I’ve read this paper over a few times now and finally it’s clearer to me. It was a bit hard for me to decipher, but basically it seems like scientific evidence of something I have been saying for a long time, which is:
“The windspeed at which something COULD potentially begin to happen, is very different from the windspeed at which something TENDS TO happen”
For example, tree damage. The EF scale currently has total stubbing and debarking occurring largely in the EF2 to EF3 range. In real life though, actual case studies that compare tree damage to nearby structural damage, computer based physics modeling, and general statistical correlation from my personal observations over the years all suggest that total stubbing and debarking has a much stronger correlation with the EF4+ range. Now can really severe stubbing and debarking happen in the EF2 to EF3 range? Yes, but it’s quite rare and the only examples are cherry picked outliers. Thankfully the concept of severe debarking/stubbing as an EF4 indicator is slowly catching on, but you get my point, and I’m sure the same sentiment can be applied to other DIs as well. The scale and its application operates on a “windspeed at which this degree of damage could begin to happen” basis rather than a “windspeed at which this usually happens” basis. If the objective is finding the most likely actual max windspeed of the tornado based on damage, this approach isn’t favorable.
But with this said, at this stage I don’t really care about the wind speed estimates handed out in actual surveys themselves, because I’m not at all confident that they are genuinely accurate. They are simply a safe, conservative estimate rather than an accurate reading of the tornado’s actual intensity. Instead, I more prefer to rate and discuss tornadoes via a spectrum of EF-scale rankings rather than trying to assign an accurate windspeed estimate. For example, I prefer to simply say “low-end EF4 tornado” rather than “170 MPH tornado” because I’m not so sure that 170 MPH tends to be the most likely maximum real life windspeed for any given tornado that produces that kind of damage. When I do use numbers and wind speeds, I’m actually more just using them as placeholders to convey where the tornado was within the spectrum of an EF scale ranking (high-end, low-end, etc) rather than actually believing that this was the actual maximum windspeed.
But yeah overall, the paper seems to back up my thinking on this topic: EF scale windspeed estimates that get handed out are the lowest conceivable failure point of the DIs, but are conveyed to the public as the tornado’s maximum windspeed, when in reality these can be and often are two very different things.