| Literature DB >> 33922053 |
Shahid M Ali1, Cheab Sovuthy1, Sima Noghanian2,3, Zulfiqur Ali4, Qammer H Abbasi5, Muhammad A Imran5,6, Tale Saeidi1, Soeung Socheatra1.
Abstract
The human body is an extremely challenging environment for wearable antennas due to the complex antenna-body coupling effects. In this article, a compact flexible dual-band planar meander line monopole antenna (MMA) with a truncated ground plane made of multiple layers of standard off-the-shelf materials is evaluated to validate its performance when worn by different subjects to help the designers who are shaping future complex on-/off-body wireless devices. The antenna was fabricated, and the measured results agreed well with those from the simulations. As a reference, in free-space, the antenna provided omnidirectional radiation patterns (ORP), with a wide impedance bandwidth of 1282.4 (450.5) MHz with a maximum gain of 3.03 dBi (4.85 dBi) in the lower (upper) bands. The impedance bandwidth could reach up to 688.9 MHz (500.9 MHz) and 1261.7 MHz (524.2 MHz) with the gain of 3.80 dBi (4.67 dBi) and 3.00 dBi (4.55 dBi), respectively, on the human chest and arm. The stability in results shows that this flexible antenna is sufficiently robust against the variations introduced by the human body. A maximum measured shift of 0.5 and 100 MHz in the wide impedance matching and resonance frequency was observed in both bands, respectively, while an optimal gap between the antenna and human body was maintained. This stability of the working frequency provides robustness against various conditions including bending, movement, and relatively large fabrication tolerances.Entities:
Keywords: SAR; WBAN; on- and off-body communications; wearable antenna
Year: 2021 PMID: 33922053 PMCID: PMC8143588 DOI: 10.3390/mi12050475
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1A general healthcare architecture for integrated meander line antenna. WPPU: wireless patient portable unit; WAPU: wireless-access point unit; LAN: local area network; QoS: quality of service [7].
Comparison of operating bands, materials, size, bandwidth (MHz), bending effect, and specific absorption rate (SAR) against other flexible antennas published in the literature.
| Ref. | Frequency | Material | Size | Bandwidth | SAR (W/Kg) | Description |
|---|---|---|---|---|---|---|
| [ | 2.4 | Fully Textile (Multiple Layers) | 50 × 57 | 140.0 | 0.34 (10 g) | Fully-textile, large size, single band. Not fully tested on the body. |
| [ | 2.5/4.2/5.5/6.8 | Copper/FR4 | 40 × 40 | 70/90/350/710 | NA | Multiband, small size, not fully textile. Might be difficult to fabricate. |
| [ | 2.4/5.2 | Felt/ShieldIt | 50 × 50 | 85/200 (Free Space) | 0.2/0.15 | Fully textile, dual-band, small size, measured on body, use of metamaterial might make it difficult to fabricate. |
| [ | 2.5 | ShieldIt/(Jeans Cotton) | 50 × 60 | 667 | NA | Fully textile, small size, single band, Not tested on the body. |
| [ | 2.4 | Felt/Copper Foil | 85×70 | 270 | NA | Fully flexible, single band, large size, mostly evaluated performance by substrate thickness. |
| [ | 2.075 to 2.625 | Jeans/Copper Foil | 38 × 50.8 | 550 | 3.03 | Fully flexible, small size, use of frequency selective surface might make it difficult to fabricate, single band, not fully tested on the body and under bending. |
| [ | 2.4/5.5 | Felt/ShieldIt | 82 × 72 | 132/422 | 0.16/0.2 | Fully textile, dual bands, large size, not fully tested on the body. |
| [ | 2.4 GHz | Felt/ShieldIt Super | 80 × 100 | 101 Free Space | 2.88/0.35 | Fully flexible, single-band, not fully tested on the body. Used for exposure to the physiological parameters. |
| [ | 2.45 | Polyphenylene Ether (PPE)/Copper | 50 × 50 | 120 (On-Body) | 0.6414/1.524 | Large size, single band. Not flexible, not fully tested on the body. |
| [ | 2.45 | Felt/ShieldIt | 40 × 60 | 720 (Free space) | NA | Fully flexible, single-band, large size, not fully tested on the body. |
|
| 2.20–3.00/5.60–6.00 | Substrate (Felt)/Copper Tape/ShieldIt (Patch and Ground) | 37.20 × 50.0 | 1282.4/450.5 | On-Chest | Fully flexible, compact size, dual-band, tested in free-space and on the body with various bending and wet conditions. High stability and high degree of isolation in two bands. |
Figure 2Design and dimensions of the planar meander line antenna, (dimensions are given in mm): (a) the top side; (b) the bottom side; (c) the insulation layer; and (d) the fabricated antenna.
