Another step closer to Sea Dragon
I don't think Centurion was ever proposed as a name for a ship in the class, though.Virginia actually started as Centurion but that's a whole different story
Then again, the Navy did bizarrely end up using the placeholder SSN 21 for the Seawolf class.Nobody actually expected them to use the “NSSN” designation either.
Yeah, I have no idea what happened there. Can only assume that some idiot wrote the ships in class as SSN-21, -22, and -23 during procurement and they or their office was too important to correct to 774, 775, and 776.Then again, the Navy did bizarrely end up using the placeholder SSN 21 for the Seawolf class.
No, that'd be the missile that replaces Trident.Well it should have been Neptune class to start but I digress.
Neptune “carrying” his …….Not sure how I missed this.
No, that'd be the missile that replaces Trident.
Yeah, I have no idea what happened there. Can only assume that some idiot wrote the ships in class as SSN-21, -22, and -23 during procurement and they or their office was too important to correct to 774, 775, and 776.
I don't think Centurion was ever proposed as a name for a ship in the class, though.
I stand corrected!So here is the story.
Centurion was the name of the submarine program that followed Seawolf. The new submarine for the next century, it would be smaller and cheaper than Seawolf. Centurion was going to be the name of the class and first boat as well. Congress found out about the program and got upset the Navy started a named submarine program without Congressional approval. The SHTF. So everyone working the project got a letter stating that we were no longer allowed to call it Centurion. It was to be called the New SSN design, or as everyone came to know it NSSN. NSSN was what the Virgina program was called until the first boat of the class was named.
It gives somewhat better control in general conditions, but has issues at the extreme edges (full dive and hard rudder, as in evading a torpedo)
It gives somewhat better control in general conditions, but has issues at the extreme edges (full dive and hard rudder, as in evading a torpedo)
As I understand it, the control yokes back in the stern look a lot like what @merriman builds in his RC subs (I didn't get to stick my head back there and look myself). So yeah, there usually needs to be an offset between the two planes for that. Even though you need to do some control mixing to get the boat moving the right way which means each leg of the X needs to move independently.The offset may be due to the specifics of how the planes are linked internally.
In the 688, the vertical planea and the horizontals are slightly offset as well, to allow their control yokes to clear each other. There may be some sort of similar cross-connection in the Columbia or some other interference issue that makes it too crowded to have them all in one plane.
https://www.globecomposite.com/blog/x-factor-columbia-class-submarine-design
I'm not sure you strictly do need each leg to move independently unless you're trying to get the boat to roll on its axis. Which is probably a good way to get yourself on an awful lot of people's naughty lists (though possibly not for very long) and also impossible with conventional control surfaces. I suspect that you could probably eliminate, or at least mitigate, the roll effect of the fin with independent planes.Even though you need to do some control mixing to get the boat moving the right way which means each leg of the X needs to move independently.
Fascinating.Yes, it is a result of opposing sets of planes being on common stocks, causing them to be offset longitudinally to prevent the stocks from intersecting. This offset is also present in a normal cruciform sterns (between the rudder and the stern planes), but it's harder to notice that the rudders and stern planes are offset due to their different shape.
See the below drawing of the Albacore.
Well, that's the thing, you don't need to adjust the planes individually unless you need to induce a rolling moment (as @Yellow Palace mentioned above). Full yaw and pitch control is possible with just two sets of planes. The idea was that if one hydraulic cylinder jammed during a dive, the other set of planes could be moved to a position to surface the submarine, although you would have no control over course, so the submarine would spiral upward. Not ideal, but better than relying on a single hydraulic cylinder for a traditional cruciform stern. The only other option would be to have a second stern plane cylinder (as is the case for SSN 718, the Seawolf, Virginia, and Astute).Fascinating.
You'd think with the need to adjust each plane individually they'd just install 4 hydraulic cylinders, one for each plane, and let the computer determine the best deflection for where you want to go.
Handy if one gets damaged externally or you need to fix something internally too.
I'm not picturing how you can do that.I think you could order combined pitch and yaw plane deflections with individual control but as you point out, greater simplicity and reliability of control yokes would probably trump that.
