Receiver Enable Input Voltage...................... –0.3V to 6V
Driver Enable Input Voltage.......................... –0.3V to 6V
Driver Input Voltage ................................... –0.3V to 18V
Receiver Input Voltage ................................ –60V to 60V
Driver Output Voltage.................................. –60V to 60V
Receiver Output Voltage...................–0.3V to (V
CC
+ 6V)
Operating Temperature Range
LT1785C/LT1791C/
LT1785AC/LT1791AC.................................... 0°C to 70°C
LT1785I/LT1791I/
LT1785AI/LT1791AI .................................. –40°C to 85°C
LT1785H/LT1791H/
LT1785AH/LT1791AH ............................. –40°C to 125°C
Storage Temperature Range................... –65°C to 150°C
Lead Temperature (Soldering, 10 sec) .................. 300°C
PIN CONFIGURATION
TOP VIEW
TOP VIEW
RO 1
RE
2
DE 3
DI 4
N8 PACKAGE
8-LEAD PDIP
D
R
8
7
6
5
V
CC
B
A
GND
NC 1
RO 2
RE
3
DE 4
DI 5
GND 6
GND 7
N PACKAGE
14-LEAD PDIP
D
R
14 V
CC
13 NC
12 A
11 B
10 Z
9
8
Y
NC
S8 PACKAGE
8-LEAD PLASTIC SO
T
JMAX
= 150°C,
θ
JA
= 130°C/W (N8)
T
JMAX
= 150°C,
θ
JA
= 150°C/W (S8)
S PACKAGE
14-LEAD PLASTIC SO
T
JMAX
= 150°C,
θ
JA
= 130°C/W (N)
T
JMAX
= 150°C,
θ
JA
= 150°C/W (S)
ORDER INFORMATION
LEAD FREE FINISH
LT1785CN8#PBF
LT1785CS8#PBF
LT1785IN8#PBF
LT1785IS8#PBF
LT1785ACN8#PBF
LT1785ACS8#PBF
LT1785AIN8#PBF
LT1785AIS8#PBF
LT1785HN8#PBF
LT1785HS8#PBF
LT1785AHN8#PBF
LT1785AHS8#PBF
LT1791CN#PBF
LT1791CS#PBF
TAPE AND REEL
LT1785CN8#TRPBF
LT1785CS8#TRPBF
LT1785IN8#TRPBF
LT1785IS8#TRPBF
LT1785ACN8#TRPBF
LT1785ACS8#TRPBF
LT1785AIN8#TRPBF
LT1785AIS8#TRPBF
LT1785HN8#TRPBF
LT1785HS8#TRPBF
LT1785AHN8#TRPBF
LT1785AHS8#TRPBF
LT1791CN#TRPBF
LT1791CS#TRPBF
PART MARKING*
1785
1785
1785I
1785I
1785A
1785A
1785AI
1785AI
1785H
1785H
1785AH
1785AH
1791
1791
PACKAGE DESCRIPTION
8-Lead PDIP
8-Lead Plastic SO
8-Lead PDIP
8-Lead Plastic SO
8-Lead PDIP
8-Lead Plastic SO
8-Lead PDIP
8-Lead Plastic SO
8-Lead PDIP
8-Lead Plastic SO
8-Lead PDIP
8-Lead Plastic SO
14-Lead PDIP
14-Lead Plastic SO
TEMPERATURE RANGE
0°C to 70°C
0°C to 70°C
–40°C to 85°C
–40°C to 85°C
0°C to 70°C
0°C to 70°C
–40°C to 85°C
–40°C to 85°C
–40°C to 125°C
–40°C to 125°C
–40°C to 125°C
–40°C to 125°C
0°C to 70°C
0°C to 70°C
Rev. F
2
For more information
www.analog.com
LT1785/LT1785A/
LT1791/LT1791A
ORDER INFORMATION
