Operating Temperature Range ......................... -40°C to +125°C
Junction Temperature ......................................................+150°C
Storage Temperature Range ............................ -65°C to +150°C
Lead Temperature (soldering, 10s) ................................. +300°C
Soldering Temperature (reflow) .......................................+260°C
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these
or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to absolute maximum rating conditions for extended periods may affect
device reliability.
Electrical Characteristics
(V
IN
= 14V, C
IN
= 0.1μF, C
OUT
= 10μF, T
A
= T
J
= -40°C to +125°C, unless otherwise noted. Typical values are at T
A
= T
J
= +25°C.)
(Note 1)
PARAMETER
Supply Voltage Range
SYMBOL
V
IN
I
LOAD
= 0A
Supply Current
(MAX6765–MAX6772) (Note 2)
I
LOAD
= 50mA
I
LOAD
= 100mA, V
IN
= 14V
I
LOAD
= 0A, V
IN
= 42V
I
LOAD
= 10mA, V
IN
= 42V
Supply Current
(MAX6773/MAX6773B/
MAX6774/MAX6774B)
(Note 2)
Shutdown Supply Current
I
SHDN
I
LOAD
= 0A
I
LOAD
= 50mA
I
LOAD
= 100mA
I
LOAD
= 0A, V
IN
= 42V
I
LOAD
= 10mA, V
IN
= 42V
ENABLE , ENABLE1, ENABLE2 = GND
L/M, I
LOAD
= 1mA
L/M, 1mA ≤ I
LOAD
≤ 100mA, V
IN
= 11V
T/S, I
LOAD
= 1mA
Output Voltage
V
OUT
T/S, 1mA ≤ I
LOAD
≤ 100mA, V
IN
= 9.3V
Z/Y, I
LOAD
= 1mA
Z/Y, 1mA ≤ I
LOAD
≤
100mA, V
IN
= 8.5V
W/V, I
LOAD
= 1mA
W/V, 1mA ≤ I
LOAD
≤
100mA, V
IN
= 7.8V
Adjustable Output Voltage Range
SET Threshold Voltage
(MAX6767–MAX6774)
Dual Mode™ SET Threshold
V
OUT
V
SET
I
LOAD
= 1mA
SET rising
SET falling
4.925
4.850
3.251
3.201
2.463
2.425
1.773
1.746
1.8
1.20
1.233
116
58
CONDITIONS
MIN
4
31
35
37
35
37
38
42
44
42
44
3.3
5
5
3.3
3.3
2.5
2.5
1.8
1.8
TYP
MAX
72
45
50
55
50
55
50
55
60
55
60
7
5.075
5.150
3.350
3.399
2.538
2.575
1.827
1.854
11.0
1.26
V
V
mV
V
µA
µA
µA
UNITS
V
Dual Mode is a trademark of Maxim Integrated Products, Inc.
www.maximintegrated.com
Maxim Integrated
│
2
MAX6765–MAX6774
Automotive Micropower Linear Regulators
with Supervisor
Electrical Characteristics (continued)
(V
IN
= 14V, C
IN
= 0.1μF, C
OUT
= 10μF, T
A
= T
J
= -40°C to +125°C, unless otherwise noted. Typical values are at T
A
= T
J
= +25°C.)
