Frekwensieresponsanalise¶
Hierdie analise gebruik die data van tutorial/17_freq_beam.
Analisedoel¶
Die analisedoel is 'n uitkragbalk, en die geometrie is getoon in Figuur 4.17.1 en die maasdata is getoon in Figuur 4.17.2.
| Item | Beskrywing | Notas | Verwysing |
|---|---|---|---|
| Tipe van analise | Frekwensieresponsanalise | !OPLOSSING,TIPE=EIGEN !OPLOSSING,TIPE=DINAMIES | |
| Aantal knope | 55 | ||
| Aantal elemente | 126 | ||
| Elementtipe | 4-knoop lineêr tetraëdries element | !ELEMENT,TIPE=341 | |
| Materiaalnaam | Materiaal-1 | !MATERIAAL,NAAM=Materiaal-1 | |
| Randvoorwaardes | Beperking, gekonsentreerde las, eigenmodes | !EIGENREAD | |
| Matriksoplosser | CG/SSOR | !OPLOSSER,METODE=CG,PRECOND=1 |


Analise-inhoud¶
Die einde van 'n uitkragbalk na wees ontleed is volledig beperk, en 'n frekwensieresponsanalise word uitgevoer deur toepassing gekonsentreerde laste na twee knope by die opposite einde.
Eerste voer uit modale analise deur die 10th modus onder die dieselfde randvoorwaardes, en dan voer uit die analise met behulp van die eiewaardes en eigenvectors deur die 5th modus. Die analisebeheerdata vir die frekwensieresponsanalise is hieronder getoon.
Analisebeheerdata beam_eigen.cnt¶
# Control File for FISTR
!VERSION
3
!WRITE,RESULT
!WRITE,VISUAL
!SOLUTION, TYPE=EIGEN
!EIGEN
10, 1.0E-8, 60
!BOUNDARY
_PickedSet4, 1, 3, 0.0
!SOLVER,METHOD=CG,PRECOND=1,ITERLOG=NO,TIMELOG=YES
10000, 1
1.0e-8, 1.0, 0.0
!VISUAL,method=PSR
!surface_num=1
!surface 1
!output_type=VTK
!END
Analisebeheerdata beam_freq.cnt¶
# Control File for FISTR
!VERSION
3
!WRITE,RESULT
!WRITE,VISUAL
!SOLUTION, TYPE=DYNAMIC
!DYNAMIC
11 , 2
14000, 16000, 20, 15000.0
0.0, 6.6e-5
1, 1, 0.0, 7.2E-7
10, 2, 1
1, 1, 1, 1, 1, 1
!EIGENREAD
eigen_0.log
1, 5
!BOUNDARY
_PickedSet4, 1, 3, 0.0
!FLOAD, LOAD CASE=2
_PickedSet5, 2, 1.
!FLOAD, LOAD CASE=2
_PickedSet6, 2, 1.
!SOLVER,METHOD=CG,PRECOND=1,ITERLOG=NO,TIMELOG=YES
10000, 1
1.0e-8, 1.0, 0.0
!VISUAL,method=PSR
!surface_num=1
!surface 1
!output_type=VTK
!END
Analiseprosedure¶
Eerste, hernoem die globaal beheer data lêer hecmw_ctrl_eigen.dat vir modale analise na hecmw_ctrl.dat, en voer uit die modale analise.
Volgende, hernoem die globaal beheer data lêer hecmw_ctrl_freq.dat vir frekwensieresponsanalise na hecmw_ctrl.dat, en hernoem die modal-analisresultaat log lêer 0.log na eigen_0.log (as gespesifiseer in die analisebeheerdata vir frekwensieresponsanalise), en dan voer uit die frekwensieresponsanalise.
cp hecmw_ctrl_eigen.dat hecmw_ctrl.dat
fistr1 -t 4
mv 0.log eigen_0.log
cp hecmw_ctrl_freq.dat hecmw_ctrl.dat
fistr1 -t 4
Analisresultate¶
Die verband tussen die frekwensie en verplasingsamplitude van die moniteringsknoop (knoopnommer 1) wat in die analisebeheerdata gespesifiseer is, is met Microsoft Excel geskep en word in Figuur 4.17.3 getoon. Daarbenewens word 'n gedeelte van die analyseresultaatloglêer hieronder as numeriese data van die analyseresultate getoon.

