Technical field
[0001] The present disclosure relates to an antenna for underwater radio communications
and respective operation method, in particular to an antenna device for underwater
radio communications comprising a frequency-tunable circuit, said circuit being tunable
between a first frequency and a second frequency for obtaining a variable directional
radiation pattern by the antenna device, in order to select a directional radiation
pattern of the antenna device for improving the radio signal coupling with another
antenna device.
Background
[0002] The necessity of monitoring aqueous environments and the need for reliable communications
between or with underwater vehicles has led to extensive research on underwater wireless
communications. Acoustic and optical systems are the most frequently used in those
applications, however, both technologies present limitations and disadvantages that
radio frequency (RF) systems do not have. The biggest advantage of acoustic systems
is the large range that can be achieved, but on the other hand they exhibit poor performance
in shallow water, limited bandwidth due to the low frequencies used, may have an impact
on marine life and the ambient noise level could be a limiting factor for communication
performance.
[0003] Although optical systems allow ultra-high bandwidths (on the order of Gbit/s) at
very close range, those systems are very susceptible to turbidity and particles fouling,
and they require line-of-sight and thus tight alignment, which is a drawback. RF systems
can overcome some of the limitations of both acoustic and optical systems. They have
the advantage of not being affected by turbidity, operate in non-line-of-sight, are
immune to acoustic noise and allow high bandwidths (up to 100 Mbit/s) at very close
range.
General Description
[0004] It is disclosed how the main radiation parameters of an underwater antenna, such
as the resonant frequency, the input impedance and the radiation pattern, change dramatically
with the conductivity of the medium where the antenna is placed. Moreover, the radiation
pattern changes with the resonance frequency, that is, in freshwater/seawater the
same type of antenna can have different radiation patterns depending if the medium
is dielectric or conductive at the antenna's resonant frequency. Therefore, this can
be an advantage to achieve the control of the radiation diagram of an antenna placed
in a certain type of underwater media, by adjusting the resonant frequency of the
antenna, for example, with a simple electronic circuit. This can be exploited to improve
underwater communications, for example, between a moving AUV (autonomous underwater
vehicle) and a fixed platform, by continuously adjusting the radiation diagram to
the most favourable as the AUV moves.
[0005] An important application that was investigated in connection with the present disclosure
is the implementation of IEEE 802.11 networks in freshwater and seawater at VHF, UHF
and SHF (Very, Ultra and Super High Frequency, respectively) bands with the help of
software-defined radios. However few analyses of the impact of the antenna design
have been presented for those media. In this disclosure, the design of an antenna,
in particular dipole antenna, for a RF underwater communication system is described,
as a better alternative to current acoustic systems, for short range communications.
Moreover, the impact of the conductivity of the medium on the characteristics of the
antenna is also assessed by means of simulation and experimental work.
[0006] The best media for electromagnetic waves propagation are insulators, where the conductivity
is zero (σ= 0 S/m). In those media, electromagnetic waves are not attenuated and therefore
they are known as lossless media. If the conductivity of the medium increases, the
attenuation of radio waves also increases.
[0007] Freshwater conductivity can range from 0.005 to 0.05 S/m, the actual value increasing
with salinity and temperature. Thus, seawater has a higher conductivity, with an average
of 4 S/m.
[0008] In a medium with a conductivity σ and at the angular frequency
ω, the permittivity becomes complex, with a value of:

where
ε0 is the vacuum permittivity.
[0009] The relative permittivity (
εr) of water depends upon several factors like water temperature, salinity and propagation
frequency and it can be described by the Debye model or by the Cole-Cole equation.
In this disclosure we considered a relative permittivity value of 81 for both fresh
and seawater, since according to the models presented above that is the value of the
water permittivity in the frequency range of interest for this work.
[0010] Since water is not a magnetic medium the value of its relative permeability is
µr = 1. So the permeability (
µ) of water is the same as that of free space.
[0011] The propagation of electromagnetic waves, in any medium, is characterized by their
propagation constant,
γ, which is given by:

where
α (Np/m) and
β (rad/m) are the attenuation and phase constants, respectively, and ω is the angular
frequency.
