OVFSG7C8

OVFSG7C8

  • Description:LED GREEN CLEAR T/H
  • Series:-
  • Mfr:TT Electronics/Optek Technology
  • Package:Tube

SKU:127ccc96d541 Category: Brand:

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Product Detailed Parameters

  • Description:LED GREEN CLEAR T/H
  • Series:-
  • Mfr:TT Electronics/Optek Technology
  • Package:Tube
  • Color:Green
  • Configuration:Standard
  • Lens Color:Colorless
  • Lens Transparency:Clear
  • Millicandela Rating:-
  • Lens Style:Round with Domed Top
  • Lens Size:3.00mm Dia
  • Voltage - Forward (Vf) (Typ):3.6V
  • Current - Test:30mA
  • Viewing Angle:70°
  • Mounting Type:Through Hole
  • Wavelength - Dominant:527nm
  • Wavelength - Peak:-
  • Features:-
  • Package / Case:4-DIP (0.200", 5.08mm)
  • Supplier Device Package:-
  • Size / Dimension:7.60mm L x 7.60mm W
  • Height (Max):5.94mm
  • Grade:-
  • Qualification:-

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OVFSG7C8

Buying Guide
Summary

TT Electronics/Optek Technology OVFSG7C8 is used in LED Indication - Discrete category where optical output and mechanical fit must be validated in the real enclosure. Key specs include Description (LED GREEN CLEAR T/H), Package/case (4-DIP (0.200", 5.08mm)), and Mounting (Through Hole).

Selection Notes
  • For OVFSG7C8, confirm the mounting type (Through Hole) matches your assembly process and reliability requirements.
  • Verify the supply current (30mA) under your operating conditions and modes.
  • Confirm the emission wavelength (527nm) is compatible with your optical path.
Alternates & Substitutions
  • Treat package/case 4-DIP (0.200", 5.08mm), mounting Through Hole, packaging Tube as the first filter, then move on to electrical and performance checks.
  • For optoelectronics, validate brightness and color in your real enclosure and ambient conditions.
  • If you need a second source, provide (package 4-DIP (0.200", 5.08mm)) and we will suggest options to evaluate under a clear test plan.
FAQ

What details help you quote OVFSG7C8 quickly?
Provide the part number (OVFSG7C8), quantity, required lead time, and any packaging or documentation requirements.

Who is the manufacturer of OVFSG7C8?
TT Electronics/Optek Technology

Which Configuration is specified for OVFSG7C8?
Standard

Can you confirm the Lens Style for OVFSG7C8?
Round with Domed Top

Application Scenarios

In real deployments, for many LED Indication - Discrete designs, TT Electronics/Optek Technology OVFSG7C8 is vetted against electrical margins, thermal headroom, and mechanical integration before the BOM is frozen. In practice, engineers often validate polarity, resistor/driver choice, and thermal rise to avoid color shift and uneven brightness across production units. For isolation, engineers validate CMTI, propagation delay, and aging; for indicators, they validate readability across ambient light and temperature. Within practice, optoelectronics are judged by stability in the enclosure: thermal rise, optics, alignment, and contamination over time. In outdoor indicators and sensors, lens materials and sealing strategy are validated because UV and moisture change optical performance over time. In industrial control panels, indicator LEDs provide clear status feedback near motors and switching supplies, where EMI and ambient light can hide weak indicators.

Compatibility Advice
  • With the final enclosure and cabling, validate thermal headroom in the final enclosure so behavior stays stable after heat soak and airflow changes. This keeps qualification evidence reproducible later.
  • In practice, verify second-source equivalence by re-checking ratings, timing, and thermal limits rather than assuming drop-in compatibility before committing to volume builds.
Project Fit
  • Works best when you can test and document TT Electronics/Optek Technology OVFSG7C8 for LED Indication - Discrete integration in the final enclosure, typically when you need a design that remains robust across temperature, supply variation, and assembly tolerance. On the other hand, usually not a good fit when integrating TT Electronics/Optek Technology OVFSG7C8 for LED Indication - Discrete, the design cannot be measured in a way that proves margins, because the behavior cannot be verified in a repeatable way.
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