Skip to main content
EVPulse
HomeArticlesToolsStandardsGlossaryAbout
Subscribe
HomeArticlesToolsStandardsGlossaryAbout
Subscribe to Newsletter
EVPulse

Battery technology and EV engineering coverage.

Categories

Cell ChemistryBMS DesignThermalCharging

Resources

SearchAll BlogsGlossaryCalculatorsAboutContact

Site

Archive

© 2026 EVPulse. All rights reserved.

About
Articles

All Published Articles

A complete archive of EV battery research notes, benchmarks, and explainers.

Browse By Categories

52 articles

Featured
Cell Chemistry

Sodium-Ion Battery Manufacturing — Aluminium Collectors, NaPF₆ Electrolyte, India's Soda Ash Advantage, and the 2030 Cost Model

Sodium-ion battery manufacturing differs from lithium-ion in three specific ways: the anode current collector is aluminium (not copper), the electrolyte salt is NaPF₆ (not LiPF₆), and the anode material is hard carbon (n

17 Jun 2026·16 min read
Cell Chemistry

Sodium-Ion Cathode Materials — O3/P2 Layered Oxides, Prussian Blue Analogues, and NASICON Frameworks

Sodium-ion batteries have no single dominant cathode chemistry — unlike lithium-ion where NMC and LFP have converged as the two primary commercial choices. Three cathode families compete in Na-ion: layered transition met

17 Jun 2026·15 min read
Cell Chemistry

Sodium-Ion vs LFP — Energy Density, Cycle Life, Cost, and the Indian 2W/3W Fit

LFP (lithium iron phosphate) is the safety-first, low-cost choice that already dominates Indian EVs. Sodium-ion is trying to undercut LFP's cost while accepting an energy density penalty. Whether Na-ion beats LFP for any

17 Jun 2026·12 min read
Cell Chemistry

Sodium-Ion Batteries Explained — Why the World's Most Common Element Is Becoming a Battery Chemistry

Sodium is the sixth most abundant element in Earth's crust. It is in every ocean, every salt flat, and every kitchen. Lithium, by contrast, is concentrated in a handful of geopolitical flashpoints — Chile, Bolivia, Argen

17 Jun 2026·9 min read
Cell Chemistry

Battery Lifetime Modelling — Empirical Arrhenius, Semi-Empirical Coupled Models, and Indian Operating Profile Validation

Predicting how long an EV battery will last under a specific set of operating conditions requires a quantitative model linking temperature, SOC, C-rate, and cycle depth to capacity fade rate. Empirical Arrhenius-based mo

17 Jun 2026·18 min read
Cell Chemistry

SEI Growth, Lithium Inventory Loss, and Cathode Cracking — The Molecular Mechanisms of Battery Degradation

Battery capacity fade has three distinct molecular-level origins: lithium inventory loss (lithium consumed in SEI formation and ongoing growth, making it permanently unavailable for cycling), active material loss (cathod

17 Jun 2026·16 min read
Cell Chemistry

Calendar Aging vs Cycle Aging in EV Batteries — Arrhenius, Shallow Cycles, and India's Summer Storage Problem

Calendar aging follows the Arrhenius equation: every 10°C increase in temperature approximately doubles the rate. Cycle aging follows an empirical power law: capacity loss scales with cycle count raised to a fractional e

17 Jun 2026·13 min read
Cell Chemistry

Why EV Batteries Wear Out — The Two Clocks Running Inside Every Pack

Your EV's battery is aging right now, even if it is parked and not being used. There are two separate aging processes running simultaneously — calendar aging (time-based, affected by temperature and state of charge) and

17 Jun 2026·10 min read
Pack & BMS Design

Battery Thermal Management Systems — Cooling Topologies, CFD Trade-offs, and India's Asymmetric Heat Problem

Every cell in an EV battery generates heat proportional to I²R during charge and discharge — and loses significant capacity at low temperatures. The battery thermal management system (BTMS) must maintain every cell in th