(Note 1)
PARAMETER
SET Input Current
(MAX6767–MAX6774)
SYMBOL
I
SET
CONDITIONS
V
SET
= 1.5V, V
IN
= 11V
L/M, 5V output option, I
LOAD
= 10mA
Dropout Voltage (Note 3)
ΔV
DO
L/M, 5V output option, I
LOAD
= 50mA
L/M, 5V output option, I
LOAD
= 100mA
T/S, 3.3V output option, I
LOAD
= 100mA
Guaranteed Output Current
(Note 4)
Output Current Limit
Thermal-Shutdown Temperature
Thermal-Shutdown Hysteresis
Line Regulation
Load Regulation
(MAX6767–MAX6774)
Power-Supply Rejection Ratio
Startup Response Time
Output Overvoltage Protection
Threshold
Output Overvoltage Protection
Maximum Sink Current
Input Low Voltage
Input High Voltage
ENABLE, ENABLE1, ENABLE2
Input Pulldown Current
V
IL
HOLD
Input Threshold Voltage
HOLD
Input Pullup Current
RESET
OUTPUT
V
IH
V
IL
V
IH
PSRR
t
START
OV
TH
6.5V ≤ V
IN
≤ 72V, I
LOAD
= 1mA
I
OUT
= 1mA to 100mA,
V
IN
= V
OUT(NOM)
+ 6V
I
LOAD
= 10mA, f
IN
= 100Hz, 500mV
P-P
From ENABLE high to OUT,
I
LOAD
= 100mA
I
SINK
= 1mA (from OUT)
OUT = OUT
(NOM)
x 1.15
1.07 x
V
OUT
5
70
180
1.1 x
V
OUT
10
1.13 x
V
OUT
Output shorted to GND, V
IN
= 14V
100
150
250
160
20
1
1.5
MIN
-100
60
300
620
866
TYP
MAX
+100
130
630
1200
1600
mA
mA
°C
°C
%
%
dB
µs
V
mA
mV
UNITS
nA
LOGIC INPUT (ENABLE, ENABLE1, ENABLE2,
HOLD)
ENABLE, ENABLE1, ENABLE2
ENABLE, ENABLE1, ENABLE2
ENABLE, ENABLE1, ENABLE2 are
internally pulled down to GND
1.8V ≤ V
OUT
≤ 11V
1.8V ≤ V
OUT
≤ 11V
HOLD
is internally pulled up to OUT
L
M
T
RESET
Threshold
SET = GND,
RESET
falling
S
Z
Y
W
V
4.500
4.250
2.970
2.805
2.250
2.125
1.620
1.530
OUT -
0.4
1.8
4.625
4.375
3.053
2.888
2.313
2.188
1.665
1.575
4.750
4.500
3.135
2.970
2.375
2.250
1.710
1.620
V
1.4
0.6
0.4
V
µA
0.4
V
V
µA
www.maximintegrated.com
Maxim Integrated
│
3
MAX6765–MAX6774
Automotive Micropower Linear Regulators
with Supervisor
Electrical Characteristics (continued)
(V
IN
= 14V, C
IN
= 0.1μF, C
OUT
= 10μF, T
A
= T
J
= -40°C to +125°C, unless otherwise noted. Typical values are at T
A
= T
J
= +25°C.)
(Note 1)
PARAMETER
RESET
Threshold (Adjustable
Output Voltage)
RESETIN Input Current
SYMBOL
CONDITIONS
L/T/Z/W, SET = resistive divider,
RESET
falling
M/S/Y/V, SET = resistive divider,
RESET
falling
V
RESETIN
= V
GND
or 12V
V
TH
= 87.5% of V
SET
(M/S/Y/V),
RESET
falling
V
TH
= 92.5% of V
SET
(L/T/Z/W),
RESET
falling
V
OUT
falling
RESETIN falling
D0
RESET
Timeout Period
(TIMEOUT Connected to OUT)
D1
V
OUT
rising
D2
D3
D4
TIMEOUT Ramp Current
TIMEOUT Ramp Threshold
L/M/T/S options
V/W/Y/Z options
V
OUT
≥ 1.8V, I
SINK
= 50µA,
RESET
asserted
V
OUT
≥ 1.8V, I
SINK
= 3.2mA,
RESET
asserted
V
OUT
≥ 1.8V, I
SOURCE
= 250µA,
RESET
not asserted
RESET
not asserted,
RESET
= 12V
t
WDI
V
IL
V
IH
V
IL
I
WDI
t
WD
1.8V ≤ V
OUT
≤ 11V
1.8V ≤ V
OUT
≤ 11V
1.8V ≤ V
OUT
≤ 11V
1.8V ≤ V
OUT
≤ 11V
V
WDI
= 0V or V
WDI
= 12V
MAX6773/MAX6774
MAX6773B/MAX6774B
-1
1.12
40
1.6
50
V
OUT
- 0.4V
0.4
+1
2.08
60
1
0.4
0.8 x
V
OUT
100
2.187
8.75
35
140
800
1.160
1.060
MIN
TYP
MAX
UNITS
V
OUT
x V
OUT
V
OUT
0.9
x 0.925 x 0.950
V
OUT
x 0.85
-100
1.057
1.118
1.085
1.147
0.3
35
75
3.125
12.5
50
200
1000
1.220
1.170
4.063
16.25
65
260
1200
1.259
1.242
0.3
V
OUT
V
OUT
x 0.875 x 0.900
+100
1.112
V
nA
RESETIN Threshold
V
1.176
µs
µs
µs
OUT to
RESET
Delay
RESETIN To
RESET
Delay
ms
nA
V
RESET
Output-Voltage Low
(Open Drain or Push-Pull)
RESET
Output-Voltage High
(Push-Pull)
RESET
Open-Drain Leakage
Current
Watchdog Minimum Input Pulse
Watchdog Input Low Voltage
Watchdog Input High Voltage
Watchdog Input Low Voltage
Watchdog Input Current
Watchdog Timeout Period
V
OL
V
0.4
V
nA
µs
V
V
V
µA
s
ms
V
OH
Note 1:
Production tested at T
A
= +25°C. Overtemperature limits are guaranteed by design.
