[0001] The present invention relates to a multiphase meter system for measuring the composition
and/or salinity of a fluid flow in a pipe.
[0002] More specifically the present invention relates to measurement of water, oil, gas
and/or salinity fractions in a fluid flow in the exploration of oil and gas reservoirs.
[0003] A number of different commercial flow meters are available on the market for the
measurement of the content of fluid flows from oil wells. Some meters are based on
the use of radioactive radiation, some are capacitive, and some are based on the use
of microwaves.
[0004] Microwave sensors are attractive because they are not limited by the health risks
associated with radioactive radiation based meters and their fairly low accuracy or
the undesirable influence of contamination on the capacitive sensors.
[0005] An example of a method for measuring properties of flowing fluids and a metering
device and a sensor used for performing this method has been described in International
Patent Application
WO 01/88513, for which a US-patent has been granted (
US 6,826,964 B2). The sensor uses the microwave resonance principle for the measurement of oil-continuous
fluids (water drops and gas bubbles in oil, i.e. the oil is a continuous phase) and
the measurement of conductivity for water-continuous fluids (oil drops and gas bubbles
in water, i.e. the water is the continuous phase, and is intended for installation
at a production zone inside an oil well. Another example of resonance measurements
in multiphase flows is discussed in Norwegian patent
308922 (corresponding to
WO99/63331).
[0006] Another example of a method for measuring flowing fluids with a far higher gas content,
i.e. wet gas (a wet gas flow is a multiphase flow with a high gas volume fraction,
usually called the gas void fraction (GVF), typically >99%) or high-gas multiphase
flow, has been described in
US patent 6,915,707. This is also based on the microwave resonance principle.
[0007] The microwave resonance principle is based on measuring the permittivity/dielectric
constant of the flow and is discussed with reference to water volume fractions (WVF)
in
WO 2008/085065.
[0008] Other systems are described in
US5101163 and
WO2007/018434, as well as
US5341100, where the composition and water salinity is measured by measuring the difference
in the signal received by two antennas being positioned at different distances from
the transmitter antenna, called the transmission method. This method is usually preferred
when the loss in the fluid flow is high, e.g. in a water continuous flow with relatively
high water salinity.
[0009] A problem inherent in the known art is that it is difficult to provide sufficiently
accurate measurements within the complete range of compositions and salinities within
the same fluid volume. As is discussed above the resonant frequency and Q-factor is
suitable for a certain range of fractions, but less suitable when the loss in the
flow gets sufficiently high and the accuracy is reduced. This problem is solved as
described in the claims.
[0010] Thus the present invention is related to a MUT (material under test) flowing in a
metal pipe, where the dielectric properties of this MUT are to be measured by microwaves,
e.g. for the purpose of finding the composition of the MUT, e.g. the mixture ratio
between oil and water. The MUT may exhibit so-called high-loss or low-loss properties
depending on e.g. whether the water or the oil is the continuous phase in the case
of an oil/water mixture, and depending on whether the water contains dissolved ions,
e.g. salts, making it more or less conductive. In "Handbook of Multiphase Flow Metering"
fra 2005, ref [4] in Microwave technology, on page 51 and 52 it is stated on page
52, that a practical microwave MPFM uses the resonator principle for oil-continuous
fluids, and the varying frequency transmission principle in water-continuous fluids,
utilizing the same probes. When the attenuation is low, the pipe acts as a resonator
and, when the attenuation is high, the phase difference between two receiving probes
is detected. The solution described in [4] is based on the use of the pipe as resonator.
Other examples are given in
WO2005/057142 and
US7631543. The resonator as such is not ideal as the main resonance occurs at the cutoff frequency
and resonating energy will leak in the direction of the pipe, thus reducing the accuracy
of the system. According to an embodiment not claimed by the present invention solves
this problem by using a resonator having a resonance frequency below cutoff and thus
a resonance peak being easily detected so as also to improve the performance in flow
measurements.
[0011] For the measurement purpose a microwave resonator has been implemented in the pipe
for measuring under low-loss conditions, and typically three antennas for performing
differential transmission measurements under high-loss conditions. The reason for
using both methods is that the resonator method is the most accurate method when the
losses are low enough for this method to work, and the transmission method being best
suited for high losses because it can be used in a wide dynamic range.
[0012] Besides the transmission method is less accurate under low-loss conditions due to
the influence of wave modes and reflections. In a preferred embodiment the same antennas
are used both for coupling to the resonator and for performing the transmission measurements,
with the exception that only two of the antennas are used for the resonator measurement.
[0013] The frequency response, i.e. the transmission function as a function of frequency,
measured between a transmitting antenna and a receiving antenna will display features
of direct capacitive coupling, resonances, and direct transmission. Depending on the
amount of losses some of these will dominate. Under low-loss conditions the resonance
peak(s) will be clearly visible above a baseline of capacitive coupling. Under high-loss
conditions no peaks will be visible. Neither will direct capacitive coupling be of
any importance. Instead direct transmission will dominate and the measured phase shift
and attenuation are related to the dielectric properties of the MUT and the propagated
distance. By using differential transmission, i.e. comparing transmission between
identical pairs of antennas with different propagation distance, the influence of
the properties of the antennas and the rest of the system, including cables and connectors,
are cancelled, displaying the true effect of the propagated distance through the MUT.