17 Jun 2026·17 min read
Pack & BMS Design

Cell Balancing in EV Battery Packs — Passive Dissipation, Active Transfer, and Why It Matters at 100% SOC

Every battery pack contains cells that are slightly unequal — different capacity, different internal resistance, different self-discharge rate. Without balancing, the weakest cell reaches its voltage limit first during c

17 Jun 2026·15 min read
Pack & BMS Design

Prismatic, Cylindrical, or Pouch — Why Cell Format Determines Pack Architecture

Tesla uses 21700 cylindrical cells in 4680 format. BYD uses long prismatic blade cells. CATL and LG supply large prismatic modules. Hyundai uses pouch cells in the Ioniq 5. These are not equivalent packaging choices — ea

17 Jun 2026·14 min read
Pack & BMS Design

Why Your EV's Battery Pack Is Not Just a Bigger Phone Battery

Your phone has one lithium-ion cell producing 3.7V. Your EV has hundreds of them, arranged in a precise series-parallel architecture, wrapped in thermal management, protected by a battery management system, and packaged

17 Jun 2026·9 min read
Pack & BMS Design

SiC vs IGBT in EV Traction Inverters: Switching Losses, Gate Drive Design, and Why 800V Systems Need Silicon Carbide

The traction inverter is the highest-stress power electronics component in an EV — switching 300–800V at hundreds of amperes, tens of thousands of times per second, while managing the thermal load of a device the size of

17 Jun 2026·16 min read
Pack & BMS Design

Regenerative Braking: The Physics, the BMS Coordination, and Why Indian Traffic Is an EV Advantage

Regenerative braking is not magic — it is a generator, a controlled current flow, and a multi-system coordination problem between the motor controller, BMS, and hydraulic brakes. Understanding how much energy it actually

17 Jun 2026·14 min read
Pack & BMS Design

PMSM vs Induction Motor vs SRM — Why Different EVs Choose Different Motor Architectures

Tesla's Model S uses an induction motor. The Model 3 uses a permanent magnet motor. Hyundai's Ioniq 5 uses a PMSM with interior magnets. Tata's Nexon EV uses a PMSM with surface magnets. These are not equivalent choices

17 Jun 2026·13 min read
Pack & BMS Design

What's Actually Spinning Inside Your EV — And Why It Never Needs an Oil Change

A petrol engine has over 200 moving parts that need oil, cooling, and regular replacement. An EV's electric motor has exactly one: the rotor. Understanding this single difference explains instant torque, near-zero drivet

17 Jun 2026·9 min read
Charging & Infrastructure

Inside the CCS2 Handshake: How ISO 15118 Controls Every Fast Charge Session

Before a single electron moves from a CCS2 charger to your car, the two devices exchange authentication messages, negotiate charging parameters, and verify safety state over a Power Line Communication channel running at

11 Jun 2026·16 min read
Charging & Infrastructure

What DC Fast Charging Does to Your Battery: The Physics Indian EV Owners Need to Know

Every DC fast charging session is a controlled trade-off between speed and longevity. The BMS is running real-time calculations to keep charging fast without permanently plating lithium metal onto your anode. Understandi

11 Jun 2026·14 min read
Charging & Infrastructure

India's EV Charging Standards: CCS2, Bharat DC001, and the Connector Wars

India mandated CCS2 for four-wheelers while keeping Bharat DC001 for three-wheelers and two-wheelers — a split that was not a compromise but a deliberate segmentation. Understanding AIS-138, why CHAdeMO lost, and what BI

11 Jun 2026·12 min read
Charging & Infrastructure

How EV Charging Actually Works: AC, DC, and Why It Matters for India

When you plug your EV in at home, you are not directly charging the battery. You are powering a converter inside the car. Understanding this one fact unlocks everything confusing about charging speeds, connector types, a

11 Jun 2026·9 min read
Cell Chemistry

NMC vs LFP for Commercial EV Fleets: The Pack-Level Engineering Decision

Choosing between NMC and LFP for a commercial EV pack is not a chemistry decision — it is a system engineering decision. The cell that wins on the datasheet often loses in the field. Here is how to think about it correct

