4.7 Article

Multi-scale damage modeling and out-of-plane shear behavior of carbon/carbon honeycomb structure

期刊

THIN-WALLED STRUCTURES
卷 192, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.tws.2023.111103

关键词

Carbon/carbon; Honeycomb; Out-of-plane shear behavior; Multi-scale damage model; Ultra-high stability

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In this study, a novel carbon/carbon (C/C) honeycomb structure is proposed for high-resolution spacecraft that requires ultra-high stability and light-weight optical structures. The C/C honeycomb is fabricated using chemical vapor infiltration (CVI) processing with a continuous carbon fiber preform. The mechanical and damage behavior of the C/C honeycomb is described by a multi-scale damage model, which includes a damage model and constitutive model at both mesoscale and macro-scale. The study comprehensively investigates the effects of yarn orientation, side length, wall thickness, and height of the C/C honeycomb on its shear characteristics and damage modes. The research contributes to the design and optimization of optical-mechanical structures in high-resolution spacecraft.
In response to the demand for the ultra-high stability and light-weight optical structure in high-resolution spacecraft, the present study proposes a novel carbon/carbon (C/C) honeycomb structure which integrates the superiorities of C/C composite and honeycomb structure. The C/C honeycomb was fabricated by chemical vapor infiltration (CVI) processing with continuous carbon fiber preform, and then the L- and W-direction shear experiments were conducted. A multi-scale damage model is established to describe the mechanical and damage behavior of the C/C honeycomb, which includes the damage model and constitutive model in both mesoscale and macro-scale. The effects of yarn orientation, side length, wall thickness and height of C/C honeycomb on L- and W-direction shear characteristics as well as damage modes of the novel C/C honeycomb are comprehensively researched. The results show that the C/C honeycomb has excellent shear properties when the yarn orientation is & PLUSMN;45 degrees as well as the side length and wall thickness are about ������ = 6 mm and ������ = 0.3 mm, respectively. With the yarn orientation shifts from 0 degrees /90 degrees to & PLUSMN;45 degrees, the damage region transforms from top and bottom surfaces of the C/C honeycomb structure to honeycomb walls. As the side length increases and the wall thickness decreases, the damage region is distributed obliquely along the honeycomb wall. This research contributes to the design and optimization of optical-mechanical structures in high-resolution spacecraft.

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