transfer matrix approach
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Algorithms ◽  
2021 ◽  
Vol 15 (1) ◽  
pp. 13
Author(s):  
Mikhail Alexandrovich Padalko ◽  
Yuriy Andreevich Shevchenko ◽  
Vitalii Yurievich Kapitan ◽  
Konstantin Valentinovich Nefedev

A scheme for parallel computation of the two-dimensional Edwards—Anderson model based on the transfer matrix approach is proposed. Free boundary conditions are considered. The method may find application in calculations related to spin glasses and in quantum simulators. Performance data are given. The scheme of parallelisation for various numbers of threads is tested. Application to a quantum computer simulator is considered in detail. In particular, a parallelisation scheme of work of quantum computer simulator.


2021 ◽  
Vol 136 (6) ◽  
Author(s):  
Alfonso Maiellaro ◽  
Francesco Romeo ◽  
Roberta Citro

AbstractWe study the topological phase transitions of a Kitaev chain frustrated by the addition of a single long-range hopping. In order to study the topological properties of the resulting legged-ring geometry (Kitaev tie model), we generalize the transfer matrix approach through which the emergence of Majorana edge modes is analyzed. We find that geometric frustration gives rise to a topological phase diagram in which non-trivial phases alternate with trivial ones at varying the range of the hopping and the chemical potential. Robustness to disorder of non-trivial phases is also proven. Moreover, geometric frustration effects persist when translational invariance is restored by considering a multiple-tie system. These findings shed light on an entire class of experimentally realizable topological systems with long-range couplings.


Author(s):  
AT Fabro ◽  
H Meng ◽  
D Chronopoulos

Metastructures are typically composed of periodic unit cells designed to present enhanced dynamic properties in which either single or multiple resonators are periodically distributed. Even though the periodic metamaterials can obtain bandgaps with outstanding vibration attenuation, the widths of bandgaps can still be narrow for some practical applications. Rainbow metamaterials have been proposed based on gradient or random profiles to provide further improved attenuation. Nonetheless, the effects of correlated random disorder on their attenuation performance remains an open challenge. This work presents an investigation on the effects of correlated disorder on the vibration attenuation of rainbow metamaterials. An analytical model using the transfer matrix approach is used to calculate the receptance functions in a finite length metastructure composed of evenly spaced non-symmetric resonators attached to a beam with Π-shaped cross-section, thus a multi-frequency metastructure. The correlated disorder is modelled using random fields and an analytical expression of the Karhunen-Loève expansion is used such that spatial correlation on the resonator properties is modified by various correlation lengths, i.e., the level of spatial smoothness. Individual samples of random fields are used to investigate the effects of the correlated disorder in the vibration attenuation of a multi-frequency metastructure. It is shown that the bandgap can be further widened when compared to uncorrelated disorder. The obtained results indicates that a combination of the gradient profile with some level of disorder, typically resulting from random fields with larger correlation lengths, tends to give improved vibration attenuation when compared to a optimized gradient rainbow metamaterial. It opens new and innovative ways for the design of broadband rainbow metastructures for vibration attenuation.


2020 ◽  
Vol 28 (24) ◽  
pp. 35761
Author(s):  
Hammid AL-Ghezi ◽  
Rudra Gnawali ◽  
Partha P. Banerjee ◽  
Lirong Sun ◽  
Jonathan Slagle ◽  
...  

2020 ◽  
Vol 109 ◽  
pp. 110012
Author(s):  
Leandro L. Missoni ◽  
Guillermo P. Ortiz ◽  
María Luz Martínez Ricci ◽  
Victor J. Toranzos ◽  
W. Luis Mochán

2020 ◽  
Vol 19 (6-8) ◽  
pp. 310-323
Author(s):  
Lara Flanagan ◽  
David Heaphy ◽  
John Kennedy ◽  
Raphaël Leiba ◽  
Henry Rice

The sound absorptive performance of a proposed “meta-liner” are investigated in this paper. The structure is composed of closely placed plates connected by openings at alternating locations in a stacked format. This system presents multiple band gaps with high absorption and sub-wavelength behaviour (sample thickness equals 0.04 λ), achieved through tortuosity within the design. The acoustic response of the single layer is obtained numerically and with experimental verification under normal incidence. The repeating cellular design allows efficiencies in the viscothermal numerical analysis and using a transfer matrix approach, it is demonstrated that the response of the overall system may be efficiently predicted from a detailed model of a unit cell. Both the transfer matrix method and a full viscothermal model are validated against experimental data as a function of system depth. The analysis gives very satisfactory results which could form the basis for future designs.


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