Open Access
Issue
JNWPU
Volume 44, Number 2, April 2026
Page(s) 307 - 316
DOI https://doi.org/10.1051/jnwpu/20264420307
Published online 12 June 2026
  1. GAO Ye, SUN Wei, MA Hui. Inverse identification of the pipeline support stiffness and damping of the hoop based on the mea-sured sweep frequency response[J]. Journal of Vibration and Shock, 2020, 39(8): 58–63. (in Chinese) [Google Scholar]
  2. CHEN Yanqiu, ZHU Xingen, LI Lin. Experimental study on the use of metal rubber for vibration damping of external pipelines of aero-engine[C]//Proceedings of the Tenth Conference on Strength and Vibration of Aero-Engine Structures, Anhui, 2001: 397-399. (in Chinese) [Google Scholar]
  3. LIU Wei, ZHANG Zhan. Optimal design of a three-section-bending 90° elbow pipe[J]. Mechanical Science and Technology for Aerospace Engineering, 2019, 38(1): 142–151. (in Chinese) [Google Scholar]
  4. ELISHAKOFF I, ELISSEEFF P, GLEGG S A L. Nonprobabilistic, convex-theoretic modeling of scatter in material properties[J]. AIAA Journal, 1994, 32(4): 843–849 [Article]. [Google Scholar]
  5. BEN-HAIM Y, ELISHAKOFF I. Convex models of uncertainty in applied mechanics[M]. New York: Elsevier, 2013. [Google Scholar]
  6. JONES D R, SCHONLAU M, WELCH W J. Efficient global optimization of expensive black-box functions[J]. Journal of Global Optimization, 1998, 13455–492 [Article]. [CrossRef] [MathSciNet] [Google Scholar]
  7. KWONG A H M, EDGE K A. A method to reduce noise in hydraulic systems by optimizing pipe clamp locations[J]. Proceedings of the Institution of Mechanical Engineers, Part Ⅰ: Journal of Systems and Control Engineering, 1998, 212(4): 267–280 [Google Scholar]
  8. HANSSON P A, SANDBERG G. Dynamic finite element analysis of fluid-filled pipes[J]. Computer Methods in Applied Mechanics and Engineering, 2001, 190(24/25): 3111–3120 [Google Scholar]
  9. ZHANG Z, ZHOU C, WANG W, et al. Optimization design of aeronautical hydraulic pipeline system based on non-probabilistic sensitivity analysis[J]. Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability, 2019, 233(5): 815–825 [Article] [Google Scholar]
  10. GAO Z, WANG D, SUN W, et al. Establishment of a dynamic finite element model of an L-type pipeline system and optimization of hoop supporting position based on the genetic algorithm[J]. Journal of Vibration and Shock, 2022, 41(16): 149–157. [Google Scholar]
  11. LYU Shang, SUN Wei, JI Wenhao, et al. Vibration avoidance optimization of spatial pipeline system based on clamp position sensitivity analysis[J]. Journal of Vibration and Shock, 2024, 43(17): 110–122. (in Chinese) [Google Scholar]
  12. YU Weigang, ZHAO Zhengda, CHEN Guo, et al. An automatic optimization method of pipeline clamp positions[J]. Noise and Vibration Control, 2019, 39(1): 29–33. (in Chinese) [Google Scholar]
  13. LIU X, SUN W, GAO Y, et al. Optimization of pipeline system with multi-hoop supports for avoiding vibration, based on particle swarm algorithm[J]. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2021, 235(9): 1524–1538 [Article]. [Google Scholar]
  14. BICHON B J, ELDRED M S, SWILER L P, et al. Efficient global reliability analysis for nonlinear implicit performance functions[J]. AIAA Journal, 2008, 46(10): 2459–2468 [Article]. [Google Scholar]
  15. ECHARD B, GAYTON N, LEMAIRE M. AK-MCS: an active learning reliability method combining Kriging and Monte Carlo simulation[J]. Structural Safety, 2011, 33(2): 145–154 [Article]. [CrossRef] [Google Scholar]
  16. TANG Z, LU Z, LI D, et al. Optimal design of the positions of the hoops for a hydraulic pipelines system[J]. Nuclear Engineering and Design, 2011, 241(12): 4840–4855 [Article]. [Google Scholar]
  17. HU Zhaoliang. Optimization and reliability analysis of aircraft engine line clamp layout[D]. Shenyang: Northeastern University, 2022. (in Chinese) [Google Scholar]
  18. WANG Wenshuang, YANG Yuansong, LIU Haiyang, et al. Research on optimization method of pipeline collaborative engine room equipment layout based on IABC-GA[J]. Journal of Dalian University of Technology, 2025, 65(1): 67–78. (in Chinese) [Google Scholar]
  19. SHEN Xingkeng, XU Heming, LIU Wei, et al. Tension-compression fatigue performance testing and fatigue life prediction of P-type rubber clamp[J]. Journal of Nanjing University of Aeronautics and Astronautics, 2024, 56(3): 494–503. (in Chinese) [Google Scholar]
  20. ZHOU Hongmin, SHEN Xingkeng, LIU Wei, et al. Optimization design of pipeline structure based on global sensitivity analysis[J]. Chinese Quarterly of Mechanics, 2024, 45(4): 941–952. (in Chinese) [Google Scholar]
  21. LIU Wei, ZHU Hongyan, ZHAO Yujie, et al. Multi-objective optimization design of layouts parameters for irregular pipeline on engine case[J]. Journal of Aerospace Power, 2021, 36(1): 148–156. (in Chinese) [Google Scholar]
  22. LIU Wei, ZHU Hongyan, LYU Pengzhen, et al. Dynamic identification method for linear stiffness and angular stiffness of metal rubber clamp[J]. Mechanical Science and Technology for Aerospace Engineering, 2025, 44(9): 1636–1644. (in Chinese) [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.