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An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites577

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July 2022August 2022September 2022October 2022November 2022December 2022
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites0000155
January 2023February 2023March 2023April 2023May 2023June 2023
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites8109254
July 2023August 2023September 2023October 2023November 2023December 2023
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites1062000
January 2024February 2024March 2024April 2024May 2024June 2024
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites924191321
July 2024August 2024September 2024October 2024November 2024December 2024
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites126288139
January 2025February 2025March 2025April 2025May 2025June 2025
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites1063982117
July 2025August 2025September 2025October 2025November 2025December 2025
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites117121020
January 2026February 2026March 2026April 2026May 2026June 2026July 2026
An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites72648344716

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An integrated inverse numerical–experimental approach to determine the dynamic Mode-I interlaminar fracture toughness of fibre composites.pdf163

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