band energy
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2022 ◽  
Vol 165 ◽  
pp. 108336
Author(s):  
Mian Zhang ◽  
Decai Li ◽  
KeSheng Wang ◽  
Qing Li ◽  
Yue Ma ◽  
...  

2021 ◽  
pp. 174702182110371
Author(s):  
Scott Beveridge ◽  
Estefanía Cano ◽  
Steffen A. Herff

Equalisation, a signal processing technique commonly used to shape the sound of music, is defined as the adjustment of the energy in specific frequency components of a signal. In this work we investigate the effects of equalisation on preference and sensorimotor synchronisation in music. Twenty-one participants engaged in a goal-directed upper body movement in synchrony with stimuli equalised in three low-frequency sub-bands (0 - 50 Hz, 50 - 100 Hz, 100 - 200 Hz). To quantify the effect of equalisation, music features including spectral flux, pulse clarity, and beat confidence were extracted from seven differently equalised versions of music tracks - one original and six manipulated versions for each music track. These music tracks were then used in a movement synchronisation task. Bayesian mixed effects models revealed different synchronisation behaviours in response to the three sub-bands considered. Boosting energy in the 100 - 200 Hz sub-band reduced synchronisation performance irrespective of the sub-band energy of the original version. An energy boost in the 0 - 50 Hz band resulted in increased synchronisation performance only when the sub-band energy of the original version was high. An energy boost in the 50 - 100 Hz band increased synchronisation performance only when the sub-band energy of the original version was low. Boosting the energy in any of the three subbands increased preference regardless of the energy of the original version. Our results provide empirical support for the importance of low-frequency information for sensorimotor synchronisation and suggest that the effect of equalisation on preference and synchronisation are largely independent of one another.


2021 ◽  
Vol 139 ◽  
pp. 111285
Author(s):  
P. Bais ◽  
M.T. Caldes ◽  
C. Guillot-Deudon ◽  
Adèle Renaud ◽  
M. Boujtita ◽  
...  

Nano Energy ◽  
2021 ◽  
pp. 106385
Author(s):  
Biao Wang ◽  
Zhihe Long ◽  
Ying Hong ◽  
Qiqi Pan ◽  
Weikang Lin ◽  
...  
Keyword(s):  

2021 ◽  
Vol 118 (24) ◽  
pp. 241602
Author(s):  
F. Ferreira ◽  
S. J. Magorrian ◽  
V. V. Enaldiev ◽  
D. A. Ruiz-Tijerina ◽  
V. I. Fal'ko

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Binbin Jiang ◽  
Yong Yu ◽  
Hongyi Chen ◽  
Juan Cui ◽  
Xixi Liu ◽  
...  

AbstractWe demonstrate that the thermoelectric properties of p-type chalcogenides can be effectively improved by band convergence and hierarchical structure based on a high-entropy-stabilized matrix. The band convergence is due to the decreased light and heavy band energy offsets by alloying Cd for an enhanced Seebeck coefficient and electric transport property. Moreover, the hierarchical structure manipulated by entropy engineering introduces all-scale scattering sources for heat-carrying phonons resulting in a very low lattice thermal conductivity. Consequently, a peak zT of 2.0 at 900 K for p-type chalcogenides and a high experimental conversion efficiency of 12% at ΔT = 506 K for the fabricated segmented modules are achieved. This work provides an entropy strategy to form all-scale hierarchical structures employing high-entropy-stabilized matrix. This work will promote real applications of low-cost thermoelectric materials.


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