[0014] In the case of a two-phase mixture of oil and water, where the water contains some
amount of dissolved ions, typically equivalent to more than 0.1% of NaCl, the mixture
will display clearly low-loss or high-loss properties depending on whether the mixture
is oil- or water-continuous. In this case the situation is easy to detect from the
presence or absence of resonance peak(s), and the measurement method chosen accordingly.
In other cases, e.g. if the water is more or less fresh (equivalent content of NaCl
below 0.1 %), or if significant amounts of gas are present, as in a 3-phase mixture
of oil, water and gas with a high GVF (Gas Void Fraction), situations may appear,
where the losses are neither high nor low. In this case the frequency response will
display both resonance peaks, which have a low Q-factor, i.e. they look more like
humps on the response than peaks, and transmission clearly above pure capacitive coupling.
In this case it may not be immediately clear which method is preferable to use.
[0015] The best strategy in this case is to measure with both, and perform a quality check
on the results before choosing which one to output as the measurement result. The
quality check may contain e.g. criteria related to the expected range of the e.g.
volume fractions, criteria related to the expected maximum speed of change of the
volume fractions, and criteria related to the stability (variance) of the measurements
with the two methods. To determine which method should be used in the above described
way, a set of characterizing constants can be used. These can e.g. be the Q-factor
of the resonance peak(s) (if the peak(s) are not identifiable the case is a high-loss
case), and the attenuation ratio at a hump (poor resonance peak) and the trough or
valley above (in frequency) it. A limit can be that the Q-factor must be >10 for the
resonance method to be used. Similar criteria can be defined for the attenuation ratio,
or a factor depending on both can be defined.
[0016] Which criteria to use are best found empirically by performing flow tests in practice,
logging raw data, and then recalculating e.g. the composition by applying various
limits and criteria.
[0017] For best results the sensor system with the resonator and the antennas should be
designed so that only the resonance peak(s) to be used are within the frequency range
to be used. In most cases this means that only one peak should influence the measured
frequency response. The transmission measurement should also be designed so that the
measurements of phase and/or attenuation are performed in a part of the frequency
range least affected by the resonance as long as the peak has not disappeared completely
due to high losses. The word "pin" is often used for the antennas, especially when
implemented in a probe.
[0018] In the following specification the following definitions are applicable:
- Frequency response: The coupling (attenuation and phase shift) from one antenna to
another as a function of frequency. The coupling is called insertion loss.
- Low-loss: The attenuation of the microwave energy fed into a pipe through a coupling
antenna is so low that reflections from the pipe walls form an interference pattern
in the form of wave-guide modes, or the coupling of energy from one antenna to another
(the insertion loss) is dominated by direct capacitive coupling (in the case the frequency
is lower that the lowest cut-off frequency of the waveguide modes in the pipe).
- High-loss: The attenuation of microwaves in the medium is so high that propagating
waves, which are reflected from the pipe walls and thereby travel a longer distance
than those propagating from antenna to antenna, are attenuated so much that no influence
of wave modes is detectable in the frequency response (insertion loss).
[0019] Thus a solution is obtained according to the invention where resonance is used in
part of the measurements, but if the loss in the fluid rises a transmission method
is applied by switching to measuring the phase difference and difference in measured
damping in the flow. By simultaneously increasing the measuring frequency the salinity
may also be measured.
[0020] According to the preferred embodiment of the invention the system comprises only
three antennas, one transmitter and two receivers. When the resonance has a high quality
only the transmitter and at least one of the receiver antennas are active. Thus the
measurement is performed by transmitting a frequency sweep signal within a predetermined
range and measuring both the resonance frequency and the width of the resonance peak,
thus e.g. providing the Q-factor. If the quality of the resonance frequency is less
than a predetermined value the phase and damping differences in the signals measured
by the two receivers are found and used to characterize the composition of the flow.
In this mode a different frequency range may be utilized so as to increase the accuracy
of the measurements and also possibly to measure the salinity of the flow from the
relationship between the real and imaginary parts of the signal, e.g. as described
in
US5103181, calculating the composition from the permittivity and the Brüggemann equation and
in reference [2]
Nyfors, E., P. Vainikainen, "Industrial Microwave Sensors", Artech House, 1989, 350
p, finding the permittivity from resonator and transmission measurements.
[0021] The system according to the present invention utilizes both resonance and transmission
measurements, either by performing both types of methods simultaneously and choosing
the most relevant information to be transmitted to the user, or by monitoring the
quality of the measurements and shifting to the alternative measuring method if the
measurements are below a certain threshold. The quality threshold of the resonance
measurements may be defined by chosen values of Q-factor, peak width and/or resonance
frequency.
[0022] The invention will be discussed below with reference to the accompanying drawings,
illustrating the invention by way of examples.
- Fig. 1
- Sketch of a first embodiment of the invention providing a third probe downstream of
a two probe system for resonator measurements, and using that for transmission to
avoid transmission along the rim of the cone.
- Fig.2
- Sketch of a second embodiment of the invention using a 3-antenna probe for transmission
measurements, and maintaining the 2 standard probes for resonator measurements.
- Fig. 3
- Sketch of a third embodiment of the invention a 3-antenna probe.
- Fig. 4
- A sketch of a fourth embodiment of the invention adding a 2-antenna probe.
