<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Publishing DTD v1.4 20241031//EN"
        "https://jats.nlm.nih.gov/publishing/1.4/JATS-journalpublishing1-4.dtd">
<article  article-type="research-article"        dtd-version="1.4">
            <front>

                <journal-meta>
                                    <journal-id></journal-id>
            <journal-title-group>
                                                                                    <journal-title>Erzincan University Journal of Science and Technology</journal-title>
            </journal-title-group>
                                        <issn pub-type="epub">2149-4584</issn>
                                                                                            <publisher>
                    <publisher-name>Erzincan Binali Yildirim University</publisher-name>
                </publisher>
                    </journal-meta>
                <article-meta>
                                        <article-id pub-id-type="doi">10.18185/erzifbed.649664</article-id>
                                                                <article-categories>
                                            <subj-group  xml:lang="en">
                                                            <subject>Engineering</subject>
                                                    </subj-group>
                                            <subj-group  xml:lang="tr">
                                                            <subject>Mühendislik</subject>
                                                    </subj-group>
                                    </article-categories>
                                                                                                                                                        <title-group>
                                                                                                                        <trans-title-group xml:lang="en">
                                    <trans-title>Acoustic Add-Drop Filter Design With Phononic Crystals Containing One-Dimensional Periodic Cavities</trans-title>
                                </trans-title-group>
                                                                                                                                                                                                <article-title>Bir Boyutlu Periyodik Kaviteler İçeren Fononik Kristaller ile Akustik Ekle-Bırak Filtresi Tasarımı</article-title>
                                                                                                    </title-group>
            
                                                    <contrib-group content-type="authors">
                                                                        <contrib contrib-type="author">
                                                                    <contrib-id contrib-id-type="orcid">
                                        https://orcid.org/0000-0002-7743-6078</contrib-id>
                                                                <name>
                                    <surname>Biçer</surname>
                                    <given-names>Ahmet</given-names>
                                </name>
                                                                    <aff>BURDUR MEHMET AKİF ERSOY ÜNİVERSİTESİ GÖLHİSAR SAĞLIK HİZMETLERİ MESLEK YÜKSEKOKULU</aff>
                                                            </contrib>
                                                                                </contrib-group>
                        
                                        <pub-date pub-type="pub" iso-8601-date="20191231">
                    <day>12</day>
                    <month>31</month>
                    <year>2019</year>
                </pub-date>
                                        <volume>12</volume>
                                        <issue>3</issue>
                                        <fpage>1678</fpage>
                                        <lpage>1689</lpage>
                        
                        <history>
                                    <date date-type="received" iso-8601-date="20191121">
                        <day>11</day>
                        <month>21</month>
                        <year>2019</year>
                    </date>
                                                    <date date-type="accepted" iso-8601-date="20191219">
                        <day>12</day>
                        <month>19</month>
                        <year>2019</year>
                    </date>
                            </history>
                                        <permissions>
                    <copyright-statement>Copyright © 2008, Erzincan University Journal of Science and Technology</copyright-statement>
                    <copyright-year>2008</copyright-year>
                    <copyright-holder>Erzincan University Journal of Science and Technology</copyright-holder>
                </permissions>
            
