transient voltage suppressor (TVS) relay protection,
which is designed to meet the requirements of
EN50130-4 (installation class 3).
The relay output is constructed with efficient
MOSFET switches and photovoltaic die that use
Clare's patented OptoMOS architecture. The input,
a highly efficient GaAlAS infrared LED, controls the
optically coupled output.
The CPC1335 is available in an 8-pin, space-saving
surface-mount package.
Transient Protection Characteristics
Peak Pulse Power
600W
V
WM
40.2V
Features
•
100% Solid State
•
Low Drive Power Requirements (TTL/CMOS
Compatible)
•
No Moving Parts
•
High Reliability
•
Arc-Free With No Snubbing Circuits
•
3750V
rms
Input/Output Isolation
•
No EMI/RFI Generation
•
Machine Insertable, Wave Solderable
Approvals
•
UL Recognized Component: File #E76270
•
EN/IEC 60950 Compliant
•
CSA Certified Component: Certificate # 1172007
Ordering Information
Applications
•
•
•
•
•
•
•
•
•
Security
Sensor Circuitry
Instrumentation
Multiplexers
Data Acquisition
Electronic Switching
I/O Subsystems
Aerospace
Industrial Controls
Part #
CPC1335P
CPC1335PTR
Description
8-Pin Flatpack (50/Tube)
8-Pin Flatpack (1000/Reel)
Pin Configuration
1
2
+ Control
– Control
3
4
8
7
6
5
TVS +/-
TVS -/+
Load
Load
Switching Characteristics of
Normally Open (Form A) Devices
Control
I
LOAD
+
90%
10%+
t
OFF
t
ON
Pb
RoHS
2002/95/EC
e
3
www.clare.com
1
DS-CPC1335-R05
CPC1335
Absolute Maximum Ratings
Parameter
SSR Output Blocking Voltage
TVS Working Voltage, Maximum (V
WM
)
Reverse Input Voltage
Input Control Current
Peak (10ms)
Input Power Dissipation
1
SSR Output Power Dissipation
2
TVS Peak Pulse Power (P
PP
)
(I
PP
=9.3A, 10/1000μs pulse)
Isolation Voltage Input to Output
Operating Temperature
Storage Temperature
1
2
Ratings
350
40.2
5
50
1
150
400
600
3750
-40 to +85
-40 to +125
Units
V
P
V
V
mA
A
mW
mW
W
V
rms
°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 conditions
beyond those indicated in the operational sections of this
data sheet is not implied.
Derate Linearly 1.33 mw / ºC
Derate Linearly 6.67 mw / ºC
Electrical absolute maximum ratings are at 25°C
Electrical Characteristics
Parameters
Output Characteristics @ 25°C
Load Current
Continuous
1
Peak
On-resistance
2
Off-State Leakage Current
Switching Speeds
Turn-On
Turn-Off
Output Capacitance
Input Characteristics @ 25°C
Input Control Current
3
Input Voltage Drop
Reverse Input Current
Common Characteristics @ 25°C
Input to Output Capacitance
1
2
3
Conditions
Symbol
Min
Typ
Max
Units
I
F
=2mA
t=10ms
I
L
=100mA
V
L
=350V
I
L
I
LPK
R
ON
I
LEAK
T
ON
T
OFF
C
OUT
I
F
V
F
I
R
C
I/O
-
-
-
-
-
-
-
-
0.9
-
-
-
-
25
-
-
-
40
-
1.2
-
3
100
350
35
1
10
10
-
1
1.4
10
-
mA
Ω
μA
I
F
=2mA, V
L
=10V
50V; f=1MHz
I
L
=100mA
I
F
=5mA
V
R
=5V
-
ms
pF
mA
V
μA
pF
Load current derates linearly from 100 mA @ 25ºC to 70ma @ 85ºC
Measurement taken within 1 second of on time
For applications requiring high temp operation (greater than 60ºC) a minimum LED drive current of 3mA is recommended.
