage Regulators 60V Low IQ, Dual Output Synchronous Step-Down Controller
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
T/T Paypal Visa MoneyGram Western Union