- Fig. 5
- A sketch of a fifth embodiment of the invention replacing one probe with a 3-antenna
probe in a two probe resonance measuring system.
- Fig. 6
- illustrates an embodiment combined with a fin sensor. The invention is a further development
of a water gas meter (WGM) as
described in
US6915707, which has a microwave resonator sensor for measuring the permittivity of the flow
for the calculation of the
WVF (Water Volume Fraction). This works well at low
WVF, but now the goal is to extend the operating range further down in
GVF (up in
WVF)
, where the flow becomes too lossy for the resonator to work well. The idea is to add
a transmission type of measurement.
[0023] The known WGM described in
WO 2008/085065 is based on a pure resonator measurement and therefore only works under low-loss
conditions. It has two antennas and the electronics is only capable of measuring the
amplitude of the insertion loss, i.e. the power attenuation, and only over a limited
frequency range defined by the VCO(s) in the particular version of the unit used in
the meter.
[0024] The main advantage of a sensor, where the whole pipe is the resonator, is that it
is non-intrusive. But is has the serious weakness that the flow may obtain various
flow regimes. E.g. the liquid may form a layer close to the pipe wall, while the gas
passes in the middle. This is called annular flow. Such inhomogeneous distribution
of the gas and liquid affect the measurement of the permittivity. Especially under
water-continuous conditions and annular flow the measurements are in error. This is
what has been tried to improve in
WO2005/057142 and
WO2007/018434 by adding another measurement, which weights the permittivity of the flow close to
the wall, and then compensate for the known error using empirical models. The advantage
with the WGM is that the flow is always squeezed through the gap between the pipe
wall and the preferably conically shaped insert, which eliminates such flow regimes
when the measurement is performed in this region. The current resonator measurement
measures the flow in this gap around the whole circumference. The transmission measurement
to be added must also be located so that the flow is measured roughly, when it passes
the cone. At the same time the cone should preferably not affect the measurement,
i.e. it should not be "seen" by the probes. It will not be possible to achieve measurement
around the whole circumference, but assuming roughly symmetrical flow, this would
not be necessary. As stated above the preferred embodiment utilizes a conically shaped
insert, but other inserts may also be used such as a fin.
[0025] For a full 3 phase measurement (oil, water, gas) it will also be necessary to add
a densitometer. Because there are 3 unknowns, one needs three equations to be able
to solve composition. Two equations are related to the measurement of the permittivity
and the density, and the third states that the sum of all three components equals
to 100%. The present invention is mainly related to a means for providing the permittivity
measurements while other calculations may be performed as in general Multi Phase Meters.
[0026] The idea according to the invention involves the addition of a transmission measurement,
for example by transmitting with one probe acting as a transmitting antenna and receiving
with two probes acting as receiving antennas. The two receiving probes must be at
different distance from the transmitting probe. The difference in distance results
in a phase difference. The frequency, where the phase difference obtains a predefined
fixed value is measured. As will be seen the receiving and transmitting probes may
be exchanged with one probe having three antennas acting as receiving or transmitting
antennas.
[0027] The present invention relates to an optimized use of two measuring principles wherein
the resonance is measured while also monitoring the quality of the resonance. The
quality conditions of the resonance may be related to the width and symmetry of the
peak. By roughly finding the resonant frequency and the 3dB points (i.e. the half-power
points, which are normally used for measuring the peak width for the Q-factor) directly
from the peak, one can calculate the Q-factor (the resonant frequency divided by the
peak width) and the asymmetry (e.g. relative difference between the measured resonant
frequency and the mean of the 3dB points). A more accurate method is related to a
high-accuracy method of measuring the resonant frequency and the Q-factor. Then first
a number of samples are measured in the range around the peak. Then the samples above
the 3dB level are used and the theoretical resonance curve (Eq. (3.27) in [3]) is
fitted to them. This gives an accurate value for both the resonant frequency and the
Q-factor. The asymmetry can be calculated using various methods by comparing the samples
with the resulting curve. One method can be e.g. to calculate the mean deviation between
the samples and the curve on both sides of the resonant frequency. When the Q-factor
is less than e.g. 10, the resonance peak is difficult to measure, and indeed identify
from other variations in the response. A limit for the asymmetry must be established
based on empirical testing and comparing to results using both the resonator method
and the transmission method. At the chosen limits, depending on the conditions in
the pipe, the system may then change to measure differential transmission (phase and/or
attenuation) between the antennas.The transmission conditions need to be determined
for each case as the transition measurements may be affected by resonances and reflections
in the pipe. Some empirical testing may be needed for a specific sensor design and
application also because the local flow conditions at the antennas may be affected
by these factors.
[0028] The resonance and transmission measurements may be performed within the same range
of frequencies, but as the transmission signal will be affected by reflections and
resonances in the range of conditions, where these two methods overlap, these frequencies
should be avoided. In practice the resonance frequencies may be within the range of
100-2500MHz depending on e.g. the physical size, but typically wet gas measurements
using MDP cones, e.g. of the types discussed in
WO2010/115883, are performed in the range of 400-1500MHz.
[0029] Salinity measurements, e.g. as discussed in reference [1] may typically require transmission
measurements in the range of 1-3GHz, but for other transmission measurements lower
frequencies down to a few tenths of MHz may be used.
