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Engineering Simulation for Regulatory Compliance: What Can Be Simulated Before Testing?

A product can look finished, work well on the bench and still fail when it reaches a compliance laboratory.

That is not unusual.

The failure might come from heat building up around one component, a cable behaving like an antenna, a seal losing contact pressure, a bracket resonating at a particular frequency, or a battery transferring too much heat to an adjacent cell.

The problem is not necessarily that the product was poorly designed. Often, the issue is that some behaviours are difficult to see during normal development.

This is where simulation is useful.

Simulation gives engineers a way to investigate those behaviours before committing to formal testing. It can show where water is likely to enter an enclosure, where a PCB is generating electromagnetic energy, how a structure responds to vibration, or how heat moves through a battery pack.

There is an important qualification, though.

Twelvium Engineering Simulation for regulatory compliance

Simulation does not automatically replace a regulatory or compliance test.

For many standards, the physical test is still the required way of demonstrating compliance. Simulation is valuable because it can help identify problems earlier, improve the design before testing, and provide technical evidence around the design. In some areas, a properly developed and validated computational model can also form part of the formal regulatory evidence.

The FDA’s guidance on computational modelling for medical devices is a good example. It does not simply ask whether a model exists. It considers whether the model is credible for the decision it is being used to support.

So the more useful question is not:

“Can simulation replace the test?”

It is:

“What can we simulate to improve our confidence before the product reaches testing?”

Where simulation fits

Not every simulation has the same status from a regulatory point of view.

A useful way to think about it is:

Type of useWhat it means
Potential formal evidenceThe applicable regulatory pathway can recognise computational analysis as part of the technical evidence, provided the model is sufficiently credible and the required verification and validation are addressed.
Compliance supportPhysical testing is still expected, but simulation can be used to understand behaviour, establish margin and reduce the likelihood of failure.
Engineering risk reductionThe main purpose is to identify weaknesses and improve the design before qualification or certification.

1. Can we simulate an IP rating?

Yes — although it is more accurate to say that we can simulate the conditions that matter to an IP rating.

IEC 60529 defines the degrees of protection provided by enclosures, including protection against solids and water.

For an outdoor electronic enclosure, for example, engineers may want to know:

  • Where can water enter?
  • Does the enclosure create a path towards the PCB?
  • Is the gasket compressed sufficiently?
  • What happens around connectors, vents and switches?
  • Could enclosure deformation affect the seal?
  • Where could dust accumulate?

A combination of CFD and FEA can investigate many of these questions before the physical test.

SimulationWhat can be investigatedRelevant areaTypical role
Water-ingress CFDWater paths around openings and jointsIEC 60529Compliance support
Water-jet CFDFlow and impact around enclosure featuresIEC 60529Compliance support
Rain/spray CFDWater exposure and trajectoryEnvironmental testingCompliance support
Dust-particle CFDParticle movement and ingress pathsIEC 60529Compliance support
Particle depositionAreas where contamination may accumulateIEC 60529Engineering support
Gasket compression FEAContact pressure and deformationEnclosure sealingCompliance support
Seal leakage modellingPotential leakage pathsEnclosure sealingCompliance support
Enclosure deformation FEAEffect of deformation on sealingIEC 60529Compliance support
Pressure-difference analysisInternal/external pressure effectsEnvironmental protectionEngineering support
Vent-membrane airflowAir exchange versus ingress protectionEnclosure designEngineering support
Condensation modellingMoisture accumulation inside enclosureIEC 60068Compliance support

The simulation does not, by itself, give the enclosure an IP rating.

What it can do is tell the engineering team where the design deserves attention before the test laboratory does.

That can be a very worthwhile distinction.

2. Thermal simulation: what happens when the product gets hot?

Temperature is one of the most common things engineers have to manage in compact electronic products.

A device can have an acceptable average temperature and still contain one component that is operating far too hot.

Thermal simulation can show this before the prototype goes through qualification.

