Earlier quoted context omitted.
And Vulcan are space elves, Klingon are space orcs and Borg are space undead. All of this stuff has inspiration from classical fantasy. That doesn't change whether or not something is SciFi or not. There is an intersection of SciFi and Fantasy for sure, and the line gets blurred. Artificial human stories can be cyborgs, androids, clones, golems, or chimera, or even explicit fantasy races like minotaurs. If it's an an…
I see the similarities for Klingons and Borg, but I don't see much similarity between Vulcans and elves beyond the pointy ears. Vulcans are more like androids: logical and outwardly emotionless, but not necessarily wise. The human captain (e.g. Kirk) tends to figure out a winning solution despite the resident Vulcan often complaining it isn't logical. That doesn't detract from your point.
The most expensive number in engineering
151–160 of 176 posts
Re: The most expensive number in engineering
#152Earlier quoted context omitted.
> For the record, Star Wars is not science fiction nor has it ever been portrayed as such. FWIW this is literally the first time I’ve encountered someone claiming that it isn’t science fiction. ( Soft SciFi, to be sure, but still: https://tvtropes.org/pmwiki/pmwiki.php/Main/MohsScaleOfScien... )
> FWIW this is literally the first time I’ve encountered someone claiming that it isn’t science fiction. Well, there's Science Fantasy [1]: Jedi and the Force are very much Wizards and Magic. I've heard it called Space Fantasy, too. [1]: https://tvtropes.org/pmwiki/pmwiki.php/Main/ScienceFantasy
Star Trek canonically has telepaths, telekinesis, and godlike beings that can alter reality with mere thought.
Why don't people call Star Trek space fantasy as well, when its universe is even less grounded in realism than Star Wars?
Re: The most expensive number in engineering
#153The article suggests using a probabilistic failure model instead of a large a safety factor, and explains how a safety factor established in the 1930s affected the cost of the Space Shuttle. But spacecraft might be a special case, where any additional weight is so expensive, and you also expect the models to be especially accurate and manufacturing to be extremely precise. For more everyday civil engineering, I think…
Or more simply: planes that get hit with massive unexpected turbulence shouldn't just drop out of the sky and kill everyone on board. And to paraphrase the great philosopher Donald Rumsfeld, it is all about the unknown-unknowns.
Re: The most expensive number in engineering
#154Any idea where I can learn some simple structural engineering? For example, I want to build a small building. I want to be able to calculate things like the snow load of the roof, make a suitable truss, take into consideration things like the safety factor, and build with the materials to meet those requirements. I can buy plans for similar constructions, but i don't see how they decide what size wood to use where, e…
Re: The most expensive number in engineering
#155If you had the luxury of throwing away bridges or planes or space shuttles to test every possible circumstance, then I guess eventually the safety factor could conceivably come down to 1.0, right? You would've satisfied yourself that nothing in the real world was not in your simulations?
A safety factor of 1.5x does not guarantee that nature will not throw 1.6x the expected force at you. That's why the author of the article calls it a "libation," because it isn't related to anyone's knowledge about the uncertainties in the situation at hand.
Re: The most expensive number in engineering
#156Re: The most expensive number in engineering
#157The real number engineers should be considering is not the factor of safety, but the probability of failure. The probably of failure should be calculated considering material defects, forces larger than predicted, simulation errors, and all other causes the factor of safety is designed to protect against. Then the engineering process can allocate those probabilities in the most efficient way. For example, in a rocket…
Unfortunately, NASA was really bad at estimating the probability of failure. Feynman famously dissed their lack of mathematical rigour in this regard. I'm guessing most engineers' grasp of proper statistics math is worse than their understanding of factors of safety.
The space shuttle program demonstrated that if your analysis overlooks just one scenario (such as a rigid O-ring or ice on the bipod ramp), the risks can be much greater than you calculate.
Re: The most expensive number in engineering
#158Because design constraints are not universal across all projects. Human error for something like the space shuttle is fairly minimal considering the mind boggling amount of training that's done. If you have an unreliable or unproven materials provider then that present a design constraint that must be accounted for. Etc.
Re: The most expensive number in engineering
#159The article suggests using a probabilistic failure model instead of a large a safety factor, and explains how a safety factor established in the 1930s affected the cost of the Space Shuttle. But spacecraft might be a special case, where any additional weight is so expensive, and you also expect the models to be especially accurate and manufacturing to be extremely precise. For more everyday civil engineering, I think…
Or more simply: planes that get hit with massive unexpected turbulence shouldn't just drop out of the sky and kill everyone on board. And to paraphrase the great philosopher Donald Rumsfeld, it is all about the unknown-unknowns.
Re: The most expensive number in engineering
#160Is there a software equivalent of safety factor? How do you/would you calculate it?