Storage Temperature Range.................. –65°C to 150°C
Operating Junction Temperature Range
(Notes 3, 10, 11)
LT3010E ............................................. –40°C to 125°C
LT3010H ............................................ –40°C to 140°C
LT3010MP.......................................... –55°C to 125°C
Lead Temperature (Soldering, 10 sec) ................. 300°C
MS8E PACKAGE
8-LEAD PLASTIC MSOP
*SENSE FOR LT3010-5, ADJ FOR LT3010
T
JMAX
= 125°C (LT3010E/LT3010MP),
θ
JA
= 40°C/W,
θ
JC
= 16°C/W†
T
JMAX
= 140°C (LT3010H),
θ
JA
= 40°C/W,
θ
JC
= 16°C/W†
SEE APPLICATIONS INFORMATION SECTION.
EXPOSED PAD (PIN 9) IS GND, MUST BE SOLDERED TO PCB
†MEASURED AT BOTTOM PAD
ORDER INFORMATION
LEAD FREE FINISH
LT3010EMS8E#PBF
LT3010EMS8E-5#PBF
LT3010HMS8E#PBF
LT3010HMS8E-5#PBF
LT3010MPMS8E#PBF
LT3010MPMS8E-5#PBF
LEAD BASED FINISH
LT3010EMS8E
LT3010EMS8E-5
LT3010HMS8E
LT3010HMS8E-5
LT3010MPMS8E
LT3010MPMS8E-5
TAPE AND REEL
LT3010EMS8E#TRPBF
LT3010EMS8E-5#TRPBF
LT3010HMS8E#TRPBF
LT3010HMS8E-5#TRPBF
LT3010MPMS8E#TRPBF
LT3010MPMS8E-5#TRPBF
TAPE AND REEL
LT3010EMS8E#TR
LT3010EMS8E-5#TR
LT3010HMS8E #TR
LT3010HMS8E-5 #TR
LT3010MPMS8E#TR
LT3010MPMS8E-5#TR
PART MARKING*
LTZF
LTAEF
LTCLP
LTCLQ
LTZF
LTAEF
PART MARKING*
LTZF
LTAEF
LTCLP
LTCLQ
LTZF
LTAEF
PACKAGE DESCRIPTION
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
PACKAGE DESCRIPTION
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
8-Lead Plastic MSOP
TEMPERATURE RANGE
–40°C to 125°C
–40°C to 125°C
–40°C to 140°C
–40°C to 140°C
–55°C to 125°C
–55°C to 125°C
TEMPERATURE RANGE
–40°C to 125°C
–40°C to 125°C
–40°C to 140°C
–40°C to 140°C
–55°C to 125°C
–55°C to 125°C
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/
(LT3010E, LT3010MP) The
l
denotes the specifications which apply over
the –40°C to 125°C (LT3010E) or –55°C to 125°C (LT3010MP) operating temperature range, otherwise specifications are at T
A
= 25°C.
PARAMETER
Minimum Input Voltage
Regulated Output Voltage
(Note 3)
ADJ Pin Voltage (Notes 2, 3)
CONDITIONS
LT3010
LT3010-5
LT3010
I
LOAD
= 50mA
V
IN
= 5.5V, I
LOAD
= 1mA
6V < V
IN
< 80V, 1mA < I
LOAD
< 50mA
V
IN
= 3V, I
LOAD
= 1mA
4V < V
IN
< 80V, 1mA < I
LOAD
< 50mA
l
l
ELECTRICAL CHARACTERISTICS
MIN
4.925
4.850
TYP
3
5.000
5.000
1.275
1.275
MAX
4
5.075
5.150
1.292
1.313
UNITS
V
V
V
V
V
30105fe
1.258
l
1.237
2
LT3010/LT3010-5
ELECTRICAL CHARACTERISTICS
PARAMETER
Line Regulation
Load Regulation
CONDITIONS
LT3010-5
ΔV
IN
= 5.5V to 80V, I
LOAD
= 1mA
LT3010 (Note 2)
ΔV
IN
= 3V to 80V, I
LOAD
= 1mA
LT3010-5
V
IN
= 6V,
ΔI
LOAD
= 1mA to 50mA
V
IN
= 6V,
ΔI
LOAD
= 1mA to 50mA
l
(LT3010E, LT3010MP) The
l
denotes the specifications which apply over
the –40°C to 125°C (LT3010E) or –55°C to 125°C (LT3010MP) operating temperature range, otherwise specifications are at T
A
= 25°C.
