Lithium-Ion Battery Testing Under ECSS-E-HB-20-02A

ECSS-E-HB-20-02A Lithium-Ion Battery Testing

Introduction

Lithium-ion batteries provide energy storage for spacecraft when electrical power from solar arrays is unavailable or insufficient. This can occur during eclipse periods, payload peak demand, initial deployment, emergency conditions or particular spacecraft manoeuvres. Battery testing is therefore required to understand whether the selected cell or battery can meet the performance, environmental, life and safety needs of the intended mission. 

ECSS-E-HB-20-02A is a practical handbook for lithium-ion cell and battery testing during the development and qualification of space equipment and systems. It brings together test experience, know-how and lessons learned from the European space community. Its principal subjects are test conditions, required information, test methods, reporting and good practice. 

Engineers should care because acceptable beginning-of-life performance is not enough. The effect of cycling, time, temperature, state of charge and mission operating profiles must be understood sufficiently to support predictions of in-service and end-of-life behaviour. The handbook therefore emphasises comprehensive test data, controlled test conditions and documented analysis.

The handbook does not provide a single universal battery qualification recipe. Its recommendations must be applied within the relevant project requirements, mission environmental profile, battery design, supplier information and approved verification strategy.

What Is ECSS-E-HB-20-02A?

Definition

ECSS-E-HB-20-02A is an ECSS engineering handbook providing guidance on the testing of lithium-ion cells and batteries and the associated generation of test documentation. Its stated purposes are to:

  • Summarise relevant characterisation tests.

  • Provide guidance for lithium-ion battery testing.

  • Provide guidance for test-related documentation.

  • Give an overview of appropriate test methods.

  • Present recognised good practice. 

Purpose

Its engineering purpose is to improve the quality, consistency and usefulness of battery test programmes.

It helps project teams define:

  • What is being tested.

  • Why the test is required.

  • Which conditions apply.

  • What measurements must be taken.

  • How results and anomalies should be documented.

  • How test evidence contributes to understanding battery suitability.

The handbook considers different test articles, including individual cells, strings, building blocks, modules and complete batteries. This matters because evidence obtained at one level is not automatically representative of performance at another level.

Where It Fits in a Space Programme

Design

Characterisation and life-test data help engineers understand capacity, energy, resistance, rate capability, ageing and operational limitations.

Manufacturing

Lot acceptance and wear-out testing can help identify changes associated with materials, manufacturing processes or cell lots.

Assembly, Integration and Test

The handbook addresses battery health or capacity checks before and after the AIT campaign and recommends minimising unnecessary use of the flight battery during AIT.

Verification

Test plans, procedures, reports, raw data, analysis and nonconformance records form part of the verification evidence.

Flight Readiness

Evidence from electrical, environmental, life and safety testing contributes to the assessment of whether the battery is suitable for the defined mission. It does not independently constitute flight approval.

Why Is Lithium-Ion Battery Testing Important?

Risk Reduction

A spacecraft battery can meet its initial capacity requirement and still present mission risk through:

  • Capacity fade.

  • Increasing internal resistance.

  • Poor low-temperature performance.

  • Unexpected self-discharge.

  • Mechanical vulnerability.

  • Electrolyte leakage.

  • Inadequate cycle life.

  • Unsafe response to electrical abuse.

  • Failure of protective devices.

The handbook addresses these risks through electrical characterisation, environmental testing, life testing and safety testing. [ECSS-E-HB-…ctober2015 

Compliance

The handbook supports the implementation of relevant ECSS requirements, but it is not a substitute for the applicable standards or customer specification. It references ECSS documents covering testing, the space environment, electrical and electronic engineering, storage and handling, and material outgassing. It also references transport and crewed-space battery safety documents. 

Verification Confidence

Confidence comes from controlled, traceable evidence. The handbook expects test documentation to identify the test item, test conditions, test criteria, methods, equipment, instrumentation, results, analysis and related nonconformances. 

Mission Assurance

Battery performance can change with calendar age, charge-discharge cycling, temperature, depth of discharge, state of charge and operating profile. Life testing and representative mission-profile testing provide data that can support battery sizing and end-of-life performance predictions.

What Does ECSS-E-HB-20-02A Cover?

The handbook groups testing into four principal technical areas, supported by documentation and handling guidance.

Electrical Characterisation

The handbook covers:

  • Standard capacity and energy measurement.

  • Internal resistance measurement.

  • AC impedance measurement.

  • Self-discharge testing.

  • Charge-retention testing.

  • Rate-capability assessment.

  • Cell electromotive-force measurement.

