研究目的
Investigating the effectiveness of a rockfall simulation prototype using the Unity 3D game engine for simulating fragmental rockfall events detected using terrestrial laser scans.
研究成果
The study demonstrated the ability of the Unity 3D game engine-based rockfall simulation prototype to model complex rockfall source geometries comprised of many moving fragments. The simulated change detection results aligned well with actual observed changes, indicating the technique's potential for rockfall hazard assessment and mitigation design. Future development should focus on better informing simulated rockfall fragment size and the timing of fragmentation.
研究不足
The main limitations are fragmentation timing and the distribution and size of rockfall fragments used. The simulation does not account for the exact timing of fragmentation during the event and uses Voronoi fracturing for source volume fragmentation, which may not accurately reflect actual discontinuity patterns in the rock mass.
1:Experimental Design and Method Selection:
The study utilized the Unity 3D game engine for simulating rockfall events, focusing on fragmental rockfalls. High-resolution terrestrial laser scans were used to construct slope and rockfall geometries.
2:Sample Selection and Data Sources:
Five fragmental rockfalls were selected from a database of rockfalls identified using change detection at two rock slopes in south-central British Columbia.
3:List of Experimental Equipment and Materials:
Terrestrial laser scanning (TLS) data were acquired using an Optech ILRIS 3D-ER or Riegl VZ-400i lidar system. Aerial laser scan (ALS) data and site photos were also collected.
4:Experimental Procedures and Operational Workflow:
Simulations were run for each rockfall event, with change maps of the simulation results produced and compared to actual change detection results.
5:Data Analysis Methods:
The Multiscale Model to Model Cloud Comparison (M3C2) point–point distance calculation was used for both the actual and simulated rockfall events.
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