!DYNAMIC¶
Udhibiti wa dynamic analysis
Muda t katika kila !AMPLITUDE iliyobainishwa na !BOUNDARY, !CLOAD, na !DLOAD lazima uanze kutoka 0.0.
Vigezo¶
** Kuanzia mstari wa 2 **
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| idx_eqa | I | Njia ya kutatua equation of motion (direct time integration) (default: 1) 1: Implicit method (Newmark-β method) 11: Explicit method (central difference method) |
| idx_resp | I | Aina ya uchanganuzi (default: 1) 1: Time-history response analysis 2: Frequency response analysis |
Ikiwa idx_resp=1 (time-history response analysis)¶
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| t_start | R | Muda wa kuanza uchanganuzi (default: 0.0), hautumiki |
| t_end | R | Muda wa kumaliza uchanganuzi (default: 1.0), hautumiki |
| n_step | I | Idadi ya default substeps wakati !STEP imeachwa au kwa backward compatibility (default: 1) |
| t_delta | R | Default time increment wakati !STEP imeachwa au kwa backward compatibility (default: 1.0) |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| gamma | R | Kigezo γ cha Newmark-β method (default: 0.5) |
| beta | R | Kigezo β cha Newmark-β method (default: 0.25) |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| idx_mas | I | Aina ya mass matrix (default: 1) 1: Lumped mass matrix 2: Consistent mass matrix |
| idx_dmp | I | 1: Rayleigh damping (default: 1) |
| ray_m | R | Kigezo Rm cha Rayleigh damping (default: 0.0) |
| ray_k | R | Kigezo Rk cha Rayleigh damping (default: 0.0) |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| nout | I | Haitumiki |
| node_monit_1 | I | Namba ya nodi ya monitoring (global) au jina la node group |
| nout_monit | I | Interval ya kutoa matokeo ya monitoring (default: 1) |
Dokezo) Kwa taarifa ya monitoring node iliyobainishwa kwenye mstari huu, global node number hutumiwa kama NID. Displacement hutolewa kwenye faili <dyna_disp_NID.txt> kwa mpangilio wa step number, substep number, muda husika, NID, u1, u2, u3. Velocity na acceleration pia hutolewa kwa mpangilio huohuo kwenye <dyna_velo_NID.txt> na <dyna_acce_NID.txt>. Nodal strain hutolewa kwenye <dyna_strain_NID.txt> kwa mpangilio wa step number, substep number, muda husika, NID, e11, e22, e33, e12, e23, e13. Nodal stress hutolewa kwenye <dyna_stress_NID.txt> kwa mpangilio wa step number, substep number, muda husika, NID, s11, s22, s33, s12, s23, s13, smises. Ikiwa monitoring ya nodi nyingi imebainishwa kwa node group, kila faili hapo juu hutolewa kando kwa kila nodi. Pia, ikiwa output hii imebainishwa, kinetic energy, deformation energy na total energy ya analysis model nzima hutolewa kwenye <dyna_energy.txt> kwa mpangilio wa step number, substep number, muda husika, kinetic energy, deformation energy, total energy.
Maelezo¶
- Katika time-history dynamic analysis,
!STEPnyingi zinaweza kufafanuliwa ili kubadilisha boundary-condition na load groups kwa kila step. - Kwa time control ya fixed increment, inapendekezwa kubainisha wazi
SUBSTEPSya!STEPpamoja naDTIME, ETIMEkwenye mstari wa 2.n_stepnat_deltahutumiwa kama default values kwa single-step analysis wakati!STEPimeachwa, au kwa backward compatibility. - Ikiwa
!STEP, INC_TYPE=AUTOimebainishwa, automatic increment hutumia initial time increment, step time width, minimum time increment na maximum time increment zilizobainishwa katika mstari wa 2 wa!STEP. Vigezo vya automatic increment vinaweza kubainishwa kwa!AUTOINC_PARAM.
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| iout_list(1) | I | Mpangilio wa output ya displacement (default: 0) 0: Haitoi 1: Hutoa |
| iout_list(2) | I | Mpangilio wa output ya velocity (default: 0) 0: Haitoi 1: Hutoa |
| iout_list(3) | I | Mpangilio wa output ya acceleration (default: 0) 0: Haitoi 1: Hutoa |
| iout_list(4) | I | Mpangilio wa output ya reaction force (default: 0) 0: Haitoi 1: Hutoa |
| iout_list(5) | I | Mpangilio wa output ya strain (default: 0) 0: Haitoi (element-based wala node-based) 1: Hutoa 2: Hutoa (node-based) 3: Hutoa (element-based) |
| iout_list(6) | I | Mpangilio wa output ya stress (default: 0) 0: Haitoi (element-based wala node-based) 1: Hutoa 2: Hutoa (node-based) 3: Hutoa (element-based) |
Mfano wa matumizi¶
!DYNAMIC, TYPE=NONLINEAR
1 , 1
0.0, 1.0, 500, 1.0000e-5
0.5, 0.25
1, 1, 0.0, 0.0
100, 55, 1
0, 0, 0, 0, 0, 0
Ikiwa idx_resp=2 (frequency response analysis)¶
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| f_start | R | Lower frequency |
| f_end | R | Upper frequency |
| n_freq | I | Idadi ya response calculation points |
| f_disp | R | Frequency ya kupima displacement |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| t_start | R | Muda wa kuanza vibration katika real time |
| t_end | R | Muda wa kumaliza vibration katika real time |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| idx_mas | I | Aina ya mass matrix (imewekwa 1 (lumped mass matrix)) |
| idx_dmp | I | 1: Rayleigh damping |
| ray_m | R | Kigezo Rm cha Rayleigh damping (default: 0.0) |
| ray_k | R | Kigezo Rk cha Rayleigh damping (default: 0.0) |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| nout | I | Idadi ya samples katika time space |
| vistype | I | Mpangilio wa visualization-data output (1: mode space, 2: physical space) |
| nodeout | I | Node ID ya monitoring katika frequency space |
| Jina la kigezo | Sifa | Maelezo |
|---|---|---|
| iout_list(1) | I | Output control, displacement (1: hutoa, 0: haitoi) |
| iout_list(2) | I | Output control, velocity (1: hutoa, 0: haitoi) |
| iout_list(3) | I | Output control, acceleration (1: hutoa, 0: haitoi) |
| iout_list(4) | I | Hupuuzwa |
| iout_list(5) | I | Hupuuzwa |
| iout_list(6) | I | Hupuuzwa |