[0012] Media where

are considered dielectric media, or insulators. On the other hand, media where

are considered conductors. In Fig. 1 the behaviour of

is shown as a function of frequency for the two media considered in this work. It
can be seen that freshwater becomes a conductor for frequencies below 11.1 MHz and
in the case of seawater this transition occurs at 888 MHz.
[0013] When an electromagnetic wave propagates in a lossy medium it is attenuated. How it
is shown in Fig. 2, that attenuation increases with the frequency and with the conductivity
(σ) of the medium, so it is necessary to use low frequencies in order to achieve a
reasonable range in RF underwater communication systems.
[0014] The wavelength is defined by:

and is represented in Fig. 3 as a function of frequency for three media. It can be
seen that the wavelength behaviour changes at the frequency at which the transition
from conductive to dielectric medium occurs and from that point it becomes equal to
the wavelength in a lossless medium (with the same permittivity).
[0015] It is disclosed a method of operating underwater an antenna device comprising a frequency-tunable
circuit, said method comprising:
tuning said circuit between a first frequency and a second frequency for obtaining
a variable directional radiation pattern (i.e. a variable preferred operation direction)
by the antenna device.
[0016] An embodiment of the frequency-tunable circuit is a circuit comprising an adjustable-capacity
capacitor connected in series or parallel with the antenna such that the resonant
frequency of the antenna is adjustable. This adjustment may be carried out by a microprocessor
or microcontroller. Another embodiment of the frequency-tunable circuit is a circuit
which is tunable by a data processing device executing computer program instructions
embodying one of the disclosed methods.
[0017] An embodiment, for communicating with another antenna device, comprises tuning said
circuit to select a directional radiation pattern of the antenna device for improving
the radio signal coupling between the antenna devices, in particular for maximizing
the radio signal coupling between the antenna devices.
[0018] In an embodiment, the directional radiation pattern of the antenna device for one
of the two frequencies is directional and the directional pattern of the antenna device
for the other of the two frequencies is omnidirectional.
[0019] In an embodiment, said first frequency and a second frequency are predetermined according
to the saltwater-freshwater content of the water such that the directional radiation
pattern of the antenna device for one of the two frequencies is directional and the
directional pattern of the antenna device for the other of the two frequencies is
omnidirectional.
[0020] In an embodiment, the directional radiation pattern of the antenna device has a 90°
shift between the first frequency and the second frequency.
[0021] An embodiment comprises continuously tuning said circuit between the first frequency
and the second frequency,
such that the directional pattern of the antenna device is continuously tuned between
the first frequency and the second frequency.
[0022] An embodiment comprises tuning said circuit in discrete steps between the first frequency
and the second frequency,
such that the directional pattern of the antenna device is tuned in discrete steps
between the first frequency and the second frequency.
[0023] In an embodiment, submerged in fresh water, the first frequency is lower than 11.1
MHz and a second frequency is higher than 11.1 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern of the antenna device for the
second frequency is omnidirectional.
[0024] In an embodiment, submerged in salt water, the first frequency is lower than 888
Mhz and the second frequency is higher than 888 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern of the antenna device for the
second frequency is omnidirectional.
[0025] In an embodiment, the first frequency is lower than 11.1Mhz and the second frequency
is higher than 888 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern for second frequency is omnidirectional,
independently of the antenna device being submerged in fresh water or salt water.
[0026] In an embodiment, the antenna device is a dipole antenna or a loop antenna.
[0027] In an embodiment, the antenna device is used in an IEEE 802.11 protocol network.
[0028] It is also disclosed an antenna device for underwater radio communications comprising
a frequency-tunable circuit, said circuit being tunable between a first frequency
and a second frequency for obtaining a variable directional radiation pattern (i.e.
a variable preferred operation direction) by the antenna device.
[0029] An embodiment is arranged to periodically tune said circuit to select a directional
radiation pattern of the antenna device for improving the radio signal coupling with
another antenna device, in particular for maximizing the radio signal coupling with
another antenna device.
[0030] The said periodic tuning can be performed using a sweep, for example, every 10 seconds
(see fig. 8). The tuning must be performed simultaneously by the two antenna devices
(emitter and receiver), so that both antenna devices always use the same frequency.