Only SSN 718. But the Seawolf and Virginia classes have split stern planes (inner and outer).At least the horizontals of the late 688s were split, with each part of the split powered by a different ram and IIRC different hydraulic circuit.
Apparently that's one of the benefits of using an x-stern.I'm not picturing how you can do that.
In my example of Full Rise and Full Rudder, you have two competing control directions that need to happen. For Rise, you need the upper two planes to both be trailing-edges inboard, lower two planes trailing edges outboard. For Rudder, all the planes need to be TEs inboard on one side and TEs outboard on the other side. To mix those two, you're either not going to get full travel for either Rise or Rudder, or the planes have more physical travel than the computer commands for "Full" travel without any split command.
This is assuming just 1 control surface per arm of the X. At least the horizontals of the late 688s were split, with each part of the split powered by a different ram and IIRC different hydraulic circuit.
Again, you need to provide mixed signals to the planes with an X-stern because turns and dive need different control movements.Apparently that's one of the benefits of using an x-stern.
View attachment 772489 View attachment 772490
I don't follow. Extremes of what?It's in the extremes where the X runs into issues.
When you need both full dive and full rudder.I don't follow. Extremes of what?
Do you need full dive and full rudder, or do you just need extreme movement? Because you can still put both sets of planes hard over, it's just that the combined effect will be a more extreme movement about one principal axis (either yaw or pitch) than a cruciform stern would allow.When you need both full dive and full rudder.
Such as when you're evading a torpedo.
Here is an excerpt from a Bureau of Ships memo titled, "Conversion of ALBACORE, Results of Conferences at (1) David Taylor Model Basin, 22 August 1957, and at (2) Bureau of Ships, 27 August 1957":When you need both full dive and full rudder.
Such as when you're evading a torpedo.
So in maneuvers in the horizontal or vertical planes in isolation, the X-stern produces forces 1.4 times that of a cruciform stern. In a turn and dive, the cruciform stern will produce 1.4 times the force of an X-stern. However, that is for submarines with identical control surfaces. Because the X-stern planes can have a higher aspect ratio, they can produce more force for a given amount of drag.The X-stern is, at present, under consideration for the SSN, SCB Project 178 [what would eventually become the Tullibee]. The X-stern, particularly on bodies of revolution with a large length to diameter ratio, offers advantages in maneuverability. The plane rams are perpendicular to each other and offset 45° from the vertical and horizontal planes. All four surfaces are effective in maneuvers in both horizontal and vertical planes. Thus, if plane dimensions are the same as in the normal cruciform configuration, the X-stern produces a force 1.4 times that of the conventional planes (0.707 X 4 / 2 = 1.4) [note: cosine(45°)=0.707]. Since planes are at an angle of 45° with the horizontal, the span may be increased without exceeding the vertical projection of the maximum beam. The plane with the larger span has a greater aspect ratio and, thus, permits a further increase in maneuvering plane force and effectiveness. If, in a dive, one plane jams, the other plane may be actuated in the opposite direction to neutralize the effect of the jam. This ability, of course, increases operational safety and ability to regain control in the event of a stern plane casualty. The same recovery principle applies to surface turning in restricted waters. It is considered that an X-stern can be designed for ALBACORE which will not prejudice existing stability and maneuverability. As described above, it should provide increased operational safety. The counteraction of a jammed plane will produce motion in the other plane (counteracting a jammed plane in dive will cause the submarine to turn). This effect, although undesirable, may be acceptable.
There's a slight caveat in that while the horizontal planes and the lower rudder are limited to the diameter of the hull (approximately) by practical considerations, you can in principle make the upper rudder as tall as you like and get very large yaw moments.So in maneuvers in the horizontal or vertical planes in isolation, the X-stern produces forces 1.4 times that of a cruciform stern. In a turn and dive, the cruciform stern will produce 1.4 times the force of an X-stern. However, that is for submarines with identical control surfaces. Because the X-stern planes can have a higher aspect ratio, they can produce more force for a given amount of drag.
