Applied Mathematics and Mechanics (English Edition) ›› 2025, Vol. 46 ›› Issue (5): 927-946.doi: https://doi.org/10.1007/s10483-025-3247-6
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Jinming FAN1, Zhongbiao PU1, Jie YANG1, Xueping CHANG2,†(), Yinghui LI1
Received:
2024-11-27
Revised:
2025-03-04
Published:
2025-05-07
Contact:
Xueping CHANG, E-mail: xuepingch0952@sina.comSupported by:
2010 MSC Number:
Jinming FAN, Zhongbiao PU, Jie YANG, Xueping CHANG, Yinghui LI. Orthogonality conditions and analytical response solutions of damped gyroscopic double-beam system: an example of pipe-in-pipe system. Applied Mathematics and Mechanics (English Edition), 2025, 46(5): 927-946.
Table 1
Eigenvalues of the original and adjoint systems of the damped PIP systems with different flow velocities"
Flow velocity | Mode | ||||
---|---|---|---|---|---|
11.909 9+0.026 6i | 11.909 9+0.026 6i | ||||
23.231 6+0.117 0i | 23.231 6+0.117 0i | ||||
41.244 2+0.065 3i | 41.244 2+0.065 3i | ||||
59.864 0+0.078 8i | 59.864 0+0.078 8i | ||||
9.290 6+0.029 6i | 9.290 6+0.029 6i | ||||
22.533 7+0.110 5i | 22.533 7+0.110 5i | ||||
37.495 5+0.068 7i | 37.495 5+0.068 7i | ||||
59.834 8+0.077 0i | 59.834 8+0.077 0i |
Fig. 6
Transient response time history diagrams of the damped PIP system when the system is applied with a harmonic excitation f(ξ, τ)=0.01 cos(20τ)δ(ξ−0.5) (uL=3, ke=200, ce=0.1, ci=0.05, co=0.05): (a) analytical solutions (present method); (b) numerical solutions (MSM); (c), (d), and (e) partially enlarged images (color online)"
Fig. 8
Transient response time history diagrams of the damped PIP system when the system is applied with a harmonic excitation f(ξ, τ)=0.01 cos(15τ)δ(ξ−0.5) between τ=20 and τ=40 (uL=3, ke=200, ce=0.1, ci=0.05, co=0.05): (a) analytical solutions (present method); (b) numerical solutions (MSM); (c), (d), and (e) partially enlarged images (color online)"
Fig. 9
Transient response time history diagrams of the damped PIP system when the initial conditions of the system are ηi(ξ, 0)=0.001 sin(ξπ) and ηo(ξ, 0)=−0.001 sin(ξπ) (uL=3, ke=200, ce=0.1, ci=0.05, and co=0.05): (a) analytical solutions (present method); (b) numerical solutions (MSM); (c), (d), and (e) are partially enlarged images (color online)"
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