Structural safety assessment of a piston-type wavemaker under varying frequency and stroke conditions

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Elsevier

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info:eu-repo/semantics/openAccess

Özet

The structural behaviour of piston-type wave generators under repeated hydrodynamic and inertial loads is a critical design parameter for the safe and long-term operation of laboratory-scale wave flumes. This study develops a finite element-based structural design and safety assessment methodology for laboratory-scale pistontype wavemakers, validated through multi-step numerical analysis and FPGA-controlled experimental motion confirmation. The methodology is demonstrated on a piston-type wave generator fabricated from S235JR structural steel for a 23 m & times; 1 m & times; 1 m wave flume, operating at 1.00 Hz with a maximum stroke of +/- 400 mm for a target wave range of H = 0.02-0.10 m and T = 0.8-2.5 s. Structural integrity was assessed via static, modal, and time-dependent analyses in ANSYS 2024 R1, with a parametric study spanning three frequencies and eight stroke conditions. In the static analysis, the design safety factor was 5.02 and stress levels remained below the infinite-life fatigue limit. Modal analysis yielded a first natural frequency 51 times the operating frequency, confirming the absence of resonance risk. Transient analysis showed that inertial effects increased the maximum von Mises stress by 45.4% to 68.1 MPa, with FS = 3.45. Across the full parametric envelope, the safety factor ranged from 2.90 to 5.02, satisfying the minimum design requirement in all cases. Results were verified through a three-tier framework comprising analytical benchmarking against classical plate theory, numerical selfconsistency via mesh independence analysis, and operational confirmation of motion fidelity through FPGAbased position control experiments.

Açıklama

Kaya, Semin (Balikesir Author)

Anahtar Kelimeler

Piston-Type Wavemaker, Finite Element Analysis, Von Mises Stress, Modal Analysis, Structural Integrity

Kaynak

Results in Engineering

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31

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Onay

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