Numerical Analysis of Seismic Pounding between Adjacent Buildings Accounting for SSI
Abstract
:1. Introduction
2. Theoretical Model Framework
2.1. Equation of Motion
2.2. Pounding Forces
2.3. Approximate Normal Modes of Adjacent Buildings
2.4. Equation of Motion for SSI System
3. Numerical Study
3.1. Structure Properties
3.2. Response Analysis
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Notations
symbolized Building A | |
dimensionless frequency | |
symbolized Building B | |
, | mass ratios for sliding, rocking, and torsion |
damping matrices of the SSI system for each building | |
submatrices of damping in x- and y-axis for Building A | |
ith floor damping coefficient in the longitudinal and transverse directions for Building A | |
jth floor damping coefficient in the longitudinal and transverse directions for Building B | |
damping of impact element | |
CM, CR | center of mass and resistance |
torsional damping matrices of Building A in relation to CR and CM | |
, | damping of soil dashpots |
distance between buildings | |
, | damping ratio of soil dashpots |
coefficient of restitution | |
, | eccentricity in x-direction of Buildings A and B |
, | column vector with all elements equal to , |
pounding force vector | |
, | pounding force influence coefficient vectors in longitudinal, transverse, and vertical directions |
, | shear force matrices of SSI system for each building |
shear force of ith floor | |
, | yield strength of ith floor |
eccentricity in y-direction of Buildings A and B | |
column vector with all elements equal to | |
maximum wave frequency | |
shear modulus of soil | |
, | height of ith and jth floor level |
, | column vector composed of story heights |
, | moments of inertia of ith and jth floors |
, , , | moments of inertia of the base for each building |
, | polar moment of inertia and moment of inertia for rocking of each building |
, | stiffness matrices of SSI system for each building |
submatrices of stiffness in x- and y-axis for Building A | |
ith floor stiffness coefficient in longitudinal and transverse directions for Building A | |
jth floor stiffness coefficient in longitudinal and transverse directions for Building B | |
torsional stiffness matrices of Building A in relation to CR and CM | |
, | stiffness of soil springs |
, | generalized mass matrix of SSI systems of each building |
mass of related building | |
mass matrix of superstructure | |
mass at ith floor of Building A | |
mass at jth floor of Building B | |
, | foundation masse |
N | number of stories of Building A |
, | loading vector of SSI system |
SSI forces | |
SSI moments | |
, | radius of gyration in relation to mass center |
radius of a circle having same area as building plan | |
S | number of stories of Building B |
, | SSI torques of buildings |
t | time variable |
, | deformation vector of Buildings A and B |
shear wave velocity of soil | |
x- and y-directional displacement vectors of buildings with SSI effects | |
x- and y-directional displacement vectors of buildings without SSI effects | |
, , , | total displacement vectors of center mass of floors |
, | x- and y-directional displacements of foundations of buildings |
, | ground acceleration records |
constant for determining classical damping | |
impact stiffness parameter | |
, | rotational vector of building with and without SSI effects |
relative displacement influence coefficient with respect to ground | |
relative velocity influence coefficient with respect to ground | |
time step | |
damping ratio related to e | |
friction coefficient during collision | |
circular frequency of applied excitation | |
or column vector with all elements equal to 1 | |
vector of zeros |
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Sliding | Torsion | Rocking | |
---|---|---|---|
Spring | |||
Mass Ratio | |||
Damping Ratio | |||
Coefficient |
Story No. | Story Height , | ||||
---|---|---|---|---|---|
1F | 2.85 | 0.30 | 3.46 | 0.4065 | 5.06 |
2F | 5.7 | 0.30 | 3.46 | 0.4065 | 3.86 |
3F | 8.55 | 0.30 | 3.46 | 0.4065 | 3.86 |
4F | 11.4 | 0.30 | 3.46 | 0.4065 | 3.86 |
5F | 14.25 | 0.30 | 3.46 | - | - |
Cases Frequency | Case I | Case I * | Case IV | Case IV * | RB | RB * | ||
---|---|---|---|---|---|---|---|---|
(Hz) | 0.698 | 0.685 | 0.788 | 0.787 | 0.794 | 0.792 | 0.865 | 0.994 |
(Hz) | 0.783 | 0.787 | 0.932 | 0.931 | 0.941 | 0.940 | 0.837 | 0.990 |
(Hz) | 1.120 | 1.107 | 1.224 | 1.222 | 1.233 | 1.231 | 0.899 | 0.993 |
(Hz) | 1.896 | 1.874 | 1.942 | 1.937 | 1.943 | 1.941 | 0.965 | 0.998 |
(Hz) | 2.227 | 2.175 | 2.301 | 2.297 | 2.306 | 2.303 | 0.944 | 0.997 |
(Hz) | 2.905 | 2.795 | 3.013 | 3.007 | 3.019 | 3.015 | 0.927 | 0.997 |
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Uz, M.E.; Jakubczyk-Gałczyńska, A.; Jankowski, R. Numerical Analysis of Seismic Pounding between Adjacent Buildings Accounting for SSI. Appl. Sci. 2023, 13, 3092. https://doi.org/10.3390/app13053092
Uz ME, Jakubczyk-Gałczyńska A, Jankowski R. Numerical Analysis of Seismic Pounding between Adjacent Buildings Accounting for SSI. Applied Sciences. 2023; 13(5):3092. https://doi.org/10.3390/app13053092
Chicago/Turabian StyleUz, Mehmet Eren, Anna Jakubczyk-Gałczyńska, and Robert Jankowski. 2023. "Numerical Analysis of Seismic Pounding between Adjacent Buildings Accounting for SSI" Applied Sciences 13, no. 5: 3092. https://doi.org/10.3390/app13053092
APA StyleUz, M. E., Jakubczyk-Gałczyńska, A., & Jankowski, R. (2023). Numerical Analysis of Seismic Pounding between Adjacent Buildings Accounting for SSI. Applied Sciences, 13(5), 3092. https://doi.org/10.3390/app13053092