MIN
TYP
3
3
25
l
MAX
15
13
50
90
20
32
150
190
260
350
370
550
60
180
700
3.3
100
2
2
0.5
5
UNITS
mV
mV
mV
mV
mV
mV
mV
mV
mV
mV
mV
mV
µA
µA
µA
mA
µV
RMS
nA
V
V
µA
µA
µA
dB
dB
mA
mA
mA
LT3010 (Note 2) V
IN
= 4V,
ΔI
LOAD
= 1mA to 50mA
V
IN
= 4V,
ΔI
LOAD
= 1mA to 50mA
Dropout Voltage
V
IN
= V
OUT(NOMINAL)
(Notes 4, 5)
I
LOAD
= 1mA
I
LOAD
= 1mA
I
LOAD
= 10mA
I
LOAD
= 10mA
I
LOAD
= 50mA
I
LOAD
= 50mA
GND Pin Current
V
IN
= V
OUT(NOMINAL)
(Notes 4, 6)
Output Voltage Noise
ADJ Pin Bias Current
Shutdown Threshold
SHDN
Pin Current
(Note 8)
Ripple Rejection
Current Limit
I
LOAD
= 0mA
I
LOAD
= 1mA
I
LOAD
= 10mA
I
LOAD
= 50mA
C
OUT
= 10µF I
LOAD
= 50mA, BW = 10Hz to 100kHz
,
(Note 7)
V
OUT
= Off to On
V
OUT
= On to Off
V
SHDN
= 0V
V
SHDN
= 6V
LT3010
LT3010-5
V
IN
= 7V(Avg), V
RIPPLE
= 0.5V
P-P
, f
RIPPLE
= 120Hz, I
LOAD
= 50mA
V
IN
= 7V(Avg), V
RIPPLE
= 0.5V
P-P
, f
RIPPLE
= 120Hz, I
LOAD
= 50mA
10
l
100
l
200
l
300
l
l
l
l
l
30
100
400
1.8
100
50
l
l
0.3
1.3
1.1
0.5
0.1
1
Quiescent Current in Shutdown V
IN
= 6V, V
SHDN
= 0V
65
60
l
l
l
75
68
140
V
IN
= 7V, V
OUT
= 0V
LT3010-5
V
IN
= 6V,
ΔV
OUT
= –0.1V
LT3010 (Note 2) V
IN
= 4V,
ΔV
OUT
= –0.1V
LT3010-5
V
OUT
= 5V, V
IN
< 5V
LT3010 (Note 2) V
OUT
= 1.275V, V
IN
< 1.275V
60
60
Input Reverse Leakage Current V
IN
= –80V, V
OUT
= 0V
Reverse Output Current
(Note 9)
6
10
8
20
15
mA
µA
µA
(LT3010H) The
l
denotes the specifications which apply over the –40°C to 140°C operating temperature range, otherwise
specifications are at T
A
= 25°C.
