LT1999C ..............................................–40°C to 85°C
LT1999I................................................–40°C to 85°C
LT1999H ............................................ –40°C to 125°C
LT1999MP ......................................... –55°C to 150°C
Specified Temperature Range (Note 6)
LT1999C .................................................. 0°C to 70°C
LT1999I................................................–40°C to 85°C
LT1999H ............................................ –40°C to 125°C
LT1999MP ......................................... –55°C to 150°C
Junction Temperature ........................................... 150°C
Storage Temperature Range .................. –65°C to 150°C
pin conFiguraTion
TOP VIEW
TOP VIEW
+IN 2
–IN 3
V
+
4
V
+
1
8
7
6
5
SHDN
OUT
REF
GND
V
+
1
+IN 2
–IN 3
V
+
4
8
7
6
5
SHDN
OUT
REF
GND
MS8 PACKAGE
8-LEAD PLASTIC MSOP
T
JMAX
= 150°C,
Θ
JA
= 300°C/W
S8 PACKAGE
8-LEAD PLASTIC SO
T
JMAX
= 150°C,
Θ
JA
= 190°C/W
orDer inForMaTion
LEAD FREE FINISH
LT1999CMS8-10#PBF
LT1999IMS8-10#PBF
LT1999HMS8-10#PBF
LT1999MPMS8-10#PBF
LT1999CS8-10#PBF
LT1999IS8-10#PBF
LT1999HS8-10#PBF
LT1999MPS8-10#PBF
LT1999CMS8-20#PBF
LT1999IMS8-20#PBF
LT1999HMS8-20#PBF
LT1999MPMS8-20#PBF
TAPE AND REEL
LT1999CMS8-10#TRPBF
LT1999IMS8-10#TRPBF
LT1999HMS8-10#TRPBF
LT1999MPMS8-10#TRPBF
LT1999CS8-10#TRPBF
LT1999IS8-10#TRPBF
LT1999HS8-10#TRPBF
LT1999MPS8-10#TRPBF
LT1999CMS8-20#TRPBF
LT1999IMS8-20#TRPBF
LT1999HMS8-20#TRPBF
LT1999MPMS8-20#TRPBF
PART MARKING*
LTFPB
LTFPB
LTFPB
LTFQP
199910
199910
199910
99MP10
LTFNZ
LTFNZ
LTFNZ
LTFQQ
PACKAGE DESCRIPTION
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
SPECIFIED TEMPERATURE RANGE
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
1999fb
2
LT1999-10/LT1999-20/
LT1999-50
orDer inForMaTion
LEAD FREE FINISH
LT1999CS8-20#PBF
LT1999IS8-20#PBF
LT1999HS8-20#PBF
LT1999MPS8-20#PBF
LT1999CMS8-50#PBF
LT1999IMS8-50#PBF
LT1999HMS8-50#PBF
LT1999MPMS8-50#PBF
LT1999CS8-50#PBF
LT1999IS8-50#PBF
LT1999HS8-50#PBF
LT1999MPS8-50#PBF
TAPE AND REEL
LT1999CS8-20#TRPBF
LT1999IS8-20#TRPBF
LT1999HS8-20#TRPBF
LT1999MPS8-20#TRPBF
LT1999CMS8-50#TRPBF
LT1999IMS8-50#TRPBF
LT1999HMS8-50#TRPBF
LT1999MPMS8-50#TRPBF
LT1999CS8-50#TRPBF
LT1999IS8-50#TRPBF
LT1999HS8-50#TRPBF
LT1999MPS8-50#TRPBF
PART MARKING*
199920
199920
199920
99MP20
LTFPC
LTFPC
LTFPC
LTFQR
199950
199950
199950
99MP50
PACKAGE DESCRIPTION
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
8-Lead Plastic SO
SPECIFIED TEMPERATURE RANGE
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
0°C to 70°C
–40°C to 85°C
–40°C to 125°C
–55°C to 150°C
Consult LTC Marketing for parts specified with wider operating temperature ranges. *The temperature grade is identified by a label on the shipping container.
Consult LTC Marketing for information on non-standard lead based finish parts.
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/
The
l
denotes the specifications which apply over the full operating
temperature range, 0°C < T
A
< 70°C for C-grade parts, –40°C < T
A
< 85°C for I-grade parts, and –40°C < T
A
< 125°C for H-grade parts,
otherwise specifications are at T
A
= 25°C. V
+
= 5V, GND = 0V, V
CM
= 12V, V
REF
= floating, V
SHDN
= floating, unless otherwise specified.
See Figure 2.
