10ACBEW_15S4

10ACBEW_15S4

$12.81
  • Description:ENCLOSED AC DC CONVERTERS 1 OUTP
  • Series:10ACBEW_4 (10W)
  • Mfr:GAPTEC Electronic
  • Package:Retail Package

SKU:7d47f4a9914e Category: Brand:

  
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Product Detailed Parameters

  • Description:ENCLOSED AC DC CONVERTERS 1 OUTP
  • Series:10ACBEW_4 (10W)
  • Mfr:GAPTEC Electronic
  • Package:Retail Package
  • Type:Enclosed
  • Number of Outputs:1
  • Voltage - Input:85 ~ 305 VAC, 100 ~ 430 VDC
  • Voltage - Output 1:15V
  • Voltage - Output 2:-
  • Voltage - Output 3:-
  • Voltage - Output 4:-
  • Current - Output (Max):700mA
  • Applications:ITE (Commercial)
  • Features:-
  • Operating Temperature:-40°C ~ 85°C (With Derating)
  • Efficiency:81%
  • Mounting Type:Through Hole
  • Package / Case:8-DIP Module
  • Size / Dimension:2.17" L x 1.77" W x 0.83" H (55.0mm x 45.0mm x 21.0mm)
  • Approval Agency:cURus, UL
  • Standard Number:-
  • Power (Watts):11 W

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10ACBEW_15S4

Buying Guide
Summary

GAPTEC Electronic 10ACBEW_15S4 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 (8-DIP Module), Mounting (Through Hole), and Packaging (Retail Package).

Selection Notes
  • For 10ACBEW_15S4, verify the supply current (700mA) under your operating conditions and modes.
  • Confirm the operating temperature range (-40°C ~ 85°C (With Derating)) meets your deployment conditions.
  • Confirm Power (Watts) (11 W) and ensure it matches your integration requirements.
Alternates & Substitutions
  • In AC DC Converters designs, define acceptance criteria up front so alternates can be qualified and repeated in production.
  • Begin with the constraints that are hardest to change later: package/case 8-DIP Module, mounting Through Hole, packaging Retail Package.
  • For power substitutions, align input range 85 ~ 305 VAC, 100 ~ 430 VDC and re-check compensation/layout guidance because stability and thermals are often alternate-specific.
  • Confirm startup states and fault behavior are equivalent so the alternate does not change system behavior during brownouts or resets.
FAQ

What temperature range is listed for 10ACBEW_15S4?
-40°C ~ 85°C (With Derating)

Can you confirm the package/case for 10ACBEW_15S4?
8-DIP Module

What Size / Dimension is listed for 10ACBEW_15S4?
2.17" L x 1.77" W x 0.83" H (55.0mm x 45.0mm x 21.0mm)

Which packaging option is listed for 10ACBEW_15S4?
Retail Package

Application Scenarios

In real deployments, gAPTEC Electronic 10ACBEW_15S4 is a common choice in AC DC Converters applications where the goal is to keep validation repeatable and avoid edge-case surprises during bring-up. Teams often favor power parts with clear documentation and repeatable measurement points, because bring-up depends on what can be verified. A disciplined power selection improves robustness by reducing sensitivity to layout parasitics and component tolerance. In automotive infotainment, noise and thermal constraints drive converter selection so audio and RF performance remain stable. Within outdoor IoT enclosures, derating and surge resilience matter because supply quality and temperature drift are less controlled. In edge compute nodes, thermal headroom and EMI behavior often dominate board-level integration risk in compact airflow paths.

Compatibility Advice
  • For second-source planning, confirm the converter matches input transients and sequencing needs, including startup, brownout, and fault behavior across temperature and supply corners.
  • In practice, confirm compensation and stability with the chosen capacitor ESR so the loop stays stable across substitutions during bring-up and production test.
Project Fit
  • Good fit when you can validate GAPTEC Electronic 10ACBEW_15S4 for AC DC Converters integration on the assembled PCB, and you need predictable rails under load steps and can validate stability, EMI, and thermal rise in the final layout.
  • Poor fit when thermal headroom is too tight to keep margins stable after heat soak, because the key behaviors cannot be confirmed on the assembled system.
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