2021
DOI: 10.1007/978-981-16-1781-2_89
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Design of an On-Body Rectangular Microstrip Patch Antenna for the Diagnosis of Breast Cancer Using S-Band

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Cited by 9 publications
(2 citation statements)
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“…Instead of a smooth rise, the gain and efficiency curves of the antenna showed a ripple at 2.7 GHz. 23,24 This was due to the change in impedance caused by the stretching of the purple copper filament tows during the weaving process and the unevenness of the edges of the radiating elements, both of which caused uncertain losses and interference as ripples in the gain and efficiency curves. Between 2.65 GHz–2.75 GHz antenna gain was around 7 dB or even more than 7 dB, the efficiency was more than 60%, which proved that the antenna band was still relatively wide.…”
Section: Resultsmentioning
confidence: 99%
“…Instead of a smooth rise, the gain and efficiency curves of the antenna showed a ripple at 2.7 GHz. 23,24 This was due to the change in impedance caused by the stretching of the purple copper filament tows during the weaving process and the unevenness of the edges of the radiating elements, both of which caused uncertain losses and interference as ripples in the gain and efficiency curves. Between 2.65 GHz–2.75 GHz antenna gain was around 7 dB or even more than 7 dB, the efficiency was more than 60%, which proved that the antenna band was still relatively wide.…”
Section: Resultsmentioning
confidence: 99%
“…Kim et al reported the dimensions of their design plus the results obtained such as cross polarization, gain and envelope correction coefficient [28]. Islam et al [29] stressed on the need for design improvement in the field of breast cancer detection and how their design has been optimized for that requirement. They spelt out the frequency of operation and the parameters being used for the simulations inclusive of the results such as bandwidth, radiation efficiency and return loss, obtained through the simulations.…”
Section: -Literature Reviewmentioning
confidence: 99%