LEAD FREE FINISH
LT1791IN#PBF
LT1791IS#PBF
LT1791ACN#PBF
LT1791ACS#PBF
LT1791AIN#PBF
LT1791AIS#PBF
LT1791HN#PBF
LT1791HS#PBF
LT1791AHN#PBF
LT1791AHS#PBF
AUTOMOTIVE PRODUCTS**
LEAD FREE FINISH
LT1785IS8#WPBF
LT1785AIS8#WPBF
LT1785HS8#WPBF
LT1785AHS8#WPBF
TAPE AND REEL
LT1785IS8#WTRPBF
LT1785AIS8#WTRPBF
LT1785HS8#WTRPBF
LT1785AHS8#WTRPBF
PART MARKING*
1785I
1785AI
1785H
1785AH
PACKAGE DESCRIPTION
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
TEMPERATURE RANGE
–40°C to 85°C
–40°C to 85°C
–40°C to 125°C
–40°C to 125°C
TAPE AND REEL
LT1791IN#TRPBF
LT1791IS#TRPBF
LT1791ACN#TRPBF
LT1791ACS#TRPBF
LT1791AIN#TRPBF
LT1791AIS#TRPBF
LT1791HN#TRPBF
LT1791HS#TRPBF
LT1791AHN#TRPBF
LT1791AHS#TRPBF
PART MARKING*
1791I
1791I
1791A
1791A
1791AI
1791AI
1791H
1791H
1791AH
1791AH
PACKAGE DESCRIPTION
14-Lead PDIP
14-Lead Plastic SO
14-Lead PDIP
14-Lead Plastic SO
14-Lead PDIP
14-Lead Plastic SO
14-Lead PDIP
14-Lead Plastic SO
14-Lead PDIP
14-Lead Plastic SO
TEMPERATURE RANGE
–40°C to 85°C
–40°C to 85°C
0°C to 70°C
0°C to 70°C
–40°C to 85°C
–40°C to 85°C
–40°C to 125°C
–40°C to 125°C
–40°C to 125°C
–40°C to 125°C
Contact the factory for parts specified with wider operating temperature ranges. *The temperature grade is identified by a label on the shipping container.
Tape and reel specifications.
Some packages are available in 500 unit reels through designated sales channels with #TRMPBF suffix.
**Versions
of this part are available with controlled manufacturing to support the quality and reliability requirements of automotive applications. These
models are designated with a #W suffix. Only the automotive grade products shown are available for use in automotive applications. Contact your
local Analog Devices account representative for specific product ordering information and to obtain the specific Automotive Reliability reports for
these models.
Rev. F
For more information
www.analog.com
3
LT1785/LT1785A/
LT1791/LT1791A
DC ELECTRICAL CHARACTERISTICS
SYMBOL PARAMETER
V
OD1
V
OD2
V
OD
V
OC
∆|V
OC
|
V
IH
V
IL
I
IN1
I
IN2
V
TH
∆V
TH
V
OH
V
OL
Differential Driver Output Voltage (Unloaded)
Differential Driver Output Voltage (With Load)
The
l
denotes the specifications which apply over the full operating
temperature range, otherwise specifications are at T
A
= 25°C, V
CC
= 5V.