SimulationWhat can be investigatedRelevant areaTypical role
Steady-state thermal CFDComponent and enclosure temperaturesIEC 60601-1, IEC 62368-1, IEC 61010-1Compliance support
Transient thermal simulationTemperature over timeProduct safetyCompliance support
PCB thermal analysisComponent and board temperaturesElectronics safetyCompliance support
Enclosure thermal CFDInternal and accessible surface temperaturesIEC 62368-1Compliance support
Touch-temperature analysisAccessible surface temperaturesProduct safetyCompliance support
Natural-convection CFDCooling without forced airflowProduct safetyCompliance support
Forced-air CFDFan and airflow performanceProduct safetyCompliance support
Heat-sink analysisHeat transfer performanceThermal designEngineering support
Thermal-interface analysisContact and interface resistanceThermal designEngineering support
Thermal cycling simulationTemperature distribution and cyclingIEC 60068Compliance support
Thermomechanical FEAStress caused by thermal expansionEnvironmental qualificationCompliance support
Thermal-fatigue analysisRepeated thermal loadingReliabilityCompliance support

This is particularly useful when a design is crowded.

Moving a component by a few millimetres, changing the enclosure material or improving a thermal interface can sometimes have a much larger effect than expected.

Simulation makes those alternatives much easier to compare.

A simple example

Suppose an electronics enclosure contains a processor, power supply and several communication interfaces.

The first thermal simulation shows that the processor is fine, but one power device is creating a local hotspot next to a plastic wall.

There are several possible solutions:

  • move the component,
  • improve heat spreading,
  • change the thermal interface,
  • modify the airflow path,
  • add a heat sink, or
  • reduce the local heat load.

The important part is that the problem has been found before a compliance test.

3. EMC and EMI: finding the reason behind a failure

EMC is a particularly good example of where simulation can add value because laboratory results do not always explain the underlying mechanism.

A test may show that emissions are too high at one frequency.

The engineer then needs to work out why.

Simulation can help investigate:

  • PCB radiation,
  • cable coupling,
  • return-current paths,
  • enclosure apertures,
  • connector coupling,
  • common-mode currents,
  • shielding performance and
  • filter behaviour.
SimulationWhat it investigatesRelevant areaTypical role
3D electromagnetic simulationRadiated fieldsCISPR / EMCPre-compliance
PCB EMI simulationRadiation from PCB structuresCISPR / EMCPre-compliance
Near-field simulationHigh-emission areasEMC developmentEngineering support
Cable radiation modellingCommon-mode radiationAutomotive / CISPR EMCPre-compliance
Cable coupling simulationNoise entering or leaving through harnessesIEC 61000Pre-compliance
Enclosure radiation simulationLeakage through housingEMCPre-compliance
Aperture/slot simulationRadiation through openingsEMCPre-compliance
Shielding-effectiveness analysisEnclosure shieldingEMCPre-compliance
Filter simulationEMI filter performanceEMCEngineering support
Common-mode current simulationHigh-frequency current pathsEMCEngineering support
Differential-mode analysisHigh-frequency noiseEMCEngineering support
Ground/return-path simulationUnwanted current pathsEMCEngineering support
Connector EM simulationHigh-frequency couplingEMCEngineering support
Radiated RF immunity modellingRF coupling into the deviceIEC 61000-4-3Compliance support
Conducted RF couplingRF entering through cablesIEC 61000-4-6Compliance support
ESD current-path modellingDischarge-current pathsIEC 61000-4-2Compliance support
EFT coupling simulationFast transient couplingIEC 61000-4-4Compliance support
Surge propagation analysisVoltage/current distributionIEC 61000-4-5Compliance support

This is why EMC simulation can be particularly useful during development.

A test result may tell you:

“There is excessive radiation at 480 MHz.”

A useful simulation may help answer:

“The high-frequency return current is coupling into the cable shield and the cable is radiating.”

That second answer gives the designer something to change.