PARAMETER
Minimum Input Voltage
Regulated Output Voltage
(Note 3)
ADJ Pin Voltage (Notes 2, 3)
Line Regulation
Load Regulation
CONDITIONS
LT3010
LT3010-5
LT3010
I
LOAD
= 50mA
V
IN
= 5.5V, I
LOAD
= 1mA
6V < V
IN
< 80V, 1mA < I
LOAD
< 50mA
V
IN
= 3V, I
LOAD
= 1mA
4.25V < V
IN
< 80V, 1mA < I
LOAD
< 50mA
l
l
l
l
l
l
MIN
4.925
4.825
1.258
1.230
TYP
3
5.000
5.000
1.275
1.275
3
3
25
10
MAX
4.25
5.075
5.15
1.292
1.313
20
15
50
100
20
45
UNITS
V
V
V
V
V
mV
mV
mV
mV
mV
mV
LT3010-5
ΔV
IN
= 5.5V to 80V, I
LOAD
= 1mA
LT3010 (Note 2)
ΔV
IN
= 3V to 80V, I
LOAD
= 1mA
LT3010-5
V
IN
= 6V,
ΔI
LOAD
= 1mA to 50mA
V
IN
= 6V,
ΔI
LOAD
= 1mA to 50mA
LT3010 (Note 2) V
IN
= 4V,
ΔI
LOAD
= 1mA to 50mA
V
IN
= 4.25V,
ΔI
LOAD
= 1mA to 50mA
l
30105fe
3
LT3010/LT3010-5
ELECTRICAL CHARACTERISTICS
PARAMETER
Dropout Voltage
V
IN
= V
OUT(NOMINAL)
(Notes 4, 5)
CONDITIONS
I
LOAD
= 1mA
I
LOAD
= 1mA
I
LOAD
= 10mA
I
LOAD
= 10mA
I
LOAD
= 50mA
I
LOAD
= 50mA
GND Pin Current
V
IN
= V
OUT(NOMINAL)
(Notes 4, 6)
Output Voltage Noise
ADJ Pin Bias Current
Shutdown Threshold
SHDN
Pin Current
(Note 8)
Ripple Rejection
Current Limit
I
LOAD
= 0mA
I
LOAD
= 1mA
I
LOAD
= 10mA
I
LOAD
= 50mA
C
OUT
= 10µF I
LOAD
= 250mA, BW = 10Hz to 100kHz
,
(Note 7)
V
OUT
= Off to On
V
OUT
= On to Off
V
SHDN
= 0V
V
SHDN
= 6V
LT3010
LT3010-5
V
IN
= 7V(Avg), V
RIPPLE
= 0.5V
P-P
, f
RIPPLE
= 120Hz, I
LOAD
= 50mA
V
IN
= 7V(Avg), V
RIPPLE
= 0.5V
P-P
, f
RIPPLE
= 120Hz, I
LOAD
= 50mA
l
l
l
l
l
l
l
(LT3010H) The
l
denotes the specifications which apply over the –40°C to
140°C operating temperature range, otherwise specifications are at T
A
= 25°C.
MIN
TYP
100
200
l
MAX
150
220
260
380
370
600
80
200
750
3.5
100
2
2
0.5
5
UNITS
mV
mV
mV
mV
mV
mV
µA
µA
µA
mA
µV
RMS
nA
V
V
µA
µA
µA
dB
dB
mA
mA
mA
300
l
l
l
l
l
30
100
400
1.8
100
50
0.3
1.3
0.8
0.5
0.1
1
65
60
55
55
75
68
140
Quiescent Current in Shutdown V
IN
= 6V, V
SHDN
= 0V
V
IN
= 7V, V
OUT
= 0V
LT3010-5
V
IN
= 6V,
ΔV
OUT
= –0.1V
LT3010 (Note 2) V
IN
= 4.25V,
ΔV
OUT
= –0.1V
LT3010-5
V
OUT
= 5V, V
IN
< 5V
LT3010 (Note 2) V
OUT
= 1.275V, V
IN
< 1.275V
Input Reverse Leakage Current V
IN
= –80V, V
OUT
= 0V
Reverse Output Current
(Note 9)
6
10
8
20
15
mA
µA
µA
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
reliability and lifetime.
Note 2:
The LT3010 (adjustable version) is tested and specified for these
conditions with the ADJ pin connected to the OUT pin.
Note 3:
Operating conditions are limited by maximum junction
temperature. The regulated output voltage specification will not apply
for all possible combinations of input voltage and output current. When
operating at maximum input voltage, the output current range must be
limited. When operating at maximum output current, the input voltage
range must be limited.
Note 4:
To satisfy requirements for minimum input voltage, the LT3010
(adjustable version) is tested and specified for these conditions with an
external resistor divider (249k bottom, 392k top) for an output voltage of
3.3V. The external resistor divider will add a 5µA DC load on the output.
Note 5:
Dropout voltage is the minimum input to output voltage differential
needed to maintain regulation at a specified output current. In dropout, the
output voltage will be equal to (V
IN
– V
DROPOUT
).
Note 6:
GND pin current is tested with V
IN
= V
OUT
(nominal) and a current
source load. This means the device is tested while operating in its dropout
region. This is the worst-case GND pin current. The GND pin current will
decrease slightly at higher input voltages.
Note 7:
ADJ pin bias current flows into the ADJ pin.
Note 8:
SHDN
pin current flows out of the
SHDN
pin.