[0030] It is, however, an advantage of the present invention that the system may adapt to
the optimal frequency range for each of the measurements.
[0031] Below different embodiments and combinations of probes are discussed for performing
the measurements according to the invention. The probes and the methods for using
resonance and transmission measurements are considered to be part of the known art,
e.g. as described in the referred articles and patent publications and will not be
discussed per se in this specification.
Embodiment 1: Adding a Third Probe
[0032] Referring to fig. 1 the known WGMs have two probes, each having one antenna 2,3,
while the transmission type of measurement needs three probes. By adding a third probe
with a third antenna 1, both types of measurements can be performed. The third probe
could be smaller than the others, because the other two have been dimensioned to give
optimal coupling to the resonator.
[0033] The two existing probes are located in the pipe wall exactly opposite to the widest
part of a cone 9. One may therefore assume that the proximity of the cone will affect
the transmission measurement. There may then be an effect, which depends on the
β-value, which is related to the size of the cone relative to the pipe. This is undesirable
as it makes calibration more complicated. By locating the third probe 1 further downstream
asymmetrically in respect to the other two 2,3, and using this probe 1 for transmission,
the influence of the cone could be reduced.
[0034] Advantages with this embodiment are:
- A total of only three probes.
- All probes are identical, or at least of similar type.
[0035] Disadvantages are:
- Needs switches to be able to change which is the transmitting probe.
- Two of the probes are large in diameter. Hence the distances between the probes will
be large, meaning high maximum attenuation, and different flow conditions at the location
of the third probe. Higher attenuation means that the maximum WVF the meter can handle is reduced compared to having shorter propagation distances,
if the sensitivity of the electronics is a limiting factor.
- If possible, it would be desirable to mount the two existing probes closer to each
other than normally. This would increase the direct coupling, which may affect the
highest losses for which the resonator method can be used.
Embodiment 2: Adding a Probe with 3 Antennas
[0036] Referring to fig. 2 a 3-antenna probe 6 has been developed for performing a 2-parameter
measurement either as a stand-alone unit, or in a multiphase meter to find the salinity
in the water. The idea was to measure both the phase and the attenuation at a high
enough frequency (3GHz suggested) that also the real part of the permittivity affects
the measurements. Because the imaginary part caused by the conductivity is inversely
proportional to the frequency, the imaginary part totally dominates over the real
part at low frequencies. A paper on the sensor has been published, see reference [1].
The development involved theoretical studies, building of simple prototypes to study
the optimal spacing and length of the antennas, and finally production of glass-moulded
"final" probes.
[0037] Abovementioned
US7631543 and
WO2007/018434 describes a way of performing a 2-parameter measurement with the same type of 3-antenna
1,2,3 unit 6, which is based on measuring the phase only, but at two frequencies.
This, and other alternative ways of performing multi-parameter microwave measurements,
have also been described in [2]. In [2] a measurement is described measuring e.g.
the phase at two frequencies as an alternative to measuring the attenuation and phase
at one frequency.
[0038] The concept of using a 3-antenna probe for performing 1-parameter transmission measurements
in the WGM would mean that the probe must be mounted close to the cone to achieve
the advantage of eliminating the effect of flow regimes. On the other hand the measurement
should not be directly affected by the proximity of the metal cone. It would appear
that the optimal place to mount the probe would be right after the cone, as depicted
in Fig. 2, which also illustrates the resonance measuring antennas 4,5 close to the
cone.
[0039] Advantages with this concept are:
- The resonator measurement is not affected in any way.
- The 3-antenna probe can be standardized for each pipe size.
[0040] Disadvantages are:
- Needs even more switches than the concept with only 3 probes.
Embodiment 3: Using Only a 3-Antenna Probe
[0041] The concept shown in Fig. 3 is a combination of the two previous concepts. Instead
of having three separate probes as in the first concept, they would be integrated
into one single probe 6 housing containing three antennas 1,2,3. To provide enough
coupling for the resonator measurement, the probe antennas would probably need to
be made larger than in the 3-antenna probe in the second concept. They would probably
also need to be further away from each other to limit the direct capacitive coupling.
The design would probably need to be different for each
β-ratio.
[0042] The current probes, which are designed considering the resonator measurements only,
are designed to always give roughly the same coupling in an air-filled meter, which
gives a signal level close to the maximum in the dynamic range of the electronics.
A lower signal level may be accepted, provided it will always stay above the noise
level.
[0043] The probe must be located so that two of the antennas are roughly opposite to the
rim of the cone. However, based on previous simulations it is clear that they could
be displaced some millimeters in the direction of the third probe, which would reduce
the influence of the cone on the transmission measurement.
[0044] The three probes in the housing do not necessarily have to be of the same size. The
transmitting probe (downstream) could well be somewhat smaller.
[0045] Advantages with this concept are:
- There would only be one probe housing, and only one hole in the meter body.
- The 3 antennas can be more closely spaced than with three separate probes.
[0046] Disadvantages are:
- The probes for the resonator measurement are affected. It must probably be accepted
that the signal level (peak height in the resonator) will be lower than in the current
design, and vary with meter size and β-ratio. The direct capacitive coupling will also be higher.
- The existing 3-antenna design cannot be used directly but needs to be developed further.