CONDITIONS
I
O
= 0
R = 50Ω (RS422), Figure 1
R = 27Ω (RS485), Figure 1
R = 18Ω
R = 27Ω or R = 50Ω, Figure 1
R = 27Ω or R = 50Ω, Figure 1
R = 27Ω or R = 50Ω, Figure 1
DI, DE,
RE
DI, DE,
RE
DI, DE,
RE
V
IN
= 12V
V
IN
= –7V
–60V ≤ V
IN
≤ 60V
LT1785/LT1791: –7V ≤ V
CM
≤ 12V
LT1785A/LT1791A: –7V ≤ V
CM
≤ 12V
–7V < V
CM
< 12V
I
O
= –400µA, V
ID
= 200mV
I
O
= 1.6mA, V
ID
= –200mV
RE
> 2V or Power Off
–7V ≤ V
CM
≤ 12V
– 60V ≤ V
CM
≤ 60V
–7V ≤ V
CM
≤ 12V
V
OUT
= HIGH, Force V
O
= –7V
V
OUT
= LOW, Force V
O
= 12V
V
O
= 60V
V
O
= –60V
0V ≤ V
O
≤ V
CC
–7V ≤ V
O
≤ 12V
–60V ≤ V
O
≤ 60V
No Load,
RE
= 0V, DE = 5V
No Load,
RE
= 5V, DE = 5V
No Load,
RE
= 0V, DE = 0V
No Load,
RE
= 5V, DE = 0V
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
MIN
2.0
1.5
1.2
TYP
4.1
2.70
2.45
2.2
MAX
5
UNITS
V
V
V
V
Change in Magnitude of Driver Differential Output
Voltage for Complementary Output States
Driver Common Mode Output Voltage
Change in Magnitude of Driver Common Mode Output
Voltage for Complementary Output States
Input High Voltage
Input Low Voltage
Input Current
Input Current (A, B); (LT1791 or LT1785 with DE = 0V)
0.2
2
2.5
3
0.2
2
0.8
5
–0.15
–6
–0.2
–0.2
20
3.5
–1
85
50
35
35
–6
–0.2
–6
5.5
5.5
4.5
0.2
125
125
90
0.25
250
250
6
±35
0.3
6
9
9
8
0.3
4
0.3
0.5
1
0.15
–0.08
0.3
6
0.2
0
V
V
V
V
V
µA
mA
mA
mA
V
V
mV
V
V
µA
kΩ
kΩ
kΩ
mA
mA
mA
mA
mA
mA
mA
mA
mA
mA
mA
Differential Input Threshold Voltage for Receiver
Receiver Input Hysteresis
Receiver Output High Voltage
Receiver Output Low Voltage
Three-State (High Impedance) Output Current at
Receiver 0V < V
OUT
< 6V
R
IN
Receiver Input Resistance (LT1791)
LT1785
RS485 Unit Load
I
SC
Driver Short-Circuit Current
Driver Output Fault Current
Receiver Short-Circuit Current
Driver Three-State Output Current
l
l
l
l
l
l
l
l
l
l
l
I
CC
Supply Current
Rev. F
4
For more information
www.analog.com
LT1785/LT1785A/
LT1791/LT1791A
The
l
denotes the specifications which apply over the full operating
temperature range, otherwise specifications are at T
A
= 25°C, V
CC
= 5V.
SYMBOL
t
PLH
t
PHL
t
SKEW
t
r
, t
f
t
ZH
t
ZL
t
LZ
t
HZ
t
PLH
t
PHL
t
SKD
t
ZL
t
ZH
t
LZ
t
HZ
f
MAX
t
SHDN
t
ZH(SHDN)
t
ZL(SHDN)
t
ZH(SHDN)
t
ZL(SHDN)
PARAMETER
Driver Input to Output
Driver Input to Output
Driver Output to Output
Driver Rise or Fall Time
Driver Enable to Output High
Driver Enable to Output Low
Driver Disable Time from Low
Driver Disable Time from High
Receiver Input to Output
Receiver Input to Output
Differential Receiver Skew
Receiver Enable to Output Low
Receiver Enable to Output High
Receiver Disable from Low
Receiver Disable from High
Maximum Data Rate
Time to Shut Down
Driver Enable from Shutdown to Output High
Driver Enable from Shutdown to Output Low
Receiver Enable from Shutdown to Output High
Receiver Enable from Shutdown to Output Low
Figures 2, 6, 8
Figures 2, 6;
RE
= 5V
Figures 2, 6;
RE
= 5V
Figures 2, 8; DE = 0V
Figures 2, 8; DE = 0V
Figures 2, 8
Figures 2, 8
Figures 2, 8
Figures 2, 8
l
l
l
l
l
SWITCHING CHARACTERISTICS
CONDITIONS
Figures 3, 5
Figures 3, 5
Figures 3, 5
Figures 3, 5
Figures 4, 6
Figures 4, 6
Figures 4, 6
Figures 4, 6
Figures 3, 7
Figures 3, 7
l
l
l
l
l
l
l
l
l
MIN
TYP
700
700
100
MAX
2000
2000
2000
3000
3000
5000
5000
900
900
1000
1000
1000
1000
UNITS
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
kbps
µs
µs
µs
µs
µs
200
800
500
800
200
800
400
400
200
300
300
400
400
250
3
12
12
4
4
Note 1:
Stresses beyond those listed under Absolute Maximum Ratings
may cause permanent damage to the device. Exposure to any Absolute
Maximum Rating condition for extended periods may affect device
Has anyone tried to install Xming server on Windows computer, then use putty to SSH to the board and then use Xming to display the GUI? Or is there any other way to display GUI program on Windows comp...