Analisresultaat log 0.log (Frekwensieresponsanalise)¶
fstr_setup: OK
Rayleigh alpha: 0.0000000000000000
Rayleigh beta: 7.1999999999999999E-007
read from=eigen_0.log
start mode= 1
end mode= 5
start frequency: 14000.000000000000
end frequency: 16000.000000000000
number of the sampling points 20
monitor nodeid= 1
14100.000000000000 [Hz] : 8.3935554529723885E-002
14100.000000000000 [Hz] : 1 .res
14200.000000000000 [Hz] : 9.1211083509607632E-002
14200.000000000000 [Hz] : 2 .res
14300.000000000000 [Hz] : 9.9579777896922961E-002
14300.000000000000 [Hz] : 3 .res
14400.000000000000 [Hz] : 0.10914967594967491
14400.000000000000 [Hz] : 4 .res
14500.000000000000 [Hz] : 0.11992223203326918
14500.000000000000 [Hz] : 5 .res
14600.000000000000 [Hz] : 0.13164981801806747
14600.000000000000 [Hz] : 6 .res
14700.000000000000 [Hz] : 0.14360931008440975
14700.000000000000 [Hz] : 7 .res
14800.000000000000 [Hz] : 0.15436500205940235
14800.000000000000 [Hz] : 8 .res
14900.000000000000 [Hz] : 0.16180768408076251
14900.000000000000 [Hz] : 9 .res
15000.000000000000 [Hz] : 0.16388019610373711
15000.000000000000 [Hz] : 10 .res
15100.000000000000 [Hz] : 0.15982110598747551
15100.000000000000 [Hz] : 11 .res
15200.000000000000 [Hz] : 0.15074650286398145
15200.000000000000 [Hz] : 12 .res
15300.000000000000 [Hz] : 0.13885370598993371
15300.000000000000 [Hz] : 13 .res
15400.000000000000 [Hz] : 0.12618976409021948
15400.000000000000 [Hz] : 14 .res
15500.000000000000 [Hz] : 0.11405716994112736
15500.000000000000 [Hz] : 15 .res
15600.000000000000 [Hz] : 0.10306231010139058
15600.000000000000 [Hz] : 16 .res
15700.000000000000 [Hz] : 9.3374567545990342E-002
15700.000000000000 [Hz] : 17 .res
15800.000000000000 [Hz] : 8.4945897112663621E-002
15800.000000000000 [Hz] : 18 .res
15900.000000000000 [Hz] : 7.7641947016103510E-002
15900.000000000000 [Hz] : 19 .res
16000.000000000000 [Hz] : 7.1307642422355627E-002
16000.000000000000 [Hz] : 20 .res
start time: 0.0000000000000000
end time: 6.6000000000000005E-005
frequency: 15000.000000000000
node id: 1
num disp: 10
time= 0.0000000000000000 : 1 .res
time= 0.0000000000000000 : 1 .vis
time= 6.6000000000000003E-006 : 2 .res
time= 6.6000000000000003E-006 : 2 .vis
time= 1.3200000000000001E-005 : 3 .res
time= 1.3200000000000001E-005 : 3 .vis
time= 1.9800000000000000E-005 : 4 .res
time= 1.9800000000000000E-005 : 4 .vis
time= 2.6400000000000001E-005 : 5 .res
time= 2.6400000000000001E-005 : 5 .vis
time= 3.3000000000000003E-005 : 6 .res
time= 3.3000000000000003E-005 : 6 .vis
time= 3.9600000000000000E-005 : 7 .res
time= 3.9600000000000000E-005 : 7 .vis
time= 4.6200000000000005E-005 : 8 .res
time= 4.6200000000000005E-005 : 8 .vis
time= 5.2800000000000003E-005 : 9 .res
time= 5.2800000000000003E-005 : 9 .vis
time= 5.9400000000000000E-005 : 10 .res
time= 5.9400000000000000E-005 : 10 .vis