notadriver
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There’s no reason for ETCS to be so restrictive - I’m pretty sure the TVM 430 system on HS1 doesn’t force a more restrictive driving style.
There were two timed at 3h59 each way in 1992, plus a 3rd at 4h08 that called at Darlington.It will be the cumulative effects of allowances for poor rail conditions, adverse weather, braking systems at the limits of tolerances, etc etc. All the things that a driver usually assimilates mentally through a simple running brake test and allows for as appropriate.
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I’m not certain of the exact year, weren’t the original 3h59 schedules slowed down a little bit after a couple of years of experience? Certainly there were about 3 or 4 ‘Scottish Pullmans’ each each direction by the mid 1990s, some of them had more stops than just York and Newcastle.
Max 50% braking as standard I believe, as in you can use no more than 50% of the brake and that will be enough to bring the speed down without triggering an intervention.There’s no reason for ETCS to be so restrictive - I’m pretty sure the TVM 430 system on HS1 doesn’t force a more restrictive driving style.
Max 50% braking as standard I believe, as in you can use no more than 50% of the brake and that will be enough to bring the speed down without triggering an intervention.
Max 50% braking as standard I believe, as in you can use no more than 50% of the brake and that will be enough to bring the speed down without triggering an intervention.
Ideally you probably aim to stop on the regenerative brake as far as practical, with the friction brake used only in the event of misjudgment or system failure. That reduces power consumption, pad wear and particulate emissions. Something like an 80x that has numerous motored axles is probably getting close to that.That seems plenty enough in normal driving ?
That is standard on French LGVs to the best of my knowledge, so yes I would say so.That seems plenty enough in normal driving ?
In a previous thread a driver for Eurostar said that on 373s high-speed trimming was done on the rheo only but station calls were done on about 50% braking with mixed use of rheo and air with air only (tread and discs) below 40km/h (25mph) - where the rheo fades out.Ideally you probably aim to stop on the regenerative brake as far as practical, with the friction brake used only in the event of misjudgment or system failure. That reduces power consumption, pad wear and particulate emissions. Something like an 80x that has numerous motored axles is probably getting close to that.
The 373 probably has less dynamic (rheostatic or regenerative) braking than other trains, having a fairly small number of motored axles that it can be applied to. Many more modern trains have more, especially those designed for rapid acceleration between more frequent stops. More modern traction will probably also regenerate down to a much lower speed.That is standard on French LGVs to the best of my knowledge, so yes I would say so.
In a previous thread a driver for Eurostar said that on 373s high-speed trimming was done on the rheo only but station calls were done on about 50% braking with mixed use of rheo and air with air only (tread and discs) below 40km/h (25mph) - where the rheo fades out.
390s can rheo/regen down to 7mph but the several low speed slide incidents, culminating in the buffer stop collision at Liverpool Lime Street, when they were new led to this being increased (to nearer 20mph I believe) not long after.The 373 probably has less dynamic (rheostatic or regenerative) braking than other trains, having a fairly small number of motored axles that it can be applied to. Many more modern trains have more, especially those designed for rapid acceleration between more frequent stops. More modern traction will probably also regenerate down to a much lower speed.
That is standard on French LGVs to the best of my knowledge, so yes I would say so.
In a previous thread a driver for Eurostar said that on 373s high-speed trimming was done on the rheo only but station calls were done on about 50% braking with mixed use of rheo and air with air only (tread and discs) below 40km/h (25mph) - where the rheo fades out.
I know nothing about these matters but I would have thought if you were, say, going up Shap and then down the other side, you might well need to brake.If driven properly surely one should never have to use the brake to ‘trim’ at high speed unless slowing for speed restrictions or stations? Use of the brake to stay within the limit means the train has been wasteful of traction power (on HS1)
I know nothing about these matters but I would have thought if you were, say, going up Shap and then down the other side, you might well need to brake.
That's true, but the terminal velocity on a downward slope will be determined by the gradient, but also by the initial velocity, given that no slope is infinitely long. So, cresting at 300km/h and descending a 1:50 will increase the speed by some measure, but the air resistance will already be limiting the maximum speed, whereas at 160/h on the same gradient, the air resistance would be just over a quarter of that at the higher speed, (air resistance is proportional to the square of the speed for a given cross sectional area).Indeed. Trains have very little rolling resistance, and the average train will continue to accelerate to its terminal velocity (gravity - (rolling resistance + air resistance)) on any slope more than about 1 in 90. On a level track, the rolling resistance of a train is minimal, however more than that gradient is enough, without brakes applied, to move a train under gravity.

Im just repeating what the poster put. I assume they meant that if travelling at say 300km/h and the TVM430 starts flashing then braking would be done only on the rheo at this point to reduce speed to that demanded by the TVM430 of for example a preceeding train was being caught up for some reason.If driven properly surely one should never have to use the brake to ‘trim’ at high speed unless slowing for speed restrictions or stations? Use of the brake to stay within the limit means the train has been wasteful of traction power (on HS1)
Wasn't there a spate of issues with the friction brake being very slow to blend in at low speeds on the 80x?I believe this is also true of the 80x. Initially they regened down to about 7 mph but it was reset to 15 mph after an incident or near incident.