In the beginning, a default communication frequency (fa) shall be known by both antenna
devices. Periodically both antenna devices will tune their circuits with a frequency
sweep (f1-f2) known by both antenna devices, either continuous or discrete. A discrete
frequency step can be defined for example between 1 MHz and 5 MHz to be used in the
frequency sweep. Using a discrete frequency step facilitates keeping the two antennas
in sync during the frequency sweep.
[0031] The frequency sweep normally covers from the first frequency (f1) to the second frequency
(f2), preferably with a total sweep duration much shorter than the period between
said periodic tunings, for example, 100 ms, such that the communication throughout
is not substantially affected by the time lost in this. While the tuning is performed,
one or both of the antenna devices can register the received signal strength. At the
end of the sweep, the results are analysed by one of the antenna devices (the master
antenna device) and a decision is made on whether to tune the said circuit to another
frequency.
[0032] The decision depends on whether a frequency was found where the received signal strength
is higher than the received signal strength at the current frequency, or the average
of the received signal strength between both antenna devices is higher than the received
signal strength at the current frequency. The decision is then communicated by the
master antenna device to the other antenna device (slave), normally through said default
or currently used frequency, so that both antenna devices will change to the same
new frequency (fb). The process is preferably repeated periodically and the new frequency
(fb) may then change subsequently to another new frequency (fc), and so on.
[0033] According to a method of operating the antenna device, the antenna device is arranged
to periodically tune said circuit to select a directional radiation pattern of the
antenna device for improving the radio signal coupling with another antenna device,
by periodically making a frequency sweep in synchronized frequency between both antennas
and selecting a frequency from said frequency sweep that maximizes signal strength
coupling between said two antennas. A discrete frequency step can be defined between
1 MHz and 5 MHz to be used in the frequency sweep.
[0034] In another possible embodiment, both antenna devices will periodically tune their
circuits to the neighbouring frequencies immediately above (f2) and below (f1) the
current frequency, by iterative improvements, considering a discrete frequency step
that can be defined for example between 1 MHz and 5 MHz (see fig. 9). In the beginning,
a default communication frequency (fa) shall be known by both antenna devices. The
tuning period can be for example 10 seconds. The next frequency to be used shall be
decided by the master antenna device.
[0035] The decision depends on whether the received signal strength at any of the tested
frequencies (f1, f2) is higher than the received signal strength at the previous frequency
(fa), or the average of the received signal strength between both antenna devices
is higher at the tested frequencies than the received signal strength at the previous
frequency. The decision is then communicated by the master antenna device to the other
antenna device (slave), normally through said default or currently used frequency,
so that both antenna devices will change to the same new frequency (fb=f1) which provides
a better signal strength. The process is preferably repeated periodically and the
new frequency (fb) may then change subsequently to another new frequency (fc), and
so on.
[0036] According to an alternative method of operating the antenna device, the antenna device
is arranged to periodically tune said circuit to select a directional radiation pattern
of the antenna device for improving the radio signal coupling with another antenna
device, by periodically making a frequency test, in synchronized frequency between
both antennas, of a lower frequency than the frequency currently being used and an
higher frequency than the frequency currently being used, and selecting a frequency
from said lower and higher frequencies that maximizes signal strength coupling between
said two antennas. The lower and higher frequencies may have a discrete frequency
step that can be defined for example between 1 MHz and 5 MHz above and below the frequency
currently being used.
[0037] In another embodiment, multiple antenna devices co-exist in a given underwater scenario.
In such case, the master antenna device can send information specifically targeted
to a given slave antenna device or group of slave antenna devices. Since the physical
location of the slave antenna devices can be known to the master antenna device, the
master antenna device will select the targeted slave antenna by switching to a frequency
where the radiation is substantially directed in the targeted direction, a step that
must be preceded with a communication at said default frequency indicating the next
frequency to be used, in order to synchronize the transmission.
[0038] An embodiment is arranged to continuously tune said circuit between the first frequency
and the second frequency, such that the directional pattern of the antenna device
is continuously tuned between the first frequency and the second frequency.
