The spring size and rate I posted was to convert a 3/xx valve to 3/15
The small O ring is the same on both the 2/15 and the 3/15 valves but the larger one will be different on a 2/15 valve as the piston size is larger and the springs will be different between the 3/15 and the 2/15 valves.
2/15 valve
Spring rate 7.11 N/mm
33mm overall length
14.5 mm od
11.5 mm id
wire thickness 1.94 mm
7 coils ground ends
Little piston 7 mm
Big piston 12.83 mm
3/15 valve
Spring rate 4.58 N/mm
33mm long
14.1 od
10.9 id
1.63 mm
7 coils ground ends
Little piston 7 mm
Big piston 10.87 mm
Note: You need to take distance the pistons travel into account when comparing springs hence springs are rated per N/mm in this case
The above are not 100% accurate as small internal dimensions are tricky at the best of times and the small piston or rather the cylinder is not accessible with out some special measuring equipment and it is the cylinder diameter not the piston that the force acts on as the O ring takes up the clearances.
The line pressures are not the full story when comparing the 2/15 and the 3/15 valves you have to look at the system as a whole, in fact at 90 bar the 3/15 gives you 2.5% more force at the contact patch of the rear wheels than the 2/15 valve. If the front brakes have been upgraded or just the pad material changed then this will affect the brake balance, both brake upgrades and a higher pad coefficient of friction will move the bias forward so more braking on the rear is desirable to restore the status quo.
Also it should be noted that with any of the above upgrades you are going to lock the fronts at a lower line pressure than the stock brakes and if you have stock front brakes that are not in very good condition then you could have line pressures higher than is reasonably acceptable (70bar). Most brake system are designed with 70 bar as the upper line pressure needed but needless to say can work well above that, as the safety factor will be huge.
It is usual for manufacturers to bias the brakes forward as this is the safer option and although not ideal it does mean that it reduces the risk of locking the rears before the front.
In an ideal world you would want the brakes on all 4 wheels to be capable of apply the maximum force with out locking for a given line pressure at the same time, which means at the point of locking but not locked, this is usually taken as 5% slip, this has to be done for various road surfaces, tyres and the most critical weight, a fully laden car will have a different weight distribution than one with just a light weight driver and an almost empty fuel tank and you have take weight transfer into account, so as with all things it is a compromise. The brakes will be setup such that in the worst case scenario the rears do not lock before the fronts and in ideal conditions this is going to be to the detriment of the stopping distance. Big front brakes do not mean you stop quicker in fact they can mean your stopping distance is further; the biggest advantage of big front brakes it they handle the heat generated from braking better.
Readings from the MOT are about as much use as an ash tray on a motor cycle, there are too many variables to make decent comparisons, like tyres, state of the rollers being used for the test, condition of the discs, type of pads, and the weight, add 30kg to the boot you will change the figures as will the weight of the guy testing the car.
The MOT brake test is only there to ensure the brakes meet the minimum standard, they do not look to see if the brakes are 100% and just as an additional point if you have a car with permanent 4 wheel drive or some types of LSD then the brakes can not be tested on the rollers and must be tested using a "Tapley" meter.
As a very very rough guide the reading give an indication but if they were too far out the car would fail the MOT, there is know way of measuring the balance front to rear on the rollers at a MOT station, it could be done if you had a pressure gauge attached to the brake line and could apply the same line pressure when testing front and rear brakes and you would need to know what figures you would be looking for at any given line pressure.
Also there is a tolerance on these valves and in the case of the 2/15 valve the line pressures can vary from 26.5 bar to 31.5 bar at an input of 85 bar and still be with in tolerance although optimal would be 29 bar. (85-15 * 0.2 + 15).
As a final point if “O” rings and springs are being sourced it is imperative that the “O” rings are the right size not just ones that seem to fit, as a slightly larger “O” ring will go in but will add stiction to valve, a slightly smaller one will mean they leak and you are not going to see the leak until the spring chamber is full of fluid; also the springs need to be the correct size and rate. If it was me I would send them off to get them matched to the original not just close, the same even if it meant they had to be made as specials.
