TY - JOUR
T1 - Mass and Force Lumping
T2 - An Essential Enhancement to the Intrinsic Beam Finite Element Discretization
AU - Wang, Jiachen
AU - Zhou, Zhou
N1 - Publisher Copyright:
© 2023 by the authors.
PY - 2023/11
Y1 - 2023/11
N2 - This paper introduces the novel application of the mass and force lumping technique to enhance the finite element discretization of the fully intrinsic beam formulation. In our aeroelastic system model, 2-D unsteady aerodynamics were incorporated alongside simple calculations for thrust and gravity. Through the central difference discretization method, the discretized system was thoroughly examined, shedding light on the advantages of the mass and force lumping approach. With the use of a first-order lumping method, we successfully reconstructed the inertia matrices, external forces, and moments. The resulting equations are more systematically structured, facilitating the extraction of a regular state-space linear system using the direct index reduction method post-linearization. Numerical results further confirm that the proposed techniques can effectively capture the nonlinear dynamics of aeroelastic systems, enabling equation reconstruction and leading to significant benefits in system order reduction and flight dynamical analysis.
AB - This paper introduces the novel application of the mass and force lumping technique to enhance the finite element discretization of the fully intrinsic beam formulation. In our aeroelastic system model, 2-D unsteady aerodynamics were incorporated alongside simple calculations for thrust and gravity. Through the central difference discretization method, the discretized system was thoroughly examined, shedding light on the advantages of the mass and force lumping approach. With the use of a first-order lumping method, we successfully reconstructed the inertia matrices, external forces, and moments. The resulting equations are more systematically structured, facilitating the extraction of a regular state-space linear system using the direct index reduction method post-linearization. Numerical results further confirm that the proposed techniques can effectively capture the nonlinear dynamics of aeroelastic systems, enabling equation reconstruction and leading to significant benefits in system order reduction and flight dynamical analysis.
KW - differential-algebraic equation
KW - fully intrinsic equation
KW - geometrically exact beam
KW - mass and force lumping
KW - regular state space
UR - http://www.scopus.com/inward/record.url?scp=85178368842&partnerID=8YFLogxK
U2 - 10.3390/aerospace10110957
DO - 10.3390/aerospace10110957
M3 - 文章
AN - SCOPUS:85178368842
SN - 2226-4310
VL - 10
JO - Aerospace
JF - Aerospace
IS - 11
M1 - 957
ER -