  • Battery magnetic-moment measurement.

  • Corona testing for high-voltage batteries.

These tests establish baseline performance and help identify changes following environmental exposure, life cycling or storage.

Results are condition-dependent. Capacity, energy and resistance figures have limited meaning unless charge method, discharge rate, temperature, voltage limits, rest periods, state of charge and previous test history are recorded.

Environmental Testing

Environmental testing includes:

  • Low-level sine vibration.

  • High-level sine vibration.

  • Random vibration.

  • Shock.

  • Thermal vacuum.

  • Electrolyte leak testing.

  • Cell-can hermeticity testing.

  • Radiation testing. 

Mechanical testing is intended to validate aspects of design and manufacture against the mission environment. When cells or subassemblies are tested in a representative fixture rather than a complete battery, the fixture and input levels must account for the intended installation and possible structural amplification.

Thermal vacuum testing is applied against the mission profile. Relevant parameters include operational and non-operational temperature limits, transition rates, dwell periods, cycle count, pressure and electrical cycling conditions. The handbook specifically states that battery cells should not be baked out because doing so can damage the test item.

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Life Testing

The handbook covers:

  • Calendar or survivability testing.

  • Constant depth-of-discharge cycling.

  • Constant depth-of-discharged-energy cycling.

  • Mission-profile cycling.

  • GEO-related profiles.

  • LEO-related profiles.

  • Real-time testing.

  • Accelerated testing.

  • Wear-out testing.

Life testing is used to understand long-term degradation and generate factors for battery sizing and performance calculations. The handbook warns, in effect, that acceleration must be technically justified because excessive temperature, current or other acceleration can introduce unrealistic ageing and over-test the cell.

Safety Testing

The handbook addresses:

  • Overcharge.

  • Overdischarge.

  • External short circuit.

  • Internal-short-circuit considerations.

  • Vent pressure.

  • Burst pressure.

  • Protective-device operation.

The identified hazards include venting, fire, burst, explosion and electrolyte leakage. Safety testing is intended to characterise behaviour and protective features. It does not mean that every listed abuse test is automatically appropriate for every assembled flight battery.

Storage, Handling, Transport and AIT

The handbook also considers:

  • Storage conditions.

  • Maintenance conditions.

  • Shelf life.

  • Safe handling.

  • Transportation.

  • Battery checks during AIT.

  • Minimising use of flight batteries.

  • Open-circuit-voltage monitoring.

Transport-related testing is connected to the UN Manual of Tests and Criteria, subsection 38.3, rather than being replaced by this ECSS handbook.

What ECSS-E-HB-20-02A Does Not Cover

Battery Management Subsystem Testing

The document explicitly states that this issue does not include battery management subsystem testing. It defines the term, and some test arrangements may involve battery-management functions, but the handbook is not a complete BMS verification guide.

Automatic Qualification

Completing a selection of tests from the handbook does not automatically qualify a battery.

Qualification depends on matters including:

  • The approved requirement baseline.

  • Test-item representativeness.

  • Configuration control.

  • Approved test levels and margins.

  • Defined success criteria.

  • Valid instrumentation and calibration.

  • Correct anomaly disposition.

  • Verification closure.

  • Customer or approving-authority acceptance.

Detailed Cell Chemistry Hazard Analysis

It identifies battery hazards and points towards other safety references. It does not provide a complete chemistry-specific hazard analysis, facility risk assessment, emergency response plan or FMECA for every battery design.

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A Complete Spacecraft Electrical Power System

It does not provide complete verification coverage for:

  • Solar-array performance.

  • Power-conditioning and distribution.

  • Spacecraft-level energy balance.

  • Harness design.

  • Electrical interfaces outside the battery test scope.

  • Complete fault-management architecture.

These require the appropriate system requirements, interface requirements and verification planning.

Universal Test Levels

The handbook does not establish one universal vibration level, shock spectrum, TVAC temperature range, radiation dose or life-cycle count for every mission.

The environmental and operating conditions must be linked to the mission profile, applicable specification and agreed project requirements.

Transport Certification

The handbook references transport testing requirements, including UN subsection 38.3, but it is not itself a replacement for applicable dangerous-goods transport regulations or certification evidence.

Programme-Specific Tailoring

It does not decide which tests are mandatory for a particular customer, launch provider, agency or mission. That is established through the project’s applicable-document list, compliance matrix, tailoring process and verification plan.


How ECSS Applies to Lithium-Ion Battery Testing

Relevant ECSS Documents

The handbook references:

  • ECSS-S-ST-00-01, ECSS system terminology.

