RUN1, RUN2 Voltages ................................ –0.3V to 65V
SENSE1
+
, SENSE2
+
, SENSE1
–
SENSE2
–
Voltages ................................. –0.3V to 65V
PLLIN/MODE, FREQ Voltages ...................... –0.3V to 6V
EXTV
CC
Voltage ......................................... –0.3V to 14V
I
TH1
, I
TH2
, V
FB1
, V
FB2
Voltages ..................... –0.3V to 6V
DRVSET, DRVUV Voltages ........................... –0.3V to 6V
TRACK/SS1, TRACK/SS2 Voltages .............. –0.3V to 6V
PGOOD1, PGOOD2 Voltages
(LTC3892/LTC3892-2) ............................. –0.3V to 6V
VPRG1, ILIM Voltages
(LTC3892/LTC3892-2) ............................. –0.3V to 6V
Operating Junction Temperature Range (Note 2)
LTC3892E, LTC3892I,
LTC3892E-1, LTC3892I-1,
LTC3892E-2, LTC3892I-2 ................... –40°C to 125°C
LTC3892H,
LTC3892H-1, LTC3892H-2 ................. –40°C to 150°C
LTC3892MP, LTC3892MP-1,
LTC3892MP-2 .................................... –55°C to 150°C
Storage Temperature Range .................. –65°C to 150°C
PIN CONFIGURATION
LTC3892/LTC3892-2
SENSE1
–
SENSE1
+
TOP VIEW
TRACK/SS1
VPRG1
LTC3892-1
ITH1
SW1
TG1
V
FB1
SENSE1
+
24
BOOST1
23
BG1
22
V
IN
33
GND
21
EXTV
CC
20
DRV
CC
19
BG2
18
BOOST2
17
SW2
9 10 11 12 13 14 15 16
SENSE2
–
SENSE2
+
V
FB2
ITH2
DRVUV
DRVSET
TRACK/SS2
TG2
SENSE1
–
FREQ
PLLIN/MODE
INTV
CC
RUN1
RUN2
SENSE2
–
1
2
3
4
5
6
7
8
9
10
29
GND
TOP VIEW
28
TRACK/SS1
27
TG1
26
SW1
25
BOOST1
24
BG1
23
V
IN
22
EXTV
CC
21
DRV
CC
20
BG2
19
BOOST2
18
SW2
17
TG2
16
TRACK/SS2
15
DRVSET
ITH1
V
FB1
32 31 30 29 28 27 26 25
FREQ
PLLIN/MODE
PGOOD1
PGOOD2
INTV
CC
RUN1
RUN2
ILIM
1
2
3
4
5
6
7
8
SENSE2
+
11
V
FB2
12
ITH2
13
DRVUV
14
UH PACKAGE
32-LEAD (5mm
×
5mm) PLASTIC QFN
T
JMAX
= 150°C,
θ
JA
= 44°C/W
EXPOSED PAD (PIN 33) IS GND, MUST BE CONNECTED TO GND
FE PACKAGE
28-LEAD PLASTIC TSSOP
T
JMAX
= 150°C,
θ
JA
= 30°C/W
EXPOSED PAD (PIN 29) IS GND, MUST BE CONNECTED TO GND
2
38921fc
For more information
www.linear.com/LTC3892
LTC3892/
LTC3892-1/LTC3892-2
ORDER INFORMATION
LEAD FREE FINISH
LTC3892EUH#PBF
LTC3892IUH#PBF
LTC3892HUH#PBF
LTC3892MPUH#PBF
LTC3892EFE-1#PBF
LTC3892IFE-1#PBF
LTC3892HFE-1#PBF
LTC3892MPFE-1#PBF
LTC3892EUH-2#PBF
LTC3892IUH-2#PBF
LTC3892HUH-2#PBF
LTC3892MPUH-2#PBF
TAPE AND REEL
LTC3892EUH#TRPBF
LTC3892IUH#TRPBF
LTC3892HUH#TRPBF
LTC3892MPUH#TRPBF
LTC3892EFE-1#TRPBF
LTC3892IFE-1#TRPBF
LTC3892HFE-1#TRPBF
LTC3892MPFE-1#TRPBF
LTC3892EUH-2#TRPBF
LTC3892IUH-2#TRPBF
LTC3892HUH-2#TRPBF
http://www.linear.com/product/LTC3892#orderinfo
PART MARKING*
3892
3892
3892
3892
LTC3892FE-1
LTC3892FE-1
LTC3892FE-1
LTC3892FE-1
38922
38922
38922
PACKAGE DESCRIPTION
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
28-Lead Plastic TSSOP
28-Lead Plastic TSSOP
28-Lead Plastic TSSOP
28-Lead Plastic TSSOP
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
32-Lead (5mm
×
5mm) Plastic QFN
TEMPERATURE RANGE
–40°C to 125°C
–40°C to 125°C
–40°C to 150°C
–55°C to 150°C
–40°C to 125°C
–40°C to 125°C
–40°C to 150°C
–55°C to 150°C
–40°C to 125°C
–40°C to 125°C
–40°C to 150°C
–55°C to 150°C
LTC3892MPUH-2#TRPBF 38922
Consult LTC Marketing for parts specified with wider operating temperature ranges. *The temperature grade is identified by a label on the shipping container.
