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Drivetrain

GT-SUITE offers the ability to increase the fidelity of driveline models for more advanced drivability studies

Solution Overview

Higher-Fidelity Driveline Models

GT-SUITE builds driveline models that capture torsional dynamics under both steady-state and transient loads. Starting from a baseline vehicle model, you add compliant connections, slipping elements, and torsional damping only where they matter, integrating directly with a detailed transmission and a Fast Running Model of your GT-POWER engine.

The same model supports tip-in and tip-out transients, in-gear driveline boom, judder, lugging, and fuel cut and resume vibration, with 1D, 2D, and 3D linear frequency domain analysis to extract natural frequencies and validate transient work. Duty cycle simulation extends the same framework to durability assessment, giving engineers one consistent view of powertrain behavior across the load history.

Electric car system, under carriage chassis.
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Application Highlights

Detailed Modeling of Every Driveline Component

  • Torsionally flexible driveline with compliant connections, slipping elements, and gear lash for accurate prediction of transient load transmission through the driveline
  • Torsional vibration damper models for the engine-transmission interface, including discretized arc spring models with hysteresis for precise damper characterization
  • Pendulum absorber models based on simple dynamics or detailed contact geometry for order-tuned torsional vibration attenuation
  • Dynamic torque converter model for accurate prediction of torque multiplication, slip behavior, and lock-up clutch engagement during transient events
  • 1D, 2D, and 3D linear frequency domain analysis for natural frequency extraction and mode shape identification across the full driveline assembly
  • Fully integrated with detailed transmission, Fast Running engine, cranktrain, and mount models for complete powertrain system evaluation
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Advanced Features

Predict Driveline Behavior Before It's Built

From resonance prediction to durability planning, these capabilities help you resolve driveline issues at the simulation stage, before they reach the test track.

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Scalable 1D–3D Model Fidelity

Move seamlessly from fast 1D driveline models to detailed 2D/3D and finite element representations — add fidelity only where needed, without switching tools.

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Tip-In/Out Drivability Prediction

Simulate throttle tip-in/out events with fully coupled engine and driveline dynamics to catch and resolve shunt, shuffle, and clunk before a physical prototype exists.

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Driveline Boom & Judder Prediction

Predict in-gear acceleration/deceleration boom and low-speed judder/lugging in one analysis, so drivability and comfort issues are caught at the design stage instead of on the test track.

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Start-Stop & Fuel-Cut Vibration Prediction

Predict vibration from fuel cut/resume events — a must-have for validating ride comfort in modern start-stop, hybrid, and cylinder-deactivation architectures.

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Duty-Cycle Durability Assessment

Run realistic speed and load duty cycles to assess long-term driveline durability early, cutting warranty risk and reducing physical durability testing.

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Fast Frequency-Domain Vibration Screening

Run rapid linear frequency-domain sweeps across the full 1D/2D/3D driveline model to flag resonance risks quickly, before investing time in detailed transient simulation.

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