That would imply some significant distance running at above 125mph. Thinking about the route, Newark flat crossing, Doncaster, the initial run out of London are going to be well below 125mph I would have thought. I can remember being on a southbound Flying Scotsman in pre Selby Diversion HST days, we left Newcastle some 10mins late and arrived in Kings Cross on time. Pre GPS days so I had no easy way of confirming, but my impression was Darlington-York was taken quicker than usual, and you could feel that the full power and braking was being used. Couldnt happen today.I know my father is convinced there was 140mph running in daily service on the ECML when the IC225 sets entered traffic, he had a memorable run on the Scottish Pullman (1530 ex-Kings Cross) which pulled into York at 1703, a whopping 12 mins early against a tight non-stop schedule. Admittedly the sets were in their original 2+8 formation but it shows what was achievable with a clear run and a good driver.
I don’t recall there being too much recovery in that schedule. I used to follow it most mornings on TRUST at work. Reliability wasn’t great & it has been said before that right time arrivals for both the 06:00up & 15:00 down Scottish Pullmans stood at around 30%.It would be interesting to know how much engineering padding time there was in the 3h59 schedules. BR tended to be quite liberal with allowances in many places - blocks of [4] approaching a key junction weren’t unheard of - although individual trains with tight schedules might omit them. That being said, the ECML was recently modernised so the frequency of TSRs etc would be low compared to, say, the WCML which was infamous for pedestrian schedules through the 1990s.
(Memories of 15 min stops at Rugby, Preston, etc… yawn!)
ETCS will have a few interesting impacts on train performance, the assessment is that the braking curves are 15% longer than current defensive driving styles, on average. Not particularly conducive to good journey times if you have to pass through any sort of traffic bottleneck.
Are you talking about the trains performance without encountering restricted signals/block sections. Or are you referring to trains appearing to “lose” time when they encounter restricted signals/block sections?Why?! That’s really silly. Is it just because the system can’t judge actual rail conditions so errs on the safe side?
Newark flat crossing is 100 mph as is Grantham station itself, 125 between the two.That would imply some significant distance running at above 125mph. Thinking about the route, Newark flat crossing, Doncaster, the initial run out of London are going to be well below 125mph I would have thought. I can remember being on a southbound Flying Scotsman in pre Selby Diversion HST days, we left Newcastle some 10mins late and arrived in Kings Cross on time. Pre GPS days so I had no easy way of confirming, but my impression was Darlington-York was taken quicker than usual, and you could feel that the full power and braking was being used. Couldnt happen today.
None is the short answer.It would be interesting to know how much engineering padding time there was in the 3h59 schedules. BR tended to be quite liberal with allowances in many places - blocks of [4] approaching a key junction weren’t unheard of - although individual trains with tight schedules might omit them. That being said, the ECML was recently modernised so the frequency of TSRs etc would be low compared to, say, the WCML which was infamous for pedestrian schedules through the 1990s.
(Memories of 15 min stops at Rugby, Preston, etc… yawn!)
5½ in diamond time? basically admits the schedule was always going to be ropey.
To bring back to topic - with those sorts of allowances in the mid 1990s schedules, how critical was 125mph running to achieve overall journeytimes?
Yes, there are 7 mins engineering allowances in a Kings Cross-Edinburgh run, but there are an extra 4 mins performance allowance, at Woolmer Green, Colton Jn, Darlington and Drem.That was my thought as well.
By comparison in today’s timetable the standard benchmark is [1] for every 30-50 miles dependent on route and TSR strategy, and very little mandated use of <> time at all. However schedules are still slow due to application of pathing time ( ) - ie catching other trains up on paper - and increased numbers of stops in schedules. I would be very surprised if there’s anything like those allowances now. I’d expect probably [1] approaching each of Peterborough, Doncaster, York, Darlington, Newcastle, Berwick and Portobello Jcn / Edinburgh.
To bring back to topic - with those sorts of allowances in the mid 1990s schedules, how critical was 125mph running to achieve overall journeytimes?
Performance allowance is part of the Timetable Planning Rules, as they are now.Thank you both, equally fascinating responses! It’s interesting to see performance allowance (I.e. <>) still in action within ECML schedules, is that mandated by Rules of the Plan or just the preference of the operator?
ETCS level 2 updates movement authorities (which replace signals) to the train via GSM-R. So if the movement authority is extended (equivalent to an adverse signal clearing ahead of the train) the train is able to accelerate almost immediately. It doesn't have to wait to pass over a beacon or loop to update the system. I presume it also avoids the limitations of approach control, because the train is being supervised to pass the junction at the maximum permitted speed for its route, not to obey the aspect of an approach controlled signal that is probably more restrictive.Are you talking about the trains performance without encountering restricted signals/block sections. Or are you referring to trains appearing to “lose” time when they encounter restricted signals/block sections?
If the later, surely it’s a similar situation to the high speed trains that currently use the GWML ATP system between Bristol and London Paddington.
Yes, if a train is encountering double yellow, single yellow or red aspects, it takes longer to get to the signal, as the computer enforces a suitable braking curve on the assumption that the signal has not changed aspect.
In some places, that is where this is likely to occur, an infill beacon or infill loop is provided to update the on board computer. But even where this is not the case, unless the train ahead is diverging to a different line/route, it does not make much difference, as you are limited by the time it takes for the train ahead to clear the next section.
Obviously it can make a difference if the train ahead does diverge via a junction. But if the timetable has been worked out correctly, this should not normally occur.
Or am I missing something?
ETCS level 2 updates movement authorities (which replace signals) to the train via GSM-R. So if the movement authority is extended (equivalent to an adverse signal clearing ahead of the train) the train is able to accelerate almost immediately. It doesn't have to wait to pass over a beacon or loop to update the system. I presume it also avoids the limitations of approach control, because the train is being supervised to pass the junction at the maximum permitted speed for its route, not to obey the aspect of an approach controlled signal that is probably more restrictive.