In principle, sure, although in practice that's not really an issue.There's a slight caveat in that while the horizontal planes and the lower rudder are limited to the diameter of the hull (approximately) by practical considerations, you can in principle make the upper rudder as tall as you like and get very large yaw moments.
Not really.There's a slight caveat in that while the horizontal planes and the lower rudder are limited to the diameter of the hull (approximately) by practical considerations, you can in principle make the upper rudder as tall as you like and get very large yaw moments.
IIRC, Albacore demonstrated that bow or fairwater planes are not required with an X stern, but I'd hope that the planes are going on the bow.Anyway, if we want to argue about submarine dynamics... where are the forward planes going?
Given how abysmal Columbia procurement is (12 boats x 16 tubes is nowhere near enough D5LE to be sufficient for just Russia, let alone with the PRC's nuclear breakout) a Columbia SSGN is (imo) about the worst use of a Columbia hull. I did the math a bit back and we need something like 24-36 boats to equal the Ohios. (24 for the current 14x20, 27 for 18x24, and 36 for the planned 24x24 Ohios).If I'm right and the SSN(X) is more or less a Seawolf front end grafted onto a Columbia engineroom, ~10ktons is about right.
The concept art certainly doesn't have any VLS amidships. I do kinda expect that there will be an SSGN(X), or rather a Columbia-class SSGN.
If there is any increase in Columbia numbers, it won’t be because of Russia. Proof of Jina massively increasing their strategic arsenal will be the reason.Given how abysmal Columbia procurement is (12 boats x 16 tubes is nowhere near enough D5LE to be sufficient for just Russia, let alone with the PRC's nuclear breakout) a Columbia SSGN is (imo) about the worst use of a Columbia hull. I did the math a bit back and we need something like 24-36 boats to equal the Ohios. (24 for the current 14x20, 27 for 18x24, and 36 for the planned 24x24 Ohios).
If they can modify Virginias with an 84 foot plug couldn’t they design later Columbias with another 2x quad pack?Given how abysmal Columbia procurement is (12 boats x 16 tubes is nowhere near enough D5LE to be sufficient for just Russia, let alone with the PRC's nuclear breakout) a Columbia SSGN is (imo) about the worst use of a Columbia hull. I did the math a bit back and we need something like 24-36 boats to equal the Ohios. (24 for the current 14x20, 27 for 18x24, and 36 for the planned 24x24 Ohios).
Why not bothHaving a larger number of Columbias with a smaller number of missile tubes is a more survivable sea-based deterrent.
I don't think that the Delta Pier drydock in Washington is long enough. Remember that Columbias are the same length as Ohios, just with 2/3rds the missile load. Each quad-pack is 25-30ft of added length.If they can modify Virginias with an 84 foot plug couldn’t they design later Columbias with another 2x quad pack?
Happens in the ~35 days between patrols.When looking at numbers, keep in mind that you gain operational numbers since there's no refueling overhaul. This is the original logic for 12 boats taking the place of 14. I don't entirely understand where the large amount of non-refueling work that was typically done during ERO is going to fit, but folks smarter than presumably have a plan.
Thanks, expect your correct, though may be with Columbia's wider bean than Seawolf (43 vs 40 foot), giving approx 15% increase in volume, displacement could be slightly larger than ~10,000 tons, dependent on length chosen, first two Seawolfs were 353 feet 9,138 tons, the third Jimmy Carter they extended to 453 feet, 12,158 tons.If I'm right and the SSN(X) is more or less a Seawolf front end grafted onto a Columbia engineroom, ~10ktons is about right.
The concept art certainly doesn't have any VLS amidships. I do kinda expect that there will be an SSGN(X), or rather a Columbia-class SSGN.
I don't think that the Delta Pier drydock in Washington is long enough. Remember that Columbias are the same length as Ohios, just with 2/3rds the missile load. Each quad-pack is 25-30ft of added length.
Another possible issue is the reserve buoyancy/ballast tank capacity.
Happens in the ~35 days between patrols.
Yes. Really. Takes both crews plus a hell of a lot of shipyard staff to do it all. More total man-hours than happen in a standard, 6-month-long selective refit availability, done in ~35 days.