                                                                                                <trans-abstract xml:lang="en">
                            <p>Operationand performance of an acoustic add-drop filter which incorporatesone-dimensional cylindrical periodic cavities on a solid surface in airenvironment are numerically investigated. In case of 20 kHz target operationfrequency, a surface band covering this frequency with broad dispersion isdetermined through band structure calculations via the Finite-Element Methodwhen cavities with 5.0 mm period and 2.0 mm radii are embedded into the surfaceby 30% from their centers. Interacting Bloch surface acoustic waves localizedin the cavity and neighboring narrow air region become symmetric and asymmetricmodes of two distinct surface bands overlapping in a particular frequency rangefor two facing surfaces 1.5 periods apart. When a circular ring resonator with67.6 mm radius, incorporating 85 cavities, is placed between the waveguides sothat it is 1.5 period away from each, frequency-domain Finite-Elementsimulations at 20 kHz reveal that drop port output maximum is observed, whereasthrough and add outputs are minimum. Port outputs exhibit a fluctuatingbehavior where the observed peaks appear more frequently with increasingfrequency. A peak of the drop port with 57 Hz width and a quality factor of 387is observed at 22.08 kHz. The proposed acoustic add-drop filter can be utilizedin areas such as acoustic signal processing, acoustic logic and ultrasonicsensors.</p></trans-abstract>
                                                                                                                                    <abstract><p>Katı yüzeyde bir boyuttaperiyodik silindirik kaviteler içeren dalga kılavuzları ve halka çınlaçkullanılarak tasarlanan bir akustik ekle-bırak filtresinin hava ortamındaçalışması ve performansı sayısal olarak incelenmiştir. 20 kHz civarında çalışmahedeflendiğinde, periyodu 5.0 mm olan 2.0 mm yarıçaplı kaviteler yüzeyemerkezlerinden itibaren yarıçapın %30’u kadar gömüldüğünde, Sonlu ElemanlarYöntemi kullanılarak yapılan band yapısı hesaplamaları sonucunda hedef çalışmafrekansını kapsayan geniş dispersiyon sergileyen yüzey bandı belirlenmiştir.Kaviteye ve komşuluğundaki dar bir hava bölgesine lokalize olan etkileşimliBloch yüzey akustik dalgaları, birbirine bakan ve periyodun 1.5 katı uzaklıktaiki yüzey için birbirinden ayrışan ve belirli bir frekans aralığında örtüşeniki adet yüzey bandındaki simetrik ve asimetrik kipler halini almaktadır. Dalgakılavuzları arasına her bir kılavuz ile mesafesi 1.5 periyot olan ve toplam 85kavite içeren 67.6 mm yarıçaplı dairesel halka çınlaç konulduğunda, frekansa bağlıSonlu Elemanlar Yöntemi simülasyonları ile 20 kHz frekansında bırak portuçıkışında maksimum gözlenirken, direkt ve ekle portlarından minimum çıkışbelirlenmiştir. Port çıkışları frekansa bağlı olarak dalgalı seyir izlemekte vegözlenen pikler artan frekans ile sıklaşmaktadır. 22.08 kHz frekansında bırakportu çıkışında genişliği 57 Hz ve kalite faktörü 387 olan pik gözlenmektedir.Önerilen akustik ekle-bırak filtresi akustik sinyal işleme, akustik mantık veultrasonik sensörler gibi alanlarda kullanılabilir.</p></abstract>
                                                            
            
                                                                                        <kwd-group>
                                                    <kwd>Yüzey akustik dalgaları</kwd>
                                                    <kwd>  halka çınlaç</kwd>
                                                    <kwd>  ekle-bırak filtresi</kwd>
                                                    <kwd>  kip eşleşmesi</kwd>
                                                    <kwd>  vuru</kwd>
                                                    <kwd>  Sonlu Elemanlar Yöntemi</kwd>
                                            </kwd-group>
                            
