Design and reliability assessment of a support structure for high heat flux testing

A support structure combining a fixed-hinge heavy-duty scissor adjustment mechanism with large-bend-radius high-pressure pipes is proposed for high-heat-flux testing of tonne-scale plasma-facing components. Rigid-body kinematics, finite-element analysis, conjugate heat transfer, and thermo-structural coupling were used to evaluate posture control, structural strength, cooling performance, and pipe response. Under a 10 kN load, maximum mechanism deformations were 0.16, 0.37, and 0.51 mm in the lowered, horizontal, and raised postures, respectively, while the maximum angular flexibility correction was 0.0197°. At 10 MW/m², the coolant temperature rise was 0.77 K, and the combined pressure loss of the two pipes was 90.87 kPa, or 1.82% of the 5 MPa operating pressure. The classified primary membrane-plus-bending stress and combined primary-plus-secondary stress were 88.344 and 105.8 MPa, below their respective limits of 150 and 300 MPa. Maximum pipe and heated-surface deformations were 0.22 and 0.15 mm, confirming adequate static performance of the system under the specified conditions.

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Publication Details

Journal
Fusion Engineering and Design
Published
2026-09-30
DOI
https://doi.org/10.1016/j.fusengdes.2026.116071
Primary Topic
Nuclear Engineering Thermal-Hydraulics
Type
article
Field-Weighted Citation Impact
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article

Design and reliability assessment of a support structure for high heat flux testing

Wei Song, Yinfeng Zhu, Zhen Wang, Xuebing Peng
Fusion Engineering and Design
Nuclear Engineering Thermal-Hydraulics
article

Design and reliability assessment of a support structure for high heat flux testing

Wei Song, Yinfeng Zhu, Zhen Wang, Xuebing Peng
article en

Abstract

A support structure combining a fixed-hinge heavy-duty scissor adjustment mechanism with large-bend-radius high-pressure pipes is proposed for high-heat-flux testing of tonne-scale plasma-facing components. Rigid-body kinematics, finite-element analysis, conjugate heat transfer, and thermo-structural coupling were used to evaluate posture control, structural strength, cooling performance, and pipe response. Under a 10 kN load, maximum mechanism deformations were 0.16, 0.37, and 0.51 mm in the lowered, horizontal, and raised postures, respectively, while the maximum angular flexibility correction was 0.0197°. At 10 MW/m², the coolant temperature rise was 0.77 K, and the combined pressure loss of the two pipes was 90.87 kPa, or 1.82% of the 5 MPa operating pressure. The classified primary membrane-plus-bending stress and combined primary-plus-secondary stress were 88.344 and 105.8 MPa, below their respective limits of 150 and 300 MPa. Maximum pipe and heated-surface deformations were 0.22 and 0.15 mm, confirming adequate static performance of the system under the specified conditions.

Fusion Engineering and DesignVol. 233
Anhui Jianzhu University (CN), Chinese Academy of Sciences (CN), Institute of Plasma Physics (CN)
National Natural Science Foundation of China, Institute of Plasma Physics, Chinese Academy of Sciences
Affordable and clean energy
Openalex Percentile: Top 8%
Nuclear Engineering Thermal-Hydraulics
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Design and reliability assessment of a support structure for high heat flux testing — Wei Song, Yinfeng Zhu, et al. · Fusion Engineering and Design (2026) | TGRS Research Map | TGRS