4. Electrical safety and fault conditions

Normal operation is only part of the story.

Products may also need to behave safely when the input voltage is abnormal, a component fails, a short circuit occurs or a protection mechanism operates.

Electrical simulation can be used to explore those situations.

SimulationWhat it investigatesRelevant areaTypical role
Short-circuit simulationFault current and energyProduct safetyCompliance support
Overvoltage simulationComponent and insulation stressProduct safetyCompliance support
Inrush-current simulationStartup electrical stressElectrical safetyEngineering support
Brownout simulationSystem behaviour during undervoltageElectrical qualificationEngineering support
Leakage-current simulationCurrent under normal/fault conditionsIEC 60601-1Compliance support
Touch-current simulationAccessible currentIEC safetyCompliance support
Earth-fault simulationFault-current pathsElectrical safetyCompliance support
Electric-field simulationDielectric stressInsulation coordinationCompliance support
Insulation analysisVoltage stress through insulationProduct safetyCompliance support
Protection-device simulationFuse/protection responseProduct safetyCompliance support
Power-transient simulationResponse to electrical disturbancesIEC / automotiveEngineering support

This type of analysis is often most useful when it is tied directly to a known risk.

Instead of modelling a fault just because it is possible, the engineer can ask:

What happens if this component fails in the worst credible way?

That tends to produce much more useful work.

5. Structural FEA, shock and vibration

Mechanical failures are often caused by dynamic behaviour rather than simple static loading.

A product may survive a static load comfortably but develop high stresses when its natural frequency is excited.

This is why modal and vibration analysis are so useful.

SimulationWhat it evaluatesRelevant areaTypical role
Static structural FEAStress and deformationProduct qualificationCompliance support
Modal analysisNatural frequenciesIEC 60068 / IEC 61373 / ISO 16750Compliance support
Harmonic responseResponse at specific frequenciesVibration qualificationCompliance support
Random vibration analysisResponse to vibration PSDIEC 60068 / IEC 61373Compliance support
Shock simulationTransient structural responseIEC 60068Compliance support
Drop simulationImpact loadingProduct/environmental qualificationCompliance support
Fatigue analysisLife under cyclic loadingEnvironmental qualificationCompliance support
PCB structural FEABoard deformationElectronics qualificationCompliance support
Bracket analysisMounting strengthEnvironmental qualificationCompliance support
Fastener analysisJoint loadingMechanical designEngineering support
Connector analysisRetention and deformationProduct qualificationEngineering support
Buckling analysisStructural instabilityMechanical qualificationCompliance support
Thermomechanical FEACombined temperature/mechanical stressEnvironmental qualificationCompliance support

A good example is railway equipment.

IEC 61373:2026 includes finite element analysis for structural parts in its revised treatment of shock and vibration.

That is a useful illustration of the direction engineering qualification is taking: simulation and physical testing can work together rather than being treated as completely separate activities.

6. Thermal cycling and environmental conditions

Temperature changes can create mechanical problems that are not obvious when the product is considered at one temperature.

Different materials expand at different rates. Repeated cycling can therefore put stress into:

  • solder joints,
  • PCBs,
  • connectors,
  • seals,
  • housings,
  • adhesives and
  • mechanical interfaces.

A coupled thermal-structural model can be used to investigate these effects.

SimulationWhat it showsTypical purpose
Thermal cyclingTemperature distribution over timeEnvironmental qualification
Thermal expansionDimensional changesDesign verification
Thermomechanical stressStress from different material expansionReliability
Solder-joint fatigue modellingRepeated thermal stressElectronics reliability
Seal deformationTemperature-dependent sealingEnvironmental protection
Housing expansionInterface movementMechanical design
Material-property sensitivityEffect of temperature-dependent propertiesEngineering confidence

The value here is less about predicting a single pass/fail number and more about finding the parts of the design that need attention.

7. Batteries: when thermal, electrical and mechanical behaviour meet

Battery systems are a particularly good example of multiphysics engineering.

