10ACEW_12S4

10ACEW_12S4

$7.71
  • Description:ENCLOSED AC DC CONVERTERS 1 OUTP
  • Series:10ACEW_4 (10W)
  • Mfr:GAPTEC Electronic
  • Package:Retail Package

SKU:48ff639de510 Category: Brand:

  
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Product Detailed Parameters

  • Description:ENCLOSED AC DC CONVERTERS 1 OUTP
  • Series:10ACEW_4 (10W)
  • Mfr:GAPTEC Electronic
  • Package:Retail Package
  • Type:Enclosed
  • Number of Outputs:1
  • Voltage - Input:85 ~ 305 VAC, 100 ~ 430 VDC
  • Voltage - Output 1:12V
  • Voltage - Output 2:-
  • Voltage - Output 3:-
  • Voltage - Output 4:-
  • Current - Output (Max):830mA
  • Applications:Household Appliances, ITE (Commercial)
  • Features:-
  • Operating Temperature:-40°C ~ 85°C (With Derating)
  • Efficiency:84%
  • Mounting Type:Through Hole
  • Package / Case:6-DIP Module, 4 Leads
  • Size / Dimension:1.57" L x 1.00" W x 0.83" H (40.0mm x 25.4mm x 21.0mm)
  • Approval Agency:cURus, UL
  • Standard Number:60335-1; 62368-1
  • Power (Watts):10 W

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10ACEW_12S4

Buying Guide
Summary

GAPTEC Electronic 10ACEW_12S4 is used in AC DC Converters category in power designs where stability, startup behavior, and thermal headroom need to be measurable. Key specs include Description (ENCLOSED AC DC CONVERTERS 1 OUTP), Temperature (-40°C ~ 85°C (With Derating)), Package/case (6-DIP Module, 4 Leads), Mounting (Through Hole), and Packaging (Retail Package).

Selection Notes
  • For 10ACEW_12S4, check the efficiency (84%) under your specific load conditions to estimate thermal dissipation.
  • Confirm Current - Output (Max) (830mA) is suitable for your use case and operating conditions.
  • Ensure the package/case (6-DIP Module, 4 Leads) and land pattern match your PCB layout before procurement.
  • Check the supply current (830mA) in your power budget and thermal plan.
Alternates & Substitutions
  • For AC DC Converters substitutions, lock footprint/pinout and operating envelope first, then verify the critical performance conditions on your hardware.
  • Validate the min/max operating conditions (temperature -40°C ~ 85°C (With Derating)) and keep headroom for worst-case corners.
  • For regulators/converters, match input range 85 ~ 305 VAC, 100 ~ 430 VDC and validate startup, protection behavior, and thermal headroom under transients.
  • If you need a second source, provide (package 6-DIP Module, 4 Leads) and we will suggest options to evaluate under a clear test plan.
FAQ

Any tips for derating and validation for 10ACEW_12S4?
Validate at worst-case temperature and load, confirm thermal headroom, and check protection and startup behavior with margin.

What Efficiency does 10ACEW_12S4 have?
84%

Which Applications is specified for 10ACEW_12S4?
Household Appliances, ITE (Commercial)

What current consumption is specified for 10ACEW_12S4?
830mA

Application Scenarios

Selecting GAPTEC Electronic 10ACEW_12S4 for AC DC Converters usually comes down to meeting the system constraints that matter most: limits, interfaces, and testability in the real build. They manage conversion, sequencing, and supervision so rails remain stable under load steps, brownouts, and surge conditions. Engineers generally evaluate efficiency, thermal rise, transient response, EMI behavior, and fault handling to protect sensitive downstream circuits. In industrial sensors and gateways, power design is validated for brownouts and surges on long, noisy cable runs. Across edge compute nodes, thermal headroom and EMI behavior often dominate board-level integration risk in compact airflow paths. In automotive body electronics, converters must be robust to harness noise and intermittent load changes without injecting audible or RF interference. From a lifecycle perspective, clear selection criteria and repeatable validation practices make long-term support simpler.

Compatibility Advice
  • For AC DC Converters compatibility, validate loop stability, EMI, thermal rise, and sequencing on the assembled PCB. This keeps acceptance criteria measurable and repeatable.
Project Fit
  • Most suitable when you can verify GAPTEC Electronic 10ACEW_12S4 for AC DC Converters integration under realistic load and noise, especially if you need predictable rails under load steps and can validate stability, EMI, and thermal rise in the final layout.
  • A practical check is to define acceptance criteria and validate the key assumptions under realistic load and noise before approving substitutions.
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