Dual-band bandpass filter with dumbbell shaped defective ground structure

A dumbbell shaped defective ground structure (DGS) is implemented to improve the performance of an existing dual-band bandpass filter topology. The filter design is based on parallel-coupled lines connected to matched transmission lines. Variouspositions and dimensions of dumbbell DGSs are implement...

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Published in:International Journal on Advanced Science, Engineering and Information Technology
Main Author: Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
Format: Article
Language:English
Published: Insight Society 2017
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018513958&doi=10.18517%2fijaseit.7.2.1342&partnerID=40&md5=fd2eb8acaea77cf67d5586c6c863c3fa
id 2-s2.0-85018513958
spelling 2-s2.0-85018513958
Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
Dual-band bandpass filter with dumbbell shaped defective ground structure
2017
International Journal on Advanced Science, Engineering and Information Technology
7
2
10.18517/ijaseit.7.2.1342
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018513958&doi=10.18517%2fijaseit.7.2.1342&partnerID=40&md5=fd2eb8acaea77cf67d5586c6c863c3fa
A dumbbell shaped defective ground structure (DGS) is implemented to improve the performance of an existing dual-band bandpass filter topology. The filter design is based on parallel-coupled lines connected to matched transmission lines. Variouspositions and dimensions of dumbbell DGSs are implemented, and their effects on the filter performance are investigated. It is found that the utilisation of dumbbell shaped DGSs in this topology improve the steepness of the responses for the first and second passbands with centre frequencies of 1.365 and 2.932 GHz respectively. The optimised dimensions of the DGS are 5 x 5 mm2 for both its rectangular slots connected by a 0.5 mm narrow slot width. The optimised positions of the DGSs are located at the centre and the edges of the parallel-coupled lines. The simulated and measured results of the filter are analysed and discussed in this paper.
Insight Society
20885334
English
Article
All Open Access; Hybrid Gold Open Access
author Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
spellingShingle Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
Dual-band bandpass filter with dumbbell shaped defective ground structure
author_facet Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
author_sort Abdul Khalid M.F.; Ismail Khan Z.; Awang Z.; Pasya I.; Ab Wahab N.; Yassin I.M.
title Dual-band bandpass filter with dumbbell shaped defective ground structure
title_short Dual-band bandpass filter with dumbbell shaped defective ground structure
title_full Dual-band bandpass filter with dumbbell shaped defective ground structure
title_fullStr Dual-band bandpass filter with dumbbell shaped defective ground structure
title_full_unstemmed Dual-band bandpass filter with dumbbell shaped defective ground structure
title_sort Dual-band bandpass filter with dumbbell shaped defective ground structure
publishDate 2017
container_title International Journal on Advanced Science, Engineering and Information Technology
container_volume 7
container_issue 2
doi_str_mv 10.18517/ijaseit.7.2.1342
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018513958&doi=10.18517%2fijaseit.7.2.1342&partnerID=40&md5=fd2eb8acaea77cf67d5586c6c863c3fa
description A dumbbell shaped defective ground structure (DGS) is implemented to improve the performance of an existing dual-band bandpass filter topology. The filter design is based on parallel-coupled lines connected to matched transmission lines. Variouspositions and dimensions of dumbbell DGSs are implemented, and their effects on the filter performance are investigated. It is found that the utilisation of dumbbell shaped DGSs in this topology improve the steepness of the responses for the first and second passbands with centre frequencies of 1.365 and 2.932 GHz respectively. The optimised dimensions of the DGS are 5 x 5 mm2 for both its rectangular slots connected by a 0.5 mm narrow slot width. The optimised positions of the DGSs are located at the centre and the edges of the parallel-coupled lines. The simulated and measured results of the filter are analysed and discussed in this paper.
publisher Insight Society
issn 20885334
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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