Electrical current creates heat. Temperature affects behaviour. Cells can expand. Abnormal events can generate gases and pressure. In some failure conditions, heat can propagate from one cell to another.

That combination is difficult to understand from one discipline alone.

SimulationWhat it investigatesRelevant areaTypical role
Cell thermal simulationCell temperatureIEC 62133 / IEC 62619Compliance support
Pack thermal simulationTemperature distributionBattery safetyCompliance support
Electrothermal modellingElectrical and thermal interactionBattery safetyCompliance support
Cell-to-cell propagationThermal propagationBattery safetyCompliance support
Thermal-runaway modellingAbnormal thermal behaviourBattery qualificationCompliance support
Cooling CFDCooling performanceBattery systemsEngineering support
Enclosure CFDAirflow and heat transferBattery safetyEngineering support
Vent-gas CFDGas discharge pathsBattery safetyCompliance support
Pressure-relief simulationVenting behaviourBattery safetyEngineering support
Busbar thermal analysisJoule heatingBattery systemsEngineering support
Short-circuit simulationFault current and heat generationBattery safetyCompliance support
Battery mechanical FEACrush and deformationBattery qualificationCompliance support
Vibration analysisStructural durabilityIEC 62133 / ISO 16750Compliance support
Fire/heat propagation CFDHeat and flame spreadBattery safetyEngineering support
Cooling-failure simulationWorst-case thermal conditionSafety assessmentCompliance support

A model can, for example, help answer whether heat from a failed cell is likely to reach neighbouring cells quickly enough to become a larger problem.

Physical testing remains important, but simulation gives the engineering team somewhere to start.

8. RF exposure, antennas and human interaction

RF simulation has a different relationship with regulation from ordinary EMC work.

Engineers may need to understand how an antenna behaves near a person’s body, how an enclosure changes antenna performance or how much RF energy is absorbed by tissue.

SimulationWhat it investigatesRelevant areaTypical role
Antenna radiation patternGain and directivityFCC / RED / ETSICompliance support
Antenna efficiencyRF performanceRF regulationsEngineering support
Antenna detuningBody/enclosure effectsRF regulationsCompliance support
Near-field simulationLocal RF fieldsRF exposureCompliance support
SAR simulationRF energy absorbed by tissueFCC / applicable exposure frameworksPotential formal evidence
Whole-body exposure modellingAbsorbed RF energyRF exposureCompliance support
Maximum permissible exposure modellingExposure levelsFCC / RF frameworksCompliance support
Human-body couplingWearable interactionRF exposureCompliance support
Implant interaction modellingDevice/tissue interactionMedical/RFEngineering/regulatory support
Wireless coexistence simulationRadio-to-radio interferenceRED / ETSIPre-compliance

This is an area where computational modelling can, under the right pathway, become more than a design tool.

The exact requirements depend on the device, frequency range, jurisdiction and assessment method.

9. Medical devices: one of the clearest regulatory examples

Medical-device development is probably the strongest example of a regulatory environment where computational modelling can become formal evidence.

The FDA’s guidance on computational modelling and simulation focuses on the credibility of the model for its intended context of use. That includes understanding how the model was verified and validated and how much the regulatory decision depends on its results.

Possible applications include:

SimulationExample applicationPotential role
Structural FEAImplant strengthRegulatory evidence / support
Fatigue FEAImplant lifetimeRegulatory evidence / support
Contact mechanicsTissue/device interactionRegulatory evidence / support
CFDBlood flowRegulatory evidence / support
CFDCatheter or valve flowRegulatory evidence / support
Fluid-structure interactionValve/tissue interactionRegulatory evidence / support
Thermal modellingDevice-generated heatingRegulatory evidence / support
Bioheat modellingTissue temperatureRegulatory evidence / support
Electromagnetic modellingRF/device interactionRegulatory evidence / support
Particle-flow modellingAerosol deliveryRegulatory evidence / support
Patient-specific modellingIndividual patient predictionRegulatory evidence / support

This is a good example of why “simulation” and “regulatory evidence” should not be treated as completely unrelated subjects.