SYMBOL
V
SENSE
V
CM
R
IN(DIFF)
R
INCM
V
OSI
ΔV
OSI
/ΔT
A
V
A
V
Error
I
B
I
OS
PSRR
PARAMETER
Full-Scale Input Sense Voltage (Note 7)
V
SENSE
= V
+IN
– V
–IN
CM Input Voltage Range
Differential Input Impedance
CM Input Impedance
Input Referred Voltage Offset
l
elecTrical characTerisTics
CONDITIONS
LT1999-10
LT1999-20
LT1999-50
ΔV
INDIFF
= ±2V/Gain
ΔV
CM
= 5.5V to 80V
ΔV
CM
= –5V to 4.5V
l
l
l
l
l
l
l
MIN
–0.35
–0.2
–0.08
–5
6.4
5
3.6
–750
–1500
9.95
19.9
48.75
–0.5
100
–2.35
–1
–10
–2.5
68
TYP
MAX
0.35
0.2
0.08
80
UNITS
V
V
V
V
kΩ
MΩ
kΩ
μV
μV
μV/°C
V/V
V/V
V/V
%
μA
mA
μA
μA
μA
μA
dB
1999fb
8
20
4.8
±500
5
9.6
6
750
1500
10.05
20.1
50.25
0.5
175
–1.5
2.5
1
10
2.5
Input Referred Voltage Offset Drift
Gain
LT1999-10
LT1999-20
LT1999-50
ΔV
OUT
= ±2V
V
CM
> 5.5V
V
CM
= –5V
V
SHDN
= 0.5V, 0V < V
CM
< 80V
V
CM
> 5.5V
V
CM
= –5V
V
SHDN
= 0.5V, 0V < V
CM
< 80V
V
+
= 4.5V to 5.5V
l
l
l
l
l
l
l
l
l
l
l
10
20
50
±0.2
137.5
–1.95
0.001
Gain Error
Input Bias Current
I(+IN) = I(–IN)
(Note 8)
Input Offset Current
I
OS
= I(+IN) – I(–IN)
(Note 8)
Supply Rejection Ratio
77
3
LT1999-10/LT1999-20/
LT1999-50
elecTrical characTerisTics
SYMBOL
CMRR
PARAMETER
Sense Input Common Mode Rejection
The
l
denotes the specifications which apply over the full operating
temperature range, 0°C < T
A
< 70°C for C-grade parts, –40°C < T
A
< 85°C for I-grade parts, and –40°C < T
A
< 125°C for H-grade parts,
otherwise specifications are at T
A
= 25°C. V
+
= 5V, GND = 0V, V
CM
= 12V, V
REF
= floating, V
SHDN
= floating, unless otherwise specified.
See Figure 2.
CONDITIONS
V
CM
= –5V to 80V
V
CM
= –5V to 5.5V
V
CM
= 12V, 7V
P-P
, f = 100kHz,
V
CM
= 0V, 7V
P-P
, f = 100kHz
f = 10kHz
f = 0.1Hz to 10Hz
LT1999-10
LT1999-20
LT1999-50
V
SHDN
= 0.5V
V
SHDN
= 0.5V
LT1999-10
LT1999-20
LT1999-50
V
+
= 5.5V, V
SHDN
= 0V
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
l
MIN
96
96
75
80
TYP
105
120
90
100
97
8
MAX
UNITS
dB
dB
dB
dB
nV/√Hz
μV
P-P
dB
dB
dB
e
n
REF
RR
Differential Input Referred Noise Voltage Density
REF Pin Rejection, V
+
= 5.5V
ΔV
REF
= 3.0V
ΔV
REF
= 3.25V
ΔV
REF
= 3.25V
REF Pin Input Impedance
Open Circuit Voltage
REF Pin Input Range (Note 9)
62
62
62
60
0.15
2.45
1
1.25
1.125
1.125
–6
V
+
– 0.5
70
70
70
80
0.4
2.5
2.5
100
0.65
2.55
2.75
V
+
– 1.25
V
+
– 1.125
V
+
– 1.125
–2
0.5
2
2
1.2
3
2.5
0.8
1
1.3
R
REF
V
REF
V
REFR
I
SHDN
V
IH
V
IL
f
3dB
SR
t
s
t
r
V
S
I
S
R
O
I
SRC
I
SNK
V
OUT
kΩ
MΩ
V
V
V
V
V
μA
V
V
MHz
MHz
MHz
V/μs
μs
μs
μs
μs
Pin Pull-Up Current
SHDN
Pin Input High
SHDN
Pin Input Low
Small Signal Bandwidth
LT1999-10
LT1999-20
LT1999-50
0.5% Settling
LT1999-10
LT1999-20
LT1999-50
l
Slew Rate
Settling Time due to Input Step, ΔV
OUT
= ±2V
Common Mode Step Recovery Time
ΔV
CM
= ±50V, 20ns
(Note 10)
Supply Voltage (Note 11)
Supply Current
V
CM
> 5.5V
V
CM
= –5V
V
+
= 5.5V, V
SHDN
= 0.5V, V
CM
> 0V
ΔI
O
= ±2mA
R
LOAD
= 50Ω to GND
R
LOAD
= 50Ω to V
+
R
LOAD
= 1kΩ to Mid-Supply
R
LOAD
= Open
R
LOAD
= 1kΩ to Mid-Supply
R
LOAD
= Open
V
SHDN
= 0V to 5V
V
SHDN
= 5V to 0V
l
l
l
l
l
l
4.5
5
1.55
5.8
3
0.15
5.5
1.9
7.1
10
40
40
250
125
400
225
V
mA
mA
μA
Ω
mA
mA
mV
mV
mV
mV
μs
μs
l
l
l
Output Impedance
Sourcing Output Current
Sinking Output Current
Swing Output High (with Respect to V
+
)
Swing Output Low (with Respect to V
–
)
6
15
31
26
125
5
250
150
1
1
t
ON
t
OFF
Turn-On Time
Turn-Off Time
1999fb
4
LT1999-10/LT1999-20/
LT1999-50
elecTrical characTerisTics
SYMBOL
V
SENSE
V
CM
R
IN(DIFF)
R
INCM
V
OSI
ΔV
OSI
/ΔT
A
V
A
V
Error
I
B
I
OS
PSRR
CMRR
PARAMETER
Full-Scale Input Sense Voltage (Note 7)
V
SENSE
= V
+IN
– V
–IN
CM Input Voltage Range
Differential Input Impedance
CM Input Impedance
Input Referred Voltage Offset
l
The
l
denotes the specifications which apply over the full operating
temperature range, –55°C < T
A