  • ECSS-E-ST-10-03, space engineering testing.

  • ECSS-E-ST-10-04, space environment.

  • ECSS electrical and electronic engineering requirements.

  • ECSS-Q-ST-20-08, storage, handling and transportation of space hardware.

  • ECSS-Q-ST-70-02, thermal-vacuum outgassing testing of space materials.

Only documents genuinely applicable to the specific project and test scope should be listed in the final compliance baseline.

Tailoring Considerations

Tailoring should address:

  • Mission orbit and duration.

  • Thermal environment.

  • Radiation environment.

  • Launch loads.

  • Eclipse and power-demand profile.

  • Cell chemistry and construction.

  • Battery architecture.

  • State of charge during testing.

  • Qualification, acceptance or protoflight philosophy.

  • Test-item representativeness.

  • Available heritage evidence.

  • Customer and launch-provider requirements.

Tailoring does not mean quietly removing difficult tests. Each inclusion, modification or deletion should be justified and approved through the project’s requirements process.

Customer Requirements

Customer requirements may supplement or exceed the handbook’s recommendations. The controlling position should be established in the test specification and agreed documentation, not assumed from the handbook title.


Typical Lithium-Ion Battery Test Process

Planning

  • Establish the applicable requirements and document baseline.

  • Define the verification objective.

  • Identify whether the activity supports development, lot acceptance, qualification, acceptance or another purpose.

  • Define the test item and its configuration.

  • Determine required environmental and electrical profiles.

  • Establish measurable success and failure criteria.

Preparation

  • Approve the test specification and procedure.

  • Confirm test-item configuration.

  • Confirm state of charge and battery history.

  • Review hazards and protective measures.

  • Verify instrumentation range, accuracy and calibration.

  • Confirm sensor positions and data-acquisition settings.

  • Complete the test readiness review.

Execution

  • Record pre-test condition and baseline measurements.

  • Apply the approved sequence and environment.

  • Monitor voltage, current, temperature and other required parameters.

  • Record interruptions, deviations and anomalies.

  • Retain raw data.

  • Prevent uncontrolled changes to the test article or set-up.

Review

  • Compare results against approved criteria.

  • Evaluate trends and changes from baseline.

  • Assess anomalies and nonconformances.

  • Confirm whether retesting is technically justified.

  • Check whether the test remains representative.

Closure

  • Issue the test report.

  • Include test configuration, conditions, data and analysis.

  • Close or formally disposition nonconformances.

  • Update the verification evidence.

  • Record limitations and outstanding actions.

The handbook states that test reports should recall the test items and conditions, provide test data and analysis, and describe related nonconformance reports and their disposition.

Key Activities

Capacity and Energy Measurement

Measure usable charge and energy under defined temperature, charge, discharge and voltage conditions. Repeat measurements where required to identify degradation following testing.

Internal Resistance and Impedance

Characterise resistance and impedance under defined state-of-charge and temperature conditions. Use consistent methods when comparing results across test stages.

Mechanical Testing

Apply appropriate sine, random vibration and shock environments. Use representative mechanical interfaces and monitor for changes before and after significant exposures.

Thermal Vacuum Testing

Apply mission-relevant vacuum and temperature conditions while controlling electrical operation, dwell periods, transition rates and cycle count.

Life Testing

Evaluate degradation caused by storage, calendar ageing and charge-discharge cycling. Where accelerated testing is used, establish whether the acceleration mechanism remains representative.

Safety and Abuse Testing

Characterise response to overcharge, overdischarge, short circuit, pressure and protective-device activation using a specific hazard-controlled procedure.

Data Analysis

Assess more than pass or fail. Review:

  • Capacity loss.

  • Energy loss.

  • Resistance increase.

  • Temperature behaviour.

  • Voltage divergence.

  • Cell imbalance.

  • Evidence of leakage.

  • Structural changes.

  • Protective-device behaviour.

  • Anomalies and trend changes.

Common Risks and Challenges

Technical Risk

The test article may not represent the flight configuration. A cell tested alone may respond differently when constrained, thermally coupled and electrically integrated within a module or battery.

Schedule Risk

Life tests can be lengthy. Accelerating them without a valid degradation model may produce fast data but poor evidence.

Cost Risk

Poor initial planning can result in repeated set-ups, additional hardware, inconclusive tests and unnecessary consumption of limited battery articles.

Verification Risk

A technically successful test can still fail to close verification if the requirement, test configuration, pass criterion or evidence trail is unclear.

