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Cover image for Broadband planar antennas : design and applications
Title:
Broadband planar antennas : design and applications
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Publication Information:
Chichester, England : John Wiley & Sons, 2006
ISBN:
9780470871744
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30000010093205 TK7871.6 C43 2006 Open Access Book Book
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Summary

Summary

The increasing demand for wireless communications has revolutionised the lifestyle of today's society and one of the key components of wireless technology is antenna design. Broadband planar antennas are the newest generation of antennas boasting the attractive features required, such as broad operating bandwidth, low profile, light weight, low cost and ease of integration into arrays or Radio Frequency (RF) circuits, to make them ideal components of modern communications systems. Research into small and broadband antennas has been spurred by the rapid development of portable wireless communication devices such as cell phones, laptops and personal digital assistants.

This all-encompassing volume, Broadband Planar Antennas: Design and Applications, systematically describes the techniques for all planar antennas from microstrip patch antennas, suspended plate antennas and planar inverted-L/F antennas to planar dipole antennas. Also discussed are some of the most recent outcomes such as broadband antenna issues in promising ultra-wideband applications.

Clearly describes the fundamentals of planar antennas and categorises them according to their radiation characteristics Introduces the advanced progress in broadband planar antennas for modern wireless communications Includes a wealth of case studies, design guidelines, figures and tables

This text is essential reading for antenna, RF and microwave engineers and manufacturers within the telecommunications industry. Its highly accessible approach will also appeal to researchers, postgraduate students and academic lecturers.


Author Notes

Dr Zhi Ning Chen is the Radio Systems Department Manager at the Institute for Infocomm Research in Singapore and is concurrently teaching at the National University of Singapore. Dr Chen has extensive R&D and teaching experience in wireless communications, electromagnetic applications, antennas and propagation. His current research interests are in antennas for cellular systems, WLANs, portable terminals and UWB radio systems.

Dr Michael Chia, is the Division Director for Communications and Devices at the Institute for Infocomm Research in Singaporewhich specialises in the R&D of novel radio technology for wireless communications. Dr Chia was a member in the Panel of Public Service Funding-PSF of the Agency for Science, Technology & Research and has been listed in Marquis Who's Who in Science and Engineering.


Table of Contents

Forewordp. ix
Prefacep. xi
Acknowledgementsp. xiii
1 Planar Radiatorsp. 1
1.1 Introductionp. 1
1.2 Bandwidth Definitionsp. 2
1.2.1 Impedance Bandwidthp. 3
1.2.2 Pattern Bandwidthp. 3
1.2.3 Polarization or Axial-ratio Bandwidthp. 4
1.2.4 Summaryp. 5
1.3 Planar Antennasp. 5
1.3.1 Suspended Plate Antennasp. 5
1.3.2 Bent Plate Antennasp. 10
1.4 Overview of this Bookp. 14
Referencesp. 15
2 Broadband Microstrip Patch Antennasp. 17
2.1 Introductionp. 17
2.2 Important Features of Microstrip Patch Antennasp. 20
2.2.1 Patch Shapesp. 20
2.2.2 Substratesp. 20
2.2.3 Feeding Structuresp. 21
2.2.4 Example: Rectangular Microstrip Patch Antennasp. 23
2.3 Broadband Techniquesp. 31
2.3.1 Lowering the Qp. 31
2.3.2 Using an Impedance Matching Networkp. 32
2.3.3 Case Study: Microstrip Patch Antenna with Impedance Matching Stubp. 34
2.3.4 Introducing Multiple Resonancesp. 37
2.3.5 Case Study: Microstrip Patch Antenna with Stacked Elementsp. 39
Referencesp. 43
3 Broadband Suspended Plate Antennasp. 47
3.1 Introductionp. 47
3.2 Techniques to Broaden Impedance Bandwidthp. 49
3.2.1 Capacitive Loadp. 49
3.2.2 Slotted Platesp. 51
3.2.3 Case Study: SPA with an [Omega]-shaped Slotp. 52
3.2.4 Electromagnetic Couplingp. 56
3.2.5 Nonplanar Platesp. 59
3.2.6 Vertical Feed Sheetp. 62
3.3 Techniques to Enhance Radiation Performancep. 65
3.3.1 Radiation Characteristics of SPAsp. 66
3.3.2 SPA with Dual Feed Probesp. 72
3.3.3 Case Study: Center-concaved SPA with Dual Feed Probesp. 75
3.3.4 SPA with Half-wavelength Probe-fed Stripp. 77
3.3.5 SPA with Probe-fed Center Slotp. 81
3.3.6 Case Study: Center-fed SPA with Double L-shaped Probesp. 92
3.3.7 SPA with Slots and Shorting Stripsp. 100
3.4 Arrays with Suspended Plate Elementsp. 111
3.4.1 Mutual Coupling between Two Suspended Plate Elementsp. 112
3.4.2 Reduced-size Array above Double-tiered Ground Planep. 117
Referencesp. 131
4 Planar Inverted-L/F Antennasp. 135
4.1 Introductionp. 135
4.2 The Inverted-L/F Antennap. 137
4.3 Broadband Planar Inverted-F/L Antennap. 141
4.3.1 Planar Inverted-F Antennap. 141
4.3.2 Planar Inverted-L Antennap. 144
4.4 Case Studiesp. 154
4.4.1 Handset Antennasp. 154
4.4.2 Laptop Computer Antennasp. 171
Referencesp. 174
5 Planar Monopole Antennas and Ultra-wideband Applicationsp. 179
5.1 Introductionp. 179
5.2 Planar Monopole Antennap. 181
5.2.1 Planar Bi-conical Structurep. 181
5.2.2 Planar Monopolesp. 181
5.2.3 Roll Monopolesp. 183
5.2.4 EMC Feeding Methodsp. 192
5.3 Planar Antennas for UWB Applicationsp. 193
5.3.1 Ultra-wideband Technologyp. 193
5.3.2 Considerations for UWB Antennas and Source Pulsesp. 195
5.3.3 Planar UWB Antenna and Assessmentp. 212
5.4 Case Studiesp. 218
5.4.1 Planar UWB Antenna Printed on a PCBp. 220
5.4.2 Planar UWB Antenna Embedded into a Laptop Computerp. 227
5.4.3 Planar Directional UWB Antennap. 232
Referencesp. 237
Indexp. 241
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