Battery Safety Summit

Next Generation Advancements for Safe and Efficient Energy Storage System Applications
안전하고 효율적인 에너지 저장 시스템 응용에서의 차세대 진보

2026년 8월 12일 - 13일 CDT(미국 중부 표준시·서머타임)

이 컨퍼런스 트랙에서는 재료 개발, 시험 방법, 진단, 배터리 관리 시스템, 포렌식, 충전 기술 등 배터리 안전성에서의 차세대 진보에 대해 설명합니다. 이러한 중요 분야는 에너지 저장 시스템에 내재된 복잡한 전기화학적·열적·기계적 거동을 다루고 있습니다. 제16회 연차 Battery Safety Summit은 세계 업계 리더, 연구자, 이노베이터가 한자리에 모여 첨단 안전 솔루션을 통합하기 위해 최신 연구개발 브레이크스루와 실용적 전략을 소개합니다. 이에 따라 에너지 저장 시스템의 안전하고 효율적이며 확장 가능한 도입을 지원하며, 세계 시장의 수요 증가에 대응할 수 있습니다. 제6회 연차 Solid-State Battery Summit과 동시 개최되는 이 이벤트는 안전한 고체 배터리·반고체 배터리 기술을 추진하는 세계의 주요 기업으로부터 최신 기술·제조·상업 개발에 관한 중요한 인사이트를 얻을 수 있는 최적의 기회를 제공합니다.

Wednesday, August 12

12:00 pmRegistration Open

12:50 pmOrganizer's Opening Remarks

SOLID-STATE BATTERY DESIGN AND SAFETY
고체 배터리 설계와 안전성

12:55 pm

Chairperson's Remarks

Eric Darcy, PhD, former Battery Technical Discipline Lead, NASA-JSC; Private Consultant, Darcy Batt Consulting, LLC

1:00 pm FEATURED PRESENTATION:

Liquid, Solid, and Semi-Solid Batteries with Focus on Battery Safety

John Zhang, PhD, CTO/CSO, Polypore International

This presentation will address the safety behavior and underlying mechanisms of SSBs, with direct comparison to liquid-state batteries (LSBs). Testing results show that, during internal shorts in high-energy systems, the severity of fire and explosion follows the order: SSB > LSB. The data indicate a counterintuitive trend-the greater the liquid content in the battery, the safer its behavior under abuse conditions.

1:30 pm

Engineered Cathode Chemomechanics Enables Ultra-Low Stack Pressure Solid-State Batteries

Paul V. Braun, PhD, Professor & Grainger Distinguished Chair, Engineering, University of Illinois Urbana Champaign

Stresses resulting from electrode material chemomechanics are strongly coupled to solid electrolyte-electrode interface failures. Such failures are significant barriers to realization of practical Li-metal solid-state batteries (SSBs). We show the importance of cathode chemomechanics at commercially relevant low stack pressures (e.g., <1 MPa). Utilizing these learnings, we build long cycle-life SSBs with practical areal capacity (5 mAh/cm2) operating at less than 1 MPa stack pressure at room temperature.

2:00 pm

Safety and Manufacturability of Semi-Solid-State Li-Metal Batteries with Ultra-Thin Anode

Alex Kosyakov, Co-Founder & CEO, Natrion Inc.

Natrion is the manufacturer of Active Separator, a thin, flexible solid-state electrolyte separator for lithium secondary batteries. Natrion will present its latest validation of the performance and safety of semi-solid lithium-metal batteries pairing Active Separator with 5-20 micrometer-thick lithium-metal anodes. This will include cyclability of high-capacity pouch cells at ambient temperatures and pressures (zero clamping) demonstrating 1000+ Wh/L, 400+ Wh/kg energy densities, as well as independent abuse testing results.

Cell Failure Detection
셀 고장 탐지

2:30 pm

Identification of Early Signs of Failures in Lithium-Ion Batteries

Puritut Nakhanivej, PhD, Research Fellow, University of Warwick

Tanveer Pathan, PhD, Principal Engineer, University of Warwick

A comprehensive understanding of the mechanisms that lead to cell failure in lithium-ion batteries is essential for the advancement of global battery sector. Robust detection methodologies are required to identify the onset of failure at early stages. In this study, we employ a combination of electrochemical analysis and advanced characterisation techniques to investigate the electrochemical phenomena occurring within cathodes and anodes. Utilising a three-electrode pouch cell configuration with lithium iron phosphate as the reference electrode, we assessed the electrochemical behaviour of both cathodes and anodes as cells approach unsafe conditions. For detailed characterisation, plasma focused ion beam (PFIB) scanning electron microscopy (SEM) and X-ray photoelectron spectroscopy (HAXPES and XPS) were conducted ex situ on cathode and anode materials. Additionally, operando nuclear magnetic resonance (NMR) spectroscopy was performed to elucidate failure mechanisms under extreme operational scenarios. The results establish a systematic methodology for identifying critical markers indicative of cell safety risks, offering potential for adaptation and implementation across a range of commercially relevant cell formats.

