PLA140 is a 400V, 250mA, 8Ω 1-Form-A relay. This per-
formance leader combines high peak load voltage capa-
bility, high peak load current capability, and very low
on-resistance to provide superior performance.
Features
•
Small 6 Pin DIP Package
•
Low Drive Power Requirements (TTL/CMOS
Compatible)
•
No Moving Parts
•
High Reliability
•
Arc-Free With No Snubbing Circuits
•
3750V
RMS
Input/Output Isolation
•
FCC Compatible
•
VDE Compatible
•
No EMI/RFI Generation
•
Machine Insertable, Wave Solderable
•
Surface Mount and Tape & Reel Versions Available
Approvals
•
UL Recognized: File Number E76270
•
CSA Certified: File Number LR 43639-10
•
BSI Certified to:
•
BS EN 60950:1992 (BS7002:1992)
Certificate #: 7344
•
BS EN 41003:1993
Certificate #: 7344
Ordering Information
Applications
•
Instrumentation
•
Multiplexers
•
Data Acquisition
•
Electronic Switching
•
I/O Subsystems
•
Meters (Watt-Hour, Water, Gas)
•
Medical Equipment—Patient/Equipment Isolation
•
Security
•
Aerospace
•
Industrial Controls
•
Automotive
Part #
PLA140
PLA140S
PLA140STR
Description
6 Pin DIP (50/Tube)
6 Pin Surface Mount (50/Tube)
6 Pin Surface Mount (1,000/Reel)
Pin Configuration
PLA140 Pinout
AC/DC Configuration
1
2
3
6
5
4
PLA140 Pinout
DC Only Configuration
1
2
3
6
5
4
+ Control
– Control
Do Not Use
Load
Do Not Use
Load
+ Control
– Control
Do Not Use
+ Load
– Load
Switching Characteristics of
Normally Open (Form A) Devices
10ms
CONTROL
+
90%
LOAD
10%
+
T
ON
10%+
T
OFF
DS-PLA140-R5
www.clare.com
1
PLA140
Absolute Maximum Ratings (@ 25˚ C)
Parameter
Input Power Dissipation
Input Control Current
Peak (10ms)
Reverse Input Voltage
Total Power Dissipation
Isolation Voltage
Input to Output
Operational Temperature
Storage Temperature
Soldering Temperature
DIP Package
Surface Mount Package
(10 Seconds Max.)
1
2
Min
-
-
-
-
-
3750
-40
-40
-
-
Typ Max Units
- 150
1
mW
-
50
mA
-
1
A
-
5
V
2
mW
- 800
-
-
-
-
-
-
V
RMS
+85
°C
+125 °C
+260
+220
°C
°C
Absolute Maximum Ratings are stress ratings. Stresses
in excess of these ratings can cause permanent damage
to the device. Functional operation of the device at these
or any other conditions beyond those indicated in the
operational sections of this data sheet is not implied.
Exposure of the device to the absolute maximum ratings
for an extended period may degrade the device and effect
its reliability.
Derate Linearly 1.33 mw/˚C
Derate Linearly 6.67 mw/˚C
Electrical Characteristics
Parameter
Output Characteristics @ 25°C
Load Voltage (Peak)
Load Current (Continuous)
AC/DC Configuration
DC Configuration
Peak Load Current
On-Resistance
AC/DC Configuration
DC Configuration
Off-State Leakage Current
Switching Speeds
Turn-On
Turn-Off
Output Capacitance
Input Characteristics @ 25°C
Input Control Current
Input Dropout Current
Input Voltage Drop
Reverse Input Voltage
Reverse Input Current
Common Characteristics @ 25°C
Input to Output Capacitance
Input to Output Isolation
Conditions
-
-
-
10ms
I
L
=250mA
I
L
=350mA
V
L
=400V
I
F
=5mA, V
L
=10V
I
F
=5mA, V
L
=10V
50V; f=1MHz
I
L
=250mA
-
I
F
=5mA
-
V
R
=5V
-
-
Symbol
V
L
I
L
I
L
I
L
R
ON
R
ON
I
LEAK
T
ON
T
OFF
C
OUT
I
F
I
F
V
F
V
R
I
R
C
I/O
V
I/O
Min
-
-
-
-
-
-
-
-
-
-
5
0.4
0.9
-
-
-
3750
Typ
-
-
-
-
6
2
-
-
-
65
-
0.7
1.2
-
-
3
-
Max
400
250
350
500
8
3
1
3.0
1.0
-
50
-
1.4
5
10
-
-
Units
V
mA
mA
mA
Ω
Ω
µA
ms
ms
pF
mA
mA
V
V
µA
pF
V
RMS
2
www.clare.com
Rev. 5
PLA140
PERFORMANCE DATA*
35
30
PLA140
Typical LED Forward Voltage Drop
(N=50 Ambient Temperature = 25°C;
I
F
= 5mADC)
35
30
Device Count (N)
25
20
15
10
5
0
PLA140
Typical On-Resistance Distribution
(N=50 Ambient Temperature = 25°C)
(Load Current = 250mADC; I
F
= 5mADC)
PLA140
