Kim Branner
- Monitoring fatigue delamination growth in a wind turbine blade using passive thermography and acoustic emission. In: Structural Health Monitoring, v. 23, n. 5 (Februar 2024). (2024):
- How to design and execute multiaxial fatigue tests for wind turbine blades without sensitive design data?. In: Engineering Structures, v. 301 (Februar 2024). (2024):
- A full-scale wind turbine blade monitoring campaign: detection of damage initiation and progression using medium-frequency active vibrations. In: Structural Health Monitoring, v. 22, n. 6 (April 2023). (2023):
- Experimental demonstration of strain-based damage method for optimized fatigue testing of wind turbine blades. In: Composite Structures, v. 293 (August 2022). (2022):
- Effect of tunneling cracks on structural property degradation of wind turbine blades. In: Composite Structures, v. 268 (Juli 2021). (2021):
- Defect distribution and reliability assessment of wind turbine blades. In: Engineering Structures, v. 33, n. 1 (Januar 2011). (2011):
- Optimized method for multi-axial fatigue testing of wind turbine blades. In: Composite Structures, v. 257 (Februar 2021). (2021):
- Effects of different material failures and surface contact on structural response of trailing edge sections in composite wind turbine blades. In: Composite Structures, v. 226 (Oktober 2019). (2019):
- An high order Mixed Interpolation Tensorial Components (MITC) shell element approach for modeling the buckling behavior of delaminated composites. In: Composite Structures, v. 108 (Februar 2014). (2014):
- Understanding progressive failure mechanisms of a wind turbine blade trailing edge section through subcomponent tests and nonlinear FE analysis. In: Composite Structures, v. 214 (April 2019). (2019):
- Bending-moment-based approach to match damage-equivalent strains in fatigue testing. In: Engineering Structures, v. 226 (Januar 2021). (2021):