Battery

Physics Intelligence for Battery Materials and Systems

Connect material, cell, and pack models to evaluate thermal, structural, and electrochemical behavior. Combine your computational models and experimental data with Physics Intelligence to explore material candidates and designs against performance targets.

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Physics Intelligence

Shared Foundation Across Industries

One common input arrow connects geometry and discretization, material laws, operating conditions, and design objectives to SolverX Physics Intelligence. Governing equations, constitutive models, and physical constraints support application-specific physical response models across 5 illustrated applications. An inverse-design loop connects response to design decisions. Conceptual illustration, not simulation results.BatteryGeometry & DiscretizationPhysical domains · CAD · MeshesMaterial Laws & PropertiesConstitutive behavior · ParametersLoads & Operating ConditionsBoundary · Initial · Drive conditionsObjectives & ConstraintsTarget responses · Design limitsSolverX Physics IntelligenceGoverning equations · Constitutive models · Physical constraints01Battery PackThermal ManagementCoolant flowTemperature · Coolant flow02Electrochemical–Thermal CouplingPotential · Temperature03Battery Pack Impact& DeformationImpactPack deformation · Contact04Material DiscoveryABCTargetProperties · Candidate selection05Cell-to-Pack Multiscale& MultiphysicsHeat + stress transferCellCell groupPackPack targets → cell choiceHeat · Stress · Scale couplingPredict response · Compare designs · Work backward from targetsCONCEPTUAL PHYSICS SCHEMATIC

Applications

Connect the physical responses of materials, cells, and packs to explore your battery performance targets. Combine SolverX Physics Intelligence with your computational models and experimental data in solutions tailored to cooling and structural design, material evaluation, and multiscale analysis.

01

Battery Pack Thermal Management

Predict heat generation, heat transfer, and cooling flow in battery packs to evaluate temperature distributions and cell-to-cell temperature differences. Compare cell layouts, cooling designs, material properties, and operating conditions to balance heat removal, temperature uniformity, and flow resistance.

02

Electrochemical–Thermal Coupling

Evaluate interacting electrochemical responses and temperature changes under varying operating conditions. Connect current, heat generation, and heat transfer to compare design and operating scenarios.

03

Battery Pack Impact & Deformation

Evaluate stress, deformation, and load transfer in battery packs under impact, compression, and contact loading. Compare pack structures, cell layouts, materials, and mounting conditions to explore designs that meet mechanical performance targets.

04

Material Discovery

Compare the electrochemical, thermal, and mechanical responses of material candidates to explore materials and property combinations for your performance targets. Connect SolverX Physics Intelligence with your microstructure, materials, and cell models and experimental data to evaluate promising candidates at cell and pack scales.

05

Cell-to-Pack Multiscale & Multiphysics

Connect cell-level electrochemical response, heat generation, and material properties with pack-scale cooling, heat transfer, contact, and structural models. Use Physics Intelligence with the quantities exchanged across scales and experimental data to jointly explore material, cell, and pack designs that meet your performance targets.

SolverX: Your Accurate,
Cost-Effective,
Accelerated Battery
Engineering Partner

Increase Simulation Accuracy
Integrate testing data to enhance simulation reliability.
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Shorten product cycles with faster, high-accuracy simulations.
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Solve the toughest battery engineering problems with advanced AI solutions.
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