Reading TDR Waveforms: How to Tell a Joint from a Fault

Reading TDR Waveforms: How to Tell a Joint from a Fault

The TDR screen shows a waveform. To the experienced eye, it's a story of the cable's entire life — every splice, every repair, every weakness. To the untrained eye, it's a confusing line with bumps on it.

The difference between the two is the difference between a 2-hour repair and a 2-day search. This guide teaches you how to read the trace.

1. The Anatomy of a TDR Trace

Trace element What it means
Launch pulse The initial pulse at the connection end (distance 0)
Far-end reflection The end of the cable — a large reflection at full length
Impedance-change reflections Smaller bumps at every joint, splice, and change in cable construction
Fault reflections Strong reflections at unexpected positions
Baseline drift Gradual changes along the trace — can indicate moisture or degradation

2. Polarity Tells You the Fault Type

The direction of the reflection tells you whether the impedance went up or down:

  • Positive (upward) reflection — impedance increased: open circuit, broken conductor, or a cable with higher impedance
  • Negative (downward) reflection — impedance decreased: short circuit, low-resistance fault, or a splice with lower impedance

This is why the same trace can instantly tell a veteran "open at 780 m" from "short at 780 m."

3. Joint vs Fault — The Three-Question Test

When you see a reflection, don't guess. Ask:

1. Is it at a documented position? If the reflection sits exactly at a known joint coordinate from the as-built records, it's almost certainly that joint. Joints are your friend — they help you calibrate distance.

2. How strong is it? A healthy joint produces a small reflection — a few percent of the launch pulse. A fault produces a strong reflection, often 50-100% of the pulse. If a reflection is disproportionately large, suspect a degraded joint or fault at that point.

3. Was it there before? This is the decisive question. If you have a commissioning baseline trace, compare: any NEW reflection that wasn't in the baseline is a fault or developing defect — even if it's small.

4. The Baseline Method (Professional Standard)

The professional workflow is not about interpreting a single trace in isolation — it's about comparison:

  1. At commissioning, save a baseline trace for every phase with its velocity factor recorded
  2. On every fault job, shoot the same trace and overlay it against the baseline
  3. Identify new reflections — these are the suspects
  4. Correlate with records — distance to the new reflection + route chart = dig point

This is why A10 series TDRs include waveform storage as a core feature: a TDR without trace comparison is a flashlight without a map.

5. Common Mistakes to Avoid

  • Trusting a single trace — always shoot multiple times and compare
  • Ignoring the velocity factor — a 5% VF error shifts every distance (see our velocity factor guide)
  • Mistaking a large joint reflection for a fault — a degraded joint can look like a fault; check joint records first
  • Forgetting to save the trace — the next engineer (or you, in three years) will need it

6. When the Trace Looks Clean

If the cable is dead but the TDR shows nothing, you're probably facing a high-resistance fault — above a few hundred ohms, it reflects too little energy to see. The solution is conditioning: burn down or bridge-measure the fault into a locatable state (see our high-resistance fault guide).

How TriEdge Helps

The A10 and A10 Advanced TDRs make trace comparison practical:

  • 0–100 km range, ±0.5 m accuracy
  • Waveform storage and comparison — overlay today's trace on the commissioning baseline
  • Velocity factor presets + fine manual calibration
  • Linux-based operating system for stable field operation

Factory-direct pricing, 40–60% below equivalent Western brands.

View A10 → · Full catalog (PDF)


FAQ

How can I tell if a reflection is a joint or a fault? Check three things: (1) is it at a documented joint position? (2) how strong is the reflection? (3) was it present in the commissioning baseline? A strong reflection at an unexpected position that wasn't in the baseline is a fault.

What does a positive reflection mean on a TDR? A positive (upward) reflection means impedance increased — typically an open circuit or broken conductor. A negative reflection means a short circuit or low-resistance fault.

Why does my TDR show nothing even though the cable is dead? You likely have a high-resistance fault (above a few hundred ohms), which reflects too little energy to measure. Condition the fault first with a bridge or burnout method.

How important is waveform storage? Critical for professional work. Trace comparison against a baseline is the most reliable way to distinguish new faults from normal cable features.

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