6 Jun 2026·14 min read
Solid-State Batteries — Manufacturing Scalability, Cost Modelling, and Why 2030 Timelines Are Engineering FictionCell Chemistry

Solid-State Batteries — Manufacturing Scalability, Cost Modelling, and Why 2030 Timelines Are Engineering Fiction

The electrochemistry of solid-state batteries is understood. The interface mechanisms are being characterised. The unresolved question — the one that determines whether solid-state becomes a mass-market technology or an

29 May 2026·22 min read
Solid-State Batteries — Dendrite Suppression, Chemo-Mechanical Coupling, and What the Electrochemistry Actually ShowsCell Chemistry

Solid-State Batteries — Dendrite Suppression, Chemo-Mechanical Coupling, and What the Electrochemistry Actually Shows

The dendrite problem in solid-state batteries is not the same as the dendrite problem in liquid electrolyte cells. It is governed by fracture mechanics, not electrochemical kinetics. Stack pressure is not just a contact

29 May 2026·11 min read
Solid-State Batteries — The Ionic Conductivity Problem and Why the Interface Is EverythingCell Chemistry

Solid-State Batteries — The Ionic Conductivity Problem and Why the Interface Is Everything

The solid electrolyte is not just a safer swap for liquid. It changes the ion transport physics, introduces mechanical stress that liquid never had, and creates an interface problem that no liquid electrolyte battery eng

29 May 2026·11 min read
Solid-State Batteries — No Liquid, No Fire, No Catch? Not QuiteCell Chemistry

Solid-State Batteries — No Liquid, No Fire, No Catch? Not Quite

Every few months a headline announces that solid-state batteries will change everything in 3 years. Toyota said it. Samsung said it. QuantumScape said it. The technology is real — but the gap between a lab cell and a car

26 May 2026·10 min read
SOC Estimation Error Budgeting, EKF Implementation, and Why Indian BMS Firmware Gets It Wrongbms

SOC Estimation Error Budgeting, EKF Implementation, and Why Indian BMS Firmware Gets It Wrong

You know the failure modes. You understand the theory. This article is about the numbers — full error budget for an Indian-condition BMS deployment, complete EKF state equations with LFP hysteresis, dual estimation archi

15 May 2026·18 min read
Coulomb Counting vs OCV Correction vs Kalman Filtering — BMS SOC Architecture Comparedbms

Coulomb Counting vs OCV Correction vs Kalman Filtering — BMS SOC Architecture Compared

Every production BMS uses some combination of three techniques to estimate SOC. The question is not which one to use — it is how to fuse them correctly, how to tune the estimator for Indian operating conditions, and why

15 May 2026·13 min read
Coulomb Counting Drift — Why 0.5% Sensor Error Becomes 8% SOC Error After 200 Cyclesbms

Coulomb Counting Drift — Why 0.5% Sensor Error Becomes 8% SOC Error After 200 Cycles

The maths of coulomb counting looks clean on paper. Integrate current over time, divide by capacity, show percentage. But every real-world implementation fights four compounding error sources simultaneously — and most In

14 May 2026·14 min read
Why Your EV's Battery Percentage Is Lying to Youbms

Why Your EV's Battery Percentage Is Lying to You

You charged to 80%, drove 40 km, and the battery shows 48%. The maths doesn't add up. Your EV isn't broken — it's just bad at counting. Here's why battery percentage is harder to measure than it sounds, and why Indian EV

14 May 2026·10 min read
Thermal Runaway — Kinetics, ARC Testing, Propagation Modelling, and Pack CertificationThermal Management

Thermal Runaway — Kinetics, ARC Testing, Propagation Modelling, and Pack Certification

If you've already studied the five stages, the electrochemical mechanisms, and the chemistry gap between LFP and NMC — this is where it gets rigorous. ARC methodology, Arrhenius parameters, Frank-Kamenetskii criticality,

