So for the Suez that'd mean there shouldn't be any danger of that happening. The EverGiven was stuck length-wise, and if they're not getting longer then at worst they can become square, which is probably not the right shape for a ship.
So for the Suez that'd mean there shouldn't be any danger of that happening. The EverGiven was stuck length-wise, and if they're not getting longer then at worst they can become square, which is probably not the right shape for a ship.
The limits are way beyond what's at issue here. There are lots of ships which are already too big to go through the Suez canal.
Canals tend to limit dimensions based on:
* the canal width (limits beam)
* the canal curves (limits beam and length)
* the canal depth (limits draft)
* locks (limits length)
* bridges over the canal (limits height)
"Capesize" is the general category of ships which can't go through the Suez or Panama canals[0], and must therefore go around Cape Agulhas and / or Cape Horn.
[0] although with the deepening of the Suez canal it's now possible for many capesize to go through Suez, just not Panama.
How does a ship being longer cause stress on the steel?
Still, a far more effective solution would be increase width and draught likewise to reach your target volume. And that's where we're back at ${canal}max classes (locks also impose a length limit but I'd assume that those are much easier to adapt than width/depth).
If Suez Canal authorities are serious about trying to prevent future Ever Given incidents (how serious they are likely depends on the exact outcome of the ongoing liability fights) they should keep some parts of the canal at the existing profile (locks perhaps?) to prevent suezmax 2.0 (or whatever their current version+1 is)
We could make a much bigger , lighter efficient ship with carbon fiber entirely, however there is no economic incentive to spend 100x on the ship, fuel costs and economies of scale rtc don't help recover that capital cost
Expensive would be OK, of course a bigger ship costs more to build than a small one, but you hope to make the investment back by carrying more cargo and additionally benefit from some economies of scale.
However, the biggest ships we have are at the limit of how thick we can join steel plates with current welding technologies. So there's some non-linearity here.
The costs of all of it needs to be economically feasible even if the technology is there, I don't think welding is only reason we have been limited in the size
I am not saying the limit doesn't play a major role, I am saying if it's was the main bottleneck there would be a lot of r&d in solving it, solving it would certainly help, but the economics and other limitations mean solving welding won't mean a revolutionary change to ship sizes
Who pays for this dredging and these cranes? The localities. It's difficult to defray these costs with shipping fees. American President Lines pulled their headquarters from Oakland to Phoenix when Oakland did that. [2]
[1] https://en.wikipedia.org/wiki/CMA_CGM_Benjamin_Franklin
[2] https://www.prlog.org/10551489-apl-phoenix-headquarters-relo...
Follow this thought to "let's just make these trains as long as possible." You can imagine some wild consequences, both positive and negative.
Also, drag on a hull is such that longer hulls tend to be more efficient.
The longer the ship is the stronger these forces can be.