There is no one specific underlying reason for the problem with the OHL north of Peterborough, it is simply a combination of factors which over the years have come together.
Criticism of the original OHL Engineers is unfair as without their efforts we may well not have had a fully electrified route to Edinburgh.
Firstly it must be remembered that the extension of the OHL beyond Peterborough was carried out using "spare" equipment from previous electrification projects. It was NOT a haphazard collection, as craftily the man in charge of OHL construction at the BRB had knowingly over-ordered a lot of equipment, and so had a strategic stockpile for which the other Projects had paid.
The issue was that in those times, a properly costed scheme would never have gotten off the ground, so cleverly the spare capacity of the OHL design office was used to carry out surveys and prepare a lot of the behind the scenes work. The effect of this was to produce a scheme where the upfront costs were considerably lower and stood a better chance of approval. In addition OHL Construction equipment and resources that were standing "spare" were used initially to start the works off.
The Equipment design was Mk3b, which in those days was a design that had been developed for a maximum of 100mph linespeed. The downside of this was that the Structure spacing was determined by that, as was the tensioning of the equipment. In those days there was no specific design for 125 mph running.
In order to achieve 125 mph running, the tension of the OHL was increased, however the Equipment was still designed to operate at a lower tension and this meant that the various fittings were going to have a shorter lifespan as a consequence.
The train service at that time was less than it is now, being if I recall correctly being three Class 1s an hour (Leeds/Newcastle/Edinburgh). The power demands were of course much less at that time, so the design worked.
The scheme was always going to require an upgrade if the services were going to materially increase in frequency, consequently increasing power demands.
Of course this is what has happened over the years but in fairness to Network Rail, both the GN Inner Suburban and the Midland Suburban schemes have reached their end of life, and in the case of the GN, there have been unexpected dilapidations to the headspan and cross span wires which have resulted in the need for all these to be replaced. In the case of the Midland, some stretching of these wires has been experienced but the bigger issue there is that the power demands are considerably greater than designed for.
In addition both routes have now experienced considerable wear in the Contact wire and wear in the bridles of the Catenary wire (a bridle is the arrangement where the Catenary wire passes over the Upper Cross span wire).
This together with the well known problems of the GE have swallowed up considerable financial resources which means that the GN main line has been de-prioritised.
Unfortunately the OHL systems tend to be installed and forgotten about.
Other issues that have caused the GN main line to be more prone to problems, is the subjective belief that the weather has worsened, with more instances of strong winds and temperature variations which in turn put strains onto the Equipment.
People have commented on what is technically known as "blow-off", the situation where the OHL contact wire is blown off the pantograph head.
This is normally a situation which is more likely on curves, although it can occur on the straight too. As should be known already, the contact wire is "staggered" across the four foot from the centre line of the track so as to equalise the wear on the pantograph head.
The precise measurement includes a calculation of the potential movement under wind loading towards one side of the track, although bearing in mind the fact that the mid-point of the wire should always be zero as it is at maximum stagger at the registration fitting.
Because however the track is never perfectly straight, 0mm stagger can, and does, ofter occur to one end of the wire span. This practically gives different values at each registration point and in the very worst cases (normally curves) can result with the wire being at maximum deviation from the centreline of the pantograph.
Because this effect is well known and the stagger adjusted to manage the issue, a problem will normally only occur when there are sudden wind gusts above those which the design has been developed to withstand. It is certainly the case that higher windspeeds are being experienced in comparison with those when the system was designed, although "blow-off" dewirements are quite rare.
A bigger issue is the mechanical failure of the system which is caused by high power demands, especially when the pantograph is losing contact with the contact wire. The efffect is the generation of an arc which in turn leads to mechanical and metallurgical damage to the stainless steel droppers. These then fail in due course allowing the contact wire to hang loose, and in some cases allowing it to be hooked up by the pantograph horns.
There are other more complex issues but this is a very very simplified thumbnail sketch of the principal issues, and will hopefully give an understanding of the reasons.
Remediation will not be easy because as a consequence of Network Rail's attitude towards its Contractors, considerable numbers of highly experienced OHL Construction staff have now emigrated to other Countries where their skills are better recognised and more respected.
Unfortunately Network Rail believe that OHL maintenance staff can construct the equipment. The fact is that they cannot. They may be good at restoring equipment to a workable state, but Construction requires very different skills which these people do not have, and this can be seen by some of the "cock-ups" that have occurred when they have been used for that.
Future demands for skilled OHL engineers and linesmen in the UK far outstrips existing supply and no-one who has moved away from working on Network Rail jobs wants to come back. As a consequence of their actions Network Rail have contributed to the biggest contraction of skilled people in the Industry ever, and have set the scene for future reductions in electrification schemes through the lack of skilled resources.