[0039] An embodiment is arranged to tune said circuit in discrete steps between the first
frequency and the second frequency, such that the directional pattern of the antenna
device is tuned in discrete steps between the first frequency and the second frequency.
[0040] In particular, for fresh water, the first frequency is 834 kHz or 1.68 MHz, and the
second frequency is 19 MHz or 30 Mhz. In particular, for fresh water, the first frequency
is between 834 kHz - 1.68 MHz, and the second frequency is between MHz - 30 Mhz.
[0041] In particular, for salt water, the first frequency is 286 MHz or 453 MHz, and the
second frequency is 1 GHz or 2.16 GHz. In particular, for salt water, the first frequency
is between 286 MHz - 453 MHz, and the second frequency is between 1 GHz - 2.16 GHz.
Brief Description of the Drawings
[0042] The following figures provide preferred embodiments for illustrating the description
and should not be seen as limiting the scope of invention.
Figure 1: Behaviour of

as a function of frequency for the two media considered in this work (σ= 0.05 S/m
and σ = 4 S/m).
Figure 2: Attenuation of an electromagnetic wave propagating in two different media (σ= 0.05
S/m and σ = 4 S/m).
Figure 3: Wavelength of an electromagnetic wave propagating in three different media with ε'
= 81 (σ= 0 S/m, σ = 0.05 S/m and σ = 4 S/m).
Figure 4: Analysed antennas: dipole and loop.
Figure 5: Dependency of resonance frequency on the water conductivity.
Figure 6: Dependency of real part of input impedance at resonance on the water conductivity.
Figure 7: Current distribution in antennas at the resonant frequency: dipole and loop.
Figure 8: Frequency adjustment method by periodic frequency sweep.
Figure 9: Frequency adjustment method by iterative frequency improvements.
Table I: Dimensions of the loop antenna for the three different types of media at three different
frequencies.
Table II: Dimensions dipole antenna for the three different types of media at three different
frequencies.
Table III: Radiation pattern for the dipole antenna for the three different media and for the
three different frequencies.
Table IV: Radiation pattern for the loop antenna for the three different media and for the
three different frequencies.
Table V: Radiation patterns for the loop antenna near the transition from conductive to dielectric
media in freshwater.
Table VI: Radiation patterns for the loop antenna near the transition from conductive to dielectric
media in seawater.
Detailed Description
[0043] We have assessed through simulation, in FEKO 3D electromagnetic simulator, the performance
of two different antennas embodying the disclosure in terms of resonance frequency,
input impedance and radiation pattern. The antennas are a loop antenna with a radius
of 16 cm and a 50 cm length dipole antenna. The two antennas are depicted in Fig.
4 and consisted of a simple 3 mm thick cooper wire, covered with an insulator with
a thickness of 50 µm and a relative permittivity of 3.
[0044] We performed an extensive analysis of this two antennas in terms of their radiation
characteristics in underwater media, in particular an analysis of resonant frequency
and input impedance. Fig. 6 and Fig. 7 show the dependency of two major antenna parameters
as a function of water conductivity, namely the resonant frequency and the real part
of the impedance at that frequency, respectively. From these figures it is clearly
seen that both the resonant frequency and the input impedance of both antennas change
dramatically with the conductivity of water. From these results we readily conclude
that the same physical antenna, without further adaptations or circuits, will not
normally be suitable for both fresh and seawater environments, as the resonance frequency
is relatively different. Moreover, from Fig. 7 we can also conclude that depending
on the conductivity of water, different matching networks must be designed, for an
efficiently use of the antennas.
[0045] Fig. 7 shows the current distribution in both antennas at the resonant frequency.
In this disclosure it is considered a λ/2 dipole and a large loop with a circumference
length being λ.
[0046] In an embodiment, we analyse the near field of both antennas through simulations
in FEKO. Simulations for the near field were obtained as far away from the antennas
as possible, with the intention of determining the radiation pattern, since it is
impossible to measure directly the far field pattern in lossy media.
[0047] The radiation pattern was obtained for three frequencies (600 kHz, 100 MHz, 1 GHz)
and for three different media: σ=0S/m, σ= 0.05 S/m and σ = 4 S/m (with ε'=81). The
frequencies were chosen in order for all the media to be dielectric at one frequency
(
f = 1 GHz), another frequency in which only seawater was a conductive medium (
f = 100 MHz) and finally a frequency at which both fresh and seawater were conductive
(
f = 600 kHz), as shown in Fig. 1.
