EEWORLDEEWORLDEEWORLD

Part Number

Search

AZ8-1CT-12DS

Description
Electromechanical Relay,
CategoryMechanical and electronic products    relay   
File Size133KB,4 Pages
ManufacturerAZETTLER
Websitehttp://www.azettler.com/
Download Datasheet Parametric Compare View All

AZ8-1CT-12DS Overview

Electromechanical Relay,

AZ8-1CT-12DS Parametric

Parameter NameAttribute value
Reach Compliance Codecompliant
Base Number Matches1
AZ8
MINIATURE
PC BOARD RELAY
FEATURES
Subminiature size
High sensitivity, 110 mW pickup
Coils to 48 VDC
Hermetically sealed version available
Epoxy sealed for automatic wave soldering
Contacts rated at 3, 6 or 10 Amps
Withstands 6 kV IEEE Lightning Surge (special order)
Class B insulation (130°C) standard
Class F insulation (155°C) version available
UL, CUR file E44211
VDE approved versions available
GENERAL DATA
Life Expectancy
Mechanical
Electrical Light Duty
Medium Duty
Heavy Duty
Operate Time (typical)
Minimum operations
100 million operations
3 x 10
5
at 3 A, 120 VAC
1.8 x 10
5
at 6 A, 120 VAC
1 x 10
5
at 10 A, 120 VAC
5 ms at nominal coil voltage
2 ms at nominal coil voltage
(with no coil suppression)
CONTACTS
Arrangement
Ratings
Light Duty
SPDT (1 Form C)
SPST (1 Form A) 10 A version only
Resistive load:
Max. switched power: 100 W or 600 VA
Max. switched current: 3 A
Max. switched voltage: 150* VDC or 300 VAC
UL Rating:
See chart on Page 3
Max. switched power: 180 W or 1800 VA
Max. switched current: 6 A
Max. switched voltage: 150* VDC or 300 VAC
UL Rating:
See chart on Page 3
Max. switched power: 300 W or 2400 VA
Max. switched current: 10 A
Max. switched voltage: 150* VDC or 300 VAC
UL Rating:
See chart on Page 3
Note: If switching voltage is greater than 30 VDC, special
precautions must be taken. Please contact the factory.
Release Time (typical)
Dielectric Strength
750 Vrms contact to contact
(at sea level for 1 min.)
3000 Vrms contact to coil
Insulation
Resistance
Dropout
Ambient Temperature
Operating
Storage
Vibration
Shock
Enclosure
Terminals
Max. Solder Temp.
Max. Solder Time
Max. Solvent Temp.
Max. Immersion Time
1000 megohms min. at 20°C, 500 VDC,
50% RH
Greater than 5% of nominal coil voltage
At nominal coil voltage
-55°C (-67°F) to 90°C (194°F) Class B
-55°C (-67°F) to 115°C (239°F) Class F
-55°C (-67°F) to 130°C (266°F) Class B
-55°C (-67°F) to 155°C (311°F) Class F
0.062" DA at 10–55 Hz, 10 g at 55–110 Hz
10 g
P.E.T. polyester
Tinned copper alloy, P.C.
270°C (518°F)
5 seconds
80°C (176°F)
30 seconds
8 grams
Medium Duty
Heavy Duty
Material
Light duty: Silver
Medium duty: Silver nickel
Heavy duty: Silver cadmium oxide
< 100 milliohms initially
Resistance
COIL
Power
At Pickup Voltage
(typical)
Standard coil: 210 mW
Sensitive coil: 140 mW
Heavy duty: 228 mW
(110 mW available)
Class B: 2.0 W 20°C (68°F) ambient
1.6 W 40°C (104°F) ambient
Class F: 2.5 W 20°C (68°F) ambient
2.1 W 40°C (104°F) ambient
At nominal coil voltage
Standard coil: 38°C (68°F)
Sensitive coil: 28°C (50°F)
Max. 130°C (266°F) Class B
Max. 155°C (311°F) Class F
Weight
Max. Continuous
Dissipation
NOTES
1.
2.
3.
4.
5.
All values at 20°C (68°F).
Relay may pull in with less than “Must Operate” value.
Other coil resistances and sensitivities available upon request.
Unsealed relays should not be dip cleaned.
Specifications subject to change without notice.
Temperature Rise
Temperature
2/27/01W

AZ8-1CT-12DS Related Products

AZ8-1CT-12DS AZ8-1CT-12DSE AZ8-1CT-24DSE AZ8-1CT-48DSE AZ8-1CT-48DS AZ8-1CT-5DSE AZ8-1CT-5DS AZ8-1CT-6DS AZ8-1CT-6DSE AZ8-1CT-9DS
Description Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay, Electromechanical Relay,
Reach Compliance Code compliant compliant compliant compliant compliant compliant compliant compliant compliant compliant
Base Number Matches 1 1 1 1 1 1 1 1 1 1
VHDL design combinational circuit, modelsim timing simulation midway output is not dynamic
I designed a 3-8 priority encoder using vhdl language. When writing a testbench and using modelsim for sequential simulation, it started normally, but an indeterminate state X appeared in the middle (...
青平果 Altera SoC
4 Working principle and advantages of switching BOB power supply
There are three common topologies for inductor- based switch architecture power supplies, namely BUCK step-down power supply , BOOST step-up power supply and BUCK-BOOST negative voltage power supply ....
wangerxian Power technology
MicroPython Newsletter Issue 11 (MicroPython 8th Anniversary)
Original: https://forum.micropython.org/viewtopic.php?t=10410p=57630#p57630 Today is MicroPython’s 8th birthday! The first line of code was written 8 years ago today, on April 29th.It’s also been exac...
dcexpert MicroPython Open Source section
Please tell me why the 15V output of the circuit in the attached picture is connected with GND
I would like to ask, in the BPA8505D in the figure below (1), why does the VCC pin output 15V DC pass through capacitor C4 before output? Doesn't the capacitor block DC?(2) Why is VCC connected to the...
一沙一世 stm32/stm8
2G Microstrip Power Divider Simulation Verification Sharing
Model buildingLoss VerificationPhase VerificationIsolation Verification...
btty038 RF/Wirelessly
[N32L43X Review] 8. FreeRTOS Porting
This article introduces porting FreeRTOS on N32F43x Download FreeRTOS source code FreeRTOS official download address: https://freertos.org/a00104.html , download FreeRTOS 202112.00 version, there is a...
805721366 Domestic Chip Exchange

Technical ResourceMore

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Datasheet   0 1 2 3 4 5 6 7 8 9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
Room 1530, 15th Floor, Building B, No. 18 Zhongguancun Street, Haidian District, Beijing Telephone: (010) 82350740 Postal Code: 100190
Copyright © 2005-2024 EEWORLD.com.cn, Inc. All rights reserved 京ICP证060456号 京ICP备10001474号-1 电信业务审批[2006]字第258号函 京公网安备 11010802033920号