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High-Voltage Direct Current Transmission
Volt

Créé par

Volt

26. août 2026SE
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High-Voltage Direct Current Transmission

Direct current lost the War of the Currents in the 1890s and the verdict looked permanent: the transformer let AC change voltage effortlessly and DC could not be transformed at all, so AC took generation, transmission and distribution together. What that verdict never settled was the case of a very long cable. An AC cable is a capacitor — conductor, insulation, earthed sheath — and a capacitor connected to an alternating supply draws charging current whether or not anything is plugged in at the far end. Past roughly eighty kilometres of submarine cable, that charging current consumes the entire rating and the cable delivers nothing. DC charges the cable once, at switch-on, and then the capacitance is simply irrelevant. The obstacle was never the physics; it was that nobody could convert between AC and DC at transmission voltage. When the mercury arc valve grew a control grid, the obstacle dissolved, and in 1954 a hundred-kilometre cable to the island of Gotland carried twenty megawatts of direct current under the Baltic.
Avancé
5 hours 30 minutes

Consignes

1

Measure the charging current that kills long AC cables

Do not take the argument on trust. The number is easy to measure and startling once you have it.

  1. Take a long coil of coaxial cable — fifty metres or more — and leave the far end completely open circuit.
  2. Measure the capacitance between inner conductor and screen with an LCR meter, and divide by the length to get capacitance per metre.
  3. Apply a low-voltage AC signal at 50 Hz to the near end, still with the far end open, and measure the current flowing in.
  4. Now apply DC of the same voltage and measure the steady current.

The AC case draws current into an open circuit; the DC case draws essentially nothing once the initial charge has flowed. That is the whole argument in miniature. Now scale it: a typical submarine power cable runs around 200 nanofarads per kilometre, so a hundred kilometres is roughly 20 microfarads, and at 132 kV and 50 Hz that draws on the order of 800 amperes of pure charging current before a single watt reaches the far end.

Overhead lines suffer far less because the conductors are metres apart in air rather than millimetres apart in oiled paper, so the capacitance per kilometre is perhaps a fiftieth of a cable’s. That is why the AC limit is a few hundred kilometres overhead and under a hundred submarine. The reason DC returned is not efficiency in general — it is that capacitance is a problem only for alternating current.

Compensation can extend an AC cable’s reach by installing shunt reactors that absorb the charging current, but a submarine cable has nowhere to put them. You cannot build a compensating station in the middle of the Baltic.

Matériaux pour cette étape :

Câble coaxial (RG-58)Câble coaxial (RG-58)1 reel

Outils nécessaires :

Pont RLC de paillassePont RLC de paillasse
Multimètre numérique de laboratoireMultimètre numérique de laboratoire
OscilloscopeOscilloscope
Pince ampèremétrique CA/CC 600 APince ampèremétrique CA/CC 600 A
Générateur de fonctionsGénérateur de fonctions
Lunettes de sécurité transparentesLunettes de sécurité transparentes
2

Build a six-pulse bridge and see why three phases matter

Rectification at bench scale, with the same topology used at gigawatt scale.

  1. Build a single-phase bridge from four diodes and observe the output on the oscilloscope.
  2. Now build a three-phase bridge from six diodes, fed from a three-phase source or a simulated one, and observe again.
  3. Measure the ripple amplitude as a percentage of the mean in each case, and note the ripple frequency.

The single-phase bridge gives output touching zero twice a cycle; the six-pulse bridge never comes close to zero and ripples at six times the supply frequency, at only a few percent of the mean. Six pulses per cycle means the smoothing reactor has six times less time to do six times less work — smaller, cheaper, lighter.

The reason is geometric rather than electrical. Three phases spaced 120 degrees apart mean that at any instant one is near its peak; the bridge simply connects the load to whichever pair currently has the greatest difference between them. Rectification here is not really about converting a waveform, it is about always selecting the best available pair of terminals.

Real HVDC converters go to twelve pulse by feeding two six-pulse bridges from transformers wound star and delta, so their outputs are 30 degrees apart. Ripple drops again and, more importantly, the fifth and seventh harmonics on the AC side cancel — which is what step 4 is about.

Matériaux pour cette étape :

Kit de ponts de diodes redresseursKit de ponts de diodes redresseurs1 kit
Diode de redressement 1N4007Diode de redressement 1N40071 paquet
Fil de cuivre émailléFil de cuivre émaillé10 m

Outils nécessaires :

OscilloscopeOscilloscope
Multimètre numérique de laboratoireMultimètre numérique de laboratoire
Générateur de fonctionsGénérateur de fonctions
Alimentation de laboratoire réglableAlimentation de laboratoire réglable
Pince à sertirPince à sertir
Lunettes de sécurité transparentesLunettes de sécurité transparentes
3

Control the firing angle, and discover the converter can run backwards

Replace the diodes with switches you can command, and a rectifier becomes something much more useful.

  1. Substitute thyristors for the diodes and drive their gates from a controller that can delay firing relative to the natural commutation instant.
  2. Start with zero delay and confirm the output matches the diode bridge.
  3. Increase the delay angle progressively and plot mean output voltage against it.
  4. Take the delay past ninety degrees and observe the sign of the mean output voltage.

Beyond ninety degrees the mean DC voltage goes negative, and with current still flowing in the same direction the converter is now taking power out of the DC side and delivering it to the AC side. The same hardware is a rectifier below ninety degrees and an inverter above it, with nothing changed but timing. That is why an HVDC link needs no separate machinery at each end and why power flow can be reversed by control action alone.