There are situations where the computational model itself becomes part of the technical argument.

But that comes with a much higher expectation of model credibility.

10. Pressure equipment and design by analysis

Pressure equipment is another area worth highlighting because the relationship between simulation and regulation can be more direct.

The UK Pressure Equipment (Safety) Regulations 2016 recognise design by formula, design by analysis and design by fracture mechanics as possible approaches to establishing adequate strength, depending on the circumstances.

That means structural analysis can potentially be part of the recognised design methodology rather than simply a preliminary engineering exercise.

Typical analyses include:

SimulationWhat it evaluatesPotential role
Pressure-vessel FEAStress under internal pressureFormal design analysis
Pressure-boundary analysisStructural integrityFormal design analysis
Thermal-pressure FEACombined loadingFormal design analysis
Nozzle analysisLocal stressDesign substantiation
Fatigue analysisCyclic pressureDesign substantiation
Buckling analysisExternal pressure/vacuumDesign substantiation
Fracture mechanicsCrack toleranceDesign substantiation
Pipe stress analysisPressure and thermal loadsDesign substantiation
CFD pressure-drop modellingFlow behaviourEngineering support
Relief-flow simulationFlow capacityEngineering support

This is one of the strongest examples of why the phrase “simulation for compliance” needs some context.

Sometimes simulation supports the compliance test.

Sometimes it supports the risk analysis.

And in some engineering frameworks, analysis can form part of the design substantiation itself.

11. Automotive electronics

Automotive electronics are exposed to a combination of vibration, temperature, electrical disturbances and EMC.

ISO 16750 addresses environmental conditions and testing for electrical and electronic equipment used in road vehicles. Automotive EMC requirements can also involve UN Regulation No. 10 and related standards.

That creates a wide range of useful simulation opportunities.

SimulationApplicationRelevant area
ECU thermal CFDElectronics coolingISO 16750
Vibration FEAMechanical responseISO 16750
Shock FEAShock responseISO 16750
Thermal cyclingThermomechanical stressISO 16750
Electrical transient simulationSupply disturbancesISO 16750
PCB vibration analysisBoard durabilityISO 16750
Cable EMC modellingHarness couplingAutomotive EMC / UN R10
ECU EMC simulationRadiated/conducted behaviourAutomotive EMC
Battery thermal simulationEV battery systemsBattery qualification
Battery mechanical FEAStructural integrityEV battery safety
Sensor EM simulationSensor behaviour/interferenceAutomotive EMC/RF

This is a good example of why multiphysics simulation matters. The electronic module is not experiencing one environmental stress at a time.

12. Rail equipment

Railway equipment is another area where vibration and structural simulation can be highly relevant.

SimulationWhat it investigatesTypical standard/application
Modal analysisNatural frequenciesIEC 61373
Random vibration analysisStructural responseIEC 61373
Shock simulationMechanical loadsIEC 61373
Mounting analysisMounting integrityIEC 61373
Fatigue analysisLong-term vibrationRailway qualification
PCB structural analysisElectronics durabilityRailway electronics
Cable/harness vibrationConnection durabilityRailway qualification
Thermal analysisEquipment temperatureRailway environmental qualification
EMC simulationElectromagnetic behaviourRailway EMC

The 2026 edition of IEC 61373 is particularly noteworthy because it includes FEA provisions for structural parts.

13. Aerospace and aviation

Aerospace equipment is exposed to some of the most demanding combinations of environmental conditions.