< 150°C for MP-grade parts, otherwise specifications are at T
A
= 25°C. V
+
= 5V, GND = 0V, V
CM
= 12V,
V
REF
= floating, V
SHDN
= floating, unless otherwise specified. See Figure 2.
Ask for an expert answer
1. What function does this circuit achieve ? 2. How to debug the corresponding position circuit of the three potentiometers ? 3. How to give an input and verify the output...
HTCAD is a set of earthwork quantity calculation and drawing software developed on the AutoCAD platform. For various complex terrain conditions, the software uses the grid method to calculate the eart...
I want to design an elevator control: Implementation: Display up and down display floors and call nearby to implement full alarm. I have read the elevator design in the forum, but I am very depressed ...
[i=s]This post was last edited by jameswangsynnex on 2015-3-3 20:01[/i] In the color TV industry, the confrontation between domestic brands and foreign brands is a long-standing topic, but data from c...
On August 24th, Jin Yuzhi, CEO of Huawei's Intelligent Automotive Solutions BU, announced the first automotive application of Huawei Qiankun's unique Limera technology. This technology eliminates t...[Details]
Reflow soldering, a common soldering method in modern electronics manufacturing, primarily melts solder paste and pads to form solder joints. With technological advancements, soldering equipment ha...[Details]
Is electromagnetic radiation from electric vehicles harmful to the human body? Recently, the issue of electromagnetic radiation from electric vehicles has garnered widespread attention. However, pu...[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]
With the rapid adoption of smart electric vehicles, automotive chips are evolving from auxiliary control units to the foundation of the entire vehicle's intelligence. Their applications extend from...[Details]
Overview
As handheld voice communication devices become more and more popular, they are increasingly used in noisy environments, such as airports, busy roads, crowded bars, etc. In such noisy ...[Details]
Based on the commutation technology, thyristor rectifiers are classified into two main types. Line-commutated and force-commutated inverters are commonly used, while other commutated inverters, nam...[Details]
1. Fault phenomenon and cause analysis
1. During the operation of the equipment, the expansion sleeve is subjected to a large torque, and the mating surfaces of the shaft and the sleeve move...[Details]
Intel®
Xeon®
6
-
core processors now support the new Amazon EC2 R8i and R8i-flex instances on Amazon Web Services (AWS).
These new instances offer superior performance and fast...[Details]
In the field of communications power supplies, AC/DC rectifier power supplies are called primary power supplies or basic power supplies, while DC/DC converters are called secondary power supplies. ...[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]
01. Introduction
As in-vehicle networks migrate from the CAN
bus
to
Ethernet
, traditional millisecond-level synchronization accuracy can no longer meet the requirements of mul...[Details]
With the development of vehicle technology, there are more types of cars. Cars are divided into hybrid, pure electric vehicles, and fuel vehicles. For hybrid cars, they are divided into plug-in hyb...[Details]
Generally not, but there are exceptions. For example, a torque motor controller with three-phase output voltage imbalance can cause current imbalance, similar to a phase loss. However, only two pha...[Details]
Bearing wear is a common equipment problem in the manufacturing industry. In today's world where controlling production costs is advocated, using repair technology to reduce the scrapping and repla...[Details]