For more information on lead free part marking, go to:
http://www.linear.com/leadfree/
For more information on tape and reel specifications, go to:
http://www.linear.com/tapeandreel/
.
Some packages are available in 500 unit reels through
designated sales channels with #TRMPBF suffix.
38921fc
For more information
www.linear.com/LTC3892
3
LTC3892/
LTC3892-1/LTC3892-2
The
l
denotes the specifications which apply over the specified operating
junction temperature range, otherwise specifications are at T
A
= 25°C (Note 2). V
IN
= 12V, V
RUN1,2
= 5V, V
EXTVCC
= 0V, V
DRVSET
= 0V,
VPRG1 = FLOAT unless otherwise noted.
SYMBOL
V
IN
V
FB1
PARAMETER
Input Supply Operating Voltage Range
Channel 1 Regulated Feedback
Voltage
(Note 4) ITH1 Voltage = 1.2V
0°C to 85°C, VPRG1 = FLOAT (LTC3892/LTC3892-2) or LTC3892-1
VPRG1 = FLOAT (LTC3892/LTC3892-2) or LTC3892-1
l
l
VPRG1 = 0V (LTC3892/LTC3892-2)
l
VPRG1 = INTV
CC
(LTC3892/LTC3892-2)
(Note 4) ITH2 Voltage = 1.2V
0°C to 85°C
l
ELECTRICAL CHARACTERISTICS
CONDITIONS
MIN
4.5
0.792
0.788
3.234
4.890
0.792
0.788
TYP
MAX
60
UNITS
V
V
V
V
V
V
V
nA
µA
µA
µA
%/V
%
%
mmho
mA
0.800
0.800
3.3
5.0
0.800
0.800
–2
–0.002
4
4
0.002
0.808
0.812
3.366
5.110
0.808
0.812
±50
±0.05
6
6
0.02
0.1
–0.1
V
FB2
I
FB2
I
FB1
Channel 2 Regulated Feedback
Voltage
Channel 2 Feedback Current
Channel 1 Feedback Current
(Note 4)
(Note 4)
VPRG1 = FLOAT (LTC3892/LTC3892-2) or LTC3892-1
VPRG1 = 0V (LTC3892/LTC3892-2)
VPRG1 = INTV
CC
(LTC3892/LTC3892-2)
(Note 4) V
IN
= 4.5V to 60V
(Note 4) Measured in Servo Loop,
∆ITH
Voltage = 1.2V to 0.7V
(Note 4) Measured in Servo Loop,
∆ITH
Voltage = 1.2V to 2V
l
l
V
REFLNREG
V
LOADREG
Reference Voltage Line Regulation
Output Voltage Load Regulation
0.01
–0.01
2
1.6
g
m1,2
I
Q
Transconductance Amplifier g
m
Input DC Supply Current
(Note 4) ITH1,2 = 1.2V, Sink/Source 5µA
(Note 5) V
DRVSET
= 0V
Pulse-Skipping or Forced Continuous RUN1 = 5V and RUN2 = 0V or
Mode (One Channel On)
RUN2 = 5V and RUN1 = 0V,
V
FB1,2
= 0.83V (No Load)
Pulse-Skipping or Forced Continuous RUN1,2 = 5V, V
FB1,2
= 0.83V (No Load)
Mode (Both Channels On)
Sleep Mode (One Channel On)
RUN1 = 5V and RUN2 = 0V or
RUN2 = 5V and RUN1 = 0V,
V
FB1,2
= 0.83V (No Load)
RUN1,2 = 5V, V
FB1,2
= 0.83V (No Load)
RUN1,2 = 0V
DRV
CC
Ramping Up
DRVUV = 0V
DRVUV = INTV
CC
DRV
CC
Ramping Down
DRVUV = 0V
DRVUV = INTV
CC
V
OVL1,2
I
SENSE1,2
+
I
SENSE1,2
–
DF
MAX(TG)
I
TRACK/SS1,2
Feedback Overvoltage Protection
SENSE
+
Pin Current
SENSE
–
Pins Current
Maximum Duty Factor for TG
Soft-Start Charge Current
V
OUT1,2
< V
INTVCC
– 0.5V
V
OUT1,2
> V
INTVCC
+ 0.5V
In Dropout, FREQ = 0V
V
TRACK/SS1,2
= 0V
97.5
8
Measured at V
FB1,2
Relative to Regulated V
FB1,2
(LTC3892/LTC3892-1)
l
l
l
l
l
2.8
29
55
mA
µA
Sleep Mode (Both Channels On)
Shutdown
UVLO
Undervoltage Lockout
34
3.6
4.0
7.5
3.6
6.4
7
3.8
6.7
10
55
10
4.2
7.8
4.0
7.0
13
±1
µA
µA
V
V
V
V
%
µA
µA
µA
%
µA
700
99
10
±1
12
4
38921fc
For more information
www.linear.com/LTC3892
LTC3892/
LTC3892-1/LTC3892-2
The
l
denotes the specifications which apply over the specified operating
junction temperature range, otherwise specifications are at T
C8051F320+OLED+SHT21 temperature sensor solutionDataset:OLED partOLED1332 Circuit Board PackageInterface technology and application between ssd1332 display controller and 8051 microcontroller51 Test P...
I used the compiled eboot to download nk.bin, but it always shows Checksum failure on record, ABORT!!! ****** I don't know what the reason is? Is it caused by the instability of cs8900a? My platform i...