Electrical Characteristics: TVS
Parameters
Output Characteristics @ 25°C
Clamping Voltage
Reverse Breakdown Voltage
Reverse Leakage Current
Conditions
I
PP
=9.3A
I=1mA
V
WM
=40.2V
Symbol
V
C
V
BR
I
L
Min
-
44.4
-
Typ
-
-
-
Max
66.5
-
5
Units
V
V
μA
2
www.clare.com
R05
CPC1335
PERFORMANCE DATA*
CPC1335
Typical LED Forward Voltage Drop
(N=50, T
A
=25ºC, I
F
=5mA)
25
20
15
10
5
0
0.30
0.35
0.40 0.45 0.50 0.55
LED Current (mA)
0.60
35
30
Device Count (N)
25
20
15
10
5
0
CPC1335
Typical I
F
for Switch Operation
(N=50, T
A
=25ºC, I
L
=100mA)
25
20
15
10
5
0
CPC1335
Typical Turn-On Time
(N=50, T
A
=25ºC, I
L
=100mA, I
F
=5mA)
1.17
1.19
1.21
1.23
1.25
LED Forward Voltage Drop (V)
Device Count (N)
Device Count (N)
0.50
0.60
0.70 0.80 0.90
Turn-On (ms)
1.00
1.10
25
20
15
10
5
0
CPC1335
Typical Turn-Off Time
(N=50, T
A
=25ºC, I
L
=100mA, I
F
=5mA)
35
30
Device Count (N)
CPC1335
Typical On-Resistance Distribution
(N=50, T
A
=25ºC, I
L
=120mA)
35
30
Device Count (N)
25
20
15
10
5
0
CPC1335
Typical Blocking Voltage Distribution
(N=50, T
A
=25ºC)
Device Count (N)
25
20
15
10
5
0
0.26
0.28
0.30 0.32 0.34
Turn-Off (ms)
0.36
0.38
26
27
28
29
30
On-Resistance (Ω)
31
32
377
388
399 410 421 432
Blocking Voltage (V
P
)
443
CPC1335
Typical LED Forward Voltage Drop
vs. Temperature
LED Forward Voltage Drop (V)
1.8
1.6
1.4
1.2
1.0
0.8
-40
-20
0
20
40
60
80
Temperature (ºC)
100
120
3.0
2.5
Turn-On Time (μs)
2.0
1.5
CPC1335
Typical Turn-On Time vs. Temperature
(V
L
=10V)
Turn-Off Time (ms)
1.0
0.9
CPC1335
Typical Turn-Off Time vs. Temperature
(V
L
=10V)
I
F
=1mA
0.8
0.7
0.6
0.5
0.4
0.3
I
F
=2mA
I
F
=5mA
I
F
=1mA
I
F
=50mA
I
F
=10mA
I
F
=5mA
I
F
=2mA
1.0
0.5
0.0
-40
I
F
=5mA
-20
0
20
40
60
Temperature (ºC)
80
100
0.2
-40
-20
0
20
40
60
Temperature (ºC)
80
100
3500
3000
Turn-On Time (μs)
CPC1335
Turn-On Time vs. LED Forward Current
(T
A
=25ºC)
476
474
Turn-Off Time (μs)
472
470
468
466
464
462
CPC1335
Typical Turn-Off vs. LED Forward Current
(T
A
=25ºC)
0.28
0.24
0.20
0.16
0.12
0.08
-40
CPC1335
Typical LED Current to Operate
vs. Temperature
(I
L
=70mA)
2500
2000
1500
1000
500
0
0
10
20
30
40
LED Forward Current (mA)
50
0
10
20
30
40
LED Forward Current (mA)
50
LED Current (mA)
-20
0
20
40
60
Temperature (ºC)
80
100
*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.
