TY - JOUR
T1 - HIGHER APPROXIMATE SOLUTIONS OF THE DUFFING EQUATION. (ODD ORDER SUPERHARMONIC RESONANCES IN THE HARD SPRING SYSTEM).
AU - Tamura, Hideyuki
AU - Kondou, Takahiro
AU - Sueoka, Atsuo
PY - 1986
Y1 - 1986
N2 - In the previous paper, an algorithm was presented to obtain the periodic solutions and stability of nonlinear multi-degree-of-freedom systems with high speed and high accuracy, based on the harmonic balance method and the infinitesimal stability criterion. A revised algorithm is presented to give only odd order solutions which are composed of odd order harmonics only and so reduce the dimensions of the amplitude vector and Jacobian matrix to about one-half of the previous ones. The Duffing system with hard spring is analysed by this algorithm and the detailed frequency responses are computed for odd order superharmonic resonances (order 3, 5, 7, 9) which are odd order solutions. The results are shown for each resonance region in terms of (a) maximum amplitudes and norms, (b) superharmonic amplitudes, (c) fundamental amplitudes, and (d) fundamental and superharmonic phase angles. Some of these are confirmed by numerical simulation.
AB - In the previous paper, an algorithm was presented to obtain the periodic solutions and stability of nonlinear multi-degree-of-freedom systems with high speed and high accuracy, based on the harmonic balance method and the infinitesimal stability criterion. A revised algorithm is presented to give only odd order solutions which are composed of odd order harmonics only and so reduce the dimensions of the amplitude vector and Jacobian matrix to about one-half of the previous ones. The Duffing system with hard spring is analysed by this algorithm and the detailed frequency responses are computed for odd order superharmonic resonances (order 3, 5, 7, 9) which are odd order solutions. The results are shown for each resonance region in terms of (a) maximum amplitudes and norms, (b) superharmonic amplitudes, (c) fundamental amplitudes, and (d) fundamental and superharmonic phase angles. Some of these are confirmed by numerical simulation.
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U2 - 10.1299/jsme1958.29.894
DO - 10.1299/jsme1958.29.894
M3 - Article
AN - SCOPUS:0022678421
SN - 0021-3764
VL - 29
SP - 894
EP - 901
JO - Bulletin of the JSME
JF - Bulletin of the JSME
IS - 249
ER -