[0048] The dimensions of both antennas were adjusted to make them resonant at the three
frequencies, giving them a current distribution equal to Fig. 7. The dimensions are
shown in TABLE I and in TABLE II for the loop and dipole, respectively, for the three
media considered and for the three frequencies analysed.
[0049] TABLE III and TABLE IV show the radiation patterns for the loop antenna and for the
dipole, respectively, with the antennas placed in the same orientation as in Fig.
4. Again we see the influence of the water conductivity on the performance of the
antenna. In a dielectric medium the radiation pattern maximums are oriented in the
z+ and z- directions, whereas in a conductive medium they are shifted by 90°, in the
case of the loop antenna. A change in the radiation pattern can be observed also for
the dipole when the medium becomes conductive. Other antenna types, and respective
combinations, will have the corresponding radiation behaviours, such that the disclosure
is not limited to dipole or loop antennas, these being illustrative embodiments.
[0050] To better understand the change of the radiation pattern, we made an analysis near
the frequency of transition between a conductive/dielectric media. In Table V are
shown the radiation patterns for the loop antenna in freshwater, close to 11 MHz.
In Table VI are shown the radiation patterns for the same antenna in seawater near
888 MHz (according to Figure 1). It is easy to see that the evolution of the radiation
pattern is very similar in both cases when the media is transitioning between conductive
and dielectric.
[0051] In this disclosure, the performance of two antennas in underwater media was analysed.
It was seen that the main radiation parameters, such as the resonant frequency, the
input impedance and the radiation pattern, change dramatically with the conductivity
of the medium where the antenna is placed. Moreover, the radiation pattern changes
with the resonance frequency, that is, in freshwater/seawater the same type of antenna
can have different radiation patterns depending if the medium is dielectric or conductive
at the antenna's resonant frequency. Therefore, we can take advantage of this fact
to achieve the control of the radiation diagram of an antenna placed in a certain
type of underwater media, by adjusting the resonant frequency of the antenna with
a simple electronic circuit. This can be exploited to improve underwater communications,
for example, between a moving AUV and a fixed platform, by continuously adjusting
the radiation diagram to the most favourable as the AUV moves.
[0052] The term "comprising" whenever used in this document is intended to indicate the
presence of stated features, integers, steps, components, but not to preclude the
presence or addition of one or more other features, integers, steps, components or
groups thereof.
[0053] It is to be appreciated that certain embodiments of the disclosure as described herein
may be incorporated as code (e.g., a software algorithm or program) residing in firmware
and/or on computer useable medium having control logic for enabling execution on a
computer system having a computer processor, such as any of the servers described
herein. Such a computer system typically includes memory storage configured to provide
output from execution of the code which configures a processor in accordance with
the execution. The code can be arranged as firmware or software, and can be organized
as a set of modules, including the various modules and algorithms described herein,
such as discrete code modules, function calls, procedure calls or objects in an object-oriented
programming environment. If implemented using modules, the code can comprise a single
module or a plurality of modules that operate in cooperation with one another to configure
the machine in which it is executed to perform the associated functions, as described
herein.
[0054] The disclosure should not be seen in any way restricted to the embodiments described
and a person with ordinary skill in the art will foresee many possibilities to modifications
thereof. The above described embodiments are combinable. The following claims further
set out particular embodiments of the disclosure.
[0055] The following references, should be considered herewith incorporated in their entirety:
- [1] X. Che, I. Wells, G. Dickers, P. Kear, and X. Gong, "Re-evaluation of RF electromagnetic
communication in underwater sensor networks," IEEE Communications Magazine, vol. 48,
no. 12, pp. 143-151, 2010.
- [2] F. Teixeira, P. Freitas, L. Pessoa, R. Campos, and M. Ricardo, "Evaluation of IEEE
802.11 Underwater Networks Operating at 700 MHz, 2.4 GHz and 5 GHz," in Proceedings
of the 9th ACM International Conference on Underwater Networks & Systems, WUWNet'14,
2014.
