Attachment Review

see the mechanical specification and pin config
2026-07-13 16_32_21-MEAN WELL SKA60 DATA SHEET.pdf - Adobe Acrobat (64-bit).png

Image

Yes — I see it: the SKA60 uses a non-uniform 8-pin bottom-view pattern, not a simple 5.08mm grid. I’ll check the current U1 footprint against those coordinates and record/fix the footprint risk.
Updated U1 to match the attached SKA60 mechanical spec: the footprint now uses the non-uniform bottom-view 8-pin pattern and 1.3mm drilled / 2.2mm pads for the 1.0mm pins.
Open items:
  • The published custom part may still need the same footprint correction; I applied overrides in this project layout.
  • DRC still reports airwires because routing has not been done yet.
Documented here: PCB Layout Notes.
Fix part, route, review
Fix custom part
Route the board
Run full DRC
Explain pin pattern
F2
F5
F4
U1
F3
MH2
J2
F1 P2 - Q1 D
R1 P2 - D1 2
J1 P1 - F1 P1
R2 P2 - D2 2
F1 P2 - Q1 D
J1 P1 - F1 P1
J5
F4 OUT - J4 P1
U1 +R.S - C2 P1
F3 OUT - J3 P1
U1 +R.S - C2 P1
MH4
U1 +R.S - C2 P1
Q1 S - D4 C
F5 OUT - J5 P1
F4 OUT - J4 P1
J4
F2 OUT - J2 P1
F3 OUT - J3 P1
U1 +R.S - C2 P1
J3
Q1 S - D4 C
F4 IN - F5 IN
U1 +R.S - C2 P1
Q1 G - D4 A
R2 P2 - D2 2
Q1 S - D4 C
F2 OUT - J2 P1
Q1 S - D4 C
J1
F1 P2 - Q1 D
Q1 S - D4 C
F4 IN - F5 IN
R1 P2 - D1 2
MH3
F5 OUT - J5 P1
MH1
Q1 G - D4 A
Q1 S - D4 C
Q1 G - D4 A
GND
C2
Capacitance
100uF
GND
D3 A - R3 P2
U1 -R.S - C2 P2
U1 -R.S - C2 P2
F1
C1
Capacitance
1uF
U1 -R.S - C2 P2
U1 -R.S - C2 P2
R3
Resistance
100kΩ
D1 1 - D2 1
R2
Resistance
1kΩ
D1 1 - D2 1
Q1
D2
D3 A - R3 P2
GND
R1
Resistance
2.2kΩ
U1 -R.S - C2 P2
GND
C3
Capacitance
1uF
D4
D1
U1 -R.S - C2 P2
D3

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Project Specification
Project Overview
Status: Draft
Design a low-voltage DC power distribution PCB mounted behind a standard Australian faceplate. The board accepts 24V DC input, provides a fused 24V pass-through output, and generates a 12V/5A rail via a Mean Well SKA60B-12 isolated DC-DC module for three individually protected 12V outputs.
Intended Use
  • Enclosed recessed wall box installation, convection cooling only.
  • Continuous unattended operation.
  • Internal ambient up to 60°C.
  • Prototype / production-intent hobbyist build; prioritize mechanical robustness and serviceability.
What the Device Should Do
  • Accept nominal 24V DC input.
  • Fuse the incoming +24V before the 24V output and DC-DC module input.
  • Provide one protected 24V pass-through output for a PoE injector feed.
  • Convert 24V to 12V at up to 5A using the SKA60B-12 module.
  • Split the 12V rail into three protected outputs.
  • Show 24V and 12V rail presence with green 3mm LEDs.
Main Features
  • 2-layer PCB, single-sided assembly.
  • Maximum board envelope: 75 × 75 mm.
  • Connector row along one long edge.
  • Through-hole preferred for all power components.
  • Phoenix Contact MC-series 3.81 mm pluggable terminal blocks acceptable/preferred to recover board-edge space.
  • Four M3 mounting holes at corners.
System Architecture

