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Cf/C复合材料与哈氏230合金热适配钎焊及 接头热力协同强化

Translated title of the contribution: Thermally adaptive brazing of Cf/C composites and Haynes 230 alloy and thermo-mechanical synergistic strengthening of joints
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The Cu-Ti brazing filler metal system can maintain stable heat transfer between Cf/C composites and Haynes 230 alloy at the service temperature range of 600–900 ℃. However, the existing Cf/C-Haynes 230 brazed joints fabricated using the Cu-Ti brazing filler metal system still have the problems of insufficient heat transfer efficiency and weak mechanical properties. To further improve the thermal conductivity and service strength of Cf/C-Haynes 230 joints, a Mo-Cu alloy interlayer with high thermal conductivity and low thermal expansion coefficient was introduced into the brazing filler metal, constructing gradient thermal conduction channels and efficient heat transfer pathways. Through the sandwich-like Cu/Mo-Cu/Ti structural design, the dual goals of thermal stress regulation and heat transfer pathway optimization were achieved. The optimized Cf/C-Haynes 230 brazed joint exhibited a thermal conductivity of 33.1–37.2 W/(m·K) in the range of 600–900 ℃, which was an approximately 6% increase compared with the interlayer-free system. By alleviating interfacial residual stresses, the room-temperature shear strength of the joints increased from 21 MPa to 25.4 MPa. The Mo-Cu interlayer, by synergistically optimizing thermo-mechanical properties, provided a reliable joining solution for extreme-environment components in the thermal management system of thermonuclear fusion reactors.

Translated title of the contributionThermally adaptive brazing of Cf/C composites and Haynes 230 alloy and thermo-mechanical synergistic strengthening of joints
Original languageChinese (Traditional)
Pages (from-to)44-52
Number of pages9
JournalHanjie Xuebao/Transactions of the China Welding Institution
Volume46
Issue number11
DOIs
StatePublished - Nov 2025

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