[i=s] This post was last edited by dj狂人 on 2015-5-19 22:09[/i] [align=left] [b][font=宋体][size=18.0pt]emWin5.22[/size][/font][/b][b][font=宋体][size=18.0pt] transplanted on STM32[/size][/font][/b][/align...
This is a great design by Russian designer Hop Picker (probably his pseudonym). On the super clean surface, there is only a thin red line that can rotate around the center of the circle, acting as a p...
[align=left]I used BlueNRG-1 to implement a single-point touch screen before. Recently, I started playing the mobile game "PUBG Mobile". When I watched others play, I saw that the masters' operations ...
The PICTURE control under VC has 5 options, among which you can choose the RECTANGE option to make the video window object, but there is no such option under EVC. The PICTURE control under EVC has onl...
The TIA Portal software's shift instructions shift the contents of an accumulator bit by bit to the left or right. The number of bits shifted is determined by N. A left shift of N bits multiplies t...[Details]
Reflow soldering is a critical process in electronics assembly production, and the cleanliness of the reflow oven has a direct impact on product quality. Dust and residue accumulation within the ov...[Details]
introduction
Bluetooth technology is a short-range wireless communication technology designed to replace wired cables. It is a wireless communication technology standard developed by the SIG, ...[Details]
In recent years, the government has increasingly supported electric vehicles, and the number of electric vehicles has increased. Observant drivers will notice that there are many more green license...[Details]
On August 25th, Apple's expansion in India encountered new troubles. According to Bloomberg, Foxconn Technology Group has recalled approximately 300 Chinese engineers from India, further hindering ...[Details]
When discussing autonomous driving technology, there are often two extremes: on the one hand, there's the vision of "fully autonomous driving," while on the other, there's concern about potential s...[Details]
1. Multi-channel DAC technology bottleneck
Currently,
the development of multi-channel DAC technology focuses on two core challenges.
First, industrial applications urgently ...[Details]
Over the past decade, the narrative surrounding fuel vehicles has been one of decline and replacement. Under the onslaught of new energy vehicles, traditional automakers have been forced to acceler...[Details]
Batteries, at the core of new energy vehicles, are crucial to vehicle performance and range. Existing automotive batteries are categorized into lead-acid and lithium batteries. Currently, new energ...[Details]
Plug-in hybrid vehicles (PHEVs) utilize two powertrains. Their pure electric range is typically inferior to that of pure electric vehicles, often reaching less than half that. Currently, mainstream...[Details]
There are more and more electric vehicles. Recently, I have heard some news about electric vehicles performing poorly in winter. I would like to briefly introduce whether heat pump technology is mo...[Details]
New version helps developers build secure and trustworthy embedded systems
Shanghai, China—August 21, 2025—
QNX, a division of BlackBerry Ltd., today announced the release of QNX...[Details]
For self-driving cars, LiDAR is the sensory organ that allows them to "see the road." Simply put, its operating principle involves sending out a laser beam, receiving the echo, and ultimately gener...[Details]
introduction
The rapid development of science and technology has enabled mankind to quickly move from the Internet era to the big data era. As a result, the amount of data generated by people ...[Details]
A new multi-layer diffractive optical processor can block images in one direction while allowing images in another direction to pass through.
Researchers at the University of California,...[Details]