AZ832-2C-5DE >
AZ832-2C-5DE
American Zettler
RELAY GENERAL PURPOSE DPDT 3A 5V
2447 Pcs New Original In Stock
General Purpose Relay DPDT (2 Form C) 5VDC Coil Through Hole
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AZ832-2C-5DE
5.0 / 5.0 - (29 Ratings)

AZ832-2C-5DE

Product Overview

11275355

DiGi Electronics Part Number

AZ832-2C-5DE-DG

Manufacturer

American Zettler
AZ832-2C-5DE

Description

RELAY GENERAL PURPOSE DPDT 3A 5V

Inventory

2447 Pcs New Original In Stock
General Purpose Relay DPDT (2 Form C) 5VDC Coil Through Hole
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 4.2904 4.2904
  • 200 1.7120 342.4000
  • 500 1.6546 827.3000
  • 1000 1.6274 1627.4000
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AZ832-2C-5DE Technical Specifications

Category Power Relays, Over 2 Amps

Manufacturer American Zettler

Packaging Box

Series AZ832

Product Status Active

Mounting Type Through Hole

Coil Voltage 5VDC

Contact Form DPDT (2 Form C)

Contact Rating (Current) 3 A

Switching Voltage 125VAC, 30VDC - Max

Load - Max Switching 250VA, 60W

Coil Current 40 mA

Coil Type Non Latching

Features -

Termination Style PC Pin

Seal Rating Sealed - Fully

Coil Insulation Class F

Must Operate Voltage 3.75 VDC

Must Release Voltage 0.5 VDC

Operate Time 5 ms

Release Time 2 ms

Operating Temperature -40°C ~ 85°C

Contact Material Silver Palladium (AgPd), Gold (Au)

Approval Agency cUR, UL

Relay Type General Purpose

Grade -

Qualification -

Coil Resistance 125 Ohms

Base Product Number AZ832-2C

Datasheet & Documents

HTML Datasheet

AZ832-2C-5DE-DG

Environmental & Export Classification

RoHS Status ROHS3 Compliant
ECCN EAR99
HTSUS 8536.41.0020

Additional Information

Other Names
3385-AZ832-2C-5DE
Standard Package
25

Alternative Parts

View Details
PART NUMBER
MANUFACTURER
QUANTITY AVAILABLE
DiGi PART NUMBER
UNIT PRICE
SUBSTITUTE TYPE
V23105A5301A201
TE Connectivity Potter & Brumfield Relays
2989
V23105A5301A201-DG
2.3792
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5.0/5.0-(Show up to 5 Ratings)
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Dec 02, 2025
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Frequently Asked Questions (FAQ)

Can the AZ832-2C-5DE be used as a direct replacement for the V23105A5301A201 in a 5V microcontroller-driven industrial control system, and what design-in risks should be considered?

Yes, the AZ832-2C-5DE can serve as a functional substitute for the V23105A5301A201 in 5VDC coil applications, but careful validation is required. While both relays support DPDT configuration and similar load ratings, the AZ832-2C-5DE has a lower must-operate voltage (3.75V vs ~4.2V typical on the V23105), which improves performance on marginally powered microcontroller outputs. However, ensure the driver circuit can handle the AZ832-2C-5DE's 40 mA coil current and 125Ω coil resistance, especially when multiplexed across multiple relays. Always include a flyback diode rated for at least 1A to protect the switching transistor from inductive kickback during release. Verify PCB layout spacing for 125VAC isolation if used in mixed-signal environments.

What are the reliability risks of using the AZ832-2C-5DE in high-temperature environments near the upper operating limit of 85°C?

Operating the AZ832-2C-5DE near 85°C increases thermal stress on internal components and can accelerate contact degradation, especially under continuous 3A switching loads. The Class F coil insulation provides good thermal endurance, but sustained high temperature reduces contact life due to faster silver palladium oxidation and potential outgassing within the sealed enclosure. To mitigate risk, derate the switched current to ≤2A at elevated temperatures and avoid frequent switching cycles. Ensure adequate PCB heat dissipation and avoid placing the relay near power semiconductors or transformers. Monitor coil resistance drift over time in field-deployed units as an early failure indicator.

How does the gold-plated contact material in the AZ832-2C-5DE impact its performance in low-level signal switching applications?

The gold-plated silver palladium (AgPd) contacts in the AZ832-2C-5DE improve reliability for low-voltage or low-current switching (<10V, <100mA), where contact resistance stability is critical. Gold minimizes oxidation and ensures consistent contact interface over time, even in humid environments. However, gold plating is thin and wears under high-current switching—using this relay for both high-power loads and sensitive signal switching in the same design risks degrading the gold layer prematurely. If your design requires both high- and low-level switching, consider using separate relays or ensure the AZ832-2C-5DE is reserved for loads above 5V/100mA to extend service life.

What PCB layout and mounting practices should be followed when integrating the AZ832-2C-5DE in safety-certified equipment?

When using the AZ832-2C-5DE in UL- or cUR-certified systems, maintain minimum creepage and clearance distances of 6 mm between coil and contact terminals to comply with insulation requirements for 125VAC. Use a PCB layout that avoids routing high-voltage traces under the relay base. Leverage the through-hole mounting style with full seating to ensure mechanical stability and optimal heat transfer. Include a copper pour connected to a ground plane for shielding, but ensure spacing rules are observed. Validate with Hi-Pot testing at 1.5 kVAC for one minute if designing for industrial safety standards. Always reference UL file E48591 for agency-approved use conditions.

What switching loads should be derated when using the AZ832-2C-5DE for DC versus AC applications, and why does it matter?

For the AZ832-2C-5DE, DC loads must be significantly derated compared to AC due to the absence of natural current zero-crossing, which makes arcing during contact separation more severe. While the relay is rated for 3A at 30VDC (60W), resistive loads near this limit can lead to rapid contact erosion and welding. For inductive DC loads like solenoids or motors, limit the load to 1A at 30VDC and always use transient suppression (e.g., flyback diode or RC snubber). In contrast, 125VAC switching at 3A (250VA) is less harmful due to arc self-extinguishing at zero-crossing. Treating DC and AC ratings interchangeably is a common design-in error that leads to premature relay failure—always apply a 50% safety margin on DC load current in high-cycle applications.

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