There's been a bunch of trials in Korea with induction loops over whole routes, iirc. Not really sure how much switching is necessary, it's the same mechanism as harvesting which happens in motion all the time.
I'm sure every rural terminus will cope fine! just like replacing petrol stations with fast charging stations is a simple way forwards.
( and because I get taken seriously too often, "Yes, one or two" ).
It's not entirely clear how the electrical demand can be met through existing 11/33kV DNO grid connections which will already be coming under greater pressure from increased housing demand (both existing houses increasing circuit capacity, and new build). That will happen as a result of the movement to electric vehicle charging and to ground source heat pumps for heating.
The prevailing thought at the moment is that there will need to be battery storage at those termini and intermediate stations where IPEMU stock will be charged, on the basis that IPEMU charging directly from the grid won't be possible.
Perhaps you might be a little more helpful and give us some figures, then?
I'm sorry, but I've missed your figures to critique. I've quoted all of this repeatedly (and it has been ignored, repeatedly, whilst the crayon eating has continued) but in the real world, there are very serious and significant concerns.
Bombardier's Class 379 had just under 500kWh of battery capacity which provided for a useful range of 75km. I'd expect maybe 20% increase in range to 90km with lighter Aventra stock and more efficient ancillaries, but 500kWh is a useful number to work on. If you take 1 hour to recharge that then your electrical load will be 500kW (I'm being generous and ignoring losses and the need to keep the unit powered up, heated/cooled, battery pack temperature control etc) but that's where we are. If we cut the recharging time to 6 minutes (1/10th) then the electrical load jumps from 500kW to 5000kW (5MW) which is an unfortunate number - that's broadly the limit of a stationary pantograph carbon, it's the point it'll catch fire, in fact.
I'd like to say we won't be looking at that, but we in fact are, we have to. 75km of range isn't particularly large when you've got a train that's quite capable of averaging 75km/h and which quite possibly will need to run at higher speeds for pathing purposes. Which means we need to think about how to get close to 500kW into the battery pack every hour. It's not any better trying to get 250kW in over a 2 minute station stop, as suddenly your load moves up to 7.5MW for those 2 minutes.
That's an enormous stress to put on the grid for those 2 minute periods, so to smooth out the load, it's likely that you'll have battery or super conductor storage to suck in maybe 1MW continously and allow multiple short recharges to be made by several units each hour.
The options around that are to have recharging taking place for several minutes either side of the station, by discontinuous electrification, but one tends to find most of the obstacles for electrification, the inconveniences such as bridges, platform canopies, signalling, tunnels, level crossings and the like, all tend to be on, around or near stations, so not only will short stretches of discontinous electrification be difficult around stations, charging at stations themselves could be difficult.
Or rather, do it properly and don't go down the route of spaffing away billions on battery powered rolling stock and the infrastructure needed to charge them, when more OLE may well be more cost effective in the medium to long term.