Embodiment 4: Adding a 2-Antenna Probe
[0047] In the concept shown in fig. 4 the two current probes 4, 5 would be used for the
resonator measurement as before. In addition there would be a 2-antenna 2,3 probe
7 in the vicinity of the current transmitting probe 1. For transmission measurements
one would switch to receive with the 2-antenna probe. One channel can be connected
to one of the antennas permanently.
[0048] Advantages with this concept are:
- The resonator measurement is not affected in any way.
- The 2-antenna probe can be standardized for each pipe size.
[0049] Disadvantages are:
- The achievable path length is limited.
Embodiment 5: Replacing One Probe with a 3-Antenna Probe
[0050] If one of the standard probes is replaced by a 3-antenna 1,2,3 probe 6 in such a
way that one antenna 1 replaces the standard probe 5, and the two others 2,3 are downstream,
the distance between the resonator probes can be maintained, while the transmission
distances are kept short, and there are only two holes. The transmitting antenna can
be larger than the others. The concept is depicted in Fig. 5.
[0051] Advantages with this concept are:
- The distance between the resonator probes can be maintained.
- Only two holes needed in the meter body.
- The 3-antenna probe can be standardized for each pipe size.
- Needs only one switch. The transmitting probe can always be the same.
- Because one resonator probe is as before, the necessary drop in peak level is smaller
than in concept 3.
[0052] Disadvantages are:
- Unsymmetrical coupling. Therefore lower Q-factor than achievable for a given peak
height.
[0053] The size of the standard probes for the resonator, e.g. in embodiments 1 and 4 may
affect their use. Embodiment 2 would provide the highest degree of freedom in designing
the transmission measurement, but involves the highest amount of switches. Embodiment
3 seems to be preferable as it only requires one hole for probes in the meter body,
and a minimum amount of switches, and it allows shorter distances between the probes
(than embodiments 1 and 4) giving lower attenuation and more uniform flow conditions,
but it affects the coupling to the resonator. Compared to embodiment 3, embodiment
5 maintains the distance between the resonator probes, results in smaller reduction
in signal level in the resonator, but requires 2 holes in the meter body.
[0054] A number of considerations may be made when choosing the probe embodiment for finding
the optimal design under the specific use, such as:
- The influence of the cone, such as proximity, size and the requirements related to
transmission length.
- Probe size and how closely spaced the probes can be from a mechanical point of view.
- The probe antennas, especially if there is more than one in each probe, may be designed
to be both robust and tolerate some erosion, and to fulfill the criteria from a measurement
point of view. The distance between the antennas may also be studied depending on
the application of the invention.
- The maximum attenuation in the used frequency range needs to be evaluated based on
the transmission length, path difference, and defined worst case conditions, and compared
to the performance of the applied electronics.
- The flow conditions such as emulsions or flowing or bubbling water with varying salinity.
- The range of the variations in the signal strength, and the dynamic range of the electronics
must be considered with respect to the required coupling of the resonator.
Embodiment 6: A fin type insert 10
[0055] In fig. 6a and 6b a measuring system according to the invention is positioned in
a pipe with a fin type insert. Three antennas 11,12,13 have been positioned in the
pipe wall, where fig. 6a shows the position of two antennas 11,12 in the same axial
position and a third antenna 13 at a distance downstream from the others. If the first
antenna 11 is used as a transmitter there will be a difference in the propagation
length from the first antenna 11 to the other antennas 12,13, which may be used in
the transmission mode measurements.
[0056] The meter system according to the invention may advantageously be combined with other
resonators, thus a combination of differential pressure measurements, microwave resonance
and differential microwave transmission measurements e.g. to provide an addition to
the invention described in
US6915707 to comprise three probes enabling differential transmission measurements. One example
might be a fin sensor in a venture, as illustrated in fig. 5 in the patent, a solution
without a venture or other differential pressure measurements may also be contemplated
to make a two phase meter measuring the ratio between water and oil in a 0-100% mixture,
as is illustrated in the present figure 6.
[0057] Thus to summarize the present invention relates to a multiphase meter system for
measurements composition and/or salinity of a fluid flow in a pipe. The meter system
comprises a resonance measuring means including a transmitting antenna for providing
varying electromagnetic field within a first frequency range in the pipe and a receiver
antenna for measuring the resonance characteristics of the field in said pipe and
an evaluation means for determining the quality of said resonance.
[0058] The system also comprises a transmission measuring means including a transmitting
antenna for transmitting a varying electromagnetic signal within a second frequency
range, at least two receiver antennas being positioned at different distances from
said transmitter antenna, and a time measuring means for determining the phase difference
and difference in measured damping between the receipt of the transmitted signal at
said two receiver antennas. The transmission and resonance measuring means being positioned
so as to provide measurements in essentially the same fluid volume. This may preferably
be obtained by using the same antennas or probes for both measurements.
[0059] The system according to the invention includes control means for comparing the resonance
quality with a predetermined threshold value and when said resonance quality is above
said threshold calculating the composition and/or salinity from said resonance characteristics
or when said resonance quality is below said threshold calculating said composition
and/or salinity from said transmission time difference and loss. Thus the most accurate
measurements may be used depending on the content and characteristics of the fluid
flow.
[0060] The quality of the resonance and the corresponding threshold is preferably calculated
as the Q-factor of the resonance peek, thus indicating the loss in the resonator.
