研究目的
To investigate the potential of optimising optical fibres through the textile manufacturing process of braiding to improve their mechanical properties and handling during the manufacturing process.
研究成果
Micro-braiding conventional optical fibres significantly improves their strain at failure and handling without affecting their sensitivity. The technique does not compromise the integrity of composite structures, making micro-braided optical fibres a viable alternative for structural health monitoring applications.
研究不足
The study focused on the mechanical properties and handling improvements of optical fibres through micro-braiding. The effect of environmental factors on the performance of micro-braided optical fibres was not investigated. Surface treatment of micro-braided optical fibres for improved interfacial shear strength was suggested for future work.
1:Experimental Design and Method Selection:
The study involved micro-braiding conventional optical fibres to improve their mechanical properties and handling. Tensile properties of both micro-braided and conventional optical fibres were compared through uniaxial tensile tests. Micro-bond tests were conducted to compare interfacial shear strength. The effect of embedding both types of optical fibres in composites was investigated through three-point bend tests.
2:Sample Selection and Data Sources:
FBG sensors manufactured by AtGrating Technologies were used. S-glass tow with specific properties was used for micro-braiding.
3:List of Experimental Equipment and Materials:
Instron 1122 mechanical testing machine, Instron 3344, Micron-Optics sm-125 optical sensing interrogator, Cobra 450 maypole braiding machine.
4:Experimental Procedures and Operational Workflow:
Micro-braiding process was optimized for braid angle and coverage. Tensile tests, micro-bond tests, and three-point bend tests were conducted following standard procedures.
5:Data Analysis Methods:
Data from tensile tests, micro-bond tests, and three-point bend tests were analyzed to determine mechanical properties, interfacial shear strength, and the effect on composite integrity.
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