Simulation can be used to investigate:

SimulationApplicationRelevant area
Thermal analysisEquipment temperatureDO-160 / aviation qualification
Thermal-cycle simulationEnvironmental stressDO-160
Altitude/pressure simulationAtmospheric conditionsDO-160
Vibration FEAStructural responseDO-160
Shock simulationMechanical integrityDO-160
Water-ingress CFDEnvironmental exposureDO-160
Humidity modellingMoisture exposureDO-160
EMC simulationEquipment compatibilityDO-160
Lightning couplingElectromagnetic transientsAerospace
HIRF simulationRF susceptibilityAerospace
Structural FEAEquipment strengthCertification substantiation
Fatigue modellingLife assessmentAerospace
Thermal-stress analysisCombined thermal/mechanical loadsAerospace
Cooling-flow CFDEquipment coolingAerospace

The exact role of analysis depends on the certification basis and approval pathway, so this is another area where the model should be considered part of a larger substantiation strategy rather than treated as a standalone certificate.

14. Machinery, robotics and functional safety

Simulation is also useful when the main concern is not structural or thermal performance but what happens when a machine or control system encounters a hazardous condition.

Simulation/modelWhat it investigatesRelevant area
Collision simulationCollision hazardsMachinery safety
Robot workspace simulationHazard zonesISO 10218
Guard reach simulationAccessibilityMachinery safety
Mechanical FEAStructural integrityMachinery safety
Dynamic mechanism simulationMotion hazardsMachinery safety
Brake-response simulationStopping behaviourMachinery safety
Safety-distance analysisGuarding distancesMachinery safety
Fault-tree analysisHazard pathwaysFunctional safety
FMEA/FMEDA modellingFailure behaviourFunctional safety
Fault-injection simulationSafety mechanismsISO 26262 / IEC 61508
Sensor-failure scenariosSafe responseFunctional safety
Communication-fault scenariosSafe-state behaviourFunctional safety

These models are usually not a substitute for the full machinery or functional-safety assessment. Their value is in showing how the system behaves when a fault or hazardous scenario occurs.

15. Fire, smoke and hazardous releases

Some products and systems need to be understood under very abnormal conditions.

Examples include batteries, process equipment and enclosures where a fire or hazardous release could have consequences outside the product itself.

SimulationApplicationTypical role
Fire propagation CFDFire spreadRisk assessment
Smoke-flow CFDSmoke movementSafety analysis
Heat-release modellingThermal loadingFire analysis
Thermal decomposition modellingMaterial behaviourFire analysis
Flame propagation modellingMaterial/fire behaviourSafety assessment
Ventilation CFDRemoval of smoke or gasSafety engineering
Gas-dispersion CFDHazardous releaseProcess safety
Fire-barrier thermal FEABarrier performanceEngineering support
Battery fire modellingHeat and flame propagationBattery safety

These are generally better presented as supporting analyses unless the applicable regulatory framework specifically recognises the computational approach.

16. Fluid and process systems

CFD also has a role in regulated and safety-critical industrial systems.

SimulationWhat it investigatesApplication
Pressure-drop CFDSystem resistanceIndustrial/process systems
Flow-distribution CFDFlow uniformityProcess equipment
Valve CFDFlow behaviourFluid systems
Pump CFDHydraulic performanceIndustrial equipment
Cavitation simulationCavitation riskPumps/valves
Erosion modellingMaterial lossProcess equipment
Leakage simulationFluid containmentSafety
Two-phase CFDGas/liquid behaviourProcess systems
Gas-dispersion CFDHazardous releaseProcess safety
Ventilation CFDAir movementIndustrial safety
Heat-exchanger CFDThermal performanceIndustrial equipment
Combustion CFDThermal/combustion behaviourEnergy/process systems
Exhaust dispersionEmission dispersionEnvironmental engineering

These applications become particularly useful when the design contains interacting fluid, thermal and structural effects.

17. A useful way to look at common EMC tests

Rather than starting with the simulation software, it can be useful to start with the physical test and work backwards.