Typical Blocking Voltage Distribution
(N=50 Ambient Temperature = 25°C)
35
30
Device Count (N)
25
20
15
10
5
0
Device Count (N)
25
20
15
10
5
0
1.17
1.19
1.21
1.23
1.25
LED Forward Voltage Drop (V)
5.03
5.38
5.73
6.08
6.43
6.78
430
442
454
466
478
490
On-Resistance (Ω)
Blocking Voltage (V)
PLA140
Typical I
F
for Switch Operation
(N=50 Ambient Temperature = 25°C)
(Load Current = 250mADC)
25
20
15
10
5
0
1.5
2.1
2.7
3.3
3.9
4.5
Current (mA)
Device Count (N)
25
PLA140
Typical I
F
for Switch Dropout
(N=50 Ambient Temperature = 25°C)
(Load Current = 250mADC)
20
15
10
5
0
0.9
1.5
2.1
2.7
3.3
3.9
Current (mA)
25
20
15
10
5
0
PLA140
Typical Turn-On Time
(N=50 Ambient Temperature = 25°C)
(Load Current = 250mADC; I
F
= 5mADC)
Device Count (N)
Device Count (N)
0.39
0.65
0.91
1.17
1.43
1.69
Turn-On (ms)
PLA140
Typical Turn-Off Time
(N=50 Ambient Temperature = 25°C)
(Load Current = 250mADC; I
F
= 5mADC)
25
Load Current (mA)
20
15
10
5
0
0.018
0.030
0.042
0.054
0.066
0.078
Turn-Off (ms)
350
300
PLA140
Typical Load Current vs. Temperature
0.12
0.10
Leakage (µA)
0.08
0.06
0.04
0.02
0
-40
-20
0
20
40
60
80
100
120
-40
PLA140
Typical Leakage vs. Temperature
(Measured across Pins 4 & 6)
Device Count (N)
250
200
150
100
Temperature (°C)
20mA
10mA
5mA
-20
0
20
40
60
80
100
Temperature (°C)
PLA140
Typical Blocking Voltage vs. Temperature
485
PLA140
Typical Turn-On vs. Temperature
(Load Current = 250mADC)
2.50
2.00
Turn-On (ms)
1.50
1.00
10mA
0.50
20mA
0
5mA
0.070
0.060
PLA140
Typical Turn-Off vs. Temperature
(Load Current = 250mADC)
Blocking Voltage (V
RMS
)
480
475
470
465
460
455
450
445
-40
-20
0
20
40
60
80
100
Temperature (°C)
Turn-Off (ms)
0.050
0.040
0.030
0.020
0.010
0
-40
-20
0
20
40
60
80
100
5mA
-40
-20
0
20
40
60
80
100
Temperature (°C)
Temperature (°C)
The Performance data shown in the graphs above is typical of device performance. For guaranteed parameters not indicated in the written specifications, please contact
our application department.
Rev. 5
www.clare.com
3
PLA140
PERFORMANCE DATA*
PLA140
Typical LED Forward Voltage Drop
vs. Temperature
LED Forward Voltage Drop (V)
1.8
1.6
Turn-On (ms)
1.4
1.2
1.0
0.8
-40
-20
0
20
40
60
80
100
120
Temperature (°C)
PLA140
Typical Turn-On vs. LED Forward Current
(Load Current = 250mADC)
1.0
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
0
5
10
15
20
25
30
35
40
45
50
PLA140
Typical Turn-Off vs. LED Forward Current
(Load Current = 250mADC)
0.050
0.045
0.040
Turn-Off (ms)
0.035
0.030
0.025
0.020
0.015
0.010
0.005
0
0
5
10
15
20
25
30
35
40
45
50
50mA
30mA
20mA
10mA
5mA
LED Forward Current (mA)
LED Forward Current (mA)
10
9
8
7
6
5
4
3
2
1
0
PLA140
Typical On-Resistance vs. Temperature
(Load Current = 250mADC; I
F
= 5mADC)
5.0
4.5
4.0
3.5
3.0
2.5
2.0
1.5
1.0
0.5
0
-40
PLA140
Typical I
F
for Switch Operation
vs. Temperature
(Load Current = 250mADC)
5.0
4.5
4.0
3.5
3.0
2.5
2.0
1.5
1.0
0.5
0
-40
PLA140
Typical I
F
for Switch Dropout
vs. Temperature
(Load Current = 250mADC)
On-Resistance (Ω)
LED Current (mA)
-40
-20
0
20
40
60
80
100
-20
0
20
40
60
80
100
LED Current (mA)
-20
0
20
40
60
80
100
Temperature (°C)
Temperature (°C)
Temperature (°C)
250
200
150
100
50
0
-50
-100
-150
-200
-250
-2.0 -1.5
PLA140
Typical Load Current vs. Load Voltage
(Ambient Temperature = 25°C; I
F
= 5mADC)
1.2
1.0
Load Current (A)
0.8
0.6
0.4
0.2
-1.0
-0.5
0
0.5
1.0
1.5
2.0
PLA140
Energy Rating Curve
Load Current (mA)
0
10µs 100µs 1ms 10ms 100ms
Time
1s
10s 100s
Load Voltage (V)
*The Performance data shown in the graphs above is typical of device performance. For guaranteed parameters not indicated in the written specifications, please contact
our application department.
