1. Very neatly and clearly presented.
2. In the exam you will not have the time to repeat all the info given on the layout- you will need to be more economical- only show what is really needed and be more brief.
3. You correctly gave the braking distances from 160km/h and 100 km/h.
4. However when progressing to the headway determination, you seem to have failed to have read the question on the paper; it said:
Determine graphically or by calculation the theoretical best headway (without any allowances) at minimum signal spacing.
Hence in this case you were WRONG to design for a technical headway with contingency as the question explicitly told you to calculate the theoretical best and reinforced this by saying without any allowances.
You also then launched into a determination of the best form of signalling that could deliver the headway specified for signalling the layout.
Again in some years this may indeed be what you are asked to do, but you weren't on the 2011 question paper. It wanted you to calculate the effect of placing the signals as close as possible and on that basis determine what headway would result.
You should have performed the calculation using 3-aspect signals spaced at 1976m on the mainline and at 772m on the branch.
Then to do the last part of the question you should compare this figure with the headway requirement specified and see whether the closest 3-aspect signal spacing can achieve the necessary headway and with a sufficient margin that:
a) there can be some flexibility to position those signals at rather more than the minimum in order to get good signal sighting, arrange to protect junctions etc well rather than always having to slavishly position them at 1976m spacing- to stand any chance of achieving all the constraints then you's what the flexibility to permit a signal spacing to be at least 2400m without conflicting with the headway specification
b) allows a little contingency for timetable perturbations as you have explained (but too early) in your answer, but given that there are not really many trains then I think that 5 percent would be more appropriate than 20 percent in this instance.
When you do the sums it may of course be immediately evident that you need 4 aspect signalling even without worrying about any contingency!
So what you did was done well BUT you MUST READ THE QUESTION SET to make sure that you are answering what you were asked, whereas your answer gives the impression that you know how to calculate but are following a pre-programmed pattern based on a previous year's example but launched into doing this without checking what you were actually asked. hence a lesson for you (and many others) in the Exam this year!
STOPPING HEADWAY
1. I liked your diagram; however would have been good to show the station platform as well.
2. The graph was also pretty good- it showed that the driver would start to brake from the sighting point of the double yellow and therefore the average braking rate would actually be rather less than the nominal best brake rate and this is correctly shown by shallower gradient.
3. You went a bit wrong by attempting to tie the distance on the diagram with the horizontal axis of the graph as that is labelled as time; hence there should have been 30sec worth of horizontal line when the train was dwelling at the station separating the falling line and the rising line. You may have been better off to have drawn a speed against distance graph instead.
4. You are correct regarding the deceleration distance (apart from failing to deduct that 20m), but need to explain how this gives the time to decelerate when divided by the constant speed of the constant speed for headway.
Think about it- do a sense check. Assuming a start speed of 38.9m/s if then braked at the maximum amount of 0.5 m/s/s then it would take 77.8 sec to stop; however your example has the train braking at a lesser rate and so it must take longer, so 62sec must simply be incorrect. Hence go back and work out where you went wrong! What you worked out was how long a train that WAS NOT SLOWING would have taken to travel that distance; a train that is slowing down at constant rate will on average be moving at half that speed and so will take double the time......
5.You seem to have decided for some reason that the train will have got up to its headway speed by the time it travels its own length, plus the overlap length plus the defensive driving distance; what makes you think that? Is that compatible with the maximum acceleration rate given of 0.5m/s/s?
Of course not; you know this because you have already all but worked this out for the braking; to get up to 140km/h will definitely be more than 772m (100km/h) but less than 1976m (160km/h), so pretty obviously it won't be going particularly fast after just 384m! Hence you seem to be rather confused.
6. You were however partly right; you do need the time it take to cover that 384m but using given the acceleration rate starting from rest (and this is not the time it takes to get up to full headway speed again).
Therefore the numbers you calculated were erroneous and are not actually telling you what you needed to know. It is evident that you are a little confused- on the other hand there is some good stuff here and you are not that far away from the answer, so you would have been picking up some marks so not totally disastrous if this had been the exam. However I think if you have another critical look at what you produced in the light of my comments (and indeed look at other examples on this website) that you'll be able to see where the woolly thinking is and get things sorted out for the exam itself.
(30-08-2013, 11:17 AM)prpaoorna Wrote: Hi all,
Please look at the attached calculations for 2011 layout and give your suggestions.
while doing stopping headway calculations do we need to add non stopping headway time to the stopping headway time?
please clarify.
Thanks & Regards,
Prapoorna N
