meet

lux025

OUR VEHICLE For the Bridgestone world solar challenge 2025

Create. Evolve. Thrive.
This was the mantra of our season. With a clear vision in mind, we set out to develop lux025, a solar vehicle designed to push the boundaries of modern engineering. Our ambition was to reach for excellence in the way we always have.

A diverse team formed with specializations in electrical engineering, management, mechanical engineering, and computer science. Together, we’ve  built a car that goes to the limit of efficiency. After countless hours in the workshop, lux025 was ready to face its ultimate challenge: the Bridgestone World Solar Challenge.Over the course of 3,000 kilometers of competition, our car was driven along the vast highways of the Australian Outback, competing against student teams from across the world.

Returning home, we carried with us a deep sense of pride and lasting memories from an intense season after competing over 3,000 kilometers on the highways of the Australian Outback- more than 14,000 kilometers away from our home in Munich. Lux025 is the pride of over 80 interdisciplinary students, who poured their heart and passion into the car. 
Welcome to the future of driving and solar mobility.

This is lux025.

Eckdaten

Gewicht
0 kg

Abgedeckte Vorderräder:

  • All three wheels covered for the second time in the history of TUfast.
Top speed
0 km/h

Maximum Solar Output:

  • 1500 W
Cw-Wert
0

Length:

  • 5600 mm

Chassis

Gewicht des Chassis
0 kg

Aerodynamische Form:

  • Optimierung der Aerodynamik des Fahrzeugs durch zahlreiche iterative Simulationen.
  • Verwendung neuer innovativer Technik: Adjoint-Optimization.

Carbon-Fahrgastzelle:

  • Layer optimization and a layup consisting of different prepregs to maximize stiffness while minimizing weight.
  • Total Monocoque weight of only 45 kg.
  • Optimization of outer shape for solar cell orientation to maximize harvested solar energy
Cw-Wert
0

High-Tech-Materialien:

  • Verwendung von state-of-the-art Carbon Fiber für die komplette Karosserie.
  • Lowest weight with simultaneously highest stiffness.

Design und Herstellung:

  • Development of a vehicle body optimized for open-road solar racing.
  • Carbon body parts manufactured by our team.

Fahrwerk

Topology Optimization:

  • Uprights, Suspension Mounts and Brake Pedal – varying materials and techniques for different wall thicknesses and part sizes, minimizing weight while maintaining maximum stiffness.
  • All components were initially topology-optimized using Altair Inspire to minimize mass and rotational inertia

Suspension:

  • Topology-optimized, laser powder bed fusion 3D-printed front upright.
  • Front upright reduced from ~11 kg to 0.989 kg.

Drivetrain:

  • Titanium front spindle to reduce unsprung mass.
  • Top speed: 120 km/h
  •  
  • Centerlock hubs front and rear for rapid tyre changes during the race

Steering:

  • Mechanical active wheel-cover opening system for tight turning radius without compromising aerodynamic performance

Brakes:

  • Capable of full stop from 80 km/h in under 30 m.

Driving Strategy

Solar Energy Modeling:

  • Estimates  solar energy input based on geographic location and time of day
  • Provides a consistent energy model for simulation and optimization

Route And Terrain Analysis:

  • Processes Australian race routes from GPX data
  • Computes distances, curvature, and smoothed road gradients from elevation data
  • Captures terrain effects that influence energy consumption

Optimized Driving Strategy:

  • Computes an optimized acceleration profile using solar and route data
  • Use of Alpso and ParOpt-optimization algorithms