4
www.clare.com
Rev. 5
PLA140
Mechanical Dimensions
6 Pin DIP Through Hole (Standard)
7.620
±
.254
(.300
±
.010)
3.302
(.130)
6.350
±
.127
(.250
±
.005)
9.144
±
.508
(.360
±
.020)
8.382
±
.635
(.330
±
.025)
2.540
±
.127
(.100
±
.005)
PC Board Pattern
(Top View)
6-.800 DIA.
(6-.031 DIA.)
9.144
(.360)
6.350
±
.127
(.250
±
.005)
2.540
±
.127
(.100
±
.005)
7.620
±
.127
(.300
±
.005)
7.239 TYP.
(.285)
.457
±
.076
(.018
±
.003)
5.080
±
.127
(.200
±
.005)
6 Pin DIP Surface Mount (“S” Suffix)
7.620
±
.254
(.300
±
.010)
4.445
±
.127
(.175
±
.005)
3.302
(.130)
.635 TYP.
(.025)
.254 TYP.
(.010)
6.350
±
.127
(.250
±
.005)
8.382
±
.635
(.330
±
.025)
2.540
±
.127
(.100
±
.005)
PC Board Pattern
(Top View)
2.540
±
.127
(.100
±
.005)
9.525
±
.254
(.375
±
.010)
1.905
±
.127
(.075
±
.005)
8.305
±
.127
(.327
±
.005)
.457
±
.076
(.018
±
.003)
1.499
±
.127
(.059
±
.005)
Tape and Reel Packaging for 6 Pin Surface Mount Package
Using timers in micropython is also very easy. To use timers, you need to import the Timer library. from pyb import Timer Let's take a look at the basic usage first, and then explain it in detail [lis...
#includereg52.h //Include the header file. Generally, no modification is required. The header file contains the definition of special function registers.
sbit LED1 = P2^0;sbit LED = P2^1; //Define LED...
There is no definition for User Leds in the user manual, only an ADS project for an LED. However, after compiling and downloading the bin to the board and running it, User Leds does not seem to respon...
[align=center][align=left]As a leader and innovator in the field of test and measurement, Tektronix has launched various solutions that have provided strong support for many major advances in the past...
[color=blue][font=Arial][color=#800080]http://www.youtube.com/watch?v=cnsaDc6criM[/color][/font][/color] [color=blue][font=Arial]A friend sent me a link, hehe[/font][/color]...
This program is written to simulate the serial port hardware mechanism. When used, a timed interrupt can be set with a time interval of 1/4 baud rate. The receiving function is called once for ea...[Details]
The Mobile Industry Processor Interface (MIPI) Alliance is an organization responsible for promoting the standardization of software and hardware in mobile devices. It has released the D-PHY specif...[Details]
I. Introduction
In the field of power conversion, isolated converters (forward, flyback, and double-ended) with low output DC voltage all use MOSFET as the rectifier device. Since these devi...[Details]
DSP (digital signal processor) is used more and more frequently in today's engineering applications. There are three main reasons for this: first, it has powerful computing power and is capable of ...[Details]
Battery life is critical for portable applications. For applications such as smoke detectors, security devices, and thermostats, factory-installed batteries need to last for more than 10 years. The...[Details]
1 Introduction
Ultrasonic waves have strong directivity, slow energy consumption, and can propagate over long distances in a medium, so they are used for distance measurement. Ultrasonic detec...[Details]
The serial interface real-time clock chip DS1302 launched by Dallas Company in the United States can trickle charge the backup battery of the clock chip. Due to the main features of the chip such a...[Details]
Introduction
Nowadays, people pay more and more attention to the security alarm system, and people have higher and higher requirements for the functions and performance of the alarm. This paper prop...[Details]
Currently, each country is developing its own USB interface
charging specifications
, which leads to a major problem that a USB interface
charging
device manufactured in one country...[Details]
0 Introduction
Ultrasonic waves
are mechanical waves with a frequency of more than 20KHz, and the propagation speed in the air is about 340 m/s (at 20°C). Ultrasonic waves can be gene...[Details]
1 Introduction to LED
With the development of science and technology, people have higher and higher requirements on automobile light sources. LED (Light Emitting Diode) has gradually attracted...[Details]
The production process of lithium batteries does not mention the previous processes such as material preparation, winding, liquid injection, and packaging, but only talks about the final formation ...[Details]
At present, with the diversification of portable products and the almost harsh requirements for audio and video parts, the power consumption requirements of the whole machine have been raised to a ...[Details]
summary
This article will briefly analyze the success and shortcomings of high-frequency DC-DC switching power supplies in the process of miniaturization (the second basic goal), and propose m...[Details]