6 May 2026·20 min read
Thermal Runaway — What Actually Happens Inside a Cell Before It Catches FireThermal Management

Thermal Runaway — What Actually Happens Inside a Cell Before It Catches Fire

Thermal runaway is not a single event. It is a cascade of five distinct electrochemical stages, each with its own temperature window, gas signature, and intervention opportunity. By the time you see smoke, three of them

6 May 2026·13 min read
What Is Thermal Runaway? (And Why Your EV Won't Randomly Explode)Thermal Management

What Is Thermal Runaway? (And Why Your EV Won't Randomly Explode)

You've seen the viral videos. An EV on fire, thick black smoke, firefighters pouring water for hours. Terrifying. But what actually happened inside that battery — and how worried should you actually be? Let's break it do

6 May 2026·9 min read
Thermal Runaway — The 5 Stages Your BMS Is Racing AgainstThermal Management

Thermal Runaway — The 5 Stages Your BMS Is Racing Against

Thermal runaway isn't a single event you can react to — it's a sequence of five escalating stages, each narrowing your intervention window. By Stage 3, the BMS can only watch. Here's the full picture, how to read the war

5 May 2026·13 min read
Charging an EV Is Not Like Charging Your Phone — Here Is Whycharging-&-infrastructure

Charging an EV Is Not Like Charging Your Phone — Here Is Why

There are four completely different ways to charge an electric vehicle, and they work nothing like each other. Understanding the difference changes how you plan every long trip you ever take in an EV.

1 May 2026·9 min read
BMS Design Under Uncertainty — The Problems That Don't Have Clean AnswersPack & BMS Design

BMS Design Under Uncertainty — The Problems That Don't Have Clean Answers

Parameter uncertainty, electrode slippage, multi-chemistry state estimation, and the fundamental limits of model-based BMS design. For engineers who already know how it works and want to understand where it breaks at the

29 Apr 2026·17 min read
Where BMS Implementations Actually BreakPack & BMS Design

Where BMS Implementations Actually Break

The block diagram is clean. The deployed system is not. Here are the specific failure modes, bad design decisions, and algorithm gaps that show up in real commercial BMS implementations — with the numbers to prove it.

29 Apr 2026·14 min read
How a BMS Knows What It Cannot SeePack & BMS Design

How a BMS Knows What It Cannot See

The BMS estimates state of charge without a single sensor that measures it directly. Here's how Coulomb counting, OCV lookup, and the Kalman filter work together — and where each one falls short.

29 Apr 2026·9 min read
Your EV Has a Brain. It's Called the BMS.Pack & BMS Design

Your EV Has a Brain. It's Called the BMS.

The Battery Management System is the most critical and least understood component in any electric vehicle. It monitors every cell, estimates how much energy remains, prevents dangerous failures, and manages charging — al

29 Apr 2026·9 min read
Why Your EV Shows 300 km at Night — But Only 190 km by MorningDeep Dives

Why Your EV Shows 300 km at Night — But Only 190 km by Morning

Your EV's range display was not wrong when it showed 300 km. It was also not wrong when it showed 190 km the next morning. Both numbers were accurate representations of different physical states. Understanding why reveal

27 Apr 2026·11 min read
Heat Generation in Lithium-Ion Cells and Packs — Where the Energy Goes and Why It MattersDeep Dives

Heat Generation in Lithium-Ion Cells and Packs — Where the Energy Goes and Why It Matters

Every kilowatt-hour of energy that moves through a lithium-ion battery pack generates heat that must go somewhere. Understanding the physics of heat generation — Joule heating, entropic heat, contact resistance losses, a

17 Apr 2026·16 min read
Why India's Public EV Charging is Broken — and What Can Actually Fix ItPolicy Analysis

Why India's Public EV Charging is Broken — and What Can Actually Fix It

India has deployed thousands of public EV chargers. A significant fraction are offline, wrong connector standard, underrated for the vehicles that need them, or unavailable due to grid quality issues. This is not a resou

