Transient Conjugate Heat Transfer CFD Simulations of an Experimental Brake Rig: Focus on Modeling of Radiation and Rotation
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Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
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Sammanfattning
This master’s thesis investigates transient conjugate heat transfer CFD modeling
of an experimental truck brake rig, with focus on how thermal radiation and brake
rotation should be modeled for accurate and efficient temperature prediction. A
numerical model of the rig was developed in Simcenter STAR-CCM+ and evaluated
using two braking cycles: a short severe cycle and a longer cycle adapted from the
Alpine descent test.
Two approaches for modeling disc rotation were compared: Rigid Body Motion
(RBM) and Convective Velocity Option (CVO). In addition, different implementations
of surface-to-surface radiation were assessed in terms of temperature prediction
and computational cost. The results show that radiation has a comparatively
small influence during short braking events, but becomes more important in longer
high-temperature cycles, where neglecting radiation leads to over-predicted brake
temperatures. For RBM, radiation had to be modeled in the solid domain to ensure
energy conservation, although this significantly increased computational cost. To
mitigate this, a parameter sweep was conducted to optimize the radiation settings.
By reducing the Patch/Face Proportion and the Number of Beams, the solver computational
time was decreased by more than 14.8%. This optimization maintained
a high level of accuracy, yielding a Root Mean Square Error below 0.5 for the predicted
temperatures compared to the most computationally expensive baseline.
The results also show that CVO predicts lower maximum temperatures than RBM
due to numerical smearing, while average disc temperatures remain relatively close.
However, CVO reduced computational time by about 84 to 86%, making it a worthy
engineering compromise when simulation speed is important. Comparison with
brake rig measurements showed that both approaches captured the overall temperature
development during braking, but both under-predicted temperatures during
cooling. The thesis concludes that radiation should be included in transient brake
thermal simulations, especially for long-duration braking, and that CVO is a promising
alternative to RBM while, balancing accuracy and efficiency.