The dimensions of the proposed meander line monopole antenna.
| Symbols | Dimensions (mm) |
|---|---|
| a | 50.00 |
| b | 37.20 |
| c | 40.20 |
| d | 8.49 |
| e | 0.73 |
| f | 2.38 |
| g | 1.00 |
| h | 14.13 |
| i | 37.20 |
| j | 22.00 |
Summary of the antenna’s performance measures.
| Characteristics | Dual-Band Monopole Meander-Line Antenna (Lower/Upper Band) | ||
|---|---|---|---|
| Antenna Parameters | Free-Space | On-Chest | On-Arm |
| Simulated S11 (dB) at the Center Frequency | −21.02/−17.00 | −17.73/−17.00 | −25.20/−25.00 |
| Measured S11 (dB) at the Center Frequency | −21.00/−19.00 | −23.00/−19.00 | −25.00/−20.00 |
| Simulated and Measured Center Frequency (GHz) | 2.2 and 5.6/3.0 and 5.6-6.0 | 2.3 and 5.7/3.0 and 6.0 | 2.2 and 5.7/3.0 and 6.0 |
| Simulated Bandwidth (MHz) | 1282.4 and 450.5 | 688.9 and 500.9 | 1261.7 and 524.2 |
| Measured Bandwidth (MHz) | 1255.0 and 430.2 | 671.9 and 475.2 | 1243.1 and 501.1 |
| Simulated Gain (dBi) | 3.03/4.85 | 3.80/4.67 | 3.00/4.55 |
| Measured Gain (dBi) | 2.76/3.67 | 3.45/4.25 | 2.76/4.15 |
| Simulated Radiation Efficiency (%) | Lower (85.34/83.32) | (54.37/53.40) | (60.0/59.51) |
| Voltage Standing Wave Ratio (VSWR) | 1.22/1.29 | 1.61/1.21 | 1.06/1.19 |
| Radiation Pattern (O/O) | Omnidirectional | Omnidirectional | Omnidirectional |
Figure 3Distribution of current density with radiation modes at (a) lower band, and (b) upper band.
Figure 4Variation in the S11 by changing the length () of the proposed antenna design.
Figure 5Optimization of S11 for meander line monopole antennas (MMAs) in free-space, on-chest flat model, and arm model with various locations on the body (3 mm, and 5 mm).
Figure 6Measured S11 of the MMAs in free-space and on different locations of the human body (chest, 50 mm; small size arm, 50 mm diameter; and large size arm, 100 mm diameter).
Figure 7Measured S11 of the MMAs deformed on various cylindrical curvatures (d = 50 mm, 60 mm, 70 mm, 80 mm, and 100 mm).
Figure 8Measured S11 of the MMAs in wet conditions (Ref (free-space), initial condition, after 1 h, 2 h, and 3 h).
Figure 9(a) Setup for the 3D far-field measurement for meander line antenna in the anechoic chamber, (b) human chest model, and (c) human arm model.
Figure 10Simulated and measured radiation patterns of E and H planes at both bands, left side: the lower frequency, right: the higher frequency, (a) free-space (2.2 GHz and 5.6 GHz), (b) on-chest (2.3 GHz and 5.7 GHz), (c) on-arm (2.2 GHz and 5.7 GHz).
Comparison of different SAR values.
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| 2.2–3.0 | 1.22 | 0.63 | 1.38 | 0.883 | |
| 5.7–6.0 | 0.75 | 0.71 | 0.692 | 0.325 | |
Input power to the monopole meander line antenna was 0.1 W or 20 dBm.
Figure 11Simulated SAR (10-g average) results when the antenna is on the (a) upper-right arm of a male subject (at 2.2 GHz (left) and 5.7 GHz (right)), and (b) on the chest center (2.3 GHz (left) and 5.7 GHz (right)).
Figure 12Measurement equipment setup for the path loss (LNA: low noise amplifier; BPF: band pass filter; PA: power amplifier).
Figure 13Measured S21 of the MMAs in free-space at various distances between the Tx and Rx antennas (r: 2 to 11 m).
Figure 14Measured S21 of the MMAs for on-chest and on-arm in line-of-sight (LoS) and non-line-of-sight (NLoS) at various distances between the Tx and Rx antennas (r: 2 to 8 m).