Basically yes, you can convert it all in to a Thévenin equivalent circuit.
The two are different aspects, hopefully clearer now!
Neat, cool, and easy to do.
I disagree. Disconnection time is dictated by R1+R2.
Discuss Confused about Zs 5 second disconnection time in the Electrical Wiring, Theories and Regulations area at ElectriciansForums.net
Basically yes, you can convert it all in to a Thévenin equivalent circuit.
The two are different aspects, hopefully clearer now!
No, the disconnection time is determined by the OCPS and PFC, in turn from Uo and Zs (Ze + R 1 + R2)I disagree. Disconnection time is dictated by R1+R2.
No, the disconnection time is determined by the OCPS and PFC, in turn from Uo and Zs (Ze + R 1 + R2)
What the disconnection time should be is more complicated...
That leads back to your 80% (which is a different 80% to the 0.8 factor I thought) and the question of shock risk. For that you need more information on high current faults as you can't assume the Ze value is symmetric about "true Earth", nor can you always assume that R2 = R1 as in many cases (e.g. the UK T&E cable) it can be quite asymmetric.
Sorry, should be OCPD - over current protection device (fuse, MCB/MCCB, etc)OCPS? I'm having trouble grasping how perspective fault current is more accurate in determining disconnection time.
For a linear system, and the grid will approximate that for an end of line fault - the fault current depends on the equivalent source voltage and loop impedance, i.e. PFC = U / Zs.I would think instead the ratio of the trafo impedance/alternator compared to the impedance of the conductors leading up to the fault point.
Correct, in many cases R2 is of higher Z, but that ratio is taken into consideration when the equations are run.
Sorry, should be OCPD - over current protection device (fuse, MCB/MCCB, etc)
For any given OCPD the disconnection time depends on the fault current, for a fuse smoothly do, for breakers only smooth to the point of the "instant" magnetic trip then time changes suddenly.
For a linear system, and the grid will approximate that for an end of line fault - the fault current depends on the equivalent source voltage and loop impedance, i.e. PFC = U / Zs.
The resulting fault voltage (and thus shock risk) depends on that fault current and the 'R2' proportion of the loop impedance seen between the points that a person can touch.
Worst case is touching the faulty appliance and something connected to the outside true Earth, as then it is PFC * (Z2 + R2) where Z2 is the return path impedance to the supply earthing point, and R2 the local circuit's return path to the DB.
No, the source impedance is part of what determines the PFC, and that in turn with "R2" determins what the touch voltage is.Right, but you're leaving out the source impedance regarding touch potential.
No, the source impedance is part of what determines the PFC, and that in turn with "R2" determins what the touch voltage is.
So for a fixed R2 and the supply Z increases, so does the PFC drop, and then PFC*R2 drops as well.
Touch potential can be quite different to what you may think.
Let's say you have a transformer and supply cable to a property, say the neutral conductor is 0.25 ohm to the star point and the line plus winding is 0.75 ohm, then within the property the circuit r1+r2 is 1.3 ohm.
In the event of a solid fault this would be 2.3 ohm and at 230v would be 100A fault current.
Take the case of a TT arrangement, the local earth obtains its connection via the ground/earth itself from the star of the transformer.
So, the neutral point at the property would rise to 100A x 0.25 ohm = 25V (to earth)
The line would drop to 100A x 1.3 ohm = 130V ABOVE the neutral so 155V (to earth)
Now take the case of a TN-C-S, in this case the combined neutral/earth conductor is usually tied to earth locally via connections to gas/water pipes, multiple earth rods within the supplier network etc.
So even though there is still 25V dropped in the neutral supply cable, the actual local earth is very close electrically to the supply cable at the property NOT the end at the transformer's star point.
So the neutral point at the property would remain close to zero volts measured to the local earth
The line would again go to 130V above neutral, but this time that's 0V so we only see 130V to local earth.
In practice the figures are obviously smaller - I just picked nice figures to illustrate it.
The multiple connections between local earth and the combined neutral/earth connection (PEN) result in lower resistances, and the holding of local earth close to that of the PEN local to the properties.
In the US most properties are similar to the TT system here - even if it has a utility supplied earth, it's often an additional conductor ( TN-S) so very much like TT in terms of this volt drop calculation.
It's the main reason we use the term earth and not ground, ground would be the ground at the substation star point/ground rods - in the US this would be a similar point in terms of volt drop at the property when there is a fault; but in the uk and much of Europe the local ground would be tied close to the point where the PEN is separated; so not the same point as the transformer star. Hence the differential between ground (substation) and earth.
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