3:00 pmRefreshment Break in the Exhibit Hall with Poster Viewing (Sponsorship Opportunity Available)

3:30 pmSponsored Presentation (Opportunity Available)

OEM & MANUFACTURING PERSPECTIVES ON BATTERY SAFETY
배터리 안전성에 관한 OEM & 제조 시점

4:00 pm

FEATURED PRESENTATION: An Ounce of Prevention: Formation Data Analysis for Defect Detection at Production Scale

James Salvador, Staff Researcher, Chemical Sciences & Materials Systems Laboratory, General Motors

In gigawatt Li-ion battery plants, cell defects with vanishingly low probability can occur daily. In this talk, we will show automated gas harvesting and analysis hardware solutions for quantification of formation gas-and software solutions for time series formation charge analysis that can enable in situ determination of cell-quality anomalies that could potentially lead to premature failure. These methods leverage existing data streams to improve safety through prevention.

4:30 pm

Battery Thermal Propagation Mitigation Strategies across Cell Chemistries & Cell Form Factors

Bhaskara Boddakayala, Global Technical Expert, Battery Safety & Materials, Cell Vent Management, Ford Motor Company

Sahil Nagpal, HV Battery CVM Systems Engineer, Ford Motor Company

Battery thermal propagation represents one of the most critical safety challenges in modern energy-storage systems, particularly as battery-pack energy densities continue to increase across automotive, stationary storage, and consumer applications. This presentation focuses on analysis and examines current solution trends; compares protection strategies at cell, module, and pack levels; and evaluates chemistry-specific approaches to mitigating thermal-runaway propagation.

5:00 pmWelcome Reception in the Exhibit Hall with Poster Viewing (Sponsorship Opportunity Available)

6:00 pmEvening Tutorial*

Battery Safety and Abuse Tolerance Validation

7:30 pmClose of Day

Thursday, August 13

8:00 amRegistration Open and Morning Coffee

8:20 amOrganizer's Welcome Remarks

THERMAL-RUNAWAY MITIGATION
열폭주 완화

8:25 am

Chairperson's Remarks

Adam Cohn, PhD, Principal Scientist, Materials Science and Electrochemistry, Exponent, Inc.

8:30 am

Isolating Internal Shorts with Metallized Polymer Current Collectors

Eric Darcy, PhD, former Battery Technical Discipline Lead, NASA-JSC; Private Consultant, Darcy Batt Consulting, LLC

Metallized polymer current collectors for the cathode have been demonstrated to consistently (27 of 27 trials) tolerate nail penetration (shallow or deep) in 21700 cell designs that achieve >250 Wh/kg when coupled with isotropic strength polymer separators and a thermally-stable ceramic coating on the anode active material. Only soft shorts develop and thermal runaway is obviated. High-speed radiography, cell OCV and temperature measurements, and post-test CT images of the nail holes reveal insights into the isolating mechanism. These innovative inert cell features can dramatically improve the safety of the vast majority of Li-ion cell chemistries.

9:00 am

Lithium-ion Battery Fire Suppression for Aircraft Cargo-Compartment Fires

Judy Jeevarajan, PhD, Vice President and Executive Director, Electrochemical Safety Research Institute, UL Research Institutes

Lithium-ion batteries used for portable applications are getting significantly large in terms of energy, and pose fire hazards of concern in the cargo compartments of aircraft. Studies have been carried out that include thermal runaway tests on these batteries ranging from a few tens of Wh to about 350 Wh. Suppressants that include Halon 1301, water, and water additives have been tested to characterize the efficacy of suppression.

9:30 am

Thermal Runaway Risks in Flooded Electric Vehicles: Insights from Submersion Testing and Diagnostics

Tanvir Tanim, Battery R&D Engineer and Group Lead, Energy Storage Technology Group, Idaho National Laboratory

Electric vehicle (EV) battery packs pose safety risks during saltwater submersion, as seen in recent hurricane-related incidents leading to thermal runaway. This study examines pack vulnerabilities through teardowns and full-scale immersion tests, identifying failure modes such as seal weaknesses, component degradation, and pathways to thermal runaway. Results show current immersion standards do not ensure safety under prolonged flooding. Early diagnostic signals were also identified, offering potential early warnings before failure. These findings support improved pack design, early-warning systems, updated standards, and emergency response strategies for saltwater-flooded EVs.

