Those batteries are light by comparison with lead acid batteries but nothing compared to lithium ion batteries.
Additionally they are only rated for 0.5C, which means that is a two hour discharge time.... and an 8.4 hour rated recharge time.
It is also rated for only 4500 cycles which mean multiple replacements over the life of the locomotives.
These are far from ideal for a last mile engine.
The cost of deploying these locomotives on a widespread basis is probably more expensive than simply deploying trolley-wire on the "last mile" routes that cause the problem, and possibly using Furrer and Frey movable overhead contact rails for top loading areas that prevent conventional wir being installed.
You've quoted some quite specific numbers for the NaMh battery. Can you provide a link to your source? I have had my doubts about GE's status on these. They've been launched twice now. And I haven't spotted a tech spec on their site. I'm particularly interested in the claim of a 4500 full cycles lifetime, how this compares with the 20-year claim by GE. Put simply, that's 225 cycles per annum, which wouldn't even cut it for a solar PV site.
My point about such things, per the Leeds thread, is that they are emergent technologies. I think what has happened is that GE have recognised that the NaMh characteristics don't suit a lot of applications, but that Li batteries are very expensive. They've probably spent the interregnum developing the power management system to blend different sources with different characteristics.
Anyway, my thesis is that as the technologies mature we will increasingly find a combination of 2, 3, 4, 5 or 6 storage types used to optimise the recovery/storage system to the application. They would be made up of:
- Lead Acid/Gel
- NiMH
- Li
- NaMh
- KERS (flywheel)
- Supercap
Meanwhile, fuel cell technologies are getting a lot of R&D attention. So, as per their bus, a hybrid system will probably become the new paradigm in time.
Coming back to "last 50 miles" capability, while yes there are ways of delivering current in depot situations and the like, let's accept that there are a lot of short holes in the electrified network as well as a huge number of unsparked sidings. When comparing a fleet of perhaps 100 locos with "last 50 mile" capability with wiring up all the sidings, headshunts, minor branches and intermodal transfer areas, I'm not at all convinced about the cost balance.
A stronger argument would be to compare the performance and cost of using a high-speed high-power diesel genset with its fuel needs plus refuelling time and additional maintenance of the diesel genset, against an optimised multi-technology storage "pack" system.
Whereas the storage system could deliver anything up to the full short-term rating of the electric loco, I can't see a 6000hp diesel being used. Maybe a V8 1200hp unit would be more realistic where covering gaps in the sparked network (~Class 73 anyone)?