Power module sourcing guide

Infineon IGBT Module Buying Checklist

Choose the exact module from the converter mission profile—not from voltage and current printed in a distributor table.

Short answer: release an Infineon IGBT module only when electrical stress, loss and lifetime calculations, gate-drive behavior, mechanical integration, and supply-chain evidence all point to the same exact orderable part number.

Opened Infineon IGBT power module showing multiple semiconductor dies and internal interconnections
Opened Infineon EconoPACK+ module; a useful reminder that one module rating represents a multi-die thermal and electrical system. Photo: Leonrosenbaum, CC BY-SA 3.0.
The four approval gates

A catalog match is only the first filter

1

Electrical fit

Topology, measured turn-off peak, operating current, losses, diode behavior and fault energy all stay within the exact datasheet conditions.

2

Thermal & life

Losses are mapped through the real cooling stack and mission-profile cycles, not a single idealized junction-temperature calculation.

3

Physical fit

Housing, pins, busbar, driver, isolation, TIM, heat sink and assembly instructions match the production process.

4

Supply evidence

The complete OPN, status, packing, traceability, PCN path and supplier authorization are documented before the purchase order.

Release rule: if one gate is unsupported, the part is still a candidate—not an approved substitute. A module with comfortable headline ratings can still fail on switching overshoot, heat-sink interface, gate-drive limits or an incompatible terminal layout.
Step 1

Freeze the mission profile before searching part numbers

A useful buying specification describes what the converter does over time. Give engineering and sourcing the same input sheet: DC-link minimum, nominal and maximum voltage; phase current RMS, average and peak; overload magnitude and duration; switching frequency, modulation and dead time; coolant or ambient limits; altitude, humidity, vibration and contamination; start-stop cycles; expected service life; and fault-clearing strategy.

This prevents a common purchasing error: treating the datasheet’s maximum current as continuous usable current. The quoted current is tied to stated case or junction temperature and test assumptions. Your usable current is the outcome of conduction loss, switching loss, diode loss, cooling, overload repetition and lifetime target.

Evidence to attach: the worst-case switching waveform or a validated simulation model, the cooling boundary condition, and the expected load-cycle histogram. “600 V bus, 600 A motor” is not a complete module specification.
Mission-profile fieldRecord thisWhy purchasing needs it
VoltageVDC,min/nom/max, turn-off peak, overshoot and abnormal transientsDetermines blocking-voltage headroom from real stress—not a universal percentage.
CurrentRMS, average, peak, overload, duration and repetitionSeparates nominal operating need from short-time capability.
Switchingfsw, modulation, dead time, power factor, RG, VGE and stray inductanceMakes Eon/Eoff comparisons meaningful.
CoolingCoolant inlet, flow, heat-sink Rth, flatness, roughness and TIMDefines the real junction-to-coolant path and assembly controls.
EnvironmentAltitude, humidity, pollution degree, vibration and qualification classChanges insulation, derating and qualification requirements.
Life & faultsΔTj cycles, dwell times, service hours, short-circuit and protection timingConnects the part to lifetime and protection evidence.
Master checklist

What must be true before an Infineon IGBT module is approved?

GateQuestions to answerMinimum evidenceStop condition
ElectricalCorrect topology? Safe VCE peak? Acceptable conduction, switching and diode losses? Fault behavior compatible?Exact datasheet revision, normalized comparison, simulation and double-pulse/system waveformUnmeasured overshoot or comparison at different test conditions
Thermal & lifetimeDoes every chip stay within Tvj limits through steady and transient duty? Does the cycle spectrum meet life?Loss model, Zth model, cooling data, mission profile and lifetime assumptionsOnly a nameplate current or steady-state Rth calculation
Driver & layoutAre VGE, RG, power, isolation, DESAT, soft turn-off and Miller control suitable?Driver schematic, gate-loop layout, fault timing and worst-case switching testGate driver selected only by output-current headline
Mechanical & insulationDo envelope, terminals, PCB/busbar, heat sink, torque, TIM, clearance and creepage match?Drawing, package-specific mounting instruction, assembly WI and insulation review“Same housing family” used as proof of drop-in fit
Quality & supplyIs the complete OPN current? Is the source authorized? Are packing, traceability, PCN and storage controlled?Manufacturer record, supplier authorization, CoC/labels, packing data and notification pathSuffix omitted, status assumed, or authenticity inferred from a label alone
Electrical selection

Voltage and current are calculations, not shopping filters

Choose voltage class from the turn-off waveform

Start with the maximum DC link, then add layout-driven overshoot and other credible transients. A first screening relationship is:

VCE,peak ≈ VDC,max + Lσ × di/dt + other transientsScreening only. Confirm with parasitic extraction or validated circuit simulation and worst-case measurement.

There is no universal “safe margin” that replaces the waveform. Gate resistance, busbar inductance, temperature, current and protection response can move the peak.

Size current from loss and temperature

Conduction loss follows the device’s nonlinear VCE(sat) curve and the actual current waveform. A quick switching-loss estimate is:

Psw ≈ fsw × (Eon + Eoff)Use only after scaling or simulating for the same IC, VCC, Tvj, VGE, RG and stray inductance.