- [3] F. Teixeira, J. Santos, L. Pessoa, M. Pereira, R. Campos, and M. Ricardo, "Evaluation
of Underwater IEEE 802.11 Networks at VHF and UHF Frequency Bands using Software Defined
Radios," in Proceedings of the International Conference on Underwater Networks & Systems,
WUWNET'15, 2015.
- [4] S. Jiang and S. Georgakopoulos, "Electromagnetic wave propagation into fresh water,"
Journal of Electromagnetic Analysis and Applications, vol. 3, no. 07, p. 261, 2011.
1. Method of operating under water an antenna device comprising a frequency-tunable circuit,
said method comprising:
tuning said circuit between a first frequency and a second frequency for obtaining
a variable directional radiation pattern by the antenna device.
2. Method according to the previous claim, for communicating with another antenna device,
comprising tuning said circuit to select a directional radiation pattern of the antenna
device for improving the radio signal coupling between the antenna devices, in particular
for maximizing the radio signal coupling between the two antenna devices.
3. Method, according to any of the previous claims,
wherein the directional radiation pattern of the antenna device for one of the two
frequencies is directional and the directional pattern of the antenna device for the
other of the two frequencies is omnidirectional.
4. Method, according to any of the previous claims, wherein said first frequency and
a second frequency are predetermined according to the saltwater-freshwater content
of the water such that the directional radiation pattern of the antenna device for
one of the two frequencies is directional and the directional pattern of the antenna
device for the other of the two frequencies is omnidirectional.
5. Method, according to any of the previous claims,
wherein the directional radiation pattern of the antenna device has a 90° shift between
the first frequency and the second frequency.
6. Method according to any of the claims 1-5, comprising tuning said circuit in discrete
steps between the first frequency and the second frequency,
such that the directional pattern of the antenna device is tuned in discrete steps
between the first frequency and the second frequency.
7. Method of operating an antenna device submerged in fresh water, according to any of
the previous claims, wherein the first frequency is lower than 11.1 MHz and a second
frequency is higher than 11.1 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern of the antenna device for the
second frequency is omnidirectional;
in particular, the first frequency is 834 kHz or 1.68 MHz, and the second frequency
is 19 MHz or 30 MHz.
8. Method of operating an antenna device submerged in salt water, according to any of
the claims 1-6, wherein the first frequency is lower than 888 Mhz and the second frequency
is higher than 888 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern of the antenna device for the
second frequency is omnidirectional;
in particular, the first frequency is 286 MHz or 453 MHz, and the second frequency
is 1 GHz or 2.16 GHz.
9. Method according to any of the previous claims, wherein the first frequency is lower
than 11.1 MHz and the second frequency is higher than 888 MHz,
such that the directional radiation pattern of the antenna device for first frequency
is directional and the directional radiation pattern for second frequency is omnidirectional,
independently of the antenna device being submerged in fresh water or salt water.
10. Method according to any of the previous claims, wherein the antenna device is a dipole
antenna or a loop antenna, in particular wherein the antenna device is used in an
IEEE 802.11 protocol network.
11. Antenna device for underwater radio communications comprising a frequency-tunable
circuit, said circuit being tunable between a first frequency and a second frequency
for obtaining a variable directional radiation pattern by the antenna device.
12. Antenna device according to the previous claim, arranged to periodically tune said
circuit to select a directional radiation pattern of the antenna device for improving
the radio signal coupling with another antenna device, in particular for maximizing
the radio signal coupling with another antenna device.
13. Antenna device, according to claim 11 or 12,
wherein the directional radiation pattern of the antenna device for one of the two
frequencies is directional and the directional pattern for the other of the two frequencies
is omnidirectional when the device is submerged in freshwater or saltwater.
14. Antenna device, according to any of the claims 11-13,
wherein the directional radiation pattern of the antenna device has a 90° shift between
the first frequency and the second frequency when the device is submerged in freshwater
or saltwater.
15. Antenna device according to any of the claims 11-14, wherein the antenna device is
a dipole antenna or a loop antenna, in particular the antenna device is an IEEE 802.11
protocol network antenna.