Stick it up in the air and clamp it to gantries.
Overhead electrification for men!![]()
Precisely what is happening through the Thameslink core at Easter.
Stick it up in the air and clamp it to gantries.
Overhead electrification for men!![]()
Stick it up in the air and clamp it to gantries.
Overhead electrification for men!![]()
There are a number of tunnels that have a solid conductor, I believe?Precisely what is happening through the Thameslink core at Easter.
The catenary wire zig zags so it doesn't cut a groove in the pantograph.
Perhaps if solid conductors are used a large chunk of the pantograph is worn down? If the conductor is wide enough it probably isn't a problem but that would add to the cost of the conductor bar.
The physics of what goes on with the 25kV conductor aren't obvious.
There's something called the "Skin Effect" which means that 50Hz electrical current only flows in the outer edges of the metal. For copper that's about 8mm.
If you look at almost all UK OHLE wiring it's fairly thin. I've never been up close to some (and hopefully never will!) but it doesn't look much more than about 16mm diameter to me.
There's no point increasing the size for better electrical conduction. Maybe the conductor size is increased for rigidity but that's the only additional benefit of using an overhead rail.
Cheers,
Jason
The problem didn't just arise with Twitter. I remember several years ago when there were major delays at Kings Cross with large crowds there. There was an announcement that the train at Platform xx is now available for boarding. Everyone headed towards there, only to be met by a member of staff who insisted that this was not the case but then gave up trying to stop the flow, faced with the number of insistent passengers. When everyone got to the train it was indeed getting ready to depart.
Similarly at Darlington several years ago the London-bound side of the station was closed due to a passenger on the line. he platform staff continued to insist all the way through that there was no information on when the next train would be, even though the display screens were clearly showing information that was being updated on a regular basis.
I think a few people are somewhat over reacting on here!
These schemes are not really appropriate for transferring energy: cheaply, at high power, or at high efficiency.I think we've found a solution!!
I wonder if, one day, we'll be able to power trains by inductive charging/power; such as the trials being carried out by Qualcomm to charge cars (http://www.slashgear.com/qualcomm-h...largest-wireless-car-charging-trial-07255855/)
Obviously there's a difference between charging and actually moving, and a train consumes rather a lot of power, but I still wonder if we'll be able to do it in the next 10, 20 or 30 years. That would mean no need for wires that can fall down, or third rail that can get iced up.. just the whole track as one big power grid - yet people could walk on.
[Then we'll discover it causes cancer or something and...!]
The skin effect is usually easy to manage at frequencies as low as 50Hz.The physics of what goes on with the 25kV conductor aren't obvious.
There's something called the "Skin Effect" which means that 50Hz electrical current only flows in the outer edges of the metal. For copper that's about 8mm.
If you look at almost all UK OHLE wiring it's fairly thin. I've never been up close to some (and hopefully never will!) but it doesn't look much more than about 16mm diameter to me.
There's no point increasing the size for better electrical conduction. Maybe the conductor size is increased for rigidity but that's the only additional benefit of using an overhead rail.
Cheers,
Jason
Just replace the firebox on a kettle with a fuel rod and Bob's your uncleFilling the 4ft with sufficiently beefy induction coils would be absurdly expensive and you'd need to use selective powering to achieve even a low efficiency. It'd probably be cheaper to just use nuclear-powered locomotives :P.
I wonder if, one day, we'll be able to power trains by inductive charging/power
That's not too far off maglev - the problem there being that the track is very expensive and you can't run maglev trains on a traditional network.
On that subject I remember reading a report on maglev and one of the biggest problems was arranging points and routing It was fine on A to B with no entry exit tracks but in the real world that is not much use. Does anyony know if this has been solved yet.