253 - 254 |
Special issue - Proceedings of the Workshop on Development of Advanced Battery Engineering Models - Crystal City, Alexandria, Virginia, 14-16 August 2001 - Preface Battaglia V, Duong T, Landgrebe AR, Sutula RA, Weinstock I |
255 - 266 |
ADVISOR: a systems analysis tool for advanced vehicle modeling Markel T, Brooker A, Hendricks I, Johnson V, Kelly K, Kramer B, O'Keefe M, Sprik S, Wipke K |
267 - 284 |
Mathematical modeling of lithium-ion and nickel battery systems Gomadam PM, Weidner JW, Dougal RA, White RE |
285 - 294 |
Virtual test bed for advanced power sources Dougal RA, Liu S, Gao L, Blackwelder M |
295 - 309 |
Mathematical modeling of high-power-density insertion electrodes for lithium ion batteries Verbrugge MW, Baker DR, Koch BJ |
310 - 320 |
Electrochemical modeling of lithium polymer batteries Dees DW, Battaglia VS, Belanger A |
321 - 329 |
Battery performance models in ADVISOR Johnson VH |
330 - 340 |
Advanced integrated battery testing and simulation Liaw BY, Bethune KP, Yang YG |
341 - 348 |
Thermal modeling of secondary lithium batteries for electric vehicle/hybrid electric vehicle applications Al-Hallaj S, Selman JR |
349 - 356 |
Modeling thermal management of lithium-ion PNGV batteries Nelson P, Dees D, Amine K, Henriksen G |
357 - 363 |
Lithium battery thermal models Doughty DH, Butler PC, Jungst RG, Roth EP |
364 - 376 |
Computational battery dynamics (CBD) - electrochemical/thermal coupled modeling and multi-scale modeling Wang CY, Srinivasan V |
377 - 382 |
Battery thermal models for hybrid vehicle simulations Pesaran AA |
383 - 388 |
Role of atomic level simulation in development of batteries Halley JW, Duan YH |
389 - 400 |
From molecular models to system analysis for lithium battery electrolytes Kerr JB, Sloop SE, Liu G, Han YB, Hou J, Wang S |
401 - 405 |
Quantum chemical studies of Li+ cation binding to polyalkyloxides Redfern PC, Curtiss LA |
406 - 411 |
Lithium reactions with intermetallic-compound electrodes Benedek R, Thackeray MM |
412 - 415 |
Molecular dynamics simulations of Li transport between cathode crystals Garofalini SH |
416 - 423 |
Negative electrodes for Li-ion batteries Kinoshita K, Zaghib K |
424 - 429 |
Magnesium silicide as a negative electrode material for lithium-ion batteries Roberts GA, Cairns EJ, Reimer JA |
430 - 436 |
Inductive modeling of lithium-ion cells Urbina A, Paez TL, Jungst RG, Liaw BY |
437 - 444 |
Design modeling of lithium-ion battery performance Nelson P, Bloom I, Amine K, Henriksen G |
445 - 470 |
Calendar- and cycle-life studies of advanced technology development program generation 1 lithium-ion batteries Wright RB, Motloch CG, Belt JR, Christophersen JP, Ho CD, Richardson RA, Bloom I, Jones SA, Battaglia VS, Henriksen GL, Unkelhaeuser T, Ingersoll D, Case HL, Rogers SA, Sutula RA |
471 - 474 |
Recent advances in the US Department of Energy's energy storage technology research and development programs for hybrid electric and electric vehicles Weinstock IB |
475 - 476 |
Workshop on engineering models for advanced batteries vehicle OEM panel session model outputs - industry perspectives Miller TJ |