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For those outside the US, or generally confused how US domestic power distribution works, let me explain in the context of the 3 prong plug and NFPA 70 NEC (Nat
by phasetransition 7y ago
For those outside the US, or generally confused how US domestic power distribution works, let me explain in the context of the 3 prong plug and NFPA 70 NEC (National Electrical Code) for the lay reader. We'll start outside the house and go all the way to the plug:
0. Before the transformer secondary on the pole outside the house, the wiring is dictated by the NESC, which is like the NEC for utilities. We'll leave that there.
1. Most US homes have a single phase, "center tapped" transformer secondary. This gives three voltage potentials to feed the home: (Nominal) 0V - from the center tap; +120Vrms - from one "end" of the transformer; -120Vrms from the other end of the transformer. And, yes, I am glossing over the phase relationship here. All three potentials are connected through the chunky copper of the transformer, which provides a current path to complete the circuit.
2. The three potentials feed the house meter and disconnect. The 0V potential may, or may not, be insulated on the path back to the transformer secondary, and often doubles as the mechanical support for the incoming lines (the "service"). The other two potentials will be insulated wiring.
3. Inside the main service panel the +120V and -120V inputs are split between the breakers. Every other breaker is connected to +120V or -120V. Typically a breaker that spans multiple slots is connected from -120V to +120V. That is the "240Vrms" for ovens, hot water heaters, dryers, air conditioners, etc.
4. Adjacent to the metal bits that fan out the +120V and -120V is a strip of metal that allows multiple connections to 0V potential. Colloquially this the "neutral bus," but in the NEC this is termed a "grounded service conductor." All of the white wires from the circuits in the house ("branch circuits") are tied to the spaces in this metal bus bar. This metal bar is also electrically connected to the 0V potential entering the house from the transformer center tap.
5. Also inside the main service panel there is strip of metal that allows connection for a number of "grounds." It looks just like the "neutral" connection bar, but instead has a number of green wires attached to it. Colloquially these wires a called "ground," but the NEC calls them "Equiment Grounding Conductor" or EGC.
6. Between the grounded conductor ("neutral") bar, and the EGC ("ground") bar there is a removable conductive link. In the main panel this link remains installed, but in secondary panels it is removed. The link is removed in "subpanels" to insure correct operation in the event of a fault. Fault conditions are discussed below.
7. Also connected to the EGC and grounded conductor is a third wire. The NEC terms this the "grounding electrode conductor" or GEC. The GEC then goes to a water pipe or "grounding" rod(s). Thus the GEC is the connection between physical Earth voltage potential and the power panel. It is unfortunate that the EGC and GEC are such similar abbreviations.
In the event I'm out of characters, I'll pause and reply to myself now.
- phasetransition 7y agoBrief recap: Three different voltage potentials in from the pole on three different conductors. And in the main panel a link between three other wires: the EGC ("ground"), GEC("earth"), and grounded service conductor ("neutral"). The next section is where people go awry, even licensed electricians I have met. But it is also the meat of the safety aspect of the three wire configuration. We will assume a house with a single electrical panel for simplicity. 8. Three wires traverse from the main panel, down a branch circuit to the three prong "edison" outlet on the wall: One of the three prongs connects to either +120V or -120V; another connects to the EGC bar inside the panel; the last connects to the grounded service conductor bar inside the panel. 9. The short blade on the top row of the Edison connector is +120 or -120V; the tall blade on the top row connects to the grounded service conductor (colloquial neutral). The single connector on the bottom row connects to the EGC (colloquial ground). 10. If you plug in an item that has a three wire plug, the lower single plug prong will be longer. This is so that the item is electrically connected (i.e. "bonded") to the EGC before the other two wires. This insures the "fault current" path is connected before the item is energized. 11. Under normal conditions, the current path is through the item plugged in between either +120 or -120V and 0V volt potentials. Crudely think of current coming "out" the short plug prong and "in" the tall plug prong. The EGC (colloquial ground green wire) doesn't do anything under normal operation. 12. The current path is then back down the branch circuit, via the grounded service conductor (colloquial neutral). the metal bar that links all the grounded service conductors together then has a path back to 0V on the transformer by one of the three incoming conductors. 13. Finally, the current can flow from the 0V location on the transformer to the higher potential via the wire of the secondary. Notice that the GEC (earth) connection to the ground rod was NOT a meaningful component of the current path. 14. Returning to #11, and considering abnormal operation. Here current somehow flows outside of the correct circuitry in the powered item. The ECG is bonded (connected) to the item's chassis and provides an alternative current path. The EGC provides this connection back to the panel bar with all the green ECGs tied to it. 15. The EGC bus bar in the panel has a conductive link back to the grounded service conductor bus bar (colloquial neutral) via the removable link that we discussed previously. The link then "brings" the current over to the grounded service conductor (0V potential from the street), and provides the current path back through the transformer secondary. 16. Let's assume the outlet is a GFCI / RCD. It notices the current coming back on the grounded service conductor doesn't match the current going "out" into the device, and opens the circuit. That is because the fault current is "lost" to the EGC, and goes around the GFCI outlet. The outlet trips, assuming a human body is the fault current path. 17. People commonly assume that the GEC (earth) conductor somehow matters for current path in event of a fault, but this is rarely the case. Usually the water pipe or grounding rod(s) are high impedance relative to the wire in the transformer secondary, and so the current divider formed is essentially all through the grounded service conductor. 18. The GEC (earth) connector holds the pole transformer secondary center tap near the same relative 0V potential as the house. The GEC may also provide the lower impedance path at very high frequencies encountered during a lightning strike. If you made it this far, I'm happy to field further questions :-)