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Business Case

Signal Integrity from First Principles: Coaxial Line with a Short-Circuit Termination

Example: coaxial_shortTransient · Γ = -1
  • Electronics
  • RF & Microwave
  • Telecommunications

What This Simulation Does

The coaxial_short example is a time-domain (transient) simulation of a coaxial transmission line driven by a pulse and terminated in a short-circuit. Palace propagates the incident pulse down the line and captures the reflected wave, whose amplitude and sign are set by the termination's reflection coefficient Γ = -1.

- Short-circuit termination — with the conductors shorted, the incident pulse reflects fully but inverted (Γ = −1); the voltage at the shorted end is forced to zero

- Negative reflection — this is the second full-reflection extreme, the classic signature of a shorted line or solder bridge on a TDR trace

- TEM propagation on the coaxial line with the incident and reflected pulses cleanly separated in time, exactly as a time-domain reflectometer (TDR) would measure

Key Parameters

- Problem type: Transient (time domain), coaxial line, 50 Ω characteristic impedance

- Excitation: pulsed lumped port launching a TEM wave

- Termination: short-circuit (reflection coefficient Γ = -1)

- Boundaries: outer/inner conductor = PEC; feed via lumped port

- Output: time-resolved voltage/field, incident and reflected pulse trace

The core transferable physics: whenever a signal meets an impedance discontinuity, part of it reflects with a coefficient Γ = (ZL − Z₀)/(ZL + Z₀). The matched, open, and short cases are the three reference points (Γ = 0, +1, −1) that anchor all signal-integrity and TDR analysis. Any real discontinuity — a connector, via, stub, or fault — sits between these extremes.


What Makes This Capability Unique

Full inverted reflection.

A short circuit reflects the entire pulse inverted, driving the end voltage to zero — the unmistakable TDR signature of a short, solder bridge, or conductive fault.

TDR in the time domain.

The transient solve reproduces exactly what a TDR instrument sees, so simulated and measured waveforms can be compared point-for-point.

Full-wave, not lumped.

The 3D field solution captures the true geometry of the line and its termination — no idealized circuit approximation.

Validation-grade reference.

Known reflection coefficients make this a trusted calibration case for the transient solver and for engineers' intuition.


Domain Applications

Select a domain to see how this simulation applies, with industry-specific scenarios and ROI.

The Problem

Every high-speed interconnect — cables, connectors, vias, board traces — is a transmission line, and every impedance discontinuity reflects part of the signal. Reflections degrade the eye diagram, cause bit errors, and radiate EMI. As edge rates get faster, even small discontinuities matter.

Diagnosing these problems on hardware with a TDR is a lab exercise that comes late, after the board is built. A discontinuity that fails signal-integrity sign-off can force a respin costing $50K–$300K and weeks.

Transient full-wave simulation predicts the reflection behavior — the same waveform a TDR would show — before hardware exists.

Applications

ApplicationHow this simulation maps
Interconnect TDRReflected pulse locates and sizes impedance discontinuities
Connector / via designTermination reflection quantifies discontinuity severity
Impedance verificationMatched-case reference confirms 50 Ω design intent

Quantifiable Business Value

Scenario: A high-speed board team spins 18 designs/year, with 1 in 3 needing a respin after a reflection/SI failure. Transient pre-analysis cuts respins to 1 in 12.

MetricNo pre-analysisWith simulation
Board designs per year1818
SI respins per year6.01.5
Cost per respin$120,000$120,000
Annual respin cost$720,000$180,000
Simulation cost (annual)$0$130,000
Annual savings$410,000 (57%)

Each avoided respin also protects the launch schedule — often the larger cost in a competitive product cycle.


Recommended Next Steps

1

Model your line

Load your coax/interconnect geometry and termination, launch a pulse, and read the reflected waveform.

2

Introduce discontinuities

Add connectors, steps, or faults and watch the TDR trace to locate and size each reflection.

3

Compare the references

Contrast coaxial_matched (Γ = 0), coaxial_open (Γ = +1), and coaxial_short (Γ = −1) to build intuition for real discontinuities.

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