R05
www.clare.com
3
CPC1335
PERFORMANCE DATA*
CPC1335
Typical On-Resistance vs. Temperature
(I
L
=50mA, I
F
=3mA)
Blocking Voltage (V
P
)
CPC1335
Typical Blocking Voltage
vs. Temperature
430
425
420
415
410
405
400
395
-40
-20
0
20
40
60
80
100
Load Current (mA)
180
160
140
120
100
80
60
40
20
0
CPC1335
Typical Load Current vs. Temperature
60
On-Resistance (Ω)
50
40
30
20
10
0
I
F
= 5mA
I
F
= 2mA
-40
-20
0
20
40
60
Temperature (ºC)
80
100
-40
-20
0
20
40
60
80
100
120
Temperature (ºC)
Temperature (ºC)
0.016
0.014
CPC1335
Typical Leakage vs. Temperature
Measured Across Pins 5 & 6
(V
L
=350V)
Load Current (mA)
150
100
50
0
-50
-100
-150
CPC1335
Typical Load Current vs. Load Voltage
(T
A
=25ºC, I
F
=5mA)
CPC1335
Energy Rating Curve
1.0
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
10μs 100μs 1ms 10ms 100ms
Time
Leakage (μA)
0.012
0.010
0.008
0.006
0.004
0.002
0
-40
-20
0
20
40
60
Temperature (ºC)
80
100
Load Current (A)
-3
-2
-1
0
1
Load Voltage (V)
2
3
1s
10s 100s
52
TVS Breakdown Voltage (V)
Leakage Current (nA)
51
50
49
48
47
46
45
-40
-20
0
20
40
60
Temperature (ºC)
80
100
25
20
15
10
5
Peak Pulse Power (% P
PP
@ 25ºC)
CPC1335
TVS Diode Breakdown Voltage
vs. Temperature
(Pins 7 & 8)
CPC1335
TVS Diode Leakage vs. Temperature
(Pins 7 & 8)
(V
L
=40V)
CPC1335
TVS Derating Curve
120
100
80
60
40
20
0
-40
-20
0
20
40
60
Temperature (ºC)
80
100
0
-40
-20
0
20
40
60
Temperature (ºC)
80
100
CPC1335
TVS Pulse Waveform 10/1000 (μs)
110
100
90
80
70
60
50
40
30
20
10
0
P
PP
- Peak Pulse Current (% I
PP
)
1
10
100
10
4
1000
Time (μs)
10
5
10
6
*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
R05
CPC1335
Manufacturing Information
Soldering
For proper assembly, the component must be
processed in accordance with the current revision
of IPC/JEDEC standard J-STD-020. Failure to
follow the recommended guidelines may cause
permanent damage to the device resulting in impaired
performance and/or a reduced lifetime expectancy.
Washing
Clare does not recommend ultrasonic cleaning or the
use of chlorinated solvents.
Pb
RoHS
2002/95/EC
e
3
MECHANICAL DIMENSIONS
8 Pin Flatpack Package
2.540 ± 0.127
(0.100 ± 0.005)
6.350 ± 0.127
(0.250 ± 0.005)
9.398 ± 0.127
(0.370 ± 0.005)
2.159 TYP.
(0.085 TYP.)
7.620 ± 0.254
(0.300 ± 0.010)
2.286 MAX.
(0.090 MAX.)
Recommended PCB Land Pattern
2.54
(0.10)
0.635 ± 0.127
(0.025 ± 0.005)
1.55
(0.0610)
8.70
(0.3425)
0.203
(0.008)
8.077 ± 0.127
(0.318 ± 0.005)
9.652 ± 0.381
(0.380 ± 0.015)
2.159 TYP.
(0.085 TYP.)
0.65
(0.0255)
0.457 ± 0.076
(0.018 ± 0.003)
Dimensions
mm
(inches)
Tape and Reel Packaging for 8 Pin Flatpack Package
W = 16.30 max
(0.642 max)
330.2 DIA.
(13.00 DIA.)
1
8
Bo = 10.30
(0.406)
Top Cover
Tape
K
0
= 2.70
(0.106)
K
1
= 2.00
(0.079)
Top Cover
Tape Thickness
0.102 MAX.
(0.004 MAX.)
P = 12.00
(0.472)
Ao = 10.30
(0.406)
Dimensions
mm
(inches)
Embossed Carrier
User Direction of Feed
Embossment
NOTE:
Tape dimensions not shown comply with JEDEC Standard EIA-481-2
For additional information please visit our website at: www.clare.com
Clare, Inc. makes no representations or warranties with respect to the accuracy or completeness of the contents of this publication and reserves the right to make changes to specifications
and product descriptions at any time without notice. Neither circuit patent licenses nor indemnity are expressed or implied. Except as set forth in Clare’s Standard Terms and Conditions of
Sale, Clare, Inc. assumes no liability whatsoever, and disclaims any express or implied warranty, relating to its products including, but not limited to, the implied warranty of merchantability,
fitness for a particular purpose, or infringement of any intellectual property right.