Diagram


24V DC Input J1 4A Slow-Blow node_5x20 Fuse 24V Output J2 Mean Well SKA60B-12 12V Rail 1.5A PTC 1.5A PTC 2A PTC 12V OUT 1 J3 12V OUT 2 J4 12V OUT 3 J5 24V Indicator 12V Indicator
Hardware Subsystems
Input and 24V Distribution
  • J1: 2-pin 24V DC input, Phoenix MC 3.81 mm right-angle pluggable header target.
  • F1: 5 × 20 mm PCB fuse holder with 4A slow-blow fuse in series with +24V input.
  • J2: 2-pin fused 24V DC output with 2A-hold PTC protection requested for pass-through output.
  • 1uF ceramic capacitor across 24V input near DC-DC module.
  • 24V green LED with 2.2kΩ series resistor.
12V Conversion and Distribution
  • U1: Mean Well SKA60B-12, 2 × 2 inch / 50.8 × 50.8 mm, 8-pin through-hole module.
  • Pin requirements from user-supplied spec:
    • Pin 1 R.C: leave unconnected.
    • Pin 2 -Vin: connect to common negative.
    • Pin 3 +Vin: connect to fused +24V.
    • Pin 4 -R.S: tie directly to -Vout at module pins.
    • Pin 5 +R.S: tie directly to +Vout at module pins.
    • Pin 6 +Vout: +12V output rail.
    • Pin 7 -Vout: common negative.
    • Pin 8 TRIM: leave unconnected.
  • 100uF/25V electrolytic + 1uF ceramic across 12V rail near module output. Total external capacitance must remain under SKA60 220uF limit.
  • Three 12V outputs with resettable PTCs: two 1.5A hold, one 2A hold, minimum 16V rated.
  • 12V green LED with 1kΩ series resistor.
Interfaces and Connections
  • J1: 24V IN, polarity labelled.
  • J2: 24V OUT, polarity labelled, PoE injector feed.
  • J3: 12V OUT 1, polarity labelled.
  • J4: 12V OUT 2, polarity labelled.
  • J5: 12V OUT 3, polarity labelled.
  • All five connectors on the same board edge, right-angle entry, plug supplied with loom.
Power and Runtime Expectations
  • 24V input path and 24V output: design target 5A continuous copper capacity.
  • 12V rail: 5A continuous maximum from DC-DC module.
  • Individual 12V outputs: up to protected branch current, max 2A branch.
  • Continuous unattended operation in warm enclosure.
Power Tree and Power Budget

Table


PathNominal VoltageProtectionContinuous Design Target
Input before fuse24VExternal source protection TBD5A board copper target
Fused 24V bus24V4A slow-blow fuse4A fuse-limited total unless changed
24V output branch24V2A-hold PTC2A branch hold target
DC-DC input24VBehind 4A fuseSized by SKA60 input current
12V rail12VSKA60 module current limit5A max
12V OUT 112V1.5A-hold PTC1.5A hold
12V OUT 212V1.5A-hold PTC1.5A hold
12V OUT 312V2A-hold PTC2A hold
Important sizing note: 12V at 5A is 60W. At 24V input, converter input current is roughly 2.5A at 100% efficiency and higher in practice. If the 24V pass-through output can also draw 2A, the upstream 4A fuse may nuisance-trip or limit combined full-load operation depending on module efficiency and ambient derating. This needs verification against the SKA60B-12 datasheet and final load assumptions.
Manufacturing and Assembly Expectations
  • 2-layer PCB.
  • 1oz copper minimum; 2oz preferred.
  • Power traces implemented as copper pours or at least 3mm trace width.
  • Bottom layer common negative pour.
  • Single-sided assembly preferred.
  • Through-hole power components preferred.
  • No components taller than SKA60 module height of 11mm except fuse holder and connectors.
Firmware-Relevant Hardware Requirements
No firmware or microcontroller required.
Physical Design Expectations
  • Maximum PCB envelope: 75 × 75 mm.
  • Must fit behind standard Australian faceplate/aperture zone with clearance.
  • Connector row along one long edge.
  • Polyfuses spaced away from SKA60 module body for thermal derating.
  • LED positions should be visible through or near the faceplate if possible.
  • Four M3 mounting holes at corners.
Important Design Decisions
  • Use SKA60B-12 module now that 75 × 75 mm envelope is allowed.
  • Use Phoenix MC 3.81 mm pluggable connectors instead of 5.08 mm MSTB to reduce connector-row width.
  • Common negative allowed; module isolation does not need to be maintained downstream.
  • R.C and TRIM left unconnected; remote sense pins tied locally at module output pins.
Assumptions
  • Nominal input is 24V DC from a suitably current-limited SELV/LVDC supply.
  • Phoenix MC-series current rating selected will be verified against exact MPN and derating.
  • Final fuse/connector/PTC MPNs will be selected from available library parts or datasheet-backed alternatives.
  • Exact faceplate/window/mechanical keepout drawing is not yet provided; 75 × 75 mm is treated as the allowed PCB envelope for now.
Change Notes
  • Width/height constraint corrected from 70 × 45 mm to up to 75 × 75 mm.
  • Connector pitch direction changed to Phoenix MC-series 3.81 mm to recover approximately 12–15 mm along the connector edge.
  • Project Overview

  • Intended Use

  • What the Device Should Do

  • Main Features

  • System Architecture

  • Hardware Subsystems

  • Input and 24V Distribution

  • 12V Conversion and Distribution

  • Interfaces and Connections

  • Power and Runtime Expectations

  • Power Tree and Power Budget

  • Manufacturing and Assembly Expectations

  • Firmware-Relevant Hardware Requirements

  • Physical Design Expectations

  • Important Design Decisions

  • Assumptions

  • Change Notes

24V/12V Wall Power Distribution Board

24V/12V Wall Power Distribution Board thumbnail
Low-voltage DC distribution board for an Australian faceplate: 24V input with fused 24V pass-through and isolated 12V/5A conversion feeding three individually protected 12V outputs in a 75 × 75 mm envelope.

Properties

Power Distribution

2-layer PCB, single-sided assembly, through-hole power components, 75x75mm max

60

°C

24

V

Pricing & Availability

Distributor

Qty 1

Arrow

$57.67–$59.39

Digi-Key

$0.00

HQonline

$4.63

LCSC

$3.29

Mouser

$47.14

TME

$5.81

Verical

$61.80–$71.96

Controls