Include diode VF and recovery energy, dead-time conduction, overloads and parallel-current imbalance where relevant. Infineon’s IPOSIM can support product comparison, loss and thermal studies for supported parts; its result is still only as credible as the inputs.

Close-up of IGBT and diode dies inside an Infineon power module
Two IGBT and two diode dies inside an Infineon EconoPACK+ module. Loss and temperature are distributed among physical dies and interfaces, so the module cannot be judged as one ideal switch. Photo: Leonrosenbaum, CC BY-SA 3.0.
Documented product cases

Two real modules show why the complete part matters

These are documented comparisons, not YURUNOX field-test claims. Product status is time-sensitive and was checked on Infineon’s pages on 28 August 2026.

Industrial drive / UPS class example

FF900R12ME7_B11

Infineon’s final datasheet identifies a 1200 V, 900 A EconoDUAL 3 half-bridge with TRENCHSTOP IGBT7, emitter-controlled 7 diode, NTC, isolated baseplate, PressFIT control contacts and screw power terminals.

Why it matters
The _B11 variant carries a physical-interface meaning. Dropping it from an RFQ can change how the control connection is assembled.
Use-condition clue
The datasheet lists industrial applications such as motor drives, servo drives, UPS and high-power converters. That is not evidence of automotive qualification.
Release evidence
Confirm exact OPN/packing, the package drawing, switching conditions, PQR where required, and the correct mounting instruction.

Official datasheet · Infineon product family page

Traction / high-power converter example

FF1800R17IP5

Infineon lists this as an active-and-preferred 1700 V, 1800 A half-bridge in PrimePACK 3+, using IGBT5-P5 and an integrated NTC. The orderable number shown is FF1800R17IP5BPSA1.

Why it matters
Its 1800 A headline does not make it a “larger replacement” for an EconoDUAL part. The housing is 89 × 250 mm, the assembly and busbar are different, and switching energy is specified at defined driver conditions.
Use-condition clue
Applications include traction, power transmission, wind, central inverters and motor control; the listed qualification is industrial.
Release evidence
Normalize losses to the application, validate the PrimePACK assembly, and preserve the BPSA1 orderable number in approved-vendor records.

Official product page · Official datasheet

The decision lesson: both are half-bridge modules, yet their voltage class, chip generation, current class, package, connection technology, loss conditions and target integration differ. Cross-reference them by system requirements—not by the first three numbers in a catalog row.
Thermal and lifetime

Model the complete path from chip to coolant

A steady-state screening calculation can expose an obviously undersized cooling system:

Tj ≈ Tcoolant/ambient + Ploss × (RthJC + RthCH + RthHA)Screening only. Use the exact device’s transient Zth, thermal coupling and application model for dynamic duty.

Do not mix Foster and Cauer networks casually, apply a steady-state resistance to a short pulse, or treat the module NTC as instant junction temperature. The NTC is physically separated from the semiconductor junctions and responds differently.

  • Define coolant inlet temperature and flow at the worst operating point.
  • Use the specified baseplate/TIM construction and heat-sink boundary.
  • Check average Tj, peak Tj, ΔTj and repeated overloads.
  • Convert the load profile into thermal cycles for lifetime estimation.
  • State model technology, failure criterion and extrapolation limits.

A “20-year lifetime” cannot be released from one steady-temperature point. Power cycling stresses bond wires, chip attach, substrate layers and interfaces; slower ambient or coolant swings add case-temperature cycling.

Thin thermal compound layer applied between a semiconductor heat spreader and heat sink
Thermal compound illustrates the interface principle; actual IGBT module TIM pattern, thickness, surface and pressure must follow the exact package instruction. Photo: Jyothis, CC BY-SA 3.0.
Driver, package and assembly

The module, gate driver, busbar and heat sink are one design

Gate powerScreen with Pgate ≈ QG × ΔVGE × fsw, then include driver losses and temperature.
ProtectionCoordinate DESAT threshold/blanking, short-circuit withstand, soft turn-off, UVLO and fault energy.
Switching tuneSet RG,on/off, Miller clamp and negative bias from worst-case overshoot, diode recovery, EMI and losses.
MechanicsMatch 3D envelope, terminal positions, PCB pattern, PressFIT/solder process, busbar stack and service access.
InsulationReview working voltage, pollution degree, altitude, overvoltage category, material group, clearance and creepage.

Do not transfer a screw torque, paste thickness or mounting sequence from another housing. Infineon’s AN2006-08, for example, is specific to Easy-family modules. EconoDUAL, PrimePACK and 62 mm packages require their own current documents.

Isolation test voltage is also not a complete end-product insulation design. The surrounding PCB, busbar, heat sink and gate-drive barrier determine the final clearance, creepage and reinforced/basic insulation result. Request the qualification report for the exact product where applicable; “industrial,” “traction” and “automotive” are not interchangeable labels.

Evidence gate builder

Select the application and purchasing stage. This tool returns the documents to collect; it does not approve a design.

