The number of paths will reduce as the train speed increases.
However this is a surprisingly gradual process - the stopping distance increases as the train speed increases, but the time taken to traverse the stopping distance decreases - so whilst the spacial separation of the trains climbs the temporal separation only does so more slowly.
The limiting factor is not the emergency stopping distances of stacked trains - it is in fact that timetabled trains will end up timetabled in any order and could potentially end up out of order. As a result there must be sufficient spacing between trains for a train to clear a diverging junction, for the interlocking to confirm this and order the points moved to the opposite position, then allow the points to move and for the system to gain interlock before it transmits the movement authority to the incoming train.
All this must be achieved before the train exceeds its previous movement authority and preferably without requiring the train to slow to an unnecessary degree.
If we are merely considering maximum stopping distances, from 340km/h Japanese trainsets [as a result of the
Fastech360Z programme] have been designed to stop in roughly
4000m in an emergency scenario, without using the fancy air brakes they have designed.
That translates to a headway of
42 seconds.
The bulk of the headway for the signalling system is the interlocking equipment I mentioned before - which in time terms is independent of train speed.
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No, because moving block signalling on a main line railway does not exist.
It will be computer controlled block signalling with lots of track circuits.