I don't believe this is the case. I think I'll have a look about today.
I pretty much never run my train at its maximum speed and due to the nature of working Metro, I don't run to linespeed either because I'm accelerating and then braking for the next station. I might touch linespeed but in the grand scheme of things I spend most of my time under it.
Considering that linespeed change. I don't carry out a brake test each time. So a quick running brake at 20mph to determine if I could safely stop at 20mph would be different to what's needed at 100mph.
With the obsession about calculating braking performance I think a significant factor has been omitted. Gravity will also have an effect. Braking on a gradient will be different if your going up or down a hill.
There is also factor or running brake tests for the prevailing conditions being almost worthless a few seconds later. If I carry out a running brake test at location X on a dry section of track then it rains 5 minutes later. Any braking I do will now be affected by the weather. Even in leaffall by the time you carry out your first running brake,. The next 100m down the line could be significantly different.
Knowing my train is braking at 6% still doesn't tell me if it's going to stop if I was going 10mph or 60mph
RBT from 20 mph is only significant re tread brakes, the coefficient of friction between block and wheel, increases slightly at lower speed. Disc brakes are even throughout the speed spectrum; low brakes force gives relatively low retarding force, higher brake force gives superior braking compared to tread brakes.
Regarding the calculation requirement of TDLCR, the gradient component is part of the general calculation. Railway gradients are elongated triangles when viewed in profile; thus 9.81 m/s/s divided by the gradient gives the correction. No need to go off on a tangent, remember: knowledge not a procedure, intuition first.
Braking in the wet does not necessarily increase stopping distance. Wet clean tribometer values range from 0.3 to 0.13 . The latter value will sustain a deceleration of about 1.27 m/s/s; hence modern traction will possess an emergency rate of 1.2 m/s/s, in the wet clean.
Wet dampened leaf has a value of 0.06 to 0.01, average being 0.05, this will mostly accommodate typical step 1or 2 braking. RAIB report Salisbury will surely explain the relationship of friction and stopping, or at least refer the reader to previously released information.
Aside. Just because I refer to psychometric tests as fancy, (elaborate in structure) doesn't mean I fail to appreciate the benefits.