11 Apr 2026·12 min read
ISO 15118 Plug and Charge: Security and PKI BasicsStandards & Compliance

ISO 15118 Plug and Charge: Security and PKI Basics

ISO 15118 Plug and Charge eliminates the payment step at DC fast chargers — the EV authenticates and authorises charging automatically when the cable is connected. The security architecture that makes this work without c

11 Apr 2026·7 min read
UL 2580 Abuse Test Matrix: What Teams MissStandards & Compliance

UL 2580 Abuse Test Matrix: What Teams Miss

A battery pack that passes electrical performance testing and thermal cycling can still fail catastrophically in a real-world abuse event. UL 2580 exists because performance testing is necessary but not sufficient — and

11 Apr 2026·7 min read
NMC 811 vs NMC 622 vs NMC 532 — What the Numbers Actually MeanCell Chemistry

NMC 811 vs NMC 622 vs NMC 532 — What the Numbers Actually Mean

The three numbers in NMC chemistry are a stoichiometric ratio that encodes the entire engineering trade-off between energy density, cycle life, thermal stability, and cost. Understanding what shifts when you move from NM

10 Apr 2026·10 min read
Model Y RWD Long-Term Efficiency ReviewVehicle Reviews

Model Y RWD Long-Term Efficiency Review

A year of measured numbers from a Model Y RWD — real-world consumption across conditions, LFP battery degradation data, Supercharger curve behaviour, and the efficiency variables that matter most across seasons and drivi

9 Apr 2026·9 min read
ISO 6469 for Electric Road Vehicle Safety SystemsStandards & Compliance

ISO 6469 for Electric Road Vehicle Safety Systems

ISO 6469 defines the safety framework for electric vehicle high-voltage systems — the orange cables, the isolation monitoring, the HVIL, and the discharge requirements that govern how EV high-voltage architectures must b

9 Apr 2026·7 min read
Ioniq 5 800 V Charging Behavior ReviewDeep Dives

Ioniq 5 800 V Charging Behavior Review

The Ioniq 5's 800V architecture enables 350 kW peak charging — but what does the charge curve actually look like in practice, how does the thermal management affect sustained high-rate charging, and what happens when you

8 Apr 2026·7 min read
IEC 61851 Charging Interface: Practical Implementation GuideStandards & Compliance

IEC 61851 Charging Interface: Practical Implementation Guide

IEC 61851 is the standard that every EV charging interface operates on — from a home wall socket to a 150 kW public charger. Understanding the control pilot signal, the state machine, and the safety interlocks tells you

8 Apr 2026·7 min read
F-150 Lightning Towing Range: The Honest NumbersVehicle Reviews

F-150 Lightning Towing Range: The Honest Numbers

The F-150 Lightning's advertised range of 483 km collapses to 130–190 km when towing at maximum rated capacity. Understanding why — aerodynamic loading, mass penalty, drivetrain efficiency, and regenerative braking effec

8 Apr 2026·6 min read
EQS SUV Consumption: Aerodynamics vs Mass ContributionEV Benchmarks

EQS SUV Consumption: Aerodynamics vs Mass Contribution

The Mercedes EQS SUV weighs 3,210 kg and achieves a Cd of 0.26 — an engineering paradox for a vehicle of its size. Quantifying how much aerodynamic investment compensates for mass penalty at different speeds tells you wh

8 Apr 2026·7 min read
BMW i4 eDrive40: Range Consistency Under Temperature SwingsEV Benchmarks

BMW i4 eDrive40: Range Consistency Under Temperature Swings

The BMW i4 eDrive40 asks a more useful question than peak range: how consistently does it deliver its range across the temperature spectrum? Measured across summer and winter conditions, the NMC battery's thermal managem

8 Apr 2026·6 min read
AIS-156 — India's EV Battery Safety Standard ExplainedStandards & Compliance

AIS-156 — India's EV Battery Safety Standard Explained

AIS-156 is the Automotive Industry Standard that governs battery pack safety for electric vehicles sold in India. Understanding its phases, test requirements, and amendment history tells you exactly what an Indian EV bat

8 Apr 2026·14 min read