The delay angle is also the control handle for everything else. Power transfer is set by the difference between the two ends’ DC voltages, so a controller at one end regulates current while the other regulates voltage, and the link’s throughput can be commanded directly. An AC interconnector has no such handle — power flows wherever the impedances send it.

Note the constraint that comes with it: a thyristor can be told when to start conducting but not when to stop. It turns off only when the circuit brings its current to zero, which for this converter means relying on the AC voltage to commutate it. The whole scheme therefore depends on a healthy AC system at both ends — line-commutated conversion. Modern voltage-source converters use IGBTs, which can be switched off on command, and consequently can feed a dead network and start it from nothing.

Matériaux pour cette étape :

Thyristor (SCR)Thyristor (SCR)6 pièces
Carte de commande de grille à optocoupleurCarte de commande de grille à optocoupleur1 pièce

Outils nécessaires :

OscilloscopeOscilloscope
Générateur de fonctionsGénérateur de fonctions
Multimètre numérique de laboratoireMultimètre numérique de laboratoire
Alimentation de laboratoire réglableAlimentation de laboratoire réglable
Pince ampèremétrique CA/CC 600 APince ampèremétrique CA/CC 600 A
Lunettes de sécurité transparentesLunettes de sécurité transparentes
4

Find the harmonics you just created, and filter them

A converter is a nonlinear load, and nonlinear loads pollute the system that feeds them.

  1. Put the oscilloscope on the AC-side current drawn by your six-pulse bridge, not on the DC output.
  2. Run an FFT on that current.
  3. Identify which harmonics are present and which are absent.
  4. Add a series LC branch tuned to the largest one and repeat the measurement.

A six-pulse converter draws current containing the fifth, seventh, eleventh and thirteenth harmonics but not the third or the ninth. The pattern is not arbitrary: a p-pulse converter produces harmonics at orders p times k plus or minus one. For six pulse that is 5, 7, 11, 13; for twelve pulse the fifth and seventh vanish and the lowest survivor is the eleventh, which is both smaller and easier to filter.

This is why a real converter station is mostly not converter. Rows of tuned filter banks handle the AC-side harmonics, smoothing reactors handle the DC side, and the filters double as the source of reactive power the converter consumes — a line-commutated converter absorbs reactive power roughly half its real power rating, and something has to supply it.

Harmonics are not an accounting problem, they are a physical one. They heat transformers and motors, overload capacitor banks that look like a short circuit at high frequency, and interfere with telephone and signalling circuits — which is how the problem was usually discovered, by someone complaining about noise on a line miles away.

Matériaux pour cette étape :

Fil de cuivre émailléFil de cuivre émaillé15 m
Assortiment de condensateurs à film (pour puissance)Assortiment de condensateurs à film (pour puissance)1 kit
Tore de ferriteTore de ferrite2 pièces

Outils nécessaires :

OscilloscopeOscilloscope
Analyseur de spectre / logiciel FFTAnalyseur de spectre / logiciel FFT
Pince ampèremétrique CA/CC 600 APince ampèremétrique CA/CC 600 A
Multimètre numérique de laboratoireMultimètre numérique de laboratoire
Pont RLC de paillassePont RLC de paillasse
Lunettes de sécurité transparentesLunettes de sécurité transparentes
5

Run it as a monopole with sea return, as Gotland did

The 1954 link used one cable, not two, and the sea completed the circuit.

  1. Sketch the Gotland scheme: a converter station at each end, a single 100 km submarine conductor, and an electrode in the sea at each end forming the return path.
  2. Work out what halving the number of cables saves, and what it costs.
  3. Consider what happens to a steel structure buried near one of those electrodes.

Sea return works because seawater is a good conductor and the ocean is very large, so the return path has negligible resistance and the scheme needs only one expensive cable. For a link whose dominant cost is the cable, that is close to halving the capital cost of the project.

The costs are real and were understood at the time. A steady direct current in the ground drives electrolytic corrosion of buried metalwork near the electrodes — pipelines, cable sheaths, harbour piling — so the electrodes are sited well away from infrastructure and often several kilometres offshore. The steady current also deflects magnetic compasses nearby, which matters in a shipping lane. Later schemes commonly use a metallic return or a full bipole with two conductors at opposite polarity, where the ground carries only the small imbalance and either pole can keep running alone at half power if the other fails.

Gotland ran at 100 kV and 20 MW using mercury arc valves developed by Uno Lamm at ASEA, and it is the direct ancestor of every HVDC link since — including the multi-gigawatt lines that now move hydro power thousands of kilometres across China and Brazil, and the interconnectors that let neighbouring grids trade power without having to run in synchronism with one another. That last capability is quietly the most valuable one: two AC systems can only be joined directly if they agree on phase forever, whereas a DC link joins them while letting each keep its own time.

Matériaux pour cette étape :

Feuille de cuivreFeuille de cuivre2 feuilles
Bloc de graphiteBloc de graphite2 pièces
Chlorure de sodium (sel)Chlorure de sodium (sel)1 box

Outils nécessaires :

Multimètre numérique de laboratoireMultimètre numérique de laboratoire
Pince ampèremétrique CA/CC 600 APince ampèremétrique CA/CC 600 A
Contrôleur de résistance d'isolementContrôleur de résistance d'isolement
Caméra thermiqueCaméra thermique
OscilloscopeOscilloscope
Lunettes de sécurité transparentesLunettes de sécurité transparentes

Matériaux

11

Outils requis

11

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