Documentation Risk

Missing raw data, sensor locations, calibration details, state-of-charge history or anomaly dispositions can reduce the value of otherwise valid testing.

Safety Risk

Battery abuse testing can create fire, venting, explosion, toxic-release and stored-energy hazards. Safety testing requires a specific facility assessment and controlled procedure. The handbook’s description is not a replacement for a test-facility risk assessment.


Common Mistakes When Interpreting the Handbook

Mistake 1: Treating the Handbook as a Mandatory Standard

Why it is wrong: A handbook provides guidance and recommendations. Mandatory obligations arise from applicable standards, contracts and project requirements.

Correct approach: Use it to inform the test strategy and documentation, then map each planned activity to a controlled requirement.

Mistake 2: Copying Example Conditions as Universal Requirements

Examples such as temperatures, durations, cycle profiles or electrical conditions should not be copied without establishing mission relevance.

Correct approach: Derive conditions from the mission, hardware limitations, supplier data and approved requirements.

Mistake 3: Confusing Characterisation with Qualification

Characterisation explains behaviour. Qualification demonstrates compliance of a representative design against approved qualification requirements.

Correct approach: State the verification purpose of every test before defining the method.

Mistake 4: Assuming Cell Evidence Automatically Qualifies a Battery

Integration introduces mechanical restraint, thermal gradients, electrical interconnection, protective devices and cell-to-cell interaction.

Correct approach: Define which requirements can be verified at cell, module and battery level.

Mistake 5: Treating a Test Applicability Matrix as a Fixed Checklist

The handbook includes an applicability matrix covering lot acceptance, acceptance and qualification activities. It should be used as guidance, not as an unexamined universal compliance checklist. 

Mistake 6: Ignoring Test History

Battery behaviour depends on activation, storage, state of charge, previous cycling and environmental exposure.

Correct approach: Maintain a controlled history for each test article.

Mistake 7: Using Accelerated Life Testing Without Validating the Model

Higher temperature or current can change the degradation mechanism rather than merely speed it up.

Correct approach: Demonstrate the technical basis for acceleration and its relationship to mission conditions.

Mistake 8: Declaring “ECSS Compliant” From a Successful Facility Test

A facility generates evidence. It does not automatically control the spacecraft’s full requirements baseline or approve flight readiness.

Correct approach: Say that testing was performed against an approved, ECSS-aligned customer specification, where that is factually correct.

Mistake 9: Assuming UN 38.3 Covers Space Qualification

UN 38.3 addresses transport-related testing. It does not demonstrate suitability for launch vibration, mission thermal vacuum, radiation exposure, mission cycling or spacecraft integration.

Mistake 10: Overlooking the BMS Exclusion

The handbook explicitly excludes battery-management-subsystem testing from its stated scope.

Best Practices

Maintain Configuration Control

Identify the test article, cell lot, module arrangement, firmware where relevant, interfaces, fixture and instrumentation configuration.

Ensure Requirement Traceability

Connect each test objective and pass criterion to an approved requirement.

Record Battery State

Document state of charge, temperature, voltage, storage history, previous cycling and relevant conditioning before testing.

Use Mission-Representative Conditions

Avoid generic profiles where orbit, mission duration, load demand or thermal control materially affect the result.

Protect Raw Data

Retain raw time-history data alongside processed plots and conclusions.

Define Anomaly Rules in Advance

Establish how interruptions, limit exceedances, sensor failures and unexpected responses will be managed.

Conduct Independent Reviews

Use test readiness and post-test reviews to challenge assumptions, configuration, safety controls and evidence quality.

Separate Evidence From Interpretation

The test report should distinguish measured results, calculated values, engineering interpretation and unverified assumptions.

Related Documentation

Verification Plan

Defines how requirements will be verified across analysis, inspection, review of design and test.

Battery Test Plan

Defines the test objectives, articles, configurations, sequence, conditions and resources.

Test Specification

Defines technical requirements, test levels, tolerances and success criteria.

Test Procedure

Defines the controlled execution steps, measurements, hold points and responses to anomalies.

Test Report

Records the configuration, execution, results, analysis, deviations and conclusions.

Verification Control Document

Tracks requirements, methods, evidence and closure status.

Nonconformance Reports

Record anomalies, technical assessment, disposition and closure.

Battery User Manual

Records appropriate storage, maintenance, handling and operational conditions. The handbook places storage and handling information within the user manual.

How Success Is Measured

Requirement Compliance

The agreed requirement has objective, traceable evidence.

Verification Closure

Evidence is reviewed, accepted and recorded against the correct requirement.