Lifecycle and supply assurance

Control the orderable part number—not a shortened description

Store the engineering type, full OPN, packing size/type, status on the approval date, datasheet and model revisions, qualification evidence, allowed manufacturing constraints, label format, date/lot rules, shelf/storage requirements, and PCN/PD contacts.

Infineon says major changes affecting form, fit, function, quality or reliability are communicated through its PCN process. The practical failure is often downstream: a notice reaches purchasing but not the engineer who owns the qualification. Assign an owner and record every affected approved part.

For counterfeit mitigation, Infineon strongly recommends buying direct or through an authorized distributor. Its anti-counterfeit guidance warns that gray-market products may be counterfeit or unreliable and requests source details, labels, packaging, part photos, invoice and shipping papers when a suspect product is reported.

Illustrative procurement scenario

The “same base part” trap

A buyer receives a quote for a shortened FF900R12ME7 description while the BOM requires the PressFIT FF900R12ME7_B11 variant. Electrical headlines look familiar, so price appears comparable.

Correct action: pause the quote, request the complete OPN and label/packing evidence, and verify the control-terminal technology against the released assembly drawing.

Consequence avoided: a module that cannot enter the approved PCB/assembly process.

Illustrative receiving scenario

The clean-label trap

An open-market lot has visually convincing labels but incomplete source history and traces of previous mounting compound on several baseplates.

Correct action: quarantine the lot, preserve photos and records, escalate through the quality plan, and do not call the parts authentic from marking inspection alone.

Consequence avoided: used or mishandled modules entering production as new stock.

Buyer-ready RFQ

Send this evidence with the request for quotation

RFQ blockRequired informationSupplier response to request
IdentityExact preferred OPN and allowed alternate OPN; no shortened family namesQuoted full OPN, manufacturer status, packing and label sample
Electrical dutyTopology, VDC, phase current, switching, overload and fault profileExact datasheet revision and any unresolved application constraints
Cooling & lifeCoolant/ambient, heat sink, TIM, duty cycles and lifetime targetAvailable thermal models, lifetime support and mounting documents
IntegrationPackage, terminals, PCB/busbar, mounting, gate drive, protection and isolationMechanical drawing, recommended driver references and package notices
QualityIndustrial/traction/automotive requirement, compliance and qualificationExact-part qualification report or a written statement of availability
CommercialQuantity, forecast, delivery horizon, date-code policy and last-time-buy exposureMOQ/SPQ, lead time, stock location, allocation terms and NCNR terms
TraceabilityRequired CoC, packing labels, lot/date codes, source chain and PCN routingEvidence package before shipment and deviation-notification process
YURUNOX’s role: as an electronic-component sourcing partner, YURUNOX can help align the exact OPN, supplier evidence and commercial constraints with the buyer’s approved specification. Engineering validation and end-product certification remain with the responsible design and quality teams. Learn more about Infineon sourcing and quality assurance.
Frequently asked questions

Infineon IGBT module buying questions

Can I select an IGBT module from its current rating?

No. The datasheet current is defined at stated thermal and electrical conditions. Select from the application current waveform, conduction and switching losses, diode behavior, cooling path, overload repetition and lifetime target.

Which IGBT voltage class fits a 600 V or 800 V DC link?

There is no safe universal mapping. Calculate or simulate maximum turn-off voltage from VDC maximum, stray inductance, di/dt and other transients, then verify it with worst-case measurement and the exact protection strategy.

Can I compare two modules by VCE(sat) alone?

No. VCE(sat) addresses conduction behavior at defined current, gate voltage and temperature. A valid comparison also normalizes switching energy, diode loss, thermal impedance, gate-drive conditions and the application’s current distribution.

Is the module NTC the junction-temperature sensor?

No. It measures temperature at its physical position inside the module and has a different transient response from the IGBT and diode junctions. Use the manufacturer’s thermal model and validated estimation method.

Does pre-applied TIM always make one variant better?

No. TIM can improve process repeatability, but the correct choice depends on the exact module variant, heat-sink surface, pressure, assembly instructions, service process and validated thermal result.

Can an IGBT4 module be replaced by an IGBT7 module in the same housing?

Not automatically. Recheck switching behavior, gate resistance and drive, diode recovery, short-circuit response, loss balance, terminals, package revision, thermal behavior and lifetime. “Same housing” is not a drop-in approval.

What documents should arrive with an IGBT module purchase?

At minimum, request the exact OPN, packing and label evidence, lot/date traceability, invoice and shipping records, supplier authorization status and required certificate of conformance. Add qualification and PCN evidence according to the program.

Can visual inspection prove an Infineon module is authentic?

No. Visual inspection can identify inconsistencies or previous use, but convincing markings do not prove source or hidden condition. Prefer direct or authorized distribution and treat open-market purchases as controlled exceptions.

Need the exact Infineon module—not just a close catalog match?

Send the preferred OPN, approved alternates, mission-profile summary, quantity, required date, packing and traceability expectations. We will help organize the sourcing evidence for your engineering and quality review.

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