Topological rainbow trapping and broadband piezoelectric energy harvesting of acoustic waves in gradient phononic crystals with coupled interfaces
Xiaolei Tang,
No information about this author
Xue-Qian Zhang,
No information about this author
Tian-Xue Ma
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et al.
Applied Acoustics,
Journal Year:
2025,
Volume and Issue:
233, P. 110630 - 110630
Published: Feb. 27, 2025
Language: Английский
Enabling sequential logic leveraging time delays of thin-walled soft matter
Nan Yang,
No information about this author
K. Huang,
No information about this author
Zheng Qian
No information about this author
et al.
Thin-Walled Structures,
Journal Year:
2025,
Volume and Issue:
209, P. 112968 - 112968
Published: Jan. 16, 2025
Language: Английский
Elastic dislocation states of full-polarization micromechanical metamaterials
Yuyang Chen,
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Boqing Lei,
No information about this author
Ying Wu
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et al.
Thin-Walled Structures,
Journal Year:
2025,
Volume and Issue:
unknown, P. 113270 - 113270
Published: April 1, 2025
Language: Английский
A quasi-zero-stiffness metastructure for concurrent low-frequency vibration attenuation and energy harvesting
Yaoqiang Shu,
No information about this author
Kai Wang,
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Tingting Chen
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et al.
Thin-Walled Structures,
Journal Year:
2025,
Volume and Issue:
unknown, P. 113371 - 113371
Published: April 1, 2025
Language: Английский
Wave propagation characteristics of controllable gyroscopic chiral metamaterials
Mechanical Systems and Signal Processing,
Journal Year:
2025,
Volume and Issue:
233, P. 112811 - 112811
Published: May 1, 2025
Language: Английский
Numerical Investigation of Ultra-Wide Low-Frequency Wave Attenuation Using Seismic Metamaterials with Auxetic Slender Strips
Crystals,
Journal Year:
2024,
Volume and Issue:
15(1), P. 13 - 13
Published: Dec. 26, 2024
Seismic
metamaterials
are
an
emerging
vibration-damping
technology,
yet
concentrating
the
bandgap
in
low-frequency
range
remains
challenging
due
to
constraints
imposed
by
lattice
size.
In
this
study,
we
numerically
investigated
seismic
connected
auxetic
(negative
Poisson’s
ratio)
slender
strips,
which
exhibit
exceptionally
wide
band
gap
for
vibration
isolation.
Using
a
finite
element
method,
first
performed
comparative
analysis
of
several
representative
metamaterial
configurations.
The
results
showed
that
thin
strip-connected
steel
column
structure
demonstrated
outstanding
performance,
with
complete
starting
at
1.61
Hz,
ending
80.40
spanning
width
78.79
and
achieving
relative
bandwidth
192.15%.
Notably,
while
most
existing
designs
feature
constants
ten-meter
(with
smallest
around
two
meters),
our
proposed
achieves
these
constant
only
one
meter.
We
further
analyzed
transmission
characteristics
structure,
both
without
concrete
filling.
Interestingly,
significant
attenuation,
approaching
70
dB,
was
observed
below
(approximately
0.22–1.17
Hz),
even
use
concrete.
By
comparing
flexural
wave
spectrum,
attributed
attenuation
primarily
presence
gap,
phenomenon
often
overlooked
previous
studies.
This
lower
frequencies
highlights
potential
effectively
reducing
energy.
To
enhance
number
periods
propagation
direction
can
be
increased.
Additionally,
systematically
explored
influence
geometric
parameters
on
gap.
found
optimal
were
achieved
strip
length
0.05
m,
its
between
0.1
m.
Our
findings
underscore
critical
role
strips
broadband
approach
presented
along
discovery
gaps,
provides
valuable
insights
engineering
other
applications
requiring
effective
reduction
strategies.
Language: Английский