Hardware Integrity

The test article remains within defined structural, electrical, thermal and safety limits unless the test intentionally investigates failure behaviour.

Performance Retention

Capacity, energy, resistance and other controlled parameters remain within approved limits.

Traceability

The relationship between requirement, test article, configuration, procedure, raw data, analysis and conclusion is clear.

Flight Readiness

The battery evidence contributes to an overall flight-readiness decision. The handbook alone does not make that decision.

How Resonate Testing Supports Lithium-Ion Battery Test Programmes

Planning Support

Support the translation of customer and mission requirements into an executable environmental test campaign.

Technical Guidance

Review test objectives, configurations, instrumentation, sequencing and evidence expectations within the agreed scope.

Test Campaign Development

Develop coordinated mechanical and environmental testing, including relevant vibration, shock and thermal-vacuum activities where the facility capability and safety assessment permit.

Documentation Support

Support the preparation or review of:

  • Test specifications.

  • Test procedures.

  • Test set-up records.

  • Test reports.

  • Data packages.

  • Nonconformance evidence. 

 

 

 

Independent Review Support

Provide an independent challenge of test readiness, configuration, traceability and evidence quality.

Qualification and Flight-Readiness Assistance

Generate controlled test evidence for customer review as part of the wider qualification or flight-readiness process.

Commercial claims boundary

Resonate should not state that it:

  • Certifies a battery as ECSS compliant.

  • Grants flight approval.

  • Replaces the design authority.

  • Determines the full project standard baseline.

  • Provides every test listed in the handbook.

 

The stronger and more credible position is:

Resonate Testing helps customers convert mission and verification requirements into controlled, traceable test evidence.

Your Test Facilitator. Not simply a test facility.


Frequently Asked Questions

Is ECSS-E-HB-20-02A a mandatory standard?

No. It is an ECSS handbook providing supporting guidance. Mandatory obligations depend on the project’s applicable standards, contract and customer requirements.

Does the handbook define universal battery qualification levels?

No. Environmental and operational conditions must be linked to the mission profile and approved project requirements.

What test areas does it cover?

It covers electrical characterisation, environmental testing, life testing, safety testing, handling, transport considerations, AIT and associated test documentation.

Does it cover battery-management-system testing?

No. The document explicitly states that battery management subsystem testing is not included in this issue.

What is the difference between qualification and acceptance testing?

Qualification establishes that a representative design can satisfy defined requirements with the prescribed margin. Acceptance testing provides evidence concerning the condition and workmanship of deliverable hardware against acceptance requirements.

The exact project definitions and levels must be obtained from the applicable standards and customer specification.

Can cell-level testing be used as battery-level evidence?

Sometimes, but only where the requirement, test objective and representativeness justify it. Cell evidence should not automatically be treated as proof of integrated battery behaviour.

Does UN 38.3 testing qualify a battery for spaceflight?

No. Transport testing and space qualification have different purposes. The handbook references UN transport requirements but also addresses mission-related environmental, electrical, life and safety concerns.

Why is state of charge important during testing?

Mechanical response, electrical performance, heating and safety behaviour can depend upon state of charge. The state of charge should therefore be specified, controlled and recorded.

Can battery life tests be accelerated?

Yes, the handbook discusses acceleration using factors such as altered timing, higher charge or discharge rates and increased temperature. However, the effect of acceleration on ageing must be assessed to avoid unrealistic over-testing.

What evidence should a test report contain?

The report should identify the test item and conditions, provide test data and analysis, and record related nonconformances and their disposition.


Related Articles

Verification Philosophy

  • Qualification Testing Under ECSS

  • Acceptance Testing Under ECSS

  • Protoflight Testing

  • Space Hardware Model Philosophy

  • EQM, PFM and FM Explained

Environmental Testing

  • Vibration Testing for Space Hardware

  • Shock Testing for Space Hardware

  • Thermal Vacuum Testing

  • Space Battery Environmental Testing

  • Test Fixture Design and Test-Item Representativeness

Battery Testing

  • Lithium-Ion Battery Capacity and Energy Testing

  • Space Battery Life Testing

  • Battery Safety and Abuse Testing

  • Battery Thermal Vacuum Testing

  • Battery Vibration and Shock Testing

  • UN 38.3 Versus Space Qualification Testing

Programme and Verification

  • ECSS Verification Planning

  • Verification Control Documents

  • Requirements Traceability

  • Environmental Test Planning

  • Space Qualification Evidence

Reviews and Documentation

  • Test Readiness Reviews

  • Test Specifications

  • Test Procedures

  • Test Reports

  • Nonconformance Management

 

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