Structural deformation monitoring of flight vehicles based on optical fiber sensing(OFS)technology has been a focus of research in the field of aerospace.After nearly 30 years of research and development,Chinese and i...Structural deformation monitoring of flight vehicles based on optical fiber sensing(OFS)technology has been a focus of research in the field of aerospace.After nearly 30 years of research and development,Chinese and international researchers have made significant advances in the areas of theory and methods,technology and systems,and ground experiments and flight tests.These advances have led to the development of OFS technology from the laboratory research stage to the engineering application stage.However,a few problems encountered in practical applications limit the wider application and further development of this technology,and thus urgently require solutions.This paper reviews the history of research on the deformation monitoring of flight vehicles.It examines various aspects of OFS-based deformation monitoring including the main varieties of OFS technology,technical advantages and disadvantages,suitability in aerospace applications,deformation reconstruction algorithms,and typical applications.This paper points out the key unresolved problems and the main evolution paradigms of engineering applications.It further discusses future development directions from the perspectives of an evolution paradigm,standardization,new materials,intelligentization,and collaboration.展开更多
文中建立一种基于光频域反射(optical frequency domain reflection,OFDR)技术的裂缝宽度计算方法,可依据已知的光纤裂缝夹角,利用光纤测试位置-度计算精度影响,发现OFDR技术可实现毫米级裂缝监测与定位,较薄的黏接层及较大的裂缝夹角...文中建立一种基于光频域反射(optical frequency domain reflection,OFDR)技术的裂缝宽度计算方法,可依据已知的光纤裂缝夹角,利用光纤测试位置-度计算精度影响,发现OFDR技术可实现毫米级裂缝监测与定位,较薄的黏接层及较大的裂缝夹角可提高裂缝识别灵敏度,而较窄的黏贴带可提高裂缝宽度计算准确性,并研究了在特定黏贴情况下的最优积分长度取值。展开更多
基金funded by the National Natural Science Foundation of China(51705024,51535002,51675053,61903041,61903042,and 61903041)the National Key Research and Development Program of China(2016YFF0101801)+4 种基金the National Hightech Research and Development Program of China(2015AA042308)the Innovative Equipment Pre-Research Key Fund Project(6140414030101)the Manned Space Pre-Research Project(20184112043)the Beijing Municipal Natural Science Foundation(F7202017 and 4204101)the Beijing Nova Program of Science and Technology(Z191100001119052)。
文摘Structural deformation monitoring of flight vehicles based on optical fiber sensing(OFS)technology has been a focus of research in the field of aerospace.After nearly 30 years of research and development,Chinese and international researchers have made significant advances in the areas of theory and methods,technology and systems,and ground experiments and flight tests.These advances have led to the development of OFS technology from the laboratory research stage to the engineering application stage.However,a few problems encountered in practical applications limit the wider application and further development of this technology,and thus urgently require solutions.This paper reviews the history of research on the deformation monitoring of flight vehicles.It examines various aspects of OFS-based deformation monitoring including the main varieties of OFS technology,technical advantages and disadvantages,suitability in aerospace applications,deformation reconstruction algorithms,and typical applications.This paper points out the key unresolved problems and the main evolution paradigms of engineering applications.It further discusses future development directions from the perspectives of an evolution paradigm,standardization,new materials,intelligentization,and collaboration.
文摘文中建立一种基于光频域反射(optical frequency domain reflection,OFDR)技术的裂缝宽度计算方法,可依据已知的光纤裂缝夹角,利用光纤测试位置-度计算精度影响,发现OFDR技术可实现毫米级裂缝监测与定位,较薄的黏接层及较大的裂缝夹角可提高裂缝识别灵敏度,而较窄的黏贴带可提高裂缝宽度计算准确性,并研究了在特定黏贴情况下的最优积分长度取值。