Note 9:
Reverse output current is tested with the IN pin grounded and the
OUT pin forced to the rated output voltage. This current flows into the OUT
pin and out the GND pin.
Note 10:
The LT3010E is guaranteed to meet performance specifications
from 0°C to 125°C operating junction temperature. Specifications over
the –40°C to 125°C operating junction temperature range are assured by
design, characterization and correlation with statistical process controls.
The LT3010H is tested to the LT3010H Electrical Characteristics table at
140°C operating junction temperature. The LT3010MP is 100% tested and
guaranteed over the –55°C to 125°C operating junction temperature range.
High junction temperatures degrade operating lifetimes. Operating lifetime
is derated at junction temperatures greater than 125°C.
Note 11:
This IC includes overtemperature protection that is intended
to protect the device during momentary overload conditions. Junction
temperature will exceed 125°C (LT3010E and LT3010MP) or 140°C
(LT3010H) when overtemperature protection is active. Continuous
operation above the specified maximum operating junction temperature
I have always wanted to learn WinCE embedded development, but there is still a long way to go. I used to do WEB program development, but now I want to switch to learning Windows CE. I have a certain u...
The chip used is AT89S52. The initial idea is 1: output 1-2MHz square wave signal through one of the output ports P1.1. 2: timer 1 is used as a timer, set the half cycle of the square wave signal to g...
A few days ago, I saw someone discussing the issue of minority language fonts on the forum. I found that many TXs have encountered similar problems - some hired artists to make fonts, read or converte...
[size=3]I. Brief introduction of STM32Cube and Coremark[/size][size=3] [/size] 1. STM32Cube is a comprehensive software platform that includes every series of ST products. The platform includes STM32C...
1. Select lowpass2. Set the cutoff frequency [img]https://12.eewimg.cn/bbs/data/attachment/forum/201408/17/141719u14424vsbkqs7qky.jpg.thumb.jpg[/img] 3. Select Butterworth filter4. Generate schemati...
I recently learned about synchronous detection and found a circuit (phase-sensitive detection) as shown in Figure 0. The simulation result is shown in Figure 2. I don't know how Figure 1 produced such...
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]
The mass production process of the new generation of cockpit platform has started, and the smart cockpit market has entered a new bonus cycle of technology iteration and platform upgrade.
...[Details]
introduction
The concept of the smart home is gradually developing and gaining market acceptance. We believe its ultimate form lies in the interconnection of all home appliances through open i...[Details]
According to Nikkei, a survey found that global electric vehicle battery supply is expected to reach more than three times the required quantity due to
cooling
demand for electric vehicles,...[Details]
According to foreign media reports, Ford Motor has applied to the U.S. Patent and Social Security Office (USPTO) for a patent for a door anti-collision system that may be used in future Ford vehicl...[Details]
On August 20, Geely announced its focus on "One Cockpit". Through a unified AI OS architecture, a unified AI Agent, and a unified user ID, it will achieve an All-in-One AI cockpit, create the first...[Details]
Tiantai Robot's official Weibo account announced on the evening of August 20 that Tiantai Robot Co., Ltd., together with strategic partners including Shandong Future Robot Technology Co., Ltd., Sha...[Details]
Methods of DC motor speed regulation:
1. The voltage regulator can be used to change the input voltage and speed directly, which is often used for large kilowatt-level motors.
2. Thyristo...[Details]
MQTT Ethernet I/O modules primarily collect I/O port information and transmit data over the network. In addition to being a TCP server, Ethernet I/O modules can also function as TCP clients. Furthe...[Details]
The driving mode is not unfamiliar to vehicles. According to the driving mode of the vehicle, there are front-wheel drive, rear-wheel drive and even four-wheel drive. Four-wheel drive is a major se...[Details]
High-definition media consumption is experiencing a dual growth: an increase in the number of consumers and a transition to higher-definition content. This growth is driven by increasingly widespre...[Details]
Hair dryer structure and working principle: It is mainly used for drying and shaping hair, but it can also be used for local drying, heating and treatment in laboratories, physiotherapy rooms, ind...[Details]
As the power density of modern electronic systems continues to increase, effective thermal management has become critical to ensuring system performance, reliability, and longevity—especially in hi...[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]
As the electric vehicle industry continues to surge in today's society, while people are concerned about the appearance and interior of new energy vehicles, they are also concerned about the classi...[Details]