Physical testWhat can be investigated with simulation beforehand?
IEC 61000-4-2: ESDESD current paths and field coupling
IEC 61000-4-3: Radiated RFRF field coupling into the product
IEC 61000-4-4: EFTTransient coupling
IEC 61000-4-5: SurgeSurge propagation
IEC 61000-4-6: Conducted RFCable/common-mode coupling
IEC 61000-4-8: Power-frequency magnetic fieldMagnetic-field coupling
IEC 61000-4-9: Pulsed magnetic fieldTransient magnetic response
IEC 61000-4-11: Voltage dipsPower-system response
IEC 61000-4-13: Harmonics/interharmonicsPower-quality behaviour
IEC 61000-4-16: Conducted disturbancesCircuit/network response

The simulation does not necessarily answer the final compliance question.

It can, however, answer a much more practical question:

What part of the design is likely to be responsible for the failure?

18. The most useful simulations may be the ones that look at failure

There is a difference between asking whether a product works and asking how it might fail.

That second question is where simulation can become particularly powerful.

Failure scenarioPossible simulation
Cooling fan stopsThermal CFD
Vent becomes blockedCFD + thermal analysis
Water reaches the enclosureMultiphase CFD
Seal loses compressionContact FEA
PCB develops a hotspotThermal FEA
Battery cell overheatsElectrothermal modelling
Thermal runaway propagatesThermal CFD
Enclosure is droppedExplicit FEA
Product reaches resonanceModal/vibration analysis
Cable becomes an antenna3D EM simulation
ESD enters through an apertureEM/transient simulation
Power supply experiences a surgeCircuit/transient simulation
Pressure rises unexpectedlyPressure FEA
Component fails short-circuitElectrical/thermal simulation
Sensor failsFunctional/system simulation
Communication link failsSystem/fault simulation

This is where simulation fits particularly well with engineering risk assessment.

Instead of waiting for the physical prototype to demonstrate a failure mode, the team can deliberately investigate it earlier.

So, can simulation actually satisfy a regulation?

Sometimes analysis can form part of the formal evidence. Sometimes it cannot.

There is no single answer that applies across every industry.

ApplicationCan simulation replace the prescribed physical test?Typical role
IP ratingGenerally noPredict ingress paths and improve the enclosure
Thermal safetyGenerally noPredict temperature and establish margin
EMCGenerally noIdentify coupling and radiation mechanisms
VibrationGenerally noIdentify resonance, stress and fatigue risk
Battery qualificationGenerally noInvestigate thermal, mechanical and electrical behaviour
RF exposureIn some pathways, computational evidence can contributeExposure and SAR assessment
Medical-device modellingPotentially, depending on application and regulatory pathwaySupporting or formal evidence
Pressure equipmentIn some frameworks, analysis can be part of design substantiationDesign by analysis
Functional safetySimulation is an important engineering methodFault and safety analysis
Machinery safetyUsually supporting evidenceHazard and risk reduction

That is why we should be careful with the phrase “simulation for compliance”.

The better description is often:

simulation that supports compliance, verification and regulatory confidence.

Simulation needs evidence behind it too

A simulation result is not automatically trustworthy because the mesh is fine or the contour plot looks convincing.

The model needs to be appropriate for the question being asked.

Depending on the application, that may involve:

  • checking numerical convergence,
  • verifying the implementation,
  • using appropriate material properties,
  • validating assumptions,
  • comparing results with physical measurements,
  • assessing sensitivity to uncertain inputs,
  • documenting assumptions and limitations, and
  • establishing the credibility needed for the decision.

This becomes particularly important when the simulation is intended to support a regulatory submission.

The FDA’s approach to medical-device CM&S is a useful example because it explicitly considers the context of use and the level of credibility needed for the decision.

In other words, the question is not simply:

“Did we run a simulation?”

It is:

“Is this model credible enough for the decision we are making with it?”

A better product-development workflow

A practical way to use simulation is to bring it into the development process well before formal testing.

