YW1015A

YW1015A

  • Description:AC/DC CONVERTER +/-15V 11W
  • Series:YW (10W)
  • Mfr:Cosel USA, Inc.
  • Package:Box

SKU:2dbdeb408a12 Category: Brand:

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Product Detailed Parameters

  • Description:AC/DC CONVERTER +/-15V 11W
  • Series:YW (10W)
  • Mfr:Cosel USA, Inc.
  • Package:Box
  • Type:Enclosed
  • Number of Outputs:2
  • Voltage - Input:85 ~ 132 VAC, 110 ~ 170 VDC
  • Voltage - Output 1:15V
  • Voltage - Output 2:-
  • Voltage - Output 3:-
  • Voltage - Output 4:-
  • Current - Output (Max):350mA, 350mA
  • Applications:ITE (Commercial)
  • Features:-
  • Operating Temperature:-10°C ~ 70°C (With Derating)
  • Efficiency:75%
  • Mounting Type:Through Hole
  • Package / Case:6-DIP Module
  • Size / Dimension:2.28" L x 1.77" W x 0.73" H (58.0mm x 45.0mm x 18.5mm)
  • Approval Agency:cURus
  • Standard Number:-
  • Power (Watts):11 W

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YW1015A

Buying Guide
Summary

Cosel USA, Inc. YW1015A 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 (AC/DC CONVERTER +/-15V 11W), Temperature (-10°C ~ 70°C (With Derating)), Package/case (6-DIP Module), Mounting (Through Hole), and Packaging (Box).

Selection Notes
  • For YW1015A, check the efficiency (75%) under your specific load conditions to estimate thermal dissipation.
  • Confirm Number of Outputs (2) meets your design constraints and system-level expectations.
  • Make sure the mounting type (Through Hole) matches how the part will be installed and inspected.
  • Ensure the supply current (350mA) is acceptable for battery life and thermal limits.
Alternates & Substitutions
  • For AC DC Converters substitutions, lock footprint/pinout and operating envelope first, then verify the critical performance conditions on your hardware.
  • Treat package/case 6-DIP Module, mounting Through Hole, packaging Box as the first filter, then move on to electrical and performance checks.
  • For regulators/converters, match input range 85 ~ 132 VAC, 110 ~ 170 VDC and validate startup, protection behavior, and thermal headroom under transients.
  • To speed up alternate matching, provide your must-have constraints (package 6-DIP Module) and any compliance/traceability needs.
FAQ

Any tips for derating and validation for YW1015A?
Validate at worst-case temperature and load, confirm thermal headroom, and check protection and startup behavior with margin.

What Efficiency is listed for YW1015A?
75%

Which supply current is specified for YW1015A?
350mA

Can you confirm the Voltage - Output 1 for YW1015A?
15V

Application Scenarios

When sourcing Cosel USA, Inc. YW1015A for AC DC Converters, engineers typically focus on de-risking integration and keeping validation repeatable. 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 battery-powered products, low standby current and predictable fault handling protect runtime and data integrity. In instrumentation, clean rails reduce measurement noise so converter and analog front-end accuracy is not limited by supply ripple. In robotics platforms, sudden actuator and compute load steps stress converters, so transient response and protection behavior are validated together.

Compatibility Advice
  • For compatibility, confirm compensation and stability with the chosen capacitor ESR so the loop stays stable across substitutions during bring-up and production test.
  • In practice, confirm the converter matches input transients and sequencing needs, including startup, brownout, and fault behavior before release to production.
Project Fit
  • Works best when you can qualify Cosel USA, Inc. YW1015A for AC DC Converters integration on the assembled PCB, if you need predictable startup, fault handling, and stable rails under load steps. In contrast, a weaker fit when integrating Cosel USA, Inc. YW1015A for AC DC Converters, layout and capacitor choices vary and stability cannot be guaranteed, because the key behaviors cannot be confirmed on the assembled system.
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