There are two basic sections in the CMD file: the initialization section and the non-initialization section. The initialization section contains codes and constants that must be valid after the DSP is...
These days I have seen many students who don’t know how to learn 51 single-chip microcomputers. It is not difficult to learn single-chip microcomputers well. Single-chip microcomputers are a very prac...
Most of the houses we live in now are elevator buildings, mainly because it is more convenient to go up and down the stairs! It can also make life more comfortable. It even helps to increase the ad...[Details]
The most significant feature of IPS panels is that both electrodes are located on the same surface, unlike other LCD panels, which have electrodes arranged on top and bottom surfaces in a three-dim...[Details]
Since the beginning of this year, price wars have intensified, new models have been launched one after another, used cars with zero kilometers have become a hot topic, and the industry's internal c...[Details]
On August 22, according to the Ministry of Industry and Information Technology's official website, my country's first mandatory national standard for the control of hazardous substances in electric...[Details]
While the current industry consensus is that autonomous vehicles are robots and that their systems are managed using robotics-developed thinking, there are also cases where autonomous driving is ac...[Details]
Tires are a very important component for cars. They are related to the driving experience of the vehicle. We are almost inseparable from cars in our daily lives. For tires, according to the role of...[Details]
Electric vehicles are powered by electricity, and charging is a device that supplements the vehicle's energy source. It is common to need to recharge the vehicle when driving. But can you charge th...[Details]
Reflow soldering is one of the most commonly used methods in electronics manufacturing, allowing for the soldering of large numbers of components in a relatively short time. However, any experience...[Details]
The MCX E series is the most reliability- and safety-focused series in NXP's extensive MCX product portfolio.
With the launch of this series, NXP has further enriched its 5V-compatible MCU pr...[Details]
In the period after the switching power supply achieved the "20 kHz" revolution in the 1970s, although improvements and enhancements were made in circuit technology, the development level of the se...[Details]
A pure sine wave inverter has a good output waveform with very low distortion, and its output waveform is essentially the same as the AC waveform of the mains power grid. In fact, the AC power prov...[Details]
As a pioneer in the new smart home concept, robot vacuums have captured a significant market share. Robot vacuums, also known as automatic sweepers, smart vacuums, or robot vacuums, are smart home ...[Details]
"I want to ask why there are so many manufacturers making mobile phone CPUs, but only Intel and AMD make computer CPUs?"
The progress of domestic PC CPU production has disappointed many ...[Details]
AI distributed rendering architecture improves mobile phone rendering capabilities, and game performance tests can check frame generation indicators in real time
Shanghai, China, Aug...[Details]
In camera and display systems, the demand for high-performance and low-power data interfaces is driving continuous technological evolution. The evolution of MIPI D-PHY and MIPI C-PHY clearly ...[Details]