A typical workflow might look like this:

Requirement → Risk → Simulation → Design change → Physical verification → Regulatory evidence

For an IP-rated enclosure:

IP requirement

Identify potential ingress paths

CFD and sealing analysis

Modify enclosure/gasket

Physical IP test

Compliance documentation

For EMC:

EMC requirement

Identify likely coupling paths

EM simulation

Improve PCB, grounding, filtering or shielding

EMC test

Compliance documentation

For thermal safety:

Temperature requirement

Identify worst-case operating condition

Thermal CFD/FEA

Improve cooling or component arrangement

Physical verification

Compliance evidence

And for a medical device where computational modelling is part of the regulatory strategy:

Regulatory question

Define the context of use

Develop the computational model

Verify and validate

Assess model credibility

Use the results within the regulatory submission where appropriate

The common idea is simple:

Don’t wait until the compliance test to learn something important about the product.

What this means for engineering teams

Simulation is most useful when it is connected to a real engineering question.

Not:

“Let’s run CFD.”

But:

“We need to understand whether water can reach this connector during the IP test.”

Not:

“Let’s run FEA.”

But:

“We need to know whether this bracket will resonate during the vibration qualification.”

Not:

“Let’s run an EMC model.”

But:

“We are seeing an emission peak around this frequency and need to understand where the energy is coming from.”

That change in thinking tends to produce much more useful engineering work.

Where Twelvium can contribute

At Twelvium, we approach simulation as part of the engineering process rather than as a standalone exercise.

Depending on the product and the question, that can include:

Thermal and CFD analysis

Understanding heat generation, airflow, cooling, hotspots, environmental conditions and fluid behaviour.

Structural and mechanical simulation

Investigating stress, deformation, resonance, vibration, shock and fatigue.

EMC and EMI simulation

Looking at electromagnetic coupling, radiation, shielding, PCB behaviour and cable effects.

Multiphysics analysis

Bringing thermal, structural, fluid and electromagnetic behaviour together where the problem cannot realistically be understood from one discipline alone.

Failure and risk analysis

Using simulation to investigate credible abnormal conditions and potential failure mechanisms.

For regulated products, the analysis should be planned around the intended verification and regulatory pathway rather than added as an afterthought.

The main idea

Physical compliance testing still matters.

But it is expensive to use the laboratory as the place where the engineering team discovers how a product behaves.

Simulation gives the team another option.

You can investigate water ingress before an IP test.

You can find thermal hotspots before a temperature test.

You can identify resonance before a vibration campaign.

You can trace electromagnetic coupling before EMC testing.

You can investigate abnormal battery behaviour before qualification.

You can assess RF exposure computationally.

You can use FEA and CFD as part of medical-device regulatory evidence where the applicable pathway allows it.

And in some engineering frameworks, analysis can become part of the formal design substantiation itself.

The point is not to replace physical testing with a simulation.

The point is to arrive at physical testing with a better-engineered product and a better understanding of what the test is actually trying to prove.

That can mean fewer surprises, fewer redesigns and a much more controlled path from engineering design to compliance.

A note on standards and regulatory requirements

The examples in this article are intended to illustrate where simulation can contribute to engineering verification, validation and regulatory confidence. They are not a universal compliance matrix.

The exact requirements depend on the product, market, jurisdiction, applicable standard and certification pathway.

Where simulation is intended to become formal regulatory evidence, the model’s context of use, verification, validation, credibility and limitations need to be addressed appropriately.

The regulatory use of computational modelling in medical-device submissions is one example where this approach is explicitly recognised.

References

  • IEC 60529, Degrees of protection provided by enclosures (IP Code).
  • IEC 61373:2026, Railway applications — Rolling stock equipment — Shock and vibration tests.
  • U.S. Food and Drug Administration, Assessing the Credibility of Computational Modeling and Simulation in Medical Device Submissions.
  • ASME V&V 40, Assessing Credibility of Computational Modeling through Verification and Validation: Application to Medical Devices.
  • UK Pressure Equipment (Safety) Regulations 2016.

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