Note 2:
Device tested at internally set voltage.
Note 3:
Dropout voltage for L/M versions is defined as (V
IN
- V
OUT
) when V
OUT
equals 98% of the nominal value of V
OUT
when
V
IN
= 11V. For T/S versions, dropout voltage is defined as (V
IN
- V
OUT
) when V
OUT
equals 98% of the nominal value of
V
OUT
when V
IN
= 9.3V.
Note 4:
Observe the absolute maximum power dissipation limits.
I created a new project in the standard USB example, using the library functions in the example. The development tool is IAR 5.4. When compiling, startup_stm32f10x_cl.s, startup_stm32f10x_ld.s, startu...
The design of the power supply with negative output voltage is the same as that of the power supply with positive output voltage, but the topology is different. 1. Enter WEBENCH2. After filling in the...
I made an image processing board by myself, using TVP5150AM1 as the decoding chip, connected to the video port 1 of DM642, and using the image acquisition driver from TI, the example program in the da...
[color=#333333][font=Helvetica, arial, freesans, clean, sans-serif][size=13px][b]How to init IIS and IIC to make wm8960 chip play wav file[/b][/size][/font][/color]
[color=#333333][font=Helvetica, ari...
1 Introduction Programmable Logic Controller (PLC) has a programming port. Take the PLC produced by Mitsubishi Corporation of Japan as an example (including FX series and A series), its programming po...
Calibrators are widely used in university experiments. Among them, there are two experiments in nuclear physics experiments in modern physics experiments (GM counter and β absorption) that require ...[Details]
Although improper medical device product design is not always associated with medical device-related errors. Studies of users have shown that lack of adequate training accounts for 70% to 90% of suc...[Details]
Magnetic resonance imaging (MRI) systems can take high-resolution cross-sectional perspective images of the human body, providing very useful information for medical diagnosis. The radio frequency pro...[Details]
Radio Frequency Identification (RFID) technology is a non-contact automatic identification technology that uses wireless radio frequency communication. Compared with the currently widely used barco...[Details]
The circuit shown in the figure is a three-digit tachometer used to measure low frequency signals with a repetitive time interval of 0.235 to 15 seconds. The tachometer has a speed range of 4 to 255 r...[Details]
For more than 10 years, analog-to-digital converters (ADCs) have been widely used in industrial process control, medical instruments, communication systems, radar and other products as a booster of in...[Details]
As the application scope of medical equipment expands from hospitals to emergency response and home medical environments, its mobility will be determined by many factors. In addition, medical equip...[Details]
As a single-host multi-slave bus system, the number of slave devices that can be connected to a 1-Wire bus is almost unlimited. In order to avoid logical conflicts, the 1-Wire bus interfaces of all...[Details]
Obtaining real-time and reliable traffic information has always been a bottleneck problem in the development of intelligent transportation systems. The establishment of an intelligent transportatio...[Details]
DC regulated power supply is a commonly used electronic device, which can ensure stable output voltage when the grid voltage fluctuates or the load changes. A low ripple, high-precision regulated p...[Details]
Many MEMS devices, such as accelerometers and mechanical resonance devices, require a vacuum environment to realize their designed functions. However, verifying whether the package cavity has reach...[Details]
Complex circuits and 3D EM simulation tools have reached a point where complex system-level behavior can be simulated before fabrication. Performing EM simulations simultaneously with circuit simul...[Details]
introduction
Controller Area Network (CAN) is a bus standard proposed by Bosch of Germany to solve the information communication between automotive electronic control units. With its excel...[Details]
Preface
In the analog era, due to the unchanged specifications and relatively simple device connections, as well as users' low requirements for image quality, the relatively simple environment...[Details]
Abstract:
This paper
introduces a data acquisition system based on USB and DSP, which takes advantage of the high-speed transmission characteristics of USB2.0. The overall structure of the ...[Details]