10:00 amSponsored Presentation (Opportunity Available)

10:30 amCoffee Break in the Exhibit Hall with Poster Viewing (Sponsorship Opportunity Available)

11:00 am

Can Sparse Temperature Sensing Reliably Detect Thermal Runaway? Bridging the Gap Between Theory and Commercial Battery Packs

Yatish Patel, PhD, Fellow, Mechanical Engineering, Imperial College London

Battery packs in electric vehicles rely on sparse temperature sensing, often as little as one sensor for every ten cells, yet this limitation is rarely addressed in thermal runaway detection research. This talk evaluates how effective these low-cost temperature measurements are for early fault detection, using a combined modelling and experimental approach. It critically compares temperature-based diagnostics with alternative sensing methods, demonstrating that despite limitations, temperature sensing remains the most viable solution for scalable, cost-constrained battery management systems.

11:30 am

Scaling Early Thermal-Runaway Detection from Cell to EV Module

Loraine Torres-Castro, PhD, Battery Safety Lead, Sandia National Laboratories

Early thermal-runaway detection in scaled electric-vehicle battery systems remains challenging due to sparse sensing and signal averaging across parallel-connected cells. This study experimentally evaluates advanced gas sensors and high-voltage electrochemical impedance spectroscopy in commercial Tesla modules housed in a pack-representative enclosure. Controlled single-cell overheating was used to assess diagnostic response at module scale, addressing the gap between cell-level validation and full-pack implementation.

KEY STANDARDS FOR ENERGY STORAGE
에너지 저장용 주요 규격

12:00 pm

Battery Energy Storage Systems: Safety Approaches and Best Practices

Kevin Fok, Director of Compliance, LG Energy Solution Vertech, Inc.

This presentation discusses recent battery energy storage system codes and standards updates, and some corresponding safety approaches and best practices.

12:30 pm

How Requirement & Regulations for EV’s and BESS are Converging

Benjamin Christian, New Product Development Engineer, Freudenberg-NOK Sealing Technologies

A summary of current and future EV and BESS requirements & regulations, comparing similarities and differences across both industries and why they exist.

1:00 pmEnjoy Lunch on Your Own

ABUSE TOLERANCE, ADVANCED TESTING, AND SIMULATION
오용 한계(ABUSE TOLERANCE), 첨단 시험, 시뮬레이션

1:55 pm

Chairperson's Remarks

Judy Jeevarajan, PhD, Vice President and Executive Director, Electrochemical Safety Research Institute, UL Research Institutes

2:00 pm

Cycling-Induced Electrode Deformation and the Potential Safety Implications

Adam Cohn, PhD, Principal Scientist, Materials Science and Electrochemistry, Exponent, Inc.

This presentation will examine cycling-induced electrode deformation and the associated potential safety implications.

2:30 pm

Flammability and Safety of Next-Generation Battery Electrolytes: From Liquids to Gels

Mickael Dollé, PhD, Professor, Department of Chemistry, Université de Montréal

Electrolyte flammability is a critical safety and deployment barrier for next-generation batteries. This presentation introduces standardized flash point measurements applied to both aqueous-organic and gel-polymer electrolytes, providing quantitative insight into ignition risks across liquid and quasi-solid systems. By linking flammability to solvent composition, solvation structure, and polymer-solvent interactions through spectroscopic and data-driven analysis, we highlight key design rules to mitigate volatility and combustion risk. These results offer actionable guidance for industrial development of safer, high-performance electrolyte formulations.

3:00 pm

Performance of Highly Durable Zinc Secondary Batteries Using SOE Technology

Masatsugu Morimitsu, Dr.Eng., Professor, Department of Science of Environment and Mathematical Modeling, Doshisha University; CTO, HEW NEXUS Co., Ltd.

This talk presents the charge-discharge cycling performance of laminated zinc rechargeable batteries using SoE (segmentation of electrolyte) technology for electric vehicles (EVs) and stationary energy-storage applications. This technology suppresses zinc dendrite formation during charging, enabling high durability with stable voltages and high voltage efficiency.

3:30 pm

How Safe Are Solid-State Batteries? Identifying Hazards with a Bottom-up Approach

Nathan Johnson, PhD, Senior Member of Technical Staff, Sandia National Laboratories

This talk examines safety considerations in solid-state batteries using a bottom-up approach. By analyzing material behavior and interface interactions, we identify potential failure mechanisms and highlight emerging insights that challenge assumptions about the inherent safety of solid-state systems.

4:00 pmClose of Summit


* 주최측 사정에 따라 사전 예고없이 프로그램이 변경될 수 있습니다.

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