Title of article :
Finite element code-based modeling of a multi-feature isolation system and passive alleviation of possible inner pounding
Author/Authors :
Ismail، Mohammed نويسنده . , , Lo´pez-Almansa، Francesc نويسنده . , , Benavent-Climent، Amadeo نويسنده . , , Pujades-Beneit، Luis G. نويسنده . ,
Issue Information :
دوفصلنامه با شماره پیاپی 3 سال 2014
Abstract :
The existing seismic isolation systems are based
on well-known and accepted physical principles, but they are
still having some functional drawbacks. As an attempt of
improvement, the Roll-N-Cage (RNC) isolator has been
recently proposed. It is designed to achieve a balance in
controlling isolator displacement demands and structural
accelerations. It provides in a single unit all the necessary
functions of vertical rigid support, horizontal flexibility with
enhanced stability, resistance to low service loads and minor
vibration, and hysteretic energy dissipation characteristics. It
is characterized by two unique features that are a self-braking
(buffer) and a self-recentering mechanism. This paper presents
an advanced representation of the main and unique
features of the RNC isolator using an available finite element
code called SAP2000. The validity of the obtained SAP2000
model is then checked using experimental, numerical and
analytical results. Then, the paper investigates the merits and
demerits of activating the built-in buffer mechanism on both
structural pounding mitigation and isolation efficiency. The
paper addresses the problem of passive alleviation of possible
inner pounding within the RNC isolator, which may
arise due to the activation of its self-braking mechanism
under sever excitations such as near-fault earthquakes. The
results show that the obtained finite element code-based
model can closely match and accurately predict the overall
behavior of the RNC isolator with effectively small errors.
Moreover, the inherent buffer mechanism of the RNC isolator
could mitigate or even eliminate direct structure-tostructure
pounding under severe excitation considering
limited septation gaps between adjacent structures. In addition,
the increase of inherent hysteretic damping of the RNC
isolator can efficiently limit its peak displacement together
with the severity of the possibly developed inner pounding
and, therefore, alleviate or even eliminate the possibly arising
negative effects of the buffer mechanism on the overall
RNC-isolated structural responses.
Journal title :
International Journal of Advanced Structural Engineering
Journal title :
International Journal of Advanced Structural Engineering