TY - GEN
T1 - Research on High Dynamic Strain Measurement Methods for Deployable Sunshades of Star Sensors
AU - Yan, Xiong
AU - Siyuan, Liu
AU - Weichun, Fu
AU - Yanpeng, Wu
AU - Xiaoyan, Wang
AU - Yuming, Li
AU - Hao, Zhou
AU - Yuhang, Li
AU - Jin, Nan
N1 - Publisher Copyright:
© 2024 SPIE.
PY - 2024
Y1 - 2024
N2 - In the application of star sensors, there is a requirement to further expand the size of the sunshade to improve stray light suppression. However, traditional rigid sunshades are limited by the overall size and size constraints of the fairing, making it impossible to meet the demand. Therefore, deployable sunshades have emerged, which have advantages such as smaller compressed size, larger deployed size, strong ability to suppress stray light, and flexibility. This study focuses on the stress-strain characteristics of a key component of deployable sunshades for star sensors - leaf springs, and proposes a method for high-speed camera measurement of dynamic strain during the sunshade deployment process. First, through a literature review and investigation of relevant application cases, a design scheme using beryllium bronze leaf springs as the driving force for the sunshade was determined. Next, the plasticity parameters of beryllium bronze were obtained through tensile experiments to provide data support for subsequent simulation modeling. Based on experimental data and material parameters, the stress-strain behavior during compression and deployment of the leaf springs was simulated, and their fatigue life was analyzed. The accuracy of the model was verified through experiments, further exploring the relationship between stress-strain and fatigue life of the leaf springs. In conclusion, this study thoroughly investigates the stress-strain characteristics of leaf springs in deployable sunshades for star sensors, evaluates the impact of shocks on leaf springs through the proposed high dynamic strain measurement method, and the results indicate a reasonable design, sufficient margin, and low fatigue probability. This provides theoretical and experimental basis for the design and optimization of deployable sunshades for star sensors.
AB - In the application of star sensors, there is a requirement to further expand the size of the sunshade to improve stray light suppression. However, traditional rigid sunshades are limited by the overall size and size constraints of the fairing, making it impossible to meet the demand. Therefore, deployable sunshades have emerged, which have advantages such as smaller compressed size, larger deployed size, strong ability to suppress stray light, and flexibility. This study focuses on the stress-strain characteristics of a key component of deployable sunshades for star sensors - leaf springs, and proposes a method for high-speed camera measurement of dynamic strain during the sunshade deployment process. First, through a literature review and investigation of relevant application cases, a design scheme using beryllium bronze leaf springs as the driving force for the sunshade was determined. Next, the plasticity parameters of beryllium bronze were obtained through tensile experiments to provide data support for subsequent simulation modeling. Based on experimental data and material parameters, the stress-strain behavior during compression and deployment of the leaf springs was simulated, and their fatigue life was analyzed. The accuracy of the model was verified through experiments, further exploring the relationship between stress-strain and fatigue life of the leaf springs. In conclusion, this study thoroughly investigates the stress-strain characteristics of leaf springs in deployable sunshades for star sensors, evaluates the impact of shocks on leaf springs through the proposed high dynamic strain measurement method, and the results indicate a reasonable design, sufficient margin, and low fatigue probability. This provides theoretical and experimental basis for the design and optimization of deployable sunshades for star sensors.
KW - Deployable sunshade
KW - High dynamic
KW - High-speed camera
KW - Star sensor
KW - Strain measurement
UR - https://www.scopus.com/pages/publications/85212846495
U2 - 10.1117/12.3037214
DO - 10.1117/12.3037214
M3 - 会议稿件
AN - SCOPUS:85212846495
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Conference on Spectral Technology and Applications, CSTA 2024
A2 - Wang, Zhe
A2 - Ding, Hongbin
PB - SPIE
T2 - 2024 Conference on Spectral Technology and Applications, CSTA 2024
Y2 - 9 May 2024 through 11 May 2024
ER -