[0061] The transmitting antenna of the resonance measuring means and the transmission measuring
means may be constituted by the same antenna, and possibly the receiver antenna of
said resonance measuring means is constituted by one of receiver antennas of the transmission
measuring means, using a limited number of antennas and intrusions through the pipe
wall.
[0062] The first and second frequency ranges may be at least partially overlapping but preferably
includes the optimal range for each measurement. The transmitted signals may thus
be constituted by a broad band of frequencies corresponding to the first and second
frequency ranges, while the receivers may be able to recived the complete range or
the ranges for either resonance or transmission measurements. Preferably the first
frequency range used for resonance measurements may be in the range of 100-2500MHz,
preferably within 400-1500MHz, while the second frequency range for transmission measurements
may be in the range of 400-3000 MHz, preferably 1000-3000MHz.
[0063] The salinity of the fluid in the flow may also be calculated as a function of the
real and imaginary values measured by the transmission measuring means.
[0064] The resonance measuring means and said transmission measuring means are preferably
operated essentially simultaneously, as the control means is adapted to compare the
quality of the measurements from the measuring means and provide an output indicating
the measurements having the highest quality. Alternatively the output may be based
on said measurements being weighted according to the calculated quality of the measurements.
Thus a combined output signal may be provided being an optimized combination of said
measurements.
[0065] While the antennas, and especially the resonance measuring antennas, preferably are
mounted close to an insert, such as a cone or fin, having an axial position in a pipe,
other situations may also be contemplated. Used close to a cone the resonance measurements
should preferably be performed close to the widest brim of said cone.
References
[0066]
- [1] Bø, Ø.L., E. Nyfors, "Application of microwave spectroscopy for the detection of water
fraction and water salinity in water/oil/gas pipe flow", J. of Non-Crystalline Solids
(Elsevier), 305, 2002, pp. 345-353. (Also presented Dielectric Spectroscopy, Jerusalem January 2001).
- [2] Nyfors, E., P. Vainikainen, "Industrial Microwave Sensors", Artech House, 1989, 350
p.
- [3] Nyfors, E., Cylindrical Microwave Resonator Sensors for Measuring Materials under
Flow, Thesis, Helsinki Univ. of Tech., Radio laboratory, Report S 243, 2000, 181 p.
- [4] Nyfors et al: Handbook of Multiphase Flow Metering, page 51-52.
1. Multiphase meter system for measuring the composition and/or salinity of a fluid flow
in a pipe, comprising:
a resonance measuring means including a transmitting antenna (2,3,4,5,12,13) for providing
varying electromagnetic field within a first frequency range in the pipe and a receiver
antenna (2,3,4,5,12,13) for measuring the resonance characteristics of the field in
said pipe and an evaluation means,
a transmission measuring means including a transmitting antenna (1,5,11) for transmitting
a varying electromagnetic signal within a second frequency range, at least two receiver
antennas (2,3,12,13) being positioned at different distances from said transmitter
antenna (1,5,11), and a time measuring means,
said transmission and resonance measuring means (6,7,9,10) being positioned so as
to provide measurements in the same fluid volume, characterised in that,
the resonance measuring means is configured to determine the resonance quality,
the transmission measuring means is configured to determine the phase difference and
difference in measured damping between the receipt of the transmitted signal at said
two receiver antennas, and it further comprises a control means configured to compare
the resonance quality with a predetermined threshold value and when said resonance
quality is above said threshold to calculate the composition and/or salinity from
said resonance characteristics or when said resonance quality is below said threshold
to calculate said composition and/or salinity from said phase difference and difference
in measured damping.
2. Multiphase meter system according to claim 1, wherein the quality of the resonance
and the corresponding threshold is the Q-factor of the resonance peak.
3. Multiphase meter system according to claim 1, wherein the transmitting antenna (1,5)
of the resonance measuring means and the transmission measuring means is constituted
by the same antenna.
4. Multiphase meter system according to claim 3, wherein the receiver antenna (2,3) of
said resonance measuring means is constituted by one of receiver antennas (2,3) of
the transmission measuring means.
5. Multiphase meter system according to claim 1, wherein said first and second frequency
ranges are at least partially overlapping.
6. Multiphase meter system according to claim 1, wherein the transmitted signals are
constituted by a band of frequencies corresponding to the first and second frequency
ranges.
7. Multiphase meter system according to claim 1, wherein said first frequency range is
in the range of 100-2500MHz, preferably within 400-1500MHz.
8. Multiphase meter system according to claim 1, wherein the second frequency range is
in the range of 400-3000 MHz, preferably 1000-3000MHz.
9. Multiphase meter system according to claim 8, wherein the control means is configured
to calculate the salinity of the flow as a function of the real and imaginary values
measured by the transmission measuring means.
10. Multiphase meter system according to clam 1, wherein said resonance measuring means
and said transmission measuring means are configured to operate simultaneously, said
control means being configured to compare the quality of the measurements therefrom
and to provide an output indicating the measurements having the highest quality.
11. Multiphase meter system according to clam 1, wherein said resonance measuring means
and said transmission measuring means are configured to operate simultaneously, said
control means being configured to compare the quality of the measurements therefrom
and to calculate an output based on said measurements being weighted according to
the calculated quality of the measurements, thus to provide an output based on an
optimized combination of said measurements.
12. Multiphase meter system according to claim 1, wherein said resonance measuring means
is positioned at an insert, preferably provided in an axial position in the pipe.
13. Multiphase meter system according to claim 12, wherein the insert is a cone, the resonance
measuring means being positioned at the widest brim of said cone.
14. Multiphase meter system according to claim 12, wherein the resonance measuring means
includes the insert, the resonance measuring means being provided between said antennas
and the insert.
1. Multiphasen Messsystem zum Messen der Zusammensetzung und/oder des Salzgehalts eines
Fluidflusses in einem Rohr, umfassend:
Ein Resonanzmessmittel, enthaltend eine Übertragungsantenne (2, 3, 4, 5, 12, 13) zum
Bereitstellen eines sich ändernden elektromagnetischen Felds innerhalb eines ersten
Frequenzbereichs im Rohr und eine Empfangsantenne (2, 3, 4, 5, 12, 13) zum Messen
der Resonanzcharakteristik des Felds im Rohr und Auswertemittel,
ein Übertragungsmessmittel, enthaltend eine Übertragungsantenne (1, 5, 11) zum Übertragen
eines sich ändernden elektromagnetischen Signals innerhalb eines zweiten Frequenzbereichs,
zumindest zwei Empfangsantennen (2, 3, 12, 13), welche in verschiedenen Abständen
von der Übertragungsantenne (1, 5, 11) angeordnet sind, und ein Zeitmessmittel,
wobei die Übertragungs- und Resonanzmessmittel (6, 7, 9, 10) so angeordnet sind, um
Messungen im seiben Fluidvolumen bereitzustellen, dadurch gekennzeichnet, dass
das Resonanzmessmittel konfiguriert ist, um eine Resonanzqualität zu bestimmen,
das Transmissionsmessmittel konfiguriert ist, um den Phasenunterschied und den Unterschied
der gemessenen Dämpfung zwischen dem Empfang des übertragenden Signals an den beiden
Empfangsantennen zu bestimmen, und es weiterhin umfasst
ein Steuermittel, welches konfiguriert ist, um die Resonanzqualität mit einem vorbestimmten
Schwellenwert zu vergleichen, und um, wenn die Resonanzqualität oberhalb des Schwellwerts
ist, die Zusammensetzung und/oder den Salzgehalt aus der Resonanzcharakteristik zu
berechnen, oder um, wenn die Resonanzqualität unterhalb des Schwellwerts ist, die
Zusammensetzung und/oder den Salzgehalt aus der Phasendifferenz und der Differenz
der gemessenen Dämpfung zu berechnen.
2. Multiphasen Messsystem nach Anspruch 1, wobei die Qualität der Resonanz und der entsprechende
Schwellwert der Q-Faktor des Resonanzpeaks ist.
3. Multiphasen Messsystem nach Anspruch 1, wobei die Übertragungsantenne (1, 5) des Resonanzmessmittels
und des Übertragungsmessmittels durch dieselbe Antenne gebildet ist.
4. Multiphasen Messsystem nach Anspruch 3, wobei die Empfangsantenne (2, 3) des Resonanzmessmittels
durch eine der Empfangsantennen (2, 3) des Transmissionsmessmittels gebildet ist.
5. Multiphasen Messsystem nach Anspruch 1, wobei der erste und zweite Frequenzbereich
zumindest teilweise überlappen.
6. Multiphasen Messsystem nach Anspruch 1, wobei die Übertragungssignale durch ein Frequenzband
gebildet sind, welches den ersten und zweiten Frequenzbereichen entspricht.
7. Multiphasen Messsystem nach Anspruch 1, wobei der erste Frequenzbereich im Bereich
von 100-2500 MHz, insbesondere zwischen 400-1500 MHz, liegt.
8. Multiphasen Messsystem nach Anspruch 1, wobei der zweite Frequenzbereich in dem Bereich
von 400-3000 MHz, insbesondere 1000-3000 MHz, liegt.
9. Multiphasen Messsystem nach Anspruch 8, wobei das Steuermittel konfiguriert ist, um
den Salzgehalt des Flusses als Funktion der durch das Übertragungsmessmittel gemessenen
realen und imaginären Werte zu berechnen.
10. Multiphasen Messsystem nach Anspruch 1, wobei das Resonanzmessmittel und das Übertragungsmessmittel
konfiguriert sind, um gleichzeitig zu arbeiten, wobei das Steuermittel konfiguriert
ist, um die Qualität der Messung davon zu vergleichen und eine Ausgabe bereitzustellen,
die auf die Messungen mit höchster Qualität hinweist.
11. Multiphasen Messsystem nach Anspruch 1, wobei das Resonanzmessmittel und das Übertragungsmessmittel
konfiguriert sind, um gleichzeitig zu arbeiten, wobei das Steuermittel konfiguriert
ist, um die Qualität der Messungen davon zu vergleichen und eine Ausgabe zu berechnen,
welche auf gemäß der berechneten Qualität der Messungen gewichteten Messungen basiert,
und so eine auf einer optimierten Kombination der Messungen basierte Ausgabe bereitzustellen.
12. Multiphasen Messsystem nach Anspruch 1, wobei das Resonanzmessmittel an einem Einsatz,
welcher vorzugsweise in einer axialen Position im Rohr bereitgestellt ist, angeordnet
ist.
13. Multiphasen Messsystem nach Anspruch 12, wobei der Einsatz ein Konus ist, und wobei
das Resonanzmessmittel am weitesten Rand des Konus angeordnet ist.
14. Multiphasen Messsystem nach Anspruch 12, wobei das Resonanzmessmittel den Einsatz
enthält, und wobei das Resonanzmessmittel zwischen den Antennen und dem Einsatz vorgesehen
ist.
1. Système de mesure multiphasique pour mesurer la composition et/ou la salinité d'un
écoulement de fluide dans un tuyau, comprenant :
un moyen de mesure de résonance comprenant une antenne de transmission (2, 3, 4, 5,
12, 13) pour fournir un champ électromagnétique variable à l'intérieur d'une première
gamme de fréquence dans le tuyau et une antenne de réception (2, 3, 4, 5, 12, 13)
pour mesurer les caractéristiques de résonance du champ dans ledit tuyau et un moyen
d'évaluation,
un moyen de mesure de transmission comprenant une antenne de transmission (1, 5, 11)
pour transmettre un signal électromagnétique variable à l'intérieur d'une deuxième
gamme de fréquence, au moins deux antennes de réception (2, 3, 12, 13) étant positionnées
à des distances différentes de ladite antenne de transmission (1, 5, 11) et un moyen
de mesure de temps,
lesdits moyens de mesure de transmission et de résonance (6, 7, 9, 10) étant positionnés
de manière à réaliser des mesures dans le même volume de fluide,
caractérisé en ce que :
le moyen de mesure de résonance est configuré de manière à déterminer la qualité de
la résonance,
le moyen de mesure de transmission est configuré de manière à déterminer la différence
de phase et la différence dans l'amortissement mesuré entre la réception du signal
transmis auxdites deux antennes de réception et comprenant en outre : un moyen de
commande configuré de manière à comparer la qualité de la résonance avec une valeur
de seuil prédéterminée et, lorsque ladite qualité de la résonance se situe au-dessus
dudit seuil, à calculer la composition et/ou la salinité à partir desdites caractéristiques
de résonance ou, lorsque ladite qualité de la résonance se situe en dessous dudit
seuil, à calculer ladite composition et/ou ladite salinité à partir de ladite différence
de phase et de ladite différence dans l'amortissement mesuré.
2. Système de mesure multiphasique selon la revendication 1, dans lequel la qualité de
la résonance et le seuil correspondant sont le facteur Q du pic de résonance.
3. Système de mesure multiphasique selon la revendication 1, dans lequel l'antenne de
transmission (1, 5) du moyen de mesure de résonance et du moyen de mesure de transmission
est constituée par la même antenne.
4. Système de mesure multiphasique selon la revendication 3, dans lequel l'antenne de
réception (2, 3) dudit moyen de mesure de résonance est constituée par une des antennes
de réception (2, 3) du moyen de mesure de transmission.
5. Système de mesure multiphasique selon la revendication 1, dans lequel lesdites première
et deuxième gammes de fréquence se chevauchent au moins partiellement.
6. Système de mesure multiphasique selon la revendication 1, dans lequel les signaux
transmis sont constitués par une bande de fréquences qui correspondent aux première
et deuxième gammes de fréquence.
7. Système de mesure multiphasique selon la revendication 1, dans lequel ladite première
gamme de fréquence est comprise dans la plage de 100 MHz à 2500 MHz, de préférence
entre 400 MHz et 1500 MHz.
8. Système de mesure multiphasique selon la revendication 1, dans lequel ladite deuxième
gamme de fréquence est comprise dans la plage de 400 MHz à 3000 MHz, de préférence
entre 1000 MHz et 3000 MHz.
9. Système de mesure multiphasique selon la revendication 8, dans lequel le moyen de
commande est configuré de manière à calculer la salinité de l'écoulement en fonction
des valeurs réelle et imaginaire mesurées par le moyen de mesure de transmission.
10. Système de mesure multiphasique selon la revendication 1, dans lequel ledit moyen
de mesure de résonance et ledit moyen de mesure de transmission sont configurés de
manière à fonctionner simultanément, ledit moyen de commande étant configuré de manière
à comparer la qualité des mesures effectuées par ceux-ci et à fournir une sortie qui
indique les mesures qui affichent la qualité la plus élevée.
11. Système de mesure multiphasique selon la revendication 1, dans lequel ledit moyen
de mesure de résonance et ledit moyen de mesure de transmission sont configurés de
manière à fonctionner simultanément, ledit moyen de commande étant configuré de manière
à comparer la qualité des mesures effectuées par ceux-ci et à calculer une sortie
sur la base desdites mesures pondérées selon la qualité calculée des mesures, afin
de fournir ainsi une sortie basée sur une combinaison optimisée desdites mesures.
12. Système de mesure multiphasique selon la revendication 1, dans lequel ledit moyen
de résonance est positionné au niveau d'un insert, de préférence prévu dans une position
axiale dans le tuyau.
13. Système de mesure multiphasique selon la revendication 12, dans lequel l'insert est
un cône, le moyen de mesure de résonance étant positionné au niveau du bord le plus
large dudit cône.
14. Système de mesure multiphasique selon la revendication 12, dans lequel le moyen de
mesure de résonance comprend l'insert, le moyen de mesure de résonance étant prévu
entre lesdites antennes et l'insert.