                                                <kwd-group xml:lang="en">
                                                    <kwd>Surface acoustic waves</kwd>
                                                    <kwd>  ring resonator</kwd>
                                                    <kwd>  add-drop filter</kwd>
                                                    <kwd>  mode coupling</kwd>
                                                    <kwd>  </kwd>
                                                    <kwd>   beat</kwd>
                                                    <kwd>  Finite Element Method.</kwd>
                                            </kwd-group>
                                                                                                                                        </article-meta>
    </front>
    <back>
                            <ref-list>
                                    <ref id="ref1">
                        <label>1</label>
                        <mixed-citation publication-type="journal">Christensen, J., Fernandez-Dominguez, A. I., de Leon-Perez, F., Martin-Moreno, L., ve Garcia-Vidal, F. J. 2007. “Collimation of sound assisted by acoustic surface waves”, Nature Physics 3(12), 851.</mixed-citation>
                    </ref>
                                    <ref id="ref2">
                        <label>2</label>
                        <mixed-citation publication-type="journal">Christensen, J., Martín-Moreno, L., ve Garcia-Vidal, F. J. 2010. “Enhanced acoustical transmission and beaming effect through a single aperture”, Physical Review B, 81(17), 174104.</mixed-citation>
                    </ref>
                                    <ref id="ref3">
                        <label>3</label>
                        <mixed-citation publication-type="journal">Cicek, A., Arslan, Y., Trak, D., Okay, F. C., Kaya, O. A., Korozlu, N., ve Ulug, B. 2019. “Gas sensing through evanescent coupling of spoof surface acoustic waves”, Sensors and Actuators B: Chemical, 288, 259-265.</mixed-citation>
                    </ref>
                                    <ref id="ref4">
                        <label>4</label>
                        <mixed-citation publication-type="journal">COMSOL, Inc. 2019. COMSOL Multiphysics Modeling Software, URL: https://comsol.com , Son erişim tarihi: 21/11/2019.</mixed-citation>
                    </ref>
                                    <ref id="ref5">
                        <label>5</label>
                        <mixed-citation publication-type="journal">Cui, J., Liu, J., Mao, Y., Li, Y., ve Liu, X. 2017. “Realization of manipulating acoustic surface waves radiation direction with rectangular-groove structure”, AIP Advances, 7(11), 115301.</mixed-citation>
                    </ref>
                                    <ref id="ref6">
                        <label>6</label>
                        <mixed-citation publication-type="journal">He, Z., Jia, H., Qiu, C., Ye, Y., Hao, R., Ke, M., ve Liu, Z. 2011. “Nonleaky surface acoustic waves on a textured rigid surface”, Physical Review B, 83(13), 132101.</mixed-citation>
                    </ref>
                                    <ref id="ref7">
                        <label>7</label>
                        <mixed-citation publication-type="journal">Jia, H., Lu, M., Ni, X., Bao, M., ve Li, X. 2014. “Spatial separation of spoof surface acoustic waves on the graded groove grating”, Journal of Applied Physics, 116(12), 124504.</mixed-citation>
                    </ref>
                                    <ref id="ref8">
                        <label>8</label>
                        <mixed-citation publication-type="journal">Jia, H., Lu, M., Wang, Q., Bao, M., ve Li, X. 2013. “Subwavelength imaging through spoof surface acoustic waves on a two-dimensional structured rigid surface”, Applied Physics Letters, 103(10), 103505.</mixed-citation>
                    </ref>
                                    <ref id="ref9">
                        <label>9</label>
                        <mixed-citation publication-type="journal">Kelders, L., Allard, J. F., ve Lauriks, W. 1998. “Ultrasonic surface waves above rectangular-groove gratings”, The Journal of the Acoustical Society of America, 103(5), 2730-2733.</mixed-citation>
                    </ref>
                                    <ref id="ref10">
                        <label>10</label>
                        <mixed-citation publication-type="journal">Khelif, A., Aoubiza, B., Mohammadi, S., Adibi, A., ve Laude, V. 2006. “Complete band gaps in two-dimensional phononic crystal slabs”, Physical Review E, 74(4), 046610.</mixed-citation>
                    </ref>
                                    <ref id="ref11">
                        <label>11</label>
                        <mixed-citation publication-type="journal">Korozlu, N., Kaya, O. A., Cicek, A., ve Ulug, B. 2019. “Self-collimation and slow-sound effect of spoof surface acoustic waves”, Journal of Applied Physics, 125(7), 074901.</mixed-citation>
                    </ref>
                                    <ref id="ref12">
                        <label>12</label>
                        <mixed-citation publication-type="journal">Lu, J., Qiu, C., Ke, M., ve Liu, Z. 2015. “Directional excitation of the designer surface acoustic waves”, Applied Physics Letters, 106(20), 201901.</mixed-citation>
                    </ref>
                                    <ref id="ref13">
                        <label>13</label>
                        <mixed-citation publication-type="journal">Mai, T. T., Hsiao, F. L., Lee, C., Xiang, W., Chen, C. C., ve Choi, W. K. 2011. “Optimization and comparison of photonic crystal resonators for silicon microcantilever sensors”, Sensors and Actuators A: Physical, 165(1), 16-25.</mixed-citation>
                    </ref>
                                    <ref id="ref14">
                        <label>14</label>
                        <mixed-citation publication-type="journal">Qiang, Z., Zhou, W., ve Soref, R. A. 2007. “Optical add-drop filters based on photonic crystal ring resonators”, Optics Express, 15(4), 1823-1831.</mixed-citation>
                    </ref>
                                    <ref id="ref15">
                        <label>15</label>
                        <mixed-citation publication-type="journal">Rostami-Dogolsara, B., Moravvej-Farshi, M. K., ve Nazari, F. 2016. “Acoustic add-drop filters based on phononic crystal ring resonators”, Physical Review B, 93(1), 014304.</mixed-citation>
                    </ref>
                                    <ref id="ref16">
                        <label>16</label>
                        <mixed-citation publication-type="journal">Sarkaleh, A. K., Lahijani, B. V., Saberkari, H., ve Esmaeeli, A. 2017. “Optical ring resonators: a platform for biological sensing applications”, Journal of Medical Signals and Sensors, 7(3), 185.</mixed-citation>
                    </ref>
                                    <ref id="ref17">
                        <label>17</label>
                        <mixed-citation publication-type="journal">Schwan, L., Geslain, A., Romero-García, V., ve Groby, J. P. 2017. “Complex dispersion relation of surface acoustic waves at a lossy metasurface”, Applied Physics Letters, 110(5), 051902.</mixed-citation>
                    </ref>
                                    <ref id="ref18">
                        <label>18</label>
                        <mixed-citation publication-type="journal">Torrent, D., ve Sánchez-Dehesa, J. 2012. “Acoustic analogue of graphene: observation of Dirac cones in acoustic surface waves”, Physical Review Letters, 108(17), 174301.</mixed-citation>
                    </ref>
                                    <ref id="ref19">
                        <label>19</label>
                        <mixed-citation publication-type="journal">Xie, S., Ouyang, S., He, Z., Wang, X., Deng, K., ve Zhao, H. 2018. “Bending and splitting of spoof surface acoustic waves through structured rigid surface”, Results in Physics, 8, 52-56.</mixed-citation>
                    </ref>
                                    <ref id="ref20">
                        <label>20</label>
                        <mixed-citation publication-type="journal">Yaffe, H. H., Henry, C. H., Serbin, M. R., ve Cohen, L. G. 1994. “Resonant couplers acting as add-drop filters made with silica-on-silicon waveguide technology”, Journal of Lightwave Technology, 12(6), 1010-1014.</mixed-citation>
                    </ref>
                                    <ref id="ref21">
                        <label>21</label>
                        <mixed-citation publication-type="journal">Ye, Y., Ke, M., Li, Y., Wang, T., ve Liu, Z. 201). “Focusing of spoof surface-acoustic-waves by a gradient-index structure”, Journal of Applied Physics, 114(15), 154504.</mixed-citation>
                    </ref>
                                    <ref id="ref22">
                        <label>22</label>
                        <mixed-citation publication-type="journal">Zhou, Y., Lu, M. H., Feng, L., Ni, X., Chen, Y. F., Zhu, Y. Y., Zhu, S. N., ve Ming, N. B. 2010. “Acoustic surface evanescent wave and its dominant contribution to extraordinary acoustic transmission and collimation of sound”, Physical Review Letters, 104(16), 164301.</mixed-citation>
                    </ref>
                                    <ref id="ref23">
                        <label>23</label>
                        <mixed-citation publication-type="journal">Zhu, J., Chen, Y., Zhu, X., Garcia-Vidal, F. J., Yin, X., Zhang, W., ve Zhang, X. 2013. “Acoustic rainbow trapping”, Scientific Reports, 3, 1728.</mixed-citation>
                    </ref>
                            </ref-list>
                    </back>
    </article>