The products described in this document are not designed, intended, authorized or warranted for use as components in systems intended for surgical implant into the body, or in other
applications intended to support or sustain life, or where malfunction of Clare’s product may result in direct physical harm, injury, or death to a person or severe property or environmental
damage. Clare, Inc. reserves the right to discontinue or make changes to its products at any time without notice.
[color=#000000][size=5][font=宋体][size=10.5pt]Generally, when audio and electronic devices are working, positive and negative power supplies are required. However, in vehicles such as cars, ships, and ...
Linux Basics 1. "Linux and Unix Shell Programming Guide" [51CTO recommends watching online: "Linux Standard Tutorial"] C Language Basics 1. "C Primer Plus, 5th Edition" by Stephen Prata [US] 2. "The C...
Yesterday I used the latest CUBEMX 4.10 and STM32CubeL0 Firmware Package V1.1.2 to generate a simple program for lighting up the STM32L053 IO port:But the keil project compilation failed and reported ...
I installed WinCE 4.2 EVC, and ActiveSync can perform WinCE simulation debugging in this environment. The program was transferred to the simulation environment by EVC itself, and then VS 2005 was inst...
At present, the synchronous rectification technology of power supply is very mature. In many mass-produced products, various circuit structures such as forward, flyback, and half-bridge have used this...
I am studying digital signal processing in FPGA and would like to find some relevant information.[if gte mso 9]>MicrosoftInternetExplorer402DocumentNotSpecified7.8Normal0MicrosoftInternetExplorer402Do...
Photovoltaic inverters are the core equipment of photovoltaic systems. Their main function is to convert the direct current generated by photovoltaic modules into alternating current that meets the...[Details]
"Originally, there are many people who can design very good
chips
, but the market does not give domestic
chips
the opportunity to iterate, and domestic companies cannot give engine...[Details]
1. Test conditions Hardware: STM32L432KC Main frequency: 80MHz Compiler: IAR 8.20.1 Compiler options: High Speed no size constraints CRC generator polynomial: 0x782f 2. Test Method The softwar...[Details]
The status of interrupts in developing embedded systems is absolutely unquestionable. In the era of C51 microcontrollers, there were only 5 interrupts, including 2 external interrupts, 2 timer/counte...[Details]
When Amazon launched its first
cloud computing
service, the outside world was not optimistic about this direction, as it had high investment, low profits and many uncertainties. Let's follo...[Details]
1. Photovoltaic inverter installation process
1. Preparation before installation
Are the product accessories, installation tools and parts complete? Is the installation environmen...[Details]
This is my first time writing an STM32 program. I have many questions to ask. I want to convert the data of the SO of MAX6675 into the actual temperature and read it out using the serial port tool. I...[Details]
On the eve of Qingming Festival, the trade friction between China and the United States is on the rise. Let's follow the automotive electronics editor to learn more about the relevant content. Ba...[Details]
On April 16, the U.S. Department of Commerce announced that it would ban U.S. companies from selling parts, goods, software, and technology to
ZTE
for seven years, until March 13, 2025.
Th...[Details]
The parking assistance system is an important application of the active anti-collision system of automobiles in low-speed and complex urban environments, and is also a specific embodiment of the inte...[Details]
The application of millimeter wave technology in mobile communications also involves a series of technical problems, including the large propagation loss of millimeter waves and the susceptibility ...[Details]
According to foreign media reports, the 2018 GMC Terrain Denali is equipped with multiple collision detection systems, and a recent test verified the safety of the system. Even when driving in a bu...[Details]
Artificial Intelligence (AI) is undoubtedly the hottest topic in the technology industry in the past one or two years. In addition to the huge investments made by technology giants, financial and o...[Details]
With the large-scale development of the domestic household photovoltaic market and the improvement of component and inverter technology, the system cost has dropped significantly in the past year. The...[Details]
Using the WWDG of STM32F030, it is found that the MCU will not be reset under STOP, just like the sleep mode of STM8S. Paste the watchdog code: /******************************************************...[Details]