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WEVJ | Free Full-Text | A Multi-Particle Physics-Based Model of a  Lithium-Ion Battery for Fast-Charging Control Application
WEVJ | Free Full-Text | A Multi-Particle Physics-Based Model of a Lithium-Ion Battery for Fast-Charging Control Application

Schematic of P2D model (discharge process). | Download Scientific Diagram
Schematic of P2D model (discharge process). | Download Scientific Diagram

Scott Moura
Scott Moura

High-Fidelity Electrochemical Modeling for Li-ion Batteries | Stanford  Energy Control Lab
High-Fidelity Electrochemical Modeling for Li-ion Batteries | Stanford Energy Control Lab

Life Cycle Assessment of Silicon-Nanotube-Based Lithium Ion Battery for  Electric Vehicles | ACS Sustainable Chemistry & Engineering
Life Cycle Assessment of Silicon-Nanotube-Based Lithium Ion Battery for Electric Vehicles | ACS Sustainable Chemistry & Engineering

Scott Moura
Scott Moura

Schematic illustration of Newman's electrochemical model based on 1D (í...  | Download Scientific Diagram
Schematic illustration of Newman's electrochemical model based on 1D (í... | Download Scientific Diagram

A New Multiscale Modeling Framework for Lithium-Ion Battery Dynamics:  Theory, Experiments, and Comparative Study with the Doyle-Fuller-Newman  Model | Semantic Scholar
A New Multiscale Modeling Framework for Lithium-Ion Battery Dynamics: Theory, Experiments, and Comparative Study with the Doyle-Fuller-Newman Model | Semantic Scholar

Simplification and order reduction of lithium-ion battery model based on  porous-electrode theory
Simplification and order reduction of lithium-ion battery model based on porous-electrode theory

Parameter estimation of the Doyle–Fuller–Newman model for Lithium-ion  batteries by parameter normalization, grouping, and sensitivity analysis -  ScienceDirect
Parameter estimation of the Doyle–Fuller–Newman model for Lithium-ion batteries by parameter normalization, grouping, and sensitivity analysis - ScienceDirect

Accelerating parameter estimation in Doyle–Fuller–Newman model for  lithium-ion batteries | Emerald Insight
Accelerating parameter estimation in Doyle–Fuller–Newman model for lithium-ion batteries | Emerald Insight

1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... |  Download Scientific Diagram
1: Schematic of the Doyle-Fuller-Newman model [6]. The model considers... | Download Scientific Diagram

Parallelized Genetic Identification of the Thermal-Electrochemical Model  for Lithium-Ion Battery - Liqiang Zhang, Chao Lyu, Lixin Wang, Jun Zheng,  Weilin Luo, Kehua Ma, 2013
Parallelized Genetic Identification of the Thermal-Electrochemical Model for Lithium-Ion Battery - Liqiang Zhang, Chao Lyu, Lixin Wang, Jun Zheng, Weilin Luo, Kehua Ma, 2013

Establishment and simulation of an electrode averaged model for a  lithium-ion battery based on kinetic reactions - RSC Advances (RSC  Publishing) DOI:10.1039/C5RA27556C
Establishment and simulation of an electrode averaged model for a lithium-ion battery based on kinetic reactions - RSC Advances (RSC Publishing) DOI:10.1039/C5RA27556C

Accelerating parameter estimation in Doyle–Fuller–Newman model for  lithium-ion batteries | Emerald Insight
Accelerating parameter estimation in Doyle–Fuller–Newman model for lithium-ion batteries | Emerald Insight

WEVJ | Free Full-Text | Research on the Thermal Characteristics of an 18650  Lithium-Ion Battery Based on an Electrochemical–Thermal Flow Coupling  Model
WEVJ | Free Full-Text | Research on the Thermal Characteristics of an 18650 Lithium-Ion Battery Based on an Electrochemical–Thermal Flow Coupling Model

Numerical analysis of a finite element formulation of the P2D model for  Lithium-ion cells | SpringerLink
Numerical analysis of a finite element formulation of the P2D model for Lithium-ion cells | SpringerLink

applied sciences
applied sciences

A Feedback Interpretation of the Doyle-Fuller-Newman Lithium-Ion Battery  Model
A Feedback Interpretation of the Doyle-Fuller-Newman Lithium-Ion Battery Model

Modeling porous electrodes: Part 3 (Newman's BAND method) | Joshua Gallaway  – Electrochemist
Modeling porous electrodes: Part 3 (Newman's BAND method) | Joshua Gallaway – Electrochemist

DandeLiion v1: An extremely fast solver for the Newman model of lithium-ion  battery (dis)charge arXiv:2102.06534v1 [physics.app
DandeLiion v1: An extremely fast solver for the Newman model of lithium-ion battery (dis)charge arXiv:2102.06534v1 [physics.app

Evolution of parameters in the Doyle-Fuller-Newman model of cycling lithium  ion batteries by multi-objective optimization - ScienceDirect
Evolution of parameters in the Doyle-Fuller-Newman model of cycling lithium ion batteries by multi-objective optimization - ScienceDirect

PDF] What if the Doyle-Fuller-Newman Model Fails? A New Macroscale Modeling  Framework | Semantic Scholar
PDF] What if the Doyle-Fuller-Newman Model Fails? A New Macroscale Modeling Framework | Semantic Scholar

Mathematical modeling of porous battery electrodes—Revisit of Newman's model  - ScienceDirect
Mathematical modeling of porous battery electrodes—Revisit of Newman's model - ScienceDirect

Optimization for maximum specific energy density of a lithium-ion battery  using progressive quadratic response surface method and design of  experiments | Scientific Reports
Optimization for maximum specific energy density of a lithium-ion battery using progressive quadratic response surface method and design of experiments | Scientific Reports

Physics-based modeling of sodium-ion batteries part II. Model and  validation - ScienceDirect
Physics-based modeling of sodium-ion batteries part II. Model and validation - ScienceDirect

Parametric Optimization Study